Finite Difference Computing with PDEs – A Modern Software Approach
Hans Petter Langtangen1,2 Svein Linge3,1
1Center for Biomedical Computing, Simula Research Laboratory 2Department of Informatics, University of Oslo
3Department of Process, Energy and Environmental Technology, University College of Southeast Norway
This easy-to-read book introduces the basics of solving partial dif- ferential equations by finite difference methods. The emphasis is on constructing finite difference schemes, formulating algorithms, implementing algorithms, verifying implementations, analyzing the physical behavior of the numerical solutions, and applying the meth- ods and software to solve problems from physics and biology.
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Oct 1, 2016
There are so many excellent books on finite difference methods for ordinary and partial differential equations that writing yet another one requires a different view on the topic. The present book is not so concerned with the traditional academic presentation of the topic, but is focused at teaching the practitioner how to obtain reliable computations involving finite difference methods. This focus is based on a set of learning outcomes:
1. understanding of the ideas behind finite difference methods,
2. understanding how to transform an algorithm to a well-designed
computer code,
3. understanding how to test (verify) the code,
4. understanding potential artifacts in simulation results.
Compared to other textbooks, the present one has a particularly strong emphasis on computer implementation and verification. It also has a strong emphasis on an intuitive understanding of constructing finite difference methods. To learn about the potential non-physical artifacts of various methods, we study exact solutions of finite difference schemes as these give deeper insight into the physical behavior of the numerical methods than the traditional (and more general) asymptotic error analy- sis. However, asymptotic results regarding convergence rates, typically truncation errors, are crucial for testing implementations, so an extensive appendix is devoted to the computation of truncation errors.
Why finite differences? One may ask why we do finite differences when finite element and finite volume methods have been developed to greater
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Preface
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generality and sophistication than finite differences and can cover more problems. The finite element and finite volume methods are also the industry standard nowadays. Why not just those methods? The reason for finite differences is the method’s simplicity, both from a mathematical and coding perspective. Especially in academia, where simple model problems are used a lot for teaching and in research (e.g., for verification of advanced implementations), there is a constant need to solve the model problems from scratch with easy-to-verify computer codes. Here, finite differences are ideal. A simple 1D heat equation can of course be solved by a finite element package, but a 20-line code with a difference scheme is just right to the point and provides an understanding of all details involved in the model and the solution method. Everybody nowadays has a laptop and the natural method to attack a 1D heat equation is a simple Python or Matlab program with a difference scheme. The conclusion goes for other fundamental PDEs like the wave equation and Poisson equation as long as the geometry of the domain is a hypercube. The present book contains all the practical information needed to use the finite difference tool in a safe way.
Various pedagogical elements are utilized to reach the learning out- comes, and these are commented upon next.
Simplify, understand, generalize. The book’s overall pedagogical phi- losophy is the three-step process of first simplifying the problem to something we can understand in detail, and when that understanding is in place, we can generalize and hopefully address real-world applications with a sound scientific problem-solving approach. For example, in the chapter on a particular family of equations we first simplify the problem in question to a 1D, constant-coefficient equation with simple boundary conditions. We learn how to construct a finite difference method, how to implement it, and how to understand the behavior of the numerical solu- tion. Then we can generalize to higher dimensions, variable coefficients, a source term, and more complicated boundary conditions. The solution of a compound problem is in this way an assembly of elements that are well understood in simpler settings.
Constructive mathematics. This text favors a constructive approach to mathematics. Instead of a set of definitions followed by popping up a method, we emphasize how to think about the construction of a method. The aim is to obtain a good intuitive understanding of the mathematical methods.
The text is written in an easy-to-read style much inspired by the following quote.
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Some people think that stiff challenges are the best device to induce learning, but I am not one of them. The natural way to learn something is by spending vast amounts of easy, enjoyable time at it. This goes whether you want to speak German, sight-read at the piano, type, or do mathematics. Give me the German storybook for fifth graders that I feel like reading in bed, not Goethe and a dictionary. The latter will bring rapid progress at first, then exhaustion and failure to resolve.
The main thing to be said for stiff challenges is that inevitably we will encounter them, so we had better learn to face them boldly. Putting them in the curriculum can help teach us to do so. But for teaching the skill or subject matter itself, they are overrated. [18, p. 86] Lloyd N. Trefethen, Applied Mathematician, 1955-.
This book assumes some basic knowledge of finite difference approxi- mations, differential equations, and scientific Python or MATLAB pro- gramming, as often met in an introductory numerical methods course. Readers without this background may start with the light companion book “Finite Difference Computing with Exponential Decay Models” [9]. That book will in particular be a useful resource for the programming parts of the present book. Since the present book deals with partial differential equations, the reader is assumed to master multi-variable calculus and linear algebra.
Fundamental ideas and their associated scientific details are first introduced in the simplest possible differential equation setting, often an ordinary differential equation, but in a way that easily allows reuse in more complex settings with partial differential equations. With this approach, new concepts are introduced with a minimum of mathematical details. The text should therefore have a potential for use early in undergraduate student programs.
All nuts and bolts. Many have experienced that “vast amounts of easy, enjoyable time”, as stated in the quote above, arises when mathematics is implemented on a computer. The implementation process triggers understanding, creativity, and curiosity, but many students find the transition from a mathematical algorithm to a working code difficult and spend a lot of time on “programming issues”.
Most books on numerical methods concentrate on the mathematics of the subject while details on going from the mathematics to a computer implementation are less in focus. A major purpose of this text is therefore to help the practitioner by providing all nuts and bolts necessary for safely going from the mathematics to a well-designed and well-tested computer code. A significant portion of the text is consequently devoted to programming details.
Python as programming language. While MATLAB enjoys widespread popularity in books on numerical methods, we have chosen to use the
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Python programming language. Python is very similar to MATLAB, but contains a lot of modern software engineering tools that have become standard in the software industry and that should be adopted also for numerical computing projects. Python is at present also experiencing an exponential growth in popularity within the scientific computing community. One of the book’s goals is to present an up-to-date Python eco system for implementing finite difference methods.
Program verification. Program testing, called verification, is a key topic of the book. Good verification techniques are indispensable when debugging computer code, but also fundamental for achieving reliable simulations. Two verification techniques saturate the book: exact solution of discrete equations (where the approximation error vanishes) and em- pirical estimation of convergence rates in problems with exact (analytical or manufactured) solutions of the differential equation(s).
Vectorized code. Finite difference methods lead to code with loops over large arrays. Such code in plain Python is known to run slowly. We demonstrate, especially in Appendix C, how to port loops to fast, compiled code in C or Fortran. However, an alternative is to vectorize the code to get rid of explicit Python loops, and this technique is met throughout the book. Vectorization becomes closely connected to the underlying array library, here numpy, and is often thought of as a difficult subject by students. Through numerous examples in different contexts, we hope that the present book provides a substantial contribution to explaining how algorithms can be vectorized. Not only will this speed up serial code, but with a library that can produce parallel code from numpy commands (such as Numba), vectorized code can be automatically turned into parallel code and utilize multi-core processors and GPUs. Also when creating tailored parallel code for today’s supercomputers, vectorization is useful as it emphasizes splitting up an algorithm into plain and simple array operations, where each operation is trivial to parallelize efficiently, rather than trying to develop a “smart” overall parallelization strategy.
Analysis via exact solutions of discrete equations. Traditional asymp- totic analysis of errors is important for verification of code using con- vergence rates, but gives a limited understanding of how and why a correctly implemented numerical method may give non-physical results. By developing exact solutions, usually based on Fourier methods, of the discrete equations, one can obtain a physical understanding of the
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behavior of a numerical method. This approach is favored for analysis of methods in this book.
Code-inspired mathematical notation. Our primary aim is to have a clean and easy-to-read computer code, and we want a close one-to-one relationship between the computer code and mathematical description of the algorithm. This principle calls for a mathematical notation that is governed by the natural notation in the computer code. The unknown is mostly called u, but the meaning of the symbol u in the mathematical description changes as we go from the exact solution fulfilling the differ- ential equation to the symbol u that is naturally used for the associated data structure in the code.
Limited scope. The aim of this book is not to give an overview of a lot of methods for a wide range of mathematical models. Such information can be found in numerous existing, more advanced books. The aim is rather to introduce basic concepts and a thorough understanding of how to think about computing with finite difference methods. We therefore go in depth with only the most fundamental methods and equations. However, we have a multi-disciplinary scope and address the interplay of mathematics, numerics, computer science, and physics.
Focus on wave phenomena. Most books on finite difference methods, or books on theory with computer examples, have their emphasis on diffusion phenomena. Half of this book (Chapters 1, 2, and Appendix C) is devoted to wave phenomena. Extended material on this topic is not so easy find in the literature, so the book should be a valuable contribution in this respect. Wave phenomena is also a good topic in general for choosing the finite difference method over other discretization methods since one quickly needs fine resolution over the entire mesh and uniform meshes are most natural.
Instead of introducing the finite difference method for diffusion prob- lems, where one soon ends up with matrix systems, we do the introduction in a wave phenomena setting where explicit schemes are most relevant. This slows down the learning curve since we can introduce a lot of theory for differences and for software aspects in a context with simple, explicit stencils for updating the solution.
Independent chapters. Most book authors are careful with avoiding repetitions of material. The chapters in this book, however, contain some overlap, because we want the chapters to appear meaningful on their own. Modern publishing technology makes it easy to take selected chapters from different books to make a new book tailored to a specific course. The
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more a chapter builds on details in other chapters, the more difficult it is to reuse chapters in new contexts. Also, most readers find it convenient that important information is explicitly stated, even if it was already met in another chapter.
Supplementary materials. All program and data files referred to in this book are available from the book’s primary web site: URL: http: //hplgit.github.io/fdm-book/doc/web/.
Acknowledgments. Many students have provided lots of useful feedback on the exposition and found many errors in the text. Special efforts in this regard were made by Imran Ali, Shirin Fallahi, Anders Hafreager, Daniel Alexander Mo Søreide Houshmand, Kristian Gregorius Hustad, Mathilde Nygaard Kamperud, and Fatemeh Miri. The collaboration with the Springer team, with Dr. Martin Peters, Thanh-Ha Le Thi, and their production staff has always been a great pleasure and a very efficient process.
Finally, want really appreciate the strong push of the COE of Simula Research Laboratory, Aslak Tveito, for publishing and financing books in open access format, including this one. We are grateful to the labo- ratory’s financial contribution as well as to the financial contribution from the Department of Process, Energy and Environmental Technology, University College of Southeast Norway.
Oslo, July 2016 Hans Petter Langtangen, Svein Linge
Preface …………………………………………. v 1 Vibration ODEs………………………………. 1
1.1 Finite difference discretization …………………….. 1
1.1.1 A basic model for vibrations …………………. 2
1.1.2 A centered finite difference scheme…………….. 2
1.2 Implementation………………………………… 5 1.2.1 Making a solver function ……………………. 5 1.2.2 Verification………………………………. 7 1.2.3 Scaled model …………………………….. 11
1.3 Visualization of long time simulations……………….. 12
1.3.1 Using a moving plot window …………………. 13
1.3.2 Making animations ………………………… 14
1.3.3 Using Bokeh to compare graphs ………………. 17
1.3.4 Using a line-by-line ascii plotter ………………. 20
1.3.5 Empirical analysis of the solution……………… 21
1.4 Analysis of the numerical scheme…………………… 23
1.4.1 Deriving a solution of the numerical scheme . . . . . . . . . 23
1.4.2 The error in the numerical frequency…………… 25
1.4.3 Empirical convergence rates and adjusted ω . . . . . . . . . 26
1.4.4 Exact discrete solution ……………………… 27
1.4.5 Convergence ……………………………… 27
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Contents
xii Contents
1.4.6 The global error…………………………… 28 1.4.7 Stability ………………………………… 29 1.4.8 About the accuracy at the stability limit ……….. 30
1.5 Alternative schemes based on 1st-order equations . . . . . . . . . . 32
1.5.1 The Forward Euler scheme ………………….. 33
1.5.2 The Backward Euler scheme …………………. 34
1.5.3 The Crank-Nicolson scheme………………….. 34
1.5.4 Comparison of schemes……………………… 36
1.5.5 Runge-Kutta methods ……………………… 38
1.5.6 Analysis of the Forward Euler scheme ………….. 39
1.6 Energy considerations …………………………… 41
1.6.1 Derivation of the energy expression ……………. 42
1.6.2 An error measure based on energy …………….. 44
1.7 The Euler-Cromer method ……………………….. 46
1.7.1 Forward-backward discretization………………. 46
1.7.2 Equivalence with the scheme for the second-order ODE 48
1.7.3 Implementation …………………………… 49
1.7.4 The Störmer-Verlet algorithm ………………… 51
1.8 Staggered mesh………………………………… 53
1.8.1 The Euler-Cromer scheme on a staggered mesh . . . . . . 53 1.8.2 Implementation of the scheme on a staggered mesh . . 55
1.9 Exercises and Problems ………………………….. 57
1.10 Generalization: damping, nonlinearities, and excitation . . . . . 67
1.10.1 A centered scheme for linear damping ………….. 67
1.10.2 A centered scheme for quadratic damping……….. 68
1.10.3 A forward-backward discretization of the quadratic
damping term…………………………….. 69
1.10.4Implementation …………………………… 70 1.10.5Verification………………………………. 71 1.10.6Visualization …………………………….. 72 1.10.7User interface…………………………….. 73 1.10.8 The Euler-Cromer scheme for the generalized model . . 75 1.10.9 The Störmer-Verlet algorithm for the generalized model 76 1.10.10A staggered Euler-Cromer scheme for a generalized
model…………………………………… 76 1.10.11The PEFRL 4th-order accurate algorithm . . . . . . . . . . 77
1.11 Exercises and Problems ………………………….. 78
Contents xiii
1.12 Applications of vibration models …………………… 80 1.12.1Oscillatingmassattachedtoaspring…………… 80 1.12.2General mechanical vibrating system…………… 82 1.12.3Aslidingmassattachedtoaspring……………. 84 1.12.4Ajumpingwashingmachine …………………. 85 1.12.5Motionofapendulum ……………………… 85 1.12.6 Dynamic free body diagram during pendulum motion 88 1.12.7Motionofanelasticpendulum ……………….. 93 1.12.8Vehicleonabumpyroad……………………. 99 1.12.9Bouncing ball…………………………….. 101 1.12.10Two-body gravitational problem………………. 102 1.12.11Electric circuits …………………………… 104
1.13Exercises …………………………………….. 104 2 Wave equations ………………………………. 111
2.1 Simulation of waves on a string ……………………. 111
2.1.1 Discretizing the domain …………………….. 112
2.1.2 The discrete solution……………………….. 113
2.1.3 Fulfilling the equation at the mesh points……….. 113
2.1.4 Replacing derivatives by finite differences . . . . . . . . . . . 113
2.1.5 Formulating a recursive algorithm …………….. 115
2.1.6 Sketch of an implementation …………………. 117
2.2 Verification …………………………………… 118
2.2.1 A slightly generalized model problem ………….. 118
2.2.2 Using an analytical solution of physical significance . . 119
2.2.3 Manufactured solution and estimation of convergence
rates……………………………………. 120
2.2.4 Constructing an exact solution of the discrete equations 122
2.3 Implementation………………………………… 124
2.3.1 Callback function for user-specific actions . . . . . . . . . . . 125
2.3.2 The solver function ………………………… 126
2.3.3 Verification: exact quadratic solution…………… 127
2.3.4 Verification: convergence rates ……………….. 128
2.3.5 Visualization: animating the solution…………… 130
2.3.6 Running a case……………………………. 134
2.3.7 Working with a scaled PDE model…………….. 135
2.4 Vectorization………………………………….. 137 2.4.1 Operations on slices of arrays ………………… 137
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2.4.2 Finite difference schemes expressed as slices . . . . . . . . . 140
2.4.3 Verification………………………………. 140
2.4.4 Efficiency measurements…………………….. 142
2.4.5 Remark on the updating of arrays …………….. 144
2.5 Exercises …………………………………….. 145
2.6 Generalization: reflecting boundaries………………… 149
2.6.1 Neumannboundarycondition………………… 150
2.6.2 Discretization of derivatives at the boundary . . . . . . . . 150
2.6.3 Implementation of Neumann conditions ………… 152
2.6.4 Index set notation …………………………. 153
2.6.5 Verifying the implementation of Neumann conditions . 155
2.6.6 Alternative implementation via ghost cells . . . . . . . . . . 157
2.7 Generalization: variable wave velocity……………….. 160
2.7.1 The model PDE with a variable coefficient………. 160
2.7.2 Discretizing the variable coefficient ……………. 161
2.7.3 Computing the coefficient between mesh points . . . . . . 162
2.7.4 How a variable coefficient affects the stability . . . . . . . 163
2.7.5 Neumann condition and a variable coefficient . . . . . . . . 164
2.7.6 Implementation of variable coefficients …………. 165
2.7.7 A more general PDE model with variable coefficients . 166
2.7.8 Generalization: damping ……………………. 167
2.8 Building a general 1D wave equation solver…………… 168 2.8.1 User action function as a class ……………….. 168 2.8.2 Pulse propagation in two media ………………. 171
2.9 Exercises …………………………………….. 175
2.10 Analysis of the difference equations…………………. 185 2.10.1 Properties of the solution of the wave equation . . . . . . 185 2.10.2 More precise definition of Fourier representations . . . . 187 2.10.3Stability ………………………………… 189 2.10.4Numericaldispersionrelation ………………… 191 2.10.5Extendingtheanalysisto2Dand3D ………….. 194
2.11 Finite difference methods for 2D and 3D wave equations . . . 198 2.11.1Multi-dimensionalwaveequations …………….. 198 2.11.2Mesh …………………………………… 200 2.11.3Discretization…………………………….. 201
2.12 Implementation………………………………… 203
Contents xv
2.12.1Scalar computations ……………………….. 205 2.12.2Vectorizedcomputations ……………………. 207 2.12.3Verification………………………………. 209 2.12.4Visualization …………………………….. 210
2.13Exercises …………………………………….. 214
2.14 Applications of wave equations…………………….. 216 2.14.1Wavesonastring …………………………. 217 2.14.2Elasticwavesinarod………………………. 220 2.14.3Wavesonamembrane ……………………… 221 2.14.4Theacousticmodelforseismicwaves ………….. 221 2.14.5Soundwavesinliquidsandgases ……………… 223 2.14.6Spherical waves …………………………… 225 2.14.7Thelinearshallowwaterequations…………….. 226 2.14.8Wavesinbloodvessels ……………………… 229 2.14.9Electromagneticwaves ……………………… 231
2.15Exercises …………………………………….. 232 3 Diffusion equations……………………………. 247
3.1 An explicit method for the 1D diffusion equation ………. 248
3.1.1 The initial-boundary value problem for 1D diffusion . . 248
3.1.2 Forward Euler scheme………………………. 249
3.1.3 Implementation …………………………… 251
3.1.4 Verification………………………………. 253
3.1.5 Numerical experiments……………………… 257
3.2 Implicit methods for the 1D diffusion equation ………… 263
3.2.1 Backward Euler scheme …………………….. 263
3.2.2 Sparse matrix implementation………………… 267
3.2.3 Crank-Nicolson scheme……………………… 268
3.2.4 The unifying θ rule ………………………… 270
3.2.5 Experiments……………………………… 271
3.2.6 The Laplace and Poisson equation …………….. 273
3.3 Analysis of schemes for the diffusion equation…………. 274
3.3.1 Properties of the solution……………………. 275
3.3.2 Analysis of discrete equations ………………… 277
3.3.3 Analysis of the finite difference schemes ………… 279
3.3.4 Analysis of the Forward Euler scheme ………….. 280
3.3.5 Analysis of the Backward Euler scheme…………. 282
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3.3.6 Analysis of the Crank-Nicolson scheme …………. 283
3.3.7 Analysis of the Leapfrog scheme………………. 283
3.3.8 Summary of accuracy of amplification factors . . . . . . . 284
3.3.9 Analysis of the 2D diffusion equation…………… 286
3.3.10Explanationofnumericalartifacts …………….. 288
3.4 Exercises …………………………………….. 289
3.5 Diffusion in heterogeneous media…………………… 293
3.5.1 Discretization…………………………….. 293
3.5.2 Implementation …………………………… 294
3.5.3 Stationary solution ………………………… 295
3.5.4 Piecewise constant medium ………………….. 295
3.5.5 Implementation of diffusion in a piecewise constant
medium…………………………………. 296
3.5.6 Axi-symmetric diffusion …………………….. 299
3.5.7 Spherically-symmetric diffusion……………….. 302
3.6 Diffusion in 2D ………………………………… 303
3.6.1 Discretization…………………………….. 303
3.6.2 Numbering of mesh points versus equations and
unknowns ……………………………….. 304
3.6.3 Algorithm for setting up the coefficient matrix . . . . . . 309
3.6.4 Implementation with a dense coefficient matrix . . . . . . 311
3.6.5 Verification: exact numerical solution ………….. 315
3.6.6 Verification: convergence rates ……………….. 316
3.6.7 Implementation with a sparse coefficient matrix . . . . . 317
3.6.8 The Jacobi iterative method …………………. 322
3.6.9 Implementation of the Jacobi method ………….. 325
3.6.10Testproblem:diffusionofasinehill……………. 327 3.6.11 The relaxed Jacobi method and its relation to the
Forward Euler method ……………………… 328 3.6.12TheGauss-SeidelandSORmethods …………… 329 3.6.13 Scalar implementation of the SOR method . . . . . . . . . . 331 3.6.14 Vectorized implementation of the SOR method . . . . . . 331 3.6.15Directversusiterativemethods……………….. 335 3.6.16TheConjugategradientmethod………………. 338 3.6.17 What is the recommended method for solving linear
systems? ………………………………… 341
3.7 Random walk …………………………………. 341 3.7.1 Random walk in 1D ……………………….. 342
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3.7.2 Statistical considerations ……………………. 343
3.7.3 Playing around with some code ………………. 344
3.7.4 Equivalence with diffusion …………………… 347
3.7.5 Implementation of multiple walks……………… 349
3.7.6 Demonstration of multiple walks ……………… 356
3.7.7 Ascii visualization of 1D random walk………….. 360
3.7.8 Random walk as a stochastic equation………….. 361
3.7.9 Random walk in 2D ……………………….. 362
3.7.10 Random walk in any number of space dimensions . . . . 363
3.7.11 Multiple random walks in any number of space
dimensions ………………………………. 364
3.8 Applications…………………………………… 366
3.8.1 Diffusion of a substance …………………….. 366
3.8.2 Heat conduction ………………………….. 368
3.8.3 Porous media flow …………………………. 371
3.8.4 Potential fluid flow ………………………… 371
3.8.5 Streamlines for 2D fluid flow …………………. 372
3.8.6 The potential of an electric field ………………. 372
3.8.7 Development of flow between two flat plates . . . . . . . . 373
3.8.8 Flow in a straight tube……………………… 374
3.8.9 Tribology: thin film fluid flow ………………… 375
3.8.10 Propagation of electrical signals in the brain . . . . . . . . 376
3.9 Exercises …………………………………….. 376
4 Advection-dominated equations ………………… 385
4.1 One-dimensional time-dependent advection equations . . . . . . 386
4.1.1 Simplest scheme: forward in time, centered in space . . 387
4.1.2 Analysis of the scheme ……………………… 390
4.1.3 Leapfrog in time, centered differences in space . . . . . . . 391
4.1.4 Upwind differences in space………………….. 394
4.1.5 Periodic boundary conditions ………………… 397
4.1.6 Implementation …………………………… 397
4.1.7 A Crank-Nicolson discretization in time and centered
differences in space ………………………… 401
4.1.8 The Lax-Wendroff method…………………… 403
4.1.9 Analysisofdispersionrelations……………….. 405
4.2 One-dimensional stationary advection-diffusion equation . . . . 409 4.2.1 A simple model problem ……………………. 410
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4.2.2 4.2.3
A centered finite difference scheme…………….. 410 Remedy: upwind finite difference scheme . . . . . . . . . . . 413
4.3 Time-dependent convection-diffusion equations . . . . . . . . . . . . 415
4.3.1 Forward in time, centered in space scheme ………. 415
4.3.2 Forward in time, upwind in space scheme ……….. 416
4.4 Two-dimensional advection-diffusion equations . . . . . . . . . . . . 416
4.5 Applications of advection equations ………………… 416 4.5.1 Transport of a substance ……………………. 417
4.5.2 Transport of a heat ………………………… 417
4.6 Exercises …………………………………….. 418 5 Nonlinear problems …………………………… 419
5.1 Introduction of basic concepts …………………….. 419
5.1.1 Linear versus nonlinear equations……………… 419
5.1.2 A simple model problem ……………………. 421
5.1.3 Linearization by explicit time discretization . . . . . . . . . 422
5.1.4 Exact solution of nonlinear algebraic equations . . . . . . 423
5.1.5 Linearization …………………………….. 424
5.1.6 Picard iteration …………………………… 425
5.1.7 Linearization by a geometric mean…………….. 427
5.1.8 Newton’s method………………………….. 429
5.1.9 Relaxation ………………………………. 430
5.1.10Implementationandexperiments ……………… 431 5.1.11 Generalization to a general nonlinear ODE . . . . . . . . . . 433 5.1.12SystemsofODEs………………………….. 436
5.2 Systems of nonlinear algebraic equations …………….. 439
5.2.1 Picard iteration …………………………… 439
5.2.2 Newton’s method………………………….. 440
5.2.3 Stopping criteria ………………………….. 442
5.2.4 Example: A nonlinear ODE model from epidemiology 443
5.3 Linearization at the differential equation level . . . . . . . . . . . . . 445
5.3.1 Explicit time integration ……………………. 446
5.3.2 Backward Euler scheme and Picard iteration . . . . . . . . 446
5.3.3 Backward Euler scheme and Newton’s method . . . . . . 447
5.3.4 Crank-Nicolson discretization ………………… 450
5.4 1D stationary nonlinear differential equations . . . . . . . . . . . . . 451
Contents xix
5.4.1 Finite difference discretization………………… 452 5.4.2 Solution of algebraic equations ……………….. 453
5.5 Multi-dimensional nonlinear PDE problems…………… 458 5.5.1 Finite difference discretization………………… 458 5.5.2 Continuation methods ……………………… 461
5.6 Operator splitting methods……………………….. 462
5.6.1 Ordinary operator splitting for ODEs ………….. 462
5.6.2 Strang splitting for ODEs …………………… 463
5.6.3 Example: Logistic growth……………………. 464
5.6.4 Reaction-diffusion equation ………………….. 467
5.6.5 Example: Reaction-Diffusion with linear reaction term 469
5.6.6 Analysis of the splitting method………………. 477
5.7 Exercises …………………………………….. 478
A Useful formulas ………………………………. 487
A.1 Finite difference operator notation …………………. 487
A.2 Truncation errors of finite difference approximations . . . . . . . 488
A.3 Finite differences of exponential functions ……………. 489
A.4 Finite differences of tn …………………………… 490 A.4.1 Software ………………………………… 491
B Truncation error analysis………………………. 493
B.1 Overview of truncation error analysis ……………….. 494 B.1.1 Abstract problem setting ……………………. 494 B.1.2 Error measures……………………………. 494
B.2 Truncation errors in finite difference formulas …………. 496
B.2.1 Example: The backward difference for u′(t) . . . . . . . . . 496
B.2.2 Example: The forward difference for u′(t) ……….. 497
B.2.3 Example: The central difference for u′(t)………… 498
B.2.4 Overview of leading-order error terms in finite
difference formulas…………………………. 499
B.2.5 Software for computing truncation errors . . . . . . . . . . . 500
B.3 Exponential decay ODEs…………………………. 502 B.3.1 Forward Euler scheme………………………. 502 B.3.2 Crank-Nicolson scheme……………………… 503 B.3.3 The θ-rule……………………………….. 503
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B.3.4 Using symbolic software …………………….. 504 B.3.5 Empirical verification of the truncation error . . . . . . . . 505 B.3.6 Increasing the accuracy by adding correction terms . . 509 B.3.7 Extension to variable coefficients ……………… 513 B.3.8 Exact solutions of the finite difference equations . . . . . 514 B.3.9 Computing truncation errors in nonlinear problems . . 514
B.4 Vibration ODEs ……………………………….. 515 B.4.1 Linear model without damping……………….. 515 B.4.2 Model with damping and nonlinearity ………….. 519 B.4.3 Extension to quadratic damping………………. 520 B.4.4 The general model formulated as first-order ODEs . . . 521
B.5 Waveequations………………………………… 522 B.5.1 Linear wave equation in 1D………………….. 522 B.5.2 Finding correction terms ……………………. 524 B.5.3 Extension to variable coefficients ……………… 525 B.5.4 1D wave equation on a staggered mesh …………. 527 B.5.5 Linear wave equation in 2D/3D ………………. 527
B.6 Diffusion equations……………………………… 528 B.6.1 Linear diffusion equation in 1D……………….. 528 B.6.2 Nonlinear diffusion equation in 1D…………….. 530
B.7 Exercises …………………………………….. 531
C Software engineering; wave equation model . . . . . . . . . . 535
C.1 A 1D wave equation simulator …………………….. 535 C.1.1 Mathematical model ……………………….. 535 C.1.2 Numerical discretization…………………….. 535 C.1.3 A solver function ………………………….. 536
C.2 Saving large arrays in files………………………… 539 C.2.1 Using savez to store arrays in files ……………. 540 C.2.2 Using joblib to store arrays in files …………… 541 C.2.3 Using a hash to create a file or directory name …… 542
C.3 Software for the 1D wave equation …………………. 544 C.3.1 Making hash strings from input data…………… 545 C.3.2 Avoiding rerunning previously run cases . . . . . . . . . . . . 546 C.3.3 Verification………………………………. 546
C.4 Programming the solver with classes………………… 548
Contents xxi
C.4.1 Class Problem ……………………………. 548 C.4.2 Class Mesh ………………………………. 548 C.4.3 Class Function ……………………………. 552 C.4.4 Class Solver ……………………………… 554
C.5 Migrating loops to Cython ……………………….. 555 C.5.1 Declaring variables and annotating the code . . . . . . . . 555 C.5.2 Visual inspection of the C translation ………….. 558 C.5.3 Building the extension module ……………….. 559 C.5.4 Calling the Cython function from Python……….. 560
C.6 Migrating loops to Fortran ……………………….. 561 C.6.1 The Fortran subroutine …………………….. 561 C.6.2 Building the Fortran module with f2py …………. 562 C.6.3 How to avoid array copying………………….. 564
C.7 Migrating loops to C via Cython …………………… 566 C.7.1 Translating index pairs to single indices ………… 566 C.7.2 The complete C code ………………………. 567 C.7.3 The Cython interface file ……………………. 568 C.7.4 Building the extension module ……………….. 569
C.8 Migrating loops to C via f2py……………………… 570 C.8.1 Migrating loops to C++ via f2py ……………… 571
C.9 Exercises …………………………………….. 571
References………………………………………. 575 Index…………………………………………… 577
Problem 1.1: Use linear/quadratic functions for verification . . . . . 57 Exercise 1.2: Show linear growth of the phase with time . . . . . . . . 59 Exercise 1.3: Improve the accuracy by adjusting the frequency . . . 59 Exercise 1.4: See if adaptive methods improve the phase error . . . 60 Exercise 1.5: Use a Taylor polynomial to compute u1 ……….. 60 Problem 1.6: Derive and investigate the velocity Verlet method . . 60 Problem 1.7: Find the minimal resolution of an oscillatory function 61 Exercise 1.8: Visualize the accuracy of finite differences for a
cosine function…………………………. 61 Exercise 1.9: Verify convergence rates of the error in energy . . . . . 61 Exercise 1.10: Use linear/quadratic functions for verification . . . . 62 Exercise 1.11: Use an exact discrete solution for verification . . . . . 62 Exercise 1.12: Use analytical solution for convergence rate tests . . 62 Exercise 1.13: Investigate the amplitude errors of many solvers . . 63 Problem 1.14: Minimize memory usage of a simple vibration solver 64 Problem 1.15: Minimize memory usage of a general vibration solver 65 Exercise 1.16: Implement the Euler-Cromer scheme for the
generalized model ………………………. 65 Problem 1.17: Interpret [DtDtu]n as a forward-backward difference 66 Exercise 1.18: Analysis of the Euler-Cromer scheme . . . . . . . . . . . . 66 Exercise 1.19: Implement the solver via classes ……………. 78 Problem 1.20: Use a backward difference for the damping term . . 79 Exercise 1.21: Use the forward-backward scheme with quadratic
damping ……………………………… 79 Exercise 1.22: Simulate resonance ……………………… 104
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
List of Exercises, Problems, and Projects
xxiv List of Exercises, Problems, and Projects
Exercise 1.23: Simulate oscillations of a sliding box . . . . . . . . . . . . 105 Exercise 1.24: Simulate a bouncing ball …………………. 105 Exercise 1.25: Simulate a simple pendulum ………………. 105 Exercise 1.26: Simulate an elastic pendulum ……………… 106 Exercise 1.27: Simulate an elastic pendulum with air resistance . . 107 Exercise 1.28: Implement the PEFRL algorithm …………… 108 Exercise 2.1: Simulate a standing wave ………………….. 145 Exercise 2.2: Add storage of solution in a user action function . . . 146 Exercise 2.3: Use a class for the user action function ……….. 147 Exercise 2.4: Compare several Courant numbers in one movie . . . 147 Exercise 2.5: Implementing the solver function as a generator . . . 147 Project 2.6: Calculus with 1D mesh functions …………….. 148 Exercise 2.7: Find the analytical solution to a damped wave
equation ……………………………… 175 Problem 2.8: Explore symmetry boundary conditions . . . . . . . . . . 176 Exercise 2.9: Send pulse waves through a layered medium . . . . . . . 176 Exercise 2.10: Explain why numerical noise occurs …………. 177 Exercise 2.11: Investigate harmonic averaging in a 1D model . . . . 177 Problem 2.12: Implement open boundary conditions . . . . . . . . . . . 177 Exercise 2.13: Implement periodic boundary conditions . . . . . . . . . 179 Exercise 2.14: Compare discretizations of a Neumann condition . . 180 Exercise 2.15: Verification by a cubic polynomial in space . . . . . . . 181 Exercise 2.16: Check that a solution fulfills the discrete model . . . 214 Project 2.17: Calculus with 2D mesh functions ……………. 215 Exercise 2.18: Implement Neumann conditions in 2D . . . . . . . . . . . 216 Exercise 2.19: Test the efficiency of compiled loops in 3D . . . . . . . 216 Exercise 2.20: Simulate waves on a non-homogeneous string . . . . . 232 Exercise 2.21: Simulate damped waves on a string …………. 232 Exercise 2.22: Simulate elastic waves in a rod …………….. 232 Exercise 2.23: Simulate spherical waves………………….. 233 Problem 2.24: Earthquake-generated tsunami over a subsea hill . . 233 Problem 2.25: Earthquake-generated tsunami over a 3D hill . . . . . 236 Problem 2.26: Investigate Mayavi for visualization . . . . . . . . . . . . . 237 Problem 2.27: Investigate visualization packages . . . . . . . . . . . . . . . 237 Problem 2.28: Implement loops in compiled languages . . . . . . . . . . 238 Exercise 2.29: Simulate seismic waves in 2D………………. 238 Project 2.30: Model 3D acoustic waves in a room ………….. 238 Project 2.31: Solve a 1D transport equation………………. 240 Problem 2.32: General analytical solution of a 1D damped wave
equation ……………………………… 243
List of Exercises, Problems, and Projects xxv
Problem 2.33: General analytical solution of a 2D damped wave equation ……………………………… 245 Exercise 3.1: Explore symmetry in a 1D problem ………….. 289
Exercise 3.2: Investigate approximation errors from a ux = 0 boundary condition……………………… 290 Exercise 3.3: Experiment with open boundary conditions in 1D . . 290 Exercise 3.4: Simulate a diffused Gaussian peak in 2D/3D . . . . . . 291
Exercise 3.5: Examine stability of a diffusion model with a source term…………………………………. 292
Exercise 3.6: Stabilizing the Crank-Nicolson method by Rannacher timestepping………………………….. 376 Project 3.7: Energy estimates for diffusion problems . . . . . . . . . . . 377 Exercise 3.8: Splitting methods and preconditioning . . . . . . . . . . . . 379 Problem 3.9: Oscillating surface temperature of the earth . . . . . . . 380 Problem 3.10: Oscillating and pulsating flow in tubes . . . . . . . . . . 381 Problem 3.11: Scaling a welding problem ………………… 382
Exercise 3.12: Implement a Forward Euler scheme for
axi-symmetric diffusion ………………….. 384
Exercise 4.1: Analyze 1D stationary convection-diffusion problem 418 Exercise 4.2: Interpret upwind difference as artificial diffusion . . . 418 Problem 5.1: Determine if equations are nonlinear or not . . . . . . . 478 Problem 5.2: Derive and investigate a generalized logistic model . 478 Problem 5.3: Experience the behavior of Newton’s method . . . . . . 479 Exercise 5.4: Compute the Jacobian of a 2×2 system………. 480 Problem 5.5: Solve nonlinear equations arising from a vibration
ODE ………………………………… 480 Exercise 5.6: Find the truncation error of arithmetic mean of
products ……………………………… 481 Problem 5.7: Newton’s method for linear problems. . . . . . . . . . . . . 482 Problem 5.8: Discretize a 1D problem with a nonlinear coefficient 482 Problem 5.9: Linearize a 1D problem with a nonlinear coefficient 482 Problem 5.10: Finite differences for the 1D Bratu problem . . . . . . 483 Problem 5.11: Discretize a nonlinear 1D heat conduction PDE by
finite differences………………………… 484 Problem 5.12: Differentiate a highly nonlinear term . . . . . . . . . . . . 484 Exercise 5.13: Crank-Nicolson for a nonlinear 3D diffusion equation 485 Problem 5.14: Find the sparsity of the Jacobian …………… 485 Problem 5.15: Investigate a 1D problem with a continuation method 485 Exercise B.1: Truncation error of a weighted mean…………. 531 Exercise B.2: Simulate the error of a weighted mean ……….. 531
xxvi List of Exercises, Problems, and Projects
Exercise B.3: Verify a truncation error formula ……………. 531 Problem B.4: Truncation error of the Backward Euler scheme . . . 531 Exercise B.5: Empirical estimation of truncation errors . . . . . . . . . 531 Exercise B.6: Correction term for a Backward Euler scheme . . . . . 532 Problem B.7: Verify the effect of correction terms………….. 532 Problem B.8: Truncation error of the Crank-Nicolson scheme . . . . 532 ProblemB.9:Truncationerrorofu′ =f(u,t) …………….. 533 Exercise B.10: Truncation error of [DtDtu]n ……………… 533 Exercise B.11: Investigate the impact of approximating u′(0) . . . . 533 Problem B.12: Investigate the accuracy of a simplified scheme . . . 534 Exercise C.1: Explore computational efficiency of numpy.sum
versus built-in sum ……………………… 571 Exercise C.2: Make an improved numpy.savez function . . . . . . . . . 572 Exercise C.3: Visualize the impact of the Courant number . . . . . . 572 Exercise C.4: Visualize the impact of the resolution ………… 573
Vibration problems lead to differential equations with solutions that oscillate in time, typically in a damped or undamped sinusoidal fash- ion. Such solutions put certain demands on the numerical methods compared to other phenomena whose solutions are monotone or very smooth. Both the frequency and amplitude of the oscillations need to be accurately handled by the numerical schemes. The forthcoming text presents a range of different methods, from classical ones (Runge-Kutta and midpoint/Crank-Nicolson methods), to more modern and popular symplectic (geometric) integration schemes (Leapfrog, Euler-Cromer, and Störmer-Verlet methods), but with a clear emphasis on the latter. Vibration problems occur throughout mechanics and physics, but the methods discussed in this text are also fundamental for constructing successful algorithms for partial differential equations of wave nature in multiple spatial dimensions.
1.1 Finite difference discretization
Many of the numerical challenges faced when computing oscillatory solutions to ODEs and PDEs can be captured by the very simple ODE u′′ + u = 0. This ODE is thus chosen as our starting point for method development, implementation, and analysis.
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Vibration ODEs
1
2 1 Vibration ODEs
1.1.1 A basic model for vibrations
The simplest model of a vibrating mechanical system has the following form:
u′′ +ω2u=0, u(0)=I, u′(0)=0, t∈(0,T]. (1.1)
Here, ω and I are given constants. Section 1.12.1 derives (1.1) from physical principles and explains what the constants mean.
The exact solution of (1.1) is
u(t) = I cos(ωt) . (1.2)
That is, u oscillates with constant amplitude I and angular frequency ω. The corresponding period of oscillations (i.e., the time between two neighboring peaks in the cosine function) is P = 2π/ω. The number of periods per second is f = ω/(2π) and measured in the unit Hz. Both f and ω are referred to as frequency, but ω is more precisely named angular frequency, measured in rad/s.
In vibrating mechanical systems modeled by (1.1), u(t) very often represents a position or a displacement of a particular point in the system. The derivative u′(t) then has the interpretation of velocity, and u′′(t) is the associated acceleration. The model (1.1) is not only applicable to vibrating mechanical systems, but also to oscillations in electrical circuits.
1.1.2 A centered finite difference scheme
To formulate a finite difference method for the model problem (1.1) we follow the four steps explained in Section 1.1.2 in [9].
Step 1: Discretizing the domain. The domain is discretized by intro- ducing a uniformly partitioned time mesh. The points in the mesh are tn = n∆t, n = 0,1,…,Nt, where ∆t = T/Nt is the constant length of the time steps. We introduce a mesh function un for n = 0, 1, . . . , Nt, which approximates the exact solution at the mesh points. (Note that n = 0 is the known initial condition, so un is identical to the mathe- matical u at this point.) The mesh function un will be computed from algebraic equations derived from the differential equation problem.
Step 2: Fulfilling the equation at discrete time points. The ODE is to be satisfied at each mesh point where the solution must be found:
1.1 Finite difference discretization 3
u′′(tn)+ω2u(tn)=0, n=1,…,Nt. (1.3)
Step 3: Replacing derivatives by finite differences. The derivative u′′(tn) is to be replaced by a finite difference approximation. A common second-order accurate approximation to the second-order derivative is
′′ un+1 − 2un + un−1
u (tn) ≈ ∆t2 . (1.4)
Inserting (1.4) in (1.3) yields
un+1 − 2un + un−1
∆t2 = −ω2un . (1.5)
We also need to replace the derivative in the initial condition by a finite difference. Here we choose a centered difference, whose accuracy is similar to the centered difference we used for u′′:
u1 − u−1
2∆t =0. (1.6)
Step 4: Formulating a recursive algorithm. To formulate the compu- tational algorithm, we assume that we have already computed un−1 and un, such that un+1 is the unknown value to be solved for:
un+1 = 2un − un−1 − ∆t2ω2un . (1.7)
The computational algorithm is simply to apply (1.7) successively for n = 1, 2, . . . , Nt − 1. This numerical scheme sometimes goes under the name Störmer’s method, Verlet integration, or the Leapfrog method (one should note that Leapfrog is used for many quite different methods for quite different differential equations!).
Computing the first step. We observe that (1.7) cannot be used for n = 0 since the computation of u1 then involves the undefined value u−1 at t = −∆t. The discretization of the initial condition then comes to our rescue: (1.6) implies u−1 = u1 and this relation can be combined with
(1.7) for n = 0 to yield a value for u1:
u1 = 2u0 − u1 − ∆t2ω2u0,
which reduces to
u1 = u0 − 1∆t2ω2u0 . (1.8) 2
4 1 Vibration ODEs
Exercise 1.5 asks you to perform an alternative derivation and also to generalize the initial condition to u′(0) = V ̸= 0.
The computational algorithm. The steps for solving (1.1) become
1. u0 = I
2. compute u1 from (1.8)
3. forn=1,2,…,Nt−1:computeun+1 from(1.7)
The algorithm is more precisely expressed directly in Python:
t = linspace(0, T, Nt+1) # mesh points in time
dt = t[1] – t[0] # constant time step
u = zeros(Nt+1) # solution
u[0] = I
u[1] = u[0] – 0.5*dt**2*w**2*u[0]
for n in range(1, Nt):
u[n+1] = 2*u[n] – u[n-1] – dt**2*w**2*u[n]
Remark on using w for ω in computer code
In the code, we use w as the symbol for ω. The reason is that the au- thors prefer w for readability and comparison with the mathematical ω instead of the full word omega as variable name.
Operator notation. We may write the scheme using a compact difference notation listed in Appendix A.1 (see also Section 1.1.8 in [9]). The difference (1.4) has the operator notation [DtDtu]n such that we can write:
[DtDtu + ω2u = 0]n . (1.9) Note that [DtDtu]n means applying a central difference with step ∆t/2
twice:
n+1 n−1 [Dt(Dtu)]n = [Dtu] 2 − [Dtu] 2
∆t
which is written out as
1 un+1 −un un −un−1 un+1 −2un +un−1
∆t ∆t − ∆t = ∆t2 .
1.2 Implementation 5
The discretization of initial conditions can in the operator notation be expressed as
[u = I]0, [D2tu = 0]0, where the operator [D2tu]n is defined as
n un+1 − un−1
(1.10)
(1.11)
[D2tu] =
1.2 Implementation
1.2.1 Making a solver function
2∆t .
The algorithm from the previous section is readily translated to a com- plete Python function for computing and returning u0, u1, . . . , uNt and t0,t1,…,tNt, given the input I, ω, ∆t, and T:
import numpy as np
import matplotlib.pyplot as plt
def solver(I, w, dt, T):
“””
Solve u’’ + w**2*u = 0 for t in (0,T], u(0)=I and u’(0)=0,
by a central finite difference method with time step dt.
“””
dt = float(dt)
Nt = int(round(T/dt))
u = np.zeros(Nt+1)
t = np.linspace(0, Nt*dt, Nt+1)
u[0] = I
u[1] = u[0] – 0.5*dt**2*w**2*u[0]
for n in range(1, Nt):
u[n+1] = 2*u[n] – u[n-1] – dt**2*w**2*u[n]
return u, t
We have imported numpy and matplotlib under the names np and plt, respectively, as this is very common in the Python scientific computing community and a good programming habit (since we explicitly see where the different functions come from). An alternative is to do from numpy import * and a similar “import all” for Matplotlib to avoid the np and plt prefixes and make the code as close as possible to MATLAB. (See Section 5.1.4 in [9] for a discussion of the two types of import in Python.)
A function for plotting the numerical and the exact solution is also convenient to have:
6 1 Vibration ODEs
def u_exact(t, I, w):
return I*np.cos(w*t)
def visualize(u, t, I, w):
plt.plot(t, u, ’r–o’)
t_fine = np.linspace(0, t[-1], 1001) # very fine mesh for u_e
u_e = u_exact(t_fine, I, w)
plt.hold(’on’)
plt.plot(t_fine, u_e, ’b-’)
plt.legend([’numerical’, ’exact’], loc=’upper left’)
plt.xlabel(’t’)
plt.ylabel(’u’)
dt = t[1] – t[0]
plt.title(’dt=%g’ % dt)
umin = 1.2*u.min(); umax = -umin
plt.axis([t[0], t[-1], umin, umax])
plt.savefig(’tmp1.png’); plt.savefig(’tmp1.pdf’)
A corresponding main program calling these functions to simulate a given number of periods (num_periods) may take the form
Adjusting some of the input parameters via the command line can be handy. Here is a code segment using the ArgumentParser tool in the argparse module to define option value (–option value) pairs on the command line:
Such parsing of the command line is explained in more detail in Sec- tion 5.2.3 in [9].
A typical execution goes like
Terminal> python vib_undamped.py –num_periods 20 –dt 0.1
I=1
w = 2*pi
dt = 0.05
num_periods = 5
P = 2*pi/w # one period T = P*num_periods
u, t = solver(I, w, dt, T) visualize(u, t, I, w, dt)
import argparse
parser = argparse.ArgumentParser()
parser.add_argument(’–I’, type=float, default=1.0)
parser.add_argument(’–w’, type=float, default=2*pi)
parser.add_argument(’–dt’, type=float, default=0.05)
parser.add_argument(’–num_periods’, type=int, default=5)
a = parser.parse_args()
I, w, dt, num_periods = a.I, a.w, a.dt, a.num_periods
Terminal
1.2 Implementation 7
Computing u′. In mechanical vibration applications one is often inter- ested in computing the velocity v(t) = u′(t) after u(t) has been computed. This can be done by a central difference,
un+1 − un−1
v(tn) = u′(tn) ≈ vn = 2∆t = [D2tu]n . (1.12)
This formula applies for all inner mesh points, n = 1, . . . , Nt − 1. For n = 0, v(0) is given by the initial condition on u′(0), and for n = Nt we can use a one-sided, backward difference:
n −nun−un−1 v = [Dt u] = ∆t
Typical (scalar) code is
.
v = np.zeros_like(u) # or v = np.zeros(len(u))
# Use central difference for internal points
for i in range(1, len(u)-1):
v[i] = (u[i+1] – u[i-1])/(2*dt)
# Use initial condition for u’(0) when i=0
v[0] = 0
# Use backward difference at the final mesh point
v[-1] = (u[-1] – u[-2])/dt
Since the loop is slow for large Nt, we can get rid of the loop by vectorizing the central difference. The above code segment goes as follows in its vectorized version (see Problem 1.2 in [9] for explanation of details):
1.2.2 Verification
Manual calculation. The simplest type of verification, which is also instructive for understanding the algorithm, is to compute u1, u2, and u3 with the aid of a calculator and make a function for comparing these results with those from the solver function. The test_three_steps function in the file vib_undamped.py shows the details of how we use the hand calculations to test the code:
v = np.zeros_like(u)
v[1:-1] = (u[2:] – u[:-2])/(2*dt) # central difference
v[0] = 0 # boundary condition u’(0)
v[-1] = (u[-1] – u[-2])/dt # backward difference
def test_three_steps():
from math import pi
I=1; w=2*pi; dt=0.1; T=1 u_by_hand = np.array([1.000000000000000,
8 1 Vibration ODEs
0.802607911978213,
0.288358920740053])
u, t = solver(I, w, dt, T)
diff = np.abs(u_by_hand – u[:3]).max()
tol = 1E-14
assert diff < tol
This function is a proper test function, compliant with the pytest and nose testing framework for Python code, because
• the function name begins with test_
• the function takes no arguments
• the test is formulated as a boolean condition and executed by assert
We shall in this book implement all software verification via such proper test functions, also known as unit testing. See Section 5.3.2 in [9] for more details on how to construct test functions and utilize nose or pytest for automatic execution of tests. Our recommendation is to use pytest. With this choice, you can run all test functions in vib_undamped.py by
Terminal> py.test -s -v vib_undamped.py
============================= test session starts ======…
platform linux2 — Python 2.7.9 — …
collected 2 items
vib_undamped.py::test_three_steps PASSED
vib_undamped.py::test_convergence_rates PASSED
=========================== 2 passed in 0.19 seconds ===…
Testing very simple polynomial solutions. Constructing test problems where the exact solution is constant or linear helps initial debugging and verification as one expects any reasonable numerical method to reproduce such solutions to machine precision. Second-order accurate methods will often also reproduce a quadratic solution. Here [DtDtt2]n = 2, which is the exact result. A solution u = t2 leads to u′′ +ω2u = 2+(ωt)2 ̸= 0. We must therefore add a source in the equation: u′′ + ω2u = f to allow a solution u = t2 for f = 2 + (ωt)2. By simple insertion we can show that the mesh function un = t2n is also a solution of the discrete equations. Problem 1.1 asks you to carry out all details to show that linear and quadratic solutions are solutions of the discrete equations. Such results are very useful for debugging and verification. You are strongly encouraged to do this problem now!
Checking convergence rates. Empirical computation of convergence rates yields a good method for verification. The method and its compu-
Terminal
1.2 Implementation 9
tational details are explained in detail in Section 3.1.6 in [9]. Readers not familiar with the concept should look up this reference before proceeding.
In the present problem, computing convergence rates means that we must
• perform m simulations, halving the time steps as: ∆ti = 2−i∆t0, i=1,…,m−1,and∆ti isthetimestepusedinsimulationi;
• compute the L2 norm of the error, E = ∆t Nt−1(un − u (t ))2 i in=0 en
in each case;
• estimate the convergence rates ri based on two consecutive exper-
iments (∆ti−1, Ei−1) and (∆ti, Ei), assuming Ei = C(∆ti)r and Ei−1 = C(∆ti−1)r. From these equations it follows that r = ln(Ei−1/Ei)/ln(∆ti−1/∆ti). Since this r will vary with i, we equip it with an index and call it ri−1, where i runs from 1 to m − 1.
The computed rates r0, r1, . . . , rm−2 hopefully converge to the number 2 in the present problem, because theory (from Section 1.4) shows that the error of the numerical method we use behaves like ∆t2. The convergence
of the sequence r0, r1, . . . , rm−2 demands that the time steps ∆ti are sufficiently small for the error model Ei = C(∆ti)r to be valid.
All the implementational details of computing the sequence r0,r1,…,rm−2 appearbelow.
def convergence_rates(m, solver_function, num_periods=8):
“””
Return m-1 empirical estimates of the convergence rate
based on m simulations, where the time step is halved
for each simulation.
solver_function(I, w, dt, T) solves each problem, where T
is based on simulation for num_periods periods.
“””
from math import pi
w = 0.35; I = 0.3
P = 2*pi/w
dt = P/30
T = P*num_periods
dt_values = []
E_values = []
for i in range(m):
# just chosen values
# period
# 30 time step per period 2*pi/w
u, t = solver_function(I, w, dt, T)
u_e = u_exact(t, I, w)
E = np.sqrt(dt*np.sum((u_e-u)**2))
dt_values.append(dt)
E_values.append(E)
dt = dt/2
10 1 Vibration ODEs
r = [np.log(E_values[i-1]/E_values[i])/
np.log(dt_values[i-1]/dt_values[i])
for i in range(1, m, 1)]
return r, E_values, dt_values
The error analysis in Section 1.4 is quite detailed and suggests that r = 2. It is also a intuitively reasonable result, since we used a second- order accurate finite difference approximation [DtDtu]n to the ODE and a second-order accurate finite difference formula for the initial condition for u′.
In the present problem, when ∆t0 corresponds to 30 time steps per period, the returned r list has all its values equal to 2.00 (if rounded to two decimals). This amazingly accurate result means that all ∆ti values are well into the asymptotic regime where the error model Ei = C(∆ti)r is valid.
We can now construct a proper test function that computes conver- gence rates and checks that the final (and usually the best) estimate is sufficiently close to 2. Here, a rough tolerance of 0.1 is enough. This unit test goes like
def test_convergence_rates():
r, E, dt = convergence_rates(
m=5, solver_function=solver, num_periods=8)
# Accept rate to 1 decimal place
tol = 0.1
assert abs(r[-1] – 2.0) < tol
# Test that adjusted w obtains 4th order convergence
r, E, dt = convergence_rates(
m=5, solver_function=solver_adjust_w, num_periods=8)
print ’adjust w rates:’, r
assert abs(r[-1] - 4.0) < tol
The complete code appears in the file vib_undamped.py.
Visualizing convergence rates with slope markers. Tony S. Yu has written a script plotslopes.py that is very useful to indicate the slope of a graph, especially a graph like ln E = r ln ∆t + ln C arising from the model E = C∆tr. A copy of the script resides in the src/vib directory. Let us use it to compare the original method for u′′ + ω2u = 0 with the same method applied to the equation with a modified ω. We make log-log plots of the error versus ∆t. For each curve we attach a slope marker us- ing the slope_marker((x,y), r) function from plotslopes.py, where (x,y) is the position of the marker and r and the slope ((r,1)), here (2,1) and (4,1).
def plot_convergence_rates():
r2, E2, dt2 = convergence_rates(
1.2 Implementation 11
m=5, solver_function=solver, num_periods=8)
plt.loglog(dt2, E2)
r4, E4, dt4 = convergence_rates(
m=5, solver_function=solver_adjust_w, num_periods=8)
plt.loglog(dt4, E4)
plt.legend([’original scheme’, r’adjusted $\omega$’],
loc=’upper left’)
plt.title(’Convergence of finite difference methods’)
from plotslopes import slope_marker
slope_marker((dt2[1], E2[1]), (2,1))
slope_marker((dt4[1], E4[1]), (4,1))
Figure 1.1 displays the two curves with the markers. The match of the curve slope and the marker slope is excellent.
100 Convergence of finite difference methods
10-1 10-2 10-3 10-4 10-5 10-6 10-7 10-8
10-9
10-2 10-1 100
original scheme adjusted ω
2 1
4 1
Fig. 1.1 Empirical convergence rate curves with special slope marker.
1.2.3 Scaled model
It is advantageous to use dimensionless variables in simulations, because fewer parameters need to be set. The present problem is made dimen- sionless by introducing dimensionless variables t ̄ = t/tc and u ̄ = u/uc, where tc and uc are characteristic scales for t and u, respectively. We refer to Section 2.2.1 in [11] for all details about this scaling.
The scaled ODE problem reads
ucd2u ̄+ucu ̄=0, ucu ̄(0)=I, ucdu ̄(0)=0.
̄ ̄
t2c dt2 tc dt
12 1 Vibration ODEs
A common choice is to take tc as one period of the oscillations, tc = 2π/w, and uc = I. This gives the dimensionless model
d2u ̄ + 4π2u ̄ = 0, u ̄(0) = 1, u ̄′(0) = 0 . (1.13) dt ̄2
Observe that there are no physical parameters in (1.13)! We can therefore ̄
perform a single numerical simulation u ̄(t) and afterwards recover any u(t;ω,I) by
u(t; ω, I) = ucu ̄(t/tc) = Iu ̄(ωt/(2π)) .
We can easily check this assertion: the solution of the scaled problem
̄ ̄
is u ̄(t) = cos(2πt). The formula for u in terms of u ̄ gives u = I cos(ωt),
which is nothing but the solution of the original problem with dimensions. The scaled model can by run by calling solver(I=1, w=2*pi, dt, T). Each period is now 1 and T simply counts the number of periods.
Choosing dt as 1./M gives M time steps per period.
1.3 Visualization of long time simulations
Figure 1.2 shows a comparison of the exact and numerical solution for the scaled model (1.13) with ∆t = 0.1, 0.05. From the plot we make the following observations:
• The numerical solution seems to have correct amplitude.
• There is an angular frequency error which is reduced by decreasing
the time step.
• The total angular frequency error grows with time.
By angular frequency error we mean that the numerical angular frequency differs from the exact ω. This is evident by looking at the peaks of the numerical solution: these have incorrect positions compared with the peaks of the exact cosine solution. The effect can be mathematically expressed by writing the numerical solution as I cos ω ̃ t, where ω ̃ is not exactly equal to ω. Later, we shall mathematically quantify this numerical angular frequency ω ̃.
1.3 Visualization of long time simulations 13
dt=0.1
numerical exact
1.0
0.5
0.0
0.5
1.0
012345 t
dt=0.05
1.0
0.5
0.0
0.5
1.0
numerical exact
012345 t
Fig. 1.2 Effect of halving the time step.
1.3.1 Using a moving plot window
In vibration problems it is often of interest to investigate the system’s behavior over long time intervals. Errors in the angular frequency accu- mulate and become more visible as time grows. We can investigate long time series by introducing a moving plot window that can move along with the p most recently computed periods of the solution. The SciTools package contains a convenient tool for this: MovingPlotWindow. Typing pydoc scitools.MovingPlotWindow shows a demo and a description of its use. The function below utilizes the moving plot window and is in fact called by the main function in the vib_undamped module if the number of periods in the simulation exceeds 10.
def visualize_front(u, t, I, w, savefig=False, skip_frames=1):
"""
Visualize u and the exact solution vs t, using a
moving plot window and continuous drawing of the
curves as they evolve in time.
Makes it easy to plot very long time series.
Plots are saved to files if savefig is True.
Only each skip_frames-th plot is saved (e.g., if
skip_frame=10, only each 10th plot is saved to file;
this is convenient if plot files corresponding to
different time steps are to be compared).
"""
import scitools.std as st
from scitools.MovingPlotWindow import MovingPlotWindow
from math import pi
# Remove all old plot files tmp_*.png
import glob, os
for filename in glob.glob(’tmp_*.png’):
os.remove(filename)
P = 2*pi/w # one period
u
u
14 1 Vibration ODEs
umin = 1.2*u.min(); umax = -umin
dt = t[1] - t[0]
plot_manager = MovingPlotWindow(
window_width=8*P,
dt=dt,
yaxis=[umin, umax],
mode=’continuous drawing’)
frame_counter = 0
for n in range(1,len(u)):
if plot_manager.plot(n):
s = plot_manager.first_index_in_plot
st.plot(t[s:n+1], u[s:n+1], ’r-1’,
t[s:n+1], I*cos(w*t)[s:n+1], ’b-1’,
title=’t=%6.3f’ % t[n],
axis=plot_manager.axis(),
show=not savefig) # drop window if savefig
if savefig and n % skip_frames == 0:
filename = ’tmp_%04d.png’ % frame_counter
st.savefig(filename)
print ’making plot file’, filename, ’at t=%g’ % t[n]
frame_counter += 1
plot_manager.update(n)
We run the scaled problem (the default values for the command-line arguments –I and –w correspond to the scaled problem) for 40 periods with 20 time steps per period:
Terminal> python vib_undamped.py –dt 0.05 –num_periods 40
The moving plot window is invoked, and we can follow the numerical and exact solutions as time progresses. From this demo we see that the angular frequency error is small in the beginning, and that it becomes more prominent with time. A new run with ∆t = 0.1 (i.e., only 10 time steps per period) clearly shows that the phase errors become significant even earlier in the time series, deteriorating the solution further.
1.3.2 Making animations
Producing standard video formats. The visualize_front function stores all the plots in files whose names are numbered: tmp_0000.png, tmp_0001.png, tmp_0002.png, and so on. From these files we may make a movie. The Flash format is popular,
Terminal> ffmpeg -r 25 -i tmp_%04d.png -c:v flv movie.flv
Terminal
Terminal
1.3 Visualization of long time simulations 15
The ffmpeg program can be replaced by the avconv program in the above command if desired (but at the time of this writing it seems to be more momentum in the ffmpeg project). The -r option should come first and describes the number of frames per second in the movie (even if we would like to have slow movies, keep this number as large as 25, otherwise files are skipped from the movie). The -i option describes the name of the plot files. Other formats can be generated by changing the video codec and equipping the video file with the right extension:
Format Codec and filename Flash -c:v flv movie.flv
MP4 -c:v libx264 movie.mp4 WebM -c:v libvpx movie.webm Ogg -c:v libtheora movie.ogg
The video file can be played by some video player like vlc, mplayer, gxine, or totem, e.g.,
Terminal> vlc movie.webm
A web page can also be used to play the movie. Today’s standard is to use the HTML5 video tag:
Modern browsers do not support all of the video formats. MP4 is needed to successfully play the videos on Apple devices that use the Safari browser. WebM is the preferred format for Chrome, Opera, Firefox, and Internet Explorer v9+. Flash was a popular format, but older browsers that required Flash can play MP4. All browsers that work with Ogg can also work with WebM. This means that to have a video work in all browsers, the video should be available in the MP4 and WebM formats. The proper HTML code reads
Terminal
16 1 Vibration ODEs
The MP4 format should appear first to ensure that Apple devices will load the video correctly.
Caution: number the plot files correctly
To ensure that the individual plot frames are shown in correct order, it is important to number the files with zero-padded numbers (0000, 0001, 0002, etc.). The printf format %04d specifies an integer in a field of width 4, padded with zeros from the left. A simple Unix wildcard file specification like tmp_*.png will then list the frames in the right order. If the numbers in the filenames were not zero- padded, the frame tmp_11.png would appear before tmp_2.png in the movie.
Playing PNG files in a web browser. The scitools movie command can create a movie player for a set of PNG files such that a web browser can be used to watch the movie. This interface has the advantage that the speed of the movie can easily be controlled, a feature that scientists often appreciate. The command for creating an HTML with a player for a set of PNG files tmp_*.png goes like
Terminal> scitools movie output_file=vib.html fps=4 tmp_*.png
The fps argument controls the speed of the movie (“frames per second”). To watch the movie, load the video file vib.html into some browser,
e.g.,
Terminal> google-chrome vib.html # invoke web page
Clicking on Start movie to see the result. Moving this movie to some other place requires moving vib.html and all the PNG files tmp_*.png:
Terminal> mkdir vib_dt0.1
Terminal> mv tmp_*.png vib_dt0.1
Terminal> mv vib.html vib_dt0.1/index.html
Making animated GIF files. The convert program from the ImageMag- ick software suite can be used to produce animated GIF files from a set of PNG files:
Terminal
Terminal
Terminal
1.3 Visualization of long time simulations 17
Terminal
Terminal> convert -delay 25 tmp_vib*.png tmp_vib.gif
The -delay option needs an argument of the delay between each frame, measured in 1/100 s, so 4 frames/s here gives 25/100 s delay. Note, however, that in this particular example with ∆t = 0.05 and 40 periods, making an animated GIF file out of the large number of PNG files is a very heavy process and not considered feasible. Animated GIFs are best suited for animations with not so many frames and where you want to see each frame and play them slowly.
1.3.3 Using Bokeh to compare graphs
Instead of a moving plot frame, one can use tools that allow panning by the mouse. For example, we can show four periods of several signals in several plots and then scroll with the mouse through the rest of the simulation simultaneously in all the plot windows. The Bokeh plotting library offers such tools, but the plots must be displayed in a web browser. The documentation of Bokeh is excellent, so here we just show how the library can be used to compare a set of u curves corresponding to long time simulations. (By the way, the guidance to correct pronunciation of Bokeh in the documentation and on Wikipedia is not directly compatible with a YouTube video…).
Imagine we have performed experiments for a set of ∆t values. We want each curve, together with the exact solution, to appear in a plot, and then arrange all plots in a grid-like fashion:
18 1 Vibration ODEs
Furthermore, we want the axes to couple such that if we move into the future in one plot, all the other plots follows (note the displaced t axes!):
A function for creating a Bokeh plot, given a list of u arrays and corresponding t arrays, is implemented below. The code combines data fro different simulations, described compactly in a list of strings legends.
def bokeh_plot(u, t, legends, I, w, t_range, filename):
“””
Make plots for u vs t using the Bokeh library.
u and t are lists (several experiments can be compared).
1.3 Visualization of long time simulations 19
legens contain legend strings for the various u,t pairs.
“””
if not isinstance(u, (list,tuple)):
u=[u] #wrapinlist
if not isinstance(t, (list,tuple)):
t=[t] #wrapinlist
if not isinstance(legends, (list,tuple)):
legends = [legends] # wrap in list
import bokeh.plotting as plt
plt.output_file(filename, mode=’cdn’, title=’Comparison’)
# Assume that all t arrays have the same range
t_fine = np.linspace(0, t[0][-1], 1001) # fine mesh for u_e
tools = ’pan,wheel_zoom,box_zoom,reset,’\
’save,box_select,lasso_select’
u_range = [-1.2*I, 1.2*I]
font_size = ’8pt’
p = [] # list of plot objects
# Make the first figure
p_ = plt.figure(
width=300, plot_height=250, title=legends[0],
x_axis_label=’t’, y_axis_label=’u’,
x_range=t_range, y_range=u_range, tools=tools,
title_text_font_size=font_size)
p_.xaxis.axis_label_text_font_size=font_size
p_.yaxis.axis_label_text_font_size=font_size
p_.line(t[0], u[0], line_color=’blue’)
# Add exact solution
u_e = u_exact(t_fine, I, w)
p_.line(t_fine, u_e, line_color=’red’, line_dash=’4 4’)
p.append(p_)
# Make the rest of the figures and attach their axes to
# the first figure’s axes
for i in range(1, len(t)):
p_ = plt.figure(
width=300, plot_height=250, title=legends[i],
x_axis_label=’t’, y_axis_label=’u’,
x_range=p[0].x_range, y_range=p[0].y_range, tools=tools,
title_text_font_size=font_size)
p_.xaxis.axis_label_text_font_size = font_size
p_.yaxis.axis_label_text_font_size = font_size
p_.line(t[i], u[i], line_color=’blue’)
p_.line(t_fine, u_e, line_color=’red’, line_dash=’4 4’)
p.append(p_)
# Arrange all plots in a grid with 3 plots per row
grid = [[]]
for i, p_ in enumerate(p):
grid[-1].append(p_)
if (i+1) % 3 == 0:
# New row
grid.append([])
plot = plt.gridplot(grid, toolbar_location=’left’)
plt.save(plot)
20
1 Vibration ODEs
plt.show(plot)
A particular example using the bokeh_plot function appears below.
def demo_bokeh():
“””Solve a scaled ODE u’’ + u = 0.”””
from math import pi
w = 1.0 # Scaled problem (frequency)
P = 2*np.pi/w # Period
num_steps_per_period = [5, 10, 20, 40, 80]
T = 40*P
u = []
t = []
legends = []
for n in num_steps_per_period:
# Simulation time: 40 periods
# List of numerical solutions
# List of corresponding meshes
dt = P/n
u_, t_ = solver(I=1, w=w, dt=dt, T=T)
u.append(u_)
t.append(t_)
legends.append(’# time steps per period: %d’ % n)
bokeh_plot(u, t, legends, I=1, w=w, t_range=[0, 4*P],
filename=’tmp.html’)
1.3.4 Using a line-by-line ascii plotter
Plotting functions vertically, line by line, in the terminal window us- ing ascii characters only is a simple, fast, and convenient visualization technique for long time series. Note that the time axis then is positive downwards on the screen, so we can let the solution be visualized “for- ever”. The tool scitools.avplotter.Plotter makes it easy to create such plots:
def visualize_front_ascii(u, t, I, w, fps=10):
“””
Plot u and the exact solution vs t line by line in a
terminal window (only using ascii characters).
Makes it easy to plot very long time series.
“””
from scitools.avplotter import Plotter
import time
from math import pi
P = 2*pi/w
umin = 1.2*u.min(); umax = -umin
p = Plotter(ymin=umin, ymax=umax, width=60, symbols=’+o’)
for n in range(len(u)):
print p.plot(t[n], u[n], I*cos(w*t[n])), \
’%.1f’ % (t[n]/P)
time.sleep(1/float(fps))
1.3 Visualization of long time simulations 21
The call p.plot returns a line of text, with the t axis marked and a symbol + for the first function (u) and o for the second function (the exact solution). Here we append to this text a time counter reflecting how many periods the current time point corresponds to. A typical output
(ω = 2π, ∆t = 0.05) looks like this:
+| +o| +o| +o | +o| o+ | o+ | o+| o+|
14.2
14.3
14.4
14.4
14.5
14.5
14.6
14.6
14.7
14.7
| o+ 14.0 | +o 14.0 | +o14.1 | +o 14.1 |+o 14.2
+| o 14.2
o |+
|+ 14.8 |o+ 14.8 | o+ 14.9 | o+14.9 | o+ 15.0
1.3.5 Empirical analysis of the solution
For oscillating functions like those in Figure 1.2 we may compute the amplitude and frequency (or period) empirically. That is, we run through the discrete solution points (tn,un) and find all maxima and minima points. The distance between two consecutive maxima (or minima) points can be used as estimate of the local period, while half the difference between the u value at a maximum and a nearby minimum gives an estimate of the local amplitude.
The local maxima are the points where
un−1
and the local minima are recognized by
un−1 >un
maxima.append((t[n], u[n]))
return minima, maxima
Note that the two returned objects are lists of tuples.
Let (ti,ei), i = 0,…,M − 1, be the sequence of all the M maxima
points, where ti is the time value and ei the corresponding u value. The local period can be defined as pi = ti+1 − ti. With Python syntax this reads
The list p created by a list comprehension is converted to an array since we probably want to compute with it, e.g., find the corresponding frequencies 2*pi/p.
Having the minima and the maxima, the local amplitude can be calculated as the difference between two neighboring minimum and maximum points:
The code segments are found in the file vib_empirical_analysis.py. Since a[i] and p[i] correspond to the i-th amplitude estimate and the i-th period estimate, respectively, it is most convenient to visualize the a and p values with the index i on the horizontal axis. (There is no unique time point associated with either of these estimate since values
at two different time points were used in the computations.)
In the analysis of very long time series, it is advantageous to compute and plot p and a instead of u to get an impression of the development of the oscillations. Let us do this for the scaled problem and ∆t =
0.1, 0.05, 0.01. A ready-made function plot_empirical_freq_and_amplitude(u, t, I, w)
computes the empirical amplitudes and periods, and creates a plot where the amplitudes and angular frequencies are visualized together with the
def periods(maxima):
p = [extrema[n][0] – maxima[n-1][0]
for n in range(1, len(maxima))]
return np.array(p)
def amplitudes(minima, maxima):
a = [(abs(maxima[n][1] – minima[n][1]))/2.0
for n in range(min(len(minima),len(maxima)))]
return np.array(a)
1.4 Analysis of the numerical scheme 23
exact amplitude I and the exact angular frequency w. We can make a little program for creating the plot:
from vib_undamped import solver, plot_empirical_freq_and_amplitude
from math import pi
dt_values = [0.1, 0.05, 0.01]
u_cases = []
t_cases = []
for dt in dt_values:
# Simulate scaled problem for 40 periods
u, t = solver(I=1, w=2*pi, dt=dt, T=40)
u_cases.append(u)
t_cases.append(t)
plot_empirical_freq_and_amplitude(u_cases, t_cases, I=1, w=2*pi)
Figure 1.3 shows the result: we clearly see that lowering ∆t improves the angular frequency significantly, while the amplitude seems to be more accurate. The lines with ∆t = 0.01, corresponding to 100 steps per period, can hardly be distinguished from the exact values. The next section shows how we can get mathematical insight into why amplitudes are good while frequencies are more inaccurate.
7.5
7.0
6.5
6.0
5.5
0 5 10 15 20 25 30 35
frequency, case1 frequency, case2 frequency, case3 exact frequency
amplitude, case1 amplitude, case2 amplitude, case3 exact amplitude
Fig. 1.3
steps.
1.20 1.15 1.10 1.05 1.00 0.95 0.90 0.85 0.80
0 5 10 15 20 25 30 35
Empirical angular frequency (left) and amplitude (right) for three different time
1.4 Analysis of the numerical scheme
1.4.1 Deriving a solution of the numerical scheme
After having seen the phase error grow with time in the previous section, we shall now quantify this error through mathematical analysis. The key tool in the analysis will be to establish an exact solution of the discrete
24 1 Vibration ODEs
equations. The difference equation (1.7) has constant coefficients and is homogeneous. Such equations are known to have solutions on the form un = CAn, where A is some number to be determined from the difference equation and C is found as the initial condition (C = I). Recall that n in un is a superscript labeling the time level, while n in An is an exponent.
With oscillating functions as solutions, the algebra will be considerably simplified if we seek an A on the form
A = eiω ̃∆t,
and solve for the numerical frequency ω ̃ rather than A. Note that i = √−1 is the imaginary unit. (Using a complex exponential function gives simpler arithmetics than working with a sine or cosine function.) We have
An = eiω ̃∆t n = eiω ̃tn = cos(ω ̃tn) + i sin(ω ̃tn) .
The physically relevant numerical solution can be taken as the real part of this complex expression.
The calculations go as
[DtDtu]n = un+1 − 2un + un−1
∆t2
=IAn+1 −2An +An−1
∆t2
= I (eiω ̃(tn+∆t) − 2eiω ̃tn + eiω ̃(tn−∆t))
∆t2
= Ieiω ̃tn
= Ieiω ̃tn
= Ieiω ̃tn
1
∆t2 2
∆t2 2
eiω ̃∆t + eiω ̃(−∆t) − 2 (cosh(iω ̃∆t) − 1)
(cos(ω ̃∆t) − 1) sin2(ω ̃∆t)
= −Ieiω ̃tn 4
∆t2
∆t2 2
The last line follows from the relation cos x − 1 = −2 sin2(x/2) (try cos(x)-1 in wolframalpha.com to see the formula).
The scheme (1.7) with un = Ieiω ̃∆tn inserted now gives
− Ieiω ̃tn 4 sin2(ω ̃∆t) + ω2Ieiω ̃tn = 0, (1.16) ∆t2 2
1.4 Analysis of the numerical scheme 25
which after dividing by Ieiω ̃tn results in
4 sin2(ω ̃∆t) = ω2 . (1.17)
∆t2 2
The first step in solving for the unknown ω ̃ is
2ω ̃∆t ω∆t2 sin(2)= 2 .
Then, taking the square root, applying the inverse sine function, and multiplying by 2/∆t, results in
2 −1 ω∆t
ω ̃ = ±∆t sin 2 . (1.18)
1.4.2 The error in the numerical frequency
The first observation of (1.18) tells that there is a phase error since the numerical frequency ω ̃ never equals the exact frequency ω. But how good is the approximation (1.18)? That is, what is the error ω − ω ̃ or ω ̃/ω? Taylor series expansion for small ∆t may give an expression that is easier to understand than the complicated function in (1.18):
This means that
122 4
ω ̃=ω 1+24ω∆t +O(∆t). (1.19)
The error in the numerical frequency is of second-order in ∆t, and the error vanishes as ∆t → 0. We see that ω ̃ > ω since the term ω3∆t2/24 > 0 and this is by far the biggest term in the series expansion for small ω∆t. A numerical frequency that is too large gives an oscillating curve that oscillates too fast and therefore “lags behind” the exact oscillations, a feature that can be seen in the left plot in Figure 1.2.
Figure 1.4 plots the discrete frequency (1.18) and its approximation (1.19) for ω = 1 (based on the program vib_plot_freq.py). Although ω ̃ is a function of ∆t in (1.19), it is misleading to think of ∆t as the
>>> from sympy import *
>>> dt, w = symbols(’dt w’)
>>> w_tilde_e = 2/dt*asin(w*dt/2)
>>> w_tilde_series = w_tilde_e.series(dt, 0, 4)
>>> print w_tilde_series
w + dt**2*w**3/24 + O(dt**4)
26 1 Vibration ODEs
important discretization parameter. It is the product ω∆t that is the key discretization parameter. This quantity reflects the number of time steps per period of the oscillations. To see this, we set P = NP ∆t, where P is thelengthofaperiod,andNP isthenumberoftimestepsduringaperiod. Since P and ω are related by P = 2π/ω, we get that ω∆t = 2π/NP, which shows that ω∆t is directly related to NP .
The plot shows that at least NP ∼ 25 − 30 points per period are necessary for reasonable accuracy, but this depends on the length of the simulation (T ) as the total phase error due to the frequency error grows linearly with time (see Exercise 1.2).
1.6
1.5
1.4
1.3
1.2
1.1
1.00 5 10 15 20 25 30 35 no of time steps per period
exact discrete frequency 2nd-order expansion
Fig. 1.4 Exact discrete frequency and its second-order series expansion.
1.4.3 Empirical convergence rates and adjusted ω The expression (1.19) suggest that adjusting omega to
1 2 2 ω 1−24ω∆t ,
could have effect on the convergence rate of the global error in u (cf. Sec- tion 1.2.2). With the convergence_rates function in vib_undamped.py
numerical frequency
1.4 Analysis of the numerical scheme 27
we can easily check this. A special solver, with adjusted w, is available as the function solver_adjust_w. A call to convergence_rates with this solver reveals that the rate is 4.0! With the original, physical ω the rate is 2.0 – as expected from using second-order finite difference approxi- mations, as expected from the forthcoming derivation of the global error, and as expected from truncation error analysis analysis as explained in Appendix B.4.1.
Adjusting ω is an ideal trick for this simple problem, but when adding damping and nonlinear terms, we have no simple formula for the impact on ω, and therefore we cannot use the trick.
1.4.4 Exact discrete solution
Perhaps more important than the ω ̃ = ω + O(∆t2) result found above is the fact that we have an exact discrete solution of the problem:
(1.20)
(1.21)
n 2 −1 ω∆t
u = I cos (ω ̃n∆t) , ω ̃ = ∆t sin We can then compute the error mesh function
2 . en =ue(tn)−un =Icos(ωn∆t)−Icos(ω ̃n∆t).
From the formula cos 2x−cos 2y = −2 sin(x−y) sin(x+y) we can rewrite en so the expression is easier to interpret:
n11
e =−2Isin t2(ω−ω ̃) sin t2(ω+ω ̃) . (1.22)
The error mesh function is ideal for verification purposes and you are strongly encouraged to make a test based on (1.20) by doing Exercise 1.11.
1.4.5 Convergence
We can use (1.19), (1.21), or (1.22) to show convergence of the numerical scheme, i.e., en → 0 as ∆t → 0, which implies that the numerical solution approaches the exact solution as ∆t approaches to zero. We have that
limω ̃=lim 2sin−1ω∆t=ω, ∆t→0 ∆t→0 ∆t 2
by L’Hopital’s rule. This result could also been computed WolframAlpha, or we could use the limit functionality in sympy:
28 1 Vibration ODEs
>>> import sympy as sym
>>> dt, w = sym.symbols(’x w’)
>>> sym.limit((2/dt)*sym.asin(w*dt/2), dt, 0, dir=’+’)
w
Also (1.19) can be used to establish that ω ̃ → ω when ∆t → 0. It then follows from the expression(s) for en that en → 0.
1.4.6 The global error
To achieve more analytical insight into the nature of the global error, we can Taylor expand the error mesh function (1.21). Since ω ̃ in (1.18) contains ∆t in the denominator we use the series expansion for ω ̃ inside the cosine function. A relevant sympy session is
Series expansions in sympy have the inconvenient O() term that prevents further calculations with the series. We can use the removeO() command to get rid of the O() term:
Using this w_tilde_series expression for w ̃ in (1.21), dropping I (which is a common factor), and performing a series expansion of the error yields
Since we are mainly interested in the leading-order term in such expan- sions (the term with lowest power in ∆t, which goes most slowly to zero), we use the .as_leading_term(dt) construction to pick out this term:
The last result means that the leading order global (true) error at a point t is proportional to ω3t∆t2. Considering only the discrete tn values for t, tn is related to ∆t through tn = n∆t. The factor sin(ωt) can at
>>> from sympy import *
>>> dt, w, t = symbols(’dt w t’)
>>> w_tilde_e = 2/dt*asin(w*dt/2)
>>> w_tilde_series = w_tilde_e.series(dt, 0, 4)
>>> w_tilde_series
w + dt**2*w**3/24 + O(dt**4)
>>> w_tilde_series = w_tilde_series.removeO()
>>> w_tilde_series
dt**2*w**3/24 + w
>>> error = cos(w*t) – cos(w_tilde_series*t)
>>> error.series(dt, 0, 6)
dt**2*t*w**3*sin(t*w)/24 + dt**4*t**2*w**6*cos(t*w)/1152 + O(dt**6)
>>> error.series(dt, 0, 6).as_leading_term(dt)
dt**2*t*w**3*sin(t*w)/24
1.4 Analysis of the numerical scheme 29
most be 1, so we use this value to bound the leading-order expression to its maximum value
en = 1 nω3∆t3 . 24
This is the dominating term of the error at a point.
We are interested in the accumulated global error, which can be
taken as the l2 norm of en. The norm is simply computed by summing contributions from all mesh points:
Nt1 1Nt
||en||2l2 = ∆t n=0
ω6∆t7 n2 . n=0
n2ω6∆t6 =
The sum Nt n2 is approximately equal to 1N3. Replacing N by T/∆t
242
n=0 3tt
n 1T332 ||e ||l2 = 24 3 ω ∆t .
This is our expression for the global (or integrated) error. A primary result from this expression is that the global error is proportional to ∆t2.
1.4.7 Stability
Looking at (1.20), it appears that the numerical solution has constant and correct amplitude, but an error in the angular frequency. A constant amplitude is not necessarily the case, however! To see this, note that if only ∆t is large enough, the magnitude of the argument to sin−1 in (1.18) may be larger than 1, i.e., ω∆t/2 > 1. In this case, sin−1(ω∆t/2) has a complex value and therefore ω ̃ becomes complex. Type, for example, asin(x) in wolframalpha.com to see basic properties of sin−1(x)).
A complex ω ̃ can be written ω ̃ = ω ̃r +iω ̃i. Since sin−1(x) has a negative imaginary part for x > 1, ω ̃i < 0, which means that eiω ̃t = e−ω ̃iteiω ̃rt will lead to exponential growth in time because e−ω ̃it with ω ̃i < 0 has a positive exponent.
Stability criterion
We do not tolerate growth in the amplitude since such growth is not present in the exact solution. Therefore, we must impose a stability
242 and taking the square root gives the expression
30
1 Vibration ODEs
criterion so that the argument in the inverse sine function leads to real and not complex values of ω ̃. The stability criterion reads
ω∆t≤1 ⇒ ∆t≤2. (1.23) 2ω
With ω = 2π, ∆t > π−1 = 0.3183098861837907 will give growing solutions. Figure 1.5 displays what happens when ∆t = 0.3184, which is slightly above the critical value: ∆t = π−1 + 9.01 · 10−5.
Fig. 1.5 Growing, unstable solution because of a time step slightly beyond the stability limit.
1.4.8 About the accuracy at the stability limit
An interesting question is whether the stability condition ∆t < 2/ω is unfortunate, or more precisely: would it be meaningful to take larger time steps to speed up computations? The answer is a clear no. At the stability limit, we have that sin−1 ω∆t/2 = sin−1 1 = π/2, and therefore ω ̃ = π/∆t. (Note that the approximate formula (1.19) is very inaccurate for this value of ∆t as it predicts ω ̃ = 2.34/pi, which is a 25
1.4 Analysis of the numerical scheme 31
percent reduction.) The corresponding period of the numerical solution is P ̃ = 2π/ω ̃ = 2∆t, which means that there is just one time step ∆t between a peak (maximum) and a through (minimum) in the numerical solution. This is the shortest possible wave that can be represented in the mesh! In other words, it is not meaningful to use a larger time step than the stability limit.
Also, the error in angular frequency when ∆t = 2/ω is severe: Fig- ure 1.6 shows a comparison of the numerical and analytical solution with ω = 2π and ∆t = 2/ω = π−1. Already after one period, the numerical solution has a through while the exact solution has a peak
(!). The error in frequency when ∆t is at the stability limit becomes ω − ω ̃ = ω(1 − π/2) ≈ −0.57ω. The corresponding error in the period is P − P ̃ ≈ 0.36P . The error after m periods is then 0.36mP . This error has reached half a period when m = 1/(2 · 0.36) ≈ 1.38, which theoretically confirms the observations in Figure 1.6 that the numerical solution is a through ahead of a peak already after one and a half period. Consequently, ∆t should be chosen much less than the stability limit to achieve meaningful numerical computations.
dt=0.31831
numerical exact
1.0
0.5
0.0
0.5
1.0
0.0 0.5
1.0 1.5 2.0 2.5 3.0 t
3.5 4.0
Fig. 1.6 Numerical solution with ∆t exactly at the stability limit.
u
32
1 Vibration ODEs
Summary
From the accuracy and stability analysis we can draw three impor- tant conclusions:
1. The key parameter in the formulas is p = ω∆t. The period of oscillations is P = 2π/ω, and the number of time steps per period is NP = P/∆t. Therefore, p = ω∆t = 2π/NP , showing that the critical parameter is the number of time steps per period. The smallestpossibleNP is2,showingthatp∈(0,π].
2. Provided p ≤ 2, the amplitude of the numerical solution is constant.
3. The ratio of the numerical angular frequency and the exact one is ω ̃/ω ≈ 1 + 1 p2. The error 1 p2 leads to wrongly displaced
peaks of the numerical solution, and the error in peak location grows linearly with time (see Exercise 1.2).
1.5 Alternative schemes based on 1st-order equations
A standard technique for solving second-order ODEs is to rewrite them as a system of first-order ODEs and then choose a solution strategy from the vast collection of methods for first-order ODE systems. Given the second-order ODE problem
u′′ +ω2u=0, u(0)=I, u′(0)=0,
we introduce the auxiliary variable v = u′ and express the ODE problem
in terms of first-order derivatives of u and v:
u′ = v, (1.24)
v′ =−ω2u. (1.25) The initial conditions become u(0) = I and v(0) = 0.
24 24
1.5 Alternative schemes based on 1st-order equations 33
1.5.1 The Forward Euler scheme
A Forward Euler approximation to our 2×2 system of ODEs (1.24)-(1.25) becomes
or written out,
[Dt+u = v]n, [Dt+v = −ω2u]n,
un+1 = un + ∆tvn, vn+1 = vn − ∆tω2un .
(1.26) (1.27)
(1.28) (1.29)
Let us briefly compare this Forward Euler method with the centered difference scheme for the second-order differential equation. We have from (1.28) and (1.29) applied at levels n and n − 1 that
un+1 = un + ∆tvn = un + ∆t(vn−1 − ∆tω2un−1) .
Since from (1.28) it follows that
vn−1 = 1 (un − un−1), ∆t
un+1 = 2un − un−1 − ∆t2ω2un−1,
which is very close to the centered difference scheme, but the last term is evaluated at tn−1 instead of tn. Rewriting, so that ∆t2ω2un−1 appears alone on the right-hand side, and then dividing by ∆t2, the new left-hand side is an approximation to u′′ at tn, while the right-hand side is sampled at tn−1. All terms should be sampled at the same mesh point, so using ω2un−1 instead of ω2un points to a kind of mathematical error in the derivation of the scheme. This error turns out to be rather crucial for the accuracy of the Forward Euler method applied to vibration problems
(Section 1.5.4 has examples).
The reasoning above does not imply that the Forward Euler scheme
is not correct, but more that it is almost equivalent to a second-order accurate scheme for the second-order ODE formulation, and that the error committed has to do with a wrong sampling point.
34 1 Vibration ODEs
1.5.2 The Backward Euler scheme
A Backward Euler approximation to the ODE system is equally easy to write up in the operator notation:
[Dt−u = v]n+1, [Dt−v = −ωu]n+1 .
This becomes a coupled system for un+1 and vn+1: un+1 − ∆tvn+1 = un,
vn+1 + ∆tω2un+1 = vn .
(1.30) (1.31)
(1.32) (1.33)
We can compare (1.32)-(1.33) with the centered scheme (1.7) for the second-order differential equation. To this end, we eliminate vn+1 in (1.32) using (1.33) solved with respect to vn+1. Thereafter, we eliminate vn using (1.32) solved with respect to vn+1 and also replacing n + 1 by n and n by n − 1. The resulting equation involving only un+1, un, and
un−1 can be ordered as
un+1 − 2un + un−1
∆t2 = −ω2un+1,
which has almost the same form as the centered scheme for the second- order differential equation, but the right-hand side is evaluated at un+1 and not un. This inconsistent sampling of terms has a dramatic effect on the numerical solution, as we demonstrate in Section 1.5.4.
1.5.3 The Crank-Nicolson scheme
The Crank-Nicolson scheme takes this form in the operator notation:
[D u = vt]n+ 1 , (1.34) t2
[Dv=−ω2ut]n+1 . (1.35) t2
Writing the equations out and rearranging terms, shows that this is also a coupled system of two linear equations at each time level:
1.5 Alternative schemes based on 1st-order equations
35
un+1 − 1∆tvn+1 = un + 1∆tvn, 22
vn+1 + 1∆tω2un+1 = vn − 1∆tω2un . 22
(1.36)
(1.37)
We may compare also this scheme to the centered discretization of the second-order ODE. It turns out that the Crank-Nicolson scheme is equivalent to the discretization
un+1 − 2un + un−1 1
2 =−ω2 (un+1 +2un +un−1)=−ω2un +O(∆t2).
(1.38) That is, the Crank-Nicolson is equivalent to (1.7) for the second-order ODE, apart from an extra term of size ∆t2, but this is an error of the same order as in the finite difference approximation on the left-hand side of the equation anyway. The fact that the Crank-Nicolson scheme is so close to (1.7) makes it a much better method than the Forward or Backward Euler methods for vibration problems, as will be illustrated in
Section 1.5.4.
Deriving (1.38) is a bit tricky. We start with rewriting the Crank-
∆t 4
Nicolson equations as follows
un+1 − un = 1∆t(vn+1 + vn), 2
vn+1 = vn − 1∆tω2(un+1 + un), 2
and add the latter at the previous time level as well:
vn = vn−1 − 1∆tω2(un + un−1) 2
We can also rewrite (1.39) at the previous time level as vn +vn−1 = 2 (un −un−1).
(1.39) (1.40)
(1.41)
(1.42)
∆t
Inserting (1.40) for vn+1 in (1.39) and (1.41) for vn in (1.39) yields after
some reordering:
un+1 −un = 1(−1∆tω2(un+1 +2un +un−1)+vn +vn−1). 22
36 1 Vibration ODEs
Now, vn +vn−1 can be eliminated by means of (1.42). The result becomes un+1 −2un +un−1 =−∆t2ω21(un+1 +2un +un−1). (1.43)
4
It can be shown that
1(un+1 + 2un + un−1) ≈ un + O(∆t2), 4
meaning that (1.43) is an approximation to the centered scheme (1.7) for the second-order ODE where the sampling error in the term ∆t2ω2un is of the same order as the approximation errors in the finite differences, i.e., O(∆t2). The Crank-Nicolson scheme written as (1.43) therefore has consistent sampling of all terms at the same time point tn.
1.5.4 Comparison of schemes
We can easily compare methods like the ones above (and many more!) with the aid of the Odespy package. Below is a sketch of the code.
import odespy
import numpy as np
def f(u, t, w=1):
# v, u numbering for EulerCromer to work well v,u=u #uisarrayoflength2holdingour[v,u] return [-w**2*u, v]
def run_solvers_and_plot(solvers, timesteps_per_period=20,
num_periods=1, I=1, w=2*np.pi):
P = 2*np.pi/w # duration of one period
dt = P/timesteps_per_period
Nt = num_periods*timesteps_per_period
T = Nt*dt
t_mesh = np.linspace(0, T, Nt+1)
legends = []
for solver in solvers:
solver.set(f_kwargs={’w’: w})
solver.set_initial_condition([0, I])
u, t = solver.solve(t_mesh)
There is quite some more code dealing with plots also, and we refer to the source file vib_undamped_odespy.py for details. Observe that keyword arguments in f(u,t,w=1) can be supplied through a solver parameter f_kwargs (dictionary of additional keyword arguments to f).
1.5 Alternative schemes based on 1st-order equations 37
Specification of the Forward Euler, Backward Euler, and Crank- Nicolson schemes is done like this:
The vib_undamped_odespy.py program makes two plots of the com- puted solutions with the various methods in the solvers list: one plot with u(t) versus t, and one phase plane plot where v is plotted against u. That is, the phase plane plot is the curve (u(t), v(t)) parameterized by t. Analytically, u = I cos(ωt) and v = u′ = −ωI sin(ωt). The exact curve (u(t), v(t)) is therefore an ellipse, which often looks like a circle in a plot if the axes are automatically scaled. The important feature, however, is that the exact curve (u(t), v(t)) is closed and repeats itself for every period. Not all numerical schemes are capable of doing that, meaning that the amplitude instead shrinks or grows with time.
Figure 1.7 show the results. Note that Odespy applies the label Mid- pointImplicit for what we have specified as CrankNicolson in the code (CrankNicolson is just a synonym for class MidpointImplicit in the Odespy code). The Forward Euler scheme in Figure 1.7 has a pronounced spiral curve, pointing to the fact that the amplitude steadily grows, which is also evident in Figure 1.8. The Backward Euler scheme has a similar
feature, except that the spriral goes inward and the amplitude is signifi- cantly damped. The changing amplitude and the spiral form decreases with decreasing time step. The Crank-Nicolson scheme looks much more accurate. In fact, these plots tell that the Forward and Backward Euler schemes are not suitable for solving our ODEs with oscillating solutions.
solvers = [
odespy.ForwardEuler(f),
# Implicit methods must use Newton solver to converge
odespy.BackwardEuler(f, nonlinear_solver=’Newton’),
odespy.CrankNicolson(f, nonlinear_solver=’Newton’),
]
15
10
5
0
5
10
Time step: 0.05
ForwardEuler BackwardEuler MidpointImplicit exact
210123 u(t)
Fig. 1.7 Comparison of classical schemes in the phase plane for two time step values.
10 8 6 4 2 0 2 4 6 8
1.5 1.0
Time step: 0.025
ForwardEuler BackwardEuler MidpointImplicit exact
0.5 0.0
0.5 1.0
1.5 2.0
u(t)
v(t)
v(t)
38
1 Vibration ODEs
3
Time step: 0.05
ForwardEuler BackwardEuler MidpointImplicit exact
2
1
0
1
2
0.0 0.2 0.4
t
0.6 0.8 1.0
2.0 1.5 1.0 0.5 0.0 0.5 1.0 1.5
Time step: 0.025
ForwardEuler BackwardEuler MidpointImplicit exact
0.0 0.2 0.4
Fig. 1.8 Comparison of solution curves for classical schemes.
1.5.5 Runge-Kutta methods
t
0.6 0.8 1.0
We may run two other popular standard methods for first-order ODEs, the 2nd- and 4th-order Runge-Kutta methods, to see how they perform. Figures 1.9 and 1.10 show the solutions with larger ∆t values than what was used in the previous two plots.
8 6 4 2 0 2 4 6 8
1.5 1.0
Time step: 0.1
RK2 RK4 exact
0.5 0.0 0.5 u(t)
1.0 1.5
8 6 4 2 0 2 4 6 8
1.5 1.0
Time step: 0.05
RK2 RK4 exact
Fig. 1.9 Comparison of Runge-Kutta schemes in the phase plane.
The visual impression is that the 4th-order Runge-Kutta method is very accurate, under all circumstances in these tests, while the 2nd-order scheme suffers from amplitude errors unless the time step is very small.
The corresponding results for the Crank-Nicolson scheme are shown in Figure 1.11. It is clear that the Crank-Nicolson scheme outperforms the 2nd-order Runge-Kutta method. Both schemes have the same order of accuracy O(∆t2), but their differences in the accuracy that matters in a real physical application is very clearly pronounced in this example.
0.5 0.0 0.5 u(t)
1.0 1.5
v(t) u
v(t)
u
1.5 Alternative schemes based on 1st-order equations
39
1.5
1.0
0.5
0.0
0.5
1.0
1.5
0.0 0.2 0.4
t
0.6
0.8 1.0
Time step: 0.05
1.5
Time step: 0.1
RK2 RK4 exact
1.0
0.5
0.0
0.5
1.0
1.5
0.0 0.2 0.4
t
0.6 0.8 1.0
RK2 RK4 exact
Fig. 1.10 Comparison of Runge-Kutta schemes.
Exercise 1.13 invites you to investigate how the amplitude is computed by a series of famous methods for first-order ODEs.
8 6 4 2 0 2 4 6
Time step: 0.1
MidpointImplicit exact
8
1.0 0.5 0.0 0.5 1.0
u(t)
8 6 4 2 0 2 4 6 8
1.5 1.0
Time step: 0.05
MidpointImplicit exact
Fig. 1.11 Long-time behavior of the Crank-Nicolson scheme in the phase plane.
1.5.6 Analysis of the Forward Euler scheme
We may try to find exact solutions of the discrete equations (1.28)-(1.29) in the Forward Euler method to better understand why this otherwise useful method has so bad performance for vibration ODEs. An “ansatz” for the solution of the discrete equations is
un = IAn, vn = qIAn,
0.5 0.0 0.5 1.0 1.5 u(t)
v(t) u
v(t)
u
40 1 Vibration ODEs
where q and A are scalars to be determined. We could have used a complex exponential form eiω ̃n∆t since we get oscillatory solutions, but the oscillations grow in the Forward Euler method, so the numerical frequency ω ̃ will be complex anyway (producing an exponentially growing amplitude). Therefore, it is easier to just work with potentially complex A and q as introduced above.
The Forward Euler scheme leads to A = 1 + ∆tq,
A = 1 − ∆tω2q−1 .
We can easily eliminate A, get q2 + ω2 = 0, and solve for
which gives
q = ±iω,
A = 1±∆tiω.
We shall take the real part of An as the solution. The two values of A are complex conjugates, and the real part of An will be the same for both roots. This is easy to realize if we rewrite the complex numbers in polar form, which is also convenient for further analysis and understanding. The polar form reiθ of a complex number x+iy has r = x2 +y2 and θ = tan−1(y/x). Hence, the polar form of the two values for A becomes
1 ± ∆tiω = √1 + ω2∆t2e±i tan−1(ω∆t) . Now it is very easy to compute An:
(1 ± ∆tiω)n = (1 + ω2∆t2)n/2e±ni tan−1(ω∆t) .
Since cos(θn) = cos(−θn), the real parts of the two numbers become the same. We therefore continue with the solution that has the plus sign.
The general solution is un = CAn, where C is a constant determined from the initial condition: u0 = C = I. We have un = IAn and vn = qIAn. The final solutions are just the real part of the expressions in polar form:
un = I(1 + ω2∆t2)n/2 cos(n tan−1(ω∆t)), (1.44) vn = −ωI(1 + ω2∆t2)n/2 sin(n tan−1(ω∆t)) . (1.45)
1.6 Energy considerations 41
The expression (1 + ω2∆t2)n/2 causes growth of the amplitude, since a number greater than one is raised to a positive exponent n/2. We can develop a series expression to better understand the formula for the amplitude. Introducing p = ω∆t as the key variable and using sympy gives
The amplitude goes like 1 + 1 nω2∆t2, clearly growing linearly in time
2
(with n).
We can also investigate the error in the angular frequency by a series
expansion:
>>> from sympy import *
>>> p = symbols(’p’, real=True)
>>> n = symbols(’n’, integer=True, positive=True)
>>> amplitude = (1 + p**2)**(n/2)
>>> amplitude.series(p, 0, 4)
1 + n*p**2/2 + O(p**4)
>>> n*atan(p).series(p, 0, 4)
n*(p – p**3/3 + O(p**4))
This means that the solution for un can be written as n1224124
u =(1+2nω∆t +O(∆t))cos ωt−3ωt∆t +O(∆t) .
The error in the angular frequency is of the same order as in the scheme
(1.7) for the second-order ODE, but the error in the amplitude is severe.
1.6 Energy considerations
The observations of various methods in the previous section can be better interpreted if we compute a quantity reflecting the total energy of the system. It turns out that this quantity,
E(t) = 1(u′)2 + 1ω2u2, 22
is constant for all t. Checking that E(t) really remains constant brings evidence that the numerical computations are sound. It turns out that E is proportional to the mechanical energy in the system. Conservation of energy is much used to check numerical simulations, so it is well invested time to dive into this subject.
42 1 Vibration ODEs
1.6.1 Derivation of the energy expression
We start out with multiplying
u′′ + ω2u = 0,
by u′ and integrating from 0 to T :
Observing that
we get
T′′′ T2′
u udt+ ω uudt=0.
00
u′′u′ = d 1(u′)2, uu′ = d 1u2, dt2 dt2
Td1′2 d122
(dt2(u) +dt2ωu)dt=E(T)−E(0)=0, 0
where we have introduced
E(t) = 1(u′)2 + 1ω2u2 . 22
(1.46)
The important result from this derivation is that the total energy is constant:
E(t) = E(0) .
E(t) is closely related to the system’s energy
The quantity E(t) derived above is physically not the mechanical energy of a vibrating mechanical system, but the energy per unit mass. To see this, we start with Newton’s second law F = ma (F is the sum of forces, m is the mass of the system, and a is the acceleration). The displacement u is related to a through a = u′′. With a spring force as the only force we have F = −ku, where k is a spring constant measuring the stiffness of the spring. Newton’s second law then implies the differential equation
−ku=mu′′ ⇒mu′′ +ku=0.
1.6 Energy considerations 43
This equation of motion can be turned into an energy balance equation by finding the work done by each term during a time interval [0,T]. To this end, we multiply the equation by du = u′dt and integrate:
The result is
where
T′T′
muu dt + kuu dt = 0 .
00
E ̃(t) = Ek(t) + Ep(t) = 0, Ek(t) = 1mv2, v = u′,
2
is the kinetic energy of the system, and
(1.47)
(1.48)
Ep(t) = 1ku2 2
is the potential energy. The sum E ̃(t) is the total mechanical energy. The derivation demonstrates the famous energy principle that, under the right physical circumstances, any change in the kinetic energy is due to a change in potential energy and vice versa. (This principle breaks down when we introduce damping in the system, as we do in Section 1.10.)
The equation mu′′ + ku = 0 can be divided by m and written
as u′′ + ω2u = 0 for ω = k/m. The energy expression E(t) =
1(u′)2+1ω2u2 derived earlier is then E ̃(t)/m, i.e., mechanical energy 22
per unit mass.
Energy of the exact solution. Analytically, we have u(t) = I cos ωt, if u(0) = I and u′(0) = 0, so we can easily check the energy evolution and confirm that E(t) is constant:
E(t) = 1I2(−ωsinωt)2+1ω2I2 cos2 ωt = 1ω2(sin2 ωt+cos2 ωt) = 1ω2 . 2222
Growth of energy in the Forward Euler scheme. The energy at time level n + 1 in the Forward Euler scheme can easily be shown to increase:
44
1 Vibration ODEs
En+1 = 1(vn+1)2 + 1ω2(un+1)2 22
= 1(vn − ω2∆tun)2 + 1ω2(un + ∆tvn)2 22
= (1 + ∆t2ω2)En .
1.6.2 An error measure based on energy
The constant energy is well expressed by its initial value E(0), so that the error in mechanical energy can be computed as a mesh function by
n 1un+1−un−12 12 n2
eE = 2 2∆t +2ω (u ) −E(0), n = 1,…,Nt−1, (1.49)
where
E(0) = 1V 2 + 1ω2I2, 22
if u(0) = I and u′(0) = V . Note that we have used a centered approxi- mation to u′: u′(tn) ≈ [D2tu]n.
A useful norm of the mesh function enE for the discrete mechanical energy can be the maximum absolute value of enE:
||enE ||l∞ = max |enE | . 1≤n
Filename: vib_adjust_w.
60 1 Vibration ODEs
Exercise 1.4: See if adaptive methods improve the phase error
Adaptive methods for solving ODEs aim at adjusting ∆t such that the error is within a user-prescribed tolerance. Implement the equa- tion u′′ + u = 0 in the Odespy software. Use the example from Sec- tion 3.2.11 in [9]. Run the scheme with a very low tolerance (say 10−14) and for a long time, check the number of time points in the solver’s mesh
(len(solver.t_all)), and compare the phase error with that produced by the simple finite difference method from Section 1.1.2 with the same number of (equally spaced) mesh points. The question is whether it pays off to use an adaptive solver or if equally many points with a simple method gives about the same accuracy.
Filename: vib_undamped_adaptive.
Exercise 1.5: Use a Taylor polynomial to compute u1
As an alternative to computing u1 by (1.8), one can use a Taylor polyno- mial with three terms:
u(t1) ≈ u(0) + u′(0)∆t + 1u′′(0)∆t2 2
With u′′ = −ω2u and u′(0) = 0, show that this method also leads to (1.8). Generalize the condition on u′(0) to be u′(0) = V and compute u1
in this case with both methods. Filename: vib_first_step.
Problem 1.6: Derive and investigate the velocity Verlet method
The velocity Verlet method for u′′ + ω2u = 0 is based on the following ideas:
1. step u forward from tn to tn+1 using a three-term Taylor series, 2. replace u′′ by −ω2u
3. discretize v′ = −ω2u by a Crank-Nicolson method.
Derive the scheme, implement it, and determine empirically the conver- gence rate.
1.9 Exercises and Problems 61
Problem 1.7: Find the minimal resolution of an oscillatory function
Sketch the function on a given mesh which has the highest possible frequency. That is, this oscillatory “cos-like” function has its maxima and minima at every two grid points. Find an expression for the frequency of this function, and use the result to find the largest relevant value of ω∆t when ω is the frequency of an oscillating function and ∆t is the mesh spacing.
Filename: vib_largest_wdt.
Exercise 1.8: Visualize the accuracy of finite differences for a
cosine function
We introduce the error fraction
E = [DtDtu]n
u′′ (tn )
to measure the error in the finite difference approximation DtDtu to u′′. Compute E for the specific choice of a cosine/sine function of the form u = exp (iωt) and show that
2 2 ω∆t E= ω∆t sin2( 2 ).
Plot E as a function of p = ω∆t. The relevant values of p are [0, π] (see Exercise 1.7 for why p > π does not make sense). The deviation of the curve from unity visualizes the error in the approximation. Also expand E as a Taylor polynomial in p up to fourth degree (use, e.g., sympy). Filename: vib_plot_fd_exp_error.
Exercise 1.9: Verify convergence rates of the error in energy
We consider the ODE problem u′′ +ω2u = 0, u(0) = I, u′(0) = V, for t ∈ (0, T ]. The total energy of the solution E(t) = 1 (u′)2 + 1 ω2u2 should
stay constant. The error in energy can be computed as explained in Section 1.6.
Make a test function in a separate file, where code from vib_undamped.py is imported, but the convergence_rates and test_convergence_rates functions are copied and modified to also
22
62 1 Vibration ODEs
incorporate computations of the error in energy and the convergence rate of this error. The expected rate is 2, just as for the solution itself. Filename: test_error_conv.
Exercise 1.10: Use linear/quadratic functions for verification
This exercise is a generalization of Problem 1.1 to the extended model problem (1.71) where the damping term is either linear or quadratic. Solve the various subproblems and see how the results and problem settings change with the generalized ODE in case of linear or quadratic damping. By modifying the code from Problem 1.1, sympy will do most of the work required to analyze the generalized problem.
Filename: vib_verify_mms.
Exercise 1.11: Use an exact discrete solution for verification
Write a test function in a separate file that employs the exact discrete solution (1.20) to verify the implementation of the solver function in the file vib_undamped.py.
Filename: test_vib_undamped_exact_discrete_sol.
Exercise 1.12: Use analytical solution for convergence rate tests
The purpose of this exercise is to perform convergence tests of the problem (1.71) when s(u) = cu, F (t) = A sin φt and there is no damping. Find the complete analytical solution to the problem in this case (most textbooks on mechanics or ordinary differential equations list the various elements you need to write down the exact solution, or you can use symbolic tools like sympy or wolframalpha.com). Modify the convergence_rate function from the vib_undamped.py program to perform experiments
with the extended model. Verify that the error is of order ∆t2. Filename: vib_conv_rate.
1.9 Exercises and Problems 63
Exercise 1.13: Investigate the amplitude errors of many solvers
Use the program vib_undamped_odespy.py from Section 1.5.4 (utilize the function amplitudes) to investigate how well famous methods for 1st-order ODEs can preserve the amplitude of u in undamped oscillations. Test, for example, the 3rd- and 4th-order Runge-Kutta methods (RK3, RK4), the Crank-Nicolson method (CrankNicolson), the 2nd- and 3rd- order Adams-Bashforth methods (AdamsBashforth2, AdamsBashforth3), and a 2nd-order Backwards scheme (Backward2Step). The relevant gov- erning equations are listed in the beginning of Section 1.5.
Running the code, we get the plots seen in Figure 1.13, 1.14, and 1.15. They show that RK4 is superior to the others, but that also CrankNicolson performs well. In fact, with RK4 the amplitude changes by less than 0.1 per cent over the interval.
6.4 6.2 6.0 5.8 5.6 5.4 5.2 5.0
4.80 20 40 60 80 100 Number of periods
RK3
RK4
Fig. 1.13 The amplitude as it changes over 100 periods for RK3 and RK4.
Filename: vib_amplitude_errors.
Amplitude (absolute value)
64 1 Vibration ODEs
7
CrankNicolson Backward2Step
6
5
4
3
2
10 20 40 60 80 100 Number of periods
Fig. 1.14 The amplitude as it changes over 100 periods for Crank-Nicolson and Backward 2 step.
Problem 1.14: Minimize memory usage of a simple vibration solver
We consider the model problem u′′ +ω2u = 0, u(0) = I, u′(0) = V , solved by a second-order finite difference scheme. A standard implementation typically employs an array u for storing all the un values. However, at some time level n+1 where we want to compute u[n+1], all we need of previous u values are from level n and n-1. We can therefore avoid storing the entire array u, and instead work with u[n+1], u[n], and u[n-1], named as u, u_n, u_nmp1, for instance. Another possible naming convention is u, u_n[0], u_n[-1]. Store the solution in a file for later visualization. Make a test function that verifies the implementation by comparing with the another code for the same problem.
Filename: vib_memsave0.
Amplitude (absolute value)
1.9 Exercises and Problems 65
35
30
25
20
15
10
5
AdamsBashforth2 AdamsBashforth3
00 20 40 60 80 100 120 Number of periods
Fig. 1.15 The amplitude as it changes over 100 periods for Adams-Bashforth 2 and 3.
Problem 1.15: Minimize memory usage of a general vibration solver
The program vib.py stores the complete solution u0, u1, . . . , uNt in mem- ory, which is convenient for later plotting. Make a memory minimizing version of this program where only the last three un+1, un, and un−1 val- ues are stored in memory under the names u, u_n, and u_nm1 (this is the naming convention used in this book). Write each computed (tn+1,un+1) pair to file. Visualize the data in the file (a cool solution is to read one line at a time and plot the u value using the line-by-line plotter in the visualize_front_ascii function – this technique makes it trivial to visualize very long time simulations).
Filename: vib_memsave.
Exercise 1.16: Implement the Euler-Cromer scheme for the generalized model
We consider the generalized model problem
Amplitude (absolute value)
66 1 Vibration ODEs
mu′′ +f(u′)+s(u)=F(t), u(0)=I, u′(0)=V . a) Implement the Euler-Cromer method from Section 1.10.8.
b) We expect the Euler-Cromer method to have first-order convergence rate. Make a unit test based on this expectation.
c) Considerasystemwithm=4,f(v)=b|v|v,b=0.2,s=2u,
F = 0. Compute the solution using the centered difference scheme from
Section 1.10.1 and the Euler-Cromer scheme for the longest possible time
step ∆t. We can use the result from the case without damping, i.e., the
largest ∆t = 2/ω, ω ≈
frequency, we take the longest possible time step as a safety factor 0.9 times 2/ω. Refine ∆t three times by a factor of two and compare the two curves.
Filename: vib_EulerCromer.
Problem 1.17: Interpret [DtDtu]n as a forward-backward difference
Show that the difference [DtDtu]n is equal to [Dt+Dt−u]n and Dt−Dt+u]n. That is, instead of applying a centered difference twice one can alterna- tively apply a mixture of forward and backward differences.
Filename: vib_DtDt_fw_bw.
Exercise 1.18: Analysis of the Euler-Cromer scheme
The Euler-Cromer scheme for the model problem u′′ +ω2u = 0, u(0) = I, u′(0) = 0, is given in (1.55)-(1.54). Find the exact discrete solutions of this scheme and show that the solution for un coincides with that found in Section 1.4.
Hint. Use an “ansatz” un = I exp (iω ̃∆t n) and vn = qun, where ω ̃ and q are unknown parameters. The following formula is handy:
eiω ̃∆t +eiω ̃(−∆t) −2=2(cosh(iω ̃∆t)−1)=−4sin2(ω ̃∆t). 2
√
0.5 in this case, but since b will modify the
1.10 Generalization: damping, nonlinearities, and excitation 67
1.10 Generalization: damping, nonlinearities, and excitation
We shall now generalize the simple model problem from Section 1.1 to include a possibly nonlinear damping term f(u′), a possibly nonlinear spring (or restoring) force s(u), and some external excitation F (t):
mu′′ +f(u′)+s(u)=F(t), u(0)=I, u′(0)=V, t∈(0,T]. (1.71)
We have also included a possibly nonzero initial value of u′(0). The parameters m, f(u′), s(u), F(t), I, V , and T are input data.
There are two main types of damping (friction) forces: linear f(u′) = bu, or quadratic f(u′) = bu′|u′|. Spring systems often feature linear damping, while air resistance usually gives rise to quadratic damping. Spring forces are often linear: s(u) = cu, but nonlinear versions are also common, the most famous is the gravity force on a pendulum that acts as a spring with s(u) ∼ sin(u).
1.10.1 A centered scheme for linear damping
Sampling (1.71) at a mesh point tn, replacing u′′(tn) by [DtDtu]n, and u′(tn) by [D2tu]n results in the discretization
[mDtDtu + f(D2tu) + s(u) = F]n, (1.72) which written out means
un+1 − 2un + un−1 un+1 − un−1
m ∆t2 + f( 2∆t ) + s(un) = Fn, (1.73)
where Fn as usual means F(t) evaluated at t = tn. Solving (1.73) with respect to the unknown un+1 gives a problem: the un+1 inside the f function makes the equation nonlinear unless f(u′) is a linear function, f(u′) = bu′. For now we shall assume that f is linear in u′. Then
un+1 − 2un + un−1 un+1 − un−1
m ∆t2 + b 2∆t + s(un) = Fn, (1.74)
which gives an explicit formula for u at each new time level:
68 1 Vibration ODEs
un+1 = (2mun+(b∆t−m)un−1+∆t2(Fn−s(un)))(m+b∆t)−1 . (1.75) 22
For the first time step we need to discretize u′(0) = V as [D2tu = V ]0 and combine with (1.75) for n = 0. The discretized initial condition leads to
u−1 = u1 − 2∆tV, (1.76) which inserted in (1.75) for n = 0 gives an equation that can be solved
for u1:
∆t2
u1 =u0 +∆tV + 2m(−bV −s(u0)+F0). (1.77)
1.10.2 A centered scheme for quadratic damping
When f(u′) = bu′|u′|, we get a quadratic equation for un+1 in (1.73). This equation can be straightforwardly solved by the well-known formula for the roots of a quadratic equation. However, we can also avoid the nonlinearity by introducing an approximation with an error of order no higher than what we already have from replacing derivatives with finite differences.
We start with (1.71) and only replace u′′ by DtDtu, resulting in [mDtDtu + bu′|u′| + s(u) = F ]n . (1.78)
Here, u′|u′| is to be computed at time tn. The idea is now to introduce a geometric mean, defined by
(w2)n ≈ wn−1 wn+1 , 22
for some quantity w depending on time. The error in the geometric mean approximation is O(∆t2), the same as in the approximation u′′ ≈ DtDtu. With w = u′ it follows that
[u′|u′|]n ≈ u′(tn+ 1 )|u′(tn− 1 )| . 22
The next step is to approximate u′ at tn±1/2, and fortunately a centered difference fits perfectly into the formulas since it involves u values at the mesh points only. With the approximations
1.10 Generalization: damping, nonlinearities, and excitation
69
u′(t ) ≈ [D u]n+1 , u′(t ) ≈ [D u]n−1 , n+1/2 t 2 n−1/2 t 2
(1.79)
(1.80)
n
we get
[u′|u′|]n ≈ [D u]n+ 1 |[D u]n− 1 | = un+1 − un |un − un−1| .
t2t2 The counterpart to (1.73) is then
∆t
∆t
n
un+1 −2un +un−1 un+1 −un |un −un−1| m ∆t2 + b ∆t ∆t
+ s(u ) = F , (1.81) which is linear in the unknown un+1. Therefore, we can easily solve (1.81)
with respect to un+1 and achieve the explicit updating formula un+1 = m + b|un − un−1|−1 ×
2mun − mun−1 + bun|un − un−1| + ∆t2(F n − s(un)) . (1.82)
In the derivation of a special equation for the first time step we run into some trouble: inserting (1.76) in (1.82) for n = 0 results in a complicated nonlinear equation for u1. By thinking differently about the problem we can easily get away with the nonlinearity again. We have for n = 0 that b[u′|u′|]0 = bV |V |. Using this value in (1.78) gives
[mDtDtu + bV |V | + s(u) = F]0 . (1.83) Writing this equation out and using (1.76) results in the special equation
for the first time step:
u1 = u0 + ∆tV + ∆t2 −bV |V | − s(u0) + F0 . (1.84)
2m
1.10.3 A forward-backward discretization of the quadratic
damping term
The previous section first proposed to discretize the quadratic damping term |u′|u′ using centered differences: [|D2t|D2tu]n. As this gives rise to a nonlinearity in un+1, it was instead proposed to use a geometric mean
70 1 Vibration ODEs
combined with centered differences. But there are other alternatives. To get rid of the nonlinearity in [|D2t|D2tu]n, one can think differently: apply a backward difference to |u′|, such that the term involves known values, and apply a forward difference to u′ to make the term linear in the unknown un+1. With mathematics,
un − un−1 un+1 − un
[β|u′|u′]n ≈ β|[Dt−u]n|[Dt+u]n = β ∆t ∆t . (1.85)
The forward and backward differences have both an error proportional to ∆t so one may think the discretization above leads to a first-order scheme. However, by looking at the formulas, we realize that the forward-backward differences in (1.85) result in exactly the same scheme as in (1.81) where we used a geometric mean and centered differences and committed errors of size O(∆t2). Therefore, the forward-backward differences in (1.85) act in a symmetric way and actually produce a second-order accurate discretization of the quadratic damping term.
1.10.4 Implementation
The algorithm arising from the methods in Sections 1.10.1 and 1.10.2 is very similar to the undamped case in Section 1.1.2. The difference is basically a question of different formulas for u1 and un+1. This is actually quite remarkable. The equation (1.71) is normally impossible to solve by pen and paper, but possible for some special choices of F, s, and f. On the contrary, the complexity of the nonlinear generalized model (1.71) versus the simple undamped model is not a big deal when we solve the problem numerically!
The computational algorithm takes the form
1. u0 = I
2. compute u1 from (1.77) if linear damping or (1.84) if quadratic damp-
ing
3. forn=1,2,…,Nt−1:
a. compute un+1 from (1.75) if linear damping or (1.82) if quadratic damping
Modifying the solver function for the undamped case is fairly easy, the big difference being many more terms and if tests on the type of damping:
1.10 Generalization: damping, nonlinearities, and excitation 71
def solver(I, V, m, b, s, F, dt, T, damping=’linear’):
“””
Solve m*u’’ + f(u’) + s(u) = F(t) for t in (0,T],
u(0)=I and u’(0)=V,
by a central finite difference method with time step dt.
If damping is ’linear’, f(u’)=b*u, while if damping is
’quadratic’, f(u’)=b*u’*abs(u’).
F(t) and s(u) are Python functions.
“””
dt = float(dt); b = float(b); m = float(m) # avoid integer div.
Nt = int(round(T/dt))
u = np.zeros(Nt+1)
t = np.linspace(0, Nt*dt, Nt+1)
u[0] = I
if damping == ’linear’:
u[1] = u[0] + dt*V + dt**2/(2*m)*(-b*V – s(u[0]) + F(t[0]))
elif damping == ’quadratic’:
u[1] = u[0] + dt*V + \
dt**2/(2*m)*(-b*V*abs(V) – s(u[0]) + F(t[0]))
for n in range(1, Nt):
if damping == ’linear’:
u[n+1] = (2*m*u[n] + (b*dt/2 – m)*u[n-1] +
dt**2*(F(t[n]) – s(u[n])))/(m + b*dt/2)
elif damping == ’quadratic’:
u[n+1] = (2*m*u[n] – m*u[n-1] + b*u[n]*abs(u[n] – u[n-1])
return u, t
+ dt**2*(F(t[n]) – s(u[n])))/\
(m + b*abs(u[n] – u[n-1]))
The complete code resides in the file vib.py.
1.10.5 Verification
Constant solution. For debugging and initial verification, a constant solution is often very useful. We choose ue(t) = I, which implies V = 0. Inserted in the ODE, we get F(t) = s(I) for any choice of f. Since the discrete derivative of a constant vanishes (in particular, [D2tI]n = 0, [DtI]n = 0, and [DtDtI]n = 0), the constant solution also fulfills the discrete equations. The constant should therefore be reproduced to machine precision. The function test_constant in vib.py implements this test.
Linear solution. Now we choose a linear solution: ue = ct + d. The initial condition u(0) = I implies d = I, and u′(0) = V forces c to be V . Inserting ue = V t + I in the ODE with linear damping results in
72
1 Vibration ODEs
0+bV +s(Vt+I)=F(t), while quadratic damping requires the source term
0+b|V|V +s(Vt+I)=F(t).
Since the finite difference approximations used to compute u′ all are exact for a linear function, it turns out that the linear ue is also a solution of the discrete equations. Exercise 1.10 asks you to carry out all the details.
Quadratic solution. Choosing ue = bt2 + V t + I , with b arbitrary, fulfills the initial conditions and fits the ODE if F is adjusted properly. The solution also solves the discrete equations with linear damping. However, this quadratic polynomial in t does not fulfill the discrete equations in case of quadratic damping, because the geometric mean used in the approximation of this term introduces an error. Doing Exercise 1.10 will reveal the details. One can fit Fn in the discrete equations such that the quadratic polynomial is reproduced by the numerical method (to machine precision).
Catching bugs. How good are the constant and quadratic solutions at catching bugs in the implementation?
• Use m instead of 2*m in the denominator of u[1]: constant works, while quadratic fails.
• Use b*dt instead of b*dt/2 in the updating formula for u[n+1] in case of linear damping: constant and quadratic fail.
• Use F[n+1] instead of F[n] in case of linear or quadratic damping: constant solution works, quadratic fails.
We realize that the constant solution is very useful to catch bugs because of its simplicity (easy to predict what the different terms in the formula should evaluate to), while it seems the quadratic solution is capable of detecting all other types of typos in the scheme (?). This results demonstrates why we focus so much on exact, simple polynomial solutions of the numerical schemes in these writings.
1.10.6 Visualization
The functions for visualizations differ significantly from those in the undamped case in the vib_undamped.py program because, in the present general case, we do not have an exact solution to include in the plots.
1.10 Generalization: damping, nonlinearities, and excitation 73
Moreover, we have no good estimate of the periods of the oscillations as there will be one period determined by the system parameters, essentially the approximate frequency s′(0)/m for linear s and small damping, and one period dictated by F(t) in case the excitation is periodic. This is, however, nothing that the program can depend on or make use of. Therefore, the user has to specify T and the window width to get a plot that moves with the graph and shows the most recent parts of it in long time simulations.
The vib.py code contains several functions for analyzing the time series signal and for visualizing the solutions.
1.10.7 User interface
The main function is changed substantially from the vib_undamped.py code, since we need to specify the new data c, s(u), and F (t). In addition, we must set T and the plot window width (instead of the number of peri- ods we want to simulate as in vib_undamped.py). To figure out whether we can use one plot for the whole time series or if we should follow the most recent part of u, we can use the plot_empricial_freq_and_amplitude function’s estimate of the number of local maxima. This number is now returned from the function and used in main to decide on the visualization technique.
def main():
import argparse
parser = argparse.ArgumentParser()
parser.add_argument(’–I’, type=float, default=1.0)
parser.add_argument(’–V’, type=float, default=0.0)
parser.add_argument(’–m’, type=float, default=1.0)
parser.add_argument(’–c’, type=float, default=0.0)
parser.add_argument(’–s’, type=str, default=’u’)
parser.add_argument(’–F’, type=str, default=’0’)
parser.add_argument(’–dt’, type=float, default=0.05)
parser.add_argument(’–T’, type=float, default=140)
parser.add_argument(’–damping’, type=str, default=’linear’)
parser.add_argument(’–window_width’, type=float, default=30)
parser.add_argument(’–savefig’, action=’store_true’)
a = parser.parse_args()
from scitools.std import StringFunction
s = StringFunction(a.s, independent_variable=’u’)
F = StringFunction(a.F, independent_variable=’t’)
I, V, m, c, dt, T, window_width, savefig, damping = \
a.I, a.V, a.m, a.c, a.dt, a.T, a.window_width, a.savefig, \
a.damping
u, t = solver(I, V, m, c, s, F, dt, T)
74 1 Vibration ODEs
num_periods = empirical_freq_and_amplitude(u, t)
if num_periods <= 15:
figure()
visualize(u, t)
else:
visualize_front(u, t, window_width, savefig)
show()
The program vib.py contains the above code snippets and can solve the model problem (1.71). As a demo of vib.py, we consider the case I = 1, V =0,m=1,c=0.03,s(u)=sin(u),F(t)=3cos(4t),∆t=0.05,and T = 140. The relevant command to run is
Terminal> python vib.py –s ’sin(u)’ –F ’3*cos(4*t)’ –c 0.03
This results in a moving window following the function on the screen. Figure 1.16 shows a part of the time series.
1.0
0.5
0.0
0.5
1.0
dt=0.05
0 10 20 30 40 50 60 t
Fig. 1.16 Damped oscillator excited by a sinusoidal function.
Terminal
u
1.10 Generalization: damping, nonlinearities, and excitation 75
1.10.8 The Euler-Cromer scheme for the generalized model
The ideas of the Euler-Cromer method from Section 1.7 carry over to the generalized model. We write (1.71) as two equations for u and v = u′. The first equation is taken as the one with v′ on the left-hand side:
v′ = 1 (F(t) − s(u) − f(v)), (1.86) m
u′ = v . (1.87)
The idea is to step (1.86) forward using a standard Forward Euler method, while we update u from (1.87) with a Backward Euler method, utilizing the recent, computed vn+1 value. In detail,
vn+1−vn 1 n n ∆t = m(F(tn) − s(u ) − f(v )),
un+1 − un
∆t = vn+1,
resulting in the explicit scheme
vn+1 = vn + ∆t 1 (F(tn) − s(un) − f(vn)),
We immediately note one very favorable feature of this scheme: all the nonlinearities in s(u) and f(v) are evaluated at a previous time level. This makes the Euler-Cromer method easier to apply and hence much more convenient than the centered scheme for the second-order ODE
(1.71).
The initial conditions are trivially set as
v0 = V, (1.92) u0 = I . (1.93)
m un+1 = un + ∆t vn+1 .
(1.88) (1.89)
(1.90) (1.91)
76 1 Vibration ODEs
1.10.9 The Störmer-Verlet algorithm for the generalized model
We can easily apply the ideas from Section 1.7.4 to extend that method to the generalized model
v′ = 1(F(t)−s(u)−f(v)), m
u′ = v .
However, since the scheme is essentially centered differences for the ODE system on a staggered mesh, we do not go into detail here, but refer to Section 1.10.10.
1.10.10 A staggered Euler-Cromer scheme for a generalized model
The more general model for vibration problems,
mu′′ +f(u′)+s(u)=F(t), u(0)=I, u′(0)=V, t∈(0,T], (1.94) can be rewritten as a first-order ODE system
v′ = m−1 (F(t) − f(v) − s(u)), (1.95) u′ = v . (1.96)
It is natural to introduce a staggered mesh (see Section 1.8.1) and seek u at mesh points tn (the numerical value is denoted by un) and v
n+1 between mesh points at tn+1/2 (the numerical value is denoted by v 2 ).
A centered difference approximation to (1.96)-(1.95) can then be written in operator notation as
[Dtv = m−1 (F(t) − f(v) − s(u))]n, (1.97)
[D u = v]n+1 . (1.98) t2
Written out,
1.10 Generalization: damping, nonlinearities, and excitation
77
n+1 n−1
v 2 −v 2 =m−1(Fn−f(vn)−s(un)),
(1.99)
(1.100)
∆t
f(v ):f(v )≈=2(f(v 2)+f(v 2)).Thesystem(1.99)-(1.100)can
n n+1 then be solved with respect to the unknowns u and v 2 :
∆t
un − un−1 1
=vn+2 . n n 1 n−1 n+1
With linear damping, f(v) = bv, we can use an arithmetic mean for
n+1 b −1n−1 −1n 1 n−1 n v2=1+ ∆t v2+∆tm F−f(v2)−s(u) ,
2m 2 2
(1.101) un=un−1+∆tvn−1 . (1.102)
In case of quadratic damping, f(v) = b|v|v, we can use a geometric n n−1 n+1
mean: f(v ) ≈ b|v 2 |v 2 . Inserting this approximation in (1.99)-
n n+1 (1.100) and solving for the unknowns u and v 2
results in
vn+1 =(1+ b|vn−1|∆t)−1vn−1 +∆tm−1(Fn−s(un)), (1.103)
222
m un=un−1+∆tvn−1 .
The initial conditions are derived at the end of Section 1.8.1: u0 = I,
2
v1 =V−1∆tω2I.
2
1.10.11 The PEFRL 4th-order accurate algorithm
(1.104)
(1.105) (1.106)
2
A variant of the Euler-Cromer type of algorithm, which provides an error O(∆t4) if f(v) = 0, is called PEFRL [14]. This algorithm is very well suited for integrating dynamic systems (especially those without damping) over very long time periods. Define
g(u,v)= 1(F(t)−s(u)−f(v)). m
The algorithm is explicit and features these simple steps:
78
1 Vibration ODEs
un+1,1 = un + ξ∆tvn,
vn+1,1 =vn+1(1−2λ)∆tg(un+1,1,vn), 2
un+1,2 = un+1,1 + χ∆tvn+1,1,
vn+1,2 = vn+1,1 + λ∆tg(un+1,2, vn+1,1),
un+1,3 = un+1,2 + (1 − 2(χ + ξ))∆tvn+1,2, vn+1,3 = vn+1,2 + λ∆tg(un+1,3, vn+1,2),
un+1,4 = un+1,3 + χ∆tvn+1,3,
vn+1 =vn+1,3+1(1−2λ)∆tg(un+1,4,vn+1,3), 2
un+1 = un+1,4 + ξ∆tvn+1
The parameters ξ, λ, and ξ have the values
ξ = 0.1786178958448091,
λ = −0.2123418310626054, χ = −0.06626458266981849
1.11 Exercises and Problems
Exercise 1.19: Implement the solver via classes
(1.107) (1.108)
(1.109) (1.110) (1.111) (1.112) (1.113)
(1.114) (1.115)
(1.116) (1.117) (1.118)
Reimplement the vib.py program using a class Problem to hold all the physical parameters of the problem, a class Solver to hold the numerical parameters and compute the solution, and a class Visualizer to display the solution.
Hint. Use the ideas and examples from Section ?? and ?? in [9]. More specifically, make a superclass Problem for holding the scalar physical parameters of a problem and let subclasses implement the s(u) and F(t) functions as methods. Try to call up as much existing functionality in vib.py as possible.
Filename: vib_class.
1.11 Exercises and Problems 79
Problem 1.20: Use a backward difference for the damping term
As an alternative to discretizing the damping terms βu′ and β|u′|u′ by centered differences, we may apply backward differences:
[u′]n ≈ [Dt−u]n, [|u′ |u′ ]n
≈ [|Dt−u|Dt−u]n
= |[Dt−u]n|[Dt−u]n .
The advantage of the backward difference is that the damping term is evaluated using known values un and un−1 only. Extend the vib.py code with a scheme based on using backward differences in the damping terms. Add statements to compare the original approach with centered difference and the new idea launched in this exercise. Perform numerical experiments to investigate how much accuracy that is lost by using the backward differences.
Filename: vib_gen_bwdamping.
Exercise 1.21: Use the forward-backward scheme with
quadratic damping
We consider the generalized model with quadratic damping, expressed as a system of two first-order equations as in Section 1.10.10:
u′ = v,
v′ = 1 (F(t)−β|v|v−s(u)) .
m
However, contrary to what is done in Section 1.10.10, we want to apply the idea of a forward-backward discretization: u is marched forward by a one-sided Forward Euler scheme applied to the first equation, and thereafter v can be marched forward by a Backward Euler scheme in the second equation, see in Section 1.7. Express the idea in operator notation and write out the scheme. Unfortunately, the backward difference for the v equation creates a nonlinearity |vn+1|vn+1. To linearize this nonlinearity, use the known value vn inside the absolute value factor, i.e.,
80 1 Vibration ODEs
|vn+1|vn+1 ≈ |vn|vn+1. Show that the resulting scheme is equivalent to the one in Section 1.10.10 for some time level n ≥ 1.
What we learn from this exercise is that the first-order differences and the linearization trick play together in “the right way” such that the scheme is as good as when we (in Section 1.10.10) carefully apply centered differences and a geometric mean on a staggered mesh to achieve second-order accuracy. There is a difference in the handling of the initial conditions, though, as explained at the end of Section 1.7. Filename: vib_gen_bwdamping.
1.12 Applications of vibration models
The following text derives some of the most well-known physical problems that lead to second-order ODE models of the type addressed in this book. We consider a simple spring-mass system; thereafter extended with nonlinear spring, damping, and external excitation; a spring-mass system with sliding friction; a simple and a physical (classical) pendulum; and an elastic pendulum.
1.12.1 Oscillating mass attached to a spring
u(t)
ku
m
Fig. 1.17 Simple oscillating mass.
The most fundamental mechanical vibration system is depicted in Figure 1.17. A body with mass m is attached to a spring and can move horizontally without friction (in the wheels). The position of the body is given by the vector r(t) = u(t)i, where i is a unit vector in x direction.
1.12 Applications of vibration models 81
There is only one force acting on the body: a spring force Fs = −kui, where k is a constant. The point x = 0, where u = 0, must therefore correspond to the body’s position where the spring is neither extended nor compressed, so the force vanishes.
The basic physical principle that governs the motion of the body is Newton’s second law of motion: F = ma, where F is the sum of forces on the body, m is its mass, and a = r ̈ is the acceleration. We use the dot for differentiation with respect to time, which is usual in mechanics. Newton’s second law simplifies here to −Fs = mu ̈i, which translates to
− k u = m u ̈ .
Two initial conditions are needed: u(0) = I , u ̇ (0) = V . The ODE problem
is normally written as
mu ̈+ku=0, u(0)=I, u ̇(0)=V . (1.119)
It is not uncommon to divide by m and introduce the frequency ω = k/m:
u ̈+ω2u=0, u(0)=I, u ̇(0)=V . (1.120)
This is the model problem in the first part of this chapter, with the small difference that we write the time derivative of u with a dot above, while we used u′ and u′′ in previous parts of the book.
Since only one scalar mathematical quantity, u(t), describes the com- plete motion, we say that the mechanical system has one degree of freedom (DOF).
Scaling. For numerical simulations it is very convenient to scale (1.120) and thereby get rid of the problem of finding relevant values for all the parameters m, k, I, and V . Since the amplitude of the oscillations are dictated by I and V (or more precisely, V/ω), we scale u by I (or V/ω if I = 0):
u ̄=u, t ̄=t. I tc
The time scale tc is normally chosen as the inverse period 2π/ω or angular frequency 1/ω, most often as tc = 1/ω. Inserting the dimensionless quantities u ̄ and t ̄ in (1.120) results in the scaled problem
d2u ̄+u ̄=0, u ̄(0)=1, u ̄(0)=β= V , d t ̄ 2 t ̄ I ω
82 1 Vibration ODEs
where β is a dimensionless number. Any motion that starts from rest (V = 0) is free of parameters in the scaled model!
The physics. The typical physics of the system in Figure 1.17 can be described as follows. Initially, we displace the body to some position I, say at rest (V = 0). After releasing the body, the spring, which is extended, will act with a force −kIi and pull the body to the left. This force causes an acceleration and therefore increases velocity. The body passes the point x = 0, where u = 0, and the spring will then be compressed and act with a force kxi against the motion and cause retardation. At some point, the motion stops and the velocity is zero, before the spring force kxi has worked long enough to push the body in positive direction. The result is that the body accelerates back and forth. As long as there is no friction forces to damp the motion, the oscillations will continue forever.
1.12.2 General mechanical vibrating system
m
u(t)
ku
bu′
Fig. 1.18 General oscillating system.
F(t)
The mechanical system in Figure 1.17 can easily be extended to the more general system in Figure 1.18, where the body is attached to a spring and a dashpot, and also subject to an environmental force F(t)i. The system has still only one degree of freedom since the body can only move back and forth parallel to the x axis. The spring force was linear, Fs = −kui, in Section 1.12.1, but in more general cases it can depend nonlinearly on the position. We therefore set Fs = s(u)i. The dashpot, which acts as a damper, results in a force Fd that depends on the body’s velocity u ̇ and that always acts against the motion. The mathematical model of the force is written Fd = f(u ̇)i. A positive u ̇ must result in
1.12 Applications of vibration models 83
a force acting in the positive x direction. Finally, we have the external environmental force Fe = F (t)i.
Newton’s second law of motion now involves three forces:
F ( t ) i + f ( u ̇ ) i − s ( u ) i = m u ̈ i .
The common mathematical form of the ODE problem is
mu ̈+f(u ̇)+s(u)=F(t), u(0)=I, u ̇(0)=V . (1.121)
This is the generalized problem treated in the last part of the present chapter, but with prime denoting the derivative instead of the dot.
The most common models for the spring and dashpot are linear: f(u ̇) = bu ̇ with a constant b ≥ 0, and s(u) = ku for a constant k.
Scaling. A specific scaling requires specific choices of f , s, and F . Suppose we have
f(u ̇) = b|u ̇|u ̇, s(u) = ku, F(t) = Asin(φt).
We introduce dimensionless variables as usual, u ̄ = u/uc and t ̄ = t/tc. The scale uc depends both on the initial conditions and F, but as time grows, the effect of the initial conditions die out and F will drive the motion. Inserting u ̄ and t ̄ in the ODE gives
u c d 2 u ̄ m ̄
u 2c d u ̄ d u ̄
̄
+ b
We divide by uc/t2c and demand the coefficients of the u ̄ and the forcing
̄ ̄ + kucu ̄ = A sin(φtct) . t 2c d t d t
t 2c d t 2
term from F(t) to have unit coefficients. This leads to the scales
m A tc= k, uc=k.
The scaled ODE becomes
d2u ̄
d t ̄ 2
where there are two dimensionless numbers:
+ 2β
+ u ̄ = sin(γt),
du ̄ du ̄
̄
(1.122)
The β number measures the size of the damping term (relative to unity) and is assumed to be small, basically because b is small. The φ number
d t ̄ d t ̄
Ab m
β=2mk, γ=φ k.
84 1 Vibration ODEs
is the ratio of the time scale of free vibrations and the time scale of the forcing. The scaled initial conditions have two other dimensionless numbers as values:
Ikdu ̄tc V√ u ̄(0)=A, dt ̄=uV=A mk.
c
1.12.3 A sliding mass attached to a spring
Consider a variant of the oscillating body in Section 1.12.1 and Figure 1.17: the body rests on a flat surface, and there is sliding friction between the body and the surface. Figure 1.19 depicts the problem.
u(t)
s(u)
m
Fig. 1.19 Sketch of a body sliding on a surface.
The body is attached to a spring with spring force −s(u)i. The friction force is proportional to the normal force on the surface, −mgj, and given by −f(u ̇)i, where
−μmg, u ̇ < 0, f(u ̇)= μmg, u ̇>0,
0 , u ̇ = 0
Here, μ is a friction coefficient. With the signum function
− 1 , x < 0 , sign(x) = 1, x > 0,
0 , x = 0
we can simply write f (u ̇ ) = μmg sign(u ̇ ) (the sign function is implemented by numpy.sign).
The equation of motion becomes
1.12 Applications of vibration models 85
mu ̈ + μmgsign(u ̇) + s(u) = 0, u(0) = I, u ̇(0) = V . (1.123) 1.12.4 A jumping washing machine
A washing machine is placed on four springs with efficient dampers. If the machine contains just a few clothes, the circular motion of the machine induces a sinusoidal external force and the machine will jump up and down if the frequency of the external force is close to the natural frequency of the machine and its spring-damper system.
1.12.5 Motion of a pendulum
Simple pendulum. A classical problem in mechanics is the motion of a pendulum. We first consider a simple pendulum (sometimes also called a mathematical pendulum): a small body of mass m is attached to a massless wire and can oscillate back and forth in the gravity field. Figure 1.20 shows a sketch of the problem.
θ
L
g
m
Fig. 1.20 Sketch of a simple pendulum.
The motion is governed by Newton’s 2nd law, so we need to find expressions for the forces and the acceleration. Three forces on the body
86 1 Vibration ODEs
are considered: an unknown force S from the wire, the gravity force mg, and an air resistance force, 1CDρA|v|v, hereafter called the drag force,
2
directed against the velocity of the body. Here, CD is a drag coefficient, ρ is the density of air, A is the cross section area of the body, and v is the magnitude of the velocity.
We introduce a coordinate system with polar coordinates and unit vectors ir and iθ as shown in Figure 1.21. The position of the center of mass of the body is
r(t) = x0i + y0j + Lir,
where i and j are unit vectors in the corresponding Cartesian coordinate system in the x and y directions, respectively. We have that ir = cos θi + sinθj.
iθ (x0 ,y0 )
ir θ
S
∼ |v|v m
mg
Fig. 1.21 Forces acting on a simple pendulum.
The forces are now expressed as follows.
• Wire force: −Sir
• Gravity force: −mgj = mg(− sin θ iθ + cos θ ir)
• Drag force: −1CDρA|v|viθ 2
1.12 Applications of vibration models 87
Since a positive velocity means movement in the direction of iθ, the drag
force must be directed along −iθ so it works against the motion. We
assume motion in air so that the added mass effect can be neglected
(for a spherical body, the added mass is 1 ρV , where V is the volume 2
of the body). Also the buoyancy effect can be neglected for motion in the air when the density difference between the fluid and the body is so significant.
The velocity of the body is found from r:
v(t)=r ̇(t)= d(x0i+y0j+Lir)dθ=Lθ ̇iθ,
dθ dt
since d ir = iθ. It follows that v = |v| = Lθ ̇. The acceleration is
dθ
a(t)=v ̇(r)= d(Lθ ̇iθ)=Lθ ̈iθ+Lθ ̇diθθ ̇==Lθ ̈iθ−Lθ ̇2ir, dt dθ
since d iθ = −ir. dθ
Newton’s 2nd law of motion becomes
−Sir +mg(−sinθiθ +cosθir)−1CDρAL2|θ ̇|θ ̇iθ =mLθ ̈θ ̇iθ −Lθ ̇2ir, 2
leading to two component equations
−S + mg cos θ = −Lθ ̇2, (1.124)
−mg sin θ − 1CDρAL2|θ ̇|θ ̇ = mLθ ̈. (1.125) 2
From (1.124) we get an expression for S = mg cos θ + Lθ ̇2, and from (1.125) we get a differential equation for the angle θ(t). This latter
equation is ordered as
mθ ̈+ 1CDρAL|θ ̇|θ ̇ + mg sinθ = 0. (1.126)
Two initial conditions are needed: θ = Θ and θ ̇ = Ω. Normally, the pendulum motion is started from rest, which means Ω = 0.
Equation (1.126) fits the general model used in (1.71) in Section 1.10 if we define u = θ, f(u′) = 1CDρAL|u ̇|u ̇, s(u) = L−1mgsinu, and
2
F =0.IfthebodyisaspherewithradiusR,wecantakeCD =0.4and
2L
88 1 Vibration ODEs
A = πR2. Exercise 1.25 asks you to scale the equations and carry out specific simulations with this model.
Physical pendulum. The motion of a compound or physical pendulum where the wire is a rod with mass, can be modeled very similarly. The governing equation is Ia = T where I is the moment of inertia of the entire body about the point (x0,y0), and T is the sum of moments of the forces with respect to (x0,y0). The vector equation reads
r×(−Sir+mg(− sin θiθ+cos θir)−1CDρAL2|θ ̇|θ ̇iθ) = I(Lθ ̈θ ̇iθ−Lθ ̇2ir) . 2
The component equation in iθ direction gives the equation of motion for θ(t):
Iθ ̈+ 1CDρAL3|θ ̇|θ ̇ + mgLsinθ = 0. (1.127) 2
1.12.6 Dynamic free body diagram during pendulum motion
Usually one plots the mathematical quantities as functions of time to visualize the solution of ODE models. Exercise 1.25 asks you to do this for the motion of a pendulum in the previous section. However, sometimes it is more instructive to look at other types of visualizations. For example, we have the pendulum and the free body diagram in Figures 1.20 and 1.21. We may think of these figures as animations in time instead. Especially the free body diagram will show both the motion of the pendulum and the size of the forces during the motion. The present section exemplifies how to make such a dynamic body diagram. Two typical snapshots of free body diagrams are displayed below (the drag force is magnified 5 times to become more visual!).
1.12 Applications of vibration models 89
Dynamic physical sketches, coupled to the numerical solution of differ- ential equations, requires a program to produce a sketch for the situation at each time level. Pysketcher is such a tool. In fact (and not surprising!) Figures 1.20 and 1.21 were drawn using Pysketcher. The details of the drawings are explained in the Pysketcher tutorial. Here, we outline how this type of sketch can be used to create an animated free body diagram during the motion of a pendulum.
Pysketcher is actually a layer of useful abstractions on top of standard plotting packages. This means that we in fact apply Matplotlib to make the animated free body diagram, but instead of dealing with a wealth of detailed Matplotlib commands, we can express the drawing in terms of more high-level objects, e.g., objects for the wire, angle θ, body with mass m, arrows for forces, etc. When the position of these objects are given through variables, we can just couple those variables to the dynamic solution of our ODE and thereby make a unique drawing for each θ value in a simulation.
Writing the solver. Let us start with the most familiar part of the current problem: writing the solver function. We use Odespy for this purpose. We also work with dimensionless equations. Since θ can be viewed as dimensionless, we only need to introduce a dimensionless time, here taken as t ̄ = t/L/g. The resulting dimensionless mathematical model for θ, the dimensionless angular velocity ω, the dimensionless wire force S ̄, and the dimensionless drag force D ̄ is then
90
1 Vibration ODEs
dω = −α|ω|ω − sin θ, dt ̄
dθ = ω, dt ̄
S ̄ = ω2 + cos θ, D ̄ = −α|ω|ω,
α = CDρπR2L . 2m
(1.128)
(1.129)
(1.130) (1.131)
with
as a dimensionless parameter expressing the ratio of the drag force and the gravity force. The dimensionless ω is made non-dimensional by the time, so ωL/g is the corresponding angular frequency with dimensions.
A suitable function for computing (1.128)-(1.131) is listed below.
def simulate(alpha, Theta, dt, T):
import odespy
def f(u, t, alpha):
omega, theta = u
return [-alpha*omega*abs(omega) – sin(theta),
omega]
import numpy as np
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1)
solver = odespy.RK4(f, f_args=[alpha])
solver.set_initial_condition([0, Theta])
u, t = solver.solve(
t, terminate=lambda u, t, n: abs(u[n,1]) < 1E-3)
omega = u[:,0]
theta = u[:,1]
S = omega**2 + np.cos(theta)
drag = -alpha*np.abs(omega)*omega
return t, theta, omega, S, drag
Drawing the free body diagram. The sketch function below applies Pysketcher objects to build a diagram like that in Figure 1.21, except that we have removed the rotation point (x0,y0) and the unit vectors in polar coordinates as these objects are not important for an animated free body diagram.
import sys
try:
from pysketcher import *
except ImportError:
1.12 Applications of vibration models 91
print ’Pysketcher must be installed from’
print ’https://github.com/hplgit/pysketcher’
sys.exit(1)
# Overall dimensions of sketch
H = 15. W = 17.
drawing_tool.set_coordinate_system(
xmin=0, xmax=W, ymin=0, ymax=H,
axis=False)
def sketch(theta, S, mg, drag, t, time_level):
"""
Draw pendulum sketch with body forces at a time level
corresponding to time t. The drag force is in
drag[time_level], the force in the wire is S[time_level],
the angle is theta[time_level].
"""
import math
a = math.degrees(theta[time_level]) # angle in degrees
L = 0.4*H # Length of pendulum
P = (W/2, 0.8*H) # Fixed rotation point
mass_pt = path.geometric_features()[’end’]
rod = Line(P, mass_pt)
mass = Circle(center=mass_pt, radius=L/20.)
mass.set_filled_curves(color=’blue’)
rod_vec = rod.geometric_features()[’end’] - \
rod.geometric_features()[’start’]
unit_rod_vec = unit_vec(rod_vec)
mass_symbol = Text(’$m$’, mass_pt + L/10*unit_rod_vec)
rod_start = rod.geometric_features()[’start’] # Point P
vertical = Line(rod_start, rod_start + point(0,-L/3))
def set_dashed_thin_blackline(*objects):
"""Set linestyle of objects to dashed, black, width=1."""
for obj in objects:
obj.set_linestyle(’dashed’)
obj.set_linecolor(’black’)
obj.set_linewidth(1)
set_dashed_thin_blackline(vertical)
set_dashed_thin_blackline(rod)
angle = Arc_wText(r’$\theta$’, rod_start, L/6, -90, a,
text_spacing=1/30.)
magnitude = 1.2*L/2 # length of a unit force in figure
force = mg[time_level] # constant (scaled eq: about 1)
force *= magnitude
mg_force = Force(mass_pt, mass_pt + force*point(0,-1),
’’, text_pos=’end’)
92 1 Vibration ODEs
force = S[time_level]
force *= magnitude
rod_force = Force(mass_pt, mass_pt - force*unit_vec(rod_vec),
’’, text_pos=’end’,
text_spacing=(0.03, 0.01))
force = drag[time_level]
force *= magnitude
air_force = Force(mass_pt, mass_pt -
force*unit_vec((rod_vec[1], -rod_vec[0])),
’’, text_pos=’end’,
text_spacing=(0.04,0.005))
body_diagram = Composition(
{’mg’: mg_force, ’S’: rod_force, ’air’: air_force,
’rod’: rod, ’body’: mass
’vertical’: vertical, ’theta’: angle,})
body_diagram.draw(verbose=0)
drawing_tool.savefig(’tmp_%04d.png’ % time_level, crop=False)
# (No cropping: otherwise movies will be very strange!)
Making the animated free body diagram. It now remains to couple the simulate and sketch functions. We first run simulate:
from math import pi, radians, degrees
import numpy as np
alpha = 0.4
period = 2*pi # Use small theta approximation
T = 12*period # Simulate for 12 periods
dt = period/40 # 40 time steps per period
a = 70 # Initial amplitude in degrees
Theta = radians(a)
t, theta, omega, S, drag = simulate(alpha, Theta, dt, T)
The next step is to run through the time levels in the simulation and make a sketch at each level:
The individual sketches are (by the sketch function) saved in files with names tmp_%04d.png. These can be combined to videos using (e.g.) ffmpeg. A complete function animate for running the simulation and creating video files is listed below.
for time_level, t_ in enumerate(t):
sketch(theta, S, mg, drag, t_, time_level)
def animate():
# Clean up old plot files
import os, glob
for filename in glob.glob(’tmp_*.png’) + glob.glob(’movie.*’):
os.remove(filename)
# Solve problem
1.12 Applications of vibration models 93
from math import pi, radians, degrees
import numpy as np
alpha = 0.4
period = 2*pi # Use small theta approximation
T = 12*period # Simulate for 12 periods
dt = period/40 # 40 time steps per period
a = 70 # Initial amplitude in degrees
Theta = radians(a)
t, theta, omega, S, drag = simulate(alpha, Theta, dt, T)
# Visualize drag force 5 times as large
drag *= 5
mg = np.ones(S.size) # Gravity force (needed in sketch)
# Draw animation
import time
for time_level, t_ in enumerate(t):
sketch(theta, S, mg, drag, t_, time_level)
time.sleep(0.2) # Pause between each frame on the screen
# Make videos
prog = ’ffmpeg’
filename = ’tmp_%04d.png’
fps = 6
codecs = {’flv’: ’flv’, ’mp4’: ’libx264’,
’webm’: ’libvpx’, ’ogg’: ’libtheora’}
for ext in codecs:
lib = codecs[ext]
cmd = ’%(prog)s -i %(filename)s -r %(fps)s ’ % vars()
cmd += ’-vcodec %(lib)s movie.%(ext)s’ % vars()
print(cmd)
os.system(cmd)
1.12.7 Motion of an elastic pendulum
Consider a pendulum as in Figure 1.20, but this time the wire is elastic. The length of the wire when it is not stretched is L0, while L(t) is the stretched length at time t during the motion.
Stretching the elastic wire a distance ∆L gives rise to a spring force k∆L in the opposite direction of the stretching. Let n be a unit normal vector along the wire from the point r0 = (x0, y0) and in the direction of iθ, see Figure 1.21 for definition of (x0,y0) and iθ. Obviously, we have n = iθ, but in this modeling of an elastic pendulum we do not need polar coordinates. Instead, it is more straightforward to develop the equation in Cartesian coordinates.
A mathematical expression for n is
94
1 Vibration ODEs
n = r − r0 , L(t)
where L(t) = ||r − r0|| is the current length of the elastic wire. The position vector r in Cartesian coordinates reads r(t) = x(t)i + y(t)j, where i and j are unit vectors in the x and y directions, respectively. It is convenient to introduce the Cartesian components nx and ny of the normal vector:
n=r−r0 =x(t)−x0i+y(t)−y0j=nxi+nyj. L(t) L(t) L(t)
The stretch ∆L in the wire is
∆t = L(t) − L0 .
The force in the wire is then −Sn = −k∆Ln.
The other forces are the gravity and the air resistance, just as in
Figure 1.21. For motion in air we can neglect the added mass and buoyancy effects. The main difference is that we have a model for S in terms of the motion (as soon as we have expressed ∆L by r). For simplicity, we drop the air resistance term (but Exercise 1.27 asks you to include it).
Newton’s second law of motion applied to the body now results in
mr ̈ = −k(L − L0)n − mgj The two components of (1.132) are
x ̈ = − k (L − L0)nx, m
y ̈=−k(L−L0)ny −g. m
(1.132)
(1.133) (1.134)
(1.135)
Remarks about an elastic vs a non-elastic pendulum. Note that the derivation of the ODEs for an elastic pendulum is more straightforward than for a classical, non-elastic pendulum, since we avoid the details with polar coordinates, but instead work with Newton’s second law directly in Cartesian coordinates. The reason why we can do this is that the elastic pendulum undergoes a general two-dimensional motion where all the forces are known or expressed as functions of x(t) and y(t), such that
1.12 Applications of vibration models 95
we get two ordinary differential equations. The motion of the non-elastic pendulum, on the other hand, is constrained: the body has to move along a circular path, and the force S in the wire is unknown.
The non-elastic pendulum therefore leads to a differential-algebraic equation, i.e., ODEs for x(t) and y(t) combined with an extra constraint (x − x0)2 + (y − y0)2 = L2 ensuring that the motion takes place along a circular path. The extra constraint (equation) is compensated by an extra unknown force −Sn. Differential-algebraic equations are normally
hard to solve, especially with pen and paper. Fortunately, for the non- elastic pendulum we can do a trick: in polar coordinates the unknown force S appears only in the radial component of Newton’s second law, while the unknown degree of freedom for describing the motion, the angle θ(t), is completely governed by the asimuthal component. This allows us to decouple the unknowns S and θ. But this is a kind of trick and not a widely applicable method. With an elastic pendulum we use straightforward reasoning with Newton’s 2nd law and arrive at a standard ODE problem that (after scaling) is easy solve on a computer.
Initial conditions. What is the initial position of the body? We imagine that first the pendulum hangs in equilibrium in its vertical position, and then it is displaced an angle Θ. The equilibrium position is governed by the ODEs with the accelerations set to zero. The x component leads to x(t) = x0, while the y component gives
0 = − k (L−L0)ny −g = k (L(0)−L0)−g ⇒ L(0) = L0 +mg/k, mm
since ny = −11 in this position. The corresponding y value is then from ny = −1:
y(t)=y0 −L(0)=y0 −(L0 +mg/k).
Let us now choose (x0,y0) such that the body is at the origin in the
equilibrium position:
x0=0, y0=L0+mg/k.
Displacing the body an angle Θ to the right leads to the initial position
x(0)=(L0 +mg/k)sinΘ, y(0)=(L0 +mg/k)(1−cosΘ).
96 1 Vibration ODEs
The initial velocities can be set to zero: x′(0) = y′(0) = 0.
The complete ODE problem. We can summarize all the equations as
follows:
x ̈ = − k ( L − L 0 ) n x , m
y ̈=−k(L−L0)ny −g, m
L=(x−x0)2 +(y−y0)2, nx = x−x0,
L
ny = y − y0 , L
x(0) = (L0 + mg/k) sin Θ, x′(0) = 0,
y(0) = (L0 + mg/k)(1 − cos Θ), y′(0) = 0.
We insert nx and ny in the ODEs:
x ̈ = − k 1 − L 0 ( x − x 0 ) ,
mL
y ̈=−k 1−L0(y−y0)−g, mL
L=(x−x0)2 +(y−y0)2,
x(0) = (L0 + mg/k) sin Θ, x′(0) = 0,
y(0) = (L0 + mg/k)(1 − cos Θ), y′(0) = 0.
(1.136) (1.137)
(1.138)
(1.139) (1.140) (1.141) (1.142)
Scaling. The elastic pendulum model can be used to study both an elastic pendulum and a classic, non-elastic pendulum. The latter problem is obtained by letting k → ∞. Unfortunately, a serious problem with the ODEs (1.136)-(1.137) is that for large k, we have a very large factor k/m multiplied by a very small number 1 − L0/L, since for large k, L ≈ L0 (very small deformations of the wire). The product is subject to significant round-off errors for many relevant physical values of the
1.12 Applications of vibration models 97
parameters. To circumvent the problem, we introduce a scaling. This will also remove physical parameters from the problem such that we end up with only one dimensionless parameter, closely related to the elasticity of the wire. Simulations can then be done by setting just this dimensionless parameter.
The characteristic length can be taken such that in equilibrium, the scaled length is unity, i.e., the characteristic length is L0 + mg/k:
x ̄= x ,y ̄= y . L0 + mg/k L0 + mg/k
We must then also work with the scaled length L ̄ = L/(L0 + mg/k). Introducing t ̄= t/tc, where tc is a characteristic time we have to decide
,
upon later, one gets
d2x ̄ 2k L0 1
dt ̄2 =−tcm 1−L0+mg/kL ̄ x ̄,
d2y ̄ = −t2 k 1 − L0 1 (y ̄ − 1) − t2 g
dt ̄2 c m L0 + mg/k L ̄ c L0 + mg/k L ̄ = x ̄2 + (y ̄ − 1)2,
x ̄(0) = sin Θ, x ̄′(0) = 0,
y ̄(0) = 1 − cos Θ, y ̄′(0) = 0.
For a non-elastic pendulum with small angles, we know that the frequency of the oscillations are ω = L/g. It is therefore natural to choose a similar expression here, either the length in the equilibrium position,
t2c = L0 + mg/k . g
or simply the unstretched length,
t 2c = L 0 .
g
These quantities are not very different (since the elastic model is valid only for quite small elongations), so we take the latter as it is the simplest one.
The ODEs become
98
1 Vibration ODEs
d2x ̄ L0k L0 1 dt ̄2 =−mg 1−L0+mg/kL ̄ x ̄,
d2y ̄ = −L0k 1 − L0 1 (y ̄ − 1) − dt ̄2 mg L0 + mg/k L ̄
L ̄ = x ̄2 + (y ̄ − 1)2 .
We can now identify a dimensionless number
β= L0 = 1 , L0 + mg/k 1 + mg
L0k
L0 , L0 + mg/k
which is the ratio of the unstretched length and the stretched length in equilibrium. The non-elastic pendulum will have β = 1 (k → ∞). With β the ODEs read
d2x ̄ ββ dt ̄2 =−1−β 1−L ̄ x ̄,
d2y ̄ ββ
dt ̄2 =−1−β 1−L ̄ (y ̄−1)−β,
L ̄ = x ̄2 + (y ̄ − 1)2, x ̄(0) = (1 + ε) sin Θ,
dx ̄(0) = 0, dt ̄
y ̄(0) = 1 − (1 + ε) cos Θ, dy ̄(0) = 0,
(1.143)
(1.144)
(1.145) (1.146)
(1.147) (1.148)
(1.149)
dt ̄
We have here added a parameter ε, which is an additional downward stretch of the wire at t = 0. This parameter makes it possible to do a desired test: vertical oscillations of the pendulum. Without ε, starting the motion from (0,0) with zero velocity will result in x = y = 0 for all times (also a good test!), but with an initial stretch so the body’s position is (0, ε), we will have oscillatory vertical motion with amplitude ε (see Exercise 1.26).
Remark on the non-elastic limit. We immediately see that as k → ∞ (i.e., we obtain a non-elastic pendulum), β → 1, L ̄ → 1, and we have very small values 1 − βL ̄−1 divided by very small values 1 − β in the ODEs.
1.12 Applications of vibration models 99
However, it turns out that we can set β very close to one and obtain a path of the body that within the visual accuracy of a plot does not show any elastic oscillations. (Should the division of very small values become a problem, one can study the limit by L’Hospital’s rule:
1−βL ̄−1 1 lim = ̄,
β→1 1−β L
and use the limit L ̄−1 in the ODEs for β values very close to 1.)
1.12.8 Vehicle on a bumpy road
r0
Fig. 1.22 Sketch of one-wheel vehicle on a bumpy road.
We consider a very simplistic vehicle, on one wheel, rolling along a bumpy road. The oscillatory nature of the road will induce an exter- nal forcing on the spring system in the vehicle and cause vibrations. Figure 1.22 outlines the situation.
To derive the equation that governs the motion, we must first establish the position vector of the black mass at the top of the spring. Suppose the spring has length L without any elongation or compression, suppose the radius of the wheel is R, and suppose the height of the black mass at the top is H. With the aid of the r0 vector in Figure 1.22, the position r of the center point of the mass is
r = r0 + 2Rj + Lj + uj + 1Hj, (1.150) 2
100 1 Vibration ODEs
where u is the elongation or compression in the spring according to the (unknown and to be computed) vertical displacement u relative to the road. If the vehicle travels with constant horizontal velocity v and h(x)
is the shape of the road, then the vector r0 is r0 = vti + h(vt)j,
if the motion starts from x = 0 at time t = 0.
The forces on the mass is the gravity, the spring force, and an optional
damping force that is proportional to the vertical velocity u ̇. Newton’s second law of motion then tells that
This leads to
mr ̈ = −mgj − s(u) − bu ̇j .
mu ̈ = −s(u) − bu ̇ − mg − mh′′(vt)v2
To simplify a little bit, we omit the gravity force mg in comparison with the other terms. Introducing u′ for u ̇ then gives a standard damped, vibration equation with external forcing:
mu′′ + bu′ + s(u) = −mh′′(vt)v2 . (1.151)
Since the road is normally known just as a set of array values, h′′ must be computed by finite differences. Let ∆x be the spacing between measured values hi = h(i∆x) on the road. The discrete second-order derivative h′′ reads
qi = hi−1 −2hi +hi+1, i=1,...,Nx −1. ∆x2
We may for maximum simplicity set the end points as q0 = q1 and qNx = qNx−1. The term −mh′′(vt)v2 corresponds to a force with discrete time values
Fn = −mqnv2, ∆t = v−1∆x. This force can be directly used in a numerical model
[mDtDtu + bD2tu + s(u) = F]n .
Software for computing u and also making an animated sketch of the motion like we did in Section 1.12.6 is found in a separate project on
1.12 Applications of vibration models 101
the web: https://github.com/hplgit/bumpy. You may start looking at the tutorial.
1.12.9 Bouncing ball
A bouncing ball is a ball in free vertically fall until it impacts the ground, but during the impact, some kinetic energy is lost, and a new motion upwards with reduced velocity starts. After the motion is retarded, a new free fall starts, and the process is repeated. At some point the velocity close to the ground is so small that the ball is considered to be finally at rest.
The motion of the ball falling in air is governed by Newton’s second law F = ma, where a is the acceleration of the body, m is the mass, and F is the sum of all forces. Here, we neglect the air resistance so that gravity −mg is the only force. The height of the ball is denoted by h and v is the velocity. The relations between h, v, and a,
h′(t) = v(t), v′(t) = a(t), combined with Newton’s second law gives the ODE model
h′′(t) = −g,
or expressed alternatively as a system of first-order equations:
v′(t) = −g, h′(t) = v(t) .
(1.152)
(1.153) (1.154)
These equations govern the motion as long as the ball is away from the ground by a small distance εh > 0. When h < εh, we have two cases.
1. The ball impacts the ground, recognized by a sufficiently large negative velocity (v < −εv). The velocity then changes sign and is reduced by a factor CR, known as the coefficient of restitution. For plotting purposes, one may set h = 0.
2. The motion stops, recognized by a sufficiently small velocity (|v| < εv) close to the ground.
102 1 Vibration ODEs
1.12.10 Two-body gravitational problem
Consider two astronomical objects A and B that attract each other by gravitational forces. A and B could be two stars in a binary system, a planet orbiting a star, or a moon orbiting a planet. Each object is acted upon by the gravitational force due to the other object. Consider motion in a plane (for simplicity) and let (xA,yA) and (xB,yB) be the positions of object A and B, respectively.
The governing equations. Newton’s second law of motion applied to each object is all we need to set up a mathematical model for this physical problem:
mAx ̈A =F, mBx ̈B =−F,
where F is the gravitational force
F = GmAmB r,
||r||3
where
r(t) = xB(t) − xA(t),
and G is the gravitational constant: G = 6.674 · 10−11 Nm2/kg2.
(1.155) (1.156)
Scaling. A problem with these equations is that the parameters are very large (mA, mB, ||r||) or very small (G). The rotation time for binary stars can be very small and large as well. It is therefore advantageous to scale the equations. A natural length scale could be the initial distance between the objects: L = r(0). We write the dimensionless quantities as
x ̄A=xA, x ̄B=xB, t ̄=t. L L tc
The gravity force is transformed to
F=GmAmBr ̄, r ̄=x ̄B−x ̄A,
L2 ||r ̄||3 so the first ODE for xA becomes
d2x ̄A=GmBt2c r ̄. dt ̄2 L3 ||r ̄||3
1.12 Applications of vibration models 103
Assuming that quantities with a bar and their derivatives are around unity in size, it is natural to choose tc such that the fraction GmBtc/L2 = 1:
L3
tc = Gm .
B
From the other equation for xB we get another candidate for tc with mA instead of mB. Which mass we choose play a role if mA ≪ mB or mB ≪ mA. One solution is to use the sum of the masses:
L3
tc= G(mA+mB).
Taking a look at Kepler’s laws of planetary motion, the orbital period for
a planet around the star is given by the tc above, except for a missing
factor of 2π, but that means that t−1 is just the angular frequency c
of the motion. Our characteristic time tc is therefore highly relevant. Introducing the dimensionless number
α = mA , mB
we can write the dimensionless ODE as
d2x ̄A=1 r ̄, dt ̄2 1 + α ||r ̄||3
d2x ̄B= 1 r ̄. dt ̄2 1 + α−1 ||r ̄||3
(1.157)
(1.158)
In the limit mA ≪ mB, i.e., α ≪ 1, object B stands still, say x ̄B = 0, and object A orbits according to
d2x ̄A=−x ̄A . dt ̄2 ||x ̄ A ||3
Solution in a special case: planet orbiting a star. To better see the motion, and that our scaling is reasonable, we introduce polar coordinates r and θ:
x ̄A =rcosθi+rsinθj, which means x ̄A can be written as x ̄A = rir. Since
104
1 Vibration ODEs
dir =θ ̇iθ, dt
diθ =−θ ̇ir, dt
we have
d2x ̄A =(r ̈−rθ ̇2)ir+(rθ ̈+2r ̇θ ̇)iθ. dt ̄2
The equation of motion for mass A is then r ̈ − r θ ̇ 2 = − 1 ,
r2 r θ ̈ + 2 r ̇ θ ̇ = 0 .
The special case of circular motion, r = 1, fulfills the equations, since the latter equation then gives θ ̇ = const and the former then gives θ ̇ = 1, i.e., the motion is r(t) = 1, θ(t) = t, with unit angular frequency as expected and period 2π as expected.
1.12.11 Electric circuits
Although the term “mechanical vibrations” is used in the present book, we must mention that the same type of equations arise when modeling electric circuits. The current I(t) in a circuit with an inductor with inductance L, a capacitor with capacitance C, and overall resistance R, is governed by
I ̈+RI ̇+ 1 I=V ̇(t), (1.159) L LC
where V (t) is the voltage source powering the circuit. This equation has the same form as the general model considered in Section 1.10 if wesetu=I,f(u′)=bu′ anddefineb=R/L,s(u)=L−1C−1u,and F ( t ) = V ̇ ( t ) .
1.13 Exercises
Exercise 1.22: Simulate resonance
We consider the scaled ODE model (1.122) from Section 1.12.2. After scaling, the amplitude of u will have a size about unity as time grows and
1.13 Exercises 105
the effect of the initial conditions die out due to damping. However, as γ → 1, the amplitude of u increases, especially if β is small. This effect is called resonance. The purpose of this exercise is to explore resonance.
a) Figure out how the solver function in vib.py can be called for the scaled ODE (1.122).
b) Run γ = 5, 1.5, 1.1, 1 for β = 0.005, 0.05, 0.2. For each β value, present an image with plots of u(t) for the four γ values.
Filename: resonance.
Exercise 1.23: Simulate oscillations of a sliding box
Consider a sliding box on a flat surface as modeled in Section 1.12.3. As spring force we choose the nonlinear formula
s(u)=ktanh(αu)=ku+1α2ku3+ 2α4ku5+O(u6). α 3 15
a) Plot g(u) = α−1 tanh(αu) for various values of α. Assume u ∈ [−1, 1]. b) Scale the equations using I as scale for u and m/k as time scale.
c) Implement the scaled model in b). Run it for some values of the dimensionless parameters.
Filename: sliding_box.
Exercise 1.24: Simulate a bouncing ball
Section 1.12.9 presents a model for a bouncing ball. Choose one of the two ODE formulation, (1.152) or (1.153)-(1.154), and simulate the motion of a bouncing ball. Plot h(t). Think about how to plot v(t).
Hint. A naive implementation may get stuck in repeated impacts for large time step sizes. To avoid this situation, one can introduce a state variable that holds the mode of the motion: free fall, impact, or rest. Two consecutive impacts imply that the motion has stopped.
Filename: bouncing_ball.
Exercise 1.25: Simulate a simple pendulum
Simulation of simple pendulum can be carried out by using the math- ematical model derived in Section 1.12.5 and calling up functionality
106 1 Vibration ODEs
in the vib.py file (i.e., solve the second-order ODE by centered finite differences).
a) Scale the model. Set up the dimensionless governing equation for θ and expressions for dimensionless drag and wire forces.
b) Write a function for computing θ and the dimensionless drag force and the force in the wire, using the solver function in the vib.py file. Plot these three quantities below each other (in subplots) so the graphs can be compared. Run two cases, first one in the limit of Θ small and no drag, and then a second one with Θ = 40 degrees and α = 0.8. Filename: simple_pendulum.
Exercise 1.26: Simulate an elastic pendulum
Section 1.12.7 describes a model for an elastic pendulum, resulting in a system of two ODEs. The purpose of this exercise is to implement the scaled model, test the software, and generalize the model.
a) Write a function simulate that can simulate an elastic pendulum using the scaled model. The function should have the following arguments:
To set the total simulation time and the time step, we use our knowledge
def simulate(
beta=0.9,
Theta=30,
# dimensionless parameter
# initial angle in degrees
# initial stretch of wire
# simulate for num_periods
epsilon=0,
num_periods=6,
time_steps_per_period=60, # time step resolution
plot=True, # make plots or not
):
of the scaled, classical, non-elastic pendulum: u′′ + u = 0, with solution ̄
u = Θ cos t. The period of these oscillations is P = 2π and the frequency is unity. The time for simulation is taken as num_periods times P . The time step is set as P divided by time_steps_per_period.
The simulate function should return the arrays of x, y, θ, and t,
where θ = tan−1(x/(1 − y)) is the angular displacement of the elastic
pendulum corresponding to the position (x, y). ̄ ̄
If plot is True, make a plot of y ̄(t) versus x ̄(t), i.e., the physical
motion of the mass at (x ̄, y ̄). Use the equal aspect ratio on the axis such
that we get a physically correct picture of the motion. Also make a plot ̄
of θ(t), where θ is measured in degrees. If Θ < 10 degrees, add a plot that compares the solutions of the scaled, classical, non-elastic pendulum and the elastic pendulum (θ(t)).
1.13 Exercises 107
Although the mathematics here employs a bar over scaled quantities, the code should feature plain names x for x ̄, y for y ̄, and t for t ̄ (rather than x_bar, etc.). These variable names make the code easier to read and compare with the mathematics.
Hint 1. Equal aspect ratio is set by plt.gca().set_aspect(’equal’) in Matplotlib (import matplotlib.pyplot as plt) and in SciTools by the command plt.plot(..., daspect=[1,1,1], daspectmode=’equal’)(providedyouhavedoneimport scitools.std as plt).
Hint 2. If you want to use Odespy to solve the equations, order the ̇ ̇
ODEs like ̄x,x ̄, ̄y,y ̄ such that odespy.EulerCromer can be applied.
b) WriteatestfunctionfortestingthatΘ=0andε=0givesx=y=0
for all times.
c) Write another test function for checking that the pure vertical motion of the elastic pendulum is correct. Start with simplifying the ODEs for
̄
pure vertical motion and show that y ̄(t) fulfills a vibration equation with
frequency β/(1 − β). Set up the exact solution.
Write a test function that uses this special case to verify the simulate
function. There will be numerical approximation errors present in the results from simulate so you have to believe in correct results and set a (low) tolerance that corresponds to the computed maximum error. Use a
small ∆t to obtain a small numerical approximation error.
d) Make a function demo(beta, Theta) for simulating an elastic pen- dulum with a given β parameter and initial angle Θ. Use 600 time steps per period to get every accurate results, and simulate for 3 periods. Filename: elastic_pendulum.
Exercise 1.27: Simulate an elastic pendulum with air resistance
This is a continuation Exercise 1.26. Air resistance on the body with mass m can be modeled by the force −1ρCDA|v|v, where CD is a drag
2
coefficient (0.2 for a sphere), ρ is the density of air (1.2 kg m−3), A is
the cross section area (A = πR2 for a sphere, where R is the radius), and v is the velocity of the body. Include air resistance in the original model, scale the model, write a function simulate_drag that is a copy of the simulate function from Exercise 1.26, but with the new ODEs included, and show plots of how air resistance influences the motion.
Filename: elastic_pendulum_drag.
108 1 Vibration ODEs
Remarks. Test functions are challenging to construct for the prob- lem with air resistance. You can reuse the tests from Exercise 1.27 for simulate_drag, but these tests does not verify the new terms arising from air resistance.
Exercise 1.28: Implement the PEFRL algorithm
We consider the motion of a planet around a star (Section 1.12.10). The simplified case where one mass is very much bigger than the other and one object is at rest, results in the scaled ODE model
x ̈ + ( x 2 + y 2 ) − 3 / 2 x = 0 , y ̈ + ( x 2 + y 2 ) − 3 / 2 y = 0 .
a) It is easy to show that x(t) and y(t) go like sine and cosine functions. Use this idea to derive the exact solution.
b) One believes that a planet may orbit a star for billions of years. We are now interested in how accurate methods we actually need for such calculations. A first task is to determine what the time interval of interest is in scaled units. Take the earth and sun as typical objects and find the characteristic time used in the scaling of the equations (tc = L3/(mG)), where m is the mass of the sun, L is the distance between the sun and the earth, and G is the gravitational constant. Find the scaled time interval corresponding to one billion years.
c) Solve the equations using 4th-order Runge-Kutta and the Euler- Cromer methods. You may benefit from applying Odespy for this purpose. With each solver, simulate 10000 orbits and print the maximum position error and CPU time as a function of time step. Note that the maximum position error does not necessarily occur at the end of the simulation. The position error achieved with each solver will depend heavily on the size of the time step. Let the time step correspond to 200, 400, 800 and 1600 steps per orbit, respectively. Are the results as expected? Explain briefly. When you develop your program, have in mind that it will be extended with an implementation of the other algorithms (as requested in d) and e) later) and experiments with this algorithm as well.
d) Implement a solver based on the PEFRL method from Section 1.10.11. Verify its 4th-order convergence using an equation u′′ + u = 0.
1.13 Exercises 109
e) The simulations done previously with the 4th-order Runge-Kutta and Euler-Cromer are now to be repeated with the PEFRL solver, so the code must be extended accordingly. Then run the simulations and comment on the performance of PEFRL compared to the other two.
f) Use the PEFRL solver to simulate 100000 orbits with a fixed time step corresponding to 1600 steps per period. Record the maximum error within each subsequent group of 1000 orbits. Plot these errors and fit (least squares) a mathematical function to the data. Print also the total CPU time spent for all 100000 orbits.
Now, predict the error and required CPU time for a simulation of 1 billion years (orbits). Is it feasible on today’s computers to simulate the planetary motion for one billion years?
Filename: vib_PEFRL.
Remarks. This exercise investigates whether it is feasible to predict planetary motion for the life time of a solar system.
A very wide range of physical processes lead to wave motion, where signals are propagated through a medium in space and time, normally with little or no permanent movement of the medium itself. The shape of the signals may undergo changes as they travel through matter, but usually not so much that the signals cannot be recognized at some later point in space and time. Many types of wave motion can be described by the equation utt = ∇ · (c2 ∇u) + f , which we will solve in the forthcoming text by finite difference methods.
2.1 Simulation of waves on a string
We begin our study of wave equations by simulating one-dimensional waves on a string, say on a guitar or violin. Let the string in the deformed state coincide with the interval [0, L] on the x axis, and let u(x, t) be the displacement at time t in the y direction of a point initially at x. The displacement function u is governed by the mathematical model
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Wave equations
2
112
2 Wave equations
∂2u=c2∂2u, x∈(0,L),t∈(0,T] ∂t2 ∂x2
(2.1) (2.2)
(2.3)
(2.4) (2.5)
u(x,0) = I(x), ∂ u(x,0) = 0,
∂t
x ∈ [0,L] x ∈ [0,L]
t ∈ (0,T] t ∈ (0,T]
u(0,t) = 0, u(L,t) = 0,
The constant c and the function I(x) must be prescribed.
Equation (2.1) is known as the one-dimensional wave equation. Since this PDE contains a second-order derivative in time, we need two initial
conditions. The condition (2.2) specifies the initial shape of the string, I(x), and (2.3) expresses that the initial velocity of the string is zero. In addition, PDEs need boundary conditions, given here as (2.4) and (2.5). These two conditions specify that the string is fixed at the ends, i.e., that the displacement u is zero.
The solution u(x, t) varies in space and time and describes waves that move with velocity c to the left and right.
Sometimes we will use a more compact notation for the partial deriva- tives to save space:
ut = ∂u, utt = ∂2u, (2.6) ∂t ∂t2
and similar expressions for derivatives with respect to other variables. Then the wave equation can be written compactly as utt = c2uxx.
The PDE problem (2.1)-(2.5) will now be discretized in space and time by a finite difference method.
2.1.1 Discretizing the domain
The temporal domain [0,T] is represented by a finite number of mesh points
0=t0
(2.17) (2.18) (2.19) (2.20) (2.21)
u(L, t) = 0,
Sampling the PDE at (xi,tn) and using the same finite difference
approximations as above, yields
[DtDtu=c2DxDxu+f]ni . (2.22)
2.2 Verification 119
Writing this out and solving for the unknown un+1 results in i
un+1 =−un−1 +2un +C2(un −2un +un )+∆t2fn. (2.23) i i i i+1 i i−1 i
The equation for the first time step must be rederived. The discretiza- tion of the initial condition ut = V (x) at t = 0 becomes
[D2tu=V]0i ⇒ u−1 =u1i −2∆tVi, i
which, when inserted in (2.23) for n = 0, gives the special formula
u1 = u0 − ∆tV + 1C2 u0 − 2u0 + u0 + 1∆t2f0 . (2.24)
i i i 2 i+1 i i−1 2 i
2.2.2 Using an analytical solution of physical significance
Many wave problems feature sinusoidal oscillations in time and space. For example, the original PDE problem (2.1)-(2.5) allows an exact solution
ππ
ue(x,t) = Asin Lx cos Lct . (2.25)
This ue fulfills the PDE with f = 0, boundary conditions ue(0,t) = ue(L,0) = 0, as well as initial conditions I(x) = Asinπ x and V = 0.
L
How to use exact solutions for verification
It is common to use such exact solutions of physical interest to verify implementations. However, the numerical solution uni will only be an approximation to ue(xi, tn). We have no knowledge of the precise size of the error in this approximation, and therefore we can never know if discrepancies between uni and ue(xi, tn) are caused by mathematical approximations or programming errors. In particular, if plots of the computed solution uni and the exact one (2.25) look similar, many are tempted to claim that the implementation works. However, even if color plots look nice and the accuracy is “deemed good”, there can still be serious programming errors present!
The only way to use exact physical solutions like (2.25) for serious and thorough verification is to run a series of simulations on finer and finer meshes, measure the integrated error in each mesh, and
120 2 Wave equations
from this information estimate the empirical convergence rate of the method.
An introduction to the computing of convergence rates is given in Section 3.1.6 in [9]. There is also a detailed example on computing convergence rates in Section 1.2.2.
In the present problem, one expects the method to have a convergence rate of 2 (see Section 2.10), so if the computed rates are close to 2 on a sufficiently fine mesh, we have good evidence that the implementation is free of programming mistakes.
2.2.3 Manufactured solution and estimation of convergence rates
Specifying the solution and computing corresponding data. One problem with the exact solution (2.25) is that it requires a simplification (V = 0, f = 0) of the implemented problem (2.17)-(2.21). An advantage of using a manufactured solution is that we can test all terms in the PDE problem. The idea of this approach is to set up some chosen solution and fit the source term, boundary conditions, and initial conditions to be compatible with the chosen solution. Given that our boundary conditions in the implementation are u(0, t) = u(L, t) = 0, we must choose a solution
that fulfills these conditions. One example is ue(x, t) = x(L − x) sin t .
Inserted in the PDE utt = c2uxx + f we get −x(L−x)sint=−c22sint+f ⇒f =(2c2 −x(L−x))sint.
The initial conditions become
u(x,0) =I(x) = 0,
ut(x, 0) = V (x) = x(L − x) .
Defining a single discretization parameter. To verify the code, we compute the convergence rates in a series of simulations, letting each simulation use a finer mesh than the previous one. Such empirical estima-
2.2 Verification 121
tion of convergence rates relies on an assumption that some measure E of the numerical error is related to the discretization parameters through
E = Ct∆tr + Cx∆xp,
where Ct, Cx, r, and p are constants. The constants r and p are known as the convergence rates in time and space, respectively. From the accuracy in the finite difference approximations, we expect r = p = 2, since the error terms are of order ∆t2 and ∆x2. This is confirmed by truncation error analysis and other types of analysis.
By using an exact solution of the PDE problem, we will next compute the error measure E on a sequence of refined meshes and see if the rates r = p = 2 are obtained. We will not be concerned with estimating the constants Ct and Cx, simply because we are not interested in their values.
It is advantageous to introduce a single discretization parameter h = ∆t = cˆ∆x for some constant cˆ. Since ∆t and ∆x are related through the Courant number, ∆t = C∆x/c, we set h = ∆t, and then ∆x = hc/C. Now the expression for the error measure is greatly simplified:
c r c r E=Ct∆tr+Cx∆xr =Cthr+Cx C hr =Dhr, D=Ct+Cx C .
Computing errors. We choose an initial discretization parameter h0 and run experiments with decreasing h: hi = 2−ih0, i = 1, 2, . . . , m. Halving h in each experiment is not necessary, but it is a common choice. For each experiment we must record E and h. A standard choice of error measure is the l2 or l∞ norm of the error mesh function eni :
1 NtNx 2
E =||eni ||l2 = ∆t∆x(eni )2 n=0 i=0
E = ||eni ||l∞ = max |ein| . i,n
, eni =ue(xi,tn)−uni , (2.26) (2.27)
In Python, one can compute i(eni )2 at each time step and accumulate the value in some sum variable, say e2_sum. At the final time step one can do sqrt(dt*dx*e2_sum). For the l∞ norm one must compare the maximum error at a time level (e.max()) with the global maximum over the time domain: e_max = max(e_max, e.max()).
An alternative error measure is to use a spatial norm at one time step only, e.g., the end time T (n = Nt):
122
2 Wave equations
E=||eni||l2 = ∆x(eni)2 i=0
1 Nx 2
, eni =ue(xi,tn)−uni,
The important issue is that our error measure E must be one number
that represents the error in the simulation.
Computing rates. Let Ei be the error measure in experiment (mesh) number i and let hi be the corresponding discretization parameter (h). With the error model Ei = Dhri , we can estimate r by comparing two consecutive experiments:
Ei+1 = Dhri+1, E i = D h ri .
Dividing the two equations eliminates the (uninteresting) constant D. Thereafter, solving for r yields
r = lnEi+1/Ei . ln hi+1/hi
Since r depends on i, i.e., which simulations we compare, we add an index to r: ri, where i = 0,…,m − 2, if we have m experiments:
(h0, E0), . . . , (hm−1, Em−1).
In our present discretization of the wave equation we expect r = 2,
and hence the ri values should converge to 2 as i increases. 2.2.4 Constructing an exact solution of the discrete
equations
With a manufactured or known analytical solution, as outlined above, we can estimate convergence rates and see if they have the correct asymp- totic behavior. Experience shows that this is a quite good verification technique in that many common bugs will destroy the convergence rates. A significantly better test though, would be to check that the numer- ical solution is exactly what it should be. This will in general require exact knowledge of the numerical error, which we do not normally have (although we in Section 2.10 establish such knowledge in simple cases).
E = ||eni ||l∞ = max |eni | . 0≤i≤Nx
(2.28) (2.29)
2.2 Verification 123
However, it is possible to look for solutions where we can show that the numerical error vanishes, i.e., the solution of the original continuous PDE problem is also a solution of the discrete equations. This property often arises if the exact solution of the PDE is a lower-order polynomial. (Truncation error analysis leads to error measures that involve deriva- tives of the exact solution. In the present problem, the truncation error involves 4th-order derivatives of u in space and time. Choosing u as a polynomial of degree three or less will therefore lead to vanishing error.)
We shall now illustrate the construction of an exact solution to both the PDE itself and the discrete equations. Our chosen manufactured solution is quadratic in space and linear in time. More specifically, we set
ue (x, t) = x(L − x)(1 + 1 t), (2.30) 2
which by insertion in the PDE leads to f(x,t) = 2(1 + t)c2. This ue
fulfills the boundary conditions u = 0 and demands I(x) = x(L − x) and
V (x) = 1 x(L − x). 2
To realize that the chosen ue is also an exact solution of the discrete equations, we first remind ourselves that tn = n∆t before we establish that
[DtDtt2]n = t2n+1 −2t2n +t2n−1 = (n+1)2 −2n2 +(n−1)2 = 2,
∆t2 ∆t2
Hence,
[DtDtue]ni =xi(L−xi)[DtDt(1+1t)]n =xi(L−xi)1[DtDtt]n =0. 22
Similarly, we get that
[DxDxue]ni = (1 + 1tn)[DxDx(xL − x2)]i 2
= (1 + 1tn)[LDxDxx − DxDxx2]i 2
= −2(1 + 1 tn ) . 2
∆t2
[DtDtt]n = tn+1 −2tn +tn−1 = ((n+1)−2n+(n−1))∆t = 0.
(2.31) (2.32)
124 2 Wave equations
Now,fn =2(1+1t )c2,whichresultsin i2n
[DtDtue−c2DxDxue−f]ni =0+c22(1+1tn)+2(1+1tn)c2 =0. 22
Moreover, ue(xi, 0) = I(xi), ∂ue/∂t = V (xi) at t = 0, and ue(x0, t) = ue(xNx , 0) = 0. Also the modified scheme for the first time step is fulfilled by ue(xi, tn).
Therefore, the exact solution ue(x, t) = x(L − x)(1 + t/2) of the PDE problem is also an exact solution of the discrete problem. This means that we know beforehand what numbers the numerical algorithm should produce. We can use this fact to check that the computed uni values from an implementation equals ue(xi, tn), within machine precision. This result is valid regardless of the mesh spacings ∆x and ∆t! Nevertheless, there might be stability restrictions on ∆x and ∆t, so the test can only be run for a mesh that is compatible with the stability criterion (which in the present case is C ≤ 1, to be derived later).
Notice
A product of quadratic or linear expressions in the various inde- pendent variables, as shown above, will often fulfill both the PDE problem and the discrete equations, and can therefore be very useful solutions for verifying implementations.
However, for 1D wave equations of the type utt = c2uxx we shall see that there is always another much more powerful way of generating exact solutions (which consists in just setting C = 1 (!), as shown in Section 2.10).
2.3 Implementation
This section presents the complete computational algorithm, its imple- mentation in Python code, animation of the solution, and verification of the implementation.
A real implementation of the basic computational algorithm from Sections 2.1.5 and 2.1.6 can be encapsulated in a function, taking all the input data for the problem as arguments. The physical input data
2.3 Implementation 125
consists of c, I(x), V(x), f(x,t), L, and T. The numerical input is the mesh parameters ∆t and ∆x.
Instead of specifying ∆t and ∆x, we can specify one of them and the Courant number C instead, since having explicit control of the Courant number is convenient when investigating the numerical method. Many find it natural to prescribe the resolution of the spatial grid and set Nx. The solver function can then compute ∆t = CL/(cNx). However, for comparing u(x, t) curves (as functions of x) for various Courant numbers it is more convenient to keep ∆t fixed for all C and let ∆x vary according to ∆x = c∆t/C. With ∆t fixed, all frames correspond to the same time t, and this simplifies animations that compare simulations with different mesh resolutions. Plotting functions of x with different spatial resolution is trivial, so it is easier to let ∆x vary in the simulations than ∆t.
2.3.1 Callback function for user-specific actions
The solution at all spatial points at a new time level is stored in an array u of length Nx + 1. We need to decide what to do with this solution, e.g., visualize the curve, analyze the values, or write the array to file for later use. The decision about what to do is left to the user in the form of a user-supplied function
user_action(u, x, t, n)
where u is the solution at the spatial points x at time t[n]. The user_action function is called from the solver at each time level n.
If the user wants to plot the solution or store the solution at a time point, she needs to write such a function and take appropriate actions inside it. We will show examples on many such user_action functions.
Since the solver function makes calls back to the user’s code via such a function, this type of function is called a callback function. When writing general software, like our solver function, which also needs to carry out special problem- or solution-dependent actions (like visualization), it is a common technique to leave those actions to user-supplied callback functions.
The callback function can be used to terminate the solution process if the user returns True. For example,
def my_user_action_function(u, x, t, n):
return np.abs(u).max() > 10
126 2 Wave equations
is a callback function that will terminate the solver function of the amplitude of the waves exceed 10, which is here considered as a numerical instability.
2.3.2 The solver function
A first attempt at a solver function is listed below.
import numpy as np
def solver(I, V, f, c, L, dt, C, T, user_action=None):
“””Solve u_tt=c^2*u_xx + f on (0,L)x(0,T].”””
Nt = int(round(T/dt))
t = np.linspace(0, Nt*dt, Nt+1)
dx = dt*c/float(C)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1)
C2 = C**2
# Make sure dx and dt are compatible with x and t
dx = x[1] – x[0]
dt = t[1] – t[0]
if f is None or f == 0 :
f = lambda x, t: 0
if V is None or V == 0:
V = lambda x: 0
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
u_nm1 = np.zeros(Nx+1)
# Solution array at new time level
# Solution at 1 time level back
# Solution at 2 time levels back
import time; t0 = time.clock() # Measure CPU time
# Load initial condition into u_n
for i in range(0,Nx+1):
u_n[i] = I(x[i])
if user_action is not None:
user_action(u_n, x, t, 0)
# Special formula for first time step
n=0
for i in range(1, Nx):
u[i] = u_n[i] + dt*V(x[i]) + \
0.5*C2*(u_n[i-1] – 2*u_n[i] + u_n[i+1]) + \
0.5*dt**2*f(x[i], t[n])
u[0] = 0; u[Nx] = 0
if user_action is not None:
user_action(u, x, t, 1)
# Mesh points in time
# Mesh points in space
# Help variable in the scheme
2.3 Implementation 127
# Switch variables before next step
u_nm1[:] = u_n; u_n[:] = u
for n in range(1, Nt):
# Update all inner points at time t[n+1]
for i in range(1, Nx):
u[i] = – u_nm1[i] + 2*u_n[i] + \
C2*(u_n[i-1] – 2*u_n[i] + u_n[i+1]) + \
dt**2*f(x[i], t[n])
# Insert boundary conditions
u[0]=0; u[Nx]=0
if user_action is not None:
if user_action(u, x, t, n+1):
break
# Switch variables before next step
u_nm1[:] = u_n; u_n[:] = u
cpu_time = time.clock() – t0
return u, x, t, cpu_time
A couple of remarks about the above code is perhaps necessary:
• Although we give dt and compute dx via C and c, the resulting t and x meshes do not necessarily correspond exactly to these values because of rounding errors. To explicitly ensure that dx and dt correspond to the cell sizes in x and t, we recompute the values.
• According to the convention described in Section 2.3.1, a true value returned from user_action should terminate the simulation, here implemented by a break statement inside the for loop in the solver.
2.3.3 Verification: exact quadratic solution
We use the test problem derived in Section 2.2.1 for verification. Below is a unit test based on this test problem and realized as a proper test function compatible with the unit test frameworks nose or pytest.
def test_quadratic():
“””Check that u(x,t)=x(L-x)(1+t/2) is exactly reproduced.”””
def u_exact(x, t):
return x*(L-x)*(1 + 0.5*t)
def I(x):
return u_exact(x, 0)
def V(x):
128 2 Wave equations
return 0.5*u_exact(x, 0)
def f(x, t):
return 2*(1 + 0.5*t)*c**2
L = 2.5
c = 1.5
C = 0.75
Nx = 6 # Very coarse mesh for this exact test
dt = C*(L/Nx)/c
T = 18
def assert_no_error(u, x, t, n):
u_e = u_exact(x, t[n])
diff = np.abs(u – u_e).max()
tol = 1E-13
assert diff < tol
solver(I, V, f, c, L, dt, C, T,
user_action=assert_no_error)
When this function resides in the file wave1D_u0.py, one can run pytest to check that all test functions with names test_*() in this file work:
Terminal> py.test -s -v wave1D_u0.py
2.3.4 Verification: convergence rates
A more general method, but not so reliable as a verification method, is to compute the convergence rates and see if they coincide with theoretical estimates. Here we expect a rate of 2 according to the various results in Section 2.10. A general function for computing convergence rates can be written like this:
Terminal
def convergence_rates(
u_exact, # Python function for exact solution
I, V, f, c, L, # physical parameters
dt0, num_meshes, C, T): # numerical parameters
“””
Half the time step and estimate convergence rates for
for num_meshes simulations.
“””
# First define an appropriate user action function
global error
error = 0 # error computed in the user action function
def compute_error(u, x, t, n):
global error # must be global to be altered here
2.3 Implementation 129
# (otherwise error is a local variable, different
# from error defined in the parent function)
if n == 0:
error = 0
else:
error = max(error, np.abs(u – u_exact(x, t[n])).max())
# Run finer and finer resolutions and compute true errors
E = []
h = [] # dt, solver adjusts dx such that C=dt*c/dx
dt = dt0
for i in range(num_meshes):
solver(I, V, f, c, L, dt, C, T,
user_action=compute_error)
# error is computed in the final call to compute_error
E.append(error)
h.append(dt)
dt /= 2 # halve the time step for next simulation
print ’E:’, E
print ’h:’, h
# Convergence rates for two consecutive experiments
r = [np.log(E[i]/E[i-1])/np.log(h[i]/h[i-1])
for i in range(1,num_meshes)]
return r
Using the analytical solution from Section 2.2.2, we can call convergece_rates to see if we get a convergence rate that approaches 2 and use the final estimate of the rate in an assert statement such that this function becomes a proper test function:
def test_convrate_sincos(): n=m=2
L = 1.0
u_exact = lambda x, t: np.cos(m*np.pi/L*t)*np.sin(m*np.pi/L*x)
r = convergence_rates(
u_exact=u_exact,
I=lambda x: u_exact(x, 0),
V=lambda x: 0,
f=0,
c=1,
L=L,
dt0=0.1,
num_meshes=6,
C=0.9,
T=1)
print ’rates sin(x)*cos(t) solution:’, \
[round(r_,2) for r_ in r]
assert abs(r[-1] – 2) < 0.002
Doing py.test -s -v wave1D_u0.py will run also this test function and show the rates 2.05, 1.98, 2.0, 2.0, and 2.0 (to two decimals).
130 2 Wave equations
2.3.5 Visualization: animating the solution
Now that we have verified the implementation it is time to do a real com- putation where we also display evolution of the waves on the screen. Since the solver function knows nothing about what type of visualizations we may want, it calls the callback function user_action(u, x, t, n). We must therefore write this function and find the proper statements for plotting the solution.
Function for administering the simulation. The following viz function
1. defines a user_action callback function for plotting the solution at each time level,
2. calls the solver function, and
3. combines all the plots (in files) to video in different formats.
def viz(
I, V, f, c, L, dt, C, T, # PDE parameters
umin, umax,
animate=True,
tool=’matplotlib’,
solver_function=solver,
):
# Interval for u in plots
# Simulation with animation?
# ’matplotlib’ or ’scitools’
# Function with numerical algorithm
"""Run solver and visualize u at each time level."""
def plot_u_st(u, x, t, n):
"""user_action function for solver."""
plt.plot(x, u, ’r-’,
xlabel=’x’, ylabel=’u’,
axis=[0, L, umin, umax],
title=’t=%f’ % t[n], show=True)
# Let the initial condition stay on the screen for 2
# seconds, else insert a pause of 0.2 s between each plot
time.sleep(2) if t[n] == 0 else time.sleep(0.2)
plt.savefig(’frame_%04d.png’ % n) # for movie making
class PlotMatplotlib:
def __call__(self, u, x, t, n):
"""user_action function for solver."""
if n == 0:
plt.ion()
self.lines = plt.plot(x, u, ’r-’)
plt.xlabel(’x’); plt.ylabel(’u’)
plt.axis([0, L, umin, umax])
plt.legend([’t=%f’ % t[n]], loc=’lower left’)
else:
self.lines[0].set_ydata(u)
plt.legend([’t=%f’ % t[n]], loc=’lower left’)
plt.draw()
time.sleep(2) if t[n] == 0 else time.sleep(0.2)
2.3 Implementation 131
plt.savefig(’tmp_%04d.png’ % n) # for movie making
if tool == ’matplotlib’:
import matplotlib.pyplot as plt
plot_u = PlotMatplotlib()
elif tool == ’scitools’:
import scitools.std as plt # scitools.easyviz interface
plot_u = plot_u_st
import time, glob, os
# Clean up old movie frames
for filename in glob.glob(’tmp_*.png’):
os.remove(filename)
# Call solver and do the simulaton
user_action = plot_u if animate else None
u, x, t, cpu = solver_function(
I, V, f, c, L, dt, C, T, user_action)
# Make video files
fps = 4 # frames per second
codec2ext = dict(flv=’flv’, libx264=’mp4’, libvpx=’webm’,
libtheora=’ogg’) # video formats
filespec = ’tmp_%04d.png’
movie_program = ’ffmpeg’ # or ’avconv’
for codec in codec2ext:
ext = codec2ext[codec]
cmd = ’%(movie_program)s -r %(fps)d -i %(filespec)s ’\
’-vcodec %(codec)s movie.%(ext)s’ % vars()
os.system(cmd)
if tool == ’scitools’:
# Make an HTML play for showing the animation in a browser
plt.movie(’tmp_*.png’, encoder=’html’, fps=fps,
return cpu
output_file=’movie.html’)
Dissection of the code. The viz function can either use SciTools or Matplotlib for visualizing the solution. The user_action function based on SciTools is called plot_u_st, while the user_action function based on Matplotlib is a bit more complicated as it is realized as a class and needs statements that differ from those for making static plots. SciTools can utilize both Matplotlib and Gnuplot (and many other plotting programs) for doing the graphics, but Gnuplot is a relevant choice for large Nx or in two-dimensional problems as Gnuplot is significantly faster than Matplotlib for screen animations.
A function inside another function, like plot_u_st in the above code segment, has access to and remembers all the local variables in the surrounding code inside the viz function (!). This is known in computer
132 2 Wave equations
science as a closure and is very convenient to program with. For example, the plt and time modules defined outside plot_u are accessible for plot_u_st when the function is called (as user_action) in the solver function. Some may think, however, that a class instead of a closure is a cleaner and easier-to-understand implementation of the user action function, see Section 2.8.
The plot_u_st function just makes a standard SciTools plot com- mand for plotting u as a function of x at time t[n]. To achieve a smooth animation, the plot command should take keyword arguments instead of being broken into separate calls to xlabel, ylabel, axis, time, and show. Several plot calls will automatically cause an animation on the screen. In addition, we want to save each frame in the animation to file. We then need a filename where the frame number is padded with zeros, here tmp_0000.png, tmp_0001.png, and so on. The proper printf construction is then tmp_%04d.png. Section 1.3.2 contains more basic information on making animations.
The solver is called with an argument plot_u as user_function. If the user chooses to use SciTools, plot_u is the plot_u_st callback function, but for Matplotlib it is an instance of the class PlotMatplotlib. Also this class makes use of variables defined in the viz function: plt and time. With Matplotlib, one has to make the first plot the standard way, and then update the y data in the plot at every time level. The update requires active use of the returned value from plt.plot in the first plot. This value would need to be stored in a local variable if we were to use a closure for the user_action function when doing the animation with Matplotlib. It is much easier to store the variable as a class attribute self.lines. Since the class is essentially a function, we implement the function as the special method __call__ such that the instance plot_u(u, x, t, n) can be called as a standard callback function from solver.
Making movie files. From the frame_*.png files containing the frames in the animation we can make video files. Section 1.3.2 presents basic information on how to use the ffmpeg (or avconv) program for producing video files in different modern formats: Flash, MP4, Webm, and Ogg.
The viz function creates an ffmpeg or avconv command with the proper arguments for each of the formats Flash, MP4, WebM, and Ogg. The task is greatly simplified by having a codec2ext dictionary for mapping video codec names to filename extensions. As mentioned in Section 1.3.2, only two formats are actually needed to ensure that all browsers can successfully play the video: MP4 and WebM.
2.3 Implementation 133
Some animations having a large number of plot files may not be properly combined into a video using ffmpeg or avconv. A method that always works is to play the PNG files as an animation in a browser using JavaScript code in an HTML file. The SciTools package has a function movie (or a stand-alone command scitools movie) for creating such an HTML player. The plt.movie call in the viz function shows how the function is used. The file movie.html can be loaded into a browser and features a user interface where the speed of the animation can be controlled. Note that the movie in this case consists of the movie.html file and all the frame files tmp_*.png.
Skipping frames for animation speed. Sometimes the time step is small and T is large, leading to an inconveniently large number of plot files and a slow animation on the screen. The solution to such a problem is to decide on a total number of frames in the animation, num_frames, and plot the solution only for every skip_frame frames. For example, setting skip_frame=5 leads to plots of every 5 frames. The default value skip_frame=1 plots every frame. The total number of time levels (i.e., maximum possible number of frames) is the length of t, t.size (or len(t)), so if we want num_frames frames in the animation, we need to plot every t.size/num_frames frames:
The initial condition (n=0) is included by n % skip_frame == 0, as well as every skip_frame-th frame. As n % skip_frame == 0 will very seldom be true for the very final frame, we must also check if n == t.size-1 to get the final frame included.
A simple choice of numbers may illustrate the formulas: say we have 801 frames in total (t.size) and we allow only 60 frames to be plotted. As n then runs from 801 to 0, we need to plot every 801/60 frame, which with integer division yields 13 as skip_frame. Using the mod function, n % skip_frame, this operation is zero every time n can be divided by 13 without a remainder. That is, the if test is true when n equals 0, 13, 26, 39, ..., 780, 801. The associated code is included in the plot_u function, inside the viz function, in the file wave1D_u0.py.
skip_frame = int(t.size/float(num_frames))
if n % skip_frame == 0 or n == t.size-1:
st.plot(x, u, ’r-’, ...)
134 2 Wave equations
2.3.6 Running a case
The first demo of our 1D wave equation solver concerns vibrations of a string that is initially deformed to a triangular shape, like when picking a guitar string:
ax/x0, x < x0,
I(x) = a(L − x)/(L − x0), otherwise (2.33)
WechooseL=75cm,x0 =0.8L,a=5mm,andatimefrequency ν = 440 Hz. The relation between the wave speed c and ν is c = νλ, where λ is the wavelength, taken as 2L because the longest wave on the string forms half a wavelength. There is no external force, so f = 0 (meaning we can neglect gravity), and the string is at rest initially, implying V = 0.
Regarding numerical parameters, we need to specify a ∆t. Sometimes it is more natural to think of a spatial resolution instead of a time step. A natural semi-coarse spatial resolution in the present problem is Nx = 50. We can then choose the associated ∆t (as required by the viz and solver functions) as the stability limit: ∆t = L/(Nxc). This is the ∆t to be specified, but notice that if C < 1, the actual ∆x computed in solver gets larger than L/Nx: ∆x = c∆t/C = L/(NxC). (The reason is that we fix ∆t and adjust ∆x, so if C gets smaller, the code implements this effect in terms of a larger ∆x.)
A function for setting the physical and numerical parameters and calling viz in this application goes as follows:
def guitar(C):
"""Triangular wave (pulled guitar string)."""
L = 0.75
x0 = 0.8*L
a = 0.005
freq = 440
wavelength = 2*L
c = freq*wavelength
omega = 2*pi*freq
num_periods = 1
T = 2*pi/omega*num_periods
# Choose dt the same as the stability limit for Nx=50
dt = L/50./c
def I(x):
return a*x/x0 if x < x0 else a/(L-x0)*(L-x)
umin = -1.2*a; umax = -umin
cpu = viz(I, 0, 0, c, L, dt, C, T, umin, umax,
animate=True, tool=’scitools’)
2.3 Implementation 135
The associated program has the name wave1D_u0.py. Run the program and watch the movie of the vibrating string. The string should ideally consist of straight segments, but these are somewhat wavy due to nu- merical approximation. Run the case with the wave1D_u0.py code and C = 1 to see the exact solution.
2.3.7 Working with a scaled PDE model
Depending on the model, it may be a substantial job to establish consis- tent and relevant physical parameter values for a case. The guitar string example illustrates the point. However, by scaling the mathematical problem we can often reduce the need to estimate physical parameters dramatically. The scaling technique consists of introducing new indepen- dent and dependent variables, with the aim that the absolute values of these lie in [0, 1]. We introduce the dimensionless variables (details are found in Section 3.1.1 in [11]
x ̄=x, t ̄=ct, u ̄=u. LLa
Here, L is a typical length scale, e.g., the length of the domain, and a is a typical size of u, e.g., determined from the initial condition: a = maxx |I(x)|.
We get by the chain rule that
∂u = ∂ (au ̄) dt ̄ = ac ∂u ̄ .
Similarly,
∂t ∂t ̄ dt L∂t ̄
∂ u = a ∂ u ̄ .
∂x L∂x ̄
Inserting the dimensionless variables in the PDE gives, in case f = 0,
a2c2 ∂2u ̄ = a2c2 ∂2u ̄ . ̄
L2 ∂t2 L2 ∂x ̄2 Dropping the bars, we arrive at the scaled PDE
∂2u = ∂2u, x ∈ (0,1), t ∈ (0,cT/L), (2.34) ∂t2 ∂x2
which has no parameter c2 anymore. The initial conditions are scaled as
136
2 Wave equations
and
resulting in
a ∂u ̄ (x ̄, 0) = V (Lx ̄), L/c ∂t ̄
I(Lx ̄) , ∂u ̄(x ̄,0)= LV(Lx ̄). maxx |I(x)| ∂t ̄ ac
au ̄(x ̄,0) = I(Lx ̄)
u ̄(x ̄,0)=
In the common case V = 0 we see that there are no physical parameters to be estimated in the PDE model!
If we have a program implemented for the physical wave equation with dimensions, we can obtain the dimensionless, scaled version by setting c = 1. The initial condition of a guitar string, given in (2.33), gets its scaled form by choosing a = 1, L = 1, and x0 ∈ [0, 1]. This means that we only need to decide on the x0 value as a fraction of unity, because the scaled problem corresponds to setting all other parameters to unity. In the code we can just set a=c=L=1, x0=0.8, and there is no need to calculate with wavelengths and frequencies to estimate c!
The only non-trivial parameter to estimate in the scaled problem is the final end time of the simulation, or more precisely, how it relates to periods in periodic solutions in time, since we often want to express the end time as a certain number of periods. The period in the dimensionless problem is 2, so the end time can be set to the desired number of periods times 2.
Why the dimensionless period is 2 can be explained by the following reasoning. Suppose that u behaves as cos(ωt) in time in the original problem with dimensions. The corresponding period is then P = 2π/ω, but we need to estimate ω. A typical solution of the wave equation is u(x,t) = Acos(kx)cos(ωt), where A is an amplitude and k is related to the wave length λ in space: λ = 2π/k. Both λ and A will be given by the initial condition I(x). Inserting this u(x,t) in the PDE yields −ω2 = −c2k2, i.e., ω = kc. The period is therefore P = 2π/(kc). If the boundary conditions are u(0,t) = u(L,t), we need to have kL = nπ for integer n. The period becomes P = 2L/nc. The longest period is P = 2L/c. The dimensionless period P ̃ is obtained by dividing P by the time scale L/c, which results in P ̃ = 2. Shorter waves in the initial condition will have a dimensionless shorter period P ̃ = 2/n (n > 1).
2.4 Vectorization 137
2.4 Vectorization
The computational algorithm for solving the wave equation visits one mesh point at a time and evaluates a formula for the new value un+1
at that point. Technically, this is implemented by a loop over array elements in a program. Such loops may run slowly in Python (and similar interpreted languages such as R and MATLAB). One technique for speeding up loops is to perform operations on entire arrays instead of working with one element at a time. This is referred to as vectorization, vector computing, or array computing. Operations on whole arrays are possible if the computations involving each element is independent of each other and therefore can, at least in principle, be performed simultaneously. That is, vectorization not only speeds up the code on serial computers, but also makes it easy to exploit parallel computing. Actually, there are Python tools like Numba that can automatically turn vectorized code into parallel code.
2.4.1 Operations on slices of arrays
Efficient computing with numpy arrays demands that we avoid loops and compute with entire arrays at once (or at least large portions of them). Consider this calculation of differences di = ui+1 − ui:
All the differences here are independent of each other. The computa- tion of d can therefore alternatively be done by subtracting the array (u0, un, . . . , un−1) from the array where the elements are shifted one index upwards: (un, unm1, . . . , un), see Figure 2.3. The former subset of the array can be expressed by u[0:n-1], u[0:-1], or just u[:-1], meaning from index 0 up to, but not including, the last element (-1). The latter subset is obtained by u[1:n] or u[1:], meaning from index 1 and the rest of the array. The computation of d can now be done without an
explicit Python loop:
d = u[1:] – u[:-1]
or with explicit limits if desired:
d = u[1:n] – u[0:n-1]
i
n = u.size
for i in range(0, n-1):
d[i] = u[i+1] – u[i]
138 2 Wave equations
Indices with a colon, going from an index to (but not including) another index are called slices. With numpy arrays, the computations are still done by loops, but in efficient, compiled, highly optimized C or Fortran code. Such loops are sometimes referred to as vectorized loops. Such loops can also easily be distributed among many processors on parallel computers. We say that the scalar code above, working on an element (a scalar) at a time, has been replaced by an equivalent vectorized code. The process of vectorizing code is called vectorization.
01234
−−−−
01234
Fig. 2.3 Illustration of subtracting two slices of two arrays.
Test your understanding
Newcomers to vectorization are encouraged to choose a small array u, say with five elements, and simulate with pen and paper both the loop version and the vectorized version above.
Finite difference schemes basically contain differences between array elements with shifted indices. As an example, consider the updating formula
The vectorization consists of replacing the loop by arithmetics on slices of arrays of length n-2:
Note that the length of u2 becomes n-2. If u2 is already an array of length n and we want to use the formula to update all the “inner” elements of u2, as we will when solving a 1D wave equation, we can write
for i in range(1, n-1):
u2[i] = u[i-1] – 2*u[i] + u[i+1]
u2 = u[:-2] – 2*u[1:-1] + u[2:]
u2 = u[0:n-2] – 2*u[1:n-1] + u[2:n] # alternative
2.4 Vectorization 139
u2[1:-1] = u[:-2] – 2*u[1:-1] + u[2:]
u2[1:n-1] = u[0:n-2] – 2*u[1:n-1] + u[2:n] # alternative
The first expression’s right-hand side is realized by the following steps, involving temporary arrays with intermediate results, since each array operation can only involve one or two arrays. The numpy package performs
(behind the scenes) the first line above in four steps:
We need three temporary arrays, but a user does not need to worry about such temporary arrays.
Common mistakes with array slices
Array expressions with slices demand that the slices have the same shape. It easy to make a mistake in, e.g.,
u2[1:n-1] = u[0:n-2] – 2*u[1:n-1] + u[2:n] and write
u2[1:n-1] = u[0:n-2] – 2*u[1:n-1] + u[1:n]
Now u[1:n] has wrong length (n-1) compared to the other ar- ray slices, causing a ValueError and the message could not broadcast input array from shape 103 into shape 104 (if n is 105). When such errors occur one must closely examine all the slices. Usually, it is easier to get upper limits of slices right when they use -1 or -2 or empty limit rather than expressions involving the length.
Another common mistake is to forget the slice in the array on the left-hand side,
u2 = u[0:n-2] – 2*u[1:n-1] + u[1:n]
This is really crucial: now u2 becomes a new array of length n-2, which is the wrong length as we have no entries for the boundary values. We meant to insert the right-hand side array into the original u2 array for the entries that correspond to the internal points in the mesh (1:n-1 or 1:-1).
temp1 = 2*u[1:-1]
temp2 = u[:-2] – temp1
temp3 = temp2 + u[2:]
u2[1:-1] = temp3
140 2 Wave equations
Vectorization may also work nicely with functions. To illustrate, we may extend the previous example as follows:
Assuming u2, u, and x all have length n, the vectorized version becomes u2[1:-1] = u[:-2] – 2*u[1:-1] + u[2:] + f(x[1:-1])
Obviously, f must be able to take an array as argument for f(x[1:-1]) to make sense.
2.4.2 Finite difference schemes expressed as slices
We now have the necessary tools to vectorize the wave equation algo- rithm as described mathematically in Section 2.1.5 and through code in Section 2.3.2. There are three loops: one for the initial condition, one for the first time step, and finally the loop that is repeated for all subsequent time levels. Since only the latter is repeated a potentially large number of times, we limit our vectorization efforts to this loop:
The vectorized version becomes
or
The program wave1D_u0v.py contains a new version of the function solver where both the scalar and the vectorized loops are included (the argument version is set to scalar or vectorized, respectively).
2.4.3 Verification
We may reuse the quadratic solution ue(x, t) = x(L − x)(1 + 1 t) for 2
verifying also the vectorized code. A test function can now verify both the
def f(x):
return x**2 + 1
for i in range(1, n-1):
u2[i] = u[i-1] – 2*u[i] + u[i+1] + f(x[i])
for i in range(1, Nx):
u[i] = 2*u_n[i] – u_nm1[i] + \
C2*(u_n[i-1] – 2*u_n[i] + u_n[i+1])
u[1:-1] = – u_nm1[1:-1] + 2*u_n[1:-1] + \
C2*(u_n[:-2] – 2*u_n[1:-1] + u_n[2:])
u[1:Nx] = 2*u_n[1:Nx]- u_nm1[1:Nx] + \
C2*(u_n[0:Nx-1] – 2*u_n[1:Nx] + u_n[2:Nx+1])
2.4 Vectorization 141
scalar and the vectorized version. Moreover, we may use a user_action function that compares the computed and exact solution at each time level and performs a test:
def test_quadratic():
“””
Check the scalar and vectorized versions for
a quadratic u(x,t)=x(L-x)(1+t/2) that is exactly reproduced.
“””
# The following function must work for x as array or scalar
u_exact = lambda x, t: x*(L – x)*(1 + 0.5*t)
I = lambda x: u_exact(x, 0)
V = lambda x: 0.5*u_exact(x, 0)
# f is a scalar (zeros_like(x) works for scalar x too)
f = lambda x, t: np.zeros_like(x) + 2*c**2*(1 + 0.5*t)
L = 2.5
c = 1.5
C = 0.75
Nx = 3 # Very coarse mesh for this exact test
dt = C*(L/Nx)/c
T = 18
def assert_no_error(u, x, t, n):
u_e = u_exact(x, t[n])
tol = 1E-13
diff = np.abs(u – u_e).max()
assert diff < tol
solver(I, V, f, c, L, dt, C, T,
user_action=assert_no_error, version=’scalar’)
solver(I, V, f, c, L, dt, C, T,
user_action=assert_no_error, version=’vectorized’)
Lambda functions
The code segment above demonstrates how to achieve very compact code, without degraded readability, by use of lambda functions for the various input parameters that require a Python function. In essence,
f = lambda x, t: L*(x-t)**2 is equivalent to
def f(x, t):
return L(x-t)**2
142
2 Wave equations
Note that lambda functions can just contain a single expression and no statements.
One advantage with lambda functions is that they can be used directly in calls:
solver(I=lambda x: sin(pi*x/L), V=0, f=0, ...)
2.4.4 Efficiency measurements
The wave1D_u0v.py contains our new solver function with both scalar and vectorized code. For comparing the efficiency of scalar versus vector- ized code, we need a viz function as discussed in Section 2.3.5. All of this viz function can be reused, except the call to solver_function. This call lacks the parameter version, which we want to set to vectorized and scalar for our efficiency measurements.
One solution is to copy the viz code from wave1D_u0 into wave1D_u0v.py and add a version argument to the solver_function call. Taking into account how much animation code we then duplicate, this is not a good idea. Alternatively, introducing the version argu- ment in wave1D_u0.viz, so that this function can be imported into wave1D_u0v.py, is not a good solution either, since version has no meaning in that file. We need better ideas!
Solution 1. Calling viz in wave1D_u0 with solver_function as our new solver in wave1D_u0v works fine, since this solver has version=’vectorized’ as default value. The problem arises when we want to test version=’scalar’. The simplest solution is then to use wave1D_u0.solver instead. We make a new viz function in wave1D_u0v.py that has a version argument and that just calls wave1D_u0.viz:
def viz(
I, V, f, c, L, dt, C, T, # PDE parameters
umin, umax,
animate=True,
tool=’matplotlib’,
solver_function=solver,
version=’vectorized’,
):
# Interval for u in plots
# Simulation with animation?
# ’matplotlib’ or ’scitools’
# Function with numerical algorithm
# ’scalar’ or ’vectorized’
import wave1D_u0
if version == ’vectorized’:
# Reuse viz from wave1D_u0, but with the present
2.4 Vectorization 143
# modules’ new vectorized solver (which has
# version=’vectorized’ as default argument;
# wave1D_u0.viz does not feature this argument)
cpu = wave1D_u0.viz(
I, V, f, c, L, dt, C, T, umin, umax,
animate, tool, solver_function=solver)
elif version == ’scalar’:
# Call wave1D_u0.viz with a solver with
# scalar code and use wave1D_u0.solver.
cpu = wave1D_u0.viz(
I, V, f, c, L, dt, C, T, umin, umax,
animate, tool,
solver_function=wave1D_u0.solver)
Solution 2. There is a more advanced and fancier solution featuring a very useful trick: we can make a new function that will always call wave1D_u0v.solver with version=’scalar’. The functools.partial function from standard Python takes a function func as argument and a series of positional and keyword arguments and returns a new function that will call func with the supplied arguments, while the user can control all the other arguments in func. Consider a trivial example,
We want to ensure that f is always called with c=3, i.e., f has only two “free” arguments a and b. This functionality is obtained by
Now f2 calls f with whatever the user supplies as a and b, but c is always 3.
Back to our viz code, we can do
The new scalar_solver takes the same arguments as wave1D_u0.scalar and calls wave1D_u0v.scalar, but always supplies the extra argu- ment version=’scalar’. When sending this solver_function to wave1D_u0.viz, the latter will call wave1D_u0v.solver with all the I, V, f, etc., arguments we supply, plus version=’scalar’.
def f(a, b, c=2):
return a + b + c
import functools
f2 = functools.partial(f, c=3)
print f2(1, 2) # results in 1+2+3=6
import functools
# Call wave1D_u0.solver with version fixed to scalar
scalar_solver = functools.partial(wave1D_u0.solver, version=’scalar’)
cpu = wave1D_u0.viz(
I, V, f, c, L, dt, C, T, umin, umax,
animate, tool, solver_function=scalar_solver)
144 2 Wave equations
Efficiency experiments. We now have a viz function that can call our solver function both in scalar and vectorized mode. The function run_efficiency_experiments in wave1D_u0v.py performs a set of ex- periments and reports the CPU time spent in the scalar and vectorized solver for the previous string vibration example with spatial mesh res- olutions Nx = 50, 100, 200, 400, 800. Running this function reveals that the vectorized code runs substantially faster: the vectorized code runs approximately Nx/10 times as fast as the scalar code!
2.4.5 Remark on the updating of arrays
At the end of each time step we need to update the u_nm1 and u_n arrays such that they have the right content for the next time step:
The order here is important: updating u_n first, makes u_nm1 equal to u, which is wrong!
The assignment u_n[:] = u copies the content of the u array into the elements of the u_n array. Such copying takes time, but that time is negligible compared to the time needed for computing u from the finite difference formula, even when the formula has a vectorized im- plementation. However, efficiency of program code is a key topic when solving PDEs numerically (particularly when there are two or three space dimensions), so it must be mentioned that there exists a much more efficient way of making the arrays u_nm1 and u_n ready for the next time step. The idea is based on switching references and explained as follows.
A Python variable is actually a reference to some object (C program- mers may think of pointers). Instead of copying data, we can let u_nm1 refer to the u_n object and u_n refer to the u object. This is a very efficient operation (like switching pointers in C). A naive implementation like
will fail, however, because now u_nm1 refers to the u_n object, but then the name u_n refers to u, so that this u object has two references, u_n and u, while our third array, originally referred to by u_nm1, has no more references and is lost. This means that the variables u, u_n, and u_nm1 refer to two arrays and not three. Consequently, the computations at the
u_nm1[:] = u_n
u_n[:] = u
u_nm1 = u_n
u_n = u
2.5 Exercises 145
next time level will be messed up since updating the elements in u will imply updating the elements in u_n too so the solution at the previous time step, which is crucial in our formulas, is destroyed.
While u_nm1 = u_n is fine, u_n = u is problematic, so the solution to this problem is to ensure that u points to the u_nm1 array. This is mathematically wrong, but new correct values will be filled into u at the next time step and make it right.
The correct switch of references is
We can get rid of the temporary reference tmp by writing u_nm1, u_n, u = u_n, u, u_nm1
This switching of references for updating our arrays will be used in later implementations.
Caution:
The update u_nm1, u_n, u = u_n, u, u_nm1 leaves wrong con- tent in u at the final time step. This means that if we return u, as we do in the example codes here, we actually return u_nm1, which is obviously wrong. It is therefore important to adjust the content of u to u = u_n before returning u. (Note that the user_action function reduces the need to return the solution from the solver.)
2.5 Exercises
Exercise 2.1: Simulate a standing wave
The purpose of this exercise is to simulate standing waves on [0, L] and illustrate the error in the simulation. Standing waves arise from an initial condition
π u(x,0)=Asin Lmx ,
where m is an integer and A is a freely chosen amplitude. The corre- sponding exact solution can be computed and reads
tmp = u_nm1
u_nm1 = u_n
u_n = u
u = tmp
146 2 Wave equations
ππ ue(x,t) = Asin Lmx cos Lmct .
a) Explain that for a function sin kx cos ωt the wave length in space is λ = 2π/k and the period in time is P = 2π/ω. Use these expressions to find the wave length in space and period in time of ue above.
b) Import the solver function from wave1D_u0.py into a new file where the viz function is reimplemented such that it plots either the numerical and the exact solution, or the error.
c) Make animations where you illustrate how the error eni = ue(xi, tn) − uni develops and increases in time. Also make animations of u and ue simultaneously.
Hint 1. Quite long time simulations are needed in order to display significant discrepancies between the numerical and exact solution.
Hint2. ApossiblesetofparametersisL=12,m=9,c=2,A=1, Nx = 80, C = 0.8. The error mesh function en can be simulated for 10 periods, while 20-30 periods are needed to show significant differences between the curves for the numerical and exact solution.
Filename: wave_standing.
Remarks. The important parameters for numerical quality are C and k∆x, where C = c∆t/∆x is the Courant number and k is defined above (k∆x is proportional to how many mesh points we have per wave length
in space, see Section 2.10.4 for explanation).
Exercise 2.2: Add storage of solution in a user action function
Extend the plot_u function in the file wave1D_u0.py to also store the solutions u in a list. To this end, declare all_u as an empty list in the viz function, outside plot_u, and perform an append operation inside the plot_u function. Note that a function, like plot_u, inside another function, like viz, remembers all local variables in viz function, including all_u, even when plot_u is called (as user_action) in the solver function. Test both all_u.append(u) and all_u.append(u.copy()). Why does one of these constructions fail to store the solution correctly? Let the viz function return the all_u list converted to a two-dimensional numpy array.
Filename: wave1D_u0_s_store.
2.5 Exercises 147
Exercise 2.3: Use a class for the user action function
Redo Exercise 2.2 using a class for the user action function. Let the all_u list be an attribute in this class and implement the user action function as a method (the special method __call__ is a natural choice). The class versions avoid that the user action function depends on parameters defined outside the function (such as all_u in Exercise 2.2).
Filename: wave1D_u0_s2c.
Exercise 2.4: Compare several Courant numbers in one movie
The goal of this exercise is to make movies where several curves, corre- sponding to different Courant numbers, are visualized. Write a program that resembles wave1D_u0_s2c.py in Exercise 2.3, but with a viz func- tion that can take a list of C values as argument and create a movie with solutions corresponding to the given C values. The plot_u function must be changed to store the solution in an array (see Exercise 2.2 or 2.3 for details), solver must be computed for each value of the Courant number, and finally one must run through each time step and plot all the spatial solution curves in one figure and store it in a file.
The challenge in such a visualization is to ensure that the curves in one plot correspond to the same time point. The easiest remedy is to keep the time resolution constant and change the space resolution to change the Courant number. Note that each spatial grid is needed for the final plotting, so it is an option to store those grids too.
Filename: wave_numerics_comparison.
Exercise 2.5: Implementing the solver function as a generator
The callback function user_action(u, x, t, n) is called from the solver function (in, e.g., wave1D_u0.py) at every time level and lets the user work perform desired actions with the solution, like plotting it on the screen. We have implemented the callback function in the typical way it would have been done in C and Fortran. Specifically, the code looks like
if user_action is not None:
if user_action(u, x, t, n):
break
148 2 Wave equations
Many Python programmers, however, may claim that solver is an iterative process, and that iterative processes with callbacks to the user code is more elegantly implemented as generators. The rest of the text has little meaning unless you are familiar with Python generators and the yield statement.
Instead of calling user_action, the solver function issues a yield statement, which is a kind of return statement:
yield u, x, t, n
The program control is directed back to the calling code:
When the block is done, solver continues with the statement after yield. Note that the functionality of terminating the solution process if user_action returns a True value is not possible to implement in the generator case.
Implement the solver function as a generator, and plot the solution at each time step. Filename: wave1D_u0_generator.
Project 2.6: Calculus with 1D mesh functions
This project explores integration and differentiation of mesh functions, both with scalar and vectorized implementations. We are given a mesh function fi on a spatial one-dimensional mesh xi = i∆x, i = 0, . . . , Nx, over the interval [a, b].
a) Define the discrete derivative of fi by using centered differences at internal mesh points and one-sided differences at the end points. Implement a scalar version of the computation in a Python function and write an associated unit test for the linear case f (x) = 4x − 2.5 where the discrete derivative should be exact.
b) Vectorize the implementation of the discrete derivative. Extend the unit test to check the validity of the implementation.
c) To compute the discrete integral Fi of fi, we assume that the mesh function fi varies linearly between the mesh points. Let f(x) be such a linear interpolant of fi. We then have
xi x0
for u, x, t, n in solver(...):
# Do something with u at t[n]
Fi =
f(x)dx.
2.6 Generalization: reflecting boundaries 149
The exact integral of a piecewise linear function f(x) is given by the Trapezoidal rule. Show that if Fi is already computed, we can find Fi+1 from
Fi+1 =Fi+1(fi+fi+1)∆x. 2
Make a function for the scalar implementation of the discrete integral as a mesh function. That is, the function should return Fi for i = 0, . . . , Nx. For a unit test one can use the fact that the above defined discrete integral of a linear function (say f (x) = 4x − 2.5) is exact.
d) Vectorize the implementation of the discrete integral. Extend the unit test to check the validity of the implementation.
Hint. Interpret the recursive formula for Fi+1 as a sum. Make an array with each element of the sum and use the "cumsum" (numpy.cumsum) operation to compute the accumulative sum: numpy.cumsum([1,3,5]) is [1,4,9].
e) Create a class MeshCalculus that can integrate and differentiate mesh functions. The class can just define some methods that call the previously implemented Python functions. Here is an example on the usage:
Filename: mesh_calculus_1D.
2.6 Generalization: reflecting boundaries
The boundary condition u = 0 in a wave equation reflects the wave, but u changes sign at the boundary, while the condition ux = 0 reflects the wave as a mirror and preserves the sign, see a web page or a movie file for demonstration.
Our next task is to explain how to implement the boundary condition ux = 0, which is more complicated to express numerically and also to implement than a given value of u. We shall present two methods for implementing ux = 0 in a finite difference scheme, one based on deriving
import numpy as np
calc = MeshCalculus(vectorized=True)
x = np.linspace(0, 1, 11)
f = np.exp(x)
df = calc.differentiate(f, x)
F = calc.integrate(f, x)
# mesh
# mesh function
# discrete derivative
# discrete anti-derivative
150 2 Wave equations
a modified stencil at the boundary, and another one based on extending the mesh with ghost cells and ghost points.
2.6.1 Neumann boundary condition
When a wave hits a boundary and is to be reflected back, one applies the condition
∂u ≡n·∇u=0. (2.35) ∂n
The derivative ∂/∂n is in the outward normal direction from a general boundary. For a 1D domain [0, L], we have that
∂ = ∂ , ∂ =− ∂ . ∂nx=L ∂xx=L ∂nx=0 ∂xx=0
Boundary condition terminology
Boundary conditions that specify the value of ∂u/∂n (or shorter un) are known as Neumann conditions, while Dirichlet conditions refer to specifications of u. When the values are zero (∂u/∂n = 0 or u = 0) we speak about homogeneous Neumann or Dirichlet conditions.
2.6.2 Discretization of derivatives at the boundary
How can we incorporate the condition (2.35) in the finite difference scheme? Since we have used central differences in all the other approxi- mations to derivatives in the scheme, it is tempting to implement (2.35) atx=0andt=tn bythedifference
[D2xu]n0 = un−1 − un = 0 . (2.36) 2∆x
The problem is that un−1 is not a u value that is being computed since the point is outside the mesh. However, if we combine (2.36) with the scheme for i = 0,
un+1 =−un−1 +2un +C2un −2un +un , (2.37) i i i i+1 i i−1
2.6 Generalization: reflecting boundaries 151
we can eliminate the fictitious value un−1. We see that un−1 = un from (2.36), which can be used in (2.37) to arrive at a modified scheme for the
boundary point un+1: 0
un+1 =−un−1 +2un +2C2un −un, i i i i+1 i
i=0. (2.38) Figure 2.4 visualizes this equation for computing u30 in terms of u20, u10,
and u21.
5
4
3
2
1
Stencil at boundary point
0
012345
index i
Fig. 2.4 Modified stencil at a boundary with a Neumann condition.
Similarly, (2.35) applied at x = L is discretized by a central difference unNx+1−unNx−1 =0. (2.39)
2∆x
Combined with the scheme for i = Nx we get a modified scheme for the
boundary value un+1: Nx
un+1 =−un−1 +2un +2C2un −un, i=N . (2.40) i i i i−1 i x
The modification of the scheme at the boundary is also required for the special formula for the first time step. How the stencil moves through the mesh and is modified at the boundary can be illustrated by an animation in a web page or a movie file.
index n
152 2 Wave equations
2.6.3 Implementation of Neumann conditions
We have seen in the preceding section that the special formulas for the boundary points arise from replacing un by un when computing un+1
i−1 i+1 i from the stencil formula for i = 0. Similarly, we replace uni+1 by uni−1
in the stencil formula for i = Nx. This observation can conveniently be used in the coding: we just work with the general stencil formula, but write the code such that it is easy to replace u[i-1] by u[i+1] and vice versa. This is achieved by having the indices i+1 and i-1 as variables ip1 (i plus 1) and im1 (i minus 1), respectively. At the boundary we can easily define im1=i+1 while we use im1=i-1 in the internal parts of the mesh. Here are the details of the implementation (note that the updating formula for u[i] is the general stencil formula):
i=0
ip1 = i+1
im1=ip1 #i-1->i+1
u[i] = u_n[i] + C2*(u_n[im1] – 2*u_n[i] + u_n[ip1])
i = Nx
im1 = i-1
ip1=im1 #i+1->i-1
u[i] = u_n[i] + C2*(u_n[im1] – 2*u_n[i] + u_n[ip1])
We can in fact create one loop over both the internal and boundary points and use only one updating formula:
The program wave1D_n0.py contains a complete implementation of the 1D wave equation with boundary conditions ux = 0 at x = 0 and x = L.
It would be nice to modify the test_quadratic test case from the wave1D_u0.py with Dirichlet conditions, described in Section 2.4.3. How- ever, the Neumann conditions require the polynomial variation in the x direction to be of third degree, which causes challenging problems when designing a test where the numerical solution is known exactly. Exercise 2.15 outlines ideas and code for this purpose. The only test in wave1D_n0.py is to start with a plug wave at rest and see that the initial condition is reached again perfectly after one period of motion, but such a test requires C = 1 (so the numerical solution coincides with the exact solution of the PDE, see Section 2.10.4).
for i in range(0, Nx+1):
ip1 = i+1 if i < Nx else i-1
im1=i-1ifi>0 elsei+1
u[i] = u_n[i] + C2*(u_n[im1] – 2*u_n[i] + u_n[ip1])
2.6 Generalization: reflecting boundaries 153
2.6.4 Index set notation
To improve our mathematical writing and our implementations, it is wise to introduce a special notation for index sets. This means that we write xi, followed by i ∈ Ix, instead of i = 0,…,Nx. Obviously, Ix must be the index set Ix = {0, . . . , Nx}, but it is often advantageous to have a symbol for this set rather than specifying all its elements (all the time, as we have done up to now). This new notation saves writing and makes specifications of algorithms and their implementation as computer code simpler.
The first index in the set will be denoted I0 and the last I−1. When xx
we need to skip the first element of the set, we use Ix+ for the remaining subset Ix+ = {1, . . . , Nx}. Similarly, if the last element is to be dropped, we write Ix− = {0, . . . , Nx − 1} for the remaining indices. All the indices correspondingtoinnergridpointsarespecifiedbyIxi ={1,…,Nx−1}. For the time domain we find it natural to explicitly use 0 as the first index, so we will usually write n = 0 and t0 rather than n = It0. We also avoid notation like x −1 and will instead use x , i = I−1.
Ix ix
The Python code associated with index sets applies the following
conventions:
Notation Python
Ix Ix
Ix0 Ix[0]
I−1 Ix[-1] x
Ix− Ix[:-1] Ix+ Ix[1:] Ixi Ix[1:-1]
Why index sets are useful
An important feature of the index set notation is that it keeps our formulas and code independent of how we count mesh points. For example, the notation i ∈ Ix or i = Ix0 remains the same whether Ix is defined as above or as starting at 1, i.e., Ix = {1,…,Q}. Simi- larly, we can in the code define Ix=range(Nx+1) or Ix=range(1,Q), and expressions like Ix[0] and Ix[1:-1] remain correct. One ap- plication where the index set notation is convenient is conversion of code from a language where arrays has base index 0 (e.g., Python and C) to languages where the base index is 1 (e.g., MATLAB
154 2 Wave equations
and Fortran). Another important application is implementation of Neumann conditions via ghost points (see next section).
For the current problem setting in the x, t plane, we work with the index sets
Ix = {0,…,Nx}, It = {0,…,Nt}, (2.41) defined in Python as
A finite difference scheme can with the index set notation be specified as
un+1=un−1C2un −2un+un , ,i∈Ii,n=0, i i 2 i+1 i i−1 x
un+1 =−un−1 +2un +C2un −2un +un , i∈Ii, n∈Ii, i i i i+1 i i−1 x t
un+1 =0, i=I0, n∈I−, ixt
un+1 =0, i=I−1, n∈I−. ixt
The corresponding implementation becomes
Ix = range(0, Nx+1)
It = range(0, Nt+1)
# Initial condition
for i in Ix[1:-1]:
u[i] = u_n[i] – 0.5*C2*(u_n[i-1] – 2*u_n[i] + u_n[i+1])
# Time loop
for n in It[1:-1]:
# Compute internal points
for i in Ix[1:-1]:
u[i] = – u_nm1[i] + 2*u_n[i] + \
C2*(u_n[i-1] – 2*u_n[i] + u_n[i+1])
# Compute boundary conditions
i=Ix[0]; u[i]=0 i = Ix[-1]; u[i] = 0
Notice
The program wave1D_dn.py applies the index set notation and solves the 1D wave equation utt = c2uxx +f(x,t) with quite general boundary and initial conditions:
2.6 Generalization: reflecting boundaries 155
• x=0:u=U0(t)orux =0 • x=L:u=UL(t)orux =0 • t = 0: u = I(x)
• t=0:ut =V(x)
The program combines Dirichlet and Neumann conditions, scalar and vectorized implementation of schemes, and the index set nota- tion into one piece of code. A lot of test examples are also included in the program:
• A rectangular plug-shaped initial condition. (For C = 1 the solution will be a rectangle that jumps one cell per time step, making the case well suited for verification.)
• A Gaussian function as initial condition.
• A triangular profile as initial condition, which resembles the
typical initial shape of a guitar string.
• Asinusoidalvariationofuatx=0andeitheru=0orux =0
at x = L.
• An exact analytical solution u(x, t) = cos(mπt/L) sin( 1 mπx/L),
which can be used for convergence rate tests.
2
2.6.5 Verifying the implementation of Neumann conditions
How can we test that the Neumann conditions are correctly implemented? The solver function in the wave1D_dn.py program described in the box above accepts Dirichlet or Neumann conditions at x = 0 and x = L. It is tempting to apply a quadratic solution as described in Sections 2.2.1 and 2.3.3, but it turns out that this solution is no longer an exact solution of the discrete equations if a Neumann condition is implemented on the boundary. A linear solution does not help since we only have homogeneous Neumann conditions in wave1D_dn.py, and we are consequently left with testing just a constant solution: u = const.
def test_constant():
“””
Check the scalar and vectorized versions for
a constant u(x,t). We simulate in [0, L] and apply
Neumann and Dirichlet conditions at both ends.
“””
156 2 Wave equations
u_const = 0.45
u_exact = lambda x, t: u_const
I = lambda x: u_exact(x, 0)
V = lambda x: 0
f = lambda x, t: 0
def assert_no_error(u, x, t, n):
u_e = u_exact(x, t[n])
diff = np.abs(u – u_e).max()
msg = ’diff=%E, t_%d=%g’ % (diff, n, t[n])
tol = 1E-13
assert diff < tol, msg
for U_0 in (None, lambda t: u_const):
for U_L in (None, lambda t: u_const):
L = 2.5
c = 1.5
C = 0.75
Nx = 3 # Very coarse mesh for this exact test
dt = C*(L/Nx)/c
T = 18 # long time integration
solver(I, V, f, c, U_0, U_L, L, dt, C, T,
user_action=assert_no_error,
version=’scalar’)
solver(I, V, f, c, U_0, U_L, L, dt, C, T,
user_action=assert_no_error,
version=’vectorized’)
print U_0, U_L
The quadratic solution is very useful for testing, but it requires Dirichlet conditions at both ends.
Another test may utilize the fact that the approximation error vanishes when the Courant number is unity. We can, for example, start with a plug profile as initial condition, let this wave split into two plug waves, one in each direction, and check that the two plug waves come back and form the initial condition again after “one period” of the solution process. Neumann conditions can be applied at both ends. A proper test function reads
def test_plug():
"""Check that an initial plug is correct back after one period."""
L = 1.0
c = 0.5
dt = (L/10)/c # Nx=10
I = lambda x: 0 if abs(x-L/2.0) > 0.1 else 1
u_s, x, t, cpu = solver(
I=I,
V=None, f=None, c=0.5, U_0=None, U_L=None, L=L,
dt=dt, C=1, T=4, user_action=None, version=’scalar’)
2.6 Generalization: reflecting boundaries 157
u_v, x, t, cpu = solver(
I=I,
V=None, f=None, c=0.5, U_0=None, U_L=None, L=L,
dt=dt, C=1, T=4, user_action=None, version=’vectorized’)
tol = 1E-13
diff = abs(u_s – u_v).max()
assert diff < tol
u_0 = np.array([I(x_) for x_ in x])
diff = np.abs(u_s - u_0).max()
assert diff < tol
Other tests must rely on an unknown approximation error, so effectively we are left with tests on the convergence rate.
2.6.6 Alternative implementation via ghost cells
Idea. Instead of modifying the scheme at the boundary, we can introduce extra points outside the domain such that the fictitious values un−1 and unNx+1 are defined in the mesh. Adding the intervals [−∆x,0] and [L, L + ∆x], known as ghost cel ls, to the mesh gives us all the needed mesh points, corresponding to i = −1, 0, . . . , Nx, Nx +1. The extra points with i = −1 and i = Nx +1 are known as ghost points, and values at these points, un−1 and unNx+1, are called ghost values.
The important idea is to ensure that we always have un−1 = un1 and unNx+1 = unNx−1,
because then the application of the standard scheme at a boundary point i = 0 or i = Nx will be correct and guarantee that the solution is compatible with the boundary condition ux = 0.
Some readers may find it strange to just extend the domain with ghost cells as a general technique, because in some problems there is a completely different medium with different physics and equations right outside of a boundary. Nevertheless, one should view the ghost cell technique as a purely mathematical technique, which is valid in the limit ∆xrightarrow0 and helps us to implement derivatives.
Implementation. The u array now needs extra elements corresponding to the ghost points. Two new point values are needed:
u = zeros(Nx+3)
The arrays u_n and u_nm1 must be defined accordingly.
Unfortunately, a major indexing problem arises with ghost cells. The reason is that Python indices must start at 0 and u[-1] will always mean
158 2 Wave equations
the last element in u. This fact gives, apparently, a mismatch between the mathematical indices i = −1, 0, . . . , Nx + 1 and the Python indices running over u: 0,..,Nx+2. One remedy is to change the mathematical indexing of i in the scheme and write
un+1=···, i=1,...,Nx+1, i
instead of i = 0, . . . , Nx as we have previously used. The ghost points now correspond to i = 0 and i = Nx + 1. A better solution is to use the ideas of Section 2.6.4: we hide the specific index value in an index set and operate with inner and boundary points using the index set notation.
To this end, we define u with proper length and Ix to be the corre- sponding indices for the real physical mesh points (1, 2, . . . , Nx + 1):
That is, the boundary points have indices Ix[0] and Ix[-1] (as before). We first update the solution at all physical mesh points (i.e., interior points in the mesh):
The indexing becomes a bit more complicated when we call functions like V(x) and f(x, t), as we must remember that the appropriate x coordinate is given as x[i-Ix[0]]:
It remains to update the solution at ghost points, i.e, u[0] and u[-1] (or u[Nx+2]). For a boundary condition ux = 0, the ghost value must equal the value at the associated inner mesh point. Computer code makes
this statement precise:
The physical solution to be plotted is now in u[1:-1], or equivalently u[Ix[0]:Ix[-1]+1], so this slice is the quantity to be returned from a solver function. A complete implementation appears in the program wave1D_n0_ghost.py.
u = zeros(Nx+3)
Ix = range(1, u.shape[0]-1)
for i in Ix:
u[i] = - u_nm1[i] + 2*u_n[i] + \
C2*(u_n[i-1] - 2*u_n[i] + u_n[i+1])
for i in Ix:
u[i] = u_n[i] + dt*V(x[i-Ix[0]]) + \
0.5*C2*(u_n[i-1] - 2*u_n[i] + u_n[i+1]) + \
0.5*dt2*f(x[i-Ix[0]], t[0])
i = Ix[0] # x=0 boundary
u[i-1] = u[i+1]
i = Ix[-1] # x=L boundary
u[i+1] = u[i-1]
2.6 Generalization: reflecting boundaries 159
Warning
We have to be careful with how the spatial and temporal mesh points are stored. Say we let x be the physical mesh points,
x = linspace(0, L, Nx+1)
"Standard coding" of the initial condition,
for i in Ix:
u_n[i] = I(x[i])
becomes wrong, since u_n and x have different lengths and the index i corresponds to two different mesh points. In fact, x[i] corresponds to u[1+i]. A correct implementation is
for i in Ix:
u_n[i] = I(x[i-Ix[0]])
Similarly,asourcetermusuallycodedasf(x[i], t[n])isincorrect if x is defined to be the physical points, so x[i] must be replaced by x[i-Ix[0]].
An alternative remedy is to let x also cover the ghost points such that u[i] is the value at x[i].
The ghost cell is only added to the boundary where we have a Neu- mann condition. Suppose we have a Dirichlet condition at x = L and a homogeneous Neumann condition at x = 0. One ghost cell [−∆x, 0] is added to the mesh, so the index set for the physical points becomes {1, . . . , Nx + 1}. A relevant implementation is
u = zeros(Nx+2)
Ix = range(1, u.shape[0])
...
for i in Ix[:-1]:
u[i] = - u_nm1[i] + 2*u_n[i] + \
C2*(u_n[i-1] - 2*u_n[i] + u_n[i+1]) + \
dt2*f(x[i-Ix[0]], t[n])
i = Ix[-1]
u[i] = U_0 # set Dirichlet value
i = Ix[0]
u[i-1] = u[i+1] # update ghost value
The physical solution to be plotted is now in u[1:] or (as always) u[Ix[0]:Ix[-1]+1].
160 2 Wave equations
2.7 Generalization: variable wave velocity
Our next generalization of the 1D wave equation (2.1) or (2.17) is to allow for a variable wave velocity c: c = c(x), usually motivated by wave motion in a domain composed of different physical media. When the media differ in physical properties like density or porosity, the wave velocity c is affected and will depend on the position in space. Figure 2.5 shows a wave propagating in one medium [0, 0.7] ∪ [0.9, 1] with wave velocity c1 (left) before it enters a second medium (0.7, 0.9) with wave velocity c2 (right). When the wave passes the boundary where c jumps from c1 to c2, a part of the wave is reflected back into the first medium (the reflected wave), while one part is transmitted through the second medium (the transmitted wave).
Fig. 2.5 Left: wave entering another medium; right: transmitted and reflected wave.
2.7.1 The model PDE with a variable coefficient
Instead of working with the squared quantity c2(x), we shall for notational convenience introduce q(x) = c2(x). A 1D wave equation with variable wave velocity often takes the form
∂2u ∂ ∂u
∂t2 = ∂x q(x)∂x +f(x,t). (2.42)
This is the most frequent form of a wave equation with variable wave velocity, but other forms also appear, see Section 2.14.1 and equation (2.125).
As usual, we sample (2.42) at a mesh point,
2.7 Generalization: variable wave velocity 161
∂2 ∂∂ ∂t2u(xi,tn)= ∂x q(xi)∂xu(xi,tn) +f(xi,tn),
where the only new term to discretize is
∂∂ ∂∂un
∂x q(xi)∂xu(xi, tn) = ∂x q(x)∂x 2.7.2 Discretizing the variable coefficient
.
The principal idea is to first discretize the outer derivative. Define φ = q(x)∂u,
i
∂x
and use a centered derivative around x = xi for the derivative of φ:
Then discretize
φi+1 = qi+1 ∂x
uni+1 −uni ∆x
n
= [qDxu]i+1 .
2
n
= [qDxu]i−1 .
2
∂φn φi+1 −φi−1
∂x i ∂un
≈ qi+1 2 2 i+1 2
≈2 2=[Dxφ]ni. ∆x
Similarly,
φi−1 = qi−1 ∂x
∂un
2 2 i−1 2
uni −uni−1 ∆x
≈ qi−1
These intermediate results are now combined to
2
i22 With operator notation we can write the discretization as
∂ ∂un
(2.43) (2.44)
2
∂ ∂un 1 n n n n ∂x q(x)∂x ≈ ∆x2 qi+1 ui+1 −ui −qi−1 ui −ui−1 .
≈ [Dx(qxDxu)]ni .
Do not use the chain rule on the spatial derivative term!
∂x q(x)∂x
i
162
2 Wave equations
Many are tempted to use the chain rule on the term ∂ q(x)∂u, ∂x ∂x
but this is not a good idea when discretizing such a term.
The term with a variable coefficient expresses the net flux qux
into a small volume (i.e., interval in 1D): ∂ ∂u 1
∂x q(x)∂x ≈ ∆x(q(x + ∆x)ux(x + ∆x) − q(x)ux(x)) .
Our discretization reflects this principle directly: qux at the right end of the cell minus qux at the left end, because this follows from the formula (2.43) or [Dx(qDxu)]ni .
When using the chain rule, we get two terms quxx + qxux. The typical discretization is
DxqDxu + D2xqD2xu]ni , (2.45)
Writingthisoutshowsthatitisdifferentfrom[Dx(qDxu)]ni andlacks the physical interpretation of net flux into a cell. With a smooth and slowly varying q(x) the differences between the two discretizations are not substantial. However, when q exhibits (potentially large) jumps, [Dx(qDxu)]ni with harmonic averaging of q yields a better solution than arithmetic averaging or (2.45). In the literature, the discretization [Dx(qDxu)]ni totally dominates and very few mention the possibility of (2.45).
2.7.3 Computing the coefficient between mesh points
If q is a known function of x, we can easily evaluate qi+1 simply as 2
q(x 1)withx 1 =xi+1∆x.However,inmanycasesc,andhence i+2 i+2 2
q, is only known as a discrete function, often at the mesh points xi. Evaluating q between two mesh points xi and xi+1 must then be done by interpolation techniques, of which three are of particular interest in this context:
2.7 Generalization: variable wave velocity
163
qi+ 1 ≈ 1 (qi + qi+1) = [qx]i 22
1 1−1 qi+ 1 ≈ 2 q + q
2 ii+1 qi+ 1 ≈ (qiqi+1)1/2
2
(arithmetic mean)
(harmonic mean) (geometric mean)
(2.46)
(2.47)
(2.48)
The arithmetic mean in (2.46) is by far the most commonly used averaging technique and is well suited for smooth q(x) functions. The harmonic mean is often preferred when q(x) exhibits large jumps (which is typical for geological media). The geometric mean is less used, but popular in discretizations to linearize quadratic nonlinearities (see Section 1.10.2 for an example).
With the operator notation from (2.46) we can specify the discretiza- tion of the complete variable-coefficient wave equation in a compact way:
[DtDtu=DxqxDxu+f]ni . (2.49)
Strictly speaking, [DxqxDxu]ni = [Dx(qxDxu)]ni .
From the compact difference notation we immediately see what kind
of differences that each term is approximated with. The notation qx also
specifies that the variable coefficient is approximated by an arithmetic
mean, the definition being [qx]i+ 1 = (qi + qi+1)/2. 2
Before implementing, it remains to solve (2.49) with respect to un+1: i
un+1 = −un−1 + 2un+ iii
∆t21(qi+qi+1)(uni+1−uni)−1(qi+qi−1)(uni −uni−1)+ ∆x2 2
∆t2fin . (2.50) 2.7.4 How a variable coefficient affects the stability
The stability criterion derived in Section 2.10.3 reads ∆t ≤ ∆x/c. If c = c(x), the criterion will depend on the spatial location. We must therefore choose a ∆t that is small enough such that no mesh cell has ∆x/c(x) > ∆t. That is, we must use the largest c value in the criterion:
∆t ≤ β ∆x . (2.51) maxx∈[0,L] c(x)
164 2 Wave equations
The parameter β is included as a safety factor: in some problems with a significantly varying c it turns out that one must choose β < 1 to have stable solutions (β = 0.9 may act as an all-round value).
A different strategy to handle the stability criterion with variable wave velocity is to use a spatially varying ∆t. While the idea is mathemati- cally attractive at first sight, the implementation quickly becomes very complicated, so we stick to a constant ∆t and a worst case value of c(x) (with a safety factor β).
2.7.5 Neumann condition and a variable coefficient
Consider a Neumann condition ∂u/∂x = 0 at x = L = Nx∆x, discretized as
[D2xu]ni = uni+1 − uni−1 = 0 ⇒ uni+1 = uni−1, 2∆x
for i = Nx. Using the scheme (2.50) at the end point i = Nx with uni+1 = uni−1 results in
un+1 = −un−1 + 2un+ iii
∆t2qi+1(uni−1−uni)−qi−1(uni −uni−1)+∆t2fin (2.52) ∆x2 2
Here we used the approximation
∆t2
i i ∆x i+2 i−2 i−1 i i
=−un−1+2un+ ≈−un−1 +2un +
(q 1 +q 1)(un −un)+∆t2fn (2.53)
∆t2
i i∆xii−1i i
2q(un −un)+∆t2fn. (2.54)
2.7 Generalization: variable wave velocity 165
dq d2q
qi+1 +qi−1 =qi+ dx ∆x+ dx2 ∆x2+···+
22ii dq d2q
qi− dx ∆x+ dx2 ∆x2+··· ii
d2q
qn+ 1 in (2.53), leading to the term 2
(qi + 1(qi+1 +qi−1))(uni−1 −uni ). 2
=2qi +2 dx2 ≈ 2qi .
∆x2 +O(∆x4)
(2.55) An alternative derivation may apply the arithmetic mean of qn− 1 and
i
Since 1 (qi+1+qi−1) = qi+O(∆x2), we can approximate with 2qi(uni−1−uni ) 2
for i = Nx and get the same term as we did above.
A common technique when implementing ∂u/∂x = 0 boundary con-
ditions, is to assume dq/dx = 0 as well. This implies qi+1 = qi−1 and qi+1/2 = qi−1/2 for i = Nx. The implications for the scheme are
un+1 = −un−1 + 2un+ iii
∆t2 qi+1 (uni−1 −uni )−qi−1 (uni −uni−1)+ ∆x2 2
2
∆t2 fin =−un−1+2un+
(2.56) 2q 1(un −un)+∆t2fn. (2.57)
∆t2
i i ∆x i−2 i−1 i i
2.7.6 Implementation of variable coefficients
The implementation of the scheme with a variable wave velocity q(x) = c2(x) may assume that q is available as an array q[i] at the spatial mesh points. The following loop is a straightforward implementation of the scheme (2.50):
for i in range(1, Nx):
u[i] = - u_nm1[i] + 2*u_n[i] + \
C2*(0.5*(q[i] + q[i+1])*(u_n[i+1] - u_n[i]) - \
0.5*(q[i] + q[i-1])*(u_n[i] - u_n[i-1])) + \
dt2*f(x[i], t[n])
166 2 Wave equations
The coefficient C2 is now defined as (dt/dx)**2, i.e., not as the squared Courant number, since the wave velocity is variable and appears inside the parenthesis.
With Neumann conditions ux = 0 at the boundary, we need to combine this scheme with the discrete version of the boundary condition, as shown in Section 2.7.5. Nevertheless, it would be convenient to reuse the formula for the interior points and just modify the indices ip1=i+1 and im1=i-1 as we did in Section 2.6.3. Assuming dq/dx = 0 at the boundaries, we can implement the scheme at the boundary with the following code.
With ghost cells we can just reuse the formula for the interior points also at the boundary, provided that the ghost values of both u and q are correctly updated to ensure ux = 0 and qx = 0.
A vectorized version of the scheme with a variable coefficient at internal mesh points becomes
2.7.7 A more general PDE model with variable coefficients
Sometimes a wave PDE has a variable coefficient in front of the time- derivative term:
∂2u ∂ ∂u
ρ(x)∂t2 = ∂x q(x)∂x +f(x,t). (2.58)
One example appears when modeling elastic waves in a rod with varying density, cf. (2.14.1) with ρ(x).
A natural scheme for (2.58) is
[ρDtDtu=DxqxDxu+f]ni . (2.59)
We realize that the ρ coefficient poses no particular difficulty, since ρ enters the formula just as a simple factor in front of a derivative. There
i=0
ip1 = i+1
im1 = ip1
u[i] = - u_nm1[i] + 2*u_n[i] + \
C2*(0.5*(q[i] + q[ip1])*(u_n[ip1] - u_n[i]) - \
0.5*(q[i] + q[im1])*(u_n[i] - u_n[im1])) + \
dt2*f(x[i], t[n])
u[1:-1] = - u_nm1[1:-1] + 2*u_n[1:-1] + \
C2*(0.5*(q[1:-1] + q[2:])*(u_n[2:] - u_n[1:-1]) -
0.5*(q[1:-1] + q[:-2])*(u_n[1:-1] - u_n[:-2])) + \
dt2*f(x[1:-1], t[n])
2.7 Generalization: variable wave velocity 167
is hence no need for any averaging of ρ. Often, ρ will be moved to the right-hand side, also without any difficulty:
[DtDtu=ρ−1DxqxDxu+f]ni . (2.60) 2.7.8 Generalization: damping
Waves die out by two mechanisms. In 2D and 3D the energy of the wave spreads out in space, and energy conservation then requires the amplitude to decrease. This effect is not present in 1D. Damping is another cause of amplitude reduction. For example, the vibrations of a string die out because of damping due to air resistance and non-elastic effects in the string.
The simplest way of including damping is to add a first-order derivative to the equation (in the same way as friction forces enter a vibrating mechanical system):
∂2u + b∂u = c2 ∂2u + f(x, t), (2.61) ∂t2 ∂t ∂x2
where b ≥ 0 is a prescribed damping coefficient.
A typical discretization of (2.61) in terms of centered differences reads
[DtDtu+bD2tu=c2DxDxu+f]ni . (2.62) Writing out the equation and solving for the unknown un+1 gives the
scheme
un+1 = (1+1b∆t)−1((1b∆t−1)un−1+2un+C2 un − 2un + un +∆t2fn),
i 2 2 i i i+1 i i−1 i (2.63)
i
for i ∈ Ixi and n ≥ 1. New equations must be derived for u1i , and for boundary points in case of Neumann conditions.
The damping is very small in many wave phenomena and thus only evident for very long time simulations. This makes the standard wave equation without damping relevant for a lot of applications.
168 2 Wave equations
2.8 Building a general 1D wave equation solver
The program wave1D_dn_vc.py is a fairly general code for 1D wave propagation problems that targets the following initial-boundary value problem
utt =(c2(x)ux)x +f(x,t), u(x,0) = I(x),
ut(x, 0) = V (t),
u(0,t) = U0(t) or ux(0,t) = 0,
x∈(0,L), t∈(0,T] x ∈ [0,L] x ∈ [0, L] t ∈ (0,T] t ∈ (0,T]
The solver function is a natural extension of the simplest solver function in the initial wave1D_u0.py program, extended with Neumann boundary conditions (ux = 0), time-varying Dirichlet conditions, as well as a variable wave velocity. The different code segments needed to make these extensions have been shown and commented upon in the preceding text. We refer to the solver function in the wave1D_dn_vc.py file for all the details. Note in that solver function, however, that the technique of “hashing” is used to check whether a certain simulation has been run before, or not. This technique is further explained in Section C.2.3.
The vectorization is only applied inside the time loop, not for the initial condition or the first time steps, since this initial work is negligible for long time simulations in 1D problems.
The following sections explain various more advanced programming techniques applied in the general 1D wave equation solver.
2.8.1 User action function as a class
A useful feature in the wave1D_dn_vc.py program is the specification of the user_action function as a class. This part of the program may need
u(L,t) = UL(t) or ux(L,t) = 0,
The only new feature here is the time-dependent Dirichlet conditions.
These are trivial to implement:
(2.64) (2.65) (2.66) (2.67) (2.68)
i = Ix[0] # x=0
u[i] = U_0(t[n+1])
i = Ix[-1] # x=L
u[i] = U_L(t[n+1])
2.8 Building a general 1D wave equation solver 169
some motivation and explanation. Although the plot_u_st function (and the PlotMatplotlib class) in the wave1D_u0.viz function remembers the local variables in the viz function, it is a cleaner solution to store the needed variables together with the function, which is exactly what a class offers.
The code. A class for flexible plotting, cleaning up files, making movie files, like the function wave1D_u0.viz did, can be coded as follows:
class PlotAndStoreSolution:
"""
Class for the user_action function in solver.
Visualizes the solution only.
"""
def __init__(
self,
casename=’tmp’, # Prefix in filenames
umin=-1, umax=1, # Fixed range of y axis
pause_between_frames=None, # Movie speed
backend=’matplotlib’, # or ’gnuplot’ or None
screen_movie=True, # Show movie on screen?
title=’’,
skip_frame=1,
filename=None):
self.casename = casename
self.yaxis = [umin, umax]
self.pause = pause_between_frames
self.backend = backend
# Extra message in title
# Skip every skip_frame frame
# Name of file with solutions
if backend is None:
# Use native matplotlib
import matplotlib.pyplot as plt
elif backend in (’matplotlib’, ’gnuplot’):
module = ’scitools.easyviz.’ + backend + ’_’
exec(’import %s as plt’ % module)
self.plt = plt
self.screen_movie = screen_movie
self.title = title
self.skip_frame = skip_frame
self.filename = filename
if filename is not None:
# Store time points when u is written to file
self.t = []
filenames = glob.glob(’.’ + self.filename + ’*.dat.npz’)
for filename in filenames:
os.remove(filename)
# Clean up old movie frames
for filename in glob.glob(’frame_*.png’):
os.remove(filename)
def __call__(self, u, x, t, n):
"""
170 2 Wave equations
Callback function user_action, call by solver:
Store solution, plot on screen and save to file.
"""
# Save solution u to a file using numpy.savez
if self.filename is not None:
name = ’u%04d’ % n # array name
kwargs = {name: u}
fname = ’.’ + self.filename + ’_’ + name + ’.dat’
np.savez(fname, **kwargs)
self.t.append(t[n]) # store corresponding time value
if n == 0: # save x once
np.savez(’.’ + self.filename + ’_x.dat’, x=x)
# Animate
if n % self.skip_frame != 0:
return
title = ’t=%.3f’ % t[n]
if self.title:
title = self.title + ’ ’ + title
if self.backend is None:
# native matplotlib animation
if n == 0:
self.plt.ion()
self.lines = self.plt.plot(x, u, ’r-’)
self.plt.axis([x[0], x[-1],
self.yaxis[0], self.yaxis[1]])
self.plt.xlabel(’x’)
self.plt.ylabel(’u’)
self.plt.title(title)
self.plt.legend([’t=%.3f’ % t[n]])
else:
else:
# pause
# Update new solution
self.lines[0].set_ydata(u)
self.plt.legend([’t=%.3f’ % t[n]])
self.plt.draw()
# scitools.easyviz animation
self.plt.plot(x, u, ’r-’,
xlabel=’x’, ylabel=’u’,
axis=[x[0], x[-1],
self.yaxis[0], self.yaxis[1]],
title=title,
show=self.screen_movie)
if t[n] == 0:
time.sleep(2) # let initial condition stay 2 s
else:
if self.pause is None:
pause = 0.2 if u.size < 100 else 0
time.sleep(pause)
self.plt.savefig(’frame_%04d.png’ % (n))
2.8 Building a general 1D wave equation solver 171
Dissection. Understanding this class requires quite some familiarity with Python in general and class programming in particular. The class supports plotting with Matplotlib (backend=None) or SciTools (backend=matplotlib or backend=gnuplot) for maximum flexibility.
The constructor shows how we can flexibly import the plotting engine as (typically) scitools.easyviz.gnuplot_ or scitools.easyviz.matplotlib_ (note the trailing underscore - it is required). With the screen_movie parameter we can suppress dis- playing each movie frame on the screen. Alternatively, for slow movies associated with fine meshes, one can set skip_frame=10, causing every 10 frames to be shown.
The __call__ method makes PlotAndStoreSolution instances be- have like functions, so we can just pass an instance, say p, as the user_action argument in the solver function, and any call to user_action will be a call to p.__call__. The __call__ method plots the solution on the screen, saves the plot to file, and stores the solution in a file for later retrieval.
More details on storing the solution in files appear in Section C.2.
2.8.2 Pulse propagation in two media
The function pulse in wave1D_dn_vc.py demonstrates wave motion in heterogeneous media where c varies. One can specify an interval where the wave velocity is decreased by a factor slowness_factor (or increased by making this factor less than one). Figure 2.5 shows a typical simulation scenario.
1. 2. 3.
4.
Four types of initial conditions are available:
a rectangular pulse (plug),
a Gaussian function (gaussian),
a “cosine hat” consisting of one period of the cosine function
(cosinehat),
half a period of a “cosine hat” (half-cosinehat)
These peak-shaped initial conditions can be placed in the middle (loc=’center’) or at the left end (loc=’left’) of the domain. With the pulse in the middle, it splits in two parts, each with half the initial amplitude, traveling in opposite directions. With the pulse at the left
end, centered at x = 0, and using the symmetry condition ∂u/∂x = 0, only a right-going pulse is generated. There is also a left-going pulse, but
172 2 Wave equations
it travels from x = 0 in negative x direction and is not visible in the domain [0, L].
The pulse function is a flexible tool for playing around with various wave shapes and jumps in the wave velocity (i.e., discontinuous media). The code is shown to demonstrate how easy it is to reach this flexibility with the building blocks we have already developed:
def pulse(
C=1, # Maximum Courant number
Nx=200, # spatial resolution
animate=True,
version=’vectorized’,
T=2, # end time
loc=’left’, # location of initial condition
pulse_tp=’gaussian’, # pulse/init.cond. type
slowness_factor=2, # inverse of wave vel. in right medium
medium=[0.7, 0.9], # interval for right medium
skip_frame=1, # skip frames in animations
sigma=0.05 # width measure of the pulse
):
"""
Various peaked-shaped initial conditions on [0,1].
Wave velocity is decreased by the slowness_factor inside
medium. The loc parameter can be ’center’ or ’left’,
depending on where the initial pulse is to be located.
The sigma parameter governs the width of the pulse.
"""
# Use scaled parameters: L=1 for domain length, c_0=1
# for wave velocity outside the domain.
L = 1.0
c_0 = 1.0
if loc == ’center’:
xc = L/2
elif loc == ’left’:
xc = 0
if pulse_tp in (’gaussian’,’Gaussian’):
def I(x):
return np.exp(-0.5*((x-xc)/sigma)**2)
elif pulse_tp == ’plug’:
def I(x):
return 0 if abs(x-xc) > sigma else 1
elif pulse_tp == ’cosinehat’:
def I(x):
# One period of a cosine
w=2
a = w*sigma
return 0.5*(1 + np.cos(np.pi*(x-xc)/a)) \
if xc – a <= x <= xc + a else 0
elif pulse_tp == ’half-cosinehat’:
def I(x):
2.8 Building a general 1D wave equation solver 173
# Half a period of a cosine
w=4
a = w*sigma
return np.cos(np.pi*(x-xc)/a) \
if xc - 0.5*a <= x <= xc + 0.5*a else 0
raise ValueError(’Wrong pulse_tp="%s"’ % pulse_tp)
def c(x):
return c_0/slowness_factor \
if medium[0] <= x <= medium[1] else c_0
umin=-0.5; umax=1.5*I(xc)
casename = ’%s_Nx%s_sf%s’ % \
(pulse_tp, Nx, slowness_factor)
action = PlotMediumAndSolution(
medium, casename=casename, umin=umin, umax=umax,
skip_frame=skip_frame, screen_movie=animate,
backend=None, filename=’tmpdata’)
# Choose the stability limit with given Nx, worst case c
# (lower C will then use this dt, but smaller Nx)
dt = (L/Nx)/c_0
cpu, hashed_input = solver(
I=I, V=None, f=None, c=c,
U_0=None, U_L=None,
L=L, dt=dt, C=C, T=T,
user_action=action,
version=version,
stability_safety_factor=1)
if cpu > 0: # did we generate new data?
action.close_file(hashed_input)
action.make_movie_file()
print ’cpu (-1 means no new data generated):’, cpu
def convergence_rates(
u_exact,
I, V, f, c, U_0, U_L, L,
dt0, num_meshes,
C, T, version=’scalar’,
stability_safety_factor=1.0):
“””
Half the time step and estimate convergence rates for
for num_meshes simulations.
“””
class ComputeError:
def __init__(self, norm_type):
self.error = 0
def __call__(self, u, x, t, n):
“””Store norm of the error in self.E.”””
error = np.abs(u – u_exact(x, t[n])).max()
self.error = max(self.error, error)
else:
174 2 Wave equations
E = []
h = [] # dt, solver adjusts dx such that C=dt*c/dx
dt = dt0
for i in range(num_meshes):
error_calculator = ComputeError(’Linf’)
solver(I, V, f, c, U_0, U_L, L, dt, C, T,
user_action=error_calculator,
version=’scalar’,
stability_safety_factor=1.0)
E.append(error_calculator.error)
h.append(dt)
dt /= 2 # halve the time step for next simulation
print ’E:’, E
print ’h:’, h
r = [np.log(E[i]/E[i-1])/np.log(h[i]/h[i-1])
for i in range(1,num_meshes)]
return r
def test_convrate_sincos(): n=m=2
L = 1.0
u_exact = lambda x, t: np.cos(m*np.pi/L*t)*np.sin(m*np.pi/L*x)
r = convergence_rates(
u_exact=u_exact,
I=lambda x: u_exact(x, 0),
V=lambda x: 0,
f=0,
c=1,
U_0=0,
U_L=0,
L=L,
dt0=0.1,
num_meshes=6,
C=0.9,
T=1,
version=’scalar’,
stability_safety_factor=1.0)
print ’rates sin(x)*cos(t) solution:’, \
[round(r_,2) for r_ in r]
assert abs(r[-1] – 2) < 0.002
The PlotMediumAndSolution class used here is a subclass of PlotAndStoreSolution where the medium with reduced c value, as specified by the medium interval, is visualized in the plots.
Comment on the choices of discretization parameters
2.9 Exercises 175
The argument Nx in the pulse function does not correspond to the actual spatial resolution of C < 1, since the solver function takes a fixed ∆t and C, and adjusts ∆x accordingly. As seen in the pulse function, the specified ∆t is chosen according to the limit C = 1, so if C < 1, ∆t remains the same, but the solver function operates with a larger ∆x and smaller Nx than was specified in the call to pulse. The practical reason is that we always want to keep ∆t fixed such that plot frames and movies are synchronized in time regardless of the value of C (i.e., ∆x is varied when the Courant number varies).
The reader is encouraged to play around with the pulse function:
To easily kill the graphics by Ctrl-C and restart a new simulation it might be easier to run the above two statements from the command line with
Terminal> python -c ’import wave1D_dn_vc as w; w.pulse(…)’
2.9 Exercises
Exercise 2.7: Find the analytical solution to a damped wave equation
Consider the wave equation with damping (2.61). The goal is to find an exact solution to a wave problem with damping and zero source term. A starting point is the standing wave solution from Exercise 2.1. It becomes necessary to include a damping term e−βt and also have both a sine and cosine component in time:
ue(x, t) = e−βt sin kx (A cos ωt + B sin ωt) .
Find k from the boundary conditions u(0,t) = u(L,t) = 0. Then use the PDE to find constraints on β, ω, A, and B. Set up a complete initial-boundary value problem and its solution.
Filename: damped_waves.
>>> import wave1D_dn_vc as w
>>> w.pulse(Nx=50, loc=’left’, pulse_tp=’cosinehat’, slowness_factor=2)
Terminal
176 2 Wave equations
Problem 2.8: Explore symmetry boundary conditions
Consider the simple “plug” wave where Ω = [−L, L] and 1, x ∈ [−δ,δ],
for some number 0 < δ < L. The other initial condition is ut(x, 0) = 0 and there is no source term f. The boundary conditions can be set to u = 0. The solution to this problem is symmetric around x = 0. This means that we can simulate the wave process in only the half of the domain [0, L].
a) Argue why the symmetry boundary condition is ux = 0 at x = 0. Hint. Symmetry of a function about x = x0 means that f(x0 + h) =
f(x0 −h).
b) Perform simulations of the complete wave problem on [−L, L]. There- after, utilize the symmetry of the solution and run a simulation in half of the domain [0, L], using a boundary condition at x = 0. Compare plots from the two solutions and confirm that they are the same.
c) Prove the symmetry property of the solution by setting up the complete initial-boundary value problem and showing that if u(x, t) is a solution, then also u(−x, t) is a solution.
d) If the code works correctly, the solution u(x, t) = x(L − x)(1 + t ) 2
should be reproduced exactly. Write a test function test_quadratic that checks whether this is the case. Simulate for x in [0, L ] with a
I(x) = 0, otherwise
symmetry condition at the end x = L .
2
Filename: wave1D_symmetric.
2
Exercise 2.9: Send pulse waves through a layered medium
Use the pulse function in wave1D_dn_vc.py to investigate sending a pulse, located with its peak at x = 0, through two media with different wave velocities. The (scaled) velocity in the left medium is 1 while it is
1 in the right medium. Report what happens with a Gaussian pulse, sf
a “cosine hat” pulse, half a “cosine hat” pulse, and a plug pulse for resolutions Nx = 40, 80, 160, and sf = 2, 4. Simulate until T = 2. Filename: pulse1D.
2.9 Exercises 177
Exercise 2.10: Explain why numerical noise occurs
The experiments performed in Exercise 2.9 shows considerable numerical noise in the form of non-physical waves, especially for sf = 4 and the plug pulse or the half a “cosinehat” pulse. The noise is much less visible for a Gaussian pulse. Run the case with the plug and half a “cosinehat” pulses for sf = 1, C = 0.9, 0.25, and Nx = 40, 80, 160. Use the numerical dispersion relation to explain the observations. Filename: pulse1D_analysis.
Exercise 2.11: Investigate harmonic averaging in a 1D model
Harmonic means are often used if the wave velocity is non-smooth or discontinuous. Will harmonic averaging of the wave velocity give less numerical noise for the case sf = 4 in Exercise 2.9? Filename: pulse1D_harmonic.
Problem 2.12: Implement open boundary conditions
To enable a wave to leave the computational domain and travel undis- turbed through the boundary x = L, one can in a one-dimensional problem impose the following condition, called a radiation condition or open boundary condition:
∂u + c∂u = 0 . (2.69) ∂t ∂x
The parameter c is the wave velocity.
Show that (2.69) accepts a solution u = gR(x − ct) (right-going wave),
but not u = gL(x + ct) (left-going wave). This means that (2.69) will allow any right-going wave gR(x − ct) to pass through the boundary undisturbed.
A corresponding open boundary condition for a left-going wave through x = 0 is
∂u − c∂u = 0 . (2.70) ∂t ∂x
a) A natural idea for discretizing the condition (2.69) at the spatial end point i = Nx is to apply centered differences in time and space:
178 2 Wave equations
[D2tu+cD2xu=0]ni, i=Nx. (2.71)
Eliminate the fictitious value unNx+1 by using the discrete equation at the same point.
The equation for the first step, u1i , is in principle also affected, but we can then use the condition uNx = 0 since the wave has not yet reached the right boundary.
b) A much more convenient implementation of the open boundary condition at x = L can be based on an explicit discretization
[Dt+u+cDx−u=0]ni, i=Nx. (2.72) From this equation, one can solve for un+1 and apply the formula as a
Nx
Dirichlet condition at the boundary point. However, the finite difference
approximations involved are of first order.
Implement this scheme for a wave equation utt = c2uxx in a domain
[0,L], where you have ux = 0 at x = 0, the condition (2.69) at x = L, and an initial disturbance in the middle of the domain, e.g., a plug profile like
1, L/2 − l ≤ x ≤ L/2 + l, u(x, 0) = 0, otherwise
Observe that the initial wave is split in two, the left-going wave is reflected at x = 0, and both waves travel out of x = L, leaving the solution as u = 0 in [0,L]. Use a unit Courant number such that the numerical solution is exact. Make a movie to illustrate what happens.
Because this simplified implementation of the open boundary condition works, there is no need to pursue the more complicated discretization in a).
Hint. Modify the solver function in wave1D_dn.py.
c) Add the possibility to have either ux = 0 or an open boundary
condition at the left boundary. The latter condition is discretized as [Dt+u − cDx+u = 0]ni , i = 0, (2.73)
leading to an explicit update of the boundary value un+1. 0
The implementation can be tested with a Gaussian function as initial condition:
1 − (x−m)2 g(x; m, s) = √ e 2s2
2πs
.
2.9 Exercises 179
Run two tests:
1. Disturbance in the middle of the domain, I(x) = g(x;L/2,s), and open boundary condition at the left end.
2. Disturbance at the left end, I(x) = g(x; 0, s), and ux = 0 as symmetry boundary condition at this end.
Make test functions for both cases, testing that the solution is zero after the waves have left the domain.
d) In 2D and 3D it is difficult to compute the correct wave velocity normal to the boundary, which is needed in generalizations of the open boundary conditions in higher dimensions. Test the effect of having a slightly wrong wave velocity in (2.72). Make movies to illustrate what happens.
Filename: wave1D_open_BC.
Remarks. The condition (2.69) works perfectly in 1D when c is known. In 2D and 3D, however, the condition reads ut + cxux + cyuy = 0, where cx and cy are the wave speeds in the x and y directions. Estimating these components (i.e., the direction of the wave) is often challenging. Other methods are normally used in 2D and 3D to let waves move out of a computational domain.
Exercise 2.13: Implement periodic boundary conditions
It is frequently of interest to follow wave motion over large distances and long times. A straightforward approach is to work with a very large domain, but that might lead to a lot of computations in areas of the domain where the waves cannot be noticed. A more efficient approach is to let a right-going wave out of the domain and at the same time let it enter the domain on the left. This is called a periodic boundary condition.
The boundary condition at the right end x = L is an open boundary condition (see Exercise 2.12) to let a right-going wave out of the domain. At the left end, x = 0, we apply, in the beginning of the simulation, either a symmetry boundary condition (see Exercise 2.8) ux = 0, or an open boundary condition.
This initial wave will split in two and either be reflected or transported out of the domain at x = 0. The purpose of the exercise is to follow the right-going wave. We can do that with a periodic boundary condition. This means that when the right-going wave hits the boundary x = L, the
180 2 Wave equations
open boundary condition lets the wave out of the domain, but at the same time we use a boundary condition on the left end x = 0 that feeds the outgoing wave into the domain again. This periodic condition is simply u(0) = u(L). The switch from ux = 0 or an open boundary condition at the left end to a periodic condition can happen when u(L,t) > ε, where ε = 10−4 might be an appropriate value for determining when the right-going wave hits the boundary x = L.
The open boundary conditions can conveniently be discretized as
explained in Exercise 2.12. Implement the described type of boundary
conditions and test them on two different initial shapes: a plug u(x, 0) = 1
for x ≤ 0.1, u(x,0) = 0 for x > 0.1, and a Gaussian function in the
middle of the domain: u(x,0) = exp(−1(x−0.5)2/0.05). The domain 2
is the unit interval [0, 1]. Run these two shapes for Courant numbers 1 and 0.5. Assume constant wave velocity. Make movies of the four cases. Reason why the solutions are correct. Filename: periodic.
Exercise 2.14: Compare discretizations of a Neumann condition
We have a 1D wave equation with variable wave velocity: utt = (qux)x. A Neumann condition ux at x = 0, L can be discretized as shown in (2.54) and (2.57).
The aim of this exercise is to examine the rate of the numerical error when using different ways of discretizing the Neumann condition.
a) As a test problem, q = 1+(x−L/2)4 can be used, with f(x, t) adapted such that the solution has a simple form, say u(x, t) = cos(πx/L) cos(ωt) for, e.g., ω = 1. Perform numerical experiments and find the convergence rate of the error using the approximation (2.54).
b) Switch to q(x) = 1 + cos(πx/L), which is symmetric at x = 0, L,
and check the convergence rate of the scheme (2.57). Now, qi−1/2 is a
2nd-order approximation to q , q = q + 0.25q′′∆x2 + · · · , because ii−1/2i i
qi′ = 0 for i = Nx (a similar argument can be applied to the case i = 0).
c) A third discretization can be based on a simple and convenient, but less accurate, one-sided difference: ui − ui−1 = 0 at i = Nx and ui+1 − ui = 0 at i = 0. Derive the resulting scheme in detail and implement it. Run experiments with q from a) or b) to establish the rate of convergence of the scheme.
2.9 Exercises 181
d) A fourth technique is to view the scheme as n1nnn
[DtDtu]i = [qDxu]i+1 − [qDxu]i−1 + [f]i , ∆x2 2
and place the boundary at xi+ 1 , i = Nx, instead of exactly at the physical 2
boundary. With this idea of approximating (moving) the boundary, we
can just set [qDxu]ni+1 = 0. Derive the complete scheme using this 2
technique. The implementation of the boundary condition at L − ∆x/2 is O(∆x2) accurate, but the interesting question is what impact the movement of the boundary has on the convergence rate. Compute the errors as usual over the entire mesh and use q from a) or b).
Filename: Neumann_discr.
Exercise 2.15: Verification by a cubic polynomial in space
The purpose of this exercise is to verify the implementation of the solver function in the program wave1D_n0.py by using an exact numerical solution for the wave equation utt = c2uxx + f with Neumann boundary conditions ux(0, t) = ux(L, t) = 0.
A similar verification is used in the file wave1D_u0.py, which solves the same PDE, but with Dirichlet boundary conditions u(0, t) = u(L, t) = 0. The idea of the verification test in function test_quadratic in wave1D_u0.py is to produce a solution that is a lower-order polyno- mial such that both the PDE problem, the boundary conditions, and all the discrete equations are exactly fulfilled. Then the solver function should reproduce this exact solution to machine precision. More precisely, we seek u = X(x)T(t), with T(t) as a linear function and X(x) as a parabola that fulfills the boundary conditions. Inserting this u in the PDE determines f. It turns out that u also fulfills the discrete equations, because the truncation error of the discretized PDE has derivatives in x and t of order four and higher. These derivatives all vanish for a quadratic X(x) and linear T(t).
It would be attractive to use a similar approach in the case of Neumann conditions. We set u = X(x)T(t) and seek lower-order polynomials X and T. To force ux to vanish at the boundary, we let Xx be a parabola. Then X is a cubic polynomial. The fourth-order derivative of a cubic polynomial vanishes, so u = X(x)T(t) will fulfill the discretized PDE also in this case, if f is adjusted such that u fulfills the PDE.
182 2 Wave equations
However, the discrete boundary condition is not exactly fulfilled by this choice of u. The reason is that
[D2xu]ni =ux(xi,tn)+1uxxx(xi,tn)∆x2+O(∆x4). (2.74) 6
At the boundary two boundary points, we must demand that the deriva- tive Xx(x) = 0 such that ux = 0. However, uxxx is a constant and not zero when X(x) is a cubic polynomial. Therefore, our u = X(x)T(t) fulfills
and not
[D2xu]ni = 1uxxx(xi, tn)∆x2, 6
[D2xu]ni =0, i=0,Nx,
as it should. (Note that all the higher-order terms O(∆x4) also have higher-order derivatives that vanish for a cubic polynomial.) So to sum- marize, the fundamental problem is that u as a product of a cubic polynomial and a linear or quadratic polynomial in time is not an exact solution of the discrete boundary conditions.
To make progress, we assume that u = X(x)T(t), where T for simplic- ity is taken as a prescribed linear function 1 + 1 t, and X(x) is taken as
2
an unknown cubic polynomial 3j=0 ajxj. There are two different ways
of determining the coefficients a0, . . . , a3 such that both the discretized PDE and the discretized boundary conditions are fulfilled, under the constraint that we can specify a function f(x,t) for the PDE to feed to the solver function in wave1D_n0.py. Both approaches are explained in the subexercises.
a) One can insert u in the discretized PDE and find the corresponding f. Then one can insert u in the discretized boundary conditions. This yields two equations for the four coefficients a0, . . . , a3. To find the coefficients, one can set a0 = 0 and a1 = 1 for simplicity and then determine a2 and a3. This approach will make a2 and a3 depend on ∆x and f will depend on both ∆x and ∆t.
Use sympy to perform analytical computations. A starting point is to define u as follows:
def test_cubic1():
import sympy as sm
x, t, c, L, dx, dt = sm.symbols(’x t c L dx dt’)
2.9 Exercises 183
i, n = sm.symbols(’i n’, integer=True)
# Assume discrete solution is a polynomial of degree 3 in x
T = lambda t: 1 + sm.Rational(1,2)*t # Temporal term
a = sm.symbols(’a_0 a_1 a_2 a_3’)
X = lambda x: sum(a[q]*x**q for q in range(4)) # Spatial term
u = lambda x, t: X(x)*T(t)
The symbolic expression for u is reached by calling u(x,t) with x and t as sympy symbols.
Define DxDx(u, i, n), DtDt(u, i, n), and D2x(u, i, n) as Python functions for returning the difference approximations [DxDxu]ni , [DtDtu]ni , and [D2xu]ni . The next step is to set up the residuals for the equations [D2xu]n0 = 0 and [D2xu]nNx = 0, where Nx = L/∆x. Call the residuals R_0 and R_L. Substitute a0 and a1 by 0 and 1, respectively, in R_0, R_L, and a:
Determining a2 and a3 from the discretized boundary conditions is then about solving two equations with respect to a2 and a3, i.e., a[2:]:
Now, a contains computed values and u will automatically use these new values since X accesses a.
Compute the source term f from the discretized PDE: fin = [DtDtu − c2DxDxu]ni . Turn u, the time derivative ut (needed for the initial condition V (x)), and f into Python functions. Set numerical values for L, Nx, C, and c. Prescribe the time interval as ∆t = CL/(Nxc), which imply ∆x = c∆t/C = L/Nx. Define new functions I(x), V(x), and f(x,t) as wrappers of the ones made above, where fixed values of L, c, ∆x, and ∆t are inserted, such that I, V, and f can be passed on to the solver function. Finally, call solver with a user_action function that compares the numerical solution to this exact solution u of the discrete PDE problem.
Hint. To turn a sympy expression e, depending on a series of sym- bols, say x, t, dx, dt, L, and c, into a plain Python function e_exact(x,t,L,dx,dt,c), one can write
e_exact = sm.lambdify([x,t,L,dx,dt,c], e, ’numpy’)
R_0 = R_0.subs(a[0], 0).subs(a[1], 1)
R_L = R_L.subs(a[0], 0).subs(a[1], 1)
a = list(a) # enable in-place assignment
a[0:2] = 0, 1
s = sm.solve([R_0, R_L], a[2:])
# s is dictionary with the unknowns a[2] and a[3] as keys
a[2:] = s[a[2]], s[a[3]]
184 2 Wave equations
The ’numpy’ argument is a good habit as the e_exact function will then work with array arguments if it contains mathematical functions (but here we only do plain arithmetics, which automatically work with
arrays).
b) An alternative way of determining a0, . . . , a3 is to reason as follows. We first construct X(x) such that the boundary conditions are fulfilled: X = x(L − x). However, to compensate for the fact that this choice of X does not fulfill the discrete boundary condition, we seek u such that
ux = ∂ x(L − x)T(t) − 1uxxx∆x2, ∂x 6
since this u will fit the discrete boundary condition. Assuming u = T(t)3j=0 ajxj, we can use the above equation to determine the coeffi- cients a1,a2,a3. A value, e.g., 1 can be used for a0. The following sympy code computes this u:
def test_cubic2():
import sympy as sm
x, t, c, L, dx = sm.symbols(’x t c L dx’)
T = lambda t: 1 + sm.Rational(1,2)*t # Temporal term
# Set u as a 3rd-degree polynomial in space
X = lambda x: sum(a[i]*x**i for i in range(4))
a = sm.symbols(’a_0 a_1 a_2 a_3’)
u = lambda x, t: X(x)*T(t)
# Force discrete boundary condition to be zero by adding
# a correction term the analytical suggestion x*(L-x)*T
# u_x = x*(L-x)*T(t) – 1/6*u_xxx*dx**2
R = sm.diff(u(x,t), x) – (
x*(L-x) – sm.Rational(1,6)*sm.diff(u(x,t), x, x, x)*dx**2)
# R is a polynomial: force all coefficients to vanish.
# Turn R to Poly to extract coefficients:
R = sm.poly(R, x)
coeff = R.all_coeffs()
s = sm.solve(coeff, a[1:]) # a[0] is not present in R
# s is dictionary with a[i] as keys
# Fix a[0] as 1
s[a[0]] = 1
X = lambda x: sm.simplify(sum(s[a[i]]*x**i for i in range(4)))
u = lambda x, t: X(x)*T(t)
print ’u:’, u(x,t)
The next step is to find the source term f_e by inserting u_e in the PDE. Thereafter, turn u, f, and the time derivative of u into plain Python functions as in a), and then wrap these functions in new functions I, V, and f, with the right signature as required by the solver function. Set parameters as in a) and check that the solution is exact to machine precision at each time level using an appropriate user_action function.
2.10 Analysis of the difference equations 185
Filename: wave1D_n0_test_cubic.
2.10 Analysis of the difference equations
2.10.1 Properties of the solution of the wave equation
The wave equation
∂2u = c2 ∂2u ∂t2 ∂x2
has solutions of the form
u(x, t) = gR(x − ct) + gL(x + ct), (2.75)
for any functions gR and gL sufficiently smooth to be differentiated twice. The result follows from inserting (2.75) in the wave equation. A function of the form gR(x − ct) represents a signal moving to the right in time with constant velocity c. This feature can be explained as follows. At time t = 0 the signal looks like gR(x). Introducing a moving horizontal coordinate ξ = x − ct, we see the function gR(ξ) is “at rest” in the ξ coordinate system, and the shape is always the same. Say the gR(ξ) function has a peak at ξ = 0. This peak is located at x = ct, which means that it moves with the velocity dx/dt = c in the x coordinate system. Similarly, gL(x + ct) is a function, initially with shape gL(x), that moves in the negative x direction with constant velocity c (introduce ξ = x + ct, look at the point ξ = 0, x = −ct, which has velocity dx/dt = −c).
With the particular initial conditions
u(x,0) = I(x), ∂ u(x,0) = 0,
∂t
we get, with u as in (2.75),
gR(x)+gL(x)=I(x), −cgR′ (x)+cgL′ (x)=0.
The former suggests gR = gL, and the former then leads to gR = gL = I/2. Consequently,
u(x, t) = 1 I (x − ct) + 1 I (x + ct) . (2.76) 22
186 2 Wave equations
The interpretation of (2.76) is that the initial shape of u is split into two parts, each with the same shape as I but half of the initial amplitude. One part is traveling to the left and the other one to the right.
The solution has two important physical features: constant amplitude of the left and right wave, and constant velocity of these two waves. It turns out that the numerical solution will also preserve the constant amplitude, but the velocity depends on the mesh parameters ∆t and ∆x.
The solution (2.76) will be influenced by boundary conditions when the parts 1 I(x − ct) and 1 I(x + ct) hit the boundaries and get, e.g.,
reflected back into the domain. However, when I(x) is nonzero only in a small part in the middle of the spatial domain [0, L], which means that the boundaries are placed far away from the initial disturbance of u, the solution (2.76) is very clearly observed in a simulation.
A useful representation of solutions of wave equations is a linear combination of sine and/or cosine waves. Such a sum of waves is a solution if the governing PDE is linear and each sine or cosine wave fulfills the equation. To ease analytical calculations by hand we shall work with complex exponential functions instead of real-valued sine or cosine functions. The real part of complex expressions will typically be taken as the physical relevant quantity (whenever a physical relevant quantity is strictly needed). The idea now is to build I(x) of complex wave components eikx:
I(x) ≈ bkeikx . (2.77) k∈K
Here, k is the frequency of a component, K is some set of all the discrete k values needed to approximate I(x) well, and bk are constants that must be determined. We will very seldom need to compute the bk coefficients: most of the insight we look for, and the understanding of the numerical methods we want to establish, come from investigating how the PDE and the scheme treat a single component eikx wave.
Letting the number of k values in K tend to infinity, makes the sum (2.77) converge to I(x). This sum is known as a Fourier series representation of I(x). Looking at (2.76), we see that the solution u(x,t), when I(x) is represented as in (2.77), is also built of basic complex exponential wave components of the form eik(x±ct) according to
u(x,t) = 1 bkeik(x−ct) + 1 bkeik(x+ct) . (2.78) 2 k∈K 2 k∈K
22
2.10 Analysis of the difference equations 187
It is common to introduce the frequency in time ω = kc and assume that u(x,t) is a sum of basic wave components written as eikx−ωt. (Observe that inserting such a wave component in the governing PDE reveals that ω2 = k2c2, or ω = ±kc, reflecting the two solutions: one (+kc) traveling to the right and the other (−kc) traveling to the left.)
2.10.2 More precise definition of Fourier representations
The above introduction to function representation by sine and cosine waves was quick and intuitive, but will suffice as background knowledge for the following material of single wave component analysis. However, to understand all details of how different wave components sum up to the analytical and numerical solutions, a more precise mathematical treatment is helpful and therefore summarized below.
It is well known that periodic functions can be represented by Fourier series. A generalization of the Fourier series idea to non-periodic functions defined on the real line is the Fourier transform:
I(x) = A(k) =
∞ ikx A(k)e dk,
−∞
(2.79) (2.80)
−∞
∞ −ikx
I(x)e dx.
The function A(k) reflects the weight of each wave component eikx in an infinite sum of such wave components. That is, A(k) reflects the frequency content in the function I(x). Fourier transforms are particularly fundamental for analyzing and understanding time-varying signals.
The solution of the linear 1D wave PDE can be expressed as
u(x, t) =
∞
−∞
A(k)e
i(kx−ω(k)t)
dx .
In a finite difference method, we represent u by a mesh function unq , where n counts temporal mesh points and q counts the spatial ones (the usual counter for spatial points, i, is here already used as imaginary unit). Similarly, I(x) is approximated by the mesh function Iq, q = 0,…,Nx. On a mesh, it does not make sense to work with wave components eikx for very large k, because the shortest possible sine or cosine wave that can be represented uniquely on a mesh with spacing ∆x is the wave with wavelength 2∆x. This wave has its peaks and throughs at every two
188 2 Wave equations
mesh points. That is, the wave “jumps up and down” between the mesh points.
The corresponding k value for the shortest possible wave in the mesh is k = 2π/(2∆x) = π/∆x. This maximum frequency is known as the Nyquist frequency. Within the range of relevant frequencies (0, π/∆x] one defines the discrete Fourier transform, using Nx + 1 discrete frequencies:
1 Nx
Iq = Akei2πkj/(Nx+1), i=0,…,Nx,
Nx
Ak = Iqe−i2πkq/(Nx+1), k = 0,…,Nx +1.
q=0
(2.81) (2.82)
Nx + 1 k=0
The Ak values represent the discrete Fourier transform of the Iq values, which themselves are the inverse discrete Fourier transform of the Ak values.
The discrete Fourier transform is efficiently computed by the Fast Fourier transform algorithm. For a real function I(x), the relevant Python code for computing and plotting the discrete Fourier transform appears in the example below.
import numpy as np
from numpy import sin, pi
def I(x):
return sin(2*pi*x) + 0.5*sin(4*pi*x) + 0.1*sin(6*pi*x)
# Mesh
L = 10; Nx = 100
x = np.linspace(0, L, Nx+1)
dx = L/float(Nx)
# Discrete Fourier transform
A = np.fft.rfft(I(x))
A_amplitude = np.abs(A)
# Compute the corresponding frequencies
freqs = np.linspace(0, pi/dx, A_amplitude.size)
import matplotlib.pyplot as plt
plt.plot(freqs, A_amplitude)
plt.show()
2.10 Analysis of the difference equations 189
2.10.3 Stability
The scheme
[DtDtu = c2DxDxu]nq (2.83) for the wave equation utt = c2uxx allows basic wave components
unq =ei(kxq−ω ̃tn)
as solution, but it turns out that the frequency in time, ω ̃, is not equal to the exact frequency ω = kc. The goal now is to find exactly what ω ̃ is. We ask two key questions:
• How accurate is ω ̃ compared to ω?
• Does the amplitude of such a wave component preserve its (unit)
amplitude, as it should, or does it get amplified or damped in time (because of a complex ω ̃)?
The following analysis will answer these questions. We shall continue using q as an identifier for a certain mesh point in the x direction.
Preliminary results. A key result needed in the investigations is the finite difference approximation of a second-order derivative acting on a complex wave component:
iωtn 4 2ω∆t iωn∆t [DtDte]=−∆t2sin 2 e .
By just changing symbols (ω → k, t → x, n → q) it follows that
ikx 4 2k∆x ikq∆x [DxDxe ]q =−∆x2 sin 2 e
.
Numerical wave propagation. Inserting a basic wave component unq =
ei(kxq−ω ̃tn) in (2.83) results in the need to evaluate two expressions: [DtDteikxe−iω ̃t]nq =[DtDte−iω ̃t]neikq∆x
4 2 ω ̃∆t −iω ̃n∆t =−∆t2 sin 2 e
ikq∆x
e (2.84)
[DxDxeikxe−iω ̃t]nq =[DxDxeikx]qe−iω ̃n∆t
4 2 k∆x ikq∆x
−iω ̃n∆t e .
(2.85)
=−∆x2 sin 2 e
190 2 Wave equations
Then the complete scheme,
[DtDteikxe−iω ̃t = c2DxDxeikxe−iω ̃t]nq
leads to the following equation for the unknown numerical frequency ω ̃ (after dividing by −eikxe−iω ̃t):
4 2 ω ̃∆t ∆t2 sin 2
2 ω ̃∆t sin 2
2 4 2 k∆x = c ∆x2 sin 2
2 2 k∆x =C sin 2 ,
,
or
where
(2.86)
(2.87)
(2.88)
C = c∆t ∆x
is the Courant number. Taking the square root of (2.86) yields ω ̃∆t k∆x
sin 2 = C sin 2 ,
Since the exact ω is real it is reasonable to look for a real solution ω ̃ of (2.88). The right-hand side of (2.88) must then be in [−1, 1] because the sine function on the left-hand side has values in [−1,1] for real ω ̃. The
sine function on the right-hand side can attain the value 1 when
k∆x=mπ, m∈Z. 22
With m = 1 we have k∆x = π, which means that the wavelength λ = 2π/k becomes 2∆x. This is the absolutely shortest wavelength that can be represented on the mesh: the wave jumps up and down between each mesh point. Larger values of |m| are irrelevant since these correspond to k values whose waves are too short to be represented on a mesh with spacing ∆x. For the shortest possible wave in the mesh, sin (k∆x/2) = 1, and we must require
C≤1. (2.89)
Consider a right-hand side in (2.88) of magnitude larger than unity. The solution ω ̃ of (2.88) must then be a complex number ω ̃ = ω ̃r + iω ̃i because the sine function is larger than unity for a complex argument. One can show that for any ωi there will also be a corresponding solution
2.10 Analysis of the difference equations 191
with −ωi. The component with ωi > 0 gives an amplification factor eωit that grows exponentially in time. We cannot allow this and must therefore require C ≤ 1 as a stability criterion.
Remark on the stability requirement
For smoother wave components with longer wave lengths per length ∆x, (2.89) can in theory be relaxed. However, small round-off errors are always present in a numerical solution and these vary arbitrarily from mesh point to mesh point and can be viewed as unavoidable noise with wavelength 2∆x. As explained, C > 1 will for this very small noise lead to exponential growth of the shortest possible wave component in the mesh. This noise will therefore grow with time and destroy the whole solution.
2.10.4 Numerical dispersion relation
Equation (2.88) can be solved with respect to ω ̃: 2 −1 k∆x
ω ̃ = ∆t sin C sin 2 . (2.90)
The relation between the numerical frequency ω ̃ and the other parameters k, c, ∆x, and ∆t is called a numerical dispersion relation. Correspondingly, ω = kc is the analytical dispersion relation. In general, dispersion refers to the phenomenon where the wave velocity depends on the spatial frequency (k, or the wave length λ = 2π/k) of the wave. Since the wave velocity is ω/k = c, we realize that the analytical dispersion relation reflects the fact that there is no dispersion. However, in a numerical scheme we have dispersive waves where the wave velocity depends on k.
The special case C = 1 deserves attention since then the right-hand side of (2.90) reduces to
2k∆x= 1ω∆x=ω=ω. ∆t 2 ∆t c C
That is, ω ̃ = ω and the numerical solution is exact at all mesh points regardless of ∆x and ∆t! This implies that the numerical solution method is also an analytical solution method, at least for computing u at discrete points (the numerical method says nothing about the variation of u
192 2 Wave equations
between the mesh points, and employing the common linear interpolation for extending the discrete solution gives a curve that in general deviates from the exact one).
For a closer examination of the error in the numerical dispersion relation when C < 1, we can study ω ̃ − ω, ω ̃/ω, or the similar error measures in wave velocity: c ̃− c and c ̃/c, where c = ω/k and c ̃ = ω ̃/k. It appears that the most convenient expression to work with is c ̃/c, since it can be written as a function of just two parameters:
c ̃= 1 sin−1(Csinp), c Cp
with p = k∆x/2 as a non-dimensional measure of the spatial frequency. In essence, p tells how many spatial mesh points we have per wave length in space for the wave component with frequency k (recall that the wave length is 2π/k). That is, p reflects how well the spatial variation of the wave component is resolved in the mesh. Wave components with wave length less than 2∆x (2π/k < 2∆x) are not visible in the mesh, so it does not make sense to have p > π/2.
We may introduce the function r(C, p) = c ̃/c for further investigation of numerical errors in the wave velocity:
r(C,p) = 1 sin−1 (C sinp), C ∈ (0,1], p ∈ (0,π/2]. (2.91) Cp
This function is very well suited for plotting since it combines several parameters in the problem into a dependence on two dimensionless numbers, C and p.
Defining
we can plot r(C, p) as a function of p for various values of C, see Figure 2.6. Note that the shortest waves have the most erroneous velocity, and that short waves move more slowly than they should.
We can also easily make a Taylor series expansion in the discretization parameter p:
def r(C, p):
return 2/(C*p)*asin(C*sin(p))
>>> import sympy as sym
>>> C, p = sym.symbols(’C p’)
>>> # Compute the 7 first terms around p=0 with no O() term
>>> rs = r(C, p).series(p, 0, 7).removeO()
>>> rs
2.10 Analysis of the difference equations 193
1.1
Numerical divided by exact wave velocity
C=1 C=0.95 C=0.8 C=0.3
1.0
0.9
0.8
0.7
0.6
0.2 0.4
0.6 0.8 p
1.0 1.2 1.4
Fig. 2.6 The fractional error in the wave velocity for different Courant numbers.
p**6*(5*C**6/112 – C**4/16 + 13*C**2/720 – 1/5040) +
p**4*(3*C**4/40 – C**2/12 + 1/120) +
p**2*(C**2/6 – 1/6) + 1
>>> # Pick out the leading order term, but drop the constant 1
>>> rs_error_leading_order = (rs – 1).extract_leading_order(p)
>>> rs_error_leading_order
p**2*(C**2/6 – 1/6)
>>> # Turn the series expansion into a Python function
>>> rs_pyfunc = lambdify([C, p], rs, modules=’numpy’)
>>> # Check: rs_pyfunc is exact (=1) for C=1
>>> rs_pyfunc(1, 0.1)
1.0
Note that without the .removeO() call the series gets an O(x**7) term that makes it impossible to convert the series to a Python function (for, e.g., plotting).
From the rs_error_leading_order expression above, we see that the leading order term in the error of this series expansion is
1k∆x2 k2 6 2 (C2 − 1) = 24 c2∆t2 − ∆x2
, (2.92)
velocity ratio
194 2 Wave equations
pointing to an error O(∆t2, ∆x2), which is compatible with the errors in the difference approximations (DtDtu and DxDxu).
We can do more with a series expansion, e.g., factor it to see how the factor C − 1 plays a significant role. To this end, we make a list of the terms, factor each term, and then sum the terms:
>>> rs = r(C, p).series(p, 0, 4).removeO().as_ordered_terms()
>>> rs
[1, C**2*p**2/6 – p**2/6,
3*C**4*p**4/40 – C**2*p**4/12 + p**4/120,
5*C**6*p**6/112 – C**4*p**6/16 + 13*C**2*p**6/720 – p**6/5040]
>>> rs = [factor(t) for t in rs]
>>> rs
[1, p**2*(C – 1)*(C + 1)/6,
p**4*(C – 1)*(C + 1)*(3*C – 1)*(3*C + 1)/120,
p**6*(C – 1)*(C + 1)*(225*C**4 – 90*C**2 + 1)/5040]
>>> rs = sum(rs) # Python’s sum function sums the list
>>> rs
p**6*(C – 1)*(C + 1)*(225*C**4 – 90*C**2 + 1)/5040 +
p**4*(C – 1)*(C + 1)*(3*C – 1)*(3*C + 1)/120 +
p**2*(C – 1)*(C + 1)/6 + 1
We see from the last expression that C = 1 makes all the terms in rs vanish. Since we already know that the numerical solution is exact for C = 1, the remaining terms in the Taylor series expansion will also contain factors of C − 1 and cancel for C = 1.
2.10.5 Extending the analysis to 2D and 3D
The typical analytical solution of a 2D wave equation utt = c2(uxx + uyy),
is a wave traveling in the direction of k = kxi + kyj, where i and j are unit vectors in the x and y directions, respectively (i must not be confused with i = √−1). Such a wave can be expressed by
u(x, y, t) = g(kxx + kyy − kct)
for some twice differentiable function g, or with ω = kc, k = |k|:
u(x, y, t) = g(kxx + kyy − ωt) .
We can, in particular, build a solution by adding complex Fourier com- ponents of the form
2.10 Analysis of the difference equations
195
e(i(kxx+kyy−ωt)) .
A discrete 2D wave equation can be written as
[DtDtu = c2(DxDxu + DyDyu)]nq,r . This equation admits a Fourier component
unq,r = e(i(kxq∆x+kyr∆y−ω ̃n∆t)),
(2.93)
(2.94)
as solution. Letting the operators DtDt, DxDx, and DyDy act on unq,r from (2.94) transforms (2.93) to
4
∆t2 sin 2
2 ky∆y (2.95)
2 ω ̃∆t 2 4 2 kx∆x 2 4
= c ∆x2 sin 2 + c ∆y2 sin 2 .
or
where we have eliminated the factor 4 and introduced the symbols
sin2 ω ̃∆t = Cx2 sin2 px + Cy2 sin2 py, 2
(2.96)
For a real-valued ω ̃ the right-hand side must be less than or equal to unity in absolute value, requiring in general that
Cx2 + Cy2 ≤ 1 . (2.97) This gives the stability criterion, more commonly expressed directly in
Cx=c∆t, Cy=c∆t, px=kx∆x, py=ky∆y. ∆x ∆y 2 2
an inequality for the time step:
1 1 1 −1/2
∆t ≤ c ∆x2 + ∆y2
A similar, straightforward analysis for the 3D case leads to
1 1 1 1 −1/2 ∆t≤ c ∆x2 +∆y2 +∆z2
(2.98)
(2.99)
In the case of a variable coefficient c2 = c2(x), we must use the worst-case value
c ̄ =
max c2(x) (2.100) x∈Ω
196 2 Wave equations
in the stability criteria. Often, especially in the variable wave velocity case, it is wise to introduce a safety factor β ∈ (0, 1] too:
1 1 1 1 −1/2
∆t≤βc ̄ ∆x2 +∆y2 +∆z2 (2.101)
The exact numerical dispersion relations in 2D and 3D becomes, for constant c,
ω ̃ =
ω ̃ =
sin−1 C2 sin2 p + C2 sin2 p ∆t x x y y
2
sin−1 C2 sin2 p + C2 sin2 p
2
,
+ C2 sin2 p 2 .
(2.102)
(2.103)
2 1
∆t x x y y z z
1
We can visualize the numerical dispersion error in 2D much like we did in 1D. To this end, we need to reduce the number of parameters in ω ̃. The direction of the wave is parameterized by the polar angle θ, which means that
kx = ksinθ, ky = kcosθ.
A simplification is to set ∆x = ∆y = h. Then Cx = Cy = c∆t/h, which
we call C. Also,
px = 1khcosθ, py = 1khsinθ. 22
The numerical frequency ω ̃ is now a function of three parameters:
• C, reflecting the number of cells a wave is displaced during a time step,
• p = 1 kh, reflecting the number of cells per wave length in space, 2
• θ, expressing the direction of the wave.
We want to visualize the error in the numerical frequency. To avoid having ∆t as a free parameter in ω ̃, we work with c ̃/c = ω ̃/(kc). The coefficient in front of the sin−1 factor is then
2=2=1=2, kc∆t 2kc∆th/h Ckh Cp
and
c ̃2
1 c = Cpsin−1 C sin2(pcosθ)+sin2(psinθ) 2 .
2.10 Analysis of the difference equations 197
We want to visualize this quantity as a function of p and θ for some values of C ≤ 1. It is instructive to make color contour plots of 1 − c ̃/c in polar coordinates with θ as the angular coordinate and p as the radial coordinate.
√
The stability criterion (2.97) becomes C ≤ Cmax = 1/ 2 in the
present 2D case with the C defined above. Let us plot 1 − c ̃/c in polar coordinates for Cmax, 0.9Cmax, 0.5Cmax, 0.2Cmax. The program below does the somewhat tricky work in Matplotlib, and the result appears in Figure 2.7. From the figure we clearly see that the maximum C value gives the best results, and that waves whose propagation direction makes an angle of 45 degrees with an axis are the most accurate.
def dispersion_relation_2D(p, theta, C):
arg = C*sqrt(sin(p*cos(theta))**2 +
sin(p*sin(theta))**2)
c_frac = 2./(C*p)*arcsin(arg)
return c_frac
import numpy as np
from numpy import \
cos, sin, arcsin, sqrt, pi # for nicer math formulas
r = p = np.linspace(0.001, pi/2, 101)
theta = np.linspace(0, 2*pi, 51)
r, theta = np.meshgrid(r, theta)
# Make 2×2 filled contour plots for 4 values of C
import matplotlib.pyplot as plt
C_max = 1/sqrt(2)
C = [[C_max, 0.9*C_max], [0.5*C_max, 0.2*C_max]]
fix, axes = plt.subplots(2, 2, subplot_kw=dict(polar=True))
for row in range(2):
for column in range(2):
error = 1 – dispersion_relation_2D(
p, theta, C[row][column])
print error.min(), error.max()
# use vmin=error.min(), vmax=error.max()
cax = axes[row][column].contourf(
theta, r, error, 50, vmin=-1, vmax=-0.28)
axes[row][column].set_xticks([])
axes[row][column].set_yticks([])
# Add colorbar to the last plot
cbar = plt.colorbar(cax)
cbar.ax.set_ylabel(’error in wave velocity’)
plt.savefig(’disprel2D.png’); plt.savefig(’disprel2D.pdf’)
plt.show()
198 2 Wave equations
0.270 0.345 0.420 0.495 0.570 0.645 0.720 0.795 0.870 0.945
Fig. 2.7 Error in numerical dispersion in 2D.
2.11 Finite difference methods for 2D and 3D wave equations
A natural next step is to consider extensions of the methods for various variants of the one-dimensional wave equation to two-dimensional (2D) and three-dimensional (3D) versions of the wave equation.
2.11.1 Multi-dimensional wave equations
The general wave equation in d space dimensions, with constant wave velocity c, can be written in the compact form
∂2u=c2∇2uforx∈Ω⊂Rd, t∈(0,T], ∂t2
∇2u = ∂2u + ∂2u, ∂x2 ∂y2
(2.104)
where
in a 2D problem (d = 2) and
error in wave velocity
2.11 Finite difference methods for 2D and 3D wave equations 199
∇2u = ∂2u + ∂2u + ∂2u, ∂x2 ∂y2 ∂z2
in three space dimensions (d = 3).
Many applications involve variable coefficients, and the general wave
equation in d dimensions is in this case written as ρ∂2u=∇·(q∇u)+fforx∈Ω⊂Rd, t∈(0,T], (2.105)
∂2u ∂ ∂u ∂ ∂u
ρ(x,y)∂t2 = ∂x q(x,y)∂x + ∂y q(x,y)∂y +f(x,y,t). (2.106)
To save some writing and space we may use the index notation, where subscript t, x, or y means differentiation with respect to that coordinate. For example,
∂2u = utt, ∂t2
∂ ∂u
∂y q(x,y)∂y =(quy)y.
These comments extend straightforwardly to 3D, which means that the 3D versions of the two wave PDEs, with and without variable coefficients, can be stated as
utt = c2(uxx + uyy + uzz) + f, (2.107) ρutt = (qux)x + (quz)z + (quz)z + f . (2.108)
At each point of the boundary ∂Ω (of Ω) we need one boundary condition involving the unknown u. The boundary conditions are of three principal types:
1. u is prescribed (u = 0 or a known time variation of u at the boundary points, e.g., modeling an incoming wave),
2. ∂u/∂n = n · ∇u is prescribed (zero for reflecting boundaries),
∂t2
which in, e.g., 2D becomes
200 2 Wave equations
3. an open boundary condition (also called radiation condition) is speci- fied to let waves travel undisturbed out of the domain, see Exercise 2.12 for details.
All the listed wave equations with second-order derivatives in time need two initial conditions:
1. u=I, 2. ut = V .
2.11.2 Mesh
We introduce a mesh in time and in space. The mesh in time consists of time points
t0 =0
It gives a nice visualization with lifted surface and contours beneath. Figure 2.8 shows four plots of u.
Fig. 2.8 Snapshots of the surface plotted by Gnuplot.
Video files can be made of the PNG frames:
Terminal> ffmpeg -i tmp_%04d.png -r 25 -vcodec flv movie.flv
Terminal> ffmpeg -i tmp_%04d.png -r 25 -vcodec linx264 movie.mp4
Terminal> ffmpeg -i tmp_%04d.png -r 25 -vcodec libvpx movie.webm
Terminal> ffmpeg -i tmp_%04d.png -r 25 -vcodec libtheora movie.ogg
Terminal
Terminal
212 2 Wave equations
It is wise to use a high frame rate – a low one will just skip many frames. There may also be considerable quality differences between the different formats.
Movie 1: https://raw.githubusercontent.com/hplgit/fdm-book/master/doc/ .src/book/mov- wave/gnuplot/wave2D_u0_gaussian/movie25.mp4
Mayavi. The best option for doing visualization of 2D and 3D scalar and vector fields in Python programs is Mayavi, which is an interface to the high-quality package VTK in C++. There is good online documentation and also an introduction in Chapter 5 of [10].
To obtain Mayavi on Ubuntu platforms you can write
pip install mayavi –upgrade
For Mac OS X and Windows, we recommend using Anaconda. To obtain Mayavi for Anaconda you can write
conda install mayavi
Mayavi has a MATLAB-like interface called mlab. We can do
and have plt (as usual) or mlab as a kind of MATLAB visualization access inside our program (just more powerful and with higher visual quality).
The official documentation of the mlab module is provided in two places, one for the basic functionality and one for further functionality. Basic figure handling is very similar to the one we know from Matplotlib. Just as for Matplotlib, all plotting commands you do in mlab will go into the same figure, until you manually change to a new figure.
Back to our application, the following code for the user action function with plotting in Mayavi is relevant to add.
Terminal
Terminal
import mayavi.mlab as plt
# or
from mayavi import mlab
# Top of the file
try:
import mayavi.mlab as mlab
except:
# We don’t have mayavi
pass
2.12 Implementation 213
def solver(…):
…
def gaussian(…):
…
if plot_method == 3:
from mpl_toolkits.mplot3d import axes3d
import matplotlib.pyplot as plt
from matplotlib import cm
plt.ion()
fig = plt.figure()
u_surf = None
def plot_u(u, x, xv, y, yv, t, n):
“””User action function for plotting.”””
if t[n] == 0:
time.sleep(2)
if plot_method == 1:
# Works well with Gnuplot backend, not with Matplotlib
st.mesh(x, y, u, title=’t=%g’ % t[n], zlim=[-1,1],
caxis=[-1,1])
elif plot_method == 2:
# Works well with Gnuplot backend, not with Matplotlib
st.surfc(xv, yv, u, title=’t=%g’ % t[n], zlim=[-1, 1],
colorbar=True, colormap=st.hot(), caxis=[-1,1],
shading=’flat’)
elif plot_method == 3:
print ’Experimental 3D matplotlib…not recommended’
elif plot_method == 4:
# Mayavi visualization
mlab.clf()
extent1 = (0, 20, 0, 20,-2, 2)
s = mlab.surf(x , y, u,
colormap=’Blues’,
warp_scale=5,extent=extent1)
mlab.axes(s, color=(.7, .7, .7), extent=extent1,
ranges=(0, 10, 0, 10, -1, 1),
xlabel=’’, ylabel=’’, zlabel=’’,
x_axis_visibility=False,
z_axis_visibility=False)
mlab.outline(s, color=(0.7, .7, .7), extent=extent1)
mlab.text(6, -2.5, ’’, z=-4, width=0.14)
mlab.colorbar(object=None, title=None,
orientation=’horizontal’,
nb_labels=None, nb_colors=None,
label_fmt=None)
mlab.title(’Gaussian t=%g’ % t[n])
mlab.view(142, -72, 50)
f = mlab.gcf()
camera = f.scene.camera
camera.yaw(0)
if plot_method > 0:
time.sleep(0) # pause between frames
214 2 Wave equations
if save_plot:
filename = ’tmp_%04d.png’ % n
if plot_method == 4:
mlab.savefig(filename) # time consuming!
elif plot_method in (1,2):
st.savefig(filename) # time consuming!
This is a point to get started – visualization is as always a very time- consuming and experimental discipline. With the PNG files we can use ffmpeg to create videos.
Fig. 2.9 Plot with Mayavi.
Movie 2: https://raw.githubusercontent.com/hplgit/fdm-book/master/doc/ .src/book/mov- wave/mayavi/wave2D_u0_gaussian/movie.mp4
2.13 Exercises
Exercise 2.16: Check that a solution fulfills the discrete model
Carry out all mathematical details to show that (2.119) is indeed a solution of the discrete model for a 2D wave equation with u = 0 on the boundary. One must check the boundary conditions, the initial conditions, the general discrete equation at a time level and the special version of this equation for the first time level. Filename: check_quadratic_solution.
2.13 Exercises 215
Project 2.17: Calculus with 2D mesh functions
The goal of this project is to redo Project 2.6 with 2D mesh functions (fi,j ).
Differentiation. The differentiation results in a discrete gradient func- tion, which in the 2D case can be represented by a three-dimensional array df[d,i,j] where d represents the direction of the derivative, and i,j is a mesh point in 2D. Use centered differences for the derivative at inner points and one-sided forward or backward differences at the boundary points. Construct unit tests and write a corresponding test function.
Integration. The integral of a 2D mesh function fi,j is defined as
yj xi
Fi,j = f(x,y)dxdy,
y0 x0
where f(x,y) is a function that takes on the values of the discrete mesh function fi,j at the mesh points, but can also be evaluated in between the mesh points. The particular variation between mesh points can be taken as bilinear, but this is not important as we will use a product Trapezoidal rule to approximate the integral over a cell in the mesh and then we only need to evaluate f(x,y) at the mesh points.
Suppose Fi,j is computed. The calculation of Fi+1,j is then
xi+1 yj
Fi+1,j =Fi,j +
xi
1 yj
≈ ∆x2
y0
f(x,y)dydx y0
f(xi, y)dy +
yj f(xi+1, y)dy
y0
The integrals in the y direction can be approximated by a Trapezoidal rule. A similar idea can be used to compute Fi,j+1. Thereafter, Fi+1,j+1 can be computed by adding the integral over the final corner cell to Fi+1,j + Fi,j+1 − Fi,j. Carry out the details of these computations and implement a function that can return Fi,j for all mesh indices i and j. Use the fact that the Trapezoidal rule is exact for linear functions and write a test function. Filename: mesh_calculus_2D.
216 2 Wave equations
Exercise 2.18: Implement Neumann conditions in 2D
Modify the wave2D_u0.py program, which solves the 2D wave equation utt = c2(uxx + uyy) with constant wave velocity c and u = 0 on the boundary, to have Neumann boundary conditions: ∂u/∂n = 0. Include both scalar code (for debugging and reference) and vectorized code (for speed).
Totestthecode,useu=1.2assolution(I(x,y)=1.2,V =f =0,and c arbitrary), which should be exactly reproduced with any mesh as long as the stability criterion is satisfied. Another test is to use the plug-shaped pulse in the pulse function from Section 2.8 and the wave1D_dn_vc.py program. This pulse is exactly propagated in 1D if c∆t/∆x = 1. Check that also the 2D program can propagate this pulse exactly in x direction
(c∆t/∆x = 1, ∆y arbitrary) and y direction (c∆t/∆y = 1, ∆x arbitrary). Filename: wave2D_dn.
Exercise 2.19: Test the efficiency of compiled loops in 3D
Extend the wave2D_u0.py code and the Cython, Fortran, and C versions to 3D. Set up an efficiency experiment to determine the relative efficiency of pure scalar Python code, vectorized code, Cython-compiled loops, Fortran-compiled loops, and C-compiled loops. Normalize the CPU time for each mesh by the fastest version. Filename: wave3D_u0.
2.14 Applications of wave equations
This section presents a range of wave equation models for different physi- cal phenomena. Although many wave motion problems in physics can be modeled by the standard linear wave equation, or a similar formulation with a system of first-order equations, there are some exceptions. Perhaps the most important is water waves: these are modeled by the Laplace equation with time-dependent boundary conditions at the water surface (long water waves, however, can be approximated by a standard wave equation, see Section 2.14.7). Quantum mechanical waves constitute another example where the waves are governed by the Schrödinger equa- tion, i.e., not by a standard wave equation. Many wave phenomena also need to take nonlinear effects into account when the wave amplitude is significant. Shock waves in the air is a primary example.
2.14 Applications of wave equations 217
The derivations in the following are very brief. Those with a firm background in continuum mechanics will probably have enough knowledge to fill in the details, while other readers will hopefully get some impression of the physics and approximations involved when establishing wave equation models.
2.14.1 Waves on a string
ui−1
T
ui
T ui+1
xi−1 xi xi+1
Fig. 2.10 Discrete string model with point masses connected by elastic strings.
Figure 2.10 shows a model we may use to derive the equation for waves on a string. The string is modeled as a set of discrete point
218 2 Wave equations
masses (at mesh points) with elastic strings in between. The string has a large constant tension T. We let the mass at mesh point xi be mi. The displacement of this mass point in the y direction is denoted by ui(t).
The motion of mass mi is governed by Newton’s second law of motion.
The position of the mass at time t is xii + ui(t)j, where i and j are unit
vectors in the x and y direction, respectively. The acceleration is then
u′′(t)j. Two forces are acting on the mass as indicated in Figure 2.10. i
The force T − acting toward the point xi−1 can be decomposed as T− =−Tsinφi−Tcosφj,
where φ is the angle between the force and the line x = xi. Let ∆ui = ui − ui−1 and let ∆si = ∆u2i + (xi − xi−1)2 be the distance from mass mi−1
to mass mi. It is seen that cos φ = ∆ui/∆si and sin φ = (xi − xi−1)/∆s or ∆x/∆si if we introduce a constant mesh spacing ∆x = xi − xi−1. The force can then be written
T − = −T ∆x i − T ∆ui j . ∆si ∆si
The force T + acting toward xi+1 can be calculated in a similar way: T+ =T ∆x i+T∆ui+1j.
∆si+1 ∆si+1 Newton’s second law becomes
m u′′(t)j = T + + T −, ii
which gives the component equations
T ∆x = T ∆x ,
A basic reasonable assumption for a string is small displacements ui and small displacement gradients ∆ui/∆x. For small g = ∆ui/∆x we have that
∆si=∆u2i +∆x2=∆x1+g2+∆x(1+1g2+O(g4)≈∆x. 2
∆si ∆si+1
m u′′(t) = T ∆ui+1 − T ∆ui .
(2.120)
(2.121)
ii ∆si+1 ∆si
2.14 Applications of wave equations 219
Equation (2.120) is then simply the identity T = T , while (2.121) can be written as
mu′′(t)=T∆ui+1 −T∆ui, ii ∆x∆x
which upon division by ∆x and introducing the density ρi = mi/∆x becomes
ρu′′(t)=T 1 (u −2u +u ). (2.122) ii ∆x2i+1ii−1
We can now choose to approximate u′′ by a finite difference in time and i
get the discretized wave equation,
ρ 1 un+1−2un−un−1=T 1 (u −2u +u ). (2.123)
i∆t2 i i i ∆x2 i+1 i i−1
On the other hand, we may go to the continuum limit ∆x → 0 and replace ui(t) by u(x,t), ρi by ρ(x), and recognize that the right-hand side of (2.122) approaches ∂2u/∂x2 as ∆x → 0. We end up with the continuous model for waves on a string:
ρ∂2u = T ∂2u . (2.124) ∂t2 ∂x2
Note that the density ρ may change along the string, while the tension T is a constant. With variable wave velocity c(x) = T/ρ(x) we can write the wave equation in the more standard form
∂2u = c2(x)∂2u . (2.125) ∂t2 ∂x2
Because of the way ρ enters the equations, the variable wave velocity does not appear inside the derivatives as in many other versions of the wave equation. However, most strings of interest have constant ρ.
The end points of a string are fixed so that the displacement u is zero. The boundary conditions are therefore u = 0.
Damping. Air resistance and non-elastic effects in the string will con- tribute to reduce the amplitudes of the waves so that the motion dies out after some time. This damping effect can be modeled by a term but on the left-hand side of the equation
ρ∂2u + b∂u = T ∂2u . (2.126) ∂t2 ∂t ∂x2
220 2 Wave equations
The parameter b ≥ 0 is small for most wave phenomena, but the damping effect may become significant in long time simulations.
External forcing. It is easy to include an external force acting on the string. Say we have a vertical force f ̃j acting on mass m , modeling the
effect of gravity on a string. This force affects the vertical component of ̃
Newton’s law and gives rise to an extra term f(x,t) on the right-hand side of (2.124). In the model (2.125) we would add a term f(x,t) =
̃
f (x, t)/ρ(x).
Modeling the tension via springs. We assumed, in the derivation above, that the tension in the string, T, was constant. It is easy to check this assumption by modeling the string segments between the masses as standard springs, where the force (tension T) is proportional to the elongation of the spring segment. Let k be the spring constant, and set Ti = k∆l for the tension in the spring segment between xi−1 and xi, where ∆l is the elongation of this segment from the tension-free state. A basic feature of a string is that it has high tension in the equilibrium position u = 0. Let the string segment have an elongation ∆l0 in the equilibrium position. After deformation of the string, the elongation is ∆l = ∆l0 +∆si: Ti = k(∆l0 +∆si) ≈ k(∆l0 +∆x). This shows that Ti is independent of i. Moreover, the extra approximate elongation ∆x is very small compared to ∆l0, so we may well set Ti = T = k∆l0. This means that the tension is completely dominated by the initial tension determined by the tuning of the string. The additional deformations of the spring during the vibrations do not introduce significant changes in the tension.
2.14.2 Elastic waves in a rod
Consider an elastic rod subject to a hammer impact at the end. This experiment will give rise to an elastic deformation pulse that travels through the rod. A mathematical model for longitudinal waves along an elastic rod starts with the general equation for deformations and stresses in an elastic medium,
ρutt =∇·σ+ρf, (2.127)
where ρ is the density, u the displacement field, σ the stress tensor, and f body forces. The latter has normally no impact on elastic waves.
For stationary deformation of an elastic rod, aligned with the x axis, one has that σxx = Eux, with all other stress components being zero.
ii
2.14 Applications of wave equations 221
The parameter E is known as Young’s modulus. Moreover, we set u = u(x, t)i and neglect the radial contraction and expansion (where Poisson’s ratio is the important parameter). Assuming that this simple stress and deformation field is a good approximation, (2.127) simplifies to
∂2u ∂∂u
ρ∂t2 =∂x E∂x . (2.128)
The associated boundary conditions are u or σxx = Eux known, typicallyu=0forafixedendandσxx =0forafreeend.
2.14.3 Waves on a membrane
Think of a thin, elastic membrane with shape as a circle or rectangle. This membrane can be brought into oscillatory motion and will develop elastic waves. We can model this phenomenon somewhat similar to waves in a rod: waves in a membrane are simply the two-dimensional counterpart. We assume that the material is deformed in the z direction only and write the elastic displacement field on the form u(x, y, t) = w(x, y, t)i. The z coordinate is omitted since the membrane is thin and all properties are taken as constant throughout the thickness. Inserting this displacement field in Newton’s 2nd law of motion (2.127) results in
∂2w ∂ ∂w ∂ ∂w
ρ∂t2 =∂x μ∂x +∂y μ∂y . (2.129)
This is nothing but a wave equation in w(x, y, t), which needs the usual initial conditions on w and wt as well as a boundary condition w = 0. When computing the stress in the membrane, one needs to split σ into a constant high-stress component due to the fact that all membranes are normally pre-stressed, plus a component proportional to the displacement and governed by the wave motion.
2.14.4 The acoustic model for seismic waves
Seismic waves are used to infer properties of subsurface geological struc- tures. The physical model is a heterogeneous elastic medium where sound is propagated by small elastic vibrations. The general mathemati- cal model for deformations in an elastic medium is based on Newton’s second law,
222 2 Wave equations
ρutt =∇·σ+ρf, (2.130) and a constitutive law relating σ to u, often Hooke’s generalized law,
σ=K∇·uI+G(∇u+(∇u)T −2∇·uI). (2.131) 3
Here, u is the displacement field, σ is the stress tensor, I is the identity tensor, ρ is the medium’s density, f are body forces (such as gravity), K is the medium’s bulk modulus and G is the shear modulus. All these quantities may vary in space, while u and σ will also show significant variation in time during wave motion.
The acoustic approximation to elastic waves arises from a basic assump- tion that the second term in Hooke’s law, representing the deformations that give rise to shear stresses, can be neglected. This assumption can be interpreted as approximating the geological medium by a fluid. Neglecting also the body forces f, (2.130) becomes
ρutt = ∇(K∇ · u) Introducing p as a pressure via
p = −K∇ · u, and dividing (2.132) by ρ, we get
utt = −1∇p. ρ
(2.132)
(2.133)
(2.134)
Taking the divergence of this equation, using ∇ · u = −p/K from (2.133), gives the acoustic approximation to elastic waves:
1
ptt = K∇ · ρ∇p . (2.135)
This is a standard, linear wave equation with variable coefficients. It is common to add a source term s(x,y,z,t) to model the generation of sound waves:
1
ptt=K∇· ρ∇p +s. (2.136)
A common additional approximation of (2.136) is based on using the chain rule on the right-hand side,
2.14 Applications of wave equations 223
1K2 1 K2 K∇· ρ∇p =ρ∇p+K∇ ρ ·∇p≈ρ∇p,
under the assumption that the relative spatial gradient ∇ρ−1 = −ρ−2∇ρ is small. This approximation results in the simplified equation
ptt = K∇2p+s. (2.137) ρ
The acoustic approximations to seismic waves are used for sound waves in the ground, and the Earth’s surface is then a boundary where p equals the atmospheric pressure p0 such that the boundary condition becomes p = p0.
Anisotropy. Quite often in geological materials, the effective wave veloc- ity c = K/ρ is different in different spatial directions because geological layers are compacted, and often twisted, in such a way that the proper- ties in the horizontal and vertical direction differ. With z as the vertical coordinate, we can introduce a vertical wave velocity cz and a horizontal wave velocity ch, and generalize (2.137) to
ptt =c2zpzz +c2h(pxx +pyy)+s. (2.138) 2.14.5 Sound waves in liquids and gases
Sound waves arise from pressure and density variations in fluids. The starting point of modeling sound waves is the basic equations for a compressible fluid where we omit viscous (frictional) forces, body forces
(gravity, for instance), and temperature effects:
ρt +∇·(ρu)=0, ρut + ρu · ∇u = −∇p, ρ = ρ(p) .
(2.139) (2.140) (2.141)
These equations are often referred to as the Euler equations for the motion of a fluid. The parameters involved are the density ρ, the velocity u, and the pressure p. Equation reflects (2.139) mass balance, (2.140) is Newton’s second law for a fluid, with frictional and body forces omitted, and (2.141) is a constitutive law relating density to pressure by thermodynamic considerations. A typical model for (2.141) is the so-called isentropic relation, valid for adiabatic processes where there is no heat transfer:
224 2 Wave equations
p 1/γ
ρ = ρ0 p . (2.142)
0
Here, p0 and ρ0 are reference values for p and ρ when the fluid is at
rest, and γ is the ratio of specific heat at constant pressure and constant volume (γ = 5/3 for air).
The key approximation in a mathematical model for sound waves is to assume that these waves are small perturbations to the density, pressure, and velocity. We therefore write
p = p0 + pˆ,
ρ = ρ0 + ρˆ, u = uˆ ,
where we have decomposed the fields in a constant equilibrium value, corresponding to u = 0, and a small perturbation marked with a hat symbol. By inserting these decompositions in (2.139) and (2.140), ne- glecting all product terms of small perturbations and/or their derivatives, and dropping the hat symbols, one gets the following linearized PDE system for the small perturbations in density, pressure, and velocity:
ρt +ρ0∇·u=0, ρ0ut = −∇p .
Now we can eliminate ρt by differentiating the relation ρ(p), 1p1/γ−1 1 ρ0 p1/γ−1
ρt=ρ0γ p ppt=γp p pt. 0000
(2.143) (2.144)
The product term p1/γ−1p can be linearized as p1/γ−1p , resulting in t0t
We then get
ρt ≈ ρ0 pt . γp0
pt +γp0∇·u=0,
ut =−1∇p,. ρ0
(2.145) (2.146)
2.14 Applications of wave equations 225
Taking the divergence of (2.146) and differentiating (2.145) with respect to time gives the possibility to easily eliminate ∇ · ut and arrive at a standard, linear wave equation for p:
ptt = c2∇2p, (2.147) where c = γp0/ρ0 is the speed of sound in the fluid.
2.14.6 Spherical waves
Spherically symmetric three-dimensional waves propagate in the radial direction r only so that u = u(r, t). The fully three-dimensional wave equation
∂2u =∇·(c2∇u)+f ∂t2
then reduces to the spherically symmetric wave equation ∂2u 1∂2 2∂u
∂t2=r2∂r c(r)r∂r +f(r,t), r∈(0,R),t>0. (2.148)
One can easily show that the function v(r, t) = ru(r, t) fulfills a standard wave equation in Cartesian coordinates if c is constant. To this end, insert u = v/r in
to obtain
1∂2 2∂u r2∂r c(r)r∂r
dc2 ∂v 2∂2v dc2 dr ∂r + c ∂r2 − dr v .
r
The two terms in the parenthesis can be combined to
∂ 2∂v r∂r c∂r ,
which is recognized as the variable-coefficient Laplace operator in one Cartesian coordinate. The spherically symmetric wave equation in terms of v(r, t) now becomes
226 2 Wave equations
∂2v ∂2 ∂v 1dc2
∂t2=∂r c(r)∂r −rdrv+rf(r,t), r∈(0,R),t>0.(2.149)
In the case of constant wave velocity c, this equation reduces to the wave equation in a single Cartesian coordinate called r:
∂2v=c2∂2v+rf(r,t), r∈(0,R),t>0. (2.150) ∂t2 ∂r2
That is, any program for solving the one-dimensional wave equation in a Cartesian coordinate system can be used to solve (2.150), provided the source term is multiplied by the coordinate, and that we divide the Cartesian mesh solution by r to get the spherically symmetric solution. Moreover, if r = 0 is included in the domain, spherical symmetry demands that ∂u/∂r = 0 at r = 0, which means that
∂u 1∂v
∂r=r2 r∂r−v =0, r=0.
For this to hold in the limit r → 0, we must have v(0, t) = 0 at least as a necessary condition. In most practical applications, we exclude r = 0 from the domain and assume that some boundary condition is assigned at r = ε, for some ε > 0.
2.14.7 The linear shallow water equations
The next example considers water waves whose wavelengths are much larger than the depth and whose wave amplitudes are small. This class of waves may be generated by catastrophic geophysical events, such as earthquakes at the sea bottom, landslides moving into water, or underwater slides (or a combination, as earthquakes frequently release avalanches of masses). For example, a subsea earthquake will normally have an extension of many kilometers but lift the water only a few meters. The wave length will have a size dictated by the earthquake area, which is much lager than the water depth, and compared to this wave length, an amplitude of a few meters is very small. The water is essentially a thin film, and mathematically we can average the problem in the vertical direction and approximate the 3D wave phenomenon by 2D PDEs. Instead of a moving water domain in three space dimensions, we get a horizontal 2D domain with an unknown function for the surface elevation and the water depth as a variable coefficient in the PDEs.
2.14 Applications of wave equations 227
Let η(x, y, t) be the elevation of the water surface, H(x, y) the water depth corresponding to a flat surface (η = 0), u(x, y, t) and v(x, y, t) the depth-averaged horizontal velocities of the water. Mass and momentum balance of the water volume give rise to the PDEs involving these quantities:
ηt = −(Hu)x − (Hv)x ut = −gηx,
vt = −gηy,
(2.151) (2.152) (2.153)
where g is the acceleration of gravity. Equation (2.151) corresponds to mass balance while the other two are derived from momentum balance
(Newton’s second law).
The initial conditions associated with (2.151)-(2.153) are η, u, and v
prescribed at t = 0. A common condition is to have some water elevation η = I(x,y) and assume that the surface is at rest: u = v = 0. A subsea earthquake usually means a sufficiently rapid motion of the bottom and the water volume to say that the bottom deformation is mirrored at the water surface as an initial lift I(x, y) and that u = v = 0.
Boundary conditions may be η prescribed for incoming, known waves, or zero normal velocity at reflecting boundaries (steep mountains, for instance):unx+vny =0,where(nx,ny)istheoutwardunitnormalto the boundary. More sophisticated boundary conditions are needed when waves run up at the shore, and at open boundaries where we want the waves to leave the computational domain undisturbed.
Equations (2.151), (2.152), and (2.153) can be transformed to a stan- dard, linear wave equation. First, multiply (2.152) and (2.153) by H, differentiate (2.152)) with respect to x and (2.153) with respect to y. Sec- ond, differentiate (2.151) with respect to t and use that (Hu)xt = (Hut)x and (Hv)yt = (Hvt)y when H is independent of t. Third, eliminate
(Hut)x and (Hvt)y with the aid of the other two differentiated equations. These manipulations result in a standard, linear wave equation for η:
ηtt =(gHηx)x +(gHηy)y =∇·(gH∇η). (2.154)
In the case we have an initial non-flat water surface at rest, the initial conditions become η = I(x, y) and ηt = 0. The latter follows from (2.151) if u = v = 0, or simply from the fact that the vertical velocity of the surface is ηt, which is zero for a surface at rest.
228 2 Wave equations
The system (2.151)-(2.153) can be extended to handle a time-varying bottom topography, which is relevant for modeling long waves generated by underwater slides. In such cases the water depth function H is also a function of t, due to the moving slide, and one must add a time- derivative term Ht to the left-hand side of (2.151). A moving bottom is best described by introducing z = H0 as the still-water level, z = B(x,y,t) as the time- and space-varying bottom topography, so that H = H0 − B(x, y, t). In the elimination of u and v one may assume that the dependence of H on t can be neglected in the terms (Hu)xt and
(Hv)yt. We then end up with a source term in (2.154), because of the moving (accelerating) bottom:
ηtt = ∇ · (gH∇η) + Btt . (2.155)
The reduction of (2.155) to 1D, for long waves in a straight channel, or for approximately plane waves in the ocean, is trivial by assuming no change in y direction (∂/∂y = 0):
ηtt = (gHηx)x + Btt . (2.156) Wind drag on the surface. Surface waves are influenced by the drag of
the wind, and if the wind velocity some meters above the surface is (U, V ), √√
the wind drag gives contributions CV U2 + V 2U and CV U2 + V 2V to (2.152) and (2.153), respectively, on the right-hand sides.
Bottom drag. The waves will experience a drag from the bottom, often √
roughly modeled by a term similar to the wind drag: C u2 + v2u on √B
the right-hand side of (2.152) and CB u2 + v2v on the right-hand side of (2.153). Note that in this case the PDEs (2.152) and (2.153) become nonlinear and the elimination of u and v to arrive at a 2nd-order wave equation for η is not possible anymore.
Effect of the Earth’s rotation. Long geophysical waves will often be affected by the rotation of the Earth because of the Coriolis force. This force gives rise to a term fv on the right-hand side of (2.152) and −fu on the right-hand side of (2.153). Also in this case one cannot eliminate u and v to work with a single equation for η. The Coriolis parameter is f = 2Ω sin φ, where Ω is the angular velocity of the earth and φ is the latitude.
2.14 Applications of wave equations 229
2.14.8 Waves in blood vessels
The flow of blood in our bodies is basically fluid flow in a network of pipes. Unlike rigid pipes, the walls in the blood vessels are elastic and will increase their diameter when the pressure rises. The elastic forces will then push the wall back and accelerate the fluid. This interaction between the flow of blood and the deformation of the vessel wall results in waves traveling along our blood vessels.
A model for one-dimensional waves along blood vessels can be derived from averaging the fluid flow over the cross section of the blood vessels. Let x be a coordinate along the blood vessel and assume that all cross sections are circular, though with different radii R(x, t). The main quantities to compute is the cross section area A(x, t), the averaged pressure P (x, t), and the total volume flux Q(x, t). The area of this cross section is
R(x,t)
0
A(x, t) = 2π
rdr, (2.157)
Let vx(x,t) be the velocity of blood averaged over the cross section at point x. The volume flux, being the total volume of blood passing a cross section per time unit, becomes
Q(x, t) = A(x, t)vx(x, t)
Mass balance and Newton’s second law lead to the PDEs
∂A + ∂Q = 0, ∂t ∂x
∂Q γ+2 ∂ Q2 A∂P μQ ∂t+γ+1∂x A +ρ∂x=−2π(γ+2)ρA,
(2.158)
(2.159)
(2.160)
where γ is a parameter related to the velocity profile, ρ is the density of blood, and μ is the dynamic viscosity of blood.
We have three unknowns A, Q, and P , and two equations (2.159) and (2.160). A third equation is needed to relate the flow to the deformations
of the wall. A common form for this equation is
∂P + 1 ∂Q =0, (2.161)
∂t C∂x
where C is the compliance of the wall, given by the constitutive relation
230 2 Wave equations
C = ∂A + ∂A, (2.162) ∂P ∂t
which requires a relationship between A and P . One common model is to view the vessel wall, locally, as a thin elastic tube subject to an internal pressure. This gives the relation
πhE √ P=P0+(1−ν2)A( A− A0),
0
where P0 and A0 are corresponding reference values when the wall is not deformed, h is the thickness of the wall, and E and ν are Young’s modulus and Poisson’s ratio of the elastic material in the wall. The derivative becomes
∂A ∂P
2(1−ν2)A πhE
(1−ν2)A 2
0A0 +2 0 (P −P0). (2.163)
πhE
C =
Another (nonlinear) deformation model of the wall, which has a better
=
fit with experiments, is
P = P0 exp (β(A/A0 − 1)),
where β is some parameter to be estimated. This law leads to
C = ∂A = A0 . (2.164)
∂P βP
Reduction to the standard wave equation. It is not uncommon to neglect the viscous term on the right-hand side of (2.160) and also the quadratic term with Q2 on the left-hand side. The reduced equations
(2.160) and (2.161) form a first-order linear wave equation system: C∂P =−∂Q, (2.165)
∂t ∂x
∂Q =−A∂P . (2.166) ∂t ρ ∂x
These can be combined into standard 1D wave PDE by differentiating the first equation with respect to t and the second with respect to x,
∂∂P ∂A∂P ∂t C∂t =∂x ρ∂x ,
2.14 Applications of wave equations 231
which can be approximated by
∂2Q 2∂2Q A
∂t2 =c∂x2, c= ρC, (2.167)
where the A and C in the expression for c are taken as constant reference values.
2.14.9 Electromagnetic waves
Light and radio waves are governed by standard wave equations arising from Maxwell’s general equations. When there are no charges and no currents, as in a vacuum, Maxwell’s equations take the form
∇ · E = 0, ∇ · B = 0,
∇ × E = − ∂B , ∂t
∇ × B = μ ε ∂E , 0 0 ∂t
where ε0 = 8.854187817620 · 10−12 (F/m) is the permittivity of free space, also known as the electric constant, and μ0 = 1.2566370614 · 10−6 (H/m) is the permeability of free space, also known as the magnetic constant. Taking the curl of the two last equations and using the mathematical identity
∇ × (∇ × E) = ∇(∇ · E) − ∇2E = −∇2E when ∇ · E = 0, gives the wave equation governing the electric and magnetic field:
∂2E = c2∇2E, (2.168) ∂t2
∂2B = c2∇2B, (2.169) ∂t2
with c = 1/√μ0ε0 as the velocity of light. Each component of E and B fulfills a wave equation and can hence be solved independently.
232 2 Wave equations
2.15 Exercises
Exercise 2.20: Simulate waves on a non-homogeneous string
Simulate waves on a string that consists of two materials with different density. The tension in the string is constant, but the density has a jump at the middle of the string. Experiment with different sizes of the jump and produce animations that visualize the effect of the jump on the wave motion.
Hint. According to Section 2.14.1, the density enters the mathematical model as ρ in ρutt = Tuxx, where T is the string tension. Modify, e.g., the wave1D_u0v.py code to incorporate the tension and two density values. Make a mesh function rho with density values at each spatial mesh point. A value for the tension may be 150 N. Corresponding density values can be computed from the wave velocity estimations in the guitar function in the wave1D_u0v.py file.
Filename: wave1D_u0_sv_discont.
Exercise 2.21: Simulate damped waves on a string
Formulate a mathematical model for damped waves on a string. Use data from Section 2.3.6, and tune the damping parameter so that the string is very close to the rest state after 15 s. Make a movie of the wave motion. Filename: wave1D_u0_sv_damping.
Exercise 2.22: Simulate elastic waves in a rod
A hammer hits the end of an elastic rod. The exercise is to simulate the resulting wave motion using the model (2.128) from Section 2.14.2. Let the rod have length L and let the boundary x = L be stress free so that σxx =0,implyingthat∂u/∂x=0.Theleftendx=0issubjecttoa strong stress pulse (the hammer), modeled as
S, 0 < t ≤ ts, σxx(t)= 0, t>ts
The corresponding condition on u becomes ux = S/E for t ≤ ts and zero afterwards (recall that σxx = Eux). This is a non-homogeneous Neumann condition, and you will need to approximate this condition and
2.15 Exercises 233
combine it with the scheme (the ideas and manipulations follow closely the handling of a non-zero initial condition ut = V in wave PDEs or the corresponding second-order ODEs for vibrations). Filename: wave_rod.
Exercise 2.23: Simulate spherical waves
Implement a model for spherically symmetric waves using the method described in Section 2.14.6. The boundary condition at r = 0 must be ∂u/∂r = 0, while the condition at r = R can either be u = 0 or a radiation condition as described in Problem 2.12. The u = 0 condition is sufficient if R is so large that the amplitude of the spherical wave has become insignificant. Make movie(s) of the case where the source term is located around r = 0 and sends out pulses
Qexp(− r2 )sinωt, sinωt ≥ 0
f(r,t) =
2∆r2 Here, Q and ω are constants to be chosen.
0,
Hint. Use the program wave1D_u0v.py as a starting point. Let solver compute the v function and then set u = v/r. However, u = v/r for r = 0 requires special treatment. One possibility is to compute u[1:] = v[1:]/r[1:] and then set u[0]=u[1]. The latter makes it evident that ∂u/∂r = 0 in a plot.
Filename: wave1D_spherical.
Problem 2.24: Earthquake-generated tsunami over a subsea
hill
A subsea earthquake leads to an immediate lift of the water surface, see Figure 2.11. The lifted water surface splits into two tsunamis, one traveling to the right and one to the left, as depicted in Figure 2.12. Since tsunamis are normally very long waves, compared to the depth, with a small amplitude, compared to the wave length, a standard wave equation is relevant:
ηtt = (gH(x)ηx)x,
where η is the elevation of the water surface, g is the acceleration of gravity, and H(x) is the still water depth.
sin ωt < 0
234 2 Wave equations
I(x)
H0
x=0
Fig. 2.11 Sketch of initial water surface due to a subsea earthquake.
H0
x=0
Fig. 2.12 An initial surface elevation is split into two waves.
To simulate the right-going tsunami, we can impose a symmetry boundary at x = 0: ∂η/∂x = 0. We then simulate the wave motion in [0,L]. Unless the ocean ends at x = L, the waves should travel undisturbed through the boundary x = L. A radiation condition as explained in Problem 2.12 can be used for this purpose. Alternatively, one can just stop the simulations before the wave hits the boundary at x = L. In that case it does not matter what kind of boundary condition we use at x = L. Imposing η = 0 and stopping the simulations when |ηin| > ε, i = Nx − 1, is a possibility (ε is a small parameter).
The shape of the initial surface can be taken as a Gaussian function,
2.15 Exercises 235
x−Im2 I(x;I0,Ia,Im,Is)=I0 +Iaexp − I , (2.170)
s
with I = 0 reflecting the location of the peak of I(x) and I being a m√s
measure of the width of the function I(x) (Is is 2 times the standard deviation of the familiar normal distribution curve).
Now we extend the problem with a hill at the sea bottom, see Fig- ure 2.13. The wave speed c = gH(x) = g(H0 − B(x)) will then be reduced in the shallow water above the hill.
x=0
I(x)
Ba
B(x)
H0
4mBs
Bm
Fig. 2.13 Sketch of an earthquake-generated tsunami passing over a subsea hill.
One possible form of the hill is a Gaussian function,
x−Bm2 B(x;B0,Ba,Bm,Bs)=B0 +Baexp − B , (2.171)
s
but many other shapes are also possible, e.g., a “cosine hat” where
x−Bm B(x;B0,Ba,Bm,Bs)=B0 +Bacos π 2B , (2.172)
s
when x ∈ [Bm − Bs, Bm + Bs] while B = B0 outside this interval.
Also an abrupt construction may be tried:
B(x; B0, Ba, Bm, Bs) = B0 + Ba, (2.173)
for x ∈ [Bm − Bs, Bm + Bs] while B = B0 outside this interval.
236 2 Wave equations
The wave1D_dn_vc.py program can be used as starting point for the implementation. Visualize both the bottom topography and the water surface elevation in the same plot. Allow for a flexible choice of bottom shape: (2.171), (2.172), (2.173), or B(x) = B0 (flat).
The purpose of this problem is to explore the quality of the numerical solution ηin for different shapes of the bottom obstruction. The “cosine hat” and the box-shaped hills have abrupt changes in the derivative of H(x) and are more likely to generate numerical noise than the smooth Gaussian shape of the hill. Investigate if this is true. Filename: tsunami1D_hill.
Problem 2.25: Earthquake-generated tsunami over a 3D hill
This problem extends Problem 2.24 to a three-dimensional wave phe- nomenon, governed by the 2D PDE
ηtt =(gHηx)x +(gHηy)y =∇·(gH∇η). (2.174)
We assume that the earthquake arises from a fault along the line x = 0 in the xy-plane so that the initial lift of the surface can be taken as I(x) in Problem 2.24. That is, a plane wave is propagating to the right, but will experience bending because of the bottom.
The bottom shape is now a function of x and y. An “elliptic” Gaussian function in two dimensions, with its peak at (Bmx,Bmy), generalizes
(2.171):
B=B0+Baexp − B − bB , (2.175)
x − Bmx 2 y − Bmy 2 ss
where b is a scaling parameter: b = 1 gives a circular Gaussian function with circular contour lines, while b ̸= 1 gives an elliptic shape with elliptic contour lines. To indicate the input parameters in the model, we may write
B = B(x;B0,Ba,Bmx,Bmy,Bs,b). The “cosine hat” (2.172) can also be generalized to
x−Bmx y−Bmy
B = B0 + Ba cos π 2B cos π 2B , (2.176)
ss when0≤x2+y2 ≤Bs andB=B0 outsidethiscircle.
2.15 Exercises 237
A box-shaped obstacle means that
B(x; B0, Ba, Bm, Bs, b) = B0 + Ba (2.177)
for x and y inside a rectangle
Bmx−Bs≤x≤Bmx+Bs, Bmy−bBs≤y≤Bmy+bBs,
and B = B0 outside this rectangle. The b parameter controls the rectan- gular shape of the cross section of the box.
Note that the initial condition and the listed bottom shapes are symmetric around the line y = Bmy. We therefore expect the surface elevation also to be symmetric with respect to this line. This means that we can halve the computational domain by working with [0,Lx]×[0,Bmy]. Along the upper boundary, y = Bmy, we must impose the symmetry condition ∂η/∂n = 0. Such a symmetry condition (−ηx = 0) is also needed at the x = 0 boundary because the initial condition has a symmetry here. At the lower boundary y = 0 we also set a Neumann condition (which becomes −ηy = 0). The wave motion is to be simulated until the wave hits the reflecting boundaries where ∂η/∂n = ηx = 0 (one can also set η = 0 – the particular condition does not matter as long as the simulation is stopped before the wave is influenced by the boundary condition).
Visualize the surface elevation. Investigate how different hill shapes, different sizes of the water gap above the hill, and different resolutions ∆x = ∆y = h and ∆t influence the numerical quality of the solution. Filename: tsunami2D_hill.
Problem 2.26: Investigate Mayavi for visualization
Play with Mayavi code for visualizing 2D solutions of the wave equation with variable wave velocity. See if there are effective ways to visualize both the solution and the wave velocity scalar field at the same time. Filename: tsunami2D_hill_mlab.
Problem 2.27: Investigate visualization packages
Create some fancy 3D visualization of the water waves and the sub- sea hill in Problem 2.25. Try to make the hill transparent. Possi-
238 2 Wave equations
ble visualization tools are Mayavi, Paraview, and OpenDX. Filename: tsunami2D_hill_viz.
Problem 2.28: Implement loops in compiled languages
Extend the program from Problem 2.25 such that the loops over mesh points, inside the time loop, are implemented in compiled languages. Consider implementations in Cython, Fortran via f2py, C via Cython, C via f2py, C/C++ via Instant, and C/C++ via scipy.weave. Perform ef- ficiency experiments to investigate the relative performance of the various implementations. It is often advantageous to normalize CPU times by the fastest method on a given mesh. Filename: tsunami2D_hill_compiled.
Exercise 2.29: Simulate seismic waves in 2D
The goal of this exercise is to simulate seismic waves using the PDE model (2.138) in a 2D xz domain with geological layers. Introduce m horizontal layers of thickness hi, i = 0, . . . , m − 1. Inside layer number i we have a vertical wave velocity cz,i and a horizontal wave velocity ch,i. Make a program for simulating such 2D waves. Test it on a case with 3 layers where
cz,0 = cz,1 = cz,2, ch,0 = ch,2, ch,1 ≪ ch,0 .
Let s be a localized point source at the middle of the Earth’s surface (the upper boundary) and investigate how the resulting wave travels through the medium. The source can be a localized Gaussian peak that oscillates in time for some time interval. Place the boundaries far enough from the expanding wave so that the boundary conditions do not disturb the wave. Then the type of boundary condition does not matter, except that we physically need to have p = p0, where p0 is the atmospheric pressure, at the upper boundary. Filename: seismic2D.
Project 2.30: Model 3D acoustic waves in a room
The equation for sound waves in air is derived in Section 2.14.5 and reads ptt = c2∇2p,
2.15 Exercises 239
where p(x, y, z, t) is the pressure and c is the speed of sound, taken as 340 m/s. However, sound is absorbed in the air due to relaxation of molecules in the gas. A model for simple relaxation, valid for gases consisting only of one type of molecules, is a term c2τs∇2pt in the PDE, where τs is the relaxation time. If we generate sound from, e.g., a loudspeaker in the room, this sound source must also be added to the governing equation.
The PDE with the mentioned type of damping and source then becomes ptt = c2∇p + c2τs∇2pt + f, (2.178)
where f (x, y, z, t) is the source term.
The walls can absorb some sound. A possible model is to have a
“wall layer” (thicker than the physical wall) outside the room where c is changed such that some of the wave energy is reflected and some is absorbed in the wall. The absorption of energy can be taken care of by adding a damping term bpt in the equation:
ptt + bpt = c2∇p + c2τs∇2pt + f . (2.179)
Typically, b = 0 in the room and b > 0 in the wall. A discontinuity in b or c will give rise to reflections. It can be wise to use a constant c in the wall to control reflections because of the discontinuity between c in the air and in the wall, while b is gradually increased as we go into the wall to avoid reflections because of rapid changes in b. At the outer boundary of the wall the condition p = 0 or ∂p/∂n = 0 can be imposed. The waves should anyway be approximately dampened to p = 0 this far out in the wall layer.
There are two strategies for discretizing the ∇2pt term: using a center difference between times n + 1 and n − 1 (if the equation is sampled at level n), or use a one-sided difference based on levels n and n − 1. The latter has the advantage of not leading to any equation system, while the former is second-order accurate as the scheme for the simple wave equation ptt = c2∇2p. To avoid an equation system, go for the one-sided difference such that the overall scheme becomes explicit and only of first order in time.
Develop a 3D solver for the specified PDE and introduce a wall layer. Test the solver with the method of manufactured solutions. Make some demonstrations where the wall reflects and absorbs the waves (reflection because of discontinuity in b and absorption because of growing b). Experiment with the impact of the τs parameter. Filename: acoustics.
240
2 Wave equations
Project 2.31: Solve a 1D transport equation
We shall study the wave equation
ut +cux =0, x∈(0,L], t∈(0,T], with initial condition
u(x, 0) = I (x), x ∈ [0, L], and one periodic boundary condition
u(0, t) = u(L, t) .
(2.180)
(2.181)
(2.182)
This boundary condition means that what goes out of the domain at x = L comes in at x = 0. Roughly speaking, we need only one boundary condition because of the spatial derivative is of first order only.
Physical interpretation. The parameter c can be constant or variable, c = c(x). The equation (2.180) arises in transport problems where a quan- tity u, which could be temperature or concentration of some contaminant, is transported with the velocity c of a fluid. In addition to the transport imposed by “travelling with the fluid”, u may also be transported by diffusion (such as heat conduction or Fickian diffusion), but we have in the model ut + cux assumed that diffusion effects are negligible, which they often are.
a) Show that under the assumption of a = const,
u(x, t) = I (x − ct) (2.183)
fulfills the PDE as well as the initial and boundary condition (provided I(0) = I(L)).
A widely used numerical scheme for (2.180) applies a forward difference in time and a backward difference in space when c > 0:
[Dt+u+cDx−u=0]ni . (2.184) For c < 0 we use a forward difference in space: [cDx+u]ni .
b) Set up a computational algorithm and implement it in a function. Assume a is constant and positive.
c) Test the implementation by using the remarkable property that the numerical solution is exact at the mesh points if ∆t = c−1∆x.
2.15 Exercises 241
d) Make a movie comparing the numerical and exact solution for the following two choices of initial conditions:
x2n I(x)= sin πL
(2.185)
(2.186)
e) The performance of the suggested numerical scheme can be investi- gated by analyzing the numerical dispersion relation. Analytically, we have that the Fourier component
u(x, t) = ei(kx−ωt),
is a solution of the PDE if ω = kc. This is the analytical dispersion relation. A complete solution of the PDE can be built by adding up such Fourier components with different amplitudes, where the initial condition I determines the amplitudes. The solution u is then represented by a Fourier series.
A similar discrete Fourier component at (xp,tn) is uqp = ei(kp∆x−ω ̃n∆t),
where in general ω ̃ is a function of k, ∆t, and ∆x, and differs from the exact ω = kc.
Insert the discrete Fourier component in the numerical scheme and derive an expression for ω ̃, i.e., the discrete dispersion relation. Show in particular that if ∆t/(c∆x) = 1, the discrete solution coincides with the exact solution at the mesh points, regardless of the mesh resolution (!). Show that if the stability condition
∆t ≤1, c∆x
the discrete Fourier component cannot grow (i.e., ω ̃ is real).
f) Write a test for your implementation where you try to use information from the numerical dispersion relation.
We shall hereafter assume that c(x) > 0.
where n is an integer, typically n = 5, and
(x−L/2)2
I(x) = exp − 2σ2 . Choose ∆t = c−1∆x, 0.9c−1∆x, 0.5c−1∆x.
242 2 Wave equations
g) Set up a computational algorithm for the variable coefficient case and implement it in a function. Make a test that the function works for constant a.
h) It can be shown that for an observer moving with velocity c(x), u is constant. This can be used to derive an exact solution when a varies with x. Show first that
where
u(x, t) = f (C (x) − t),
C′(x)= 1 , c(x)
(2.187)
is a solution of (2.180) for any differentiable function f.
i) Use the initial condition to show that an exact solution is
u(x, t) = I(C−1(C(x) − t)),
with C−1 being the inverse function of C = c1dx. Since C(x) is an
integral x(1/c)dx, C(x) is monotonically increasing and there exists 0
hence an inverse function C−1 with values in [0,L].
To compute (2.187) we need to integrate 1/c to obtain C and then
compute the inverse of C.
The inverse function computation can be easily done if we first think
discretely. Say we have some function y = g(x) and seek its inverse. Plotting (xi, yi), where yi = g(xi) for some mesh points xi, displays g as a function of x. The inverse function is simply x as a function of g, i.e., the curve with points (yi,xi). We can therefore quickly compute points at the curve of the inverse function. One way of extending these points to a continuous function is to assume a linear variation (known as linear interpolation) between the points (which actually means to draw straight lines between the points, exactly as done by a plotting program).
The function wrap2callable in scitools.std can take a set of points and return a continuous function that corresponds to linear variation between the points. The computation of the inverse of a function g on [0, L] can then be done by
def inverse(g, domain, resolution=101):
x = linspace(domain[0], domain[L], resolution)
y = g(x)
from scitools.std import wrap2callable
g_inverse = wrap2callable((y, x))
2.15 Exercises 243
return g_inverse
To compute C(x) we need to integrate 1/c, which can be done by a Trapezoidal rule. Suppose we have computed C(xi) and need to com- pute C(xi+1). Using the Trapezoidal rule with m subintervals over the integration domain [xi, xi+1] gives
m−1
xi+1 dx 1 1 1 1 1 C(xi+1)=C(xi)+ c ≈h2c(x)+2c(x )+ c(x +jh),
xi i i+1j=1i
(2.188)
where h = (xi+1 − xi)/m is the length of the subintervals used for the integral over [xi,xi+1]. We observe that (2.188) is a difference equation which we can solve by repeatedly applying (2.188) for i = 0, 1, . . . , Nx − 1 if a mesh x0,x, …,xNx is prescribed. Note that C(0) = 0.
j) Implement a function for computing C (xi ) and one for com- puting C −1 (x) for any x. Use these two functions for comput- ing the exact solution I (C −1 (C (x) − t)). End up with a func- tion u_exact_variable_c(x, n, c, I) that returns the value of I(C−1(C(x) − tn)).
k) Make movies showing a comparison of the numerical and exact solutions for the two initial conditions (2.185) and (2.31). Choose ∆t = ∆x/ max0,L c(x) and the velocity of the medium as
1. c(x)=1+εsin(kπx/L),ε<1,
2. c(x) = 1 + I(x), where I is given by (2.185) or (2.31).
The PDE ut + cux = 0 expresses that the initial condition I(x) is transported with velocity c(x).
Filename: advec1D.
Problem 2.32: General analytical solution of a 1D damped wave equation
We consider an initial-boundary value problem for the damped wave equation:
244
2 Wave equations
utt+but=c2uxx, x∈(0,L),t∈(0,T] u(0, t) = 0,
u(L, t) = 0,
u(x,0) = I(x), ut(x, 0) = V (x) .
Here, b ≥ 0 and c are given constants. The aim is to derive a general analytical solution of this problem. Familiarity with the method of separation of variables for solving PDEs will be assumed.
a) Seek a solution on the form u(x, t) = X (x)T (t). Insert this solution in the PDE and show that it leads to two differential equations for X and T:
T′′+bT′+λT=0, c2X′′+λX=0,
with X(0) = X(L) = 0 as boundary conditions, and λ as a constant to
be determined.
b) Show that X(x) is on the form
Xn(x) = Cn sinkx, k = nπ, n = 1,2,... L
where Cn is an arbitrary constant.
c) Under the assumption that (b/2)2 < k2, show that T(t) is on the form
11 Tn(t)=e−2bt(ancosωt+bnsinωt), ω= k2−4b2, n=1,2,...
The complete solution is then
n=1
∞
u(x,t)=sinkxe−1bt(A cosωt+B sinωt),
2nn
where the constants An and Bn must be computed from the initial
conditions.
d) Derive a formula for An from u(x,0) = I(x) and developing I(x) as
a sine Fourier series on [0, L].
e) Derive a formula for Bn from ut(x, 0) = V (x) and developing V (x) as a sine Fourier series on [0, L].
2.15 Exercises 245
f ) Calculate An and Bn from vibrations of a string where V (x) = 0 and ax/x0, x < x0,
I(x) = a(L − x)/(L − x0), otherwise (2.189)
g) Implement a function u_series(x, t, tol=1E-10) for the series for u(x, t), where tol is a tolerance for truncating the series. Simply sum the terms until |an| and |bb| both are less than tol.
h) What will change in the derivation of the analytical solution if we have ux(0, t) = ux(L, t) = 0 as boundary conditions? And how will you solve the problem with u(0, t) = 0 and ux(L, t) = 0?
Filename: damped_wave1D.
Problem 2.33: General analytical solution of a 2D damped wave equation
Carry out Problem 2.32 in the 2D case: utt + but = c2(uxx + uyy), where (x, y) ∈ (0, Lx) × (0, Ly). Assume a solution on the form u(x, y, t) =
X(x)Y (y)T (t). Filename: damped_wave2D.
The famous diffusion equation, also known as the heat equation, reads
∂u = α∂2u,
∂t ∂x2
where u(x, t) is the unknown function to be solved for, x is a coordinate
in space, and t is time. The coefficient α is the diffusion coefficient and determines how fast u changes in time. A quick short form for the diffusion equation is ut = αuxx.
Compared to the wave equation, utt = c2uxx, which looks very similar, the diffusion equation features solutions that are very different from those of the wave equation. Also, the diffusion equation makes quite different demands to the numerical methods.
Typical diffusion problems may experience rapid change in the very beginning, but then the evolution of u becomes slower and slower. The solution is usually very smooth, and after some time, one cannot recognize the initial shape of u. This is in sharp contrast to solutions of the wave equation where the initial shape is preserved in homogeneous media – the solution is then basically a moving initial condition. The standard wave equation utt = c2uxx has solutions that propagates with speed c forever, without changing shape, while the diffusion equation converges to a stationary solution u ̄(x) as t → ∞. In this limit, ut = 0, and u ̄ is governed by u ̄′′(x) = 0. This stationary limit of the diffusion equation is called the Laplace equation and arises in a very wide range of applications throughout the sciences.
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Diffusion equations
3
248 3 Diffusion equations
It is possible to solve for u(x,t) using an explicit scheme, as we do in Section 3.1, but the time step restrictions soon become much less favorable than for an explicit scheme applied to the wave equation. And of more importance, since the solution u of the diffusion equation is very smooth and changes slowly, small time steps are not convenient and not required by accuracy as the diffusion process converges to a stationary state. Therefore, implicit schemes (as described in Section 3.2) are popular, but these require solutions of systems of algebraic equations. We shall use ready-made software for this purpose, but also program some simple iterative methods. The exposition is, as usual in this book, very basic and focuses on the basic ideas and how to implement. More comprehensive mathematical treatments and classical analysis of the methods are found in lots of textbooks. A favorite of ours in this respect is the one by LeVeque [13]. The books by Strikwerda [17] and by Lapidus and Pinder [12] are also highly recommended as additional material on the topic.
3.1 An explicit method for the 1D diffusion equation
Explicit finite difference methods for the wave equation utt = c2uxx can be used, with small modifications, for solving ut = αuxx as well. The exposition below assumes that the reader is familiar with the basic ideas of discretization and implementation of wave equations from Chapter 2. Readers not familiar with the Forward Euler, Backward Euler, and Crank- Nicolson (or centered or midpoint) discretization methods in time should consult, e.g., Section 1.1 in [9].
3.1.1 The initial-boundary value problem for 1D diffusion
To obtain a unique solution of the diffusion equation, or equivalently, to apply numerical methods, we need initial and boundary conditions. The diffusion equation goes with one initial condition u(x, 0) = I(x), where I is a prescribed function. One boundary condition is required at each point on the boundary, which in 1D means that u must be known, ux must be known, or some combination of them.
We shall start with the simplest boundary condition: u = 0. The complete initial-boundary value diffusion problem in one space dimension can then be specified as
3.1 An explicit method for the 1D diffusion equation
249
∂u=α∂2u+f, x∈(0,L),t∈(0,T] ∂t ∂x2
u(x,0) = I(x), x ∈ [0,L] u(0,t)=0, t>0, u(L,t)=0, t>0.
(3.1)
(3.2) (3.3) (3.4)
With only a first-order derivative in time, only one initial condition is needed, while the second-order derivative in space leads to a demand for two boundary conditions. We have added a source term f = f (x, t), which is convenient when testing implementations.
Diffusion equations like (3.1) have a wide range of applications through- out physical, biological, and financial sciences. One of the most common applications is propagation of heat, where u(x, t) represents the temper- ature of some substance at point x and time t. Other applications are listed in Section 3.8.
3.1.2 Forward Euler scheme
The first step in the discretization procedure is to replace the domain [0, L] × [0, T ] by a set of mesh points. Here we apply equally spaced mesh points
and
xi = i∆x, i = 0,…,Nx,
tn = n∆t, n = 0,…,Nt .
Moreover, uni denotes the mesh function that approximates u(xi,tn) for i = 0,…,Nx and n = 0,…,Nt. Requiring the PDE (3.1) to be fulfilled at a mesh point (xi,tn) leads to the equation
∂ ∂2
∂tu(xi,tn) = α∂x2u(xi,tn)+f(xi,tn), (3.5)
The next step is to replace the derivatives by finite difference approxima- tions. The computationally simplest method arises from using a forward difference in time and a central difference in space:
[Dt+u=αDxDxu+f]ni . (3.6)
250
3 Diffusion equations
Written out,
un+1 −un un
i i =α i+1
−2un +un
i i−1 +fin. (3.7)
∆t ∆x2
We have turned the PDE into algebraic equations, also often called
discrete equations. The key property of the equations is that they are
algebraic, which makes them easy to solve. As usual, we anticipate that
un is already computed such that un+1 is the only unknown in (3.7). ii
(3.8)
(3.9)
Solving with respect to this unknown is easy:
un+1 =un +Fun −2un +un +∆tfn,
i i i+1 i i−1 i where we have introduced the mesh Fourier number:
F = α ∆t . ∆x2
F is the key parameter in the discrete diffusion equation
Note that F is a dimensionless number that lumps the key physical parameter in the problem, α, and the discretization parameters ∆x and ∆t into a single parameter. Properties of the numerical method are critically dependent upon the value of F (see Section 3.3 for details).
The computational algorithm then becomes 1. compute u0i = I(xi) for i = 0,…,Nx
2. for n = 0,1,…,Nt:
a. apply(3.8)foralltheinternalspatialpointsi=1,…,Nx−1
b. settheboundaryvaluesun+1 =0fori=0andi=Nx i
The algorithm is compactly and fully specified in Python:
import numpy as np
x = np.linspace(0, L, Nx+1)
dx = x[1] – x[0]
t = np.linspace(0, T, Nt+1)
dt = t[1] – t[0]
F = a*dt/dx**2
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
# mesh points in space
# mesh points in time
# unknown u at new time level
# u at the previous time level
3.1 An explicit method for the 1D diffusion equation 251
# Set initial condition u(x,0) = I(x)
for i in range(0, Nx+1):
u_n[i] = I(x[i])
for n in range(0, Nt):
# Compute u at inner mesh points
for i in range(1, Nx):
u[i] = u_n[i] + F*(u_n[i-1] – 2*u_n[i] + u_n[i+1]) + \
dt*f(x[i], t[n])
# Insert boundary conditions
u[0] = 0; u[Nx] = 0
# Update u_n before next step
u_n[:]= u
Note that we use a for α in the code, motivated by easy visual mapping between the variable name and the mathematical symbol in formulas.
We need to state already now that the shown algorithm does not pro- duce meaningful results unless F ≤ 1/2. Why is explained in Section 3.3.
3.1.3 Implementation
The file diffu1D_u0.py contains a complete function solver_FE_simple for solving the 1D diffusion equation with u = 0 on the boundary as specified in the algorithm above:
import numpy as np
def solver_FE_simple(I, a, f, L, dt, F, T):
“””
Simplest expression of the computational algorithm
using the Forward Euler method and explicit Python loops.
For this method F <= 0.5 for stability.
"""
import time; t0 = time.clock() # For measuring the CPU time
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1) # Mesh points in time
dx = np.sqrt(a*dt/F)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] - x[0]
dt = t[1] - t[0]
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
# Set initial condition u(x,0) = I(x)
252 3 Diffusion equations
for i in range(0, Nx+1):
u_n[i] = I(x[i])
for n in range(0, Nt):
# Compute u at inner mesh points
for i in range(1, Nx):
u[i] = u_n[i] + F*(u_n[i-1] - 2*u_n[i] + u_n[i+1]) + \
dt*f(x[i], t[n])
# Insert boundary conditions
u[0] = 0; u[Nx] = 0
# Switch variables before next step
#u_n[:] = u # safe, but slow
u_n, u = u, u_n
t1 = time.clock()
return u_n, x, t, t1-t0 # u_n holds latest u
A faster version, based on vectorization of the finite difference scheme, is available in the function solver_FE. The vectorized version replaces the explicit loop
by arithmetics on displaced slices of the u array:
For example, the vectorized version runs 70 times faster than the scalar version in a case with 100 time steps and a spatial mesh of 105 cells.
The solver_FE function also features a callback function such that the user can process the solution at each time level. The callback function looks like user_action(u, x, t, n), where u is the array containing the solution at time level n, x holds all the spatial mesh points, while t holds all the temporal mesh points. Apart from the vectorized loop over the spatial mesh points, the callback function, and a bit more complicated setting of the source f it is not specified (None), the solver_FE function is identical to solver_FE_simple above:
for i in range(1, Nx):
u[i] = u_n[i] + F*(u_n[i-1] - 2*u_n[i] + u_n[i+1]) \
+ dt*f(x[i], t[n])
u[1:Nx] = u_n[1:Nx] + F*(u_n[0:Nx-1] - 2*u_n[1:Nx] + u_n[2:Nx+1]) \
+ dt*f(x[1:Nx], t[n])
# or
u[1:-1] = u_n[1:-1] + F*(u_n[0:-2] - 2*u_n[1:-1] + u_n[2:]) \
+ dt*f(x[1:-1], t[n])
def solver_FE(I, a, f, L, dt, F, T,
user_action=None, version=’scalar’):
"""
Vectorized implementation of solver_FE_simple.
"""
3.1 An explicit method for the 1D diffusion equation 253
import time; t0 = time.clock() # for measuring the CPU time
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1) # Mesh points in time
dx = np.sqrt(a*dt/F)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] - x[0]
dt = t[1] - t[0]
u = np.zeros(Nx+1) # solution array
u_n = np.zeros(Nx+1) # solution at t-dt
# Set initial condition
for i in range(0,Nx+1):
u_n[i] = I(x[i])
if user_action is not None:
user_action(u_n, x, t, 0)
for n in range(0, Nt):
# Update all inner points
if version == ’scalar’:
for i in range(1, Nx):
u[i] = u_n[i] +\
F*(u_n[i-1] - 2*u_n[i] + u_n[i+1]) +\
dt*f(x[i], t[n])
elif version == ’vectorized’:
u[1:Nx] = u_n[1:Nx] + \
F*(u_n[0:Nx-1] - 2*u_n[1:Nx] + u_n[2:Nx+1]) +\
dt*f(x[1:Nx], t[n])
else:
raise ValueError(’version=%s’ % version)
# Insert boundary conditions
u[0]=0; u[Nx]=0
if user_action is not None:
user_action(u, x, t, n+1)
# Switch variables before next step
u_n, u = u, u_n
t1 = time.clock()
return t1-t0
3.1.4 Verification
Exact solution of discrete equations. Before thinking about running the functions in the previous section, we need to construct a suitable test
254 3 Diffusion equations
example for verification. It appears that a manufactured solution that is linear in time and at most quadratic in space fulfills the Forward Euler scheme exactly. With the restriction that u = 0 for x = 0, L, we can try the solution
u(x, t) = 5tx(L − x) . Inserted in the PDE, it requires a source term
f (x, t) = 10αt + 5x(L − x) .
With the formulas from Appendix A.4 we can easily check that the
manufactured u fulfills the scheme:
[Dt+u = αDxDxu + f]ni = [5x(L − x)Dt+t = 5tαDxDx(xL − x2)+ 10αt + 5x(L − x)]ni
=[5x(L−x)=5tα(−2)+10αt+5x(L−x)]ni , which is a 0=0 expression. The computation of the source term, given
any u, is easily automated with sympy:
Now we can choose any expression for u and automatically get the suitable source term f. However, the manufactured solution u will in general not be exactly reproduced by the scheme: only constant and linear functions are differentiated correctly by a forward difference, while only constant, linear, and quadratic functions are differentiated exactly by a [DxDxu]ni difference.
The numerical code will need to access the u and f above as Python functions. The exact solution is wanted as a Python function u_exact(x, t), while the source term is wanted as f(x, t). The pa- rameters a and L in u and f above are symbols and must be replaced by float objects in a Python function. This can be done by redefining a and L as float objects and performing substitutions of symbols by numbers in u and f. The appropriate code looks like this:
import sympy as sym
x, t, a, L = sym.symbols(’x t a L’)
u = x*(L-x)*5*t
def pde(u):
return sym.diff(u, t) - a*sym.diff(u, x, x)
f = sym.simplify(pde(u))
3.1 An explicit method for the 1D diffusion equation 255
a = 0.5
L = 1.5
u_exact = sym.lambdify(
[x, t], u.subs(’L’, L).subs(’a’, a), modules=’numpy’)
f = sym.lambdify(
[x, t], f.subs(’L’, L).subs(’a’, a), modules=’numpy’)
I = lambda x: u_exact(x, 0)
Here we also make a function I for the initial condition.
The idea now is that our manufactured solution should be exactly reproduced by the code (to machine precision). For this purpose we make a test function for comparing the exact and numerical solutions at the
end of the time interval:
def test_solver_FE():
# Define u_exact, f, I as explained above
dx=L/3 #3cells F = 0.5
dt = F*dx**2
u, x, t, cpu = solver_FE_simple(
I=I, a=a, f=f, L=L, dt=dt, F=F, T=2)
u_e = u_exact(x, t[-1])
diff = abs(u_e - u).max()
tol = 1E-14
assert diff < tol, ’max diff solver_FE_simple: %g’ % diff
u, x, t, cpu = solver_FE(
I=I, a=a, f=f, L=L, dt=dt, F=F, T=2,
user_action=None, version=’scalar’)
u_e = u_exact(x, t[-1])
diff = abs(u_e - u).max()
tol = 1E-14
assert diff < tol, ’max diff solver_FE, scalar: %g’ % diff
u, x, t, cpu = solver_FE(
I=I, a=a, f=f, L=L, dt=dt, F=F, T=2,
user_action=None, version=’vectorized’)
u_e = u_exact(x, t[-1])
diff = abs(u_e - u).max()
tol = 1E-14
assert diff < tol, ’max diff solver_FE, vectorized: %g’ % diff
The critical value F = 0.5
We emphasize that the value F=0.5 is critical: the tests above will fail if F has a larger value. This is because the Forward Euler scheme is unstable for F > 1/2.
256
3 Diffusion equations
ThereadermaywonderifF =1/2issafeorifF <1/2shouldbe required. Experiments show that F = 1/2 works fine for ut = αuxx, so there is no accumulation of rounding errors in this case and hence no need to introduce any safety factor to keep F away from the limiting value 0.5.
Checking convergence rates. If our chosen exact solution does not satisfy the discrete equations exactly, we are left with checking the con- vergence rates, just as we did previously for the wave equation. However, with the Euler scheme here, we have different accuracies in time and space, since we use a second order approximation to the spatial derivative and a first order approximation to the time derivative. Thus, we must expect different convergence rates in time and space. For the numerical error,
E = Ct∆tr + Cx∆xp,
we should get convergence rates r = 1 and p = 2 (Ct and Cx are unknown constants). As previously, in Section 2.2.3, we simplify matters by introducing a single discretization parameter h:
h = ∆t, ∆x = Khr/p,
where K is any constant. This allows us to factor out only one discretiza-
tion parameter h from the formula:
E=Cth+Cx(Kr/p)p =C ̃hr, C ̃=Ct+CsKr.
The computed rate r should approach 1 with increasing resolution.
It is tempting, for simplicity, to choose K = 1, which gives ∆x = hr/p, expected to be √∆t. However, we have to control the stability
requirement: F ≤ 1 , which means 2
α∆t ≤ 1 ⇒ ∆x ≥ √2αh1/2, ∆x2 2
√
implying that K = stability limit F = 1/2.
2α is our choice in experiments where we lie on the
3.1 An explicit method for the 1D diffusion equation 257
3.1.5 Numerical experiments
When a test function like the one above runs silently without errors, we have some evidence for a correct implementation of the numerical method. The next step is to do some experiments with more interesting solutions.
We target a scaled diffusion problem where x/L is a new spatial coordinate and αt/L2 is a new time coordinate. The source term f is omitted, and u is scaled by maxx∈[0,L] |I(x)| (see Section 3.2 in [11] for details). The governing PDE is then
∂u = ∂2u, ∂t ∂x2
in the spatial domain [0, L], with boundary conditions u(0) = u(1) = 0. Two initial conditions will be tested: a discontinuous plug,
0, |x − L/2| > 0.1 I(x) = 1, otherwise
and a smooth Gaussian function,
I(x)=e 2σ2 .
The functions plug and gaussian in diffu1D_u0.py run the two cases, respectively:
− 1 (x−L/2)2
def plug(scheme=’FE’, F=0.5, Nx=50):
L = 1.
a = 1.
T = 0.1
# Compute dt from Nx and F
dx = L/Nx; dt = F/a*dx**2
def I(x):
“””Plug profile as initial condition.”””
if abs(x-L/2.0) > 0.1:
return 0
else:
return 1
cpu = viz(I, a, L, dt, F, T,
umin=-0.1, umax=1.1,
scheme=scheme, animate=True, framefiles=True)
print ’CPU time:’, cpu
def gaussian(scheme=’FE’, F=0.5, Nx=50, sigma=0.05):
L = 1.
a = 1.
258 3 Diffusion equations
T = 0.1
# Compute dt from Nx and F
dx = L/Nx; dt = F/a*dx**2
def I(x):
“””Gaussian profile as initial condition.”””
return exp(-0.5*((x-L/2.0)**2)/sigma**2)
u, cpu = viz(I, a, L, dt, F, T,
umin=-0.1, umax=1.1,
scheme=scheme, animate=True, framefiles=True)
print ’CPU time:’, cpu
These functions make use of the function viz for running the solver and visualizing the solution using a callback function with plotting:
def viz(I, a, L, dt, F, T, umin, umax,
scheme=’FE’, animate=True, framefiles=True):
def plot_u(u, x, t, n):
plt.plot(x, u, ’r-’, axis=[0, L, umin, umax],
title=’t=%f’ % t[n])
if framefiles:
plt.savefig(’tmp_frame%04d.png’ % n)
if t[n] == 0:
time.sleep(2)
elif not framefiles:
# It takes time to write files so pause is needed
# for screen only animation
time.sleep(0.2)
user_action = plot_u if animate else lambda u,x,t,n: None
cpu = eval(’solver_’+scheme)(I, a, L, dt, F, T,
user_action=user_action)
return cpu
Notice that this viz function stores all the solutions in a list solutions in the callback function. Modern computers have hardly any problem with storing a lot of such solutions for moderate values of Nx in 1D problems, but for 2D and 3D problems, this technique cannot be used and solutions must be stored in files.
Our experiments employ a time step ∆t = 0.0002 and simulate for t ∈ [0, 0.1]. First we try the highest value of F : F = 0.5. This resolution corresponds to Nx = 50. A possible terminal command is
Terminal> python -c ’from diffu1D_u0 import gaussian
gaussian(“solver_FE”, F=0.5, dt=0.0002)’
Terminal
3.1 An explicit method for the 1D diffusion equation 259
The u(x, t) curve as a function of x is shown in Figure 3.1 at four time levels.
Movie 3: https://raw.githubusercontent.com/hplgit/fdm-book/master/doc/ .src/book/mov- diffu/diffu1D_u0_FE_plug/movie.ogg
We see that the curves have saw-tooth waves in the beginning of the simulation. This non-physical noise is smoothed out with time, but solutions of the diffusion equations are known to be smooth, and this numerical solution is definitely not smooth. Lowering F helps: F ≤ 0.25 gives a smooth solution, see Figure 3.2 (and a movie).
Increasing F slightly beyond the limit 0.5, to F = 0.51, gives growing, non-physical instabilities, as seen in Figure 3.3.
t=0.002000
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.050000
Fig. 3.1 Forward Euler scheme for F = 0.5.
Instead of a discontinuous initial condition we now try the smooth Gaussian function for I(x). A simulation for F = 0.5 is shown in Fig- ure 3.4. Now the numerical solution is smooth for all times, and this is true for any F ≤ 0.5.
Experiments with these two choices of I(x) reveal some important observations:
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.100000
0.4 0.6 0.8 1.0
260
3 Diffusion equations
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.050000
Fig. 3.2 Forward Euler scheme for F = 0.25.
• The Forward Euler scheme leads to growing solutions if F > 1 . 2
• I(x) as a discontinuous plug leads to a saw tooth-like noise for F = 1,
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6
t=0.100000
0.8 1.0
t=0.002000
0.4 0.6
0.8 1.0
which is absent for F ≤ 1. 4
2
• The smooth Gaussian initial function leads to a smooth solution for
all relevant F values (F ≤ 1 ). 2
3.1 An explicit method for the 1D diffusion equation
261
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.010000
Fig. 3.3 Forward Euler scheme for F = 0.51.
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6
t=0.015000
0.8 1.0
t=0.005000
0.4 0.6
0.8 1.0
262
3 Diffusion equations
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.050000
Fig. 3.4 Forward Euler scheme for F = 0.5.
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.100000
t=0.002000
0.4 0.6 0.8 1.0
3.2 Implicit methods for the 1D diffusion equation 263
3.2 Implicit methods for the 1D diffusion equation
Simulations with the Forward Euler scheme shows that the time step restriction, F ≤ 1 , which means ∆t ≤ ∆x2/(2α), may be relevant in the
2
beginning of the diffusion process, when the solution changes quite fast, but as time increases, the process slows down, and a small ∆t may be inconvenient. By using implicit schemes, which lead to coupled systems of linear equations to be solved at each time level, any size of ∆t is possible (but the accuracy decreases with increasing ∆t). The Backward Euler scheme, derived and implemented below, is the simplest implicit scheme for the diffusion equation.
3.2.1 Backward Euler scheme
We now apply a backward difference in time in (3.5), but the same central difference in space:
which written out reads
un −un−1 i i
un =α i+1
−2un +un
i i−1 +fin.
[Dt−u = DxDxu + f]ni ,
(3.10)
(3.11) Now we assume un−1 is already computed, but all quantities at the
“new” time level n are unknown. This time it is not possible to solve with respect to uni because this value couples to its neighbors in space, uni−1 and uni+1, which are also unknown. Let us examine this fact for the casewhenNx =3.Equation(3.11)writtenfori=1,…,Nx−1=1,2 becomes
i
∆t
∆x2
un −un−1 un −2un +un
1 1 =α2 1 0+f1n
The boundary values un0 and un3 are known as zero. Collecting the un- known new values un1 and un2 on the left-hand side and multiplying by ∆t gives
∆t ∆x2
un −un−1 un −2un +un
(3.12) (3.13)
2 2 =α3 2 1+f2n ∆t ∆x2
264 3 Diffusion equations
(1+2F)un −Fun =un−1 +∆tfn, (3.14) 1211
−Fun +(1+2F)un =un−1 +∆tfn. (3.15) 1222
This is a coupled 2 × 2 system of algebraic equations for the unknowns un1 and un2 . The equivalent matrix form is
1+2F −F un un−1 +∆tfn 1=1 1
−F 1+2F un un−1 +∆tfn 222
Terminology: implicit vs. explicit methods
Discretization methods that lead to a coupled system of equations for the unknown function at a new time level are said to be implicit methods. The counterpart, explicit methods, refers to discretization methods where there is a simple explicit formula for the values of the unknown function at each of the spatial mesh points at the new time level. From an implementational point of view, implicit methods are more comprehensive to code since they require the solution of coupled equations, i.e., a matrix system, at each time level. With explicit methods we have a closed-form formula for the value of the unknown at each mesh point.
Very often explicit schemes have a restriction on the size of the time step that can be relaxed by using implicit schemes. In fact, implicit schemes are frequently unconditionally stable, so the size of the time step is governed by accuracy and not by stability. This is the great advantage of implicit schemes.
In the general case, (3.11) gives rise to a coupled (Nx − 1) × (Nx − 1) systemofalgebraicequationsforalltheunknownuni attheinteriorspatial points i = 1, . . . , Nx − 1. Collecting the unknowns on the left-hand side,
(3.11) can be written
−Fun +(1+2F)un −Fun =un−1, (3.16)
i−1 i i+1 i−1
for i = 1, . . . , Nx − 1. One can either view these equations as a system forwheretheuni valuesattheinternalmeshpoints,i=1,…,Nx−1, are unknown, or we may append the boundary values un0 and unNx to the system.Inthelattercase,alluni fori=0,…,Nxareconsideredunknown, and we must add the boundary equations to the Nx − 1 equations in
(3.16):
3.2 Implicit methods for the 1D diffusion equation
265
A=
The nonzero elements are given by
Ai,i−1 = −F Ai,i = 1 + 2F
Ai,i+1 = −F
. .
. .
. .
.. . 0 Ai,i−1 Ai,i Ai,i+1 . .
.. .. .. .. ….0
…… . . . ANx−1,Nx
un0 =0, unNx = 0 .
(3.17) (3.18)
A coupled system of algebraic equations can be written on matrix form, and this is important if we want to call up ready-made software for solving the system. The equations (3.16) and (3.17)–(3.18) correspond to the matrix equation
AU = b
where U = (un0 , . . . , unNx ), and the matrix A has the following structure:
A0,0 A0,1 0 ··· ··· ··· ··· ··· 0
.. . A1,0 A1,1 A1,2 . .
.. 0 A2,1 A2,2 A2,3 .. .
….. … ….0 .
. .. .. .. .. .. . …… .
0 ··· ··· ··· ··· ··· 0 ANx,Nx−1 ANx,Nx
(3.19)
in the equations for internal points, i = 1, . . . , Nx − 1. The first and last equation correspond to the boundary condition, where we know the solution, and therefore we must have
(3.20) (3.21) (3.22)
266
3 Diffusion equations
A0,0 = 1,
A0,1 = 0, ANx,Nx−1 = 0, ANx,Nx =1.
The right-hand side b is written as
b0
with
(3.23) (3.24) (3.25) (3.26)
(3.27)
(3.28) (3.29) (3.30)
i bNx =0.
b1 .
.
. b= bi
. .
bNx
b0 = 0,
bi=un−1, i=1,…,Nx−1,
We observe that the matrix A contains quantities that do not change in time. Therefore, A can be formed once and for all before we enter the recursive formulas for the time evolution. The right-hand side b, however, must be updated at each time step. This leads to the following computational algorithm, here sketched with Python code:
x = np.linspace(0, L, Nx+1)
dx = x[1] – x[0]
t = np.linspace(0, T, N+1)
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
# mesh points in space
# mesh points in time
# unknown u at new time level
# u at the previous time level
# Data structures for the linear system
A = np.zeros((Nx+1, Nx+1))
b = np.zeros(Nx+1)
for i in range(1, Nx):
A[i,i-1] = -F
A[i,i+1] = -F
A[i,i] = 1 + 2*F
A[0,0] = A[Nx,Nx] = 1
# Set initial condition u(x,0) = I(x)
3.2 Implicit methods for the 1D diffusion equation 267
for i in range(0, Nx+1):
u_n[i] = I(x[i])
import scipy.linalg
for n in range(0, Nt):
# Compute b and solve linear system
for i in range(1, Nx):
b[i] = -u_n[i]
b[0] = b[Nx] = 0
u[:] = scipy.linalg.solve(A, b)
# Update u_n before next step
u_n[:] = u
Regarding verification, the same considerations apply as for the For- ward Euler method (Section 3.1.4).
3.2.2 Sparse matrix implementation
We have seen from (3.19) that the matrix A is tridiagonal. The code
segment above used a full, dense matrix representation of A, which stores
a lot of values we know are zero beforehand, and worse, the solution
algorithm computes with all these zeros. With Nx + 1 unknowns, the work
by the solution algorithm is 1 (Nx + 1)3 and the storage requirements 3
(Nx + 1)2. By utilizing the fact that A is tridiagonal and employing corresponding software tools that work with the three diagonals, the work and storage demands can be proportional to Nx only. This leads to a dramatic improvement: with Nx = 200, which is a realistic resolution, the code runs about 40,000 times faster and reduces the storage to just 1.5%! It is no doubt that we should take advantage of the fact that A is tridiagonal.
The key idea is to apply a data structure for a tridiagonal or sparse matrix. The scipy.sparse package has relevant utilities. For example, we can store only the nonzero diagonals of a matrix. The package also has linear system solvers that operate on sparse matrix data structures. The code below illustrates how we can store only the main diagonal and the upper and lower diagonals.
# Representation of sparse matrix and right-hand side
main = np.zeros(Nx+1)
lower = np.zeros(Nx)
upper = np.zeros(Nx)
b = np.zeros(Nx+1)
268 3 Diffusion equations
# Precompute sparse matrix
main[:] = 1 + 2*F
lower[:] = -F
upper[:] = -F
# Insert boundary conditions
main[0] = 1
main[Nx] = 1
A = scipy.sparse.diags(
diagonals=[main, lower, upper],
offsets=[0, -1, 1], shape=(Nx+1, Nx+1),
format=’csr’)
print A.todense() # Check that A is correct
# Set initial condition
for i in range(0,Nx+1):
u_n[i] = I(x[i])
for n in range(0, Nt):
b = u_n
b[0] = b[-1] = 0.0 # boundary conditions
u[:] = scipy.sparse.linalg.spsolve(A, b)
u_n[:] = u
The scipy.sparse.linalg.spsolve function utilizes the sparse storage structure of A and performs, in this case, a very efficient Gaussian elimination solve.
The program diffu1D_u0.py contains a function solver_BE, which implements the Backward Euler scheme sketched above. As mentioned in Section 3.1.2, the functions plug and gaussian runs the case with I(x) as a discontinuous plug or a smooth Gaussian function. All experiments point to two characteristic features of the Backward Euler scheme: 1) it is always stable, and 2) it always gives a smooth, decaying solution.
3.2.3 Crank-Nicolson scheme
The idea in the Crank-Nicolson scheme is to apply centered differences in space and time, combined with an average in time. We demand the PDE to be fulfilled at the spatial mesh points, but midway between the points in the time mesh:
∂ ∂2
∂tu(xi,tn+1 ) = α∂x2u(xi,tn+1 )+f(xi,tn+1 ),
222
for i = 1, . . . , Nx − 1 and n = 0, . . . , Nt − 1.
With centered differences in space and time, we get
3.2 Implicit methods for the 1D diffusion equation
269
n+1 [Dtu=αDxDxu+f] 2 .
On the right-hand side we get an expression
1 n+1 n+1 n+1
n+1 u2−2u2+u2 +f2.
i
∆x2
This expression is problematic since u 2
i−1 i i+1 i
n+1 1 u 2 ≈ un+un+1 .
n+1
is not one of the unknowns we by an arithmetic average:
i n+1
compute. A possibility is to replace u 2 i
i2ii
In the compact notation, we can use the arithmetic average notation ut:
n+1 [Dtu=αDxDxut+f] 2 .
n+1
i
We can also use an average for f
i
2 : [Dtu=αDxDxut+f] 2.
t n+1 i
After writing out the differences and average, multiplying by ∆t, and collecting all unknown terms on the left-hand side, we get
un+1−1F(un+1−2un+1+un+1)=un+1F(un −2un+un ) i 2 i−1 i i+1 i 2 i−1 i i+1
1fn+1 + 1fn . (3.31) 2i 2i
Also here, as in the Backward Euler scheme, the new unknowns un+1, i−1
un+1, and un+1 are coupled in a linear system AU = b, where A has the i i+1
same structure as in (3.19), but with slightly different entries: Ai,i−1 = −1F
Ai,i+1 = −1F 2
(3.32) (3.33) (3.34)
2 Ai,i = 1 + F
in the equations for internal points, i = 1, . . . , Nx − 1. The equations for the boundary points correspond to
270
3 Diffusion equations
A0,0 = 1,
A0,1 = 0, ANx,Nx−1 = 0, ANx,Nx =1.
The right-hand side b has entries b0 = 0,
bi=un−1+1(fin+fn+1), i=1,…,Nx−1, i2i
bNx =0.
(3.35) (3.36) (3.37) (3.38)
(3.39) (3.40) (3.41)
When verifying some implementation of the Crank-Nicolson scheme by convergence rate testing, one should note that the scheme is second order accurate in both space and time. The numerical error then reads
E = Ct∆tr + Cx∆xr,
where r = 2 (Ct and Cx are unknown constants, as before). When
introducing a single discretization parameter, we may now simply choose h = ∆x = ∆t,
which gives
E = Cthr + Cxhr = (Ct + Cx)hr,
where r should approach 2 as resolution is increased in the convergence
rate computations.
3.2.4 The unifying θ rule For the equation
∂u = G(u), ∂t
where G(u) is some spatial differential operator, the θ-rule looks like un+1 − un
i i =θG(un+1)+(1−θ)G(un). ∆ti i
3.2 Implicit methods for the 1D diffusion equation 271
The important feature of this time discretization scheme is that we can implement one formula and then generate a family of well-known and widely used schemes:
• θ = 0 gives the Forward Euler scheme in time
• θ = 1 gives the Backward Euler scheme in time
• θ = 1 gives the Crank-Nicolson scheme in time 2
In the compact difference notation, we write the θ rule as [Dtu = αDxDxu]n+θ .
We have that tn+θ = θtn+1 + (1 − θ)tn.
Applied to the 1D diffusion problem, the θ-rule gives
un+1 −un un+1 −2un+1 +un+1 un
i i =α θ i+1 i i−1 +(1−θ) i+1
−2un +un i i−1
∆t ∆x2 ∆x2 + θfn+1 + (1 − θ)fn .
ii
This scheme also leads to a matrix system with entries Ai,i−1 =−Fθ, Ai,i =1+2Fθ ,Ai,i+1 =−Fθ,
while right-hand side entry bi is
bi = uni +F(1−θ)uni+1 −2uni +uni−1 +∆tθfn+1 +∆t(1−θ)fin .
∆x2 i
The corresponding entries for the boundary points are as in the Backward Euler and Crank-Nicolson schemes listed earlier.
Note that convergence rate testing with implementations of the theta rule must adjust the error expression according to which of the underlying schemes is actually being run. That is, if θ = 0 (i.e., Forward Euler) or θ = 1 (i.e., Backward Euler), there should be first order convergence, whereas with θ = 0.5 (i.e., Crank-Nicolson), one should get second order convergence (as outlined in previous sections).
3.2.5 Experiments
We can repeat the experiments from Section 3.1.5 to see if the Backward Euler or Crank-Nicolson schemes have problems with sawtooth-like noise
272 3 Diffusion equations
when starting with a discontinuous initial condition. We can also verify that we can have F > 1, which allows larger time steps than in the
Forward Euler method.
2
t=0.002000
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.050000
Fig. 3.5 Backward Euler scheme for F = 0.5.
The Backward Euler scheme always produces smooth solutions for any
F . Figure 3.5 shows one example. Note that the mathematical discontinu-
ity at t = 0 leads to a linear variation on a mesh, but the approximation
to a jump becomes better as N increases. In our simulation we specify ∆t x√
and F, and Nx is set to L/ α∆t/F. Since Nx ∼ F, the discontinuity looks sharper in the Crank-Nicolson simulations with larger F.
The Crank-Nicolson method produces smooth solutions for small F, F ≤ 1, but small noise gets more and more evident as F increases.
2
Figures 3.6 and 3.7 demonstrate the effect for F = 3 and F = 10, respectively. Section 3.3 explains why such noise occur.
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.100000
0.4 0.6 0.8 1.0
3.2 Implicit methods for the 1D diffusion equation
273
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.001000
Fig. 3.6 Crank-Nicolson scheme for F = 3.
3.2.6 The Laplace and Poisson equation
The Laplace equation, ∇2u = 0, and the Poisson equation, −∇2u = f, occur in numerous applications throughout science and engineering. In 1D these equations read u′′(x) = 0 and −u′′(x) = f(x), respectively. We can solve 1D variants of the Laplace equations with the listed software, because we can interpret uxx = 0 as the limiting solution of ut = αuxx when u reaches a steady state limit where ut → 0. Similarly, Poisson’s equation −uxx = f arises from solving ut = uxx + f and letting t → ∞ sout →0.
Technically in a program, we can simulate t → ∞ by just taking one large time step: ∆t → ∞. In the limit, the Backward Euler scheme gives
un+1 − 2un+1 + un+1
− i+1 i i−1 =fn+1,
∆x2 i
which is nothing but the discretization [−DxDxu = f]n+1 = 0 of −uxx = i
f.
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6
t=0.002000
0.8 1.0
t=0.000400
0.4 0.6
0.8 1.0
274
3 Diffusion equations
t=0.000000
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.001000
Fig. 3.7 Crank-Nicolson scheme for F = 10.
The result above means that the Backward Euler scheme can solve the limit equation directly and hence produce a solution of the 1D Laplace equation. With the Forward Euler scheme we must do the time stepping since ∆t > ∆x2/α is illegal and leads to instability. We may interpret this time stepping as solving the equation system from −uxx = f by iterating on a pseudo time variable.
3.3 Analysis of schemes for the diffusion equation
The numerical experiments in Sections 3.1.5 and 3.2.5 reveal that there are some numerical problems with the Forward Euler and Crank-Nicolson schemes: sawtooth-like noise is sometimes present in solutions that are, from a mathematical point of view, expected to be smooth. This section presents a mathematical analysis that explains the observed behavior and arrives at criteria for obtaining numerical solutions that reproduce the qualitative properties of the exact solutions. In short, we shall explain what is observed in Figures 3.1-3.7.
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2
0.4 0.6 0.8 1.0
t=0.002000
t=0.000400
0.4 0.6 0.8 1.0
3.3 Analysis of schemes for the diffusion equation 275
3.3.1 Properties of the solution
A particular characteristic of diffusive processes, governed by an equation like
ut = αuxx, (3.42)
is that the initial shape u(x,0) = I(x) spreads out in space with time, along with a decaying amplitude. Three different examples will illustrate the spreading of u in space and the decay in time.
Similarity solution. The diffusion equation (3.42) admits solutions that √
depend on η = (x − c)/ 4αt for a given value of c. One particular solution is
where
u(x, t) = a erf(η) + b, 2 η −ζ2
(3.43)
(3.44)
erf(η) = √π
e dζ,
is the error function, and a and b are arbitrary constants. The error function lies in (−1, 1), is odd around η = 0, and goes relatively quickly to ±1:
lim erf(η) = −1, η→−∞
lim erf(η) = 1, η→∞
erf(η) = −erf(−η), erf(0) = 0,
erf(2) = 0.99532227, erf(3) = 0.99997791 .
As t → 0, the error function approaches a step function centered at x = c. For a diffusion problem posed on the unit interval [0, 1], we may choose the step at x = 1/2 (meaning c = 1/2), a = −1/2, b = 1/2. Then
1 x − 1 1 x − 1
u(x, t) = 1 − erf √ 2 = erfc √ 2 , (3.45) 2 4αt 2 4αt
0
276 3 Diffusion equations
where we have introduced the complementary error function erfc(η) = 1 − erf(η). The solution (3.45) implies the boundary conditions
1 u(0,t)= 2
−1/2
√4αt , (3.46)
1/2
√4αt . (3.47)
1−erf
1/2 on [0, 1].
Solution for a Gaussian pulse. The standard diffusion equation ut =
1 u(1,t)= 2
1−erf
For small enough t, u(0,t) ≈ 1 and u(1,t) ≈ 1, but as t → ∞, u(x,t) →
αuxx admits a Gaussian function as solution:
1 (x−c)2
u(x, t) = √4παt exp − 4αt . (3.48)
At t = 0 this is a Dirac delta function, so for computational purposes
one must start to view the solution at some time t = tε > 0. Replacing t
by tε + t in (3.48) makes it easy to operate with a (new) t that starts at
t = 0 with an initial condition with a finite width. The important feature
of (3.48) is that the standard deviation σ of a sharp initial Gaussian
2αt, making the pulse diffuse Solution for a sine component. Also, (3.42) admits a solution of the
pulse increases in time according to σ = and flatten out.
form
u(x, t) = Qe−at sin (kx) . (3.49) The parameters Q and k can be freely chosen, while inserting (3.49) in
(3.42) gives the constraint
a = −αk2 .
A very important feature is that the initial shape I(x) = Qsinkx undergoes a damping exp(−αk2t), meaning that rapid oscillations in space, corresponding to large k, are very much faster dampened than slow oscillations in space, corresponding to small k. This feature leads to a smoothing of the initial condition with time. (In fact, one can use a few steps of the diffusion equation as a method for removing noise in signal processing.) To judge how good a numerical method is, we may
√
3.3 Analysis of schemes for the diffusion equation 277
look at its ability to smoothen or dampen the solution in the same way as the PDE does.
The following example illustrates the damping properties of (3.49). We consider the specific problem
ut =uxx, x∈(0,1), t∈(0,T], u(0,t) = u(1,t) = 0, t ∈ (0,T],
u(x, 0) = sin(πx) + 0.1 sin(100πx) .
The initial condition has been chosen such that adding two solutions like
(3.49) constructs an analytical solution to the problem:
u(x, t) = e−π2t sin(πx) + 0.1e−π2104t sin(100πx) . (3.50)
Figure 3.8 illustrates the rapid damping of rapid oscillations sin(100πx) and the very much slower damping of the slowly varying sin(πx) term. After about t = 0.5 · 10−4 the rapid oscillations do not have a visible amplitude, while we have to wait until t ∼ 0.5 before the amplitude of the long wave sin(πx) becomes very small.
3.3.2 Analysis of discrete equations
A counterpart to (3.49) is the complex representation of the same function: u(x, t) = Qe−ateikx,
where i = √−1 is the imaginary unit. We can add such functions, often referred to as wave components, to make a Fourier representation of a general solution of the diffusion equation:
u(x, t) ≈ bke−αk2teikx, (3.51) k∈K
where K is a set of an infinite number of k values needed to construct the solution. In practice, however, the series is truncated and K is a finite set of k values needed to build a good approximate solution. Note that (3.50) is a special case of (3.51) where K = {π, 100π}, bπ = 1, and b100π = 0.1.
278 3 Diffusion equations
1.0
t=0.00E+00
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
x
0.6 0.8 1.0
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
x
0.6 0.8 1.0
t=4.67E-05
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
x
0.6 0.8 1.0
t=2.33E-01
t=4.67E-01
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
x
0.6 0.8 1.0
Fig. 3.8 Evolution of the solution of a diffusion problem: initial condition (upper left), 1/100 reduction of the small waves (upper right), 1/10 reduction of the long wave (lower left), and 1/100 reduction of the long wave (lower right).
The amplitudes bk of the individual Fourier waves must be determined from the initial condition. At t = 0 we have u ≈ k bk exp (ikx) and find K and bk such that
I(x) ≈ bkeikx . (3.52) k∈K
(The relevant formulas for bk come from Fourier analysis, or equivalently, a least-squares method for approximating I(x) in a function space with basis exp (ikx).)
Much insight about the behavior of numerical methods can be obtained by investigating how a wave component exp (−αk2t) exp (ikx) is treated by the numerical scheme. It appears that such wave components are also solutions of the schemes, but the damping factor exp(−αk2t) varies among the schemes. To ease the forthcoming algebra, we write the damping factor as An. The exact amplification factor corresponding to A is Ae = exp (−αk2∆t).
uu
uu
3.3 Analysis of schemes for the diffusion equation 279
3.3.3 Analysis of the finite difference schemes
We have seen that a general solution of the diffusion equation can be built as a linear combination of basic components
e−αk2teikx .
A fundamental question is whether such components are also solutions of the finite difference schemes. This is indeed the case, but the amplitude exp(−αk2t) might be modified (which also happens when solving the ODE counterpart u′ = −αu). We therefore look for numerical solutions of the form
unq = Aneikq∆x = Aneikx, (3.53)
where the amplification factor A must be determined by inserting the component into an actual scheme. Note that An means A raised to the power of n, n being the index in the time mesh, while the superscript n in unq just denotes u at time tn.
Stability. The exact amplification factor is Ae = exp(−α2k2∆t). We should therefore require |A| < 1 to have a decaying numerical solution as well. If −1 ≤ A < 0, An will change sign from time level to time level, and we get stable, non-physical oscillations in the numerical solutions that are not present in the exact solution.
Accuracy. To determine how accurately a finite difference scheme treats one wave component (3.53), we see that the basic deviation from the exact solution is reflected in how well An approximates Ane , or how well A approximates Ae. We can plot Ae and the various expressions for A, and we can make Taylor expansions of A/Ae to see the error more analytically.
Truncation error. As an alternative to examining the accuracy of the damping of a wave component, we can perform a general truncation error analysis as explained in Appendix B. Such results are more general, but less detailed than what we get from the wave component analysis. The truncation error can almost always be computed and represents the error in the numerical model when the exact solution is substituted into the equations. In particular, the truncation error analysis tells the order of the scheme, which is of fundamental importance when verifying codes based on empirical estimation of convergence rates.
280 3 Diffusion equations
3.3.4 Analysis of the Forward Euler scheme
The Forward Euler finite difference scheme for ut = αuxx can be written as
[Dt+u = αDxDxu]nq .
Inserting a wave component (3.53) in the scheme demands calculating
the terms
and
eikq∆x[Dt+A]n = eikq∆xAn A − 1, ∆t
n ikx n ikq∆x 4 2 k∆x A DxDx[e ]q = A −e ∆x2 sin 2 .
Inserting these terms in the discrete equation and dividing by Aneikq∆x leads to
and consequently
where
A − 1 4 2 k∆x ∆t=−α∆x2sin 2 ,
A = 1−4F sin2 p
F = α∆t ∆x2
(3.54)
(3.55)
is the numerical Fourier number, and p = k∆x/2. The complete numerical solution is then
unq =1−4Fsin2pneikq∆x. (3.56)
Stability. We easily see that A ≤ 1. However, the A can be less than −1, which will lead to growth of a numerical wave component. The criterion A ≥ −1 implies
4F sin2(p/2) ≤ 2 .
The worst case is when sin2(p/2) = 1, so a sufficient criterion for stability is
3.3 Analysis of schemes for the diffusion equation
281
F ≤ 1, 2
or expressed as a condition on ∆t:
∆t ≤ 2α
(3.57)
2
for fine spatial meshes.
Accuracy. Since A is expressed in terms of F and the parameter we now call p = k∆x/2, we should also express Ae by F and p. The exponent in Ae is −αk2∆t, which equals −F k2∆x2 = −F 4p2. Consequently,
Ae = exp (−αk2∆t) = exp (−4F p2) .
All our A expressions as well as Ae are now functions of the two dimen- sionless parameters F and p.
Computing the Taylor series expansion of A/Ae in terms of F can easily be done with aid of sympy:
∆x2
Note that halving the spatial mesh size, ∆x → 1 ∆x, requires ∆t to be
.
reduced by a factor of 1/4. The method hence becomes very expensive
(3.58)
def A_exact(F, p):
return exp(-4*F*p**2)
def A_FE(F, p):
return 1 - 4*F*sin(p)**2
from sympy import *
F, p = symbols(’F p’)
A_err_FE = A_FE(F, p)/A_exact(F, p)
print A_err_FE.series(F, 0, 6)
The result is
A =1−4Fsin2p+2Fp2−16F2p2sin2p+8F2p4+···
Ae
Recalling that F = α∆t/∆x2, p = k∆x/2, and that sin2 p ≤ 1, we realize
that the dominating terms in A/Ae are at most
1−4α ∆t +α∆t−4α2∆t2 +α2∆t2∆x2 +··· .
∆x2
Truncation error. We follow the theory explained in Appendix B. The
recipe is to set up the scheme in operator notation and use formulas from Appendix B.2.4 to derive an expression for the residual. The details are documented in Appendix B.6.1. We end up with a truncation error
282
3 Diffusion equations
Rin =O(∆t)+O(∆x2).
Although this is not the true error ue(xi, tn) − uni , it indicates that the
true error is of the form
E = Ct∆t + Cx∆x2 for two unknown constants Ct and Cx.
3.3.5 Analysis of the Backward Euler scheme
Discretizing ut = αuxx by a Backward Euler scheme, [Dt−u = αDxDxu]nq ,
and inserting a wave component (3.53), leads to calculations similar to those arising from the Forward Euler scheme, but since
ikq∆x − n n ikq∆x1−A−1 e[DtA]=Ae ∆t,
we get
and then
1 − A−1 4 2 k∆x ∆t =−α∆x2 sin 2
,
A = 1+4F sin2 p−1 . The complete numerical solution can be written
(3.59)
unq =1+4Fsin2p−neikq∆x.
Stability. We see from (3.59) that 0 < A < 1, which means that all
(3.60) numerical wave components are stable and non-oscillatory for any ∆t > 0.
Truncation error. The derivation of the truncation error for the Back- ward Euler scheme is almost identical to that for the Forward Euler scheme. We end up with
Rin =O(∆t)+O(∆x2).
3.3 Analysis of schemes for the diffusion equation 283
3.3.6 Analysis of the Crank-Nicolson scheme
The Crank-Nicolson scheme can be written as
or
n+1 [Dtu = αDxDxux]q 2 ,
n+11 [Du]q 2 = α [DDu]n+[DDu]n+1 .
t2xxqxxq Inserting (3.53) in the time derivative approximation leads to
1−1
[D Aneikq∆x]n+1 = An+1 eikq∆x A2 − A 2 = Aneikq∆x A − 1 .
t22
Inserting (3.53) in the other terms and dividing by Aneikq∆x gives the
relation
A−1=−1α 4 sin2k∆x(1+A), ∆t2∆x2 2
∆t ∆t
and after some more algebra,
A= 1−2Fsin2p. 1+2F sin2 p
Stability. The criteria A > −1 and A < 1 are fulfilled for any ∆t > 0.
Therefore, the solution cannot grow, but it will oscillate if 1−2F sinp < 0.
To avoid such non-physical oscillations, we must demand F ≤ 1 . 2
Truncation error. The truncation error is derived in Appendix B.6.1: n+1
The exact numerical solution is hence
1 − 2F sin2 p n
(3.61)
(3.62)
unq = 1+2Fsin2p eikp∆x.
R 2 =O(∆x2)+O(∆t2). i
3.3.7 Analysis of the Leapfrog scheme
An attractive feature of the Forward Euler scheme is the explicit time stepping and no need for solving linear systems. However, the accuracy
284 3 Diffusion equations
in time is only O(∆t). We can get an explicit second-order scheme in time by using the Leapfrog method:
[D2tu=αDxDxu+f]ni . un+1=un−1+2α∆t(uni+1−2uni +uni−1)+f(xi,tn).
∆x2
We need some formula for the first step, u1i , but for that we can use a Forward Euler step.
Unfortunately, the Leapfrog scheme is always unstable for the diffusion equation. To see this, we insert a wave component Aneikx and get
Written out,
or
which has roots
A−A−1 4 2 ∆t =−α∆x2 sin p,
A2 + 4F sin2 p A − 1 = 0,
A = −2F sin2 p ± 4F 2 sin4 p + 1 .
Both roots have |A| > 1 so the always amplitude grows, which is not in accordance with physics of the problem. However, for a PDE with a first-order derivative in space, instead of a second-order one, the Leapfrog scheme performs very well. Details are provided in Section 4.1.3.
3.3.8 Summary of accuracy of amplification factors
We can plot the various amplification factors against p = k∆x/2 for different choices of the F parameter. Figures 3.9, 3.10, and 3.11 show how long and small waves are damped by the various schemes compared to the exact damping. As long as all schemes are stable, the amplification factor is positive, except for Crank-Nicolson when F > 0.5.
The effect of negative amplification factors is that An changes sign from one time level to the next, thereby giving rise to oscillations in time in an animation of the solution. We see from Figure 3.9 that for F = 20, waves with p ≥ π/4 undergo a damping close to −1, which means that the amplitude does not decay and that the wave component
3.3 Analysis of schemes for the diffusion equation
285
1.0
F=20
0.5
0.0
0.5
1.0
0.0 0.2 0.4
0.6 0.8 1.0
p=k∆x
1.2 1.4
BE exact CN FE
1.0
F=2
0.5
0.0
0.5
1.0 0.0
Fig. 3.9 Amplification factors for large time steps. 1.0
0.2 0.4
0.6 0.8 1.0
p=k∆x
F=0.25
0.6 0.8 1.0
1.2 1.4
1.0
0.5
0.0
0.5
1.0
0.0 0.2 0.4
F=0.5
0.6 0.8 1.0
p=k∆x
1.2 1.4
BE exact CN FE
Fig. 3.10
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3
0.0
p=k∆x
Amplification factors for time steps around the Forward Euler stability limit.
0.2
0.4
0.6
1.0
1.2
0.75
0.0 0.2 0.4
1.2 1.4
F=0.1
0.8
BE exact CN FE
1.4
1.00
0.95
0.90
0.85
0.80
BE exact CN FE
F=0.01
0.6 0.8 1.0
p =k∆x
p =k∆x
Fig. 3.11 Amplification factors for small time steps.
jumps up and down (flips amplitude) in time. For F = 2 we have a damping of a factor of 0.5 from one time level to the next, which is very much smaller than the exact damping. Short waves will therefore fail to be effectively dampened. These waves will manifest themselves as high frequency oscillatory noise in the solution.
A value p = π/4 corresponds to four mesh points per wave length of eikx, while p = π/2 implies only two points per wave length, which is the smallest number of points we can have to represent the wave on the mesh.
0.5
0.0
0.5
1.0 0.0
0.2 0.4
1.2 1.4
BE exact CN FE
BE exact CN FE
A(p) A(p) A(p)
A(p) A(p) A(p)
286 3 Diffusion equations
To demonstrate the oscillatory behavior of the Crank-Nicolson scheme, we choose an initial condition that leads to short waves with significant amplitude. A discontinuous I(x) will in particular serve this purpose: Figures 3.6 and 3.7 correspond to F = 3 and F = 10, respectively, and we see how short waves pollute the overall solution.
3.3.9 Analysis of the 2D diffusion equation
We first consider the 2D diffusion equation
ut = α(uxx + uyy), which has Fourier component solutions of the form
u(x,y,t) = Ae−αk2tei(kxx+kyy),
and the schemes have discrete versions of this Fourier component:
unq,r = Aξnei(kxq∆x+kyr∆y) .
The Forward Euler scheme. For the Forward Euler discretization,
we get
Introducing
4 2 kx∆x 4 =−α∆x2 sin 2 −α∆y2 sin
px = kx∆x, py = ky∆y, 22
ξ − 1 ∆t
2 ky∆y 2 .
[Dt+u = α(DxDxu + DyDyu)]ni,j,
we can write the equation for ξ more compactly as ξ−1 =−α 4 sin2px −α 4 sin2py,
and solve for ξ:
ξ = 1−4Fx sin2 px −4Fy sin2 py .
The complete numerical solution for a wave component is
∆t ∆x2 ∆y2
(3.63)
3.3 Analysis of schemes for the diffusion equation 287
unq,r = A(1 − 4Fx sin2 px − 4Fy sin2 py)nei(kxp∆x+kyq∆y) . (3.64)
For stability we demand −1 ≤ ξ ≤ 1, and −1 ≤ ξ is the critical limit, since clearly ξ ≤ 1, and the worst case happens when the sines are at their maximum. The stability criterion becomes
Fx + Fy ≤ 1 . (3.65) 2
For the special, yet common, case ∆x = ∆y = h, the stability criterion can be written as
h2 ∆t ≤ 2dα,
where d is the number of space dimensions: d = 1, 2, 3.
The Backward Euler scheme. The Backward Euler method,
results in
and
[Dt−u = α(DxDxu + DyDyu)]ni,j,
1 − ξ−1 = −4Fx sin2 px − 4Fy sin2 py,
ξ = (1+4Fx sin2 px +4Fy sin2 py)−1,
which is always in (0, 1]. The solution for a wave component becomes
unq,r = A(1 + 4Fx sin2 px + 4Fy sin2 py)−nei(kxq∆x+kyr∆y) . (3.66) The Crank-Nicolson scheme. With a Crank-Nicolson discretization,
n+11 1
[Dtu] 2 = [α(DxDxu + DyDyu)]n+1 + [α(DxDxu + DyDyu)]ni,j,
i,j 2 i,j 2 we have, after some algebra,
ξ = 1 − 2(Fx sin2 px + Fx sin2 py) . 1+2(Fx sin2 px +Fx sin2 py)
The fraction on the right-hand side is always less than 1, so stability in the sense of non-growing wave components is guaranteed for all physical
288 3 Diffusion equations
and numerical parameters. However, the fraction can become negative and result in non-physical oscillations. This phenomenon happens when
Fxsin2px +Fxsin2py > 1. 2
A criterion against non-physical oscillations is therefore
Fx +Fy ≤ 1, 2
which is the same limit as the stability criterion for the Forward Euler scheme.
The exact discrete solution is
1 − 2(Fx sin2 px + Fx sin2 py)n
unq,r = A 1 + 2(Fx sin2 px + Fx sin2 py) ei(kxq∆x+kyr∆y) . (3.67) 3.3.10 Explanation of numerical artifacts
The behavior of the solution generated by Forward Euler discretization in time (and centered differences in space) is summarized at the end of Section 3.1.5. Can we from the analysis above explain the behavior?
We may start by looking at Figure 3.3 where F = 0.51. The figure shows that the solution is unstable and grows in time. The stability limit for such growth is F = 0.5 and since the F in this simulation is slightly larger, growth is unavoidable.
Figure 3.1 has unexpected features: we would expect the solution of
the diffusion equation to be smooth, but the graphs in Figure 3.1 contain
non-smooth noise. Turning to Figure 3.4, which has a quite similar initial
condition, we see that the curves are indeed smooth. The problem with
the results in Figure 3.1 is that the initial condition is discontinuous. To
represent it, we need a significant amplitude on the shortest waves in
the mesh. However, for F = 0.5, the shortest wave (p = π/2) gives the
amplitude in the numerical solution as (1−4F)n, which oscillates between
negative and positive values at subsequent time levels for F > 1 . Since 4
the shortest waves have visible amplitudes in the solution profile, the oscillations becomes visible. The smooth initial condition in Figure 3.4, on the other hand, leads to very small amplitudes of the shortest waves. That these waves then oscillate in a non-physical way for F = 0.5 is not a visible effect. The oscillations in time in the amplitude (1 − 4F )n
3.4 Exercises 289
disappear for F ≤ 1, and that is why also the discontinuous initial 4
condition always leads to smooth solutions in Figure 3.2, where F = 1 . 4
Turning the attention to the Backward Euler scheme and the experi- ments in Figure 3.5, we see that even the discontinuous initial condition gives smooth solutions for F = 0.5 (and in fact all other F values). From the exact expression of the numerical amplitude, (1 + 4F sin2 p)−1, we realize that this factor can never flip between positive and negative values, and no instabilities can occur. The conclusion is that the Backward Euler scheme always produces smooth solutions. Also, the Backward Euler scheme guarantees that the solution cannot grow in time (unless we add a source term to the PDE, but that is meant to represent a physically relevant growth).
Finally, we have some small, strange artifacts when simulating the development of the initial plug profile with the Crank-Nicolson scheme, see Figure 3.7, where F = 3. The Crank-Nicolson scheme cannot give growing amplitudes, but it may give oscillating amplitudes in time. The critical factor is 1 − 2F sin2 p, which for the shortest waves (p = π/2) indicates a stability limit F = 0.5. With the discontinuous initial condition, we have enough amplitude on the shortest waves so their wrong behavior is visible, and this is what we see as small instabilities in Figure 3.7. The only remedy is to lower the F value.
3.4 Exercises
Exercise 3.1: Explore symmetry in a 1D problem
This exercise simulates the exact solution (3.48). Suppose for simplicity that c = 0.
a) Formulate an initial-boundary value problem that has (3.48) as solution in the domain [−L, L]. Use the exact solution (3.48) as Dirichlet condition at the boundaries. Simulate the diffusion of the Gaussian peak. Observe that the solution is symmetric around x = 0.
b) Show from (3.48) that ux(c, t) = 0. Since the solution is symmetric around x = c = 0, we can solve the numerical problem in half of the domain, using a symmetry boundary condition ux = 0 at x = 0. Set up the initial-boundary value problem in this case. Simulate the diffusion problem in [0, L] and compare with the solution in a).
Filename: diffu_symmetric_gaussian.
290 3 Diffusion equations
Exercise 3.2: Investigate approximation errors from a ux = 0 boundary condition
We consider the problem solved in Exercise 3.1 part b). The boundary condition ux(0, t) = 0 can be implemented in two ways: 1) by a standard symmetric finite difference [D2xu]ni = 0, or 2) by a one-sided difference [D+u = 0]ni = 0. Investigate the effect of these two conditions on the convergence rate in space.
Hint. If you use a Forward Euler scheme, choose a discretization param- eter h = ∆t = ∆x2 and assume the error goes like E ∼ hr. The error in the scheme is O(∆t,∆x2) so one should expect that the estimated r approaches 1. The question is if a one-sided difference approximation to ux(0, t) = 0 destroys this convergence rate.
Filename: diffu_onesided_fd.
Exercise 3.3: Experiment with open boundary conditions in 1D
We address diffusion of a Gaussian function as in Exercise 3.1, in the domain [0,L], but now we shall explore different types of boundary conditions on x = L. In real-life problems we do not know the exact solution on x = L and must use something simpler.
a) Imagine that we want to solve the problem numerically on [0, L], with a symmetry boundary condition ux = 0 at x = 0, but we do not know the exact solution and cannot of that reason assign a correct Dirichlet condition at x = L. One idea is to simply set u(L, t) = 0 since this will be an accurate approximation before the diffused pulse reaches x = L and even thereafter it might be a satisfactory condition if the exact u has a small value. Let ue be the exact solution and let u be the solution of ut = αuxx with an initial Gaussian pulse and the boundary conditions ux(0, t) = u(L, t) = 0. Derive a diffusion problem for the error e = ue − u. Solve this problem numerically using an exact Dirichlet condition at x = L. Animate the evolution of the error and make a curve plot of the error measure
L e2dx 0
E(t) = L udx . 0
Is this a suitable error measure for the present problem?
3.4 Exercises 291
b) Instead of using u(L, t) = 0 as approximate boundary condition for letting the diffused Gaussian pulse move out of our finite domain, one may try ux(L, t) = 0 since the solution for large t is quite flat. Argue that this condition gives a completely wrong asymptotic solution as t → 0. To do this, integrate the diffusion equation from 0 to L, integrate uxx by parts (or use Gauss’ divergence theorem in 1D) to arrive at the important property
dL
u(x, t)dx = 0,
implying that L udx must be constant in time, and therefore
L L
u(x, t)dx = I (x)dx .
00
0
dt
0
The integral of the initial pulse is 1.
c) Another idea for an artificial boundary condition at x = L is to use a cooling law
− αux = q(u − uS), (3.68)
where q is an unknown heat transfer coefficient and uS is the surrounding temperature in the medium outside of [0, L]. (Note that arguing that uS is approximately u(L, t) gives the ux = 0 condition from the previous subexercise that is qualitatively wrong for large t.) Develop a diffusion problem for the error in the solution using (3.68) as boundary condition. Assume one can take uS = 0 “outside the domain” since ue → 0 as x → ∞. Find a function q = q(t) such that the exact solution obeys the condition (3.68). Test some constant values of q and animate how the corresponding error function behaves. Also compute E(t) curves as defined above.
Filename: diffu_open_BC.
Exercise 3.4: Simulate a diffused Gaussian peak in 2D/3D
a) Generalize (3.48) to multi dimensions by assuming that one- dimensional solutions can be multiplied to solve ut = α∇2u. Set c = 0 such that the peak of the Gaussian is at the origin.
b) Onecanfromtheexactsolutionshowthatux =0onx=0,uy =0 on y = 0, and uz = 0 on z = 0. The approximately correct condition
292 3 Diffusion equations
u = 0 can be set on the remaining boundaries (say x = L, y = L, z = L), cf. Exercise 3.3. Simulate a 2D case and make an animation of the diffused Gaussian peak.
c) The formulation in b) makes use of symmetry of the solution such that we can solve the problem in the first quadrant (2D) or octant (3D) only. To check that the symmetry assumption is correct, formulate the problem without symmetry in a domain [−L, L] × [L, L] in 2D. Use u = 0 as approximately correct boundary condition. Simulate the same case as in b), but in a four times as large domain. Make an animation and compare it with the one in b).
Filename: diffu_symmetric_gaussian_2D.
Exercise 3.5: Examine stability of a diffusion model with a
source term
Consider a diffusion equation with a linear u term: ut = αuxx + βu .
a) Derive in detail the Forward Euler, Backward Euler, and Crank- Nicolson schemes for this type of diffusion model. Thereafter, formulate a θ-rule to summarize the three schemes.
b) Assume a solution like (3.49) and find the relation between a, k, α, and β.
Hint. Insert (3.49) in the PDE problem.
c) Calculate the stability of the Forward Euler scheme. Design numerical
experiments to confirm the results.
Hint. Insert the discrete counterpart to (3.49) in the numerical scheme. Run experiments at the stability limit and slightly above.
d) Repeat c) for the Backward Euler scheme.
e) Repeat c) for the Crank-Nicolson scheme.
f) How does the extra term bu impact the accuracy of the three schemes?
Hint. For analysis of the accuracy, compare the numerical and exact amplification factors, in graphs and/or by Taylor series expansion. Filename: diffu_stability_uterm.
3.5 Diffusion in heterogeneous media 293
3.5 Diffusion in heterogeneous media
Diffusion in heterogeneous media normally implies a non-constant dif- fusion coefficient α = α(x). A 1D diffusion model with such a variable diffusion coefficient reads
∂u ∂ ∂u
∂t = ∂x α(x)∂x +f(x,t), x∈(0,L), t∈(0,T],
(3.69)
(3.70) (3.71) (3.72)
u(x, 0) = I(x), u(0, t) = U0, u(L, t) = UL,
x ∈ [0, L], t > 0, t > 0.
A short form of the diffusion equation with variable coefficients is ut = (αux )x .
3.5.1 Discretization
We can discretize (3.69) by a θ-rule in time and centered differences in space:
n+1
[Dtu] 2 = θ[Dx(αxDxu) + f]n+1 + (1 − θ)[Dx(αxDxu) + f]ni .
ii
Written out, this becomes un+1 − un 1
i
i =θ (α 1(un+1−un+1)−α 1(un+1−un+1))+ ∆t ∆x2 i+2 i+1 i i−2 i i+1
(1 − θ) 1 (αi+1 (uni+1 − uni ) − αi−1 (uni − uni+1))+ ∆x2 2 2
θfn+1 + (1 − θ)fn, ii
where, e.g., an arithmetic mean can to be used for αi+ 1 : 2
αi+1 = 1(αi +αi+1). 22
294 3 Diffusion equations
3.5.2 Implementation
Suitable code for solving the discrete equations is very similar to what we created for a constant α. Since the Fourier number has no meaning for varying α, we introduce a related parameter D = ∆t/∆x2.
def solver_theta(I, a, L, Nx, D, T, theta=0.5, u_L=1, u_R=0,
user_action=None):
x = linspace(0, L, Nx+1) # mesh points in space
dx = x[1] – x[0]
dt = D*dx**2
Nt = int(round(T/float(dt)))
t = linspace(0, T, Nt+1) # mesh points in time
u = zeros(Nx+1) # solution array at t[n+1]
u_n = zeros(Nx+1) # solution at t[n]
Dl = 0.5*D*theta
Dr = 0.5*D*(1-theta)
# Representation of sparse matrix and right-hand side
diagonal = zeros(Nx+1)
lower upper b
= zeros(Nx)
= zeros(Nx)
= zeros(Nx+1)
# Precompute sparse matrix (scipy format)
diagonal[1:-1] = 1 + Dl*(a[2:] + 2*a[1:-1] + a[:-2])
lower[:-1] = -Dl*(a[1:-1] + a[:-2])
upper[1:] = -Dl*(a[2:] + a[1:-1])
# Insert boundary conditions
diagonal[0] = 1
upper[0] = 0
diagonal[Nx] = 1
lower[-1] = 0
A = scipy.sparse.diags(
diagonals=[diagonal, lower, upper],
offsets=[0, -1, 1],
shape=(Nx+1, Nx+1),
format=’csr’)
# Set initial condition
for i in range(0,Nx+1):
u_n[i] = I(x[i])
if user_action is not None:
user_action(u_n, x, t, 0)
# Time loop
for n in range(0, Nt):
b[1:-1] = u_n[1:-1] + Dr*(
(a[2:] + a[1:-1])*(u_n[2:] – u_n[1:-1]) –
3.5 Diffusion in heterogeneous media 295
(a[1:-1] + a[0:-2])*(u_n[1:-1] – u_n[:-2]))
# Boundary conditions
b[0] = u_L(t[n+1])
b[-1] = u_R(t[n+1])
# Solve
u[:] = scipy.sparse.linalg.spsolve(A, b)
if user_action is not None:
user_action(u, x, t, n+1)
# Switch variables before next step
u_n, u = u, u_n
The code is found in the file diffu1D_vc.py. 3.5.3 Stationary solution
As t → ∞, the solution of the problem (3.69)-(3.72) will approach a stationary limit where ∂u/∂t = 0. The governing equation is then
d du
dx αdx =0, (3.73)
with boundary conditions u(0) = U0 and u(L) = uL. It is possible to obtain an exact solution of (3.73) for any α. Integrating twice and applying the boundary conditions to determine the integration constants gives
(3.74)
u(x) = U0 + (UL − U0) L(α(ξ))−1dξ . 0
3.5.4 Piecewise constant medium
x(α(ξ))−1dξ 0
Consider a medium built of M layers. The layer boundaries are denoted b0,…,bM, where b0 = 0 and bM = L. If the layers potentially have different material properties, but these properties are constant within each layer, we can express α as a piecewise constant function according to
296
3 Diffusion equations
α(x) =
αi,
(3.75)
α 0 ,
. . .
bi ≤ x < bi+1, αM−1,bM−1 ≤x≤bM.
. . .
b 0 ≤ x < b 1 ,
The exact solution (3.74) in case of such a piecewise constant α function
is easy to derive. Assume that x is in the m-th layer: x ∈ [bm,bm+1].
In the integral x(a(ξ))−1dξ we must integrate through the first m − 1 0
layers and then add the contribution from the remaining part x − bm into the m-th layer:
m−1(b −b )/α(b )+(x−b )/α(b ) j=0j+1jj mm
u(x) = U0+(UL−U0) M−1(b − b )/α(b ) (3.76) j=0 j+1 j j
Remark. It may sound strange to have a discontinuous α in a differential equation where one is to differentiate, but a discontinuous α is compen- sated by a discontinuous ux such that αux is continuous and therefore can be differentiated as (αux)x.
3.5.5 Implementation of diffusion in a piecewise constant medium
Programming with piecewise function definitions quickly becomes cum- bersome as the most naive approach is to test for which interval x lies, and then start evaluating a formula like (3.76). In Python, vectorized expressions may help to speed up the computations. The convenience classes PiecewiseConstant and IntegratedPiecewiseConstant in the Heaviside module were made to simplify programming with functions like (3.5.4) and expressions like (3.76). These utilities not only represent piecewise constant functions, but also smoothed versions of them where the discontinuities can be smoothed out in a controlled fashion.
The PiecewiseConstant class is created by sending in the domain as a 2-tuple or 2-list and a data object describing the boundaries b0, . . . , bM and the corresponding function values α0,...,αM−1. More precisely, data is a nested list, where data[i][0] holds bi and data[i][1] holds the corresponding value αi, for i = 0,...,M −1. Given bi and αi in arrays b and a, it is easy to fill out the nested list data.
3.5 Diffusion in heterogeneous media 297
In our application, we want to represent α and 1/α as piecewise constant functions, in addition to the u(x) function which involves the integrals of 1/α. A class creating the functions we need and a method for evaluating u, can take the form
class SerialLayers:
"""
b: coordinates of boundaries of layers, b[0] is left boundary
and b[-1] is right boundary of the domain [0,L].
a: values of the functions in each layer (len(a) = len(b)-1).
U_0: u(x) value at left boundary x=0=b[0].
U_L: u(x) value at right boundary x=L=b[0].
"""
def __init__(self, a, b, U_0, U_L, eps=0):
self.a, self.b = np.asarray(a), np.asarray(b)
self.eps = eps # smoothing parameter for smoothed a
self.U_0, self.U_L = U_0, U_L
a_data = [[bi, ai] for bi, ai in zip(self.b, self.a)]
domain = [b[0], b[-1]]
self.a_func = PiecewiseConstant(domain, a_data, eps)
# inv_a = 1/a is needed in formulas
inv_a_data = [[bi, 1./ai] for bi, ai in zip(self.b, self.a)]
self.inv_a_func = \
PiecewiseConstant(domain, inv_a_data, eps)
self.integral_of_inv_a_func = \
IntegratedPiecewiseConstant(domain, inv_a_data, eps)
# Denominator in the exact formula is constant
self.inv_a_0L = self.integral_of_inv_a_func(b[-1])
def __call__(self, x):
solution = self.U_0 + (self.U_L-self.U_0)*\
self.integral_of_inv_a_func(x)/self.inv_a_0L
return solution
A visualization method is also convenient to have. Below we plot u(x) along with α(x) (which works well as long as max α(x) is of the same size as max u = max(U0, UL)).
class SerialLayers:
...
def plot(self):
x, y_a = self.a_func.plot()
x = np.asarray(x); y_a = np.asarray(y_a)
y_u = self.u_exact(x)
import matplotlib.pyplot as plt
plt.figure()
plt.plot(x, y_u, ’b’)
plt.hold(’on’) # Matlab style
298
3 Diffusion equations
plt.plot(x, y_a, ’r’)
ymin = -0.1
ymax = 1.2*max(y_u.max(), y_a.max())
plt.axis([x[0], x[-1], ymin, ymax])
plt.legend([’solution $u$’, ’coefficient $a$’], loc=’upper left’)
if self.eps > 0:
plt.title(’Smoothing eps: %s’ % self.eps)
plt.savefig(’tmp.pdf’)
plt.savefig(’tmp.png’)
plt.show()
Figure 3.12 shows the case where
b = [0, 0.25, 0.5, 1]
a = [0.2, 0.4, 4]
U_0 = 0.5; U_L = 5
# material boundaries
# material values
# boundary conditions
6
5
4
3
2
1
0
0.0 0.2 0.4
0.6 0.8 1.0
solution u coefficient a
Fig. 3.12 Solution of the stationary diffusion equation corresponding to a piecewise constant diffusion coefficient.
By adding the eps parameter to the constructor of the SerialLayers class, we can experiment with smoothed versions of α and see the (small) impact on u. Figure 3.13 shows the result.
3.5 Diffusion in heterogeneous media 299
6
Smoothed discontinuous coefficient (eps=0.05)
solution u coefficient a
5
4
3
2
1
0
0.0 0.2 0.4
0.6 0.8 1.0
Fig. 3.13 Solution of the stationary diffusion equation corresponding to a smoothed piecewise constant diffusion coefficient.
3.5.6 Axi-symmetric diffusion
Suppose we have a diffusion process taking place in a straight tube with radius R. We assume axi-symmetry such that u is just a function of r and t, r being the radial distance from the center axis of the tube to a point. With such axi-symmetry it is advantageous to introduce cylindrical coordinates r, θ, and z, where z is in the direction of the tube and (r, θ) are polar coordinates in a cross section. Axi-symmetry means that all quantities are independent of θ. From the relations x = cos θ, y = sinθ, and z = z, between Cartesian and cylindrical coordinates, one can (with some effort) derive the diffusion equation in cylindrical coordinates, which with axi-symmetry takes the form
∂u1∂ ∂u∂ ∂u
∂t=r∂r rα(r,z)∂r +∂z α(r,z)∂z +f(r,z,t).
Let us assume that u does not change along the tube axis so it suffices to compute variations in a cross section. Then ∂u/∂z = 0 and the we
300 3 Diffusion equations
have a 1D diffusion equation in the radial coordinate r and time t. In particular, we shall address the initial-boundary value problem
∂u1∂ ∂u
∂t = r∂r rα(r)∂r +f(t),r∈(0,R), t∈(0,T],
(3.77)
(3.78)
(3.79) (3.80)
∂u(0,t) = 0, ∂r
u(R,t) = 0, u(r, 0) = I(r),
t ∈ (0,T], t ∈ (0,T],
r ∈ [0, R].
The condition (3.78) is a necessary symmetry condition at r = 0, while (3.79) could be any Dirichlet or Neumann condition (or Robin condition
in case of cooling or heating).
The finite difference approximation will need the discretized version
of the PDE for r = 0 (just as we use the PDE at the boundary when implementing Neumann conditions). However, discretizing the PDE at r = 0 poses a problem because of the 1/r factor. We therefore need to work out the PDE for discretization at r = 0 with care. Let us, for the case of constant α, expand the spatial derivative term to
α∂2u + α1 ∂u .
∂r2 r ∂r
The last term faces a difficulty at r = 0, since it becomes a 0/0 expression caused by the symmetry condition at r = 0. However, L’Hosptial’s rule
can be used:
lim 1 ∂u = ∂2u .
r→0 r ∂r ∂r2 The PDE at r = 0 therefore becomes
α(r)∂2u + 1(α(r) + rα′(r))∂u . ∂r2r ∂r
We are interested in this expression for r = 0. A necessary condition for u to be axi-symmetric is that all input data, including α, must also
∂u =2α∂2u+f(t). ∂t ∂r2
(3.81) For a variable coefficient α(r) the expanded spatial derivative term reads
3.5 Diffusion in heterogeneous media 301
be axi-symmetric, implying that α′(0) = 0 (the second term vanishes anyway because of r = 0). The limit of interest is
lim 1α(r)∂u = α(0)∂2u . r→0 r ∂r ∂r2
The PDE at r = 0 now looks like
∂u = 2α(0)∂2u + f(t),
(3.82)
∂t ∂r2
so there is no essential difference between the constant coefficient and
variable coefficient cases.
The second-order derivative in (3.81) and (3.82) is discretized in the
usual way. 2α
∂2
un − 2un + un u(r0,tn)≈[2α2DrDru]n0 =2α 1 0 −1 .
∂r2
The fictitious value un−1 can be eliminated using the discrete symmetry condition
[D2ru=0]n0 ⇒ un−1 =un1,
which then gives the modified approximation to the term with the second-
order derivative of u in r at r = 0:
4αun1 −un0 . (3.83)
∆r2
∆r2
The discretization of the term with the second-order derivative in r at
any internal mesh point is straightforward:
1∂ ∂un
r ∂r rα ∂r
To complete the discretization, we need a scheme in time, but that can be done as before and does not interfere with the discretization in space.
≈ [r−1Dr(rαDru)]ni
= 1 1 ri+1 αi+1 (uni+1 −uni )−ri−1 αi−1 (uni −uni−1) .
i
ri∆r2 2 2 2 2
302 3 Diffusion equations
3.5.7 Spherically-symmetric diffusion
Discretization in spherical coordinates. Let us now pose the problem from Section 3.5.6 in spherical coordinates, where u only depends on the radial coordinate r and time t. That is, we have spherical symmetry. For simplicity we restrict the diffusion coefficient α to be a constant. The PDE reads
∂u α ∂ γ∂u
∂t=rγ∂r r∂r +f(t), (3.84)
for r ∈ (0,R) and t ∈ (0,T]. The parameter γ is 2 for spherically- symmetric problems and 1 for axi-symmetric problems. The boundary and initial conditions have the same mathematical form as in (3.77)-
(3.80).
Since the PDE in spherical coordinates has the same form as the PDE
in Section 3.5.6, just with the γ parameter being different, we can use the same discretization approach. At the origin r = 0 we get problems with the term
γ ∂u,
r ∂t
but L’Hosptial’s rule shows that this term equals γ∂2u/∂r2, and the
(3.85)
(3.86)
PDE at r = 0 becomes
∂u =(γ+1)α∂2u+f(t).
∂t ∂r2 The associated discrete form is then
[Dtu = 1(γ + 1)α([DrDrut + ft]ni , 2
for a Crank-Nicolson scheme.
Discretization in Cartesian coordinates. The spherically-symmetric spatial derivative can be transformed to the Cartesian counterpart by introducing
Inserting u = v/r in
v(r, t) = ru(r, t) .
1∂ 2∂u r2∂r α(r)r∂r ,
3.6 Diffusion in 2D
303
yields
dα∂v ∂2v dα
r dr∂r+α∂r2 −drv.
The two terms in the parenthesis can be combined to
∂ ∂v r∂r α∂r .
The PDE for v takes the form ∂v ∂∂v 1dα
For α constant we immediately realize that we can reuse a solver in Cartesian coordinates to compute v. With variable α, a “reaction” term v/r needs to be added to the Cartesian solver. The boundary condition ∂u/∂r = 0 at r = 0, implied by symmetry, forces v(0, t) = 0, because
∂t=∂r α∂r −rdrv+rf(r,t), r∈(0,R),t∈(0,T]. (3.87)
∂u 1∂v
∂r=r2 r∂r−v =0, r=0.
3.6 Diffusion in 2D
We now address a diffusion in two space dimensions:
∂u ∂2u ∂2u
∂t=α ∂x2+∂x2 +f(x,y),
in a domain
(x,y)∈(0,Lx)×(0,Ly), t∈(0,T],
with u = 0 on the boundary and u(x, y, 0) = I(x, y) as initial condition.
3.6.1 Discretization
For generality, it is natural to use a θ-rule for the time discretization. Standard, second-order accurate finite differences are used for the spatial
(3.88)
304 3 Diffusion equations
derivatives. We sample the PDE at a space-time point (i, j, n + 1 ) and
2
(3.89)
apply the difference approximations:
[Du]n+1 =θ[α(D D u+D D u)+f]n+1+
∆t
θ(α( i−1,j
t2xxyy
(1 − θ)[α(DxDxu + DyDyu) + f]n .
Written out,
un+1 − un
i,j i,j =
We collect the unknowns on the left-hand side
un+1 − θ Fx(un+1 − 2n+1 + un+1) + Fy(un+1 − 2n+1 + un+1 ) =
un+1
(1 − θ)(α(uni−1,j − 2ni,j + uni+1,j + uni,j−1 − 2ni,j + uni,j+1 ) + fn )
− 2n+1 + un+1 i,j i+1,j
+
un+1 i,j−1
− 2n+1 + un+1
i,j i,j+1 ) + fn+1)+
∆x2
∆y2 i,j ∆x2 ∆y2 i,j
(3.90)
i,j
where
i−1,j i,j i,j i,j −1 i,j i,j +1 (1−θ)Fx(uni−1,j −2ni,j +uni,j)+Fy(uni,j−1 −2ni,j +uni,j+1)+
θ∆tfn+1 + (1 − θ)∆tfn + un ,
(3.91)
i,j i,j
Fx = α∆t, ∆x2
i,j
Fy = α∆t, ∆y2
are the Fourier numbers in x and y direction, respectively.
3.6.2 Numbering of mesh points versus equations and unknowns
The equations (3.91) are coupled at the new time level n + 1. That is, we must solve a system of (linear) algebraic equations, which we will write as Ac = b, where A is the coefficient matrix, c is the vector of unknowns, and b is the right-hand side.
3.6 Diffusion in 2D 305
(0,2): 8 (1,2): 9 (2,2): 10 (3,2): 11
(0,1): 4
(0,0): 0
(1,1): 5
(1,0): 1
(2,1): 6
(2,0): 2
(3,1): 7
(3,0): 3
Fig. 3.14 3×2 2D mesh.
LetusexaminetheequationsinAc=bonameshwithNx =3and Ny = 2 cells in each direction. The spatial mesh is depicted in Figure 3.14. The equations at the boundary just implement the boundary condition u = 0:
un+1 =un+1 =un+1 =un+1 =un+1 = 0,0 1,0 2,0 3,0 0,1
un+1 =un+1 =un+1 =un+1 =un+1 =0. 3,1 0,2 1,2 2,2 3,2
We are left with two interior points, with i = 1, j = 1 and i = 2, j = 1. The corresponding equations are
un+1 − θ Fx(un+1 − 2n+1 + un+1) + Fy(un+1 − 2n+1 + un+1 ) = i,j i−1,j i,j i,j i,j −1 i,j i,j +1
(1−θ)Fx(uni−1,j −2ni,j +uni,j)+Fy(uni,j−1 −2ni,j +uni,j+1)+ θ∆tfn+1+(1−θ)∆tfn +un ,
i,j i,j i,j
There are in total 12 unknowns un+1 for i = 0,1,2,3 and j = 0,1,2. i,j
To solve the equations, we need to form a matrix system Ac = b. In that system, the solution vector c can only have one index. Thus, we need a numbering of the unknowns with one index, not two as used in the mesh.
306 3 Diffusion equations
We introduce a mapping m(i, j) from a mesh point with indices (i, j) to the corresponding unknown p in the equation system:
p=m(i,j)=j(Nx +1)+i.
When i and j run through their values, we see the following mapping to
p:
(0,0)→0, (0,1)→1, (0,2)→2, (0,3)→3, (1,0)→4, (1,1)→5, (1,2)→6, (1,3)→7, (2,0) → 8, (2,1) → 9, (2,2) → 10, (2,3) → 11.
That is, we number the points along the x axis, starting with y = 0, and then progress one “horizontal” mesh line at a time. In Figure 3.14 you can see that the (i,j) and the corresponding single index (p) are listed for each mesh point.
We could equally well have numbered the equations in other ways, e.g., let the j index be the fastest varying index: p = m(i, j) = i(Ny + 1) + j. Let us form the coefficient matrix A, or more precisely, insert a matrix
element (according Python’s convention with zero as base index) for each of the nonzero elements in A (the indices run through the values of p, i.e., p = 0,…,11):
(0,0)000000
0 0 0 0 0 0
0 0
0 0
0 0
0 0
0 0
0 (5, 9) 0 0
0 0 0
0 0
0 0 0 0 0 0
(1,1) 0 0 0 0 0 0 (2,2) 0 0 0 0 0 0 (3,3) 0 0 0
0 0 (5, 1) 0
0 (6,2) 0 0
0 0
0
0 0
0 (4,4) 0 0
0 (5,4) (5,5) (5,6)
0 0 (6,5) (6,6) (6,7)
0 0 0 0 (7,7)
0 0 0 0 0 (8,8) 0 0
000000000(9,9)0 0 0 0 0 0 0 0 0 0 0 0 (10,10) 0
0 0 0 0 0 0 0 0 0 0 0 (11,11)
Here is a more compact visualization of the coefficient matrix where we insert dots for zeros and bullets for non-zero elements:
0 0 0
0
0
0 (6, 10)
0 0 0 0 0 0
3.6 Diffusion in 2D
307
•··········· ·•·········· ··•········· · · · • · · · · · · · · · · · · • · · · · · · · ·•··•••··•·· · · • · · • • • · · • · · · · · · · · • · · · · ········•··· · · · · · · · · · • · · ··········•· ···········•
It is clearly seen that most of the elements are zero. This is a general feature of coefficient matrices arising from discretizing PDEs by finite difference methods. We say that the matrix is sparse.
Let Ap,q be the value of element (p,q) in the coefficient matrix A, where p and q now correspond to the numbering of the unknowns in the equation system. We have Ap,q = 1 for p = q = 0,1,2,3,4,7,8,9,10,11, corresponding to all the known boundary values. Let p be m(i,j), i.e., the single index corresponding to mesh point (i,j). Then we have
Am(i,j),m(i,j) = Ap,p = 1 + θ(Fx + Fy), Ap,m(i−1,j) = Ap,p−1 = −θFx, Ap,m(i+1,j) = Ap,p+1 = −θFx,
Ap,m(i,j−1) = Ap,p−(Nx+1) = −θFy, Ap,m(i,j+1) = Ap,p+(Nx+1) = −θFy,
(3.92) (3.93) (3.94) (3.95) (3.96) (3.97)
for the equations associated with the two interior mesh points. At these interior points, the single index p takes on the specific values p = 5, 6, corresponding to the values (1, 1) and (1, 2) of the pair (i, j).
The above values for Ap,q can be inserted in the matrix:
100000000000 01000 0 0 00000 00100 0 0 00000 000100000000 000010000000 0 −θFy 0 0 −θFx 1+2θFx −θFx 0 0 −θFy 0 0 0 0 −θFy 0 0 −θFx 1+2θFx −θFx 0 0 −θFy 0 000000010000 000000001000 000000000100 00000 0 0 00010 00000 0 0 00001
The corresponding right-hand side vector in the equation system has the entries bp, where p numbers the equations. We have
308 3 Diffusion equations
b0 =b1 =b2 =b3 =b4 =b7 =b8 =b9 =b10 =b11 =0,
for the boundary values. For the equations associated with the interior
points, we get for p = 5,6, corresponding to i = 1,2 and j = 1:
bp =ui +(1−θ)Fx(uni−1,j −2ni,j +uni,j)+Fy(uni,j−1 −2ni,j +uni,j+1)+
θ∆tfn+1+(1−θ)∆tfn . i,j i,j
Recall that p = m(i, j) = j(Nx + 1) + j in this expression.
We can, as an alternative, leave the boundary mesh points out of the matrix system. For a mesh with Nx = 3 and Ny = 2 there are only two internal mesh points whose unknowns will enter the matrix system. We
must now number the unknowns at the interior points: p=(j−1)(Nx −1)+i,
for i = 1, . . . , Nx − 1, j = 1, . . . , Ny − 1.
We can continue with illustrating a bit larger mesh, Nx = 4 and
Ny = 3, see Figure 3.15. The corresponding coefficient matrix with dots for zeros and bullets for non-zeroes looks as follows (values at boundary points are included in the equation system):
•··················· ·•·················· ··•················· ···•················ ····•··············· ·····•·············· ·•···•••···•········ ··•···•••···•······· ···•···•••···•······ ·········•·········· ··········•········· ······•···•••···•··· ·······•···•••···•·· ········•···•••···•· ··············•····· ···············•···· ················•··· ·················•·· ··················•· ···················•
The coefficient matrix is banded
Besides being sparse, we observe that the coefficient matrix is banded: it has five distinct bands. We have the diagonal Ai,i, the subdiagonal Ai−1,j, the superdiagonal Ai,i+1, a lower diagonal Ai,i−(Nx+1), and an upper diagonal Ai,i+(Nx+1). The other matrix entries are known tobezero.WithNx+1=Ny+1=N,onlyafraction5N−2 of
3.6 Diffusion in 2D 309
(0,3): 15 (1,3): 16 (2,3): 17 (3,3): 18 (4,3): 19
(0,2): 10
(0,1): 5
(0,0): 0
(1,2): 11
(1,1): 6
(1,0): 1
(2,2): 12
(2,1): 7
(2,0): 2
(3,2): 13
(3,1): 8
(3,0): 3
(4,2): 14
(4,1): 9
(4,0): 4
Fig. 3.15 4×3 2D mesh.
the matrix entries are nonzero, so the matrix is clearly very sparse for relevant N values. The more we can compute with the nonzeros only, the faster the solution methods will be.
3.6.3 Algorithm for setting up the coefficient matrix
We looked at a specific mesh in the previous section, formulated the equations, and saw what the corresponding coefficient matrix and right- hand side are. Now our aim is to set up a general algorithm, for any choice of Nx and Ny, that produces the coefficient matrix and the right-hand side vector. We start with a zero matrix and vector, run through each
310 3 Diffusion equations
mesh point, and fill in the values depending on whether the mesh point is an interior point or on the boundary.
• for i = 0,…,Nx
– for j = 0,…,Ny
· p = j(Nx + 1) + i
· if point (i,j) is on the boundary:
· Ap,p =1,bp =0 · else:
· fill Ap,m(i−1,j), Ap,m(i+1,j), Ap,m(i,j), Ap,m(i,j−1), Ap,m(i,j+1), and bp
To ease the test on whether (i, j) is on the boundary or not, we can split the loops a bit, starting with the boundary line j = 0, then treat the interior lines 1 ≤ j < Ny, and finally treat the boundary line j = Ny:
• for i = 0,...,Nx
– boundary j = 0: p = j(Nx + 1) + i, Ap,p = 1
• for j = 0,...,Ny
– boundary i = 0: p = j(Nx + 1) + i, Ap,p = 1
– for i = 1, . . . , Nx − 1
· interior point p = j(Nx + 1) + i
· fill Ap,m(i−1,j), Ap,m(i+1,j), Ap,m(i,j), Ap,m(i,j−1), Ap,m(i,j+1), and bp
– boundary i = Nx: p = j(Nx + 1) + i, Ap,p = 1 • for i = 0,...,Nx
– boundary j = Ny: p = j(Nx + 1) + i, Ap,p = 1 The right-hand side is set up as follows.
• for i = 0,...,Nx
– boundary j = 0: p = j(Nx + 1) + i, bp = 0
• for j = 0,...,Ny
– boundary i = 0: p = j(Nx + 1) + i, bp = 0
– for i = 1, . . . , Nx − 1
· interior point p = j(Nx + 1) + i
3.6 Diffusion in 2D 311
· fill bp
– boundary i = Nx: p = j(Nx + 1) + i, bp = 0
• for i = 0,...,Nx
– boundary j = Ny: p = j(Nx + 1) + i, bp = 0
3.6.4 Implementation with a dense coefficient matrix
The goal now is to map the algorithms in the previous section to Python code. One should, for computational efficiency reasons, take advantage of the fact that the coefficient matrix is sparse and/or banded, i.e., take advantage of all the zeros. However, we first demonstrate how to fill an N × N dense square matrix, where N is the number of unknowns, here N = (Nx + 1)(Ny + 1). The dense matrix is much easier to understand than the sparse matrix case.
import numpy as np
def solver_dense(
I, a, f, Lx, Ly, Nx, Ny, dt, T, theta=0.5, user_action=None):
"""
Solve u_t = a*(u_xx + u_yy) + f, u(x,y,0)=I(x,y), with u=0
on the boundary, on [0,Lx]x[0,Ly]x[0,T], with time step dt,
using the theta-scheme.
"""
x = np.linspace(0, Lx, Nx+1)
y = np.linspace(0, Ly, Ny+1)
dx = x[1] - x[0]
dy = y[1] - y[0]
dt = float(dt)
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1)
# avoid integer division
# mesh points in time
# Mesh Fourier numbers in each direction
Fx = a*dt/dx**2
Fy = a*dt/dy**2
# mesh points in x dir
# mesh points in y dir
The un+1 and un mesh functions are represented by their spatial values i,j i,j
at the mesh points:
It is a good habit (for extensions) to introduce index sets for all mesh points:
u = np.zeros((Nx+1, Ny+1)) # unknown u at new time level
u_n = np.zeros((Nx+1, Ny+1)) # u at the previous time level
312 3 Diffusion equations
Ix = range(0, Nx+1)
Iy = range(0, Ny+1)
It = range(0, Nt+1)
The initial condition is easy to fill in:
The memory for the coefficient matrix and right-hand side vector is allocated by
The filling of A goes like this:
# Load initial condition into u_n
for i in Ix:
for j in Iy:
u_n[i,j] = I(x[i], y[j])
N = (Nx+1)*(Ny+1) # no of unknowns
A = np.zeros((N, N))
b = np.zeros(N)
m = lambda i, j: j*(Nx+1) + i
# Equations corresponding to j=0, i=0,1,... (u known)
j=0
for i in Ix:
p=m(i,j); A[p,p]=1
# Loop over all internal mesh points in y diretion
# and all mesh points in x direction
for j in Iy[1:-1]:
i=0; p=m(i,j); A[p,p]=1 #Boundary
for i in Ix[1:-1]: # Interior points
p = m(i,j)
A[p, m(i,j-1)] = - theta*Fy
A[p, m(i-1,j)] = - theta*Fx
A[p, p] = 1 + 2*theta*(Fx+Fy)
A[p, m(i+1,j)] = - theta*Fx
A[p, m(i,j+1)] = - theta*Fy
i=Nx; p=m(i,j); A[p,p]=1 #Boundary
# Equations corresponding to j=Ny, i=0,1,... (u known) j = Ny
for i in Ix:
p=m(i,j); A[p,p]=1
Since A is independent of time, it can be filled once and for all before the time loop. The right-hand side vector must be filled at each time level inside the time loop:
import scipy.linalg
for n in It[0:-1]:
# Compute b
j=0
3.6 Diffusion in 2D 313
for i in Ix:
p = m(i,j); b[p] = 0 # Boundary
for j in Iy[1:-1]:
i=0; p=m(i,j); b[p]=0 #Boundary
for i in Ix[1:-1]: # Interior points
p = m(i,j)
b[p] = u_n[i,j] + \
(1-theta)*(
Fx*(u_n[i+1,j] - 2*u_n[i,j] + u_n[i-1,j]) +\
Fy*(u_n[i,j+1] - 2*u_n[i,j] + u_n[i,j-1]))\
+ theta*dt*f(i*dx,j*dy,(n+1)*dt) + \
(1-theta)*dt*f(i*dx,j*dy,n*dt)
i=Nx; p=m(i,j); b[p]=0 #Boundary j = Ny
for i in Ix:
p = m(i,j); b[p] = 0
# Solve matrix system A*c = b
c = scipy.linalg.solve(A, b)
# Fill u with vector c
for i in Ix:
for j in Iy:
u[i,j] = c[m(i,j)]
# Update u_n before next step
u_n, u = u, u_n
# Boundary
We use solve from scipy.linalg and not from numpy.linalg. The difference is stated below.
scipy.linalg versus numpy.linalg
Quote from the SciPy documentation:
scipy.linalg contains all the functions in numpy.linalg plus
some other more advanced ones not contained in numpy.linalg. Another advantage of using scipy.linalg over numpy.linalg is that it is always compiled with BLAS/LAPACK support, while for NumPy this is optional. Therefore, the SciPy version might be
faster depending on how NumPy was installed.
Therefore, unless you don’t want to add SciPy as a depen-
dency to your NumPy program, use scipy.linalg instead of numpy.linalg.
The code shown above is available in the solver_dense function in the file diffu2D_u0.py, differing only in the boundary conditions, which in the code can be an arbitrary function along each side of the domain.
314 3 Diffusion equations
We do not bother to look at vectorized versions of filling A since a dense matrix is just used of pedagogical reasons for the very first implementation. Vectorization will be treated when A has a sparse matrix representation, as in Section 3.6.7.
How to debug the computation of A and b
A good starting point for debugging the filling of A and b is to choose a very coarse mesh, say Nx = Ny = 2, where there is just one internal mesh point, compute the equations by hand, and print out A and b for comparison in the code. If wrong elements in A or b occur, print out each assignment to elements in A and b inside the loops and compare with what you expect.
To let the user store, analyze, or visualize the solution at each time level, we include a callback function, named user_action, to be called before the time loop and in each pass in that loop. The function has the signature
user_action(u, x, xv, y, yv, t, n)
where u is a two-dimensional array holding the solution at time level n and time t[n]. The x and y coordinates of the mesh points are given by the arrays x and y, respectively. The arrays xv and yv are vectorized rep- resentations of the mesh points such that vectorized function evaluations can be invoked. The xv and yv arrays are defined by
One can then evaluate, e.g., f(x,y,t) at all internal mesh points at time level n by first evaluating f at all points,
f_a = f(xv, yv, t[n])
and then use slices to extract a view of the values at the internal mesh points: f_a[1:-1,1:-1]. The next section features an example on writing a user_action callback function.
xv = x[:,np.newaxis]
yv = y[np.newaxis,:]
3.6 Diffusion in 2D 315
3.6.5 Verification: exact numerical solution
A good test example to start with is one that preserves the solution u = 0, i.e., f = 0 and I(x, y) = 0. This trivial solution can uncover some bugs.
The first real test example is based on having an exact solution of the discrete equations. This solution is linear in time and quadratic in space:
u(x,y,t)=5tx(Lx −x)y(y−Ly).
Inserting this manufactured solution in the PDE shows that the source
term f must be
f(x,y,t)=5x(Lx −x)y(y−Ly)+10αt(x(Lx −x)+y(y−Ly)).
We can use the user_action function to compare the numerical solution with the exact solution at each time level. A suitable helper function for checking the solution goes like this:
def quadratic(theta, Nx, Ny):
def u_exact(x, y, t):
return 5*t*x*(Lx-x)*y*(Ly-y)
def I(x, y):
return u_exact(x, y, 0)
def f(x, y, t):
return 5*x*(Lx-x)*y*(Ly-y) + 10*a*t*(y*(Ly-y)+x*(Lx-x))
# Use rectangle to detect errors in switching i and j in scheme
Lx = 0.75 Ly = 1.5 a = 3.5 dt = 0.5 T=2
def assert_no_error(u, x, xv, y, yv, t, n):
"""Assert zero error at all mesh points."""
u_e = u_exact(xv, yv, t[n])
diff = abs(u - u_e).max()
tol = 1E-12
msg = ’diff=%g, step %d, time=%g’ % (diff, n, t[n])
print msg
assert diff < tol, msg
solver_dense(
I, a, f, Lx, Ly, Nx, Ny,
dt, T, theta, user_action=assert_no_error)
316 3 Diffusion equations
A true test function for checking the quadratic solution for several different meshes and θ values can take the form
def test_quadratic():
# For each of the three schemes (theta = 1, 0.5, 0), a series of
# meshes are tested (Nx > Ny and Nx < Ny)
for theta in [1, 0.5, 0]:
for Nx in range(2, 6, 2):
for Ny in range(2, 6, 2):
print ’testing for %dx%d mesh’ % (Nx, Ny)
quadratic(theta, Nx, Ny)
3.6.6 Verification: convergence rates
For 2D verification with convergence rate computations, the expressions and computations just build naturally on what we saw for 1D diffusion. Truncation error analysis and other forms of error analysis point to a numerical error formula like
E = Ct∆tp + Cx∆x2 + Cy∆y2,
where p, Ct, Cx, and Cy are constants. Often, the analysis of a Crank- Nicolson method can show that p = 2, while the Forward and Backward Euler schemes have p = 1.
When checking the error formula empirically, we need to reduce it to a form E = Chr with a single discretization parameter h and some rate r to be estimated. For the Backward Euler method, where p = 1, we can introduce a single discretization parameter according to
h=∆x2 =∆y2, h=K−1∆t, where K is a constant. The error formula then becomes
E=CtKh+Cxh+Cy =C ̃h, C ̃=CtK+Cx+Cy.
The simplest choice is obviously K = 1. With the Forward Euler method, however, stability requires ∆t = hK ≤ h/(4α), so K ≤ 1/(4α).
For the Crank-Nicolson method, p = 2, and we can simply choose h = ∆x = ∆y = ∆t,
since there is no restriction on ∆t in terms of ∆x and ∆y.
A frequently used error measure is the l2 norm of the error mesh point values. Section 2.2.3 and the formula (2.26) shows the error measure for
3.6 Diffusion in 2D 317
a 1D time-dependent problem. The extension to the current 2D problem reads
1 Nt Nx Ny 2
∆t∆x∆y(ue(xi,yj,tn)−uni,j)2
E =
One attractive manufactured solution is
.
n=0 i=0 j=0
ue = e−pt sin(kxx)sin(kyy), kx = π ,ky = π , Lx Ly
where p can be arbitrary. The required source term is f = ( α ( k x2 + k y2 ) − p ) u e .
The function convergence_rates in diffu2D_u0.py implements a convergence rate test. Two potential difficulties are important to be aware of:
1. The error formula is assumed to be correct when h → 0, so for coarse meshes the estimated rate r may be somewhat away from the expected value. Fine meshes may lead to prohibitively long execution times.
2. Choosing p = α(kx2 + ky2) in the manufactured solution above seems attractive (f = 0), but leads to a slower approach to the asymptotic range where the error formula is valid (i.e., r fluctuates and needs finer meshes to stabilize).
3.6.7 Implementation with a sparse coefficient matrix
We used a sparse matrix implementation in Section 3.2.2 for a 1D problem with a tridiagonal matrix. The present matrix, arising from a 2D problem, has five diagonals, but we can use the same sparse matrix data structure scipy.sparse.diags.
Understanding the diagonals. Let us look closer at the diagonals in the example with a 4 × 3 mesh as depicted in Figure 3.15 and its associated matrix visualized by dots for zeros and bullets for nonzeros. From the example mesh, we may generalize to an Nx × Ny mesh.
318
3 Diffusion equations
0=m(0,0) •···················
·•·················· ··•················· ···•················ ····•··············· ·····•·············· ·•···•••···•········ ··•···•••···•······· ···•···•••···•······ ·········•·········· ··········•········· ······•···•••···•··· ·······•···•••···•·· ········•···•••···•· ··············•····· ···············•···· ················•··· ·················•·· ··················•· · · · · · · · · · · · · · · · · · · · •
The main diagonal has N =
sub- and super-diagonals have N
above, we realize that the lower diagonal starts in row Nx + 1 and goes to row N , so its length is N − (Nx + 1). Similarly, the upper diagonal starts at row 0 and lasts to row N − (Nx + 1), so it has the same length. Based on this information, we declare the diagonals by
Filling the diagonals. We run through all mesh points and fill in elements on the various diagonals. The line of mesh points corresponding to j = 0 are all on the boundary, and only the main diagonal gets a contribution:
Then we run through all interior j = const lines of mesh points. The first and the last point on each line, i = 0 and i = Nx, correspond to boundary points:
For the interior mesh points i = 1, . . . , Nx − 1 on a mesh line y = const we can start with the main diagonal. The entries to be filled go from i = 1 to i = Nx − 1 so the relevant slice in the main vector is m(1,j):m(Nx,j):
main[m(1,j):m(Nx,j)] = 1 + 2*theta*(Fx+Fy)
1=m(1,0)
2=m(2,0)
3=m(3,0) Nx=m(Nx,0) Nx+1=m(0,1)
(Nx +1)+1 = m(1,1) (Nx +1)+2 = m(2,1) (Nx +1)+3 = m(3,1) (Nx+1)+Nx=m(Nx,1) 2(Nx+1)=m(0,2)
2(Nx +1)+1 = m(1,2)
2(Nx +1)+2 = m(2,2)
2(Nx +1)+3 = m(3,2) 2(Nx+1)+Nx=m(Nx,2) Ny(Nx+1)=m(0,Ny) Ny(Nx+1)+1=m(1,Ny) Ny(Nx+1)+2=m(2,Ny) Ny(Nx+1)+3=m(3,Ny) Ny(Nx+1)+Nx=m(Nx,Ny)
(Nx + 1)(Ny + 1) elements, while the − 1 elements. By looking at the matrix
main = np.zeros(N)
lower = np.zeros(N-1)
upper = np.zeros(N-1)
lower2 = np.zeros(N-(Nx+1))
upper2 = np.zeros(N-(Nx+1))
b = np.zeros(N)
# diagonal
# subdiagonal
# superdiagonal
# lower diagonal
# upper diagonal
# right-hand side
m = lambda i, j: j*(Nx+1) + i
j = 0; main[m(0,j):m(Nx+1,j)] = 1 # j=0 boundary line
for j in Iy[1:-1]: # Interior mesh lines j=1,...,Ny-1
i = 0; main[m(i,j)] = 1
i = Nx; main[m(i,j)] = 1 # Boundary
3.6 Diffusion in 2D 319
The upper array for the superdiagonal has its index 0 corresponding to row 0 in the matrix, and the array entries to be set go from m(1,j) to m(Nx −1,j):
upper[m(1,j):m(Nx,j)] = - theta*Fx
The subdiagonal (lower array), however, has its index 0 corresponding to row 1, so there is an offset of 1 in indices compared to the matrix. The first nonzero occurs (interior point) at a mesh line j = const corresponding to matrix row m(1,j), and the corresponding array index in lower is then m(1, j). To fill the entries from m(1, j) to m(Nx − 1, j) we set the following slice in lower:
For the upper diagonal, its index 0 corresponds to matrix row 0, so there is no offset and we can set the entries correspondingly to upper:
upper2[m(1,j):m(Nx,j)] = - theta*Fy
The lower2 diagonal, however, has its first index 0 corresponding to row
Nx + 1, so here we need to subtract the offset Nx + 1:
We can now summarize the above code lines for setting the entries in the sparse matrix representation of the coefficient matrix:
lower_offset = 1
lower[m(1,j)-lower_offset:m(Nx,j)-lower_offset] = - theta*Fx
lower2_offset = Nx+1
lower2[m(1,j)-lower2_offset:m(Nx,j)-lower2_offset] = - theta*Fy
lower_offset = 1
lower2_offset = Nx+1
m = lambda i, j: j*(Nx+1) + i
j = 0; main[m(0,j):m(Nx+1,j)] = 1 # j=0 boundary line
for j in Iy[1:-1]: # Interior mesh lines j=1,...,Ny-1
i = 0; main[m(i,j)] = 1 # Boundary
i = Nx; main[m(i,j)] = 1 # Boundary
# Interior i points: i=1,...,N_x-1
lower2[m(1,j)-lower2_offset:m(Nx,j)-lower2_offset] = - theta*Fy
lower[m(1,j)-lower_offset:m(Nx,j)-lower_offset] = - theta*Fx
main[m(1,j):m(Nx,j)] = 1 + 2*theta*(Fx+Fy)
upper[m(1,j):m(Nx,j)] = - theta*Fx
upper2[m(1,j):m(Nx,j)] = - theta*Fy
j = Ny; main[m(0,j):m(Nx+1,j)] = 1 # Boundary line
The next task is to create the sparse matrix from these diagonals:
import scipy.sparse
A = scipy.sparse.diags(
320 3 Diffusion equations
diagonals=[main, lower, upper, lower2, upper2],
offsets=[0, -lower_offset, lower_offset,
-lower2_offset, lower2_offset],
shape=(N, N), format=’csr’)
Filling the right-hand side; scalar version. Setting the entries in the right-hand side is easier since there are no offsets in the array to take into account. The is in fact similar to the one previously shown when we used a dense matrix representation (the right-hand side vector is, of course, independent of what type of representation we use for the coefficient matrix). The complete time loop goes as follows.
import scipy.sparse.linalg
for n in It[0:-1]:
# Compute b
j=0
for i in Ix:
p = m(i,j); b[p] = 0
for j in Iy[1:-1]:
i=0; p=m(i,j); b[p]=0 for i in Ix[1:-1]:
p = m(i,j)
b[p] = u_n[i,j] + \
# Boundary #Boundary # Interior
(1-theta)*(
Fx*(u_n[i+1,j] - 2*u_n[i,j] + u_n[i-1,j]) +\
Fy*(u_n[i,j+1] - 2*u_n[i,j] + u_n[i,j-1]))\
+ theta*dt*f(i*dx,j*dy,(n+1)*dt) + \
(1-theta)*dt*f(i*dx,j*dy,n*dt)
i=Nx; p=m(i,j); b[p]=0 j = Ny
for i in Ix:
p = m(i,j); b[p] = 0
# Solve matrix system A*c = b
c = scipy.sparse.linalg.spsolve(A, b)
# Fill u with vector c
for i in Ix:
for j in Iy:
u[i,j] = c[m(i,j)]
# Update u_n before next step
u_n, u = u, u_n
#Boundary
# Boundary
Filling the right-hand side; vectorized version. Since we use a sparse matrix and try to speed up the computations, we should examine the loops and see if some can be easily removed by vectorization. In the filling of A we have already used vectorized expressions at each j = const
3.6 Diffusion in 2D 321
line of mesh points. We can very easily do the same in the code above and remove the need for loops over the i index:
for n in It[0:-1]:
# Compute b, vectorized version
# Precompute f in array so we can make slices
f_a_np1 = f(xv, yv, t[n+1])
f_a_n = f(xv, yv, t[n])
j = 0; b[m(0,j):m(Nx+1,j)] = 0 # Boundary
for j in Iy[1:-1]:
i=0; p=m(i,j); b[p]=0#Boundary
i=Nx; p=m(i,j); b[p]=0#Boundary
imin = Ix[1]
imax = Ix[-1] # for slice, max i index is Ix[-1]-1 b[m(imin,j):m(imax,j)] = u_n[imin:imax,j] + \
(1-theta)*(Fx*(
u_n[imin+1:imax+1,j] -
2*u_n[imin:imax,j] + \
u_n[imin-1:imax-1,j]) +
Fy*(
u_n[imin:imax,j+1] -
2*u_n[imin:imax,j] +
u_n[imin:imax,j-1])) + \
theta*dt*f_a_np1[imin:imax,j] + \
(1-theta)*dt*f_a_n[imin:imax,j]
j = Ny; b[m(0,j):m(Nx+1,j)] = 0 # Boundary
# Solve matrix system A*c = b
c = scipy.sparse.linalg.spsolve(A, b)
# Fill u with vector c
u[:,:] = c.reshape(Ny+1,Nx+1).T
# Update u_n before next step
u_n, u = u, u_n
The most tricky part of this code snippet is the loading of values from the one-dimensional array c into the two-dimensional array u. With our numbering of unknowns from left to right along “horizontal” mesh lines, the correct reordering of the one-dimensional array c as a two-dimensional array requires first a reshaping to an (Ny+1,Nx+1) two-dimensional array and then taking the transpose. The result is an (Nx+1,Ny+1) array compatible with u both in size and appearance of the function values.
The spsolve function in scipy.sparse.linalg is an efficient version of Gaussian elimination suited for matrices described by diagonals. The algorithm is known as sparse Gaussian elimination, and spsolve calls up a well-tested C code called SuperLU.
322 3 Diffusion equations
The complete code utilizing spsolve is found in the solver_sparse function in the file diffu2D_u0.py.
Verification. We can easily extend the function quadratic from Sec- tion 3.6.5 to include a test of the solver_sparse function as well.
3.6.8 The Jacobi iterative method
So far we have created a matrix and right-hand side of a linear system Ac = b and solved the system for c by calling an exact algorithm based on Gaussian elimination. A much simpler implementation, which requires no memory for the coefficient matrix A, arises if we solve the system by iterative methods. These methods are only approximate, and the core algorithm is repeated many times until the solution is considered to be converged.
Numerical scheme and linear system. To illustrate the idea of the Jacobi method, we simplify the numerical scheme to the Backward Euler case, θ = 1, so there are fewer terms to write:
def quadratic(theta, Nx, Ny):
...
t, cpu = solver_sparse(
I, a, f, Lx, Ly, Nx, Ny,
dt, T, theta, user_action=assert_no_error)
un+1 − Fx(un+1 i,j i−1,j
un +∆tfn+1 i,j i,j
− 2un+1 + un+1) + Fy(un+1 i,j i,j i,j −1
− 2un+1 + un+1 ) =
The idea of the Jacobi iterative method is to introduce an iteration, here with index r, where we in each iteration treat un+1 as unknown, but use
i,j
values from the previous iteration for the other unknowns un+1 .
i±1,j ±1 Iterations. Let un+1,r be the approximation to un+1 in iteration r, for
i,j i,j
all relevant i and j indices. We first solve with respect to un+1 to get the i,j
equation to solve:
un+1 = (1 + 2Fx + 2Fy)−1 Fx(un+1
+ un+1) + Fy(un+1 i,j i,j −1
+ un+1 ) + i,j +1
(3.99)
i,j i−1,j
un +∆tfn+1 i,j i,j
i,j
i,j +1 (3.98)
3.6 Diffusion in 2D 323
The iteration is introduced by using iteration index r, for computed values, on the right-hand side and r + 1 (unknown in this iteration) on the left-hand side:
un+1,r+1 = (1 + 2Fx + 2Fy)−1 Fx(un+1,r + un+1,r) + Fy(un+1,r + un+1,r)
i,j
+ un i,j
i−1,j i,j i,j −1
i,j +1 (3.100)
i,j
+ ∆tf n+1 i,j
Initial guess. We start the iteration with the computed values at the previous time level:
un+1,0 = un , i = 0,...,N , j = 0,...,N . (3.101) i,j i,j x y
Relaxation. A common technique in iterative methods is to introduce a relaxation, which means that the new approximation is a weighted mean of the approximation as suggested by the algorithm and the previous approximation. Naming the quantity on the left-hand side of (3.100) as un+1,∗, a new approximation based on relaxation reads
un+1,r+1 = ωun+1,∗ + (1 − ω)un+1,r . (3.102) i,j i,j
Under-relaxation means ω < 1, while over-relaxation has ω > 1.
Stopping criteria. The iteration can be stopped when the change from one iteration to the next is sufficiently small (ε), using either an infinity norm,
or an L2 norm,
max un+1,r+1 − un+1,r ≤ ε, i,j i,j i,j
1 2
∆x∆y (un+1,r+1 − un+1,r )2 i,j i,j
i,j
(3.103)
(3.104)
Another widely used criterion measures how well the equations are solved by looking at the residual (essentially b − Acr+1 if cr+1 is the approximation to the solution in iteration r + 1). The residual, defined in terms of the finite difference stencil, is
≤ ε .
324
3 Diffusion equations
Ri,j = un+1,r+1 − (Fx(un+1,r+1 − 2un+1,r+1 + un+1,r+1)+ i,j i−1,j i,j i,j
Fy(un+1,r+1 − 2un+1,r+1 + un+1,r+1))− i,j −1 i,j i,j +1
un − ∆tf n+1 i,j i,j
(3.105)
One can then iterate until the norm of the mesh function Ri,j is less than some tolerance:
1 2
∆x∆y R2 i,j
i,j
≤ ε .
(3.106)
Code-friendly notation. To make the mathematics as close as possible
to what we will write in a computer program, we may introduce some
new notation: ui,j is a short notation for un+1,r+1, u− is a short notation i,j i,j
for un+1,r, and u(s) denotes un+1−s. That is, ui,j is the unknown, u− i,j i,j i,j i,j
is its most recently computed approximation, and s counts time levels backwards in time. The Jacobi method (3.100)) takes the following form with the new notation:
u∗ =(1+2F +2F )−1((F (u−
i,j x y x i−1,j
u(1) + ∆tfn+1) i,j i,j
Generalization of the scheme. We can also quite easily introduce the θ rule for discretization in time and write up the Jacobi iteration in that case as well:
u∗i,j = (1 + 2θ(Fx + Fy))−1(θ(Fx(u−i−1,j + u−i,j) + Fy(u−i,j−1 + u−i,j+1))+ u(1) + θ∆tfn+1 + (1 − θ)∆tfn +
i,j i,j i,j (1−θ)(Fx(u(1) −2u(1) +u(1) )+Fy(u(1)
The final update of u applies relaxation:
ui,j = ωu∗i,j + (1 − ω)u−i,j .
−2u(1) +u(1) ))). i,j i,j +1
(3.108)
i−1,j i,j i+1,j
i,j −1
+u− )+F (un+1,r +un+1,r))+
i,j
y i,j−1
i,j+1 (3.107)
3.6 Diffusion in 2D 325
3.6.9 Implementation of the Jacobi method
The Jacobi method needs no coefficient matrix and right-hand side vector, but it needs an array for u in the previous iteration. We call this array u_, using the notation at the end of the previous section (at the same time level). The unknown itself is called u, while u_n is the computed solution one time level back in time. With a θ rule in time, the time loop can be coded like this:
for n in It[0:-1]:
# Solve linear system by Jacobi iteration at time level n+1 u_[:,:] = u_n # Start value
converged = False
r=0
while not converged:
if version == ’scalar’: j=0
for i in Ix:
u[i,j] = U_0y(t[n+1])
# Boundary
for j in Iy[1:-1]:
i = 0; u[i,j] = U_0x(t[n+1]) # Boundary
i = Nx; u[i,j] = U_Lx(t[n+1]) # Boundary
# Interior points
for i in Ix[1:-1]:
u_new = 1.0/(1.0 + 2*theta*(Fx + Fy))*(theta*(
Fx*(u_[i+1,j] + u_[i-1,j]) +
Fy*(u_[i,j+1] + u_[i,j-1])) + \
u_n[i,j] + \
(1-theta)*(Fx*(
u_n[i+1,j] – 2*u_n[i,j] + u_n[i-1,j]) +
Fy*(
u_n[i,j+1] – 2*u_n[i,j] + u_n[i,j-1]))\
+ theta*dt*f(i*dx,j*dy,(n+1)*dt) + \
(1-theta)*dt*f(i*dx,j*dy,n*dt))
u[i,j] = omega*u_new + (1-omega)*u_[i,j]
j = Ny
for i in Ix:
u[i,j] = U_Ly(t[n+1]) # Boundary
elif version == ’vectorized’:
j = 0; u[:,j] = U_0y(t[n+1]) # Boundary
i = 0; u[i,:] = U_0x(t[n+1]) # Boundary
i = Nx; u[i,:] = U_Lx(t[n+1]) # Boundary
j = Ny; u[:,j] = U_Ly(t[n+1]) # Boundary
# Internal points
f_a_np1 = f(xv, yv, t[n+1])
f_a_n = f(xv, yv, t[n])
u_new = 1.0/(1.0 + 2*theta*(Fx + Fy))*(theta*(Fx*(
u_[2:,1:-1] + u_[:-2,1:-1]) +
Fy*(
u_[1:-1,2:] + u_[1:-1,:-2])) +\
u_n[1:-1,1:-1] + \
326 3 Diffusion equations
(1-theta)*(Fx*(
u_n[2:,1:-1] – 2*u_n[1:-1,1:-1] + u_n[:-2,1:-1]) +\
Fy*(
u_n[1:-1,2:] – 2*u_n[1:-1,1:-1] + u_n[1:-1,:-2]))\
+ theta*dt*f_a_np1[1:-1,1:-1] + \
(1-theta)*dt*f_a_n[1:-1,1:-1])
u[1:-1,1:-1] = omega*u_new + (1-omega)*u_[1:-1,1:-1]
r += 1
converged = np.abs(u-u_).max() < tol or r >= max_iter
u_[:,:] = u
# Update u_n before next step
u_n, u = u, u_n
The vectorized version should be quite straightforward to understand once one has an understanding of how a standard 2D finite stencil is vectorized.
The first natural verification is to use the test problem in the function quadratic from Section 3.6.5. This problem is known to have no approx- imation error, but any iterative method will produce an approximate solution with unknown error. For a tolerance 10−k in the iterative method, we can, e.g., use a slightly larger tolerance 10−(k−1) for the difference between the exact and the computed solution.
def quadratic(theta, Nx, Ny):
…
def assert_small_error(u, x, xv, y, yv, t, n):
“””Assert small error for iterative methods.”””
u_e = u_exact(xv, yv, t[n])
diff = abs(u – u_e).max()
tol = 1E-4
msg = ’diff=%g, step %d, time=%g’ % (diff, n, t[n])
assert diff < tol, msg
for version in ’scalar’, ’vectorized’:
for theta in 1, 0.5:
print ’testing Jacobi, %s version, theta=%g’ % \
(version, theta)
t, cpu = solver_Jacobi(
I=I, a=a, f=f, Lx=Lx, Ly=Ly, Nx=Nx, Ny=Ny,
dt=dt, T=T, theta=theta,
U_0x=0, U_0y=0, U_Lx=0, U_Ly=0,
user_action=assert_small_error,
version=version, iteration=’Jacobi’,
omega=1.0, max_iter=100, tol=1E-5)
Even for a very coarse 4×4 mesh, the Jacobi method requires 26 iterations to reach a tolerance of 10−5, which is quite many iterations, given that there are only 25 unknowns.
3.6 Diffusion in 2D
327
3.6.10 Test problem: diffusion of a sine hill
It can be shown that
−απ2(L−2+L−2)t π π
ue=Ae x y sin Lx sin Ly , (3.109)
xy
is a solution of the 2D homogeneous diffusion equation ut = α(uxx +uyy) in a rectangle [0, Lx ] × [0, Ly ], for any value of the amplitude A. This solution vanishes at the boundaries, and the initial condition is the product of two sines. We may choose A = 1 for simplicity.
It is difficult to know if our solver based on the Jacobi method works properly since we are faced with two sources of errors: one from the discretization, E∆, and one from the iterative Jacobi method, Ei. The total error in the computed u can be represented as
Eu = E∆ + Ei .
One error measure is to look at the maximum value, which is obtained for the midpoint x = Lx/2 and y = Lx/2. This midpoint is represented in the discrete u if Nx and Ny are even numbers. We can then compute Eu as Eu = |maxue −maxu|, when we know an exact solution ue of the problem.
What about E∆? If we use the maximum value as a measure of the error, we have in fact analytical insight into the approximation error in this particular problem. According to Section 3.3.9, the exact solution
(3.109) of the PDE problem is also an exact solution of the discrete
equations, except that the damping factor in time is different. More
precisely, (3.66) and (3.67) are solutions of the discrete problem for θ = 1
(Backward Euler) and θ = 1 (Crank-Nicolson), respectively. The factors 2
raised to the power n is the numerical amplitude, and the errors in these factors become
2 2n E∆=e−αk2t− 1−2(Fxsinpx+Fxsinpy) , θ=1,
1+2(Fx sin2 px +Fx sin2 py) 2 E∆ = e−αk2t −(1+4Fx sin2 px +4Fy sin2 py)−n, θ = 1.
We are now in a position to compute Ei numerically. That is, we can compute the error due to iterative solution of the linear system and see if it corresponds to the convergence tolerance used in the method. Note that the convergence is based on measuring the difference in two
328 3 Diffusion equations
consecutive approximations, which is not exactly the error due to the iteration, but it is a kind of measure, and it should have about the same size as Ei.
The function demo_classic_iterative in diffu2D_u0.py imple-
ments the idea above (also for the methods in Section 3.6.12). The
value of Ei is in particular printed at each time level. By changing the
tolerance in the convergence criterion in the Jacobi method, we can see
that Ei is of the same order of magnitude as the prescribed tolerance
in the Jacobi method. For example: E∆ ∼ 10−2 with Nx = Ny = 10
and θ = 1 , as long as max u has some significant size (max u > 0.02). 2
An appropriate value of the tolerance is then 10−3, such that the error in the Jacobi method does not become bigger than the discretization error. In that case, Ei is around 5 · 10−3. The corresponding number of Jacobi iterations (with ω = 1) varies from 31 to 12 during the time simulation (for max u > 0.02). Changing the tolerance to 10−5 causes many more iterations (61 to 42) without giving any contribution to the overall accuracy, because the total error is dominated by E∆.
Also, with an Nx = Ny = 20, the spatial accuracy increases and many more iterations are needed (143 to 45), but the dominating error is from the time discretization. However, with such a finer spatial mesh, a higher tolerance in the convergence criterion 10−4 is needed to keep Ei ∼ 10−3. More experiments show the disadvantage of the very simple Jacobi iteration method: the number of iterations increases with the number of unknowns, keeping the tolerance fixed, but the tolerance should also be lowered to avoid the iteration error to dominate the total error. A small adjustment of the Jacobi method, as described in Section 3.6.12, provides a better method.
3.6.11 The relaxed Jacobi method and its relation to the Forward Euler method
We shall now show that solving the Poisson equation −α∇2u = f by the Jacobi iterative method is in fact equivalent to using a Forward Euler schemeonut =α∇2u+f andlettingt→∞.
A Forward Euler discretization of the 2D diffusion equation,
[Dt+u = α(DxDxu + DyDyu) + f]ni,j, can be written out as
3.6 Diffusion in 2D
329
un+1 =un + ∆t un
i,j i,j αh2 i−1,j
+un i+1,j
+un i,j−1
+un i,j+1
−4un +h2f , i,j i,j
where h = ∆x = ∆y has been introduced for simplicity. The scheme can be reordered as
−4un +h2f , i,j i,j
un+1 = (1−ω)un +1ωun +un +un +un
i,j i,j 4 i−1,j i+1,j with
i,j−1 i,j+1
ω = 4 ∆t , αh2
but this latter form is nothing but the relaxed Jacobi method applied to
[DxDxu + DyDyu = −f]ni,j .
From the equivalence above we know a couple of things about the
Jacobi method for solving −∇2u = f:
1. The method is unstable if ω > 1 (since the Forward Euler method is then unstable).
2. The convergence is really slow as the iteration index increases (coming from the fact that the Forward Euler scheme requires many small time steps to reach the stationary solution).
These observations are quite disappointing: if we already have a time- dependent diffusion problem and want to take larger time steps by an implicit time discretization method, we will with the Jacobi method end up with something close to a slow Forward Euler simulation of the original problem at each time level. Nevertheless, the are two reasons for why the Jacobi method remains a fundamental building block for solving linear systems arising from PDEs: 1) a couple of iterations remove large parts of the error and this is effectively used in the very efficient class of multigrid methods; and 2) the idea of the Jacobi method can be developed into more efficient methods, especially the SOR method, which is treated next.
3.6.12 The Gauss-Seidel and SOR methods
If we update the mesh points according to the Jacobi method (3.99) for a Backward Euler discretization with a loop over i = 1, . . . , Nx − 1
330 3 Diffusion equations
and j = 1, . . . , Ny − 1, we realize that when un+1,r+1 is computed, i,j
un+1,r+1 and un+1,r+1 are already computed, so these new values can i−1,j i,j −1
be used rather than un+1,r and un+1,r (respectively) in the formula for i−1,j i,j −1
un+1,r+1. This idea gives rise to the Gauss-Seidel iteration method, which i,j
mathematically is just a small adjustment of (3.99): un+1,r+1 = (1 + 2Fx + 2Fy)−1((
i,j
Fx(un+1,r+1 +un+1,r)+Fy(un+1,r+1 +un+1,r))+uni,j +∆tfn+1).
i−1,j i,j i,j −1 i,j +1 i,j (3.110)
Observe that the way we access the mesh points in the formula (3.110) is important: points with i − 1 must be computed before points with i, and points with j − 1 must be computed before points with j. Any sequence of mesh points can be used in the Gauss-Seidel method, but the particular math formula must distinguish between already visited points in the current iteration and the points not yet visited.
The idea of relaxation (3.102) can equally well be applied to the Gauss- Seidel method. Actually, the Gauss-Seidel method with an arbitrary 0 < ω ≤ 2 has its own name: the Successive Over-Relaxation method, abbreviated as SOR.
The SOR method for a θ rule discretization, with the shortened u and u− notation, can be written
u∗i,j = (1 + 2θ(Fx + Fy))−1(θ(Fx(ui−1,j + u−i,j) + Fy(ui,j−1 + u−i,j+1))+ u(1) + θ∆tfn+1 + (1 − θ)∆tfn +
i,j i,j i,j (1 − θ)(Fx(u(1) − 2u(1) + u(1)
) + Fy(u(1) i,j −1
− 2u(1) + u(1) ))),
ui,j = ωu∗i,j + (1 − ω)u−i,j
(3.112)
i−1,j i,j i+1,j
i,j
i,j +1 (3.111)
The sequence of mesh points in (3.111) is i = 1,...,Nx − 1, j = 1,...,Ny − 1 (but whether i runs faster or slower than j does not matter).
3.6 Diffusion in 2D 331
3.6.13 Scalar implementation of the SOR method
Since the Jacobi and Gauss-Seidel methods with relaxation are so similar, we can easily make a common code for the two:
for n in It[0:-1]:
# Solve linear system by Jacobi/SOR iteration at time level n+1 u_[:,:] = u_n # Start value
converged = False
r=0
while not converged:
if version == ’scalar’:
if iteration == ’Jacobi’:
u__ = u_
elif iteration == ’SOR’:
u__ = u j=0
for i in Ix:
u[i,j] = U_0y(t[n+1]) # Boundary
for j in Iy[1:-1]:
i = 0; u[i,j] = U_0x(t[n+1]) # Boundary
i = Nx; u[i,j] = U_Lx(t[n+1]) # Boundary
for i in Ix[1:-1]:
u_new = 1.0/(1.0 + 2*theta*(Fx + Fy))*(theta*(
Fx*(u_[i+1,j] + u__[i-1,j]) +
Fy*(u_[i,j+1] + u__[i,j-1])) + \
u_n[i,j] + (1-theta)*(
Fx*(
u_n[i+1,j] - 2*u_n[i,j] + u_n[i-1,j]) +
Fy*(
u_n[i,j+1] - 2*u_n[i,j] + u_n[i,j-1]))\
+ theta*dt*f(i*dx,j*dy,(n+1)*dt) + \
(1-theta)*dt*f(i*dx,j*dy,n*dt))
u[i,j] = omega*u_new + (1-omega)*u_[i,j]
j = Ny
for i in Ix:
u[i,j] = U_Ly(t[n+1]) # boundary
r += 1
converged = np.abs(u-u_).max() < tol or r >= max_iter
u_[:,:] = u
u_n, u = u, u_n # Get ready for next iteration
The idea here is to introduce u__ to be used for already computed values (u) in the Gauss-Seidel/SOR version of the implementation, or just values
from the previous iteration (u_) in case of the Jacobi method. 3.6.14 Vectorized implementation of the SOR method
Vectorizing the Gauss-Seidel iteration step turns out to be non-trivial. The problem is that vectorized operations typically imply operations
332 3 Diffusion equations
on arrays where the sequence we visit the elements in does not matter. In particular, this principle makes vectorized code trivial to parallelize. However, in the Gauss-Seidel algorithm the sequence we visit the elements in the arrays does matter, and it is well known that the basic method as explained above cannot be parallelized. Therefore, also vectorization will require new thinking.
The strategy for vectorizing (and parallelizing) the Gauss-Seidel method is to use a special numbering of the mesh points called red- black numbering: every other point is red or black as in a checkerboard pattern. This numbering requires Nx and Ny to be even numbers. Here is an example of a 6×6 mesh:
The idea now is to first update all the red points. Each formula for updating a red point involves only the black neighbors. Thereafter, we update all the black points, and at each black point, only the recently computed red points are involved.
The scalar implementation of the red-black numbered Gauss-Seidel method is really compact, since we can update values directly in u (that guarantees that we use the most recently computed values). Here is the relevant code for the Backward Euler scheme in time and without a source term:
rbrbrbr brbrbrb rbrbrbr brbrbrb rbrbrbr brbrbrb rbrbrbr
# Update internal points
for sweep in ’red’, ’black’:
for j in range(1, Ny, 1):
if sweep == ’red’:
start = 1 if j % 2 == 1 else 2
elif sweep == ’black’:
start = 2 if j % 2 == 1 else 1
for i in range(start, Nx, 2):
u[i,j] = 1.0/(1.0 + 2*(Fx + Fy))*(
Fx*(u[i+1,j] + u[i-1,j]) +
Fy*(u[i,j+1] + u[i,j-1]) + u_n[i,j])
The vectorized version must be based on slices. Looking at a typical red-black pattern, e.g.,
rbrbrbr brbrbrb rbrbrbr
3.6 Diffusion in 2D 333
brbrbrb rbrbrbr brbrbrb rbrbrbr
we want to update the internal points (marking boundary points with x):
It is impossible to make one slice that picks out all the internal red points. Instead, we need two slices. The first involves points marked with R:
This slice is specified as 1::2 for i and 1::2 for j, or with slice objects: i = slice(1, None, 2); j = slice(1, None, 2)
The second slice involves the red points with R:
The slices are
i = slice(2, None, 2); j = slice(2, None, 2)
For the black points, the first slice involves the B points:
xxxxxxx xrbrbrx xbrbrbx xrbrbrx xbrbrbx xrbrbrx xxxxxxx
xxxxxxx xRbRbRx xbrbrbx xRbRbRx xbrbrbx xRbRbRx xxxxxxx
xxxxxxx xrbrbrx xbRbRbx xrbrbrx xbRbRbx xrbrbrx xxxxxxx
xxxxxxx xrBrBrx xbrbrbx xrBrBrx xbrbrbx xrBrBrx xxxxxxx
334 3 Diffusion equations
with slice objects
i = slice(2, None, 2); j = slice(1, None, 2) The second set of black points is shown here:
with slice objects
i = slice(1, None, 2); j = slice(2, None, 2)
That is, we need four sets of slices. The simplest way of implementing the algorithm is to make a function with variables for the slices repre- senting i, i−1, i+1, j, j −1, and j +1, here called ic (“i center”), im1
(“i minus 1”, ip1 (“i plus 1”), jc, jm1, and jp1, respectively.
xxxxxxx xrbrbrx xBrBrBx xrbrbrx xBrBrBx xrbrbrx xxxxxxx
def update(u_, u_n, ic, im1, ip1, jc, jm1, jp1):
return \
1.0/(1.0 + 2*theta*(Fx + Fy))*(theta*(
Fx*(u_[ip1,jc] + u_[im1,jc]) +
Fy*(u_[ic,jp1] + u_[ic,jm1])) +\
u_n[ic,jc] + (1-theta)*(
Fx*(u_n[ip1,jc] – 2*u_n[ic,jc] + u_n[im1,jc]) +\
Fy*(u_n[ic,jp1] – 2*u_n[ic,jc] + u_n[ic,jm1]))+\
theta*dt*f_a_np1[ic,jc] + \
(1-theta)*dt*f_a_n[ic,jc])
The formula returned from update is to be compared with (3.111). The relaxed Jacobi iteration can be implemented by
The Gauss-Seidel (or SOR) updates need four different steps. The ic and jc slices are specified above. For each of these, we must specify the corresponding im1, ip1, jm1, and jp1 slices. The code below contains the details.
ic = jc = slice(1,-1)
im1 = jm1 = slice(0,-2)
ip1 = jp1 = slice(2,None)
u_new[ic,jc] = update(
u_, u_n, ic, im1, ip1, jc, jm1, jp1)
u[ic,jc] = omega*u_new[ic,jc] + (1-omega)*u_[ic,jc]
# Red points
ic = slice(1,-1,2)
im1 = slice(0,-2,2)
3.6 Diffusion in 2D 335
ip1 = slice(2,None,2)
jc = slice(1,-1,2)
jm1 = slice(0,-2,2)
jp1 = slice(2,None,2)
u_new[ic,jc] = update(
u_new, u_n, ic, im1, ip1, jc, jm1, jp1)
ic = slice(2,-1,2)
im1 = slice(1,-2,2)
ip1 = slice(3,None,2)
jc = slice(2,-1,2)
jm1 = slice(1,-2,2)
jp1 = slice(3,None,2)
u_new[ic,jc] = update(
u_new, u_n, ic, im1, ip1, jc, jm1, jp1)
# Black points
ic = slice(2,-1,2)
im1 = slice(1,-2,2)
ip1 = slice(3,None,2)
jc = slice(1,-1,2)
jm1 = slice(0,-2,2)
jp1 = slice(2,None,2)
u_new[ic,jc] = update(
u_new, u_n, ic, im1, ip1, jc, jm1, jp1)
ic = slice(1,-1,2)
im1 = slice(0,-2,2)
ip1 = slice(2,None,2)
jc = slice(2,-1,2)
jm1 = slice(1,-2,2)
jp1 = slice(3,None,2)
u_new[ic,jc] = update(
u_new, u_n, ic, im1, ip1, jc, jm1, jp1)
# Relax
c = slice(1,-1)
u[c,c] = omega*u_new[c,c] + (1-omega)*u_[c,c]
The function solver_classic_iterative in diffu2D_u0.py con- tains a unified implementation of the relaxed Jacobi and SOR methods in scalar and vectorized versions using the techniques explained above.
3.6.15 Direct versus iterative methods
Direct methods. There are two classes of methods for solving linear systems: direct methods and iterative methods. Direct methods are based on variants of the Gaussian elimination procedure and will produce an exact solution (in exact arithmetics) in an a priori known number of steps. Iterative methods, on the other hand, produce an approximate
336 3 Diffusion equations
solution, and the amount of work for reaching a given accuracy is usually not known.
The most common direct method today is to use the LU factorization
procedure to factor the coefficient matrix A as the product of a lower-
triangular matrix L (with unit diagonal terms) and an upper-triangular
matrix U: A = LU. As soon as we have L and U, a system of equations
LUc = b is easy to solve because of the triangular nature of L and U. We
first solve Ly = b for y (forward substitution), and thereafter we find c
from solving U c = y (backward substitution). When A is a dense N × N
matrix, the LU factorization costs 1N3 arithmetic operations, while the 3
forward and backward substitution steps each require of the order N2 arithmetic operations. That is, factorization dominates the costs, while the substitution steps are cheap.
Symmetric, positive definite coefficient matrices often arise when discretizing PDEs. In this case, the LU factorization becomes A = LLT , and the associated algorithm is known as Cholesky factorization. Most linear algebra software offers highly optimized implementations of LU and Cholesky factorization as well as forward and backward substitution
(scipy.linalg is the relevant Python package).
Finite difference discretizations lead to sparse coefficient matrices.
An extreme case arose in Section 3.2.1 where A was tridiagonal. For a tridiagonal matrix, the amount of arithmetic operations in the LU and Cholesky factorization algorithms is just of the order N, not N3. Tridiagonal matrices are special cases of banded matrices, where the matrices contain just a set of diagonal bands. Finite difference methods on regularly numbered rectangular and box-shaped meshes give rise to such banded matrices, with 5 bands in 2D and 7 in 3D for diffusion problems. Gaussian elimination only needs to work within the bands, leading to much more efficient algorithms.
IfAi,j =0forj>i+pandj p with probability 1 − p:
3.7 Random walk 345
import random
r = random.uniform(0, 1)
if r <= p:
# Event happens
else:
# Event does not happen
A random walk with N steps, starting at x0, where we move to the left with probability p and to the right with probability 1 − p can now be implemented by
import random, numpy as np
def random_walk1D(x0, N, p):
"""1D random walk with 1 particle."""
# Store position in step k in position[k]
position = np.zeros(N)
position[0] = x0
current_pos = x0
for k in range(N-1):
r = random.uniform(0, 1)
if r <= p:
current_pos -= 1
else:
current_pos += 1
position[k+1] = current_pos
return position
Vectorized code. Since N is supposed to be large and we want to repeat the process for many particles, we should speed up the code as much as possible. Vectorization is the obvious technique here: we draw all the ran- dom numbers at once with aid of numpy, and then we formulate vector op- erations to get rid of the loop over the steps (k). The numpy.random mod- ule has vectorized versions of the functions in Python’s built-in random module. For example, numpy.random.uniform(a, b, N) returns N ran- dom numbers uniformly distributed between a (included) and b (not included).
We can then make an array of all the steps in a random walk: if the random number is less than or equal to p, the step is −1, otherwise the step is 1:
The value of position[k] is the sum of all steps up to step k. Such sums are often needed in vectorized algorithms and therefore available by the numpy.cumsum function:
r = np.random.uniform(0, 1, size=N)
steps = np.where(r <= p, -1, 1)
346 3 Diffusion equations
>>> import numpy as np
>>> np.cumsum(np.array([1,3,4,6]))
array([ 1, 4, 8, 14])
The resulting array in this demo has elements 1, 1+3 = 4, 1+3+4 = 8, and 1 + 3 + 4 + 6 = 14.
We can now vectorize the random_walk1D function:
def random_walk1D_vec(x0, N, p):
“””Vectorized version of random_walk1D.”””
# Store position in step k in position[k]
position = np.zeros(N+1)
position[0] = x0
r = np.random.uniform(0, 1, size=N)
steps = np.where(r <= p, -1, 1)
position[1:] = x0 + np.cumsum(steps)
return position
This code runs about 10 times faster than the scalar version. With a parallel numpy library, the code can also automatically take advantage of hardware for parallel computing because each of the four array operations can be trivially parallelized.
Fixing the random sequence. During software development with ran- dom numbers it is advantageous to always generate the same sequence of random numbers as this may help debugging processes. To fix the sequence, we set a seed of the random number generator to some chosen integer, e.g.,
np.random.seed(10)
Calls to random_walk1D_vec give positions of the particle as depicted
in Figure 3.17. The particle starts at the origin and moves with p = 1 . 2
Since the seed is the same, the plot to the left is just a magnification of the first 1,000 steps in the plot to the right.
25 20 15 10
5 0 5
10
0 200
400
600
800
1000
150 100 50 0 50 100 150 200 250
0 10000 20000
30000 40000
50000
Fig. 3.17 1,000 (left) and 50,000 (right) steps of a random walk.
3.7 Random walk 347
Verification. When we have a scalar and a vectorized code, it is always a good idea to develop a unit test for checking that they produce the same result. A problem in the present context is that the two versions apply to different random number generators. For a test to be meaningful, we need to fix the seed and use the same generator. This means that the scalar version must either use np.random or have this as an option. An option is the most flexible choice:
Using random=np.random, the r variable gets computed by np.random.uniform, and the sequence of random numbers will be the same as in the vectorized version that employs the same generator (given that the seed is also the same). A proper test function may be to check that the positions in the walk are the same in the scalar and vectorized implementations:
Note that we employ == for arrays with real numbers, which is normally an inadequate test due to rounding errors, but in the present case, all arithmetics consists of adding or subtracting one, so these operations are expected to have no rounding errors. Comparing two numpy arrays with == results in a boolean array, so we need to call the all() method to ensure that all elements are True, i.e., that all elements in the two arrays match each other pairwise.
3.7.4 Equivalence with diffusion
The original random walk algorithm can be said to work with dimen-
sionless coordinates x ̄i = −N + i, i = 0,1,...,2N + 1 (i ∈ [−N,N]),
and t ̄ = n, n = 0,1,...,N. A mesh with spacings ∆x and ∆t with n
dimensions can be introduced by
import random
def random_walk1D(x0, N, p, random=random):
...
r = random.uniform(0, 1)
def test_random_walk1D():
# For fixed seed, check that scalar and vectorized versions # produce the same result
x0=2; N=4; p=0.6
np.random.seed(10)
scalar_computed = random_walk1D(x0, N, p, random=np.random) np.random.seed(10)
vectorized_computed = random_walk1D_vec(x0, N, p)
assert (scalar_computed == vectorized_computed).all()
348
3 Diffusion equations
x=X+x ̄∆x, t=t ̄∆t. i0inn
If we implement the algorithm with dimensionless coordinates, we can just use this rescaling to obtain the movement in a coordinate system without unit spacings.
Let Pn+1 be the probability of finding the particle at mesh point x ̄i at i
time t ̄ . We can reach mesh point (i, n + 1) in two ways: either coming n+1
in from the left from (i − 1,n) or from the right (i + 1,n). Each has probability 1 (if we assume p = q = 1 ). The fundamental equation for
Pn+1 is i
22
Pn+1 = 1Pn + 1Pn . (3.114) i 2 i−1 2 i+1
(This equation is easiest to understand if one looks at the random walk as a Markov process and applies the transition probabilities, but this is beyond scope of the present text.)
Subtracting Pin from (3.7.1) results in Pn+1−Pn=1(Pn −2Pn+1Pn ).
i i 2i−1 i 2i+1
Readers who have seen the Forward Euler discretization of a 1D diffusion equation recognize this scheme as very close to such a discretization. We have
∂ Pn+1 −Pn P(xi,tn)= i i +O(∆t),
∂t ∆t
or in dimensionless coordinates
∂ P (x ̄ , t ̄ ) ≈ P n+1 − P n .
Similarly, we have
∂x2 ∆x2
∂2 ̄n n1n
∂t ̄in i i
∂2 Pn −2Pn+1Pn
P(xi,tn)= i−1 i 2 i+1 +O(∆x2),
∂x2P(x ̄i,tn)≈Pi−1−2Pi +2Pi+1.
Equation (3.7.1) is therefore equivalent with the dimensionless diffusion equation
3.7 Random walk
349
or the diffusion equation
with diffusion coefficient
∂P = 1 ∂2P , ∂t ̄ 2∂x ̄2
∂P =D∂2P, ∂t ∂x2
∆x2 D = 2∆t .
(3.115)
(3.116)
This derivation shows the tight link between random walk and diffusion. If we keep track of where the particle is, and repeat the process many times, or run the algorithms for lots of particles, the histogram of the positions will approximate the solution of the diffusion equation for the local probability Pin.
Suppose all the random walks start at the origin. Then the initial condition for the probability distribution is the Dirac delta function δ(x). The solution of (3.115) can be shown to be
̄ ̄ 1 −x2 P(x ̄,t)=√4παte 4αt,
(3.117)
where α = 1 . 2
3.7.5 Implementation of multiple walks
Our next task is to implement an ensemble of walks (for statistics, see Section 3.7.2) and also provide data from the walks such that we can compute the probabilities of the positions as introduced in the previous section. An appropriate representation of probabilities Pin are histograms
(with i along the x axis) for a few selected values of n.
To estimate the expectation and variance of the random walks, Sec- tion 3.7.2 points to recording j xj,k and j x2j,k, where xj,k is the
position at time/step level k in random walk number j. The histogram of positions needs the individual values xi,k for all i values and some selected k values.
We introduce position[k] to hold j xj,k, position2[k] to hold j(xj,k)2, and pos_hist[i,k] to hold xi,k. A selection of k values can be specified by saying how many, num_times, and let them be equally spaced through time:
350 3 Diffusion equations
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
This is one of the few situations we want integer division (//) or real
division rounded to an integer.
Scalar version. Our scalar implementation of running num_walks ran- dom walks may go like this:
def random_walks1D(x0, N, p, num_walks=1, num_times=1,
random=random):
"""Simulate num_walks random walks from x0 with N steps."""
position = np.zeros(N+1) # Accumulated positions
position[0] = x0*num_walks
position2 = np.zeros(N+1) # Accumulated positions**2
position2[0] = x0**2*num_walks
# Histogram at num_times selected time points
pos_hist = np.zeros((num_walks, num_times))
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
#print ’save hist:’, post_hist_times
for n in range(num_walks):
num_times_counter = 0
current_pos = x0
for k in range(N):
if k in pos_hist_times:
#print ’save, k:’, k, num_times_counter, n
pos_hist[n,num_times_counter] = current_pos
num_times_counter += 1
# current_pos corresponds to step k+1
r = random.uniform(0, 1)
if r <= p:
current_pos -= 1
else:
current_pos += 1
position [k+1] += current_pos
position2[k+1] += current_pos**2
return position, position2, pos_hist, np.array(pos_hist_times)
Vectorized version. We have already vectorized a single random walk. The additional challenge here is to vectorize the computation of the data for the histogram, pos_hist, but given the selected steps in pos_hist_times, we can find the corresponding positions by indexing with the list pos_hist_times: position[post_hist_times], which are to be inserted in pos_hist[n,:].
def random_walks1D_vec1(x0, N, p, num_walks=1, num_times=1):
"""Vectorized version of random_walks1D."""
position = np.zeros(N+1)
position2 = np.zeros(N+1)
walk = np.zeros(N+1)
walk[0] = x0
# Accumulated positions
# Accumulated positions**2
# Positions of current walk
3.7 Random walk 351
# Histogram at num_times selected time points
pos_hist = np.zeros((num_walks, num_times))
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
for n in range(num_walks):
r = np.random.uniform(0, 1, size=N)
steps = np.where(r <= p, -1, 1)
walk[1:] = x0 + np.cumsum(steps) # Positions of this walk
position += walk
position2 += walk**2
pos_hist[n,:] = walk[pos_hist_times]
return position, position2, pos_hist, np.array(pos_hist_times)
Improved vectorized version. Looking at the vectorized version above, we still have one potentially long Python loop over n. Normally, num_walks will be much larger than N. The vectorization of the loop over N certainly speeds up the program, but if we think of vectorization as also a way to parallelize the code, all the independent walks (the n loop) can be executed in parallel. Therefore, we should include this loop as well in the vectorized expressions, at the expense of using more memory.
We introduce the array walks to hold the N + 1 steps of all the walks: each row represents the steps in one walk.
Since all the steps are independent, we can just make one long vector of enough random numbers (N*num_walks), translate these numbers to ±1, then we reshape the array such that the steps of each walk are stored in the rows.
The next step is to sum up the steps in each walk. We need the np.cumsum function for this, with the argument axis=1 for indicating a sum across the columns:
Now walks can be computed by walks[:,1:] = x0 + np.cumsum(steps, axis=1)
walks = np.zeros((num_walks, N+1)) # Positions of each walk
walks[:,0] = x0
r = np.random.uniform(0, 1, size=N*num_walks)
steps = np.where(r <= p, -1, 1).reshape(num_walks, N)
>>> a = np.arange(6).reshape(2,3)
>>> a
array([[0, 1, 2],
[3, 4, 5]])
>>> np.cumsum(a, axis=1)
array([[ 0, 1, 3],
[ 3, 7, 12]])
352 3 Diffusion equations
The position vector is the sum of all the walks. That is, we want to sum all the rows, obtained by
position = np.sum(walks, axis=0)
A corresponding expression computes the squares of the positions. Finally, we need to compute pos_hist, but that is a matter of grabbing some of the walks (according to pos_hist_times):
pos_hist[:,:] = walks[:,pos_hist_times]
The complete vectorized algorithm without any loop can now be summa-
rized:
def random_walks1D_vec2(x0, N, p, num_walks=1, num_times=1):
“””Vectorized version of random_walks1D; no loops.”””
position = np.zeros(N+1) # Accumulated positions
position2 = np.zeros(N+1) # Accumulated positions**2
walks = np.zeros((num_walks, N+1)) # Positions of each walk
walks[:,0] = x0
# Histogram at num_times selected time points
pos_hist = np.zeros((num_walks, num_times))
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
r = np.random.uniform(0, 1, size=N*num_walks)
steps = np.where(r <= p, -1, 1).reshape(num_walks, N)
walks[:,1:] = x0 + np.cumsum(steps, axis=1)
position = np.sum(walks, axis=0)
position2 = np.sum(walks**2, axis=0)
pos_hist[:,:] = walks[:,pos_hist_times]
return position, position2, pos_hist, np.array(pos_hist_times)
What is the gain of the vectorized implementations? One important gain is that each vectorized operation can be automatically parallelized if one applies a parallel numpy library like Numba. On a single CPU, however, the speed up of the vectorized operations is also significant. With N = 1,000 and 50,000 repeated walks, the two vectorized ver- sions run about 25 and 18 times faster than the scalar version, with random_walks1D_vec1 being fastest.
Remark on vectorized code and parallelization. Our first attempt on vectorization removed the loop over the N steps in a single walk. However, the number of walks is usually much larger than N, because of the need for accurate statistics. Therefore, we should rather remove the loop over all walks. It turns out, from our efficiency experiments, that the function random_walks1D_vec2 (with no loops) is slower than random_walks1D_vec1. This is a bit surprising and may be explained by less efficiency in the statements involving very large arrays, containing all steps for all walks at once.
3.7 Random walk 353
From a parallelization and improved vectorization point of view, it would be more natural to switch the sequence of the loops in the serial code such that the shortest loop is the outer loop:
def random_walks1D2(x0, N, p, num_walks=1, num_times=1, ...):
...
current_pos = x0 + np.zeros(num_walks)
num_times_counter = -1
for k in range(N):
if k in pos_hist_times:
num_times_counter += 1
store_hist = True
else:
store_hist = False
for n in range(num_walks):
# current_pos corresponds to step k+1
r = random.uniform(0, 1)
if r <= p:
current_pos[n] -= 1
else:
current_pos[n] += 1
position [k+1] += current_pos[n]
position2[k+1] += current_pos[n]**2
if store_hist:
pos_hist[n,num_times_counter] = current_pos[n]
return position, position2, pos_hist, np.array(pos_hist_times)
The vectorized version of this code, where we just vectorize the loop over n, becomes
def random_walks1D2_vec1(x0, N, p, num_walks=1, num_times=1):
"""Vectorized version of random_walks1D2."""
position = np.zeros(N+1) # Accumulated positions
position2 = np.zeros(N+1) # Accumulated positions**2
# Histogram at num_times selected time points
pos_hist = np.zeros((num_walks, num_times))
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
current_pos = np.zeros(num_walks)
current_pos[0] = x0
num_times_counter = -1
for k in range(N):
if k in pos_hist_times:
num_times_counter += 1
store_hist = True # Store histogram data for this k
else:
store_hist = False
# Move all walks one step
r = np.random.uniform(0, 1, size=num_walks)
354 3 Diffusion equations
steps = np.where(r <= p, -1, 1)
current_pos += steps
position[k+1] = np.sum(current_pos)
position2[k+1] = np.sum(current_pos**2)
if store_hist:
pos_hist[:,num_times_counter] = current_pos
return position, position2, pos_hist, np.array(pos_hist_times)
This function runs significantly faster than the random_walks1D_vec1 function above, typically 1.7 times faster. The code is also more appro- priate in a parallel computing context since each vectorized statement can work with data of size num_walks over the compute units, repeated N times (compared with data of size N, repeated num_walks times, in random_walks1D_vec1).
The scalar code with switched loops, random_walks1D2 runs a bit slower than the original code in random_walks1D, so with the longest loop as the inner loop, the vectorized function random_walks1D2_vec1 is almost 60 times faster than the scalar counterpart, while the code random_walks1D_vec2 without loops is only around 18 times faster. Taking into account the very large arrays required by the latter function, we end up with random_walks1D2_vec1 as the preferred implementation.
Test function. During program development, it is highly recommended to carry out computations by hand for, e.g., N=4 and num_walks=3. Normally, this is done by executing the program with these parameters and checking with pen and paper that the computations make sense. The next step is to use this test for correctness in a formal test function.
First, we need to check that the simulation of multiple random walks reproduces the results of random_walk1D, random_walk1D_vec1, and random_walk1D_vec2 for the first walk, if the seed is the same. Second, we run three random walks (N=4) with the scalar and the two vectorized versions and check that the returned arrays are identical.
For this type of test to be successful, we must be sure that exactly the same set of random numbers are used in the three versions, a fact that requires the same random number generator and the same seed, of course, but also the same sequence of computations. This is not obviously the case with the three random_walk1D* functions we have presented. The critical issue in random_walk1D_vec1 is that the first random numbers are used for the first walk, the second set of random numbers is used for the second walk and so, to be compatible with how the random numbers are used in the function random_walk1D. For the function random_walk1D_vec2 the situation is a bit more complicated since we generate all the random numbers at once. However, the critical step now is the reshaping of the
3.7 Random walk 355
array returned from np.where: we must reshape as (num_walks, N) to ensure that the first N random numbers are used for the first walk, the next N numbers are used for the second walk, and so on.
We arrive at the test function below.
def test_random_walks1D():
# For fixed seed, check that scalar and vectorized versions # produce the same result
x0=0; N=4; p=0.5
# First, check that random_walks1D for 1 walk reproduces
# the walk in random_walk1D
num_walks = 1
np.random.seed(10)
computed = random_walks1D(
x0, N, p, num_walks, random=np.random)
np.random.seed(10)
expected = random_walk1D(
x0, N, p, random=np.random)
assert (computed[0] == expected).all()
# Same for vectorized versions
np.random.seed(10)
computed = random_walks1D_vec1(x0, N, p, num_walks)
np.random.seed(10)
expected = random_walk1D_vec(x0, N, p)
assert (computed[0] == expected).all()
np.random.seed(10)
computed = random_walks1D_vec2(x0, N, p, num_walks)
np.random.seed(10)
expected = random_walk1D_vec(x0, N, p)
assert (computed[0] == expected).all()
# Second, check multiple walks: scalar == vectorized
num_walks = 3
num_times = N
np.random.seed(10)
serial_computed = random_walks1D(
x0, N, p, num_walks, num_times, random=np.random)
np.random.seed(10)
vectorized1_computed = random_walks1D_vec1(
x0, N, p, num_walks, num_times)
np.random.seed(10)
vectorized2_computed = random_walks1D_vec2(
x0, N, p, num_walks, num_times)
# positions: [0, 1, 0, 1, 2]
# Can test without tolerance since everything is +/- 1
return_values = [’pos’, ’pos2’, ’pos_hist’, ’pos_hist_times’]
for s, v, r in zip(serial_computed,
vectorized1_computed,
return_values):
msg = ’%s: %s (serial) vs %s (vectorized)’ % (r, s, v)
assert (s == v).all(), msg
356 3 Diffusion equations
for s, v, r in zip(serial_computed,
vectorized2_computed,
return_values):
msg = ’%s: %s (serial) vs %s (vectorized)’ % (r, s, v)
assert (s == v).all(), msg
Such test functions are indispensable for further development of the code as we can at any time test whether the basic computations remain correct or not. This is particularly important in stochastic simulations since without test functions and fixed seeds, we always experience variations from run to run, and it can be very difficult to spot bugs through averaged statistical quantities.
3.7.6 Demonstration of multiple walks
Assuming now that the code works, we can just scale up the number of steps in each walk and the number of walks. The latter influences the accuracy of the statistical estimates. Figure 3.18 shows the impact of the number of walks on the expectation, which should approach zero. Figure 3.19 displays the corresponding estimate of the variance of the position, which should grow linearly with the number of steps. It does, seemingly very accurately, but notice that the scale on the y axis is so much larger than for the expectation, so irregularities due to the stochastic nature of the process become so much less visible in the variance plots. The probability of finding a particle at a certain position at time (or step) 800 is shown in Figure 3.20. The dashed red line is the theoretical distribution (3.117) arising from solving the diffusion equation (3.115) instead. As always, we realize that one needs significantly more statistical samples to estimate a histogram accurately than the expectation or variance.
3.7 Random walk
357
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Expected position (100000 walks)
Fig. 3.18
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200 400
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Estimated expected value for 1000 steps, using 100 walks (upper left), 10,000 (upper right), 100,000 (lower left), and 1,000,000 (lower right).
358 3 Diffusion equations
1200
Variance of position (100 walks)
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Fig. 3.19 Estimated variance over 1000 steps, using 100 walks (upper left), 10,000 (upper right), 100,000 (lower left), and 1,000,000 (lower right).
3.7 Random walk 359
0.025
Histogram of positions (100 walks)
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Histogram of positions (100000 walks)
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Histogram of positions (1000000 walks)
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Fig. 3.20 Estimated probability distribution at step 800, using 100 walks (upper left), 10,000 (upper right), 100,000 (lower left), and 1,000,000 (lower right).
360 3 Diffusion equations
3.7.7 Ascii visualization of 1D random walk
If we want to study (very) long time series of random walks, it can be convenient to plot the position in a terminal window with the time axis pointing downwards. The module avplotter in SciTools has a class Plotter for plotting functions in the terminal window with the aid of ascii symbols only. Below is the code required to visualize a simple random walk, starting at the origin, and considered over when the point x = −1 is reached. We use a spacing ∆x = 0.05 (so x = −1 corresponds to i = −20).
def run_random_walk():
from scitools.avplotter import Plotter
import time, numpy as np
p = Plotter(-1, 1, width=75)
dx = 0.05
np.random.seed(10)
x=0
while True:
random_step = 1 if np.random.random() > 0.5 else -1
x = x + dx*random_step
if x < -1:
break # Destination reached!
print p.plot(0, x)
# Allow Ctrl+c to abort the simulation
try:
time.sleep(0.1) # Wait for interrupt
except KeyboardInterrupt:
print ’Interrupted by Ctrl+c’
break
# Horizontal axis: 75 chars wide
Observe that we implement an infinite loop, but allow a smooth inter- rupt of the program by Ctrl+c through Python’s KeyboardInterrupt exception. This is a useful recipe that can be used in many occasions!
The output looks typically like
*| *| *| *| *| *| *| *| *| *| *| *|
3.7 Random walk 361
*| *| *| *| *| *|
Positions beyond the limits of the x axis appear with a value. A long file contains the complete ascii plot corresponding to the function run_random_walk above.
3.7.8 Random walk as a stochastic equation
The (dimensionless) position in a random walk, X ̄k, can be expressed as a stochastic difference equation:
X ̄k = X ̄k−1 + s, x0 = 0, (3.118) where s is a Bernoulli variable, taking on the two values s = −1 and
s = 1 with equal probability:
P(s=1)= 1, P(s=−1)= 1.
22
The s variable in a step is independent of the s variable in other steps.
The difference equation expresses essentially the sum of independent Bernoulli variables. Because of the central limit theorem, Xk, will then be normally distributed with expectation kE[s] and kVar[s]. The expectation and variance of a Bernoulli variable with values r = 0 and r = 1 are p and p(1 − p), respectively. The variable s = 2r − 1 then has expectation 2E[r]−1 = 2p−1 = 0 and variance 22Var[r] = 4p(1−p) = 1. The position Xk is normally distributed with zero expectation and variance k, as we found in Section 3.7.2.
The central limit theorem tells that as long as k is not small, the distribution of Xk remains the same if we replace the Bernoulli variable s by any other stochastic variable with the same expectation and variance. In particular, we may let s be a standardized Gaussian variable (zero mean, unit variance).
Dividing (3.118) by ∆t gives
X ̄ k − X ̄ k − 1 = 1 s . ∆t ∆t
362 3 Diffusion equations
In the limit ∆t → 0, s/∆t approaches a white noise stochastic process. With X ̄(t) as the continuous process in the limit ∆t → 0 (Xk → X(tk)), we formally get the stochastic differential equation
dX ̄ = dW, (3.119)
where W(t) is a Wiener process. Then X is also a Wiener process. It follows from the stochastic ODE dX = dW that the probability distribution of X is given by the Fokker-Planck equation (3.115). In other words, the key results for random walk we found earlier can alternatively be derived via a stochastic ordinary differential equation and its related Fokker-Planck equation.
3.7.9 Random walk in 2D
The most obvious generalization of 1D random walk to two spatial
dimensions is to allow movements to the north, east, south, and west,
with equal probability 1 . 4
def random_walk2D(x0, N, p, random=random):
"""2D random walk with 1 particle and N moves: N, E, W, S."""
# Store position in step k in position[k]
d = len(x0)
position = np.zeros((N+1, d))
position[0,:] = x0
current_pos = np.array(x0, dtype=float)
for k in range(N):
r = random.uniform(0, 1)
if r <= 0.25:
current_pos += np.array([0, 1])
elif 0.25 < r <= 0.5:
current_pos += np.array([1, 0])
elif 0.5 < r <= 0.75:
# Move north
# Move east
current_pos += np.array([0, -1]) # Move south
else:
current_pos += np.array([-1, 0]) # Move west
position[k+1,:] = current_pos
return position
The left plot in Figure 3.21 provides an example on 200 steps with this kind of walk. We may refer to this walk as a walk on a rectangular mesh as we move from any spatial mesh point (i, j) to one of its four neighbors in the rectangular directions: (i + 1, j), (i − 1, j), (i, j + 1), or (i, j − 1).
3.7 Random walk 363
4 2 0 2 4 6 8
10
4 2 0 2 4 6 8 10
10
8
6
4
2
0
2
12 10 8 6 4 2 0 2 4 6
Fig. 3.21 Random walks in 2D with 200 steps: rectangular mesh (left) and diagonal mesh (right).
3.7.10 Random walk in any number of space dimensions
From a programming point of view, especially when implementing a random walk in any number of dimensions, it is more natural to consider a walk in the diagonal directions NW, NE, SW, and SE. On a two- dimensional spatial mesh it means that we go from (i, j) to either (i + 1, j + 1), (i − 1, j + 1), (i + 1, j − 1), or (i − 1, j − 1). We can with such a diagonal mesh (see right plot in Figure 3.21) draw a Bernoulli variable for the step in each spatial direction and trivially write code that works in any number of spatial directions:
def random_walkdD(x0, N, p, random=random):
"""Any-D (diagonal) random walk with 1 particle and N moves."""
# Store position in step k in position[k]
d = len(x0)
position = np.zeros((N+1, d))
position[0,:] = x0
current_pos = np.array(x0, dtype=float)
for k in range(N):
for i in range(d):
r = random.uniform(0, 1)
if r <= p:
current_pos[i] -= 1
else:
current_pos[i] += 1
position[k+1,:] = current_pos
return position
A vectorized version is desired. We follow the ideas from Section 3.7.3, but each step is now a vector in d spatial dimensions. We therefore need to draw Nd random numbers in r, compute steps in the various directions through np.where(r <=p, -1, 1) (each step being −1 or 1), and then we can reshape this array to an N × d array of step vectors. Doing an
364 3 Diffusion equations
np.cumsum summation along axis 0 will add the vectors, as this demo shows:
With such summation of step vectors, we get all the positions to be filled in the position array:
>>> a = np.arange(6).reshape(3,2)
>>> a
array([[0, 1],
[2, 3],
[4, 5]])
>>> np.cumsum(a, axis=0)
array([[ 0, 1],
[ 2, 4],
[ 6, 9]])
def random_walkdD_vec(x0, N, p):
“””Vectorized version of random_walkdD.”””
d = len(x0)
# Store position in step k in position[k]
position = np.zeros((N+1,d))
position[0] = np.array(x0, dtype=float)
r = np.random.uniform(0, 1, size=N*d)
steps = np.where(r <= p, -1, 1).reshape(N,d)
position[1:,:] = x0 + np.cumsum(steps, axis=0)
return position
3.7.11 Multiple random walks in any number of space dimensions
As we did in 1D, we extend one single walk to a number of walks (num_walks in the code).
Scalar code. As always, we start with implementing the scalar case:
def random_walksdD(x0, N, p, num_walks=1, num_times=1,
random=random):
"""Simulate num_walks random walks from x0 with N steps."""
d = len(x0)
position = np.zeros((N+1, d)) # Accumulated positions
position2 = np.zeros((N+1, d)) # Accumulated positions**2
# Histogram at num_times selected time points
pos_hist = np.zeros((num_walks, num_times, d))
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
for n in range(num_walks):
num_times_counter = 0
current_pos = np.array(x0, dtype=float)
for k in range(N):
if k in pos_hist_times:
3.7 Random walk
365
40
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100
120
40
20
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120
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Fig. 3.22 Four random walks with 5000 steps in 2D.
pos_hist[n,num_times_counter,:] = current_pos
num_times_counter += 1
# current_pos corresponds to step k+1
for i in range(d):
r = random.uniform(0, 1)
if r <= p:
current_pos[i] -= 1
else:
current_pos[i] += 1
position [k+1,:] += current_pos
position2[k+1,:] += current_pos**2
return position, position2, pos_hist, np.array(pos_hist_times)
Vectorized code. Significant speed-ups can be obtained by vectorization. We get rid of the loops in the previous function and arrive at the following vectorized code.
def random_walksdD_vec(x0, N, p, num_walks=1, num_times=1):
"""Vectorized version of random_walks1D; no loops."""
d = len(x0)
position = np.zeros((N+1, d)) # Accumulated positions
position2 = np.zeros((N+1, d)) # Accumulated positions**2
walks = np.zeros((num_walks, N+1, d)) # Positions of each walk
walks[:,0,:] = x0
366 3 Diffusion equations
# Histogram at num_times selected time points
pos_hist = np.zeros((num_walks, num_times, d))
pos_hist_times = [(N//num_times)*i for i in range(num_times)]
r = np.random.uniform(0, 1, size=N*num_walks*d)
steps = np.where(r <= p, -1, 1).reshape(num_walks, N, d)
walks[:,1:,:] = x0 + np.cumsum(steps, axis=1)
position = np.sum(walks, axis=0)
position2 = np.sum(walks**2, axis=0)
pos_hist[:,:,:] = walks[:,pos_hist_times,:]
return position, position2, pos_hist, np.array(pos_hist_times)
3.8 Applications
3.8.1 Diffusion of a substance
The first process to be considered is a substance that gets transported through a fluid at rest by pure diffusion. We consider an arbitrary volume V of this fluid, containing the substance with concentration function c(x, t). Physically, we can think of a very small volume with centroid x at time t and assign the ratio of the volume of the substance and the total volume to c(x, t). This means that the mass of the substance in a small volume ∆V is approximately ρc∆V , where ρ is the density of the substance. Consequently, the total mass of the substance inside the volume V is the sum of all ρc∆V , which becomes the volume integral ρcdV.
Let us reason how the mass of the substance changes and thereby derive a PDE governing the concentration c. Suppose the substance flows outofV withafluxq.If∆S isasmallpartoftheboundary∂V ofV,the volume of the substance flowing out through dS in a small time interval ∆t is ρq · n∆t∆S, where n is an outward unit normal to the boundary ∂V , see Figure 3.23. We realize that only the normal component of q is able to transport mass in and out of V . The total outflow of the mass of the substance in a small time interval ∆t becomes the surface integral
ρq · n∆t dS . ∂V
Assuming conservation of mass, this outflow of mass must be balanced by a loss of mass inside the volume. The increase of mass inside the volume, during a small time interval ∆t, is
V
3.8 Applications
367
ρ(c(x, t + ∆t) − c(x, t))dV, V
assuming ρ is constant, which is reasonable. The outflow of mass balances the loss of mass in V , which is the increase with a minus sign. Setting the two contributions equal to each other ensures balance of mass inside V . Dividing by ∆t gives
c(x,t+∆t)−c(x,t)
ρ ∆t dV=− ρq·ndS.
V ∂V
Note the minus sign on the right-hand side: the left-hand side expresses loss of mass, while the integral on the right-hand side is the gain of mass.
Now, letting ∆t → 0, we have c(x,t+∆t)−c(x,t) → ∂c,
so
To arrive at a PDE, we express the surface integral as a volume integral using Gauss’ divergence theorem:
(ρ∂c+∇·(ρq))dV =0. ∂t
V
Since ρ is constant, we can divide by this quantity. If the integral is to vanish for an arbitrary volume V , the integrand must vanish too, and we get the mass conservation PDE for the substance:
∂c + ∇ · q = 0 . (3.121) ∂t
A fundamental problem is that this is a scalar PDE for four unknowns: c and the three components of q. We therefore need additional equations. Here, Fick’s law comes at rescue: it models how the flux q of the substance is related to the concentration c. Diffusion is recognized by mass flowing from regions with high concentration to regions of low concentration. This principle suggests that q is proportional to the negative gradient of c:
∆t ∂t ∂c
ρ∂tdV + ρq·ndS=0. (3.120) V ∂V
368 3 Diffusion equations
q
n
V
Fig. 3.23 An arbitrary volume of a fluid.
q = −α∇c, (3.122)
where α is an empirically determined constant. The relation (3.122) is known as Fick’s law. Inserting (3.122) in (3.121) gives a scalar PDE for the concentration c:
∂c = α∇2c. (3.123) ∂t
3.8.2 Heat conduction
Heat conduction is a well-known diffusion process. The governing PDE is in this case based on the first law of thermodynamics: the increase in energy of a system is equal to the work done on the system, plus the supplied heat. Here, we shall consider media at rest and neglect work done on the system. The principle then reduces to a balance between increase in internal energy and supplied heat flow by conduction.
Let e(x, t) be the internal energy per unit mass. The increase of the internal energy in a small volume ∆V in a small time interval ∆t is then
ρ(e(x, t + ∆t) − e(x, t))∆V,
where ρ is the density of the material subject to heat conduction. In an arbitrary volume V , as depicted in Figure 3.23, the corresponding increase in internal energy becomes the volume integral
ρ(e(x, t + ∆t) − e(x, t))dV . V
3.8 Applications 369
This increase in internal energy is balanced by heat supplied by conduc- tion. Let q be the heat flow per time unit. Through the surface ∂V of V the following amount of heat flows out of V during a time interval ∆t:
q · n∆t dS . ∂V
The simplified version of the first law of thermodynamics then states that
ρ(e(x,t+∆t)−e(x,t))dV =− q·n∆tdS. V ∂V
The minus sign on the right-hand side ensures that the integral there models net inflow of heat (since n is an outward unit normal, q · n models outflow). Dividing by ∆t and notifying that
lim e(x,t+∆t)−e(x,t) = ∂e, ∆t→0 ∆t ∂t
we get (in the limit ∆t → 0) ∂e
ρ ∂t dV + q · n∆t dS = 0 . V ∂V
This is the integral equation for heat conduction, but we aim at a PDE. The next step is therefore to transform the surface integral to a volume integral via Gauss’ divergence theorem. The result is
∂e ρ∂t+∇·q dV=0.
V
If this equality is to hold for all volumes V , the integrand must vanish, and we have the PDE
ρ∂e =−∇·q. (3.124) ∂t
Sometimes the supplied heat can come from the medium itself. This is the case, for instance, when radioactive rock generates heat. Let us add this effect. If f(x,t) is the supplied heat per unit volume per unit time, the heat supplied in a small volume is f ∆t∆V , and inside an arbitrary volume V the supplied generated heat becomes
370
3 Diffusion equations
f∆tdV .
V
Adding this to the integral statement of the (simplified) first law of thermodynamics, and continuing the derivation, leads to the PDE
ρ∂e =−∇·q+f. (3.125) ∂t
There are four unknown scalar fields: e and q. Moreover, the tempera- ture T, which is our primary quantity to compute, does not enter the model yet. We need an additional equation, called the equation of state, relating e, V = 1/ρ =, and T: e = e(V,T). By the chain rule we have
∂ e = ∂ e ∂ T + ∂ e ∂ V . ∂t ∂TV ∂t ∂VT ∂t
The first coefficient ∂e/∂T is called specific heat capacity at constant volume, denoted by cv:
cv=∂e . ∂T V
The specific heat capacity will in general vary with T, but taking it as a constant is a good approximation in many applications.
The term ∂e/∂V models effects due to compressibility and volume expansion. These effects are often small and can be neglected. We shall do so here. Using ∂e/∂t = cv∂T/∂t in the PDE gives
ρc ∂T =−∇·q+f. v ∂t
We still have four unknown scalar fields (T and q). To close the system, we need a relation between the heat flux q and the temperature T called Fourier’s law:
q = −k∇T,
which simply states that heat flows from hot to cold areas, along the path of greatest variation. In a solid medium, k depends on the material of the medium, and in multi-material media one must regard k as spatially dependent. In a fluid, it is common to assume that k is constant. The value of k reflects how easy heat is conducted through the medium, and k is named the coefficient of heat conduction.
3.8 Applications 371
We have now one scalar PDE for the unknown temperature field T (x, t):
ρc ∂T =∇·(k∇T)+f. (3.126) v ∂t
3.8.3 Porous media flow
The requirement of mass balance for flow of a single, incompressible fluid through a deformable (elastic) porous medium leads to the equation
S ∂p + ∇ · (q − α ∂u ) = 0, ∂t ∂t
where p is the fluid pressure, q is the fluid velocity, u is the displacement (deformation) of the medium, S is the storage coefficient of the medium (related to the compressibility of the fluid and the material in the medium), and α is another coefficient. In many circumstances, the last term with u can be neglected, an assumption that decouples the equation above from a model for the deformation of the medium. The famous Darcy’s
law relates q to p:
q = − K (∇p − ρg), μ
where K is the permeability of the medium, μ is the dynamic viscosity of the fluid, ρ is the density of the fluid, and g is the acceleration of gravity, here taken as g = −gk. Combining the two equations results in the diffusion model
S ∂p = μ−1∇(K∇p) + ρg ∂K . (3.127) ∂t μ ∂z
Boundary conditions consist of specifying p or q · n at (normal velocity) each point of the boundary.
3.8.4 Potential fluid flow
Let v be the velocity of a fluid. The condition ∇ × v = 0 is relevant for many flows, especially in geophysics when viscous effects are negli- gible. From vector calculus it is known that ∇ × v = 0 implies that v can be derived from a scalar potential field φ: v = ∇φ. If the fluid is incompressible, ∇ · v = 0, it follows that ∇ · ∇φ = 0, or
372 3 Diffusion equations
∇2φ = 0 . (3.128)
This Laplace equation is sufficient for determining φ and thereby describe the fluid motion. This type of flow is known as potential flow. One very important application where potential flow is a good model is water waves. As boundary condition we must prescribe v · n = ∂φ/∂n. This gives rise to what is known as a pure Neumann problem and will cause numerical difficulties because φ and φ plus any constant are two solutions of the problem. The simplest remedy is to fix the value of φ at a point.
3.8.5 Streamlines for 2D fluid flow
The streamlines in a two-dimensional stationary fluid flow are lines tangential to the flow. The stream function ψ is often introduced in two-dimensional flow such that its contour lines, ψ = const, gives the streamlines. The relation between ψ and the velocity field v = (u, v) is
u=∂ψ, v=−∂ψ. ∂y ∂x
It follows that ∇v = ψyx − ψxy = 0, so the stream function can only be used for incompressible flows. Since
∂v ∂u ∇×v= ∂y−∂x k≡ωk,
we can derive the relation
∇2ψ = −ω, (3.129) which is a governing equation for the stream function ψ(x,y) if the
vorticity ω is known.
3.8.6 The potential of an electric field
Under the assumption of time independence, Maxwell’s equations for the electric field E become
3.8 Applications
373
∇·E=ρ, ε0
∇ × E = 0,
where ρ is the electric charge density and ε0 is the electric permittivity of free space (i.e., vacuum). Since ∇ × E = 0, E can be derived from a potential φ, E = −∇φ. The electric field potential is therefore governed by the Poisson equation
∇2φ = − ρ . (3.130) ε0
If the medium is heterogeneous, ρ will depend on the spatial location r. Also, ε0 must be exchanged with an electric permittivity function ε(r). Each point of the boundary must be accompanied by, either a Dirichlet
condition φ(r) = φD(r), or a Neumann condition ∂φ(r) = φN (r). ∂n
3.8.7 Development of flow between two flat plates
Diffusion equations may also arise as simplified versions of other mathe- matical models, especially in fluid flow. Consider a fluid flowing between two flat, parallel plates. The velocity is uni-directional, say along the z axis, and depends only on the distance x from the plates; u = u(x, t)k. The flow is governed by the Navier-Stokes equations,
ρ∂u + ρu · ∇u = −∇p + μ∇2u + ρf, ∂t
∇ · u = 0,
where p is the pressure field, unknown along with the velocity u, ρ is the fluid density, μ the dynamic viscosity, and f is some external body force. The geometric restrictions of flow between two flat plates puts restrictions on the velocity, u = u(x, t)i, and the z component of the Navier-Stokes equations collapses to a diffusion equation:
ρ∂u = −∂p + μ∂2u + ρfz, ∂t ∂z ∂z2
if fz is the component of f in the z direction.
The boundary conditions are derived from the fact that the fluid sticks
to the plates, which means u = 0 at the plates. Say the location of the plates are z = 0 and z = L. We then have
374
3 Diffusion equations
u(0,t) = u(L,t) = 0.
One can easily show that ∂p/∂z must be a constant or just a function of time t. We set ∂p/∂z = −β(t). The body force could be a component of gravity, if desired, set as fz = γg. Switching from z to x as independent variable gives a very standard one-dimensional diffusion equation:
ρ∂u=μ∂2u+β(t)+ργg, x∈[0,L], t∈(0,T]. ∂t ∂z2
The boundary conditions are
u(0,t) = u(L,t) = 0, while some initial condition
u(x,0) = I(x)
must also be prescribed.
The flow is driven by either the pressure gradient β or gravity, or a
combination of both. One may also consider one moving plate that drives the fluid. If the plate at x = L moves with velocity UL(t), we have the adjusted boundary condition
u(L, t) = UL(t) . 3.8.8 Flow in a straight tube
Now we consider viscous fluid flow in a straight tube with radius R and rigid walls. The governing equations are the Navier-Stokes equations, but as in Section 3.8.7, it is natural to assume that the velocity is directed along the tube, and that it is axi-symmetric. These assumptions reduced the velocity field to u = u(r,x,t)i, if the x axis is directed along the tube. From the equation of continuity, ∇ · u = 0, we see that u must be independent of x. Inserting u = u(r, t)i in the Navier-Stokes equations, expressed in axi-symmetric cylindrical coordinates, results in
∂u 1 ∂ ∂u
ρ∂t =μr∂r r∂r +β(t)+ργg, r∈[0,R], t∈(0,T]. (3.131)
3.8 Applications 375
Here, β(t) = −∂p/∂x is the pressure gradient along the tube. The associated boundary condition is u(R, t) = 0.
3.8.9 Tribology: thin film fluid flow
Thin fluid films are extremely important inside machinery to reduce friction between gliding surfaces. The mathematical model for the fluid motion takes the form of a diffusion problem and is quickly derived here. We consider two solid surfaces whose distance is described by a gap function h(x, y). The space between these surfaces is filled with a fluid with dynamic viscosity μ. The fluid may move partially because of pressure gradients and partially because the surfaces move. Let U i + V j be the relative velocity of the two surfaces and p the pressure in the fluid. The mathematical model builds on two principles: 1) conservation of mass, 2) assumption of locally quasi-static flow between flat plates.
The conservation of mass equation reads ∇ · u, where u is the local fluid velocity. For thin films the detailed variation between the surfaces is not of interest, so ∇ · u = 0 is integrated (average) in the direction perpendicular to the surfaces. This gives rise to the alternative mass conservation equation
h(x,y)
udz,
where z is the coordinate perpendicular to the surfaces, and q is then the volume flux in the fluid gap.
Locally, we may assume that we have steady flow between two flat surfaces, with a pressure gradient and where the lower surface is at rest and the upper moves with velocity Ui + V j. The corresponding mathematical problem is actually the limit problem in Section 3.8.7 as t → ∞. The limit problem can be solved analytically, and the local volume flux becomes
h
h3 1 1 q(x,y,z)= u(x,y,z)dz=−12μ∇p+2Uhi+2Vhj.
0
The idea is to use this expression locally also when the surfaces are not flat, but slowly varying, and if U , V , or p varies in time, provided
∇ · q = 0, q =
0
376 3 Diffusion equations
the time variation is sufficiently slow. This is a common quasi-static approximation much used in mathematical modeling.
Inserting the expression for q via p, U, and V in the equation ∇q = 0 gives a diffusion PDE for p:
h31∂ 1∂
∇· 12μ∇p = 2∂x(hU)+ 2∂x(hV). (3.132)
The boundary conditions must involve p or q at the boundary. 3.8.10 Propagation of electrical signals in the brain
One can make a model of how electrical signals are propagated along the neuronal fibers that receive synaptic inputs in the brain. The signal propagation is one-dimensional and can, in the simplest cases, be governed by the Cable equation:
c ∂V = 1 ∂2V − 1 V (3.133) m∂t rl∂x2 rm
where V (x, t) is the voltage to be determined, cm is capacitance of the neuronal fiber, while rl and rm are measures of the resistance. The boundary conditions are often taken as V = 0 at a short circuit or open end, ∂V/∂x = 0 at a sealed end, or ∂V/∂x ∝ V where there is an injection of current.
3.9 Exercises
Exercise 3.6: Stabilizing the Crank-Nicolson method by Rannacher time stepping
It is well known that the Crank-Nicolson method may give rise to non-
physical oscillations in the solution of diffusion equations if the initial data
exhibit jumps (see Section 3.3.6). Rannacher [15] suggested a stabilizing
technique consisting of using the Backward Euler scheme for the first two
time steps with step length 1 ∆t. One can generalize this idea to taking 2
2m time steps of size 1∆t with the Backward Euler method and then 2
continuing with the Crank-Nicolson method, which is of second-order in time. The idea is that the high frequencies of the initial solution are quickly damped out, and the Backward Euler scheme treats these
3.9 Exercises 377
high frequencies correctly. Thereafter, the high frequency content of the solution is gone and the Crank-Nicolson method will do well.
Test this idea for m = 1, 2, 3 on a diffusion problem with a discontinu- ous initial condition. Measure the convergence rate using the solution (3.45) with the boundary conditions (3.46)-(3.47) for t values such that the conditions are in the vicinity of ±1. For example, t < 5a1.6 · 10−2 makes the solution diffusion from a step to almost a straight line. The program
diffu_erf_sol.py shows how to compute the analytical solution. Project 3.7: Energy estimates for diffusion problems
This project concerns so-called energy estimates for diffusion problems that can be used for qualitative analytical insight and for verification of implementations.
a) We start with a 1D homogeneous diffusion equation with zero Dirichlet conditions:
ut =αuxx,x∈Ω=(0,L), t∈(0,T],
(3.134) (3.135) (3.136)
(3.137)
||g||L2 =
The quantify ||u||L2 or 1 ||u||L2 is known as the energy of the solution,
2
although it is not the physical energy of the system. A mathematical tradition has introduced the notion energy in this context.
The estimate (3.137) says that the “size of u” never exceeds that of the initial condition, or more precisely, it says that the area under the u curve decreases with time.
To show (3.137), multiply the PDE by u and integrate from 0 to L. Use that uut can be expressed as the time derivative of u2 and that uxxu can integrated by parts to form an integrand u2x. Show that the time
u(0,t) = u(L,t) = 0, u(x,0) = I(x),
The energy estimate for this problem reads
||u||L2 ≤ ||I||L2 , where the || · ||L2 norm is defined by
t ∈ (0,T], x ∈ [0,L].
L 0
g2dx .
(3.138)
378 3 Diffusion equations
derivative of ||u||2L2 must be less than or equal to zero. Integrate this expression and derive (3.137).
b) Now we address a slightly different problem,
ut =αuxx+f(x,t),x∈Ω=(0,L), t∈(0,T],
(3.139) (3.140) (3.141)
u(0,t) = u(L,t) = 0, u(x,0) = 0,
The associated energy estimate is
t ∈ (0,T], x ∈ [0,L].
(3.142) Now consider the compound problem with an initial condition I(x)
||u||L2 ≤ ||f ||L2 .
(This result is more difficult to derive.) and a right-hand side f(x,t):
ut =αuxx+f(x,t),x∈Ω=(0,L), t∈(0,T], u(0,t) = u(L,t) = 0, t ∈ (0,T], u(x,0) = I(x), x ∈ [0,L].
(3.143) (3.144) (3.145)
Show that if w1 fulfills (3.134)-(3.136) and w2 fulfills (3.139)-(3.141), then u = w1 + w2 is the solution of (3.143)-(3.145). Using the triangle inequality for norms,
||a + b|| ≤ ||a|| + ||b||,
show that the energy estimate for (3.143)-(3.145) becomes
||u||L2 ≤ ||I ||L2 + ||f ||L2 . (3.146)
c) One application of (3.146) is to prove uniqueness of the solution. Suppose u1 and u2 both fulfill (3.143)-(3.145). Show that u = u1 − u2 then fulfills (3.143)-(3.145) with f = 0 and I = 0. Use (3.146) to deduce that the energy must be zero for all times and therefore that u1 = u2, which proves that the solution is unique.
d) Generalize (3.146) to a 2D/3D diffusion equation ut = ∇ · (α∇u) for x ∈ Ω.
Hint. Use integration by parts in multi dimensions:
3.9 Exercises 379
∂u u∇ · (α∇u) dx = − α∇u · ∇u dx + uα ∂n ,
Ω Ω ∂Ω
where ∂u = n · ∇u, n being the outward unit normal to the boundary ∂n
∂Ω of the domain Ω.
e) Now we also consider the multi-dimensional PDE ut = ∇ · (α∇u).
Integrate both sides over Ω and use Gauss’ divergence theorem, ∇ · Ω
qdx =
Neumann conditions on the boundary, ∂u/∂n = 0, area under the u surface remains constant in time and
q·nds for a vector field q. Show that if we have homogeneous
∂Ω
f) Establish a code in 1D, 2D, or 3D that can solve a diffusion equation with a source term f, initial condition I, and zero Dirichlet or Neumann conditions on the whole boundary.
We can use (3.146) and (3.147) as a partial verification of the code. Choose some functions f and I and check that (3.146) is obeyed at any time when zero Dirichlet conditions are used. Iterate over the same I functions and check that (3.147) is fulfilled when using zero Neumann conditions.
g) Make a list of some possible bugs in the code, such as indexing errors in arrays, failure to set the correct boundary conditions, evaluation of a term at a wrong time level, and similar. For each of the bugs, see if the verification tests from the previous subexercise pass or fail. This investigation shows how strong the energy estimates and the estimate
(3.147) are for pointing out errors in the implementation. Filename: diffu_energy.
Exercise 3.8: Splitting methods and preconditioning
In Section 3.6.15, we outlined a class of iterative methods for Au = b based on splitting A into A = M − N and introducing the iteration
Muk =Nuk +b.
The very simplest splitting is M = I, where I is the identity matrix.
Show that this choice corresponds to the iteration
uk = uk−1 + rk−1, rk−1 = b − Auk−1, (3.148)
u dx = I dx . (3.147) ΩΩ
380 3 Diffusion equations
where rk−1 is the residual in the linear system in iteration k − 1. The formula (3.148) is known as Richardson’s iteration. Show that if we apply the simple iteration method (3.148) to the preconditioned system M−1Au = M−1b, we arrive at the Jacobi method by choosing M = D (the diagonal of A) as preconditioner and the SOR method by choosing M = ω−1D+L (L being the lower triangular part of A). This equivalence shows that we can apply one iteration of the Jacobi or SOR method as preconditioner.
Problem 3.9: Oscillating surface temperature of the earth
Consider a day-and-night or seasonal variation in temperature at the surface of the earth. How deep down in the ground will the surface oscillations reach? For simplicity, we model only the vertical variation along a coordinate x, where x = 0 at the surface, and x increases as we go down in the ground. The temperature is governed by the heat equation
ρc ∂T =∇·(k∇T), v ∂t
in some spatial domain x ∈ [0, L], where L is chosen large enough such that we can assume that T is approximately constant, independent of the surface oscillations, for x > L. The parameters ρ, cv, and k are the density, the specific heat capacity at constant volume, and the heat conduction coefficient, respectively.
a) Derive the mathematical model for computing T (x, t). Assume the surface oscillations to be sinusoidal around some mean temperature Tm. LetT =Tm initially.Atx=L,assumeT ≈Tm.
b) Scale the model in a) assuming k is constant. Use a time scale
tc = ω−1 and a length scale xc = 2α/ω, where α = k/(ρcv). The
primary unknown can be scaled as T −Tm .
Show that the scaled PDE is
2A
∂u = 1∂2u,
∂ t ̄ 2 ∂ x 2
̄
̄ ̄ ̄
sin(t), and right boundary condition u(L,t) = 0. The bar indicates a
dimensionless quantity.
with initial condition u(x ̄,0) = 0, left boundary condition u(0,t) =
3.9 Exercises
381
̄−x ̄ ̄
Show that u(x ̄, t) = e sin(x ̄−t) is a solution that fulfills the PDE and
the boundary condition at x ̄ = 0 (this is the solution we will experience as t ̄ → ∞ and L → ∞). Conclude that an appropriate domain for x is [0, 4] if a damping e−4 ≈ 0.18 is appropriate for implementing u ̄ ≈ const; increasing to [0, 6] damps u ̄ to 0.0025.
c) Compute the scaled temperature and make animations comparing two solutions with L ̄ = 4 and L ̄ = 8, respectively (keep ∆x the same).
Problem 3.10: Oscillating and pulsating flow in tubes
We consider flow in a straight tube with radius R and straight walls. The flow is driven by a pressure gradient β(t). The effect of gravity can be neglected. The mathematical problem reads
∂u 1 ∂ ∂u
ρ∂t =μr∂r r∂r +β(t), r∈[0,R], t∈(0,T],
(3.149)
(3.150) (3.151)
u(r, 0) = I(r), u(R,t) = 0,
β = A sin(ωt), (3.153) and one with periodic pulses,
β = A sin16(ωt), (3.154) Note that both models can be written as β = Asinm(ωt), with m = 1
and m = 16, respectively.
a) Scale the mathematical model, using the viscous time scale ρR2/μ.
b) Implement the scaled model from a), using the unifying θ scheme in time and centered differences in space.
c) Verify the implementation in b) using a manufactured solution that is quadratic in r and linear in t. Make a corresponding test function.
Hint. You need to include an extra source term in the equation to allow for such tests. Let the spatial variation be 1 − r2 such that the boundary condition is fulfilled.
∂u(0,t) = 0, ∂r
t ∈ (0,T].
We consider two models for β(t). One plain, sinusoidal oscillation:
r ∈ [0, R], t ∈ (0,T],
(3.152)
382 3 Diffusion equations
d) Make animations for m = 1, 16 and α = 1, 0.1. Choose T such that the motion has reached a steady state (non-visible changes from period to period in u).
e) For α ≫ 1, the scaling in a) is not good, because the characteristic time for changes (due to the pressure) is much smaller than the viscous diffusion time scale (α becomes large). We should in this case base the short time scale on 1/ω. Scale the model again, and make an animation for m = 1, 16 and α = 10.
Filename: axisymm_flow.
Problem 3.11: Scaling a welding problem
Welding equipment makes a very localized heat source that moves in time. We shall investigate the heating due to welding and choose, for maximum simplicity, a one-dimensional heat equation with a fixed temperature at the ends, and we neglect melting. We shall scale the problem, and besides solving such a problem numerically, the aim is to investigate the appropriateness of alternative scalings.
The governing PDE problem reads ρc∂u=k∂2u+f,x∈(0,L), t∈(0,T),
∂t ∂x2
u(x,0) = Us, x ∈ [0,L],
u(0,t) = u(L,t) = 0, t ∈ (0,T].
Here, u is the temperature, ρ the density of the material, c a heat capacity, k the heat conduction coefficient, f is the heat source from the welding equipment, and Us is the initial constant (room) temperature in the material.
A possible model for the heat source is a moving Gaussian function: 1x−vt2
where A is the strength, σ is a parameter governing how peak-shaped (or localized in space) the heat source is, and v is the velocity (in positive x direction) of the source.
a) Let xc, tc, uc, and fc be scales, i.e., characteristic sizes, of x, t, u, and f, respectively. The natural choice of xc and fc is L and A, since these
f=Aexp−2 σ ,
3.9 Exercises 383
make the scaled x and f in the interval [0, 1]. If each of the three terms in the PDE are equally important, we can find tc and uc by demanding that the coefficients in the scaled PDE are all equal to unity. Perform this scaling. Use scaled quantities in the arguments for the exponential function in f too and show that
and γ.
b) Argue that for large γ we should base the time scale on the movement
12 ̄2 f = e − 2 β ( x ̄ − γ t ) ,
̄
where β and γ are dimensionless numbers. Give an interpretation of β
of the heat source. Show that this gives rise to the scaled PDE ∂u ̄ −1∂2u ̄ ̄
and
∂t ̄=γ ∂x ̄2+f, ̄12 ̄2
f = exp (− 2 β (x ̄ − t) ) . Discuss when the scalings in a) and b) are appropriate.
c) One aim with scaling is to get a solution that lies in the interval [−1, 1]. This is not always the case when uc is based on a scale involving a source term, as we do in a) and b). However, from the scaled PDE we
̄ ̄
realize that if we replace f with δf, where δ is a dimensionless factor,
this corresponds to replacing uc by uc/δ. So, if we observe that u ̄ ∼ 1/δ in simulations, we can just replace f ̄ by δf ̄ in the scaled PDE.
Use this trick and implement the two scaled models. Reuse software for the diffusion equation (e.g., the solver function in diffu1D_vc.py). Make a function run(gamma, beta=10, delta=40, scaling=1, animate=False) that runs the model with the given γ, β, and δ parameters as well as an indicator scaling that is 1 for the scaling in a) and 2 for the scaling in b). The last argument can be used to turn screen animations on or off.
Experiments show that with γ = 1 and β = 10, δ = 20 is appropriate.
Then max |u ̄| will be larger than 4 for γ = 40, but that is acceptable. Equip the run function with visualization, both animation of u ̄ and f,
and plots with u ̄ and f ̄ for t = 0.2 and t = 0.5.
Hint. Since the amplitudes of u ̄ and f ̄ differs by a factor δ, it is attractive
̄
to plot f/δ together with u ̄.
̄
384 3 Diffusion equations
d) Use the software in c) to investigate γ = 0.2,1,5,40 for the two scalings. Discuss the results.
Filename: welding.
Exercise 3.12: Implement a Forward Euler scheme for axi-symmetric diffusion
Based on the discussion in Section 3.5.6, derive in detail the discrete equations for a Forward Euler in time, centered in space, finite difference method for axi-symmetric diffusion. The diffusion coefficient may be a function of the radial coordinate. At the outer boundary r = R, we may have either a Dirichlet or Robin condition. Implement this scheme. Construct appropriate test problems.
Filename: FE_axisym.
Wave (Chapter 2) and diffusion (Chapter 3) equations are solved reliably by finite difference methods. As soon as we add a first-order deriva- tive in space, representing advective transport, also known as convective transport, the numerics gets more complicated, and intuitively attractive methods no longer work well. We shall show how and why such methods fail and provide remedies. The present chapter builds on basic knowl- edge about finite difference methods for diffusion and wave equations, including the analysis by Fourier components, truncation error analysis
(Appendix B), and compact difference notation. Remark on terminology
It is common to refer to movement of a fluid as convection, while advection is the transport of some material dissolved or suspended in the fluid. We shall mostly choose the word advection here, but both terms are in heavy use, and for mass transport of a substance the PDE has an advection term, while the similar term for the heat equation is a convection term.
Much more comprehensive discussion of dispersion analysis for ad- vection problems can be found in the book by Duran [3]. This is a an excellent resource for further studies on the topic of advection PDEs, with emphasis on generalizations to real geophysical problems. The book
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Advection-dominated equations
4
386 4 Advection-dominated equations
by Fletcher [4] also has a good overview of methods for advection and convection problems.
4.1 One-dimensional time-dependent advection equations
We consider the pure advection model
∂u+v∂u=0, x∈(0,L),t∈(0,T],
(4.1)
(4.2) (4.3)
∂t ∂x
u(x, 0) = I(x), x ∈ (0, L),
u(0,t) = U0, t ∈ (0,T].
In (4.1), v is a given parameter, typically reflecting the velocity of transport of a quantity u with a flow. There is only one boundary condition (4.2) since the spatial derivative is only first order in the PDE (4.1). The information at x = 0 and the initial condition get transported in the positive x direction if v > 0 through the domain.
It is easiest to find the solution of (4.1) if we remove the boundary condition and consider a process on the infinite domain (−∞, ∞). The solution is simply
u(x, t) = I(x − vt) . (4.4)
This is also the solution we expect locally in a finite domain before boundary conditions have reflected or modified the wave.
A particular feature of the solution (4.4) is that
u(xi, tn+1) = u(xi−1, tn), (4.5)
if xi = i∆x and tn = n∆t are points in a uniform mesh. We see this relation from
u(i∆x, (n+1)∆t) = I(i∆x−v(n+1)∆t) = I((i−1)∆x−vn∆t−v∆t−∆x) = I((i−1)∆x− provided v = ∆x/∆t. So, whenever we see a scheme that collapses to
un+1 = un , (4.6) i i−1
4.1 One-dimensional time-dependent advection equations 387
for the PDE in question, we have in fact a scheme that reproduces the analytical solution, and many of the schemes to be presented possess this nice property!
Finally, we add that a discussion of appropriate boundary conditions for the advection PDE in multiple dimensions is a challenching topic beyond the scope of this text.
4.1.1 Simplest scheme: forward in time, centered in space
Method. A first attempt to solve a PDE like (4.1) will normally be to look for a time-discretization scheme that is explicit so we avoid solving systems of linear equations. In space, we anticipate that centered differences are most accurate and therefore best. These two arguments lead us to a Forward Euler scheme in time and centered differences in space:
[Dt+u + vD2xu = 0]ni Written out, we see that this expression reads
un+1 = un − 1C(uni+1 − uni−1), 2
with C as the Courant number
C = v∆t .
∆x
(4.7)
Implementation. A solver function for our scheme goes as follows.
import numpy as np
import matplotlib.pyplot as plt
def solver_FECS(I, U0, v, L, dt, C, T, user_action=None):
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1) # Mesh points in time
dx = v*dt/C
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] – x[0]
dt = t[1] – t[0]
C = v*dt/dx
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
388 4 Advection-dominated equations
# Set initial condition u(x,0) = I(x)
for i in range(0, Nx+1):
u_n[i] = I(x[i])
if user_action is not None:
user_action(u_n, x, t, 0)
for n in range(0, Nt):
# Compute u at inner mesh points
for i in range(1, Nx):
u[i] = u_n[i] – 0.5*C*(u_n[i+1] – u_n[i-1])
# Insert boundary condition
u[0] = U0
if user_action is not None:
user_action(u, x, t, n+1)
# Switch variables before next step
u_n, u = u, u_n
Test cases. The typical solution u has the shape of I and is transported at velocity v to the right (if v > 0). Let us consider two different initial conditions, one smooth (Gaussian pulse) and one non-smooth
(half-truncated cosine pulse): −1(x−L/10)2
x−10
(4.8) (4.9)
u(x,0)=Ae 2 σ 5π
,
L
L
x< 5 else0.
u(x,0)=Acos L
,
The parameter A is the maximum value of the initial condition.
Before doing numerical simulations, we scale the PDE problem and
introduce x ̄ = x/L and t ̄= vt/L, which gives ∂ u ̄ + ∂ u ̄ = 0 .
∂t ̄ ∂x ̄
The unknown u is scaled by the maximum value of the initial condition:
u ̄ = u/max|I(x)| such that |u ̄(x ̄,0)| ∈ [0,1]. The scaled problem is solved by setting v = 1, L = 1, and A = 1. From now on we drop the bars.
To run our test cases and plot the solution, we make the function
def run_FECS(case):
"""Special function for the FECS case."""
if case == ’gaussian’:
def I(x):
4.1 One-dimensional time-dependent advection equations 389
return np.exp(-0.5*((x-L/10)/sigma)**2)
elif case == ’cosinehat’:
def I(x):
return np.cos(np.pi*5/L*(x - L/10)) if x < L/5 else 0
L = 1.0
sigma = 0.02
legends = []
def plot(u, x, t, n):
"""Animate and plot every m steps in the same figure."""
plt.figure(1)
if n == 0:
lines = plot(x, u)
else:
lines[0].set_ydata(u)
plt.draw()
#plt.savefig()
plt.figure(2)
m = 40
if n % m != 0:
return
print ’t=%g, n=%d, u in [%g, %g] w/%d points’ % \
(t[n], n, u.min(), u.max(), x.size)
if np.abs(u).max() > 3: # Instability?
return
plt.plot(x, u)
legends.append(’t=%g’ % t[n])
if n > 0:
plt.hold(’on’)
plt.ion()
U0 = 0
dt = 0.001
C=1
T=1
solver(I=I, U0=U0, v=1.0, L=L, dt=dt, C=C, T=T,
user_action=plot)
plt.legend(legends, loc=’lower left’)
plt.savefig(’tmp.png’); plt.savefig(’tmp.pdf’)
plt.axis([0, L, -0.75, 1.1])
plt.show()
Bug? Running either of the test cases, the plot becomes a mess, and the printout of u values in the plot function reveals that u grows very quickly. We may reduce ∆t and make it very small, yet the solution just grows. Such behavior points to a bug in the code. However, choosing a coarse mesh and performing a time step by hand calculations produce the same numbers as in the code, so it seems that the implementation is correct. The hypothesis is therefore that the solution is unstable.
390 4 Advection-dominated equations
4.1.2 Analysis of the scheme
It is easy to show that a typical Fourier component u(x, t) = B sin(k(x − ct))
is a solution of our PDE for any spatial wave length λ = 2π/k and any amplitude B. (Since the PDE to be investigated by this method is homogeneous and linear, B will always cancel out, so we tend to skip this amplitude, but keep it here in the beginning for completeness.)
A general solution can be thought to be build of a collection of long and short waves with different amplitudes. Algebraically, the work simplifies if we introduce the complex Fourier component
with
u(x, t) = Ane eikx,
Ae = Be−ikv∆t = BeiCkx .
Note that |Ae| ≤ 1.
It turns out that many schemes also allow a Fourier wave component
as solution, and we can use the numerically computed values of Ae (denoted A) to learn about the quality of the scheme. Hence, to analyze the difference scheme we just have implemented, we look at how it treats
the Fourier component
unq = Aneikq∆x . Inserting the numerical component in the scheme,
[Dt+Aneikq∆x + vD2xAneikq∆x]ni , and making use of (A.25) results in
which implies
[eikq∆x(A−1 +v 1 isin(k∆x))]ni , ∆t ∆x
A = 1 − iC sin(k∆x) .
The numerical solution features the formula An. To find out whether An means growth in time, we rewrite A in polar form: A = Areiφ, for real numbers Ar and φ, since we then have An = Anr eiφn. The magnitude of
4.1 One-dimensional time-dependent advection equations 391
An is Anr . In our case, Ar = (1 + C2 sin2(kx))1/2 > 1, so Anr will increase in time, whereas the exact solution will not. Regardless of ∆t, we get unstable numerical solutions.
4.1.3 Leapfrog in time, centered differences in space
Method. Another explicit scheme is to do a “leapfrog” jump over 2∆t
in time and combine it with central differences in space:
[D2tu + vD2xu = 0]ni , which results in the updating formula
un+1=un−1−C2(un −un ). i i i+1 i−1
A special scheme is needed to compute u1, but we leave that problem for now.
Implementation. We now need to work with three time levels and must modify our solver a bit:
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1)
…
u = np.zeros(Nx+1)
u_1 = np.zeros(Nx+1)
u_2 = np.zeros(Nx+1)
…
for n in range(0, Nt):
if scheme == ’UP’:
for i in range(1, Nx):
# Mesh points in time
u[i] = u_1[i] – 0.5*C*(u_1[i+1] – u_1[i-1])
elif scheme == ’LF’:
if n == 0:
# Use some scheme for the first step
for i in range(1, Nx):
… else:
for i in range(1, Nx+1):
u[i] = u_2[i] – C*(u_1[i] – u_1[i-1])
# Switch variables before next step
u_2, u_1, u = u_1, u, u_2
Running a test case. Let us try a coarse mesh such that the smooth Gaussian initial condition is represented by 1 at mesh node 1 and 0 at all other nodes. This triangular initial condition should then be advected to
392 4 Advection-dominated equations
the right. Choosing scaled variables as ∆t = 0.1, T = 1, and C = 1 gives the plot in Figure 4.1, which is in fact identical to the exact solution (!).
1.0 0.8 0.6 0.4 0.2 0.0 0.2
0.4
0.0 0.2 0.4
0.6 0.8 1.0
x
Fig. 4.1 Exact solution obtained by Leapfrog scheme with ∆t = 0.1 and C = 1.
Running more test cases. We can run two types of initial conditions for C = 0.8: one very smooth with a Gaussian function (Figure 4.4) and one with a discontinuity in the first derivative (Figure 4.5). Unless we have a very fine mesh, as in the left plots in the figures, we get small ripples behind the main wave, and this main wave has the amplitude reduced.
1.0 0.8 0.6 0.4 0.2 0.0 0.2
0.4
0.0 0.2 0.4
0.6 0.8 1.0
x
1.0 0.8 0.6 0.4 0.2 0.0 0.2 0.4
0.0 0.2 0.4
0.6 0.8 1.0
Advection of a Gaussian function with a leapfrog scheme and C = 0.8, ∆t = 0.001 (left) and ∆t = 0.01 (right).
Fig. 4.2
x
u
u
u
4.1 One-dimensional time-dependent advection equations 393
Movie 4: Advection of a Gaussian function with a leapfrog scheme and C = 0.8, ∆t = 0.01. https://raw.githubusercontent.com/hplgit/fdm-book/master/ doc/.src/book/mov- advec/gaussian/LF/C08_dt01.ogg
Movie 5: Advection of a Gaussian function with a leapfrog scheme and C = 0.8, ∆t = 0.001. https://raw.githubusercontent.com/hplgit/fdm-book/master/ doc/.src/book/mov- advec/gaussian/LF/C08_dt001.ogg
1.0 0.8 0.6 0.4 0.2 0.0 0.2
0.4
0.0 0.2 0.4
0.6 0.8 1.0
x
1.0 0.8 0.6 0.4 0.2 0.0 0.2 0.4
0.0 0.2 0.4
Fig. 4.3 Advection of half a cosine function with a leapfrog scheme and C = 0.8, ∆t = 0.001 (left) and ∆t = 0.01 (right).
Movie 6: Advection of half a cosine function with a leapfrog scheme and C = 0.8, ∆t = 0.01. https://raw.githubusercontent.com/hplgit/fdm-book/master/ doc/.src/book/mov- advec/cosinehat/UP/C08_dt01.ogg
Movie 7: Advection of half a cosine function with a leapfrog scheme and C = 0.8, ∆t = 0.001. https://raw.githubusercontent.com/hplgit/fdm-book/master/ doc/.src/book/mov- advec/cosinehat/UP/C08_dt001.ogg
Analysis. We can perform a Fourier analysis again. Inserting the numer- ical Fourier component in the Leapfrog scheme, we get
and
A2 − i2C sin(k∆x)A − 1 = 0,
A = −iC sin(k∆x) ± 1 − C2 sin2(k∆x) .
x
0.6 0.8 1.0
Rewriting to polar form, A = Areiφ, we see that Ar = 1, so the numerical component is neither increasing nor decreasing in time, which is exactly what we want. However, for C > 1, the square root can become complex valued, so stability is obtained only as long as C ≤ 1.
u
u
394
4 Advection-dominated equations
Stability
For all the working schemes to be presented in this chapter, we get the stability condition C ≤ 1:
∆t ≤ ∆x . v
This is called the CFL condition and applies almost always to successful schemes for advection problems. Of course, one can use Crank-Nicolson or Backward Euler schemes for increased and even unconditional stability (no ∆t restrictions), but these have other less desired damping problems.
We introduce p = k∆x. The amplification factor now reads A = −iC sin p ± 1 − C2 sin2 p,
and is to be compared to the exact amplification factor Ae = e−ikv∆t = e−ikC∆x = e−iCp .
Section 4.1.9 compares numerical amplification factors of many schemes with the exact expression.
4.1.4 Upwind differences in space
Since the PDE reflects transport of information along with a flow in positive x direction, when v > 0, it could be natural to go (what is called) upstream and not downstream in a spatial derivative to collect information about the change of the function. That is, we approximate
∂u(xi,tn)≈[Dx−u]ni =uni −uni−1. ∂x ∆x
This is called an upwind difference (the corresponding difference in the time direction would be called a backward difference, and we could use that name in space too, but upwind is the common name for a difference against the flow in advection problems). This spatial approximation does magic compared to the scheme we had with Forward Euler in time and centered difference in space. With an upwind difference,
[Dt+u + vDx−u = 0]ni , (4.10)
4.1 One-dimensional time-dependent advection equations 395
written out as
un+1 = uni − C(uni − uni−1),
gives a generally popular and robust scheme that is stable if C ≤ 1. As with the Leapfrog scheme, it becomes exact if C = 1, exactly as shown in Figure 4.1. This is easy to see since C = 1 gives the property (4.6). However, any C < 1 gives a significant reduction in the amplitude of the solution, which is a purely numerical effect, see Figures 4.4 and 4.5. Experiments show, however, that reducing ∆t or ∆x, while keeping C reduces the error.
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
Advection of a Gaussian function with a forward in time, upwind in space scheme and C = 0.8, ∆t = 0.001 (left) and ∆t = 0.01 (right).
Movie 8: Forward in time, upwind in space, C = 0.8, ∆t = 0.01. https://raw.githubusercontent.com/hplgit/fdm- book/master/doc/.src/ book/mov- advec/gaussian/UP/C08_dt001/movie.ogg
Movie 9: Forward in time, upwind in space, C = 0.8, ∆t = 0.005. https://raw.githubusercontent.com/hplgit/fdm- book/master/doc/.src/ book/mov- advec/gaussian/UP/C08_dt001/movie.ogg
Movie 10: Advection of half a cosine function with a forward in time, upwind in space scheme and C = 0.8, ∆t = 0.01. https://raw.githubusercontent.com/hplgit/ fdm- book/master/doc/.src/book/mov- advec/cosinehat/UP/C08_dt01.ogg
Movie 11: Advection of half a cosine function with a forward in time, upwind in space scheme and C = 0.8, ∆t = 0.001. https://raw.githubusercontent.com/hplgit/ fdm- book/master/doc/.src/book/mov- advec/cosinehat/UP/C08_dt001.ogg
The amplification factor can be computed using the formula (A.23),
Fig. 4.4
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
A−1+ v (1−e−ik∆x)=0, ∆t ∆x
which means
396
4 Advection-dominated equations
1.0 0.8 0.6 0.4 0.2 0.0 0.2
0.4
0.0 0.2 0.4
0.6 0.8 1.0
x
Advection of half a cosine function with a forward in time, upwind in space scheme and C = 0.8, ∆t = 0.01 (left) and ∆t = 0.001 (right).
A = 1 − C(1 − cos(p) − i sin(p)) .
For C < 1 there is, unfortunately, non-physical damping of discrete Fourier components, giving rise to reduced amplitude of uni as in Fig- ures 4.4 and 4.5. The damping is this figure is seen to be quite severe. Stability requires C ≤ 1.
Interpretation of upwind difference as artificial diffusion
One can interpret the upwind difference as extra, artificial diffusion in the equation. Solving
∂u+v∂u =ν∂2u,
∂t ∂x ∂x2
by a forward difference in time and centered differences in space,
Dt+u + vD2xu = νDxDxu]ni ,
gives actually the upwind scheme (4.10) if ν = v∆x/2. That is, solving the PDE ut + vux = 0 by centered differences in space and forward difference in time is unsuccessful, but by adding some artificial diffusion νuxx, the method becomes stable:
∂u ∂u v∆x ∂2u ∂t+v∂x= α+ 2 ∂x2.
Fig. 4.5
1.0 0.8 0.6 0.4 0.2 0.0 0.2 0.4
0.0
0.2 0.4
0.6 0.8 1.0
x
u
u
4.1 One-dimensional time-dependent advection equations 397
4.1.5 Periodic boundary conditions
So far, we have given the value on the left boundary, un0 , and used the scheme to propagate the solution signal through the domain. Often, we want to follow such signals for long time series, and periodic boundary conditions are then relevant since they enable a signal that leaves the right boundary to immediately enter the left boundary and propagate through the domain again.
The periodic boundary condition is
u(0,t) = u(L,t), un0 = unNx .
It means that we in the first equation, involving un0 , insert unNx , and that we in the last equation, involving un+1 insert un+1. Normally, we can
Nx 0
do this in the simple way that u_1[0] is updated as u_1[Nx] at the
beginning of a new time level.
In some schemes we may need unNx+1 and un−1. Periodicity then means
that these values are equal to un1 and unNx−1, respectively. For the upwind scheme it is sufficient to set u_1[0]=u_1[Nx] at a new time level before computing u[1], which ensures that u[1] becomes right and at the next time level u[0] at the current time level is correctly updated. For the Leapfrog scheme we must update u[0] and u[Nx] using the scheme:
if periodic_bc: i=0
u[i] = u_2[i] - C*(u_1[i+1] - u_1[Nx-1])
for i in range(1, Nx):
u[i] = u_2[i] - C*(u_1[i+1] - u_1[i-1])
if periodic_bc:
u[Nx] = u[0]
4.1.6 Implementation
Test condition. Analytically, we can show that the integral in space under the u(x, t) curve is constant:
398
4 Advection-dominated equations
L ∂u ∂u
∂t+v∂x dx=0 0
∂L
∂t udx = −
L ∂u
v∂xdx udx=[vu]0 =0
∂t
as long as u(0) = u(L) = 0. We can therefore use the property
00
∂u L L
0
L
u(x, t)dx = const
0
as a partial verification during the simulation. Now, any numerical method with C ̸= 1 will deviate from the constant, expected value, so the integral is a measure of the error in the scheme. The integral can be computed by the Trapezoidal integration rule
dx*(0.5*u[0] + 0.5*u[Nx] + np.sum(u[1:-1])) if u is an array holding the solution.
The code. An appropriate solver function for multiple schemes may go as shown below.
def solver(I, U0, v, L, dt, C, T, user_action=None,
scheme=’FE’, periodic_bc=True):
Nt = int(round(T/float(dt)))
t = np.linspace(0, Nt*dt, Nt+1) # Mesh points in time
dx = v*dt/C
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] - x[0]
dt = t[1] - t[0]
C = v*dt/dx
print ’dt=%g, dx=%g, Nx=%d, C=%g’ % (dt, dx, Nx, C)
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
u_nm1 = np.zeros(Nx+1)
integral = np.zeros(Nt+1)
# Set initial condition u(x,0) = I(x)
for i in range(0, Nx+1):
u_n[i] = I(x[i])
# Insert boundary condition
u[0] = U0
4.1 One-dimensional time-dependent advection equations 399
# Compute the integral under the curve
integral[0] = dx*(0.5*u_n[0] + 0.5*u_n[Nx] + np.sum(u_n[1:-1]))
if user_action is not None:
user_action(u_n, x, t, 0)
for n in range(0, Nt):
if scheme == ’FE’:
if periodic_bc: i=0
u[i] = u_n[i] - 0.5*C*(u_n[i+1] - u_n[Nx])
u[Nx] = u[0]
for i in range(1, Nx):
u[i] = u_n[i] - 0.5*C*(u_n[i+1] - u_n[i-1])
elif scheme == ’LF’:
if n == 0:
# Use upwind for first step
if periodic_bc:
i=0
u_n[i] = u_n[Nx]
for i in range(1, Nx+1):
u[i] = u_n[i] - C*(u_n[i] - u_n[i-1])
else:
if periodic_bc:
i=0
u[i] = u_nm1[i] - C*(u_n[i+1] - u_n[Nx-1])
for i in range(1, Nx):
u[i] = u_nm1[i] - C*(u_n[i+1] - u_n[i-1])
if periodic_bc:
u[Nx] = u[0]
elif scheme == ’UP’:
if periodic_bc:
u_n[0] = u_n[Nx]
for i in range(1, Nx+1):
u[i] = u_n[i] - C*(u_n[i] - u_n[i-1])
else:
raise ValueError(’scheme="%s" not implemented’ % scheme)
if not periodic_bc:
# Insert boundary condition
u[0] = U0
# Compute the integral under the curve
integral[n+1] = dx*(0.5*u[0] + 0.5*u[Nx] + np.sum(u[1:-1]))
if user_action is not None:
user_action(u, x, t, n+1)
# Switch variables before next step
u_nm1, u_n, u = u_n, u, u_nm1
return integral
400 4 Advection-dominated equations
Solving a specific problem. We need to call up the solver function in some kind of administering problem solving function that can solve specific problems and make appropriate visualization. The function below makes both static plots, screen animation, and hard copy videos in various formats.
def run(scheme=’UP’, case=’gaussian’, C=1, dt=0.01):
"""General admin routine for explicit and implicit solvers."""
if case == ’gaussian’:
def I(x):
return np.exp(-0.5*((x-L/10)/sigma)**2)
elif case == ’cosinehat’:
def I(x):
return np.cos(np.pi*5/L*(x - L/10)) if x < L/5 else 0
L = 1.0
sigma = 0.02
global lines # needs to be saved between calls to plot
def plot(u, x, t, n):
"""Plot t=0 and t=0.6 in the same figure."""
plt.figure(1)
global lines
if n == 0:
lines = plt.plot(x, u)
plt.axis([x[0], x[-1], -0.5, 1.5])
plt.xlabel(’x’); plt.ylabel(’u’)
plt.axes().set_aspect(0.15)
plt.savefig(’tmp_%04d.png’ % n)
plt.savefig(’tmp_%04d.pdf’ % n)
else:
lines[0].set_ydata(u)
plt.axis([x[0], x[-1], -0.5, 1.5])
plt.title(’C=%g, dt=%g, dx=%g’ %
(C, t[1]-t[0], x[1]-x[0]))
plt.legend([’t=%.3f’ % t[n]])
plt.xlabel(’x’); plt.ylabel(’u’)
plt.draw()
plt.savefig(’tmp_%04d.png’ % n)
plt.figure(2)
eps = 1E-14
if abs(t[n] - 0.6) > eps and abs(t[n] – 0) > eps:
return
print ’t=%g, n=%d, u in [%g, %g] w/%d points’ % \
(t[n], n, u.min(), u.max(), x.size)
if np.abs(u).max() > 3: # Instability?
return
plt.plot(x, u)
plt.hold(’on’)
plt.draw()
if n > 0:
4.1 One-dimensional time-dependent advection equations 401
plt.ion() U0 = 0
T = 0.7 v=1
y = [I(x_-v*t[n]) for x_ in x]
plt.plot(x, y, ’k–’)
if abs(t[n] – 0.6) < eps:
filename = (’tmp_%s_dt%s_C%s’ % \
(scheme, t[1]-t[0], C)).replace(’.’, ’’)
np.savez(filename, x=x, u=u, u_e=y)
# Define video formats and libraries
codecs = dict(flv=’flv’, mp4=’libx264’, webm=’libvpx’,
ogg=’libtheora’)
# Remove video files
import glob, os
for name in glob.glob(’tmp_*.png’):
os.remove(name)
for ext in codecs:
name = ’movie.%s’ % ext
if os.path.isfile(name):
os.remove(name)
integral = solver(
I=I, U0=U0, v=v, L=L, dt=dt, C=C, T=T,
scheme=scheme, user_action=plot)
# Finish up figure(2)
plt.figure(2)
plt.axis([0, L, -0.5, 1.1])
plt.xlabel(’$x$’); plt.ylabel(’$u$’)
plt.savefig(’tmp1.png’); plt.savefig(’tmp1.pdf’)
plt.show()
# Make videos from figure(1) animation files
for codec in codecs:
cmd = ’ffmpeg -i tmp_%%04d.png -r 25 -vcodec %s movie.%s’ % \
(codecs[codec], codec)
os.system(cmd)
print ’Integral of u:’, integral.max(), integral.min()
The complete code is found in the file advec1D.py.
4.1.7 A Crank-Nicolson discretization in time and centered
differences in space
Another obvious candidate for time discretization is the Crank-Nicolson method combined with centered differences in space:
[Dtu]ni +v1([D2xu]n+1+[D2xu]ni)=0. 2i
It can be nice to include the Backward Euler scheme too, via the θ-rule,
402 4 Advection-dominated equations
[Dtu]ni + vθ[D2xu]n+1 + v(1 − θ)[D2xu]ni = 0 . i
This gives rise to an implicit scheme, un+1+θC(un+1−un+1)=un−1−θC(un −un )
i 2 i+1 i−1 i 2 i+1 i−1
for i = 1,...,Nx −1. At the boundaries we set u = 0 and simulate just to
the point of time when the signal hits the boundary (and gets reflected). un+1 =un+1 =0.
0 Nx
The elements on the diagonal in the matrix become:
Ai,i = 1, i = 0,...,Nx . On the subdiagonal and superdiagonal we have
Ai−1,i =−θC, Ai+1,i = θC, i=1,...,Nx −1, 22
with A0,1 = 0 and ANx−1,Nx = 0 due to the known boundary conditions. And finally, the right-hand side becomes
b 0 = u nN x
bi=uni −1−θC(uni+1−uni−1), i=1,...,Nx−1
The dispersion relation follows from inserting uni = Aneikx and using the formula (A.25) for the spatial differences:
A= 1−(1−θ)iCsinp. 1 + θiC sin p
Movie 12: Crank-Nicolson in time, centered in space, C = 0.8, ∆t = 0.005. https://raw.githubusercontent.com/hplgit/fdm- book/master/doc/.src/ book/mov- advec/gaussian/CN/C08_dt0005/movie.ogg
Movie 13: Backward-Euler in time, centered in space, C = 0.8, ∆t = 0.005. https://raw.githubusercontent.com/hplgit/fdm- book/master/doc/.src/ book/mov- advec/cosinehat/BE/C_08_dt005.ogg
Figure 4.6 depicts a numerical solution for C = 0.8 and the Crank- Nicolson with severe oscillations behind the main wave. These oscillations
2 b N x = u n0
4.1 One-dimensional time-dependent advection equations
403
1.0 0.8 0.6 0.4 0.2 0.0 0.2
0.4
0.0 0.2 0.4
0.6 0.8 1.0
x
Crank-Nicolson in time, centered in space, Gaussian profile, C = 0.8, ∆t = 0.01 (left) and ∆t = 0.005 (right).
Fig. 4.6
1.0 0.8 0.6 0.4 0.2 0.0 0.2 0.4
0.0 0.2 0.4
0.6
0.8 1.0
x
1.0 0.8 0.6 0.4 0.2 0.0 0.2
0.4
0.0 0.2 0.4
0.6 0.8 1.0
x
1.0 0.8 0.6 0.4 0.2 0.0 0.2 0.4
0.0 0.2 0.4
Fig. 4.7 Backward-Euler in time, centered in space, half a cosine profile, C = 0.8, ∆t = 0.01 (left) and ∆t = 0.005 (right).
are damped as the mesh is refined. Switching to the Backward Euler scheme helps on the oscillations as they are removed, but the amplitude is significantly reduced. One could expect that the discontinuous derivative in the initial condition of the half a cosine wave would make even stronger demands on producing a smooth profile, but Figure 4.7 shows that also here, Backward-Euler is capable of producing a smooth profile. All in all, there are no major differences between the Gaussian initial condition and the half a cosine condition for any of the schemes.
4.1.8 The Lax-Wendroff method
The Lax-Wendroff method is based on three ideas:
1. Express the new unknown un+1 in terms of known quantities at t = tn
by means of a Taylor polynomial of second degree.
i
x
0.6 0.8 1.0
uu
u
u
404 4 Advection-dominated equations
2. Replace time-derivatives at t = tn by spatial derivatives, using the PDE.
3. Discretize the spatial derivatives by second-order differences so we achieve a scheme of accuracy O(∆t2) + O(∆x2).
Let us follow the recipe. First we have the three-term Taylor polynomial,
.
From the PDE we have that temporal derivatives can be substituted by spatial derivatives:
∂un 1 ∂2un + ∆t2
un+1=un+∆t
i i ∂ti2∂t2
i
and furthermore,
∂u = −v∂u, ∂t ∂x
∂2u = v2 ∂2u . ∂t2 ∂x2
Inserted in the Taylor polynomial formula, we get
i
∂un 1 ∂2un + ∆t2v2
un+1=un−v∆t
ii ∂xi2∂x2
.
To obtain second-order accuracy in space we now use central differences: un+1 = un − v∆t[D u]n + 1∆t2v2[D D u]n,
ii 2xi2xxi or written out,
un+1=un−1C(un −un )+1C2(un −2un+un ). i i 2 i+1 i−1 2 i+1 i i−1
This is the explicit Lax-Wendroff scheme.
Lax-Wendroff works because of artificial viscosity
We can immediately from the formulas above see that the Lax- Wendroff method is nothing but a Forward Euler, central difference in space scheme, which we have shown to be useless because of
chronic instability, plus an artificial diffusion term of strength 1 ∆tv2. 2
4.1 One-dimensional time-dependent advection equations 405
It means that we can take an unstable scheme and add some diffusion to stabilize it. This is a common trick to deal with advection problems. Sometimes, the real physical diffusion is not sufficiently large to make schemes stable, so then we also add artificial diffusion.
From an analysis similar to the ones carried out above, we get an amplification factor for the Lax-Wendroff method that equals
A = 1 − iC sin p − 2C2 sin2(p/2) .
This means that |A| = 1 and also that we have an exact solution of
C = 1!
4.1.9 Analysis of dispersion relations
We have developed expressions for A(C, p) in the exact solution unq = Aneikq∆x of the discrete equations. These expressions are valuable
for investigating the quality of the numerical solutions, see the file dispersion_analysis.py. Note that the Fourier component that solves the original PDE problem has no damping and moves with constant velocity v. There are two basic errors in the numerical Fourier component: there may be damping and the wave velocity may depend on C and p = k∆x.
The shortest wavelength that can be represented is λ = 2∆x. The corresponding k is k = 2π/λ = π/∆x, so p = k∆x ∈ (0,π].
Given a complex A as a function of C and p, how can we visualize it? The two key ingredients in A is the magnitude, reflecting damping or growth of the wave, and the angle, closely related to the velocity of the wave. The Fourier component
Dneik(x−ct)
has damping D and wave velocity c. Let us express our A in polar
form, A = Areiφ, and insert this expression in our discrete component unq = Aneikq∆x = Aneikx:
for
unq = Anr eiφneikx = Anr ei(kx−nφ) = Anr ei(k(x−ct)),
406
4 Advection-dominated equations
Now,
so
c=φ. k∆t
k∆t = Ck∆x = Cp, vv
c = φv . Cp
An appropriate dimensionless quantity to plot is the scaled wave velocity c/v:
c=φ. v Cp
Figures 4.8–4.13 contain dispersion curves, velocity and damping, for various values of C. The horizontal axis shows the dimensionless frequency p of the wave, while the figures to the left illustrate the error in wave velocity c/v (should ideally be 1 for all p), and the figures to the right display the absolute value (magnitude) of the damping factor Ar. The curves are labeled according to the table below.
Label Method
FE Forward Euler in time, centered difference in space LF Leapfrog in time, centered difference in space
UP Forward Euler in time, upwind difference in space CN Crank-Nicolson in time, centered difference in space LW Lax-Wendroff’s method
BE Backward Euler in time, centered difference in space
0.2 0.0 0.2 0.4 0.6 0.8 1.0
1.2
0.0 0.5
C=1
LW UP LF
1.0 1.5
2.0 2.5 3.0 3.5
p
1.06
1.04
1.02
1.00
0.98
0.96
0.94
0.0 0.5
C=1
LW UP LF
1.0 1.5
2.0 2.5 3.0 3.5
p
Fig. 4.8 Dispersion relations for C = 1.
c/v
Ar
4.1 One-dimensional time-dependent advection equations 407
0.0
C=1
CN BE FE
0.2
0.4
0.6
0.8
1.0
0.0 0.5
1.0 1.5
2.0 2.5 3.0 3.5
CN BE FE
p
1.5 1.4 1.3 1.2 1.1 1.0 0.9 0.8
0.7
0.0 0.5
C=1
1.0 1.5
2.0 2.5 3.0 3.5
p
Fig. 4.9 Dispersion relations for C = 1.
0.2 0.0 0.2 0.4 0.6 0.8 1.0 1.2
1.4
0.0 0.5
C=0.8
1.0 1.5
2.0 2.5 3.0 3.5
LW UP LF
p
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3
0.2
0.0 0.5
C=0.8
1.0 1.5
2.0 2.5 3.0 3.5
LW UP LF
p
Fig. 4.10 Dispersion relations for C = 0.8.
0.0
0.2
0.4
0.6
0.8
1.0
0.0 0.5
C=0.8
CN BE FE
CN BE FE
1.0 1.5
2.0 2.5 3.0 3.5
p
1.3
1.2
1.1
1.0
0.9
0.8
0.7
0.0 0.5
C=0.8
1.0 1.5
2.0 2.5 3.0 3.5
p
Fig. 4.11 Dispersion relations for C = 0.8.
The total damping after some time T = n∆t is reflected by Ar(C,p)n.
1/∆t
Since normally Ar < 1, the damping goes like Ar and approaches zero
as ∆t → 0. The only two ways to reduce the damping are to increase C and the mesh resolution.
c/v c/v c/v
Ar Ar Ar
408 4 Advection-dominated equations
0.2 0.0 0.2 0.4 0.6 0.8 1.0
1.2
0.0 0.5
C=0.5
1.0 1.5
2.0 2.5 3.0 3.5
LW UP LF
0.8
0.6
0.4
0.2
0.0
0.0 0.5
1.0 1.5
2.0 2.5 3.0 3.5
LW UP LF
p
1.0
C=0.5
p
Fig. 4.12 Dispersion relations for C = 0.5.
0.0
0.2
0.4
0.6
0.8
1.0
0.0 0.5
C=0.5
CN BE FE
CN BE FE
1.0 1.5
2.0 2.5 3.0 3.5
p
1.15
1.10
1.05
1.00
0.95
0.90
0.85
0.0 0.5
C=0.5
1.0 1.5
2.0 2.5 3.0 3.5
p
Fig. 4.13 Dispersion relations for C = 0.5.
We can learn a lot from the dispersion relation plots. For example, looking at the plots for C = 1, the schemes LW, UP, and LF has no amplitude reduction, but LF has a wrong phase velocity for the shortest wave in the mesh. This wave does not (normally) have enough amplitude to be seen, so for all practical purposes, there is no damping or wrong velocity of the individual waves, so the total shape of the wave is also correct. For the CN scheme, see Figure 4.6, each individual wave has its amplitude, but they move with different velocities, so after a while, we see some of these waves lagging behind. For the BE scheme, see Figure 4.7, all the shorter waves are so heavily dampened that we cannot see them after a while. We see only the longest waves, which have slightly wrong velocity, but visible amplitudes are sufficiently equal to produce what looks like a smooth profile.
Another feature was that the Leapfrog method produced oscillations, while the upwind scheme did not. Since the Leapfrog method does not dampen the shorter waves, which have wrong wave velocities of order 10 percent, we can see these waves as noise. The upwind scheme, however,
c/v c/v
Ar
Ar
4.2 One-dimensional stationary advection-diffusion equation 409
dampens these waves. The same effect is also present in the Lax-Wendroff scheme, but the damping of the intermediate waves is hardly present, so there is visible noise in the total signal.
We realize that there is more understanding of the behavior of the schemes in the dispersion analysis compared with a pure truncation error analysis. The latter just says Lax-Wendroff is better than upwind, because of the increased order in time, but most people would say upwind is the better by looking at the plots.
4.2 One-dimensional stationary advection-diffusion equation
Now we pay attention to a physical process where advection (or convec- tion) is in balance with diffusion:
vdu = αd2u . (4.11) dx dx2
For simplicity, we assume v and α to be constant, but the extension to the variable-coefficient case is trivial. This equation can be viewed as the stationary limit of the corresponding time-dependent problem
∂u + v∂u = α∂2u . (4.12) ∂t ∂x ∂x2
Equations of the form (4.11) or (4.12) arise from transport phenomena, either mass or heat transport. One can also view the equations as a simple model problem for the Navier-Stokes equations. With the chosen bound- ary conditions, the differential equation problem models the phenomenon of a boundary layer, where the solution changes rapidly very close to the boundary. This is a characteristic of many fluid flow problems and make strong demands to numerical methods. The fundamental numerical difficulty is related to non-physical oscillations of the solution (instability) if the first-derivative spatial term dominates over the second-derivative term.
410 4 Advection-dominated equations
4.2.1 A simple model problem
We consider (4.11) on [0, L] equipped with the boundary conditions u(0) = U0, u(L) = UL. By scaling we can reduce the number of parameters in the problem. We scale x by x ̄ = x/L, and u by
u ̄ = u − u 0 . uL − u0
Inserted in the governing equation we get
v(uL −u0)du ̄ = α(uL −u0)d2u ̄, u ̄(0)=0, u ̄(1)=1. L dx ̄ L2 dx ̄2
Dropping the bars is common. We can then simplify to
du = εd2u, u(0) = 0, u(1) = 1. (4.13)
dx dx2
There are two competing effects in this equation: the advection term
transports signals to the right, while the diffusion term transports signals to the left and the right. The value u(0) = 0 is transported through the domain if ε is small, and u ≈ 0 except in the vicinity of x = 1, where u(1) = 1 and the diffusion transports some information about u(1) = 1 to the left. For large ε, diffusion dominates and the u takes on the “average” value, i.e., u gets a linear variation from 0 to 1 throughout the domain.
It turns out that we can find an exact solution to the differential equation problem and also to many of its discretizations. This is one reason why this model problem has been so successful in designing and investigating numerical methods for mixed convection/advection and diffusion. The exact solution reads
ue(x) = ex/ε − 1 . e1/ε − 1
The forthcoming plots illustrates this function for various values of ε. 4.2.2 A centered finite difference scheme
The most obvious idea to solve (4.13) is to apply centered differences: [D2xu = εDxDxu]i
fori=1,...,Nx−1,withu0 =0anduNx =1.Notethatthisisa coupled system of algebraic equations involving u0, . . . , uNx .
4.2 One-dimensional stationary advection-diffusion equation 411
Written out, the scheme becomes a tridiagonal system Ai−1,iui−1 + Ai,iui + Ai+1.iui+1 = 0,
for i = 1, . . . , Nx − 1
A0,0 = 1, Ai−1,i=−1 −ε 1 ,
∆x ∆x2 Ai,i=2ε 1 ,
∆x2 Ai,i+1= 1 −ε 1 ,
∆x ∆x2 ANx,Nx =1.
The right-hand side of the linear system is zero except bNx = 1.
Figure 4.14 shows reasonably accurate results with Nx = 20 and Nx = 40 cells in x direction and a value of ε = 0.1. Decreasing ε to 0.01 leads to oscillatory solutions as depicted in Figure 4.15. This
is, unfortunately, a typical phenomenon in this type of problem: non- physical oscillations arise for small ε unless the resolution Nx is big enough. Exercise 4.1 develops a precise criterion: u is oscillation-free if
∆x ≤ 2 . ε
If we take the present model as a simplified model for a viscous boundary layer in real, industrial fluid flow applications, ε ∼ 10−6 and millions of cells are required to resolve the boundary layer. Fortunately, this is not strictly necessary as we have methods in the next section to overcome the problem!
Solver
A suitable solver for doing the experiments is presented below.
import numpy as np
def solver(eps, Nx, method=’centered’):
"""
Solver for the two point boundary value problem u’=eps*u’’,
u(0)=0, u(1)=1.
"""
412 4 Advection-dominated equations
1.0
centered difference scheme, ε =0.1
Nx =20 exact
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
Nx =40 exact
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
x
1.0
centered difference scheme, ε =0.1
x
Fig. 4.14 Comparison of exact and numerical solution for ε = 0.1 and Nx = 20, 40 with centered differences.
1.0 0.8 0.6 0.4 0.2 0.0 0.2 0.4 0.6
centered difference scheme, ε =0.01
Nx =20 exact
0.8
0.0 0.2 0.4
0.6 0.8 1.0
x
Nx =40 exact
1.0
0.5
0.0
0.5
0.0 0.2 0.4
0.6 0.8 1.0
centered difference scheme, ε =0.01
x
Fig. 4.15 Comparison of exact and numerical solution for ε = 0.01 and Nx = 20, 40 with centered differences.
x = np.linspace(0, 1, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] - x[0]
u = np.zeros(Nx+1)
# Representation of sparse matrix and right-hand side
diagonal = np.zeros(Nx+1)
lower upper b
= np.zeros(Nx)
= np.zeros(Nx)
= np.zeros(Nx+1)
# Precompute sparse matrix (scipy format)
if method == ’centered’:
diagonal[:] = 2*eps/dx**2
lower[:] = -1/dx - eps/dx**2
upper[:] = 1/dx - eps/dx**2
elif method == ’upwind’:
diagonal[:] = 1/dx + 2*eps/dx**2
lower[:] = 1/dx - eps/dx**2
upper[:] = - eps/dx**2
uu
u
u
4.2 One-dimensional stationary advection-diffusion equation 413
# Insert boundary conditions
upper[0] = 0
lower[-1] = 0
diagonal[0] = diagonal[-1] = 1
b[-1] = 1.0
# Set up sparse matrix and solve
diags = [0, -1, 1]
import scipy.sparse
import scipy.sparse.linalg
A = scipy.sparse.diags(
diagonals=[diagonal, lower, upper],
offsets=[0, -1, 1], shape=(Nx+1, Nx+1),
format=’csr’)
u[:] = scipy.sparse.linalg.spsolve(A, b)
return u, x
4.2.3 Remedy: upwind finite difference scheme
The scheme can be stabilized by letting the advective transport term, which is the dominating term, collect its information in the flow direction, i.e., upstream or upwind of the point in question. So, instead of using a centered difference
du ≈ ui+1 −ui−1,
dxi 2∆x we use the one-sided upwind difference
du ≈ui−ui−1,
dxi 2∆x in case v > 0. For v < 0 we set
du ≈ui+1−ui,
dxi 2∆x
On compact operator notation form, our upwind scheme can be expressed
as
[Dx−u = εDxDxu]i provided v > 0 (and ε > 0).
414 4 Advection-dominated equations
We write out the equations and implement them as shown in the program in Section 4.2.2. The results appear in Figures 4.16 and 4.17: no more oscillations!
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
upwind difference scheme, ε =0.1
Nx =20 exact
x
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
upwind difference scheme, ε =0.1
Nx =40 exact
x
Fig. 4.16 Comparison of exact and numerical solution for ε = 0.1 and Nx = 20, 40 with upwind difference.
upwind difference scheme, ε =0.01
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
Nx =20 exact
x
1.0
0.8
0.6
0.4
0.2
0.0
0.0 0.2 0.4
0.6 0.8 1.0
upwind difference scheme, ε =0.01
Nx =40 exact
x
Fig. 4.17 Comparison of exact and numerical solution for ε = 0.01 and Nx = 20, 40 with upwind difference.
We see that the upwind scheme is always stable, but it gives a thicker boundary layer when the centered scheme is also stable. Why the upwind scheme is always stable is easy to understand as soon as we undertake the mathematical analysis in Exercise 4.1. Moreover, the thicker layer
(seemingly larger diffusion) can be understood by doing Exercise 4.2. Exact solution for this model problem
uu
uu
4.3 Time-dependent convection-diffusion equations 415
It turns out that one can introduce a linear combination of the centered and upwind differences for the first-derivative term in this model problem. One can then adjust the weight in the linear combination so that the numerical solution becomes identical to the analytical solution of the differential equation problem at any mesh point.
4.3 Time-dependent convection-diffusion equations
Now it is time to combine time-dependency, convection (advection) and diffusion into one equation:
∂u + v∂u = α∂2u . (4.14) ∂t ∂x ∂x2
Analytical insight. The diffusion is now dominated by convection, a wave, and diffusion, a loss of amplitude. One possible analytical solution is a traveling Gaussian function
x−vt u(x, t) = B exp − 4at .
This function moves with velocity v > 0 to the right (v < 0 to the left) due to convection, but at the same time we have a damping e−16a2t2 from diffusion.
4.3.1 Forward in time, centered in space scheme
The Forward Euler for the diffusion equation is a successful scheme, but it has a very strict stability condition. The similar Forward in time, centered in space strategy always gives unstable solutions for the advection PDE. What happens when we have both diffusion and advection present at once?
[Dtu+vD2xu=αDxDxu+f]ni .
We expect that diffusion will stabilize the scheme, but that advection will destabilize it.
416 4 Advection-dominated equations
Another problem is non-physical oscillations, but not growing am- plitudes, due to centered differences in the advection term. There will hence be two types of instabilities to consider. Our analysis showed that pure advection with centered differences in space needs some artificial diffusion to become stable (and then it produces upwind differences for the advection term). Adding more physical diffusion should further help the numerics to stabilize the non-physical oscillations.
The scheme is quickly implemented, but suffers from the need for small space and time steps, according to this reasoning. A better approach is to get rid of the non-physical oscillations in space by simply applying an upwind difference on the advection term.
4.3.2 Forward in time, upwind in space scheme
A good approximation for the pure advection equation is to use upwind discretization of the advection term. We also know that centered dif- ferences are good for the diffusion term, so let us combine these two discretizations:
[Dtu + vDx−u = αDxDxu + f]ni , (4.15)
for v > 0. Use vD+u if v < 0. In this case the physical diffusion and the extra numerical diffusion v∆x/2 will stabilize the solution, but give an overall too large reduction in amplitude compared with the exact solution.
We may also interpret the upwind difference as artificial numerical diffusion and centered differences in space everywhere, so the scheme can be expressed as
[Du+vD−u=αv∆x)D D u+f]n. (4.16) t 2x 2xx i
4.4 Two-dimensional advection-diffusion equations
4.5 Applications of advection equations
There are two major areas where advection and convection applications arise: transport of a substance and heat transport in a fluid. To derive the models, we may look at the similar derivations of diffusion models
4.5 Applications of advection equations 417
in Section 3.8, but change the assumption from a solid to fluid medium. This gives rise to the extra advection or convection term v · ∇u. We briefly show how this is done.
Normally, transport in a fluid is dominated by the fluid flow and not diffusion, so we can neglect diffusion compared to advection or convection. The end result is anyway an equation of the form
∂u + v · ∇u = 0 . ∂t
4.5.1 Transport of a substance
The diffusion of a substance in Section 3.8.1 takes place in a solid medium, but in a fluid we can have two transport mechanisms: one by diffusion and one by advection. The latter arises from the fact that the substance particles are moved with the fluid velocity v such that the effective flux now consists of two and not only one component as in (3.122):
q = − α ∇ c + v ̧.
Inserted in the equation ∇ · q = 0 we get the extra advection term ∇ · (v ̧). Very often we deal with incompressible flows, ∇ · v = 0 such that the advective term becomes v · ∇c. The mass transport equation for a substance then reads
∂c + v · ∇c = α∇2c . (4.17) ∂t
4.5.2 Transport of a heat
The derivation of the heat equation in Section 3.8.2 is limited to heat transport in solid bodies. If we turn the attention to heat transport in fluids, we get a material derivative of the internal energy in (3.124),
De = −∇ · q, dt
and more terms if work by stresses is also included, where
De = ∂e + v · ∇e, dt ∂t
418 4 Advection-dominated equations
v being the velocity of the fluid. The convective term v·∇e must therefore be added to the governing equation, resulting typically in
∂T
ρc ∂t +v·∇T =∇·(k∇T)+f, (4.18)
where f is some external heating inside the medium.
4.6 Exercises
Exercise 4.1: Analyze 1D stationary convection-diffusion problem
Explain the observations in the numerical experiments from Sections 4.2.2 and 4.2.3 by finding exact numerical solutions.
Hint. The difference equations allow solutions on the form Ai, where A is an unknown constant and i is a mesh point counter. There are two solutions for A, so the general solution is a linear combination of the two, where the constants in the linear combination are determined from the boundary conditions.
Filename: twopt_BVP_analysis1.
Exercise 4.2: Interpret upwind difference as artificial diffusion
Consider an upwind, one-sided difference approximation to a term du/dx in a differential equation. Show that this formula can be expressed as a cen- tered difference plus an artificial diffusion term of strength proportional to ∆x. This means that introducing an upwind difference also means intro- ducing extra diffusion of order O(∆x). Filename: twopt_BVP_analysis2.
5.1 Introduction of basic concepts 5.1.1 Linear versus nonlinear equations
Algebraic equations. A linear, scalar, algebraic equation in x has the form
ax + b = 0,
for arbitrary real constants a and b. The unknown is a number x. All other algebraic equations, e.g., x2 + ax + b = 0, are nonlinear. The typical feature in a nonlinear algebraic equation is that the unknown appears in products with itself, like x2 or ex = 1 + x + 1 x2 + 1 x3 + · · · .
2 3!
We know how to solve a linear algebraic equation, x = −b/a, but there are no general methods for finding the exact solutions of nonlinear algebraic equations, except for very special cases (quadratic equations constitute a primary example). A nonlinear algebraic equation may have no solution, one solution, or many solutions. The tools for solving nonlinear algebraic equations are iterative methods, where we construct a series of linear equations, which we know how to solve, and hope that the solutions of the linear equations converge to a solution of the nonlinear equation we want to solve. Typical methods for nonlinear algebraic equation equations are Newton’s method, the Bisection method, and the Secant method.
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Nonlinear problems
5
420 5 Nonlinear problems
Differential equations. The unknown in a differential equation is a function and not a number. In a linear differential equation, all terms involving the unknown function are linear in the unknown function or its derivatives. Linear here means that the unknown function, or a derivative of it, is multiplied by a number or a known function. All other differential equations are non-linear.
The easiest way to see if an equation is nonlinear, is to spot nonlinear terms where the unknown function or its derivatives are multiplied by each other. For example, in
u′(t) = −a(t)u(t) + b(t),
the terms involving the unknown function u are linear: u′ contains the derivative of the unknown function multiplied by unity, and au contains the unknown function multiplied by a known function. However,
u′(t) = u(t)(1 − u(t)),
is nonlinear because of the term −u2 where the unknown function is
multiplied by itself. Also
∂u + u∂u = 0,
∂t ∂x
is nonlinear because of the term uux where the unknown function appears
in a product with its derivative. (Note here that we use different notations for derivatives: u′ or du/dt for a function u(t) of one variable, ∂u or ut
for a function of more than one variable.) Another example of a nonlinear equation is
∂t
u′′ + sin(u) = 0,
because sin(u) contains products of u, which becomes clear if we expand
the function in a Taylor series:
sin(u) = u − 1 u3 + . . . 3
Mathematical proof of linearity
5.1 Introduction of basic concepts 421
To really prove mathematically that some differential equation in an unknown u is linear, show for each term T (u) that with u = au1 +bu2 for constants a and b,
T(au1 +bu2)=aT(u1)+bT(u2).
For example, the term T(u) = (sin2 t)u′(t) is linear because
T(au1 + bu2) = (sin2 t)(au1(t) + bu2(t))
= a(sin2 t)u1(t) + b(sin2 t)u2(t)
= aT (u1) + bT (u2) . However, T (u) = sin u is nonlinear because
T(au1 +bu2)=sin(au1 +bu2)̸=asinu1 +bsinu2.
5.1.2 A simple model problem
A series of forthcoming examples will explain how to tackle nonlinear differential equations with various techniques. We start with the (scaled) logistic equation as model problem:
u′(t) = u(t)(1 − u(t)) . (5.1)
This is a nonlinear ordinary differential equation (ODE) which will be solved by different strategies in the following. Depending on the chosen time discretization of (5.1), the mathematical problem to be solved at every time level will either be a linear algebraic equation or a nonlinear algebraic equation. In the former case, the time discretization method transforms the nonlinear ODE into linear subproblems at each time level, and the solution is straightforward to find since linear algebraic equations are easy to solve. However, when the time discretization leads to nonlinear algebraic equations, we cannot (except in very rare cases) solve these without turning to approximate, iterative solution methods.
The next subsections introduce various methods for solving nonlinear differential equations, using (5.1) as model. We shall go through the following set of cases:
422 5 Nonlinear problems
• explicit time discretization methods (with no need to solve nonlinear algebraic equations)
• implicit Backward Euler time discretization, leading to nonlinear algebraic equations solved by
– an exact analytical technique
– Picard iteration based on manual linearization – a single Picard step
– Newton’s method
• implicit Crank-Nicolson time discretization and linearization via a geometric mean formula
Thereafter, we compare the performance of the various approaches. De- spite the simplicity of (5.1), the conclusions reveal typical features of the various methods in much more complicated nonlinear PDE problems.
5.1.3 Linearization by explicit time discretization
Time discretization methods are divided into explicit and implicit meth- ods. Explicit methods lead to a closed-form formula for finding new values of the unknowns, while implicit methods give a linear or nonlinear system of equations that couples (all) the unknowns at a new time level. Here we shall demonstrate that explicit methods constitute an efficient way to deal with nonlinear differential equations.
The Forward Euler method is an explicit method. When applied to (5.1), sampled at t = tn, it results in
un+1 − un
∆t = un(1 − un),
which is a linear algebraic equation for the unknown value un+1 that we can easily solve:
un+1 =un +∆tun(1−un).
The nonlinearity in the original equation poses in this case no difficulty in the discrete algebraic equation. Any other explicit scheme in time will also give only linear algebraic equations to solve. For example, a typical 2nd-order Runge-Kutta method for (5.1) leads to the following formulas:
5.1 Introduction of basic concepts 423
u∗ = un + ∆tun(1 − un),
un+1 =un+∆t1(un(1−un)+u∗(1−u∗))).
2
The first step is linear in the unknown u∗. Then u∗ is known in the next
step, which is linear in the unknown un+1 .
5.1.4 Exact solution of nonlinear algebraic equations
Switching to a Backward Euler scheme for (5.1), un − un−1
∆t = un(1 − un), (5.2) results in a nonlinear algebraic equation for the unknown value un. The
equation is of quadratic type:
∆t(un)2 + (1 − ∆t)un − un−1 = 0,
and may be solved exactly by the well-known formula for such equations. Before we do so, however, we will introduce a shorter, and often cleaner, notation for nonlinear algebraic equations at a given time level. The notation is inspired by the natural notation (i.e., variable names) used in a program, especially in more advanced partial differential equation problems. The unknown in the algebraic equation is denoted by u, while u(1) is the value of the unknown at the previous time level (in general, u(l) is the value of the unknown l levels back in time). The notation will be frequently used in later sections. What is meant by u should be evident from the context: u may be 1) the exact solution of the ODE/PDE problem, 2) the numerical approximation to the exact solution, or 3) the unknown solution at a certain time level.
The quadratic equation for the unknown un in (5.2) can, with the new notation, be written
F(u)=∆tu2 +(1−∆t)u−u(1) =0. (5.3) The solution is readily found to be
1 2 (1)
u=2∆t −1+∆t± (1−∆t) −4∆tu . (5.4)
Now we encounter a fundamental challenge with nonlinear algebraic equations: the equation may have more than one solution. How do we
424 5 Nonlinear problems
pick the right solution? This is in general a hard problem. In the present simple case, however, we can analyze the roots mathematically and provide an answer. The idea is to expand the roots in a series in ∆t and truncate after the linear term since the Backward Euler scheme will introduce an error proportional to ∆t anyway. Using sympy we find the following Taylor series expansions of the roots:
>>> import sympy as sym
>>> dt, u_1, u = sym.symbols(’dt u_1 u’)
>>> r1, r2 = sym.solve(dt*u**2 + (1-dt)*u – u_1, u) # find roots
>>> r1
(dt – sqrt(dt**2 + 4*dt*u_1 – 2*dt + 1) – 1)/(2*dt)
>>> r2
(dt + sqrt(dt**2 + 4*dt*u_1 – 2*dt + 1) – 1)/(2*dt)
>>> print r1.series(dt, 0, 2) # 2 terms in dt, around dt=0
-1/dt + 1 – u_1 + dt*(u_1**2 – u_1) + O(dt**2)
>>> print r2.series(dt, 0, 2)
u_1 + dt*(-u_1**2 + u_1) + O(dt**2)
We see that the r1 root, corresponding to a minus sign in front of the square root in (5.4), behaves as 1/∆t and will therefore blow up as ∆t → 0! Since we know that u takes on finite values, actually it is less than or equal to 1, only the r2 root is of relevance in this case: as ∆t → 0, u → u(1), which is the expected result.
For those who are not well experienced with approximating mathemat- ical formulas by series expansion, an alternative method of investigation is simply to compute the limits of the two roots as ∆t → 0 and see if a limit unreasonable:
5.1.5 Linearization
When the time integration of an ODE results in a nonlinear algebraic equation, we must normally find its solution by defining a sequence of linear equations and hope that the solutions of these linear equations con- verge to the desired solution of the nonlinear algebraic equation. Usually, this means solving the linear equation repeatedly in an iterative fashion. Alternatively, the nonlinear equation can sometimes be approximated by one linear equation, and consequently there is no need for iteration.
>>> print r1.limit(dt, 0)
-oo
>>> print r2.limit(dt, 0)
u_1
5.1 Introduction of basic concepts 425
Constructing a linear equation from a nonlinear one requires lineariza- tion of each nonlinear term. This can be done manually as in Picard iteration, or fully algorithmically as in Newton’s method. Examples will best illustrate how to linearize nonlinear problems.
5.1.6 Picard iteration
Let us write (5.3) in a more compact form F(u)=au2 +bu+c=0,
witha=∆t,b=1−∆t,andc=−u(1).Letu− beanavailable approximation of the unknown u. Then we can linearize the term u2 simply by writing u−u. The resulting equation, Fˆ(u) = 0, is now linear and hence easy to solve:
F (u) ≈ Fˆ(u) = au−u + bu + c = 0 .
Since the equation Fˆ = 0 is only approximate, the solution u does not equal the exact solution ue of the exact equation F(ue) = 0, but we can hope that u is closer to ue than u− is, and hence it makes sense to repeat the procedure, i.e., set u− = u and solve Fˆ(u) = 0 again. There is no guarantee that u is closer to ue than u−, but this approach has proven to be effective in a wide range of applications.
The idea of turning a nonlinear equation into a linear one by using an approximation u− of u in nonlinear terms is a widely used approach that goes under many names: fixed-point iteration, the method of successive substitutions, nonlinear Richardson iteration, and Picard iteration. We will stick to the latter name.
Picard iteration for solving the nonlinear equation arising from the Backward Euler discretization of the logistic equation can be written as
u=− c ,u−←u. au− + b
The ← symbols means assignment (we set u− equal to the value of u). The iteration is started with the value of the unknown at the previous time level: u− = u(1).
Some prefer an explicit iteration counter as superscript in the mathe- matical notation. Let uk be the computed approximation to the solution in iteration k. In iteration k + 1 we want to solve
426 5 Nonlinear problems
aukuk+1+buk+1+c=0 ⇒ uk+1=− c , k=0,1,… auk + b
Since we need to perform the iteration at every time level, the time level counter is often also included:
n,k n,k+1 n,k+1 n−1 n,k+1 un
au u +bu −u = 0 ⇒ u = aun,k + b , k = 0, 1, . . . ,
with the start value un,0 = un−1 and the final converged value un = un,k for sufficiently large k.
However, we will normally apply a mathematical notation in our final formulas that is as close as possible to what we aim to write in a computer code and then it becomes natural to use u and u− instead of uk+1 and uk or un,k+1 and un,k.
Stopping criteria. The iteration method can typically be terminated when the change in the solution is smaller than a tolerance εu:
|u − u−| ≤ εu,
or when the residual in the equation is sufficiently small (< εr),
|F (u)| = |au2 + bu + c| < εr .
A single Picard iteration. Instead of iterating until a stopping criterion is fulfilled, one may iterate a specific number of times. Just one Picard iteration is popular as this corresponds to the intuitive idea of approx- imating a nonlinear term like (un)2 by un−1un. This follows from the linearization u−un and the initial choice of u− = un−1 at time level tn. In other words, a single Picard iteration corresponds to using the solution at the previous time level to linearize nonlinear terms. The resulting discretization becomes (using proper values for a, b, and c)
un − un−1
∆t = un(1 − un−1), (5.5)
which is a linear algebraic equation in the unknown un, making it easy to solve for un without any need for any alternative notation.
We shall later refer to the strategy of taking one Picard step, or equivalently, linearizing terms with use of the solution at the previous time step, as the Picard1 method. It is a widely used approach in science
5.1 Introduction of basic concepts 427
and technology, but with some limitations if ∆t is not sufficiently small (as will be illustrated later).
Notice
Equation (5.5) does not correspond to a “pure” finite difference method where the equation is sampled at a point and derivatives replaced by differences (because the un−1 term on the right-hand side must then be un). The best interpretation of the scheme (5.5) is a Backward Euler difference combined with a single (perhaps insufficient) Picard iteration at each time level, with the value at the previous time level as start for the Picard iteration.
5.1.7 Linearization by a geometric mean
We consider now a Crank-Nicolson discretization of (5.1). This means that the time derivative is approximated by a centered difference,
written out as
n+1 The term u 2
[D u = u(1 − u)]n+ 1 , t2
∆t
un+1 − un 1 1
=un+2 −(un+2)2.
is normally approximated by an arithmetic mean,
(5.6)
2
un+1 ≈ 1(un +un+1),
2
such that the scheme involves the unknown function only at the time
levels where we actually compute it. The same arithmetic mean applied to the nonlinear term gives
(un+1 )2 ≈ 1(un +un+1)2,
4
which is nonlinear in the unknown un+1. However, using a geometric
n+1 2
mean for (u 2 ) is a way of linearizing the nonlinear term in (5.6):
(un+1)2 ≈unun+1. 2
2
428 5 Nonlinear problems
n+1
Using an arithmetic mean on the linear u 2 term in (5.6) and a geometric
mean for the second term, results in a linearized equation for the unknown un+1 :
un+1−un 1 n n+1 n n+1 ∆t =2(u+u )+uu ,
which can readily be solved:
un+1 = 2 un .
1 + 1 ∆t
1 + ∆tun − 1 ∆t
2
This scheme can be coded directly, and since there is no nonlinear algebraic equation to iterate over, we skip the simplified notation with u for un+1 and u(1) for un. The technique with using a geometric average is an example of transforming a nonlinear algebraic equation to a linear one, without any need for iterations.
The geometric mean approximation is often very effective for lineariz- ing quadratic nonlinearities. Both the arithmetic and geometric mean approximations have truncation errors of order ∆t2 and are therefore compatible with the truncation error O(∆t2) of the centered difference approximation for u′ in the Crank-Nicolson method.
Applying the operator notation for the means and finite differences, the linearized Crank-Nicolson scheme for the logistic equation can be compactly expressed as
[Du=ut+u2t,g]n+1 . t2
Remark
If we use an arithmetic instead of a geometric mean for the nonlinear term in (5.6), we end up with a nonlinear term (un+1)2. This term can be linearized as u−un+1 in a Picard iteration approach and in particular as unun+1 in a Picard1 iteration approach. The latter gives a scheme almost identical to the one arising from a geometric
mean (the difference in un+1 being 1 ∆tun(un+1 − un) ≈ 1 ∆t2u′u,
i.e., a difference of size ∆t2).
44
5.1 Introduction of basic concepts 429
5.1.8 Newton’s method
The Backward Euler scheme (5.2) for the logistic equation leads to a nonlinear algebraic equation (5.3). Now we write any nonlinear algebraic equation in the general and compact form
F(u) = 0.
Newton’s method linearizes this equation by approximating F(u) by its Taylor series expansion around a computed value u− and keeping only the linear part:
F (u) = F (u− ) + F ′ (u− )(u − u− ) + 1 F ′′ (u− )(u − u− )2 + · · · 2
≈ F (u−) + F ′(u−)(u − u−) = Fˆ(u) . The linear equation Fˆ(u) = 0 has the solution
u = u− − F(u−) . F′(u−)
Expressed with an iteration index in the unknown, Newton’s method takes on the more familiar mathematical form
uk+1=uk−F(uk), k=0,1,... F′(uk)
It can be shown that the error in iteration k + 1 of Newton’s method is proportional to the square of the error in iteration k, a result referred to as quadratic convergence. This means that for small errors the method converges very fast, and in particular much faster than Picard iteration and other iteration methods. (The proof of this result is found in most textbooks on numerical analysis.) However, the quadratic convergence appears only if uk is sufficiently close to the solution. Further away from the solution the method can easily converge very slowly or diverge. The reader is encouraged to do Exercise 5.3 to get a better understanding for the behavior of the method.
Application of Newton’s method to the logistic equation discretized by the Backward Euler method is straightforward as we have
F(u)=au2 +bu+c, a=∆t, b=1−∆t, c=−u(1), and then
430
5 Nonlinear problems
F ′(u) = 2au + b . The iteration method becomes
u=u−+a(u−)2+bu−+c, u− ←u. (5.7) 2au− + b
At each time level, we start the iteration by setting u− = u(1). Stopping criteria as listed for the Picard iteration can be used also for Newton’s method.
An alternative mathematical form, where we write out a, b, and c, and use a time level counter n and an iteration counter k, takes the form
∆t(un,k )2 + (1 − ∆t)un,k − un−1
un,k+1 = un,k + 2∆tun,k + 1 − ∆t , un,0 = un−1, (5.8)
for k = 0, 1, . . .. A program implementation is much closer to (5.7) than to (5.8), but the latter is better aligned with the established mathematical notation used in the literature.
5.1.9 Relaxation
One iteration in Newton’s method or Picard iteration consists of solving a linear problem Fˆ(u) = 0. Sometimes convergence problems arise because the new solution u of Fˆ(u) = 0 is “too far away” from the previously computed solution u−. A remedy is to introduce a relaxation, meaning that we first solve Fˆ(u∗) = 0 for a suggested value u∗ and then we take u as a weighted mean of what we had, u−, and what our linearized equation Fˆ = 0 suggests, u∗:
u = ωu∗ + (1 − ω)u− .
The parameter ω is known as a relaxation parameter, and a choice ω < 1 may prevent divergent iterations.
Relaxation in Newton’s method can be directly incorporated in the basic iteration formula:
u=u− −ωF(u−) . (5.9) F′(u−)
5.1 Introduction of basic concepts 431
5.1.10 Implementation and experiments
The program logistic.py contains implementations of all the methods described above. Below is an extract of the file showing how the Picard and Newton methods are implemented for a Backward Euler discretization of the logistic equation.
def BE_logistic(u0, dt, Nt, choice=’Picard’,
eps_r=1E-3, omega=1, max_iter=1000):
if choice == ’Picard1’:
choice = ’Picard’
max_iter = 1
u = np.zeros(Nt+1)
iterations = []
u[0] = u0
for n in range(1, Nt+1):
a = dt
b = 1 - dt
c = -u[n-1]
if choice == ’Picard’:
def F(u):
return a*u**2 + b*u + c
u_ = u[n-1]
k=0
while abs(F(u_)) > eps_r and k < max_iter:
u_ = omega*(-c/(a*u_ + b)) + (1-omega)*u_
k += 1 u[n] = u_
iterations.append(k)
elif choice == ’Newton’:
def F(u):
return a*u**2 + b*u + c
def dF(u):
return 2*a*u + b
u_ = u[n-1]
k=0
while abs(F(u_)) > eps_r and k < max_iter:
u_ = u_ - F(u_)/dF(u_)
k += 1 u[n] = u_
iterations.append(k)
return u, iterations
The Crank-Nicolson method utilizing a linearization based on the geometric mean gives a simpler algorithm:
432 5 Nonlinear problems
def CN_logistic(u0, dt, Nt):
u = np.zeros(Nt+1)
u[0] = u0
for n in range(0, Nt):
u[n+1] = (1 + 0.5*dt)/(1 + dt*u[n] - 0.5*dt)*u[n]
return u
We may run experiments with the model problem (5.1) and the different strategies for dealing with nonlinearities as described above. For a quite coarse time resolution, ∆t = 0.9, use of a tolerance εr = 0.1 in the stopping criterion introduces an iteration error, especially in the Picard iterations, that is visibly much larger than the time discretization error due to a large ∆t. This is illustrated by comparing the upper two plots in Figure 5.1. The one to the right has a stricter tolerance ε = 10−3, which leads to all the curves corresponding to Picard and Newton iteration to be on top of each other (and no changes can be visually observed by reducing εr further). The reason why Newton’s method does much better than Picard iteration in the upper left plot is that Newton’s method with one step comes far below the εr tolerance, while the Picard iteration needs on average 7 iterations to bring the residual down to εr = 10−1, which gives insufficient accuracy in the solution of the nonlinear equation. It is obvious that the Picard1 method gives significant errors in addition to the time discretization unless the time step is as small as in the lower right plot.
The BE exact curve corresponds to using the exact solution of the quadratic equation at each time level, so this curve is only affected by the Backward Euler time discretization. The CN gm curve corresponds to the theoretically more accurate Crank-Nicolson discretization, combined with a geometric mean for linearization. This curve appears more accurate, especially if we take the plot in the lower right with a small ∆t and an appropriately small εr value as the exact curve.
When it comes to the need for iterations, Figure 5.2 displays the number of iterations required at each time level for Newton’s method and Picard iteration. The smaller ∆t is, the better starting value we have for the iteration, and the faster the convergence is. With ∆t = 0.9 Picard iteration requires on average 32 iterations per time step, but this number is dramatically reduced as ∆t is reduced.
However, introducing relaxation and a parameter ω = 0.8 immediately reduces the average of 32 to 7, indicating that for the large ∆t = 0.9, Picard iteration takes too long steps. An approximately optimal value for ω in this case is 0.5, which results in an average of only 2 iterations! An even more dramatic impact of ω appears when ∆t = 1: Picard iteration
5.1 Introduction of basic concepts 433
does not convergence in 1000 iterations, but ω = 0.5 again brings the average number of iterations down to 2.
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1
dt=0.9, eps=5E-02
FE
BE exact BE Picard BE Picard1 BE Newton CN gm
0123456789 t
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1
dt=0.45, eps=1E-03
FE
BE exact BE Picard BE Picard1 BE Newton CN gm
0123456789 t
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1
dt=0.9, eps=1E-03
FE
BE exact BE Picard BE Picard1 BE Newton CN gm
0123456789 t
Fig. 5.1 Impact of solution strategy and time step length on the solution.
Remark. The simple Crank-Nicolson method with a geometric mean for the quadratic nonlinearity gives visually more accurate solutions than the Backward Euler discretization. Even with a tolerance of εr = 10−3, all the methods for treating the nonlinearities in the Backward Euler discretization give graphs that cannot be distinguished. So for accuracy in this problem, the time discretization is much more crucial than εr. Ideally, one should estimate the error in the time discretization, as the solution progresses, and set εr accordingly.
5.1.11 Generalization to a general nonlinear ODE
Let us see how the various methods in the previous sections can be applied to the more generic model
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1
dt=0.09, eps=1E-04
0123456789 t
FE
BE exact BE Picard BE Picard1 BE Newton CN gm
uu
uu
434
5 Nonlinear problems
dt=0.9, eps=5E-02
12 10 8 6 4 2 0
2 4 6 8 10 Time level
Picard Newton
6
5
4
3
2
1
0
dt=0.45, eps=1E-03
5 10 15 20 Time level
Picard Newton
40 35 30 25 20 15 10
5 0
3.0
2.5
2.0
1.5
1.0
0.5
0.0
2 4 6 8 10 Time level
dt=0.09, eps=1E-04
dt=0.9, eps=1E-03
Picard Newton
Picard Newton
Comparison of the number of iterations at various time levels for Picard and Newton iteration.
u′ =f(u,t), (5.10) where f is a nonlinear function of u.
Explicit time discretization. Explicit ODE methods like the Forward Euler scheme, Runge-Kutta methods, Adams-Bashforth methods all evaluate f at time levels where u is already computed, so nonlinearities in f do not pose any difficulties.
Backward Euler discretization. Approximating u′ by a backward dif- ference leads to a Backward Euler scheme, which can be written as
Fig. 5.2
or alternatively
F(un)=un −∆tf(un,tn)−un−1 =0, F(u)=u−∆tf(u,tn)−u(1) =0.
A simple Picard iteration, not knowing anything about the nonlinear structure of f, must approximate f(u,tn) by f(u−,tn):
20 40 60 80 100 Time level
No of iterations
No of iterations
No of iterations No of iterations
5.1 Introduction of basic concepts 435
Fˆ(u) = u − ∆t f(u−, tn) − u(1) .
The iteration starts with u− = u(1) and proceeds with repeating
u∗ =∆tf(u−,tn)+u(1), u=ωu∗ +(1−ω)u−, u− ← u, until a stopping criterion is fulfilled.
Explicit vs implicit treatment of nonlinear terms
Evaluating f for a known u− is referred to as explicit treatment of f, while if f(u,t) has some structure, say f(u,t) = u3, parts of f can involve the known u, as in the manual linearization like (u−)2u, and then the treatment of f is “more implicit” and “less explicit”. This terminology is inspired by time discretization of u′ = f (u, t), where evaluating f for known u values gives explicit schemes, while treating f or parts of f implicitly, makes f contribute to the unknown terms in the equation at the new time level.
Explicit treatment of f usually means stricter conditions on ∆t to achieve stability of time discretization schemes. The same applies to iteration techniques for nonlinear algebraic equations: the “less” we linearize f (i.e., the more we keep of u in the original formula), the faster the convergence may be.
We may say that f (u, t) = u3 is treated explicitly if we evaluate f as (u−)3, partially implicit if we linearize as (u−)2u and fully implicit if we represent f by u3. (Of course, the fully implicit representation will require further linearization, but with f (u, t) = u2 a fully implicit treatment is possible if the resulting quadratic equation is solved with a formula.)
For the ODE u′ = −u3 with f(u,t) = −u3 and coarse time resolution ∆t = 0.4, Picard iteration with (u−)2u requires 8 itera- tions with εr = 10−3 for the first time step, while (u−)3 leads to 22 iterations. After about 10 time steps both approaches are down to about 2 iterations per time step, but this example shows a potential of treating f more implicitly.
A trick to treat f implicitly in Picard iteration is to evaluate it as f(u−, t)u/u−. For a polynomial f, f(u, t) = um, this corresponds to (u−)mu/u−1 = (u−)m−1u. Sometimes this more implicit treatment
has no effect, as with f(u, t) = exp(−u) and f(u, t) = ln(1 + u),
436
5 Nonlinear problems
but with f (u, t) = sin(2(u + 1)), the f (u− , t)u/u− trick leads to 7, 9, and 11 iterations during the first three steps, while f(u−,t) demands 17, 21, and 20 iterations. (Experiments can be done with the code ODE_Picard_tricks.py.)
Newton’s method applied to a Backward Euler discretization of u′ = f(u,t) requires the computation of the derivative
F′(u) = 1−∆t∂f(u,tn). ∂u
Starting with the solution at the previous time level, u− = u(1), we can just use the standard formula
− F(u−) − u− −∆tf(u−,tn)−u(1)
u=u −ωF′(u−)=u −ω 1−∆t∂ f(u−,tn) . (5.11)
∂u
Crank-Nicolson discretization. The standard Crank-Nicolson scheme with arithmetic mean approximation of f takes the form
un+1 − un 1 n+1 n
∆t = 2(f(u ,tn+1)+f(u ,tn)).
We can write the scheme as a nonlinear algebraic equation
F(u)=u−u(1) −∆t1f(u,tn+1)−∆t1f(u(1),tn)=0. 22
(5.12) A Picard iteration scheme must in general employ the linearization
Fˆ(u)=u−u(1) −∆t1f(u−,tn+1)−∆t1f(u(1),tn), 22
while Newton’s method can apply the general formula (5.11) with F(u) given in (5.12) and
F′(u) = 1− 1∆t∂f(u,tn+1). 2 ∂u
5.1.12 Systems of ODEs
We may write a system of ODEs
5.1 Introduction of basic concepts 437
d u0(t) = f0(u0(t), u1(t), . . . , uN (t), t), dt
d u1(t) = f1(u0(t), u1(t), . . . , uN (t), t), dt
.
d um(t) = fm(u0(t), u1(t), . . . , uN (t), t),
dt
as
u′ = f(u,t), u(0) = U0, (5.13)
if we interpret u as a vector u = (u0(t),u1(t),...,uN(t)) and f as a vector function with components (f0(u, t), f1(u, t), . . . , fN (u, t)).
Most solution methods for scalar ODEs, including the Forward and Backward Euler schemes and the Crank-Nicolson method, generalize in a straightforward way to systems of ODEs simply by using vector arithmetics instead of scalar arithmetics, which corresponds to applying the scalar scheme to each component of the system. For example, here is a backward difference scheme applied to each component,
un − un−1 0 0
∆t
un − un−1
1 1
∆t
.
un −un−1
N
∆t = f(un,tn). This is a system of algebraic equations,
= f0(un, tn), = f1(un, tn),
= fN (un, tn),
which can be written more compactly in vector form as
N
∆t
un − un−1
or written out
un −∆tf(un,tn)−un−1 =0,
438
5 Nonlinear problems
un −∆tf (un,t )−un−1 =0, 00n0
.
un −∆tf (un,t )−un−1 =0.
NNnN
Example. We shall address the 2 × 2 ODE system for oscillations of a pendulum subject to gravity and air drag. The system can be written as
ω ̇ = − sin θ − βω|ω|, (5.14) θ ̇ = ω, (5.15)
where β is a dimensionless parameter (this is the scaled, dimensionless version of the original, physical model). The unknown components of the system are the angle θ(t) and the angular velocity ω(t). We introduce u0 =ωandu1 =θ,whichleadsto
u′0 =f0(u,t)=−sinu1 −βu0|u0|, u′1 =f1(u,t)=u0.
A Crank-Nicolson scheme reads
un+1 −un n+1 n+1 n+1 0 0 =−sinu 2 −βu 2|u 2|
∆t 1 0 0
1n+1 1n+1nn+1n
≈ − sin 2 (u1 + u1 n) − β 4 (u0
+ u0 )|u0
+ u0 |, (5.16)
un+1 −un n+1 1
1 1 =u 2 ≈ (un+1+un).
(5.17) This is a coupled system of two nonlinear algebraic equations in two
∆t 0 20 0 unknowns un+1 and un+1.
01
Using the notation u and u for the unknowns un+1 and un+1 in 0101
this system, writing u(1) and u(1) for the previous values un and un, 01 01
multiplying by ∆t and moving the terms to the left-hand sides, gives
5.2 Systems of nonlinear algebraic equations 439
u −u(1)+∆tsin1(u +u(1))+1∆tβ(u +u(1))|u +u(1)|=0, 0021140000
(5.18) u −u(1)−1∆t(u +u(1))=0.
11200
(5.19)
Obviously, we have a need for solving systems of nonlinear algebraic equations, which is the topic of the next section.
5.2 Systems of nonlinear algebraic equations
Implicit time discretization methods for a system of ODEs, or a PDE, lead to systems of nonlinear algebraic equations, written compactly as
F(u) = 0,
where u is a vector of unknowns u = (u0,...,uN), and F is a vector function: F = (F0, . . . , FN ). The system at the end of Section 5.1.12 fits this notation with N = 2, F0(u) given by the left-hand side of (5.18), while F1(u) is the left-hand side of (5.19).
Sometimes the equation system has a special structure because of the underlying problem, e.g.,
A(u)u = b(u),
with A(u) as an (N +1)×(N +1) matrix function of u and b as a vector function: b = (b0,...,bN).
We shall next explain how Picard iteration and Newton’s method can be applied to systems like F (u) = 0 and A(u)u = b(u). The exposition has a focus on ideas and practical computations. More theoretical con- siderations, including quite general results on convergence properties of these methods, can be found in Kelley [8].
5.2.1 Picard iteration
We cannot apply Picard iteration to nonlinear equations unless there is some special structure. For the commonly arising case A(u)u = b(u) we can linearize the product A(u)u to A(u−)u and b(u) as b(u−). That is,
440 5 Nonlinear problems
we use the most previously computed approximation in A and b to arrive at a linear system for u:
A(u−)u = b(u−) . A relaxed iteration takes the form
A(u−)u∗ =b(u−), u=ωu∗ +(1−ω)u−.
In other words, we solve a system of nonlinear algebraic equations as a
sequence of linear systems.
Algorithm for relaxed Picard iteration
Given A(u)u = b(u) and an initial guess u−, iterate until conver- gence:
1. solve A(u−)u∗ = b(u−) with respect to u∗ 2. u=ωu∗ +(1−ω)u−
3. u− ← u
“Until convergence” means that the iteration is stopped when the change in the unknown, ||u − u−||, or the residual ||A(u)u − b||, is sufficiently small, see Section 5.2.3 for more details.
5.2.2 Newton’s method
The natural starting point for Newton’s method is the general nonlinear vector equation F (u) = 0. As for a scalar equation, the idea is to approx- imate F around a known value u− by a linear function Fˆ, calculated from the first two terms of a Taylor expansion of F . In the multi-variate case these two terms become
F(u−) + J(u−) · (u − u−), where J is the Jacobian of F , defined by
Ji,j = ∂Fi . ∂uj
So, the original nonlinear system is approximated by
5.2 Systems of nonlinear algebraic equations 441
Fˆ ( u ) = F ( u − ) + J ( u − ) · ( u − u − ) = 0 ,
which is linear in u and can be solved in a two-step procedure: first solve Jδu = −F(u−) with respect to the vector δu and then update u = u− + δu. A relaxation parameter can easily be incorporated:
u=ω(u− +δu)+(1−ω)u− =u− +ωδu.
Algorithm for Newton’s method
Given F(u) = 0 and an initial guess u−, iterate until convergence:
1. solve Jδu = −F(u−) with respect to δu 2. u = u− + ωδu
3. u− ← u
For the special system with structure A(u)u = b(u), Fi =Ai,k(u)uk −bi(u),
one gets
k
Ji,j =∂Ai,kuk +Ai,j − ∂bi . k ∂uj ∂uj
(5.20)
We realize that the Jacobian needed in Newton’s method consists of A(u−) as in the Picard iteration plus two additional terms arising from the differentiation. Using the notation A′(u) for ∂A/∂u (a quantity with three indices: ∂Ai,k/∂uj), and b′(u) for ∂b/∂u (a quantity with two indices: ∂bi/∂uj), we can write the linear system to be solved as
or
(A + A′u + b′)δu = −Au + b,
(A(u−) + A′(u−)u− + b′(u−))δu = −A(u−)u− + b(u−) .
Rearranging the terms demonstrates the difference from the system solved in each Picard iteration:
442 5 Nonlinear problems
A(u−)(u− + δu) − b(u−) + γ(A′(u−)u− + b′(u−))δu = 0 .
Picard system
Here we have inserted a parameter γ such that γ = 0 gives the Picard system and γ = 1 gives the Newton system. Such a parameter can be handy in software to easily switch between the methods.
Combined algorithm for Picard and Newton iteration
Given A(u), b(u), and an initial guess u−, iterate until convergence:
1. solve (A + γ(A′(u−)u− + b′(u−)))δu = −A(u−)u− + b(u−) with respect to δu
2. u = u− + ωδu
3. u− ← u
γ = 1 gives a Newton method while γ = 0 corresponds to Picard iteration.
5.2.3 Stopping criteria
Let ||·|| be the standard Euclidean vector norm. Four termination criteria are much in use:
• Absolute change in solution: ||u − u−|| ≤ εu
• Relative change in solution: ||u − u−|| ≤ εu||u0||, where u0 denotes
the start value of u− in the iteration • Absolute residual: ||F (u)|| ≤ εr
• Relative residual: ||F(u)|| ≤ εr||F(u0)||
To prevent divergent iterations to run forever, one terminates the itera-
tions when the current number of iterations k exceeds a maximum value
kmax .
The relative criteria are most used since they are not sensitive to
the characteristic size of u. Nevertheless, the relative criteria can be misleading when the initial start value for the iteration is very close to the solution, since an unnecessary reduction in the error measure is enforced. In such cases the absolute criteria work better. It is common
5.2 Systems of nonlinear algebraic equations 443
to combine the absolute and relative measures of the size of the residual, as in
||F(u)|| ≤ εrr||F(u0)|| + εra, (5.21)
where εrr is the tolerance in the relative criterion and εra is the tolerance in the absolute criterion. With a very good initial guess for the iteration (typically the solution of a differential equation at the previous time
level), the term ||F(u0)|| is small and εra is the dominating tolerance. Otherwise, εrr||F(u0)|| and the relative criterion dominates.
With the change in solution as criterion we can formulate a combined absolute and relative measure of the change in the solution:
||δu|| ≤ εur||u0|| + εua, (5.22)
The ultimate termination criterion, combining the residual and the change in solution with a test on the maximum number of iterations, can be expressed as
||F(u)|| ≤ εrr||F(u0)||+εra or ||δu|| ≤ εur||u0||+εua or k > kmax . (5.23)
5.2.4 Example: A nonlinear ODE model from epidemiology
The simplest model spreading of a disease, such as a flu, takes the form of a 2×2 ODE system
S′ = −βSI, (5.24) I′ = βSI − νI, (5.25)
where S(t) is the number of people who can get ill (susceptibles) and I(t) is the number of people who are ill (infected). The constants β > 0 and ν > 0 must be given along with initial conditions S(0) and I(0).
Implicit time discretization. A Crank-Nicolson scheme leads to a 2 × 2 system of nonlinear algebraic equations in the unknowns Sn+1 and In+1:
444 5 Nonlinear problems
Sn+1 − Sn 1 β
=−β[SI]n+2 ≈− (SnIn +Sn+1In+1), (5.26)
∆t 2
In+1−In 1 1β ν
=β[SI]n+2 −νIn+2 ≈ (SnIn +Sn+1In+1)− (In +In+1).
∆t 2 2 Introducing S for Sn+1, S(1) for Sn, I for In+1, I(1) for In, we can rewrite
(5.27)
FS(S,I) = S − S(1) + 1∆tβ(S(1)I(1) + SI) = 0, (5.28) 2
FI(S,I) = I − I(1) − 1∆tβ(S(1)I(1) + SI) + 1∆tν(I(1) + I) = 0.
(5.29)
A Picard iteration. We assume that we have approximations S− and I− to S and I, respectively. A way of linearizing the only nonlinear term SI is to write I−S in the FS = 0 equation and S−I in the FI = 0 equation, which also decouples the equations. Solving the resulting linear equations with respect to the unknowns S and I gives
the system as
22
S(1) − 1∆tβS(1)I(1) S=2,
1+ 1∆tβI− 2
I(1) + 1 ∆tβS(1)I(1) − 1 ∆tνI(1) I=22.
1− 1∆tβS− + 1∆tν 22
Before a new iteration, we must update S− ← S and I− ← I. Newton’s method. The nonlinear system (5.28)-(5.29) can be written
as F(u) = 0 with F = (FS,FI) and u = (S,I). The Jacobian becomes
∂F ∂F 1+1∆tβI 1∆tβS J=∂SS∂IS= 2 2
∂FI ∂FI −1∆tβI 1−1∆tβS+1∆tν ∂S∂I 2 2 2
.
The Newton system J(u−)δu = −F(u−) to be solved in each iteration is then
5.3 Linearization at the differential equation level 445
1+ 1∆tβI− 1∆tβS− δS 12−12−1 =
−2∆tβI 1− 2∆tβS + 2∆tν δI
S− −S(1) + 1∆tβ(S(1)I(1) +S−I−) 2
I− −I(1) − 1∆tβ(S(1)I(1) +S−I−)+ 1∆tν(I(1) +I−) 22
Remark. For this particular system of ODEs, explicit time integration methods work very well. Even a Forward Euler scheme is fine, but (as also experienced more generally) the 4-th order Runge-Kutta method is an excellent balance between high accuracy, high efficiency, and simplicity.
5.3 Linearization at the differential equation level
The attention is now turned to nonlinear partial differential equations (PDEs) and application of the techniques explained above for ODEs. The
model problem is a nonlinear diffusion equation for u(x, t):
∂u =∇·(α(u)∇u)+f(u), ∂t
−α(u)∂u = g, ∂n
u=u0,
x∈Ω, t∈(0,T], x ∈ ∂ΩN, t ∈ (0,T],
x∈∂ΩD, t∈(0,T].
(5.30)
(5.31) (5.32)
In the present section, our aim is to discretize this problem in time and then present techniques for linearizing the time-discrete PDE problem “at the PDE level” such that we transform the nonlinear stationary PDE problem at each time level into a sequence of linear PDE problems, which can be solved using any method for linear PDEs. This strategy avoids the solution of systems of nonlinear algebraic equations. In Section 5.4 we shall take the opposite (and more common) approach: discretize the nonlinear problem in time and space first, and then solve the resulting nonlinear algebraic equations at each time level by the methods of
Section 5.2. Very often, the two approaches are mathematically identical, so there is no preference from a computational efficiency point of view. The details of the ideas sketched above will hopefully become clear through the forthcoming examples.
446 5 Nonlinear problems
5.3.1 Explicit time integration
The nonlinearities in the PDE are trivial to deal with if we choose an explicit time integration method for (5.30), such as the Forward Euler method:
or written out,
[Dt+u = ∇ · (α(u)∇u) + f(u)]n, un+1 − un
∆t = ∇ · (α(un)∇un) + f(un),
which is a linear equation in the unknown un+1 with solution
un+1 =un +∆t∇·(α(un)∇un)+∆tf(un).
The disadvantage with this discretization is the strict stability criterion ∆t ≤ h2/(6 max α) for the case f = 0 and a standard 2nd-order finite difference discretization in 3D space with mesh cell sizes h = ∆x = ∆y = ∆z.
5.3.2 Backward Euler scheme and Picard iteration
A Backward Euler scheme for (5.30) reads
[Dt−u = ∇ · (α(u)∇u) + f(u)]n .
Written out,
un − un−1
∆t = ∇ · (α(un)∇un) + f(un) .
This is a nonlinear PDE for the unknown function un(x). Such a PDE can be viewed as a time-independent PDE where un−1(x) is a known function.
We introduce a Picard iteration with k as iteration counter. A typical linearization of the ∇ · (α(un)∇un) term in iteration k + 1 is to use the previously computed un,k approximation in the diffusion coefficient: α(un,k). The nonlinear source term is treated similarly: f(un,k). The unknown function un,k+1 then fulfills the linear PDE
un,k+1 − un−1
∆t = ∇ · (α(un,k)∇un,k+1) + f(un,k) . (5.34)
(5.33)
5.3 Linearization at the differential equation level 447
The initial guess for the Picard iteration at this time level can be taken as the solution at the previous time level: un,0 = un−1.
We can alternatively apply the implementation-friendly notation where u corresponds to the unknown we want to solve for, i.e., un,k+1 above, and u− is the most recently computed value, un,k above. Moreover, u(1) denotes the unknown function at the previous time level, un−1 above. The PDE to be solved in a Picard iteration then looks like
u−u(1) − −
∆t =∇·(α(u )∇u)+f(u ). (5.35)
At the beginning of the iteration we start with the value from the previous time level: u− = u(1), and after each iteration, u− is updated to u.
Remark on notation
The previous derivations of the numerical scheme for time discretiza- tions of PDEs have, strictly speaking, a somewhat sloppy notation, but it is much used and convenient to read. A more precise notation must distinguish clearly between the exact solution of the PDE problem, here denoted ue(x, t), and the exact solution of the spatial problem, arising after time discretization at each time level, where
(5.33) is an example. The latter is here represented as un(x) and is an approximation to ue(x, tn). Then we have another approximation un,k(x) to un(x) when solving the nonlinear PDE problem for un by iteration methods, as in (5.34).
In our notation, u is a synonym for un,k+1 and u(1) is a synonym for un−1, inspired by what are natural variable names in a code. We will usually state the PDE problem in terms of u and quickly redefine the symbol u to mean the numerical approximation, while ue is not explicitly introduced unless we need to talk about the exact solution and the approximate solution at the same time.
5.3.3 Backward Euler scheme and Newton’s method
At time level n, we have to solve the stationary PDE (5.33). In the previous section, we saw how this can be done with Picard iterations. Another alternative is to apply the idea of Newton’s method in a clever way. Normally, Newton’s method is defined for systems of algebraic
448 5 Nonlinear problems
equations, but the idea of the method can be applied at the PDE level too.
Linearization via Taylor expansions. Let un,k be an approximation to the unknown un. We seek a better approximation on the form
un =un,k +δu. (5.36)
The idea is to insert (5.36) in (5.33), Taylor expand the nonlinearities and keep only the terms that are linear in δu (which makes (5.36) an approximation for un). Then we can solve a linear PDE for the correction δu and use (5.36) to find a new approximation
un,k+1 = un,k + δu
to un. Repeating this procedure gives a sequence un,k+1, k = 0,1,… that hopefully converges to the goal un.
Let us carry out all the mathematical details for the nonlinear diffusion PDE discretized by the Backward Euler method. Inserting (5.36) in (5.33) gives
un,k +δu−un−1
∆t =∇·(α(un,k+δu)∇(un,k+δu))+f(un,k+δu). (5.37)
We can Taylor expand α(un,k + δu) and f (un,k + δu):
α(un,k + δu) = α(un,k) + dα(un,k)δu + O(δu2) ≈ α(un,k) + α′(un,k)δu,
du
f(un,k +δu)=f(un,k)+ df(un,k)δu+O(δu2)≈f(un,k)+f′(un,k)δu. du
Inserting the linear approximations of α and f in (5.37) results in un,k +δu−un−1
∆t = ∇ · (α(un,k)∇un,k) + f(un,k)+
∇ · (α(un,k)∇δu) + ∇ · (α′(un,k)δu∇un,k)+
∇·(α′(un,k)δu∇δu)+f′(un,k)δu. (5.38)
The term α′(un,k)δu∇δu is of order δu2 and therefore omitted since we expect the correction δu to be small (δu ≫ δu2). Reorganizing the equation gives a PDE for δu that we can write in short form as
5.3 Linearization at the differential equation level 449
δF(δu;un,k) = −F(un,k), un,k − un−1
where
F(un,k) = ∆t − ∇ · (α(un,k)∇un,k) + f(un,k), (5.39)
δF(δu;un,k)=− 1 δu+∇·(α(un,k)∇δu)+ ∆t
∇·(α′(un,k)δu∇un,k)+f′(un,k)δu. (5.40) Note that δF is a linear function of δu, and F contains only terms that
are known, such that the PDE for δu is indeed linear. Observations
The notational form δF = −F resembles the Newton system Jδu = −F for systems of algebraic equations, with δF as Jδu. The unknown vector in a linear system of algebraic equations enters the system as a linear operator in terms of a matrix-vector product
(Jδu), while at the PDE level we have a linear differential operator instead (δF).
Similarity with Picard iteration. We can rewrite the PDE for δu in a slightly different way too if we define un,k + δu as un,k+1.
un,k+1 − un−1
∆t = ∇ · (α(un,k)∇un,k+1) + f(un,k)
+ ∇ · (α′(un,k)δu∇un,k) + f′(un,k)δu . (5.41)
Note that the first line is the same PDE as arises in the Picard iteration, while the remaining terms arise from the differentiations that are an inherent ingredient in Newton’s method.
Implementation. For coding we want to introduce u for un, u− for un,k and u(1) for un−1. The formulas for F and δF are then more clearly written as
450
5 Nonlinear problems
−u−−u(1) −−−
F(u )= ∆t −∇·(α(u )∇u )+f(u ), (5.42)
δF(δu;u−)=− 1 δu+∇·(α(u−)∇δu)+ ∆t
∇·(α′(u−)δu∇u−)+f′(u−)δu. (5.43) The form that orders the PDE as the Picard iteration terms plus the
Newton method’s derivative terms becomes
u−u(1) − − ∆t =∇·(α(u )∇u)+f(u )+
γ(∇·(α′(u−)(u−u−)∇u−)+f′(u−)(u−u−)). (5.44) The Picard and full Newton versions correspond to γ = 0 and γ = 1,
respectively.
Derivation with alternative notation. Some may prefer to derive the linearized PDE for δu using the more compact notation. We start with inserting un = u− + δu to get
u− + δu − un−1 − − −
∆t
Taylor expanding,
=∇·(α(u +δu)∇(u +δu))+f(u +δu).
α(u− + δu) ≈ α(u−) + α′(u−)δu, f(u− + δu) ≈ f(u−) + f′(u−)δu,
and inserting these expressions gives a less cluttered PDE for δu: u− + δu − un−1 − − −
∆t =∇·(α(u )∇u )+f(u )+
∇ · (α(u−)∇δu) + ∇ · (α′(u−)δu∇u−)+
∇·(α′(u−)δu∇δu)+f′(u−)δu. 5.3.4 Crank-Nicolson discretization
A Crank-Nicolson discretization of (5.30) applies a centered difference at
tn+ 1 : 2
5.4 1D stationary nonlinear differential equations 451
[Du=∇·(α(u)∇u)+f(u)]n+1 . t2
The standard technique is to apply an arithmetic average for quantities defined between two mesh points, e.g.,
2
However, with nonlinear terms we have many choices of formulating an
2
un+1 ≈ 1(un +un+1).
arithmetic mean:
22 [f(u)]n+1 ≈f(1(un+un+1))=[f(ut)]n+1,
2
22 [f(u)]n+1 ≈1(f(un)+f(un+1))=[f(u)t]n+1,
2
(5.45)
(5.46)
22 [α(u)∇u]n+1 ≈α(1(un+un+1))∇(1(un+un+1))=[α(ut)∇ut]n+1,
(5.47)
22 [α(u)∇u]n+1 ≈1(α(un)+α(un+1))∇(1(un+un+1))=[α(u)t∇ut]n+1,
(5.48)
(5.49)
22
22
22 [α(u)∇u]n+1 ≈ 1(α(un)∇un +α(un+1)∇un+1)=[α(u)∇ut]n+1 .
2
A big question is whether there are significant differences in accuracy between taking the products of arithmetic means or taking the arithmetic mean of products. Exercise 5.6 investigates this question, and the answer is that the approximation is O(∆t2) in both cases.
5.4 1D stationary nonlinear differential equations
Section 5.3 presented methods for linearizing time-discrete PDEs directly prior to discretization in space. We can alternatively carry out the discretization in space of the time-discrete nonlinear PDE problem and get a system of nonlinear algebraic equations, which can be solved by Picard iteration or Newton’s method as presented in Section 5.2. This latter approach will now be described in detail.
We shall work with the 1D problem
452 5 Nonlinear problems
−(α(u)u′)′ +au=f(u), x∈(0,L), α(u(0))u′(0)=C, u(L)=D. (5.50) The problem (5.50) arises from the stationary limit of a diffusion
equation,
∂u ∂ ∂u ∂t = ∂x α(u)∂x
− au + f(u), (5.51)
as t → ∞ and ∂u/∂t → 0. Alternatively, the problem (5.50) arises at each time level from implicit time discretization of (5.51). For example, a Backward Euler scheme for (5.51) leads to
un − un−1 d n dun n n
∆t =dx α(u)dx −au +f(u). (5.52)
Introducing u(x) for un(x), u(1) for un−1, and defining f(u) in (5.50) to be f(u) in (5.52) plus un−1/∆t, gives (5.50) with a = 1/∆t.
5.4.1 Finite difference discretization
The nonlinearity in the differential equation (5.50) poses no more difficulty than a variable coefficient, as in the term (α(x)u′)′. We can therefore use a standard finite difference approach to discretizing the Laplace term with a variable coefficient:
[−DxαDxu + au = f]i .
Writing this out for a uniform mesh with points xi = i∆x, i = 0,…,Nx,
leads to
− 1 αi+1(ui+1−ui)−αi−1(ui−ui−1)+aui=f(ui). (5.53)
This equation is valid at all the mesh points i = 0,1,…,Nx − 1. At i = Nx we have the Dirichlet condition ui = 0. The only difference from the case with (α(x)u′)′ and f(x) is that now α and f are functions of u and not only of x: (α(u(x))u′)′ and f(u(x)).
The quantity αi+ 1 , evaluated between two mesh points, needs a com- 2
ment. Since α depends on u and u is only known at the mesh points, we need to express αi+1 in terms of ui and ui+1. For this purpose we use
2
an arithmetic mean, although a harmonic mean is also common in this
∆x22 2
5.4 1D stationary nonlinear differential equations 453
context if α features large jumps. There are two choices of arithmetic means:
α 1 ≈α(1(u +u )=[α(ux)]i+1, i+22ii+1 2
α 1 ≈1(α(u)+α(u ))=[α(u)x]i+1 i+22ii+1 2
(5.54) (5.55)
Equation (5.53) with the latter approximation then looks like
− 1 ((α(ui) + α(ui+1))(ui+1 − ui) − (α(ui−1) + α(ui))(ui − ui−1))
2∆x2
+ aui = f(ui), (5.56)
or written more compactly,
[−DxαxDxu + au = f]i .
At mesh point i = 0 we have the boundary condition α(u)u′ = C, which is discretized by
meaning
[α(u)D2xu = C]0,
α(u0)u1−u−1 =C. (5.57) 2∆x
The fictitious value u−1 can be eliminated with the aid of (5.56) for i = 0. Formally, (5.56) should be solved with respect to ui−1 and that value (for i = 0) should be inserted in (5.57), but it is algebraically much easier to do it the other way around. Alternatively, one can use a ghost cell [−∆x, 0] and update the u−1 value in the ghost cell according to (5.57) after every Picard or Newton iteration. Such an approach means that we
use a known u−1 value in (5.56) from the previous iteration. 5.4.2 Solution of algebraic equations
The structure of the equation system. The nonlinear algebraic equa- tions (5.56) are of the form A(u)u = b(u) with
454
5 Nonlinear problems
Ai,i = 1 2∆x2
(α(ui−1) + 2α(ui)α(ui+1)) + a,
Ai,i−1 = − 1 2∆x2
Ai,i+1 = − 1 2∆x2
bi =f(ui).
ThematrixA(u)istridiagonal:Ai,j =0forj>i+1andj= 0.5). Vectorized
implementation and sparse (tridiagonal) coefficient matrix.
Note that t always covers the whole global time interval, whether
splitting is the case or not. T, on the other hand, is
the end of the global time interval if there is no split,
but if splitting, we use T=dt. When splitting, step_no
keeps track of the time step number (for lookup in t).
“””
Nt = int(round(T/float(dt)))
dx = np.sqrt(a*dt/F)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] – x[0]
dt = t[1] – t[0]
u = np.zeros(Nx+1) # solution array at t[n+1]
u_1 = np.zeros(Nx+1) # solution at t[n]
# Representation of sparse matrix and right-hand side
diagonal = np.zeros(Nx+1)
lower upper b
= np.zeros(Nx)
= np.zeros(Nx)
= np.zeros(Nx+1)
# Precompute sparse matrix (scipy format)
Fl = F*theta
Fr = F*(1-theta)
diagonal[:] = 1 + 2*Fl
lower[:] = -Fl #1
upper[:] = -Fl #1
# Insert boundary conditions
diagonal[0] = 1
upper[0] = 0
diagonal[Nx] = 1
lower[-1] = 0
diags = [0, -1, 1]
A = scipy.sparse.diags(
diagonals=[diagonal, lower, upper],
offsets=[0, -1, 1], shape=(Nx+1, Nx+1),
format=’csr’)
#print A.todense()
# Allow f to be None or 0
if f is None or f == 0:
f = lambda x, t: np.zeros((x.size)) \
if isinstance(x, np.ndarray) else 0
# Set initial condition
5.6 Operator splitting methods 473
if isinstance(I, np.ndarray):
u_1 = np.copy(I)
else:
for i in range(0, Nx+1):
u_1[i] = I(x[i])
if user_action is not None:
# I is an array
# I is a function
user_action(u_1, x, t, step_no+0)
# Time loop
for n in range(0, Nt):
b[1:-1] = u_1[1:-1] + \
Fr*(u_1[:-2] – 2*u_1[1:-1] + u_1[2:]) + \
dt*theta*f(u_1[1:-1], t[step_no+n+1]) + \
dt*(1-theta)*f(u_1[1:-1], t[step_no+n])
b[0] = u_L; b[-1] = u_R # boundary conditions
u[:] = scipy.sparse.linalg.spsolve(A, b)
if user_action is not None:
user_action(u, x, t, step_no+(n+1))
# Update u_1 before next step
u_1, u = u, u_1
# u is now contained in u_1 (swapping)
return u_1
For the no splitting approach with Forward Euler in time, this solver handles both the diffusion and the reaction term. When splitting, diffusion_theta takes care of the diffusion term only, while the reaction term is handled either by a Forward Euler scheme in reaction_FE, or by a second order Adams-Bashforth scheme from Odespy. The reaction_FE function covers one complete time step dt during ordinary splitting, while Strang splitting (both first and second order) applies it with dt/2 twice during each time step dt. Since the reaction term typically represents a much faster process than the diffusion term, a further refinement of the time step is made possible in reaction_FE. It was implemented as
def reaction_FE(I, f, L, Nx, dt, dt_Rfactor, t, step_no,
user_action=None):
“””Reaction solver, Forward Euler method.
Note the at t covers the whole global time interval.
dt is either one complete,or one half, of the step in the
diffusion part, i.e. there is a local time interval
[0, dt] or [0, dt/2] that the reaction_FE
deals with each time it is called. step_no keeps
track of the (global) time step number (required
for lookup in t).
“””
u = np.copy(I)
474 5 Nonlinear problems
dt_local = dt/float(dt_Rfactor)
Nt_local = int(round(dt/float(dt_local)))
x = np.linspace(0, L, Nx+1)
for n in range(Nt_local):
time = t[step_no] + n*dt_local
u[1:Nx] = u[1:Nx] + dt_local*f(u[1:Nx], time)
# BC already inserted in diffusion step, i.e. no action here
return u
With the ordinary splitting approach, each time step dt is covered twice. First computing the impact of the reaction term, then the contribution from the diffusion term:
def ordinary_splitting(I, a, b, f, L, dt,
dt_Rfactor, F, t, T,
user_action=None):
’’’1st order scheme, i.e. Forward Euler is enough for both
the diffusion and the reaction part. The time step dt is
given for the diffusion step, while the time step for the
reaction part is found as dt/dt_Rfactor, where dt_Rfactor >= 1.
’’’
Nt = int(round(T/float(dt)))
dx = np.sqrt(a*dt/F)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1)
u = np.zeros(Nx+1)
# Set initial condition u(x,0) = I(x)
for i in range(0, Nx+1):
u[i] = I(x[i])
# In the following loop, each time step is “covered twice”,
# first for reaction, then for diffusion
for n in range(0, Nt):
# Reaction step (potentially many smaller steps within dt)
u_s = reaction_FE(I=u, f=f, L=L, Nx=Nx,
dt=dt, dt_Rfactor=dt_Rfactor,
t=t, step_no=n,
user_action=None)
u = diffusion_theta(I=u_s, a=a, f=0, L=L, dt=dt, F=F,
t=t, T=dt, step_no=n, theta=0,
u_L=0, u_R=0, user_action=None)
if user_action is not None:
user_action(u, x, t, n+1)
return
# Mesh points in space
For the two Strang splitting approaches, each time step dt is handled by first computing the reaction step for (the first) dt/2, followed by
5.6 Operator splitting methods 475
a diffusion step dt, before the reaction step is treated once again for (the remaining) dt/2. Since first order Strang splitting is no better than first order accurate, both the reaction and diffusion steps are computed
explicitly. The solver was implemented as
def Strang_splitting_1stOrder(I, a, b, f, L, dt, dt_Rfactor,
F, t, T, user_action=None):
’’’Strang splitting while still using FE for the reaction
step and for the diffusion step. Gives 1st order scheme.
The time step dt is given for the diffusion step, while
the time step for the reaction part is found as
0.5*dt/dt_Rfactor, where dt_Rfactor >= 1. Introduce an
extra time mesh t2 for the reaction part, since it steps dt/2.
’’’
Nt = int(round(T/float(dt)))
t2 = np.linspace(0, Nt*dt, (Nt+1)+Nt)
dx = np.sqrt(a*dt/F)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1)
u = np.zeros(Nx+1)
# Set initial condition u(x,0) = I(x)
for i in range(0, Nx+1):
u[i] = I(x[i])
# Mesh points in diff
for n in range(0, Nt):
# Reaction step (1/2 dt: from t_n to t_n+1/2)
# (potentially many smaller steps within dt/2)
u_s = reaction_FE(I=u, f=f, L=L, Nx=Nx,
dt=dt/2.0, dt_Rfactor=dt_Rfactor,
t=t2, step_no=2*n,
user_action=None)
# Diffusion step (1 dt: from t_n to t_n+1)
u_sss = diffusion_theta(I=u_s, a=a, f=0, L=L, dt=dt, F=F,
t=t, T=dt, step_no=n, theta=0,
u_L=0, u_R=0, user_action=None)
# Reaction step (1/2 dt: from t_n+1/2 to t_n+1)
# (potentially many smaller steps within dt/2)
u = reaction_FE(I=u_sss, f=f, L=L, Nx=Nx,
dt=dt/2.0, dt_Rfactor=dt_Rfactor,
t=t2, step_no=2*n+1,
user_action=None)
if user_action is not None:
user_action(u, x, t, n+1)
return
The second order version of the Strang splitting approach utilizes a second order Adams-Bashforth solver for the reaction part and a Crank- Nicolson scheme for the diffusion part. The solver has the same structure as the one for first order Strang splitting and was implemented as
476 5 Nonlinear problems
def Strang_splitting_2ndOrder(I, a, b, f, L, dt, dt_Rfactor,
F, t, T, user_action=None):
’’’Strang splitting using Crank-Nicolson for the diffusion
step (theta-rule) and Adams-Bashforth 2 for the reaction step.
Gives 2nd order scheme. Introduce an extra time mesh t2 for
the reaction part, since it steps dt/2.
’’’
import odespy
Nt = int(round(T/float(dt)))
t2 = np.linspace(0, Nt*dt, (Nt+1)+Nt)
dx = np.sqrt(a*dt/F)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1)
u = np.zeros(Nx+1)
# Set initial condition u(x,0) = I(x)
for i in range(0, Nx+1):
u[i] = I(x[i])
reaction_solver = odespy.AdamsBashforth2(f)
for n in range(0, Nt):
# Reaction step (1/2 dt: from t_n to t_n+1/2)
# (potentially many smaller steps within dt/2)
reaction_solver.set_initial_condition(u)
t_points = np.linspace(0, dt/2.0, dt_Rfactor+1)
u_AB2, t_ = reaction_solver.solve(t_points) # t_ not needed
u_s = u_AB2[-1,:] # pick sol at last point in time
# Diffusion step (1 dt: from t_n to t_n+1)
u_sss = diffusion_theta(I=u_s, a=a, f=0, L=L, dt=dt, F=F,
t=t, T=dt, step_no=n, theta=0.5,
u_L=0, u_R=0, user_action=None)
# Reaction step (1/2 dt: from t_n+1/2 to t_n+1)
# (potentially many smaller steps within dt/2)
reaction_solver.set_initial_condition(u_sss)
t_points = np.linspace(0, dt/2.0, dt_Rfactor+1)
u_AB2, t_ = reaction_solver.solve(t_points) # t_ not needed
u = u_AB2[-1,:] # pick sol at last point in time
if user_action is not None:
user_action(u, x, t, n+1)
return
# Mesh points in diff
When executing split_diffu_react.py, we find that the estimated convergence rates are as expected. The second order Strang splitting gives the least error (about 4e−5) and has second order convergence (r = 2), while the remaining three approaches have first order convergence (r = 1).
5.6 Operator splitting methods 477
5.6.6 Analysis of the splitting method
Let us address a linear PDE problem for which we can develop analytical solutions of the discrete equations, with and without splitting, and discuss these. Choosing f(u) = −βu for a constant β gives a linear problem. We use the Forward Euler method for both the PDE and ODE problems.
We seek a 1D Fourier wave component solution of the problem, as- suming homogeneous Dirichlet conditions at x = 0 and x = L:
u=e−αk2t−βtsinkx, k=π. L
This component fits the 1D PDE problem (f = 0). On complex form we can write
u = e−αk2t−βt+ikx,
where i = √−1 and the imaginary part is taken as the physical solution. We refer to Section 3.3 and to the book [9] for a discussion of exact numerical solutions to diffusion and decay problems, respectively. The key idea is to search for solutions Aneikx and determine A. For the diffusion
problem solved by a Forward Euler method one has A = 1 − 4F sinp,
where F = α∆t/∆x2 is the mesh Fourier number and p = k∆x/2 is a dimensionless number reflecting the spatial resolution (number of points per wave length in space). For the decay problem u′ = −βu, we have A = 1 − q, where q is a dimensionless parameter reflecting the resolution in the decay problem: q = β∆t.
The original model problem can also be discretized by a Forward Euler scheme,
[Dt+u=αDxDxu−βu]ni . Assuming Aneikx we find that
uni =(1−4Fsinp−q)nsinkx.
We are particularly interested in what happens at one time step. That is,
un = (1−4F sin2 p)un−1 . ii
In the two stage algorithm, we first compute the diffusion step
478
5 Nonlinear problems
u∗,n+1 = (1 − 4F sin2 p)un−1 . ii
Then we use this as input to the decay algorithm and arrive at u∗∗,n+1 = (1 − q)u∗,n+1 = (1 − q)(1 − 4F sin2 p)un−1 .
The splitting approximation over one step is therefore
E = 1 − 4F sinp −q − (1 − q)(1 − 4F sin2 p) = −q(2 − F sin2 p))
5.7 Exercises
Problem 5.1: Determine if equations are nonlinear or not
Classify each term in the following equations as linear or nonlinear. Assume that u, u, and p are unknown functions and that all other symbols are known quantities.
1. mu′′ + β|u′|u′ + cu = F(t) 2. ut = αuxx
3. utt = c2∇2u
4. ut =∇·(α(u)∇u)+f(x,y) 5. ut + f(u)x = 0
6. ut+u·∇u=−∇p+r∇2u,∇·u=0(uisavectorfield) 7. u′ =f(u,t)
8. ∇2u=λeu
Filename: nonlinear_vs_linear.
Problem 5.2: Derive and investigate a generalized logistic
model
The logistic model for population growth is derived by assuming a nonlinear growth rate,
u′ = a(u)u, u(0) = I, (5.82)
and the logistic model arises from the simplest possible choice of a(u): r(u) = ρ(1 − u/M), where M is the maximum value of u that the
i
5.7 Exercises 479
environment can sustain, and ρ is the growth under unlimited access to resources (as in the beginning when u is small). The idea is that a(u) ∼ ρ when u is small and that a(t) → 0 as u → M.
An a(u) that generalizes the linear choice is the polynomial form
a(u) = ρ(1 − u/M)p, (5.83) where p > 0 is some real number.
a) Formulate a Forward Euler, Backward Euler, and a Crank-Nicolson scheme for (5.82).
Hint. Use a geometric mean approximation in the Crank-Nicolson scheme: [a(u)u]n+1/2 ≈ a(un)un+1.
b) Formulate Picard and Newton iteration for the Backward Euler scheme in a).
c) Implement the numerical solution methods from a) and b). Use logistic.py to compare the case p = 1 and the choice (5.83).
d) Implement unit tests that check the asymptotic limit of the solutions: u→M ast→∞.
Hint. You need to experiment to find what “infinite time” is (increases substantially with p) and what the appropriate tolerance is for testing the asymptotic limit.
e) Perform experiments with Newton and Picard iteration for the model (5.83). See how sensitive the number of iterations is to ∆t and p.
Filename: logistic_p.
Problem 5.3: Experience the behavior of Newton’s method
The program Newton_demo.py illustrates graphically each step in New- ton’s method and is run like
Terminal> python Newton_demo.py f dfdx x0 xmin xmax
Use this program to investigate potential problems with Newton’s method when solving e−0.5×2 cos(πx) = 0. Try a starting point x0 = 0.8 and x0 = 0.85 and watch the different behavior. Just run
Terminal
480 5 Nonlinear problems
Terminal
Terminal> python Newton_demo.py ’0.2 + exp(-0.5*x**2)*cos(pi*x)’ \
’-x*exp(-x**2)*cos(pi*x) – pi*exp(-x**2)*sin(pi*x)’ \
0.85 -3 3
and repeat with 0.85 replaced by 0.8.
Exercise 5.4: Compute the Jacobian of a 2 × 2 system
Write up the system (5.18)-(5.19) in the form F(u) = 0, F = (F0,F1),
u = (u0,u1), and compute the Jacobian Ji,j = ∂Fi/∂uj. Problem 5.5: Solve nonlinear equations arising from a
vibration ODE
Consider a nonlinear vibration problem
mu′′ + bu′|u′| + s(u) = F(t), (5.84)
where m > 0 is a constant, b ≥ 0 is a constant, s(u) a possibly nonlinear function of u, and F(t) is a prescribed function. Such models arise from Newton’s second law of motion in mechanical vibration problems where s(u) is a spring or restoring force, mu′′ is mass times acceleration, and bu′|u′| models water or air drag.
a) Rewrite the equation for u as a system of two first-order ODEs, and discretize this system by a Crank-Nicolson (centered difference) method.
′ n+1 n+1
With v = u, we get a nonlinear term v 2|v 2|. Use a geometric
n+1 average for v 2 .
b) Formulate a Picard iteration method to solve the system of nonlinear algebraic equations.
c) Explain how to apply Newton’s method to solve the nonlinear equa- tions at each time level. Derive expressions for the Jacobian and the right-hand side in each Newton iteration.
Filename: nonlin_vib.
5.7 Exercises 481
Exercise 5.6: Find the truncation error of arithmetic mean of products
In Section 5.3.4 we introduce alternative arithmetic means of a product. Say the product is P (t)Q(t) evaluated at t = tn+ 1 . The exact value is
2
2
There are two obvious candidates for evaluating [PQ]n+1 as a mean of
values of P and Q at tn and tn+1. Either we can take the arithmetic mean of each factor P and Q,
(5.85)
(5.86)
[PQ]n+1 = Pn+1 Qn+1 222
2
[PQ]n+1 ≈ 1(Pn + Pn+1)1(Qn + Qn+1),
22
or we can take the arithmetic mean of the product PQ:
2
[PQ]n+1 ≈ 1(PnQn +Pn+1Qn+1).
2
The arithmetic average of P (tn+ 1 ) is O(∆t2):
2
P(tn+1)= 1(Pn +Pn+1)+O(∆t2). 22
A fundamental question is whether (5.85) and (5.86) have different orders
of accuracy in ∆t = tn+1 − tn. To investigate this question, expand
quantities at tn+1 and tn in Taylor series around tn+ 1 , and subtract the 2
2
true value [PQ]n+1 from the approximations (5.85) and (5.86) to see
what the order of the error terms are.
Hint. You may explore sympy for carrying out the tedious calculations.
A general Taylor series expansion of P (t + 1 ∆t) around t involving just 2
a general function P(t) can be created as follows:
>>> from sympy import *
>>> t, dt = symbols(’t dt’)
>>> P = symbols(’P’, cls=Function)
>>> P(t).series(t, 0, 4)
P(0) + t*Subs(Derivative(P(_x), _x), (_x,), (0,)) +
t**2*Subs(Derivative(P(_x), _x, _x), (_x,), (0,))/2 +
t**3*Subs(Derivative(P(_x), _x, _x, _x), (_x,), (0,))/6 + O(t**4)
>>> P_p = P(t).series(t, 0, 4).subs(t, dt/2)
>>> P_p
P(0) + dt*Subs(Derivative(P(_x), _x), (_x,), (0,))/2 +
dt**2*Subs(Derivative(P(_x), _x, _x), (_x,), (0,))/8 +
dt**3*Subs(Derivative(P(_x), _x, _x, _x), (_x,), (0,))/48 + O(dt**4)
482 5 Nonlinear problems
The error of the arithmetic mean, 1(P(−1∆t) + P(−1∆t)) for t = 0 is
then
Use these examples to investigate the error of (5.85) and (5.86) for n = 0. (Choosing n = 0 is necessary for not making the expressions too complicated for sympy, but there is of course no lack of generality by using n = 0 rather than an arbitrary n – the main point is the product and addition of Taylor series.)
Filename: product_arith_mean.
Problem 5.7: Newton’s method for linear problems
Suppose we have a linear system F (u) = Au − b = 0. Apply Newton’s method to this system, and show that the method converges in one iteration. Filename: Newton_linear.
Problem 5.8: Discretize a 1D problem with a nonlinear coefficient
We consider the problem
((1+u2)u′)′ =1, x∈(0,1), u(0)=u(1)=0. (5.87)
Discretize (5.87) by a centered finite difference method on a uniform mesh. Filename: nonlin_1D_coeff_discretize.
Problem 5.9: Linearize a 1D problem with a nonlinear coefficient
We have a two-point boundary value problem
((1+u2)u′)′ =1, x∈(0,1), u(0)=u(1)=0. (5.88)
a) Construct a Picard iteration method for (5.88) without discretizing in space.
222
>>> P_m = P(t).series(t, 0, 4).subs(t, -dt/2)
>>> mean = Rational(1,2)*(P_m + P_p)
>>> error = simplify(expand(mean) – P(0))
>>> error
dt**2*Subs(Derivative(P(_x), _x, _x), (_x,), (0,))/8 + O(dt**4)
5.7 Exercises 483
b) Apply Newton’s method to (5.88) without discretizing in space.
c) Discretize (5.88) by a centered finite difference scheme. Construct a
Picard method for the resulting system of nonlinear algebraic equations.
d) Discretize (5.88) by a centered finite difference scheme. Define the system of nonlinear algebraic equations, calculate the Jacobian, and set up Newton’s method for solving the system.
Filename: nonlin_1D_coeff_linearize.
Problem 5.10: Finite differences for the 1D Bratu problem
We address the so-called Bratu problem
u′′ +λeu =0, x∈(0,1), u(0)=u(1)=0, (5.89)
where λ is a given parameter and u is a function of x. This is a widely used model problem for studying numerical methods for nonlinear differential equations. The problem (5.89) has an exact solution
where θ solves
cosh(θ/4) √
cosh((x − 1 )θ/2) ue(x) = −2ln 2
,
θ = 2λ cosh(θ/4) .
There are two solutions of (5.89) for 0 < λ < λc and no solution for λ > λc. For λ = λc there is one unique solution. The critical value λc solves
1 = 2λ 1 sinh(θ(λ )/4) . c4c
A numerical value is λc = 3.513830719.
a) Discretize (5.89) by a centered finite difference method.
b) Set up the nonlinear equations Fi(u0, u1, . . . , uNx ) = 0 from a). Cal- culate the associated Jacobian.
c) Implement a solver that can compute u(x) using Newton’s method. Plot the error as a function of x in each iteration.
484 5 Nonlinear problems
d) Investigate whether Newton’s method gives second-order convergence by computing ||ue − u||/||ue − u−||2 in each iteration, where u is solution in the current iteration and u− is the solution in the previous iteration. Filename: nonlin_1D_Bratu_fd.
Problem 5.11: Discretize a nonlinear 1D heat conduction PDE by finite differences
We address the 1D heat conduction PDE ρc(T)Tt =(k(T)Tx)x,
for x ∈ [0, L], where ρ is the density of the solid material, c(T ) is the heat capacity, T is the temperature, and k(T) is the heat conduction coefficient. T(x,0) = I(x), and ends are subject to a cooling law:
k(T )Tx|x=0 = h(T )(T − Ts), −k(T )Tx|x=L = h(T )(T − Ts), where h(T) is a heat transfer coefficient and Ts is the given surrounding
temperature.
a) Discretize this PDE in time using either a Backward Euler or Crank- Nicolson scheme.
b) Formulate a Picard iteration method for the time-discrete problem (i.e., an iteration method before discretizing in space).
c) Formulate a Newton method for the time-discrete problem in b).
d) Discretize the PDE by a finite difference method in space. Derive the matrix and right-hand side of a Picard iteration method applied to the space-time discretized PDE.
e) Derive the matrix and right-hand side of a Newton method applied to the discretized PDE in d).
Filename: nonlin_1D_heat_FD.
Problem 5.12: Differentiate a highly nonlinear term
The operator ∇ · (α(u)∇u) with α(u) = |∇u|q appears in several physical problems, especially flow of Non-Newtonian fluids. The expression |∇u| is defined as the Euclidean norm of a vector: |∇u|2 = ∇u · ∇u. In a
5.7 Exercises 485
Newton method one has to carry out the differentiation ∂α(u)/∂cj, for u = k ckψk. Show that
∂ |∇u|q = q|∇u|q−2∇u · ∇ψj . ∂uj
Filename: nonlin_differentiate.
Exercise 5.13: Crank-Nicolson for a nonlinear 3D diffusion
equation
Redo Section 5.5.1 when a Crank-Nicolson scheme is used to discretize the equations in time and the problem is formulated for three spatial dimensions.
Hint. Express the Jacobian as Ji,j,k,r,s,t = ∂Fi,j,k/∂ur,s,t and observe, as in the 2D case, that Ji,j,k,r,s,t is very sparse: Ji,j,k,r,s,t ̸= 0 only for r = i ± i, s = j ± 1, and t = k ± 1 as well as r = i, s = j, and t = k. Filename: nonlin_heat_FD_CN_2D.
Problem 5.14: Find the sparsity of the Jacobian
Consider a typical nonlinear Laplace term like ∇ · α(u)∇u discretized by centered finite differences. Explain why the Jacobian corresponding to this term has the same sparsity pattern as the matrix associated with the corresponding linear term α∇2u.
Hint. Set up the unknowns that enter the difference equation at a point (i,j) in 2D or (i,j,k) in 3D, and identify the nonzero entries of the Jacobian that can arise from such a type of difference equation.
Filename: nonlin_sparsity_Jacobian.
Problem 5.15: Investigate a 1D problem with a continuation
method
Flow of a pseudo-plastic power-law fluid between two flat plates can be modeled by
d dun−1 du
μ0 =−β, u′(0)=0,u(H)=0, dx dx dx
486 5 Nonlinear problems
whereβ>0andμ0 >0areconstants.Atargetvalueofnmaybe n = 0.2.
a) Formulate a Picard iteration method directly for the differential equation problem.
b) Perform a finite difference discretization of the problem in each Picard iteration. Implement a solver that can compute u on a mesh. Verify that the solver gives an exact solution for n = 1 on a uniform mesh regardless of the cell size.
c) Given a sequence of decreasing n values, solve the problem for each n using the solution for the previous n as initial guess for the Picard iteration. This is called a continuation method. Experiment with n = (1,0.6,0.2) and n = (1,0.9,0.8,…,0.2) and make a table of the number of Picard iterations versus n.
d) Derive a Newton method at the differential equation level and dis- cretize the resulting linear equations in each Newton iteration with the finite difference method.
e) Investigate if Newton’s method has better convergence properties than Picard iteration, both in combination with a continuation method.
A.1 Finite difference operator notation
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Useful formulas
A
488
A Useful formulas
u′(tn)≈[Dtu]n=u 2 −u 2 ∆t
′ n un+1 − un−1 u (tn) ≈ [D2tu] = 2∆t
′ − n un−un−1 u(tn)=[Dt u] = ∆t
′ + n un+1−un
(A.1)
(A.2)
(A.3)
(A.4)
(A.5)
(A.6)
(A.7)
(A.8)
(A.9)
(A.10)
(A.11) (A.12)
n+1 n−1
u(tn)≈[Dt u] =
∆t un+1 − un
∆t
3un − 4un−1 + un−2
2∆t
un+1 −2un +un−1
̄
u (tn+θ) = [Dtu]
′
n+θ
= u(tn)≈[Dt u] =
′ 2−
′′ n
u (tn) ≈ [DtDtu] 2
=
u(t 1)≈[ut]n+1 =1(un+1+un)
n
∆t2
n+2 2
2
u(t 1 )2 ≈ [u2t,g]n+1 = un+1un
n+2
u(t 1 ) ≈ [ut,h]n+1 =
2
1 +1
2
tn+θ = θtn+1 + (1 − θ)tn−1
n+2
u(tn+θ) ≈ [ut,θ]n+θ = θun+1 + (1 − θ)un,
un+1 un
Some may wonder why θ is absent on the right-hand side of (A.5). The fraction is an approximation to the derivative at the point tn+θ = θtn+1 + (1 − theta)tn.
A.2 Truncation errors of finite difference approximations
A.3 Finite differences of exponential functions
489
u′e(tn) = [Dtue]n + Rn = ∆t Rn = − 1 u′′′(t )∆t2 + O(∆t4)
+ Rn,
+Rn,
(A.13)
(A.14)
(A.15)
(A.16)
)∆t2+ (A.17)
+ Rn,
(A.18)
+ Rn,
(A.19)
n+1 n−1 ue 2 −ue 2
24e n u′e(tn)=[D2tue]n +Rn = e
un+1 − un−1 e
2∆t Rn = −1u′′′(t )∆t2 + O(∆t4)
6en
u ′e ( t n ) = [ D t− u e ] n + R n = e
un − un−1 e
∆t Rn = −1u′′(t )∆t + O(∆t2)
+ R n , e +Rn,
2en u′e(tn)=[Dt+ue]n+Rn= e
un+1 − un ∆t
Rn = 1u′′(t )∆t + O(∆t2) 2en
̄
u′e(tn+θ) = [Dtue]n+θ + Rn+θ =
Rn+θ = −1(1 − 2θ)u′′(t
2 e n+θ
un+1 − un
e
ente 2∆t Rn = 1u′′′(t )∆t2 + O(∆t3)
e + Rn+θ,
)∆t + 1((1 − θ)3 − θ3)u′′′(t
∆t
O(∆t3)
u′ (t ) = [D2−u ]n + Rn = e e e
6
3un − 4un−1 + un−2
e n+θ
3en
u′′(t ) = [D D u ]n + Rn = e e e
un+1 − 2un + un−1 en tte ∆t2
Rn = − 1 u′′′′(t )∆t2 + O(∆t4) 12e n
u (t )=[u t,θ]n+θ +Rn+θ =θun+1 +(1−θ)un +Rn+θ, en+θe e e
Rn+θ =−1u′′(t )∆t2θ(1−θ)+O(∆t3). 2 e n+θ
A.3 Finite differences of exponential functions Complex exponentials. Let un = exp (iωn∆t) = eiωtn .
(A.20)
490
A Useful formulas
n
[Dt− u]n
n2 4 2ω∆t
[Dt Dt u] [Dt+ u]n
=u ∆t(cosω∆t−1)=−∆tsin = un 1 (exp (iω∆t) − 1),
∆t
= un 1 (1 − exp (−iω∆t)), ∆t
n2 ω∆t =u∆tisin2,
=un1isin(ω∆t). ∆t
2
,
(A.21) (A.22)
(A.23) (A.24) (A.25)
(A.26) (A.27)
(A.28) (A.29) (A.30)
[Dt u] [D2t u]n
n
Real exponentials. Let un = exp (ωn∆t) = eωtn .
n [Dt Dt u]
[Dt+ u]n [Dt− u]n
n2 4 2ω∆t
[Dt u] [D2t u]n
n
=u ∆t(cosω∆t−1)=−∆tsin = un 1 (exp (iω∆t) − 1),
∆t
= un 1 (1 − exp (−iω∆t)), ∆t
n2 ω∆t =u∆tisin2,
=un1isin(ω∆t). ∆t
2
,
A.4 Finite differences of tn
The following results are useful when checking if a polynomial term in a
solution fulfills the discrete equation for the numerical method.
[Dt+t]n=1, [Dt−t]n=1, [Dtt]n = 1, [D2tt]n = 1, [DtDtt]n=0.
(A.31) (A.32) (A.33) (A.34) (A.35)
The next formulas concern the action of difference operators on a t2 term.
A.4 Finite differences of tn
491
[Dt+t2]n = (2n + 1)∆t, [Dt−t2]n = (2n − 1)∆t, [Dt t2 ]n = 2n∆t, [D2t t2 ]n = 2n∆t, [DtDtt2]n = 2,
Finally, we present formulas for a t3 term:
[Dt+t3]n = 3(n∆t)2 + 3n∆t2 +∆t2,
(A.36) (A.37) (A.38) (A.39) (A.40)
(A.41) (A.42)
(A.43)
(A.44) (A.45)
[Dt−t3]n = 3(n∆t)2 − 3n∆t2 +∆t2, [Dtt3]n = 3(n∆t)2 + 1∆t2,
[DtDtt3]n = 6n∆t, A.4.1 Software
4 [D2tt3]n = 3(n∆t)2 + ∆t2,
Application of finite difference operators to polynomials and exponential functions, resulting in the formulas above, can easily be computed by some sympy code (from the file lib.py):
from sympy import *
t, dt, n, w = symbols(’t dt n w’, real=True)
# Finite difference operators
def D_t_forward(u):
return (u(t + dt) – u(t))/dt
def D_t_backward(u):
return (u(t) – u(t-dt))/dt
def D_t_centered(u):
return (u(t + dt/2) – u(t-dt/2))/dt
def D_2t_centered(u):
return (u(t + dt) – u(t-dt))/(2*dt)
def D_t_D_t(u):
return (u(t + dt) – 2*u(t) + u(t-dt))/(dt**2)
492 A Useful formulas
op_list = [D_t_forward, D_t_backward,
D_t_centered, D_2t_centered, D_t_D_t]
def ft1(t):
return t
def ft2(t):
return t**2
def ft3(t):
return t**3
def f_expiwt(t):
return exp(I*w*t)
def f_expwt(t):
return exp(w*t)
func_list = [ft1, ft2, ft3, f_expiwt, f_expwt]
To see the results, one can now make a simple loop over the different type of functions and the various operators associated with them:
for func in func_list:
for op in op_list:
f = func
e = op(f)
e = simplify(expand(e))
print e
if func in [f_expiwt, f_expwt]:
e = e/f(t)
e = e.subs(t, n*dt)
print expand(e)
print factor(simplify(expand(e)))
Truncation error analysis provides a widely applicable framework for analyzing the accuracy of finite difference schemes. This type of analysis can also be used for finite element and finite volume methods if the discrete equations are written in finite difference form. The result of the analysis is an asymptotic estimate of the error in the scheme on the form Chr, where h is a discretization parameter (∆t, ∆x, etc.), r is a number, known as the convergence rate, and C is a constant, typically dependent on the derivatives of the exact solution.
Knowing r gives understanding of the accuracy of the scheme. But maybe even more important, a powerful verification method for computer codes is to check that the empirically observed convergence rates in experiments coincide with the theoretical value of r found from truncation error analysis.
The analysis can be carried out by hand, by symbolic software, and also numerically. All three methods will be illustrated. From examining the symbolic expressions of the truncation error we can add correction terms to the differential equations in order to increase the numerical accuracy.
In general, the term truncation error refers to the discrepancy that arises from performing a finite number of steps to approximate a process with infinitely many steps. The term is used in a number of contexts, including truncation of infinite series, finite precision arithmetic, finite differences, and differential equations. We shall be concerned with com- puting truncation errors arising in finite difference formulas and in finite difference discretizations of differential equations.
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Truncation error analysis
B
494 B Truncation error analysis
B.1 Overview of truncation error analysis B.1.1 Abstract problem setting
Consider an abstract differential equation L(u) = 0,
where L(u) is some formula involving the unknown u and its derivatives. One example is L(u) = u′(t)+a(t)u(t)−b(t), where a and b are constants or functions of time. We can discretize the differential equation and obtain a corresponding discrete model, here written as
L∆(u) = 0.
The solution u of this equation is the numerical solution. To distinguish the numerical solution from the exact solution of the differential equation problem, we denote the latter by ue and write the differential equation and its discrete counterpart as
L(ue) = 0, L∆(u) = 0.
Initial and/or boundary conditions can usually be left out of the trunca- tion error analysis and are omitted in the following.
The numerical solution u is, in a finite difference method, computed at a collection of mesh points. The discrete equations represented by the abstract equation L∆(u) = 0 are usually algebraic equations involving u at some neighboring mesh points.
B.1.2 Error measures
A key issue is how accurate the numerical solution is. The ultimate way of addressing this issue would be to compute the error ue − u at the mesh points. This is usually extremely demanding. In very simplified problem settings we may, however, manage to derive formulas for the numerical solution u, and therefore closed form expressions for the error ue − u. Such special cases can provide considerable insight regarding accuracy and stability, but the results are established for special problems.
B.1 Overview of truncation error analysis 495
The error ue − u can be computed empirically in special cases where we know ue. Such cases can be constructed by the method of manufactured solutions, where we choose some exact solution ue = v and fit a source term f in the governing differential equation L(ue) = f such that ue = v is a solution (i.e., f = L(v)). Assuming an error model of the form Chr, where h is the discretization parameter, such as ∆t or ∆x, one can estimate the convergence rate r. This is a widely applicable procedure, but the validity of the results is, strictly speaking, tied to the chosen test problems.
Another error measure arises by asking to what extent the exact solution ue fits the discrete equations. Clearly, ue is in general not a solution of L∆(u) = 0, but we can define the residual
R = L∆(ue),
and investigate how close R is to zero. A small R means intuitively that the discrete equations are close to the differential equation, and then we are tempted to think that un must also be close to ue(tn).
The residual R is known as the truncation error of the finite difference scheme L∆(u) = 0. It appears that the truncation error is relatively straightforward to compute by hand or symbolic software without special- izing the differential equation and the discrete model to a special case. The resulting R is found as a power series in the discretization parameters. The leading-order terms in the series provide an asymptotic measure of the accuracy of the numerical solution method (as the discretization parameters tend to zero). An advantage of truncation error analysis, com- pared to empirical estimation of convergence rates, or detailed analysis of a special problem with a mathematical expression for the numerical solution, is that the truncation error analysis reveals the accuracy of the various building blocks in the numerical method and how each building block impacts the overall accuracy. The analysis can therefore be used to detect building blocks with lower accuracy than the others.
Knowing the truncation error or other error measures is important for verification of programs by empirically establishing convergence rates. The forthcoming text will provide many examples on how to compute truncation errors for finite difference discretizations of ODEs and PDEs.
496 B Truncation error analysis
B.2 Truncation errors in finite difference formulas
The accuracy of a finite difference formula is a fundamental issue when discretizing differential equations. We shall first go through a particular example in detail and thereafter list the truncation error in the most common finite difference approximation formulas.
B.2.1 Example: The backward difference for u′(t)
Consider a backward finite difference approximation of the first-order
derivative u′:
− n un−un−1 ′
[Dt u] = ∆t ≈u(tn). (B.1)
Here, un means the value of some function u(t) at a point tn, and [Dt−u]n is the discrete derivative of u(t) at t = tn. The discrete derivative computed by a finite difference is, in general, not exactly equal to the derivative u′(tn). The error in the approximation is
Rn =[Dt−u]n −u′(tn). (B.2) The common way of calculating Rn is to
1. expand u(t) in a Taylor series around the point where the derivative is evaluated, here tn,
2. insert this Taylor series in (B.2), and
3. collect terms that cancel and simplify the expression.
The result is an expression for Rn in terms of a power series in ∆t. The error Rn is commonly referred to as the truncation error of the finite difference formula.
The Taylor series formula often found in calculus books takes the form f(x+h)=∞ 1dif(x)hi.
i=0 i! dxi
In our application, we expand the Taylor series around the point where the finite difference formula approximates the derivative. The Taylor series of un at tn is simply u(tn), while the Taylor series of un−1 at tn must employ the general formula,
B.2 Truncation errors in finite difference formulas 497
u(tn−1) = u(t − ∆t) = ∞ 1 diu(tn)(−∆t)i i=0 i! dti
= u(tn) − u′(tn)∆t + 1u′′(tn)∆t2 + O(∆t3), 2
where O(∆t3) means a power-series in ∆t where the lowest power is ∆t3. We assume that ∆t is small such that ∆tp ≫ ∆tq if p is smaller than q. The details of higher-order terms in ∆t are therefore not of much interest. Inserting the Taylor series above in the right-hand side of1 (B.2) gives rise to some algebra:
[Dt−u]n − u′(tn) = u(tn) − u(tn−1) − u′(tn) ∆t
u(tn) − (u(tn) − u′(tn)∆t + 1 u′′(tn)∆t2 + O(∆t3))
= 2 −u′(tn)
∆t = −1u′′(tn)∆t + O(∆t2)),
2
which is, according to (B.2), the truncation error:
Rn =−1u′′(tn)∆t+O(∆t2)). 2
(B.3) The dominating term for small ∆t is −1u′′(tn)∆t, which is proportional
2
to ∆t, and we say that the truncation error is of first order in ∆t.
B.2.2 Example: The forward difference for u′(t)
We can analyze the approximation error in the forward difference
′ + n un+1−un u(tn)≈[Dt u] = ∆t
,
by writing
and expanding un+1 in a Taylor series around tn,
R n = [ D t+ u ] n − u ′ ( t n ) ,
u(tn+1) = u(tn) + u′(tn)∆t + 1u′′(tn)∆t2 + O(∆t3) . 2
The result becomes
498
B Truncation error analysis
R = 1u′′(tn)∆t + O(∆t2), 2
showing that also the forward difference is of first order.
B.2.3 Example: The central difference for u′(t) For the central difference approximation,
n+1 n−1 u′(tn)≈[Dtu]n, [Dtu]n = u 2 −u 2 ,
∆t
we write
Rn = [Dtu]n − u′(tn),
and expand u(tn+ 1 ) and u(tn− 1 in Taylor series around the point tn
22
where the derivative is evaluated. We have
u(tn+1 ) =u(tn) + u′(tn)1∆t + 1u′′(tn)(1∆t)2+
2 222 1u′′′(tn)(1∆t)3 + 1 u′′′′(tn)(1∆t)4+
6 2 24 2
1 u′′′′(tn)(1∆t)5 + O(∆t6), 120 2
u(tn−1 ) =u(tn) − u′(tn)1∆t + 1u′′(tn)(1∆t)2− 2 222
1u′′′(tn)(1∆t)3 + 1 u′′′′(tn)(1∆t)4− 6 2 24 2
1 u′′′′′(tn)(1∆t)5 +O(∆t6). 120 2
Now,
u(tn+1 )−u(tn−1 ) = u′(tn)∆t+ 1 u′′′(tn)∆t3+ 1 u′′′′′(tn)∆t5+O(∆t7).
2 2 24 960
By collecting terms in [Dtu]n − u′(tn) we find the truncation error to be
Rn = 1 u′′′(tn)∆t2 + O(∆t4), (B.4) 24
with only even powers of ∆t. Since R ∼ ∆t2 we say the centered difference is of second order in ∆t.
B.2 Truncation errors in finite difference formulas 499
B.2.4 Overview of leading-order error terms in finite difference formulas
Here we list the leading-order terms of the truncation errors associated with several common finite difference formulas for the first and second derivatives.
[Dt u]n = Rn =
n [D2t u] =
n+1 n−1
u 2 −u 2 =u′(tn)+Rn,
∆t
1 u′′′(tn)∆t2 + O(∆t4) 24
un+1−un−1 ′ n 2∆t =u(tn)+R ,
(B.5) (B.6)
(B.7) (B.8)
(B.9) (B.10)
(B.11) (B.12)
(B.13)
+ O(∆t3) (B.14)
(B.15) (B.16)
(B.17) (B.18)
1u′′′(tn)∆t2 + O(∆t4) 6
Rn =
−nun−un−1′ n
[Dt u] = ∆t =u(tn)+R , Rn = −1u′′(tn)∆t + O(∆t2)
2
+nun+1−un′ n
[Dt u] =
∆t =u(tn)+R , 1u′′(tn)∆t + O(∆t2)
2
Rn ̄n+θ
=
= ∆t = u (tn+θ) + R
[Dt u] Rn+θ
n+θ
,
un+1−un ′
1(1 − 2θ)u′′(tn+θ)∆t − 1((1 − θ)3 − θ3)u′′′(tn+θ)∆t2
2−n [Dt u]
Rn
n
It will means or
=
= =
=
=
26
3un −4un−1 +un−2 ′ n
2∆t =u(tn)+R , −1u′′′(tn)∆t2 + O(∆t3)
[Dt Dt u] Rn
3
un+1 −2un +un−1 ′′ n
∆t2 =u (tn)+R , 1 u′′′′(tn)∆t2 + O(∆t4)
12
averages. The weighted arithmetic mean leads to
also be convenient to have the truncation errors for various
500 B Truncation error analysis
[ut,θ]n+θ = θun+1 + (1 − θ)un = u(tn+θ) + Rn+θ, (B.19) Rn+θ = 1u′′(tn+θ)∆t2θ(1−θ)+O(∆t3). (B.20)
2
(B.21) (B.22)
(B.23) (B.24)
(B.25) (B.26)
2
The standard arithmetic mean follows from this formula when θ = 1.
Expressed at point tn we get
[ut]n=1(un−1 +un+1)=u(t)+Rn,
222n
Rn = 1u′′(tn)∆t2 + 1 u′′′′(tn)∆t4 +O(∆t6).
8 384
The geometric mean also has an error O(∆t2):
[u2t,g]n=un−1un+1 =(un)2+Rn, 22
Rn =−1u′(tn)2∆t2+1u(tn)u′′(tn)∆t2+O(∆t4). 44
The harmonic mean is also second-order accurate: [ut,h]n =un = 2 +Rn+1,
1+1 n−1 n+1
2
Rn = − 4u(tn) ∆t2 + 8u′′(tn)∆t2 . B.2.5 Software for computing truncation errors
u2 u2 u′ (tn )2 1
We can use sympy to aid calculations with Taylor series. The derivatives can be defined as symbols, say D3f for the 3rd derivative of some func- tion f. A truncated Taylor series can then be written as f + D1f*h + D2f*h**2/2. The following class takes some symbol f for the function in question and makes a list of symbols for the derivatives. The __call__ method computes the symbolic form of the series truncated at num_terms terms.
import sympy as sym
class TaylorSeries:
“””Class for symbolic Taylor series.”””
def __init__(self, f, num_terms=4):
B.2 Truncation errors in finite difference formulas 501
self.f = f
self.N = num_terms
# Introduce symbols for the derivatives
self.df = [f]
for i in range(1, self.N+1):
self.df.append(sym.Symbol(’D%d%s’ % (i, f.name)))
def __call__(self, h):
“””Return the truncated Taylor series at x+h.”””
terms = self.f
for i in range(1, self.N+1):
terms += sym.Rational(1, sym.factorial(i))*self.df[i]*h**i
return terms
We may, for example, use this class to compute the truncation error of the Forward Euler finite difference formula:
>>> from truncation_errors import TaylorSeries
>>> from sympy import *
>>> u, dt = symbols(’u dt’)
>>> u_Taylor = TaylorSeries(u, 4)
>>> u_Taylor(dt)
D1u*dt + D2u*dt**2/2 + D3u*dt**3/6 + D4u*dt**4/24 + u
>>> FE = (u_Taylor(dt) – u)/dt
>>> FE
(D1u*dt + D2u*dt**2/2 + D3u*dt**3/6 + D4u*dt**4/24)/dt
>>> simplify(FE)
D1u + D2u*dt/2 + D3u*dt**2/6 + D4u*dt**3/24
The truncation error consists of the terms after the first one (u′).
The module file trunc/truncation_errors.py contains another class DiffOp with symbolic expressions for most of the truncation errors listed
in the previous section. For example:
>>> from truncation_errors import DiffOp
>>> from sympy import *
>>> u = Symbol(’u’)
>>> diffop = DiffOp(u, independent_variable=’t’)
>>> diffop[’geometric_mean’]
-D1u**2*dt**2/4 – D1u*D3u*dt**4/48 + D2u**2*dt**4/64 + …
>>> diffop[’Dtm’]
D1u + D2u*dt/2 + D3u*dt**2/6 + D4u*dt**3/24
>>> >>> diffop.operator_names()
[’geometric_mean’, ’harmonic_mean’, ’Dtm’, ’D2t’, ’DtDt’,
’weighted_arithmetic_mean’, ’Dtp’, ’Dt’]
The indexing of diffop applies names that correspond to the operators: Dtp for Dt+, Dtm for Dt−, Dt for Dt, D2t for D2t, DtDt for DtDt.
502 B Truncation error analysis
B.3 Exponential decay ODEs
We shall now compute the truncation error of a finite difference scheme for a differential equation. Our first problem involves the following the linear ODE modeling exponential decay,
u′(t) = −au(t) . (B.27) B.3.1 Forward Euler scheme
We begin with the Forward Euler scheme for discretizing (B.27):
[Dt+u = −au]n . (B.28)
The idea behind the truncation error computation is to insert the exact solution ue of the differential equation problem (B.27) in the discrete equations (B.28) and find the residual that arises because ue does not solve the discrete equations. Instead, ue solves the discrete equations with a residual Rn:
[Dt+ue + aue = R]n . From (B.11)-(B.12) it follows that
[D+u ]n = u′ (t ) + 1u′′(t )∆t + O(∆t2), teen2en
which inserted in (B.29) results in
u′(t )+1u′′(t )∆t+O(∆t2)+au (t )=Rn.
(B.29)
en 2en en
Now, u′e(tn) + aune = 0 since ue solves the differential equation. The
remaining terms constitute the residual:
Rn = 1u′′(t )∆t+O(∆t2). (B.30)
This is the truncation error Rn of the Forward Euler scheme.
Because Rn is proportional to ∆t, we say that the Forward Euler scheme is of first order in ∆t. However, the truncation error is just one error measure, and it is not equal to the true error une − un. For this simple model problem we can compute a range of different error measures
2en
B.3 Exponential decay ODEs 503
for the Forward Euler scheme, including the true error une − un, and all of them have dominating terms proportional to ∆t.
B.3.2 Crank-Nicolson scheme
For the Crank-Nicolson scheme,
[D u = −au]n+ 1 , (B.31) t2
we compute the truncation error by inserting the exact solution of the ODE and adding a residual R,
[Du +aut=R]n+1 . (B.32) tee2
n+1
The term [Dtue] 2 is easily computed from (B.5)-(B.6) by replacing n
with n + 1 in the formula, 2
[Du]n+1 =u′(t 1)+ 1u′′′(t 1)∆t2+O(∆t4). te 2 en+2 24en+2
The arithmetic mean is related to u(tn+ 1 ) by (B.21)-(B.22) so 2
[aut]n+1 =u(t 1)+1u′′(t)∆t2++O(∆t4). e2 en+2 8en
Inserting these expressions in (B.32) and observing that u′e(tn+ 1 ) +
2
aue 2 = 0, because ue(t) solves the ODE u′(t) = −au(t) at any point t,
n+11′′′ 1′′2 4
R 2 = 24ue(tn+1)+8ue(tn) ∆t +O(∆t) (B.33)
2
Here, the truncation error is of second order because the leading term in R is proportional to ∆t2.
At this point it is wise to redo some of the computations above to establish the truncation error of the Backward Euler scheme, see Exercise B.7.
B.3.3 The θ-rule
We may also compute the truncation error of the θ-rule,
[D ̄tu = −aut,θ]n+θ .
n+1
we find that
504 B Truncation error analysis
Our computational task is to find Rn+θ in [D ̄tue + auet,θ = R]n+θ .
From (B.13)-(B.14) and (B.19)-(B.20) we get expressions for the terms with ue. Using that u′e(tn+θ) + aue(tn+θ) = 0, we end up with
Rn+θ =(1 − θ)u′′(t )∆t + 1θ(1 − θ)u′′(t )∆t2+ 2 en+θ 2 en+θ
while for θ ̸= 1 we only have a first-order scheme. 2
B.3.4 Using symbolic software
The previously mentioned truncation_error module can be used to automate the Taylor series expansions and the process of collecting terms. Here is an example on possible use:
1(θ2 − θ + 3)u′′′(t )∆t2 + O(∆t3) 2 en+θ
(B.34) For θ = 1 the first-order term vanishes and the scheme is of second order,
2
from truncation_error import DiffOp
from sympy import *
def decay():
u, a = symbols(’u a’)
diffop = DiffOp(u, independent_variable=’t’,
num_terms_Taylor_series=3)
D1u = diffop.D(1) # symbol for du/dt
ODE = D1u + a*u # define ODE
# Define schemes
FE = diffop[’Dtp’] + a*u
CN = diffop[’Dt’ ] + a*u
BE = diffop[’Dtm’] + a*u
theta = diffop[’barDt’] + a*diffop[’weighted_arithmetic_mean’]
theta = sm.simplify(sm.expand(theta))
# Residuals (truncation errors)
R = {’FE’: FE-ODE, ’BE’: BE-ODE, ’CN’: CN-ODE,
’theta’: theta-ODE}
return R
The returned dictionary becomes
decay: {
’BE’: D2u*dt/2 + D3u*dt**2/6,
’FE’: -D2u*dt/2 + D3u*dt**2/6,
B.3 Exponential decay ODEs 505
}
’CN’: D3u*dt**2/24,
’theta’: -D2u*a*dt**2*theta**2/2 + D2u*a*dt**2*theta/2 –
D2u*dt*theta + D2u*dt/2 + D3u*a*dt**3*theta**3/3 –
D3u*a*dt**3*theta**2/2 + D3u*a*dt**3*theta/6 +
D3u*dt**2*theta**2/2 – D3u*dt**2*theta/2 + D3u*dt**2/6,
The results are in correspondence with our hand-derived expressions.
B.3.5 Empirical verification of the truncation error
The task of this section is to demonstrate how we can compute the truncation error R numerically. For example, the truncation error of the Forward Euler scheme applied to the decay ODE u′ = −ua is
Rn = [Dt+ue + aue]n . (B.35)
If we happen to know the exact solution ue(t), we can easily evaluate Rn from the above formula.
To estimate how R varies with the discretization parameter ∆t, which has been our focus in the previous mathematical derivations, we first make the assumption that R = C∆tr for appropriate constants C and r and small enough ∆t. The rate r can be estimated from a series of experiments where ∆t is varied. Suppose we have m experiments
(∆ti,Ri), i = 0,…,m−1. For two consecutive experiments (∆ti−1,Ri−1) and (∆ti,Ri), a corresponding ri−1 can be estimated by
ri−1 = ln(Ri−1 /Ri ) , (B.36) ln(∆ti−1/∆ti)
for i = 1, . . . , m − 1. Note that the truncation error Ri varies through the mesh, so (B.36) is to be applied pointwise. A complicating issue is that Ri and Ri−1 refer to different meshes. Pointwise comparisons of the truncation error at a certain point in all meshes therefore requires any computed R to be restricted to the coarsest mesh and that all finer meshes contain all the points in the coarsest mesh. Suppose we have N0 intervals in the coarsest mesh. Inserting a superscript n in (B.36), where n counts mesh points in the coarsest mesh, n = 0, . . . , N0, leads to the formula
ln(Rn /Rn )
rn = i−1 i . (B.37)
i−1 ln(∆ti−1/∆ti)
506 B Truncation error analysis
Experiments are most conveniently defined by N0 and a number of refinements m. Suppose each mesh has twice as many cells Ni as the previous one:
Ni = 2iN0, ∆ti = TN−1, i
where [0, T ] is the total time interval for the computations. Suppose the computed Ri values on the mesh with Ni intervals are stored in an array R[i] (R being a list of arrays, one for each mesh). Restricting this Ri function to the coarsest mesh means extracting every Ni/N0 point and is done as follows:
The quantity R[i][n] now corresponds to Rin.
In addition to estimating r for the pointwise values of R = C∆tr, we
stride = N[i]/N_0
R[i] = R[i][::stride]
may also consider an integrated quantity on mesh i, 1
RI,i =
Ni 2 n2T
Ri(t)dt.
(B.38)
∆ti (Ri ) ≈ n=0
0
The sequence RI,i, i = 0, . . . , m − 1, is also expected to behave as C∆tr, with the same r as for the pointwise quantity R, as ∆t → 0.
The function below computes the Ri and RI,i quantities, plots them and compares with the theoretically derived truncation error (R_a) if available.
import numpy as np
import scitools.std as plt
def estimate(truncation_error, T, N_0, m, makeplot=True):
“””
Compute the truncation error in a problem with one independent
variable, using m meshes, and estimate the convergence
rate of the truncation error.
The user-supplied function truncation_error(dt, N) computes
the truncation error on a uniform mesh with N intervals of
length dt::
R, t, R_a = truncation_error(dt, N)
where R holds the truncation error at points in the array t,
and R_a are the corresponding theoretical truncation error
values (None if not available).
The truncation_error function is run on a series of meshes
with 2**i*N_0 intervals, i=0,1,…,m-1.
B.3 Exponential decay ODEs 507
The values of R and R_a are restricted to the coarsest mesh.
and based on these data, the convergence rate of R (pointwise)
and time-integrated R can be estimated empirically.
“””
N = [2**i*N_0 for i in range(m)]
R_I = np.zeros(m) # time-integrated R values on various meshes
R = [None]*m # time series of R restricted to coarsest mesh
R_a = [None]*m # time series of R_a restricted to coarsest mesh
dt = np.zeros(m)
legends_R = []; legends_R_a = [] # all legends of curves
for i in range(m):
dt[i] = T/float(N[i])
R[i], t, R_a[i] = truncation_error(dt[i], N[i])
R_I[i] = np.sqrt(dt[i]*np.sum(R[i]**2))
if i == 0:
t_coarse = t
stride = N[i]/N_0
R[i] = R[i][::stride]
R_a[i] = R_a[i][::stride]
if makeplot:
plt.figure(1)
# the coarsest mesh
# restrict to coarsest mesh
plt.plot(t_coarse, R[i], log=’y’)
legends_R.append(’N=%d’ % N[i])
plt.hold(’on’)
plt.figure(2)
plt.plot(t_coarse, R_a[i] – R[i], log=’y’)
plt.hold(’on’)
legends_R_a.append(’N=%d’ % N[i])
if makeplot:
plt.figure(1)
plt.xlabel(’time’)
plt.ylabel(’pointwise truncation error’)
plt.legend(legends_R)
plt.savefig(’R_series.png’)
plt.savefig(’R_series.pdf’)
plt.figure(2)
plt.xlabel(’time’)
plt.ylabel(’pointwise error in estimated truncation error’)
plt.legend(legends_R_a)
plt.savefig(’R_error.png’)
plt.savefig(’R_error.pdf’)
# Convergence rates
r_R_I = convergence_rates(dt, R_I)
print ’R integrated in time; r:’,
print ’ ’.join([’%.1f’ % r for r in r_R_I])
508 B Truncation error analysis
R = np.array(R) # two-dim. numpy array
r_R = [convergence_rates(dt, R[:,n])[-1]
for n in range(len(t_coarse))]
The first makeplot block demonstrates how to build up two figures in
parallel, using plt.figure(i) to create and switch to figure number i.
Figure numbers start at 1. A logarithmic scale is used on the y axis since
we expect that R as a function of time (or mesh points) is exponential.
The reason is that the theoretical estimate (B.30) contains u′′, which for e
the present model goes like e−at. Taking the logarithm makes a straight line.
The code follows closely the previously stated mathematical formulas, but the statements for computing the convergence rates might deserve an explanation. The generic help function convergence_rate(h, E) computesandreturnsri−1,i=1,…,m−1from(B.37),given∆ti inh and Rin in E:
Calling r_R_I = convergence_rates(dt, R_I) computes the se- quence of rates r0, r1, . . . , rm−2 for the model RI ∼ ∆tr, while the statements
compute the final rate rm−2 for Rn ∼ ∆tr at each mesh point tn in the coarsest mesh. This latter computation deserves more explanation. Since R[i][n] holds the estimated truncation error Rin on mesh i, at point tn in the coarsest mesh, R[:,n] picks out the sequence Rin for i = 0, . . . , m − 1. The convergence_rate function computes the rates at tn, and by indexing [-1] on the returned array from convergence_rate, we pick the rate rm−2, which we believe is the best estimation since it is based on the two finest meshes.
The estimate function is available in a module trunc_empir.py. Let us apply this function to estimate the truncation error of the Forward Euler scheme. We need a function decay_FE(dt, N) that can compute
(B.35) at the points in a mesh with time step dt and N intervals:
def convergence_rates(h, E):
from math import log
r = [log(E[i]/E[i-1])/log(h[i]/h[i-1])
for i in range(1, len(h))]
return r
R = np.array(R) # two-dim. numpy array
r_R = [convergence_rates(dt, R[:,n])[-1]
for n in range(len(t_coarse))]
import numpy as np
import trunc_empir
B.3 Exponential decay ODEs 509
def decay_FE(dt, N):
dt = float(dt)
t = np.linspace(0, N*dt, N+1)
u_e = I*np.exp(-a*t) # exact solution, I and a are global
u = u_e # naming convention when writing up the scheme
R = np.zeros(N)
for n in range(0, N):
R[n] = (u[n+1] – u[n])/dt + a*u[n]
# Theoretical expression for the trunction error
R_a = 0.5*I*(-a)**2*np.exp(-a*t)*dt
return R, t[:-1], R_a[:-1]
if __name__ == ’__main__’:
I = 1; a = 2 # global variables needed in decay_FE
trunc_empir.estimate(decay_FE, T=2.5, N_0=6, m=4, makeplot=True)
The estimated rates for the integrated truncation error RI become 1.1, 1.0, and 1.0 for this sequence of four meshes. All the rates for Rn, computed as r_R, are also very close to 1 at all mesh points. The agreement between the theoretical formula (B.30) and the computed quantity (ref(B.35)) is very good, as illustrated in Figures B.1 and B.2. The program trunc_decay_FE.py was used to perform the simulations and it can easily be modified to test other schemes (see also Exercise B.7).
B.3.6 Increasing the accuracy by adding correction terms
Now we ask the question: can we add terms in the differential equation that can help increase the order of the truncation error? To be precise, let us revisit the Forward Euler scheme for u′ = −au, insert the exact solution ue, include a residual R, but also include new terms C:
[Dt+ue + aue = C + R]n . (B.39) Inserting the Taylor expansions for [Dt+ue]n and keeping terms up to 3rd
order in ∆t gives the equation
1u′′(t )∆t − 1u′′′(t )∆t2 + 1 u′′′′(t )∆t3 + O(∆t4) = Cn + Rn .
2 e n 6 e n 24 e n
Can we find Cn such that Rn is O(∆t2)? Yes, by setting
510 B Truncation error analysis
Fig. B.1 Estimated truncation error at mesh points for different meshes.
Fig. B.2 Difference between theoretical and estimated truncation error at mesh points for different meshes.
Cn = 1u′′(t )∆t, 2en
B.3 Exponential decay ODEs 511
we manage to cancel the first-order term and
Rn = 1u′′′(t )∆t2 +O(∆t3).
6en
The correction term Cn introduces 1∆tu′′ in the discrete equation,
2
and we have to get rid of the derivative u′′. One idea is to approximate u′′ by a second-order accurate finite difference formula, u′′ ≈ (un+1 − 2un + un−1)/∆t2, but this introduces an additional time level with un−1. Another approach is to rewrite u′′ in terms of u′ or u using the ODE:
u′ =−au ⇒ u′′ =−au′ =−a(−au)=a2u.
This means that we can simply set Cn = 1a2∆tun. We can then either
solve the discrete equation
2
[Dt+u = −au + 1a2∆tu]n, 2
or we can equivalently discretize the perturbed ODE
u′ = −aˆu, aˆ = a(1 − 1 a∆t), 2
(B.40)
(B.41)
by a Forward Euler method. That is, we replace the original coefficient a by the perturbed coefficient aˆ. Observe that aˆ → a as ∆t → 0.
The Forward Euler method applied to (B.41) results in [Dt+u = −a(1 − 1a∆t)u]n .
2
We can control our computations and verify that the truncation error of
the scheme above is indeed O(∆t2).
Another way of revealing the fact that the perturbed ODE leads to a
more accurate solution is to look at the amplification factor. Our scheme can be written as
un+1 =Aun, A=1−aˆ∆t=1−p+1p2, p=a∆t, 2
The amplification factor A as a function of p = a∆t is seen to be the first three terms of the Taylor series for the exact amplification factor e−p. The Forward Euler scheme for u = −au gives only the first two terms 1 − p of the Taylor series for e−p. That is, using aˆ increases the order of the accuracy in the amplification factor.
512 B Truncation error analysis
Instead of replacing u′′ by a2u, we use the relation u′′ = −au′ and add a term −1a∆tu′ in the ODE:
2
′1′1′
u =−au−2a∆tu ⇒ 1+2a∆t u =−au.
Using a Forward Euler method results in 1 un+1 − un
1 + 2a∆t ∆t = −aun, which after some algebra can be written as
1 − 1 a∆t un+1 = 2 un .
1 + 1 a∆t 2
This is the same formula as the one arising from a Crank-Nicolson scheme applied to u′ = −au! It now recommended to do Exercise B.7 and repeat the above steps to see what kind of correction term is needed in the Backward Euler scheme to make it second order.
The Crank-Nicolson scheme is a bit more challenging to analyze, but the ideas and techniques are the same. The discrete equation reads
[D u = −au]n+ 1 , t2
and the truncation error is defined through
[Du +aut=C+R]n+1,
tee2
where we have added a correction term. We need to Taylor expand both the discrete derivative and the arithmetic mean with aid of (B.5)-(B.6) and (B.21)-(B.22), respectively. The result is
1u′′′(t 1)∆t2+O(∆t4)+au′′(t 1)∆t2+O(∆t4)=Cn+1 +Rn+1 . 24 e n+ 8 e n+ 2 2
22
n+1 2
The goal now is to make C 2 cancel the ∆t terms: Cn+1 = 1 u′′′(t 1 )∆t2 + au′′(t )∆t2 .
2 24 e n+2 8 e n
Using u′ = −au, we have that u′′ = a2u, and we find that u′′′ = −a3u. We can therefore solve the perturbed ODE problem
B.3 Exponential decay ODEs 513
u′ =−aˆu, aˆ=a(1− 1a2∆t2), 12
by the Crank-Nicolson scheme and obtain a method that is of fourth order in ∆t. Exercise B.7 encourages you to implement these correction terms and calculate empirical convergence rates to verify that higher-order accuracy is indeed obtained in real computations.
B.3.7 Extension to variable coefficients
Let us address the decay ODE with variable coefficients,
u′(t) = −a(t)u(t) + b(t), discretized by the Forward Euler scheme,
[Dt+u = −au + b]n .
The truncation error R is as always found by inserting the exact solution
ue(t) in the discrete scheme:
[Dt+ue + aue − b = R]n .
(B.43)
Using (B.11)-(B.12),
u′(t )−1u′′(t )∆t+O(∆t2)+a(t )u (t )−b(t )=Rn.
en2en nenn Because of the ODE,
(B.42)
u′e(tn) + a(tn)ue(tn) − b(tn) = 0, so we are left with the result
Rn =−1u′′(t )∆t+O(∆t2). 2en
(B.44)
We see that the variable coefficients do not pose any additional difficulties in this case. Exercise B.7 takes the analysis above one step further to the Crank-Nicolson scheme.
514 B Truncation error analysis
B.3.8 Exact solutions of the finite difference equations
Having a mathematical expression for the numerical solution is very
valuable in program verification since we then know the exact numbers
that the program should produce. Looking at the various formulas for
the truncation errors in (B.5)-(B.6) and (B.25)-(B.26) in Section B.2.4,
we see that all but two of the R expressions contain a second or higher
order derivative of ue. The exceptions are the geometric and harmonic
means where the truncation error involves u′e and even ue in case of the
harmonic mean. So, apart from these two means, choosing ue to be a
linear function of t, ue = ct + d for constants c and d, will make the
truncation error vanish since u′′ = 0. Consequently, the truncation error e
of a finite difference scheme will be zero since the various approximations used will all be exact. This means that the linear solution is an exact solution of the discrete equations.
In a particular differential equation problem, the reasoning above can be used to determine if we expect a linear ue to fulfill the discrete equations. To actually prove that this is true, we can either compute the truncation error and see that it vanishes, or we can simply insert ue(t) = ct + d in the scheme and see that it fulfills the equations. The latter method is usually the simplest. It will often be necessary to add some source term to the ODE in order to allow a linear solution.
Many ODEs are discretized by centered differences. From Section B.2.4
we see that all the centered difference formulas have truncation er-
rors involving u′′′ or higher-order derivatives. A quadratic solution, e.g., e
ue(t) = t2 + ct + d, will then make the truncation errors vanish. This observation can be used to test if a quadratic solution will fulfill the discrete equations. Note that a quadratic solution will not obey the equations for a Crank-Nicolson scheme for u′ = −au + b because the approximation applies an arithmetic mean, which involves a truncation error with u′′.
B.3.9 Computing truncation errors in nonlinear problems
The general nonlinear ODE
u′ =f(u,t), (B.45) can be solved by a Crank-Nicolson scheme
e
B.4 Vibration ODEs 515
[Du=ft]n+1 . (B.46) t2
The truncation error is as always defined as the residual arising when inserting the exact solution ue in the scheme:
[Du −ft=R]n+1 . te2
(B.47)
Using (B.21)-(B.22) for ft results in
[ft]n+1 = 1(f(un,t )+f(un+1,t ))
22en en+1 n+1 1
=f(ue 2,t 1)+ u′′(t 1)∆t2+O(∆t4). n+2 8 e n+2
With (B.5)-(B.6) the discrete equations (B.47) lead to
1 n+1 1 1
u′ (t 1 )+ u′′′(t 1 )∆t2−f(ue 2 ,t 1 )− u′′(t 1 )∆t2+O(∆t4) = Rn+2 . e n+2 24e n+2 n+2 8e n+2
n+1
Sinceu′e(tn+1)−f(ue 2,tn+1)=0,thetruncationerrorbecomes
22
Rn+1 =(1u′′′(t 1)−1u′′(t 1))∆t2. 2 24 e n+2 8 e n+2
The computational techniques worked well even for this nonlinear ODE.
B.4 Vibration ODEs
B.4.1 Linear model without damping
The next example on computing the truncation error involves the follow- ing ODE for vibration problems:
u′′(t) + ω2u(t) = 0 . (B.48) Here, ω is a given constant.
The truncation error of a centered finite difference scheme. Us- ing a standard, second-ordered, central difference for the second-order derivative in time, we have the scheme
[DtDtu + ω2u = 0]n . (B.49)
516 B Truncation error analysis
Inserting the exact solution ue in this equation and adding a residual R so that ue can fulfill the equation results in
[DtDtue + ω2ue = R]n .
To calculate the truncation error Rn, we use (B.17)-(B.18), i.e.,
[D D u ]n = u′′(t ) + 1 u′′′′(t )∆t2 + O(∆t4), tte en12en
and the fact that u′′(t) + ω2u (t) = 0. The result is ee
Rn = 1 u′′′′(t )∆t2 + O(∆t4) . 12e n
(B.50)
(B.51)
The truncation error of approximating u′(0). The initial conditions for (B.48) are u(0) = I and u′(0) = V . The latter involves a finite difference
approximation. The standard choice [D2tu = V ]0,
where u−1 is eliminated with the aid of the discretized ODE for n = 0, involves a centered difference with an O(∆t2) truncation error given by
(B.7)-(B.8). The simpler choice
[ D t+ u = V ] 0 ,
is based on a forward difference with a truncation error O(∆t). A central question is if this initial error will impact the order of the scheme through- out the simulation. Exercise B.7 asks you to perform an experiment to investigate this question.
Truncation error of the equation for the first step. We have shown that the truncation error of the difference used to approximate the initial condition u′(0) = 0 is O(∆t2), but can also investigate the difference equation used for the first step. In a truncation error setting, the right way to view this equation is not to use the initial condition [D2tu = V ]0 to express u−1 = u1 − 2∆tV in order to eliminate u−1 from the discretized differential equation, but the other way around: the fundamental equation is the discretized initial condition [D2tu = V ]0 and we use the discretized ODE [DtDt + ω2u = 0]0 to eliminate u−1 in the discretized initial condition. From [DtDt + ω2u = 0]0 we have
u−1 = 2u0 − u1 − ∆t2ω2u0,
B.4 Vibration ODEs 517
which inserted in [D2tu = V ]0 gives u1−u0 12 0
∆t +2ω∆tu=V. (B.52) The first term can be recognized as a forward difference such that the
equation can be written in operator notation as
[Dt+u + 1ω2∆tu = V ]0 . 2
The truncation error is defined as
[Dt+ue+1ω2∆tue−V =R]0. 2
Using (B.11)-(B.12) with one more term in the Taylor series, we get that u′ (0) + 1u′′(0)∆t + 1u′′′(0)∆t2 + O(∆t3) + 1ω2∆tu (0) − V = Rn .
e2e6e2e Now,u′(0)=V andu′′(0)=−ω2u (0)soweget
eee
Rn = 1u′′′(0)∆t2 +O(∆t3). 6e
There is another way of analyzing the discrete initial condition, because eliminating u−1 via the discretized ODE can be expressed as
[D2tu + ∆t(DtDtu − ω2u) = V ]0 . (B.53) Writing out (B.53) shows that the equation is equivalent to (B.52). The
truncation error is defined by
[D2tue + ∆t(DtDtue − ω2ue) = V + R]0 .
Replacing the difference via (B.7)-(B.8) and (B.17)-(B.18), as well as using u′ (0) = V and u′′(0) = −ω2u (0), gives
eee
Rn = 1u′′′(0)∆t2 +O(∆t3). 6e
Computing correction terms. The idea of using correction terms to increase the order of Rn can be applied as described in Section B.3.6. We look at
[DtDtue + ω2ue = C + R]n,
518 B Truncation error analysis
and observe that Cn must be chosen to cancel the ∆t2 term in Rn. That is,
Cn = 1 u′′′′(t )∆t2 . 12e n
To get rid of the 4th-order derivative we can use the differential equation: u′′ = −ω2u, which implies u′′′′ = ω4u. Adding the correction term to the ODE results in
u′′+ω2(1− 1ω2∆t2)u=0. 12
Solving this equation by the standard scheme
[DtDtu + ω2(1 − 1 ω2∆t2)u = 0]n, 12
(B.54)
will result in a scheme with truncation error O(∆t4).
We can use another set of arguments to justify that (B.54) leads to a
higher-order method. Mathematical analysis of the scheme (B.49) reveals that the numerical frequency ω ̃ is (approximately as ∆t → 0)
ω ̃=ω(1+ 1ω2∆t2). 24
One can therefore attempt to replace ω in the ODE by a slightly smaller ω since the numerics will make it larger:
[u′′ + (ω(1 − 1 ω2∆t2))2u = 0. 24
Expanding the squared term and omitting the higher-order term ∆t4 gives exactly the ODE (B.54). Experiments show that un is computed to 4th order in ∆t. You can confirm this by running a little program in the vib directory:
One will see that the rates r lie around 4.
from vib_undamped import convergence_rates, solver_adjust_w
r = convergence_rates(
m=5, solver_function=solver_adjust_w, num_periods=8)
B.4 Vibration ODEs 519
B.4.2 Model with damping and nonlinearity
The model (B.48) can be extended to include damping βu′, a nonlinear restoring (spring) force s(u), and some known excitation force F (t):
mu′′ +βu′ +s(u)=F(t). (B.55) The coefficient m usually represents the mass of the system. This gov-
erning equation can by discretized by centered differences:
[mDtDtu + βD2tu + s(u) = F ]n . (B.56) The exact solution ue fulfills the discrete equations with a residual term:
[mDtDtue + βD2tue + s(ue) = F + R]n . (B.57) Using (B.17)-(B.18) and (B.7)-(B.8) we get
[mD D u + βD u ]n = mu′′(t ) + βu′ (t )+ tte 2te en en
m′′′′ β′′′2 4 12ue (tn)+ 6ue (tn) ∆t +O(∆t )
Combining this with the previous equation, we can collect the terms mu′′(t )+βu′ (t )+ω2u (t )+s(u (t ))−Fn,
enenenen
and set this sum to zero because ue solves the differential equation. We
are left with the truncation error
nm′′′′ β′′′2 4 R = 12ue (tn)+ 6ue (tn) ∆t +O(∆t ),
so the scheme is of second order.
According to (B.58), we can add correction terms
nm′′′′ β′′′2 C = 12ue (tn)+6ue(tn) ∆t,
(B.58)
to the right-hand side of the ODE to obtain a fourth-order scheme. However, expressing u′′′′ and u′′′ in terms of lower-order derivatives is now harder because the differential equation is more complicated:
520
B Truncation error analysis
u′′′= 1(F′−βu′′−s′(u)u′), m
u′′′′ = 1 (F ′′ − βu′′′ − s′′(u)(u′)2 − s′(u)u′′), m
= 1 (F′′ −β 1 (F′ −βu′′ −s′(u)u′)−s′′(u)(u′)2 −s′(u)u′′). mm
It is not impossible to discretize the resulting modified ODE, but it is up to debate whether correction terms are feasible and the way to go. Computing with a smaller ∆t is usually always possible in these problems to achieve the desired accuracy.
B.4.3 Extension to quadratic damping
Instead of the linear damping term βu′ in (B.55) we now consider quadratic damping β|u′|u′:
mu′′ + β|u′|u′ + s(u) = F (t) . (B.59) A centered difference for u′ gives rise to a nonlinearity, which can be lin-
′′n ′n−1 ′n+1
earized using a geometric mean: [|u |u ] ≈ |[u ] 2 |[u ] 2 . The resulting
scheme becomes
[mDDu]n+β|[Du]n−1|[Du]n+1 +s(un)=Fn. (B.60)
ttt2t2 The truncation error is defined through
[mDDu]n+β|[Du]n−1|[Du]n+1 +s(un)−Fn=Rn. (B.61) ttete2te2e
We start with expressing the truncation error of the geometric mean. According to (B.23)-(B.24),
|[Du]n−1|[Du]n+1 =[|Du|Du]n−1u′(t )2∆t2+ te2te2 tete4en
1u (t )u′′(t )∆t2 +O(∆t4). 4enen
Using (B.5)-(B.6) for the Dtue factors results in
[|D u |D u ]n = |u′ + 1 u′′′(t )∆t2+O(∆t4)|(u′ + 1 u′′′(t )∆t2+O(∆t4)) t e t e e 24 e n e 24 e n
B.4 Vibration ODEs 521
We can remove the absolute value since it essentially gives a factor 1 or -1 only. Calculating the product, we have the leading-order terms
[D u D u ]n = (u′ (t ))2 + 1 u (t )u′′′(t )∆t2 + O(∆t4) . t e t e e n 12 e n e n
With
m[D D u ]n = mu′′(t ) + m u′′′′(t )∆t2 + O(∆t4),
tte en12en
and using the differential equation on the form mu′′ + β(u′)2 + s(u) = F ,
we end up with
Rn = ( m u′′′′(t ) + β u (t )u′′′(t ))∆t2 + O(∆t4) .
12en 12enen
This result demonstrates that we have second-order accuracy also with quadratic damping. The key elements that lead to the second-order accu- racy is that the difference approximations are O(∆t2) and the geometric mean approximation is also O(∆t2).
B.4.4 The general model formulated as first-order ODEs
The second-order model (B.59) can be formulated as a first-order system, v′ = 1 (F(t) − β|v|v − s(u)), (B.62)
m
u′ = v . (B.63)
The system (B.63)-(B.63) can be solved either by a forward-backward scheme (the Euler-Cromer method) or a centered scheme on a staggered mesh.
A centered scheme on a staggered mesh. We now introduce a stag- gered mesh where we seek u at mesh points tn and v at points tn+ 1 in
2
between the u points. The staggered mesh makes it easy to formulate centered differences in the system (B.63)-(B.63):
[D u = v]n−1 , (B.64) t2
[Dtv= 1(F(t)−β|v|v−s(u))]n. (B.65) m
522 B Truncation error analysis
nn n n−1 The term |v |v causes trouble since v is not computed, only v 2
and n+1 . Using geometric mean, we can express |vn|vn in terms of known
v2
quantities: |v |v ≈ |v 2 |v 2 . We then have
t22 [D u]n−1 = vn−1 ,
[D v]n = 1 (F(t )−β|vn−1 |vn+1 −s(un)). tmn22
The truncation error in each equation fulfills
1 n−1 [Dtue]n−2 =ve(tn−1)+Ru 2,
nn n−1n+1
(B.66) (B.67)
2
[Dtve]n = 1 (F (tn) − β|ve(tn− 1 )|ve(tn+ 1 ) − s(un)) + Rvn .
The truncation error of the centered differences is given by (B.5)-(B.6), and the geometric mean approximation analysis can be taken from
2,
m
The ODEs fulfilled by ue and ve are evident in these equations, and we
achieve second-order accuracy for the truncation error in both equations:
n−1
Ru 2 =O(∆t2), Rvn=O(∆t2).
B.5 Wave equations
B.5.1 Linear wave equation in 1D
The standard, linear wave equation in 1D for a function u(x, t) reads
∂2u=c2∂2u+f(x,t), x∈(0,L), t∈(0,T], (B.68) ∂t2 ∂x2
m22
(B.23)-(B.24). These results lead to
1 n−1
u′(t 1)+ u′′′(t 1)∆t2 +O(∆t4)=v (t 1)+Ru e n−2 24 e n−2 e n−2
and
ve′(tn)= 1(F(tn)−β|ve(tn)|ve(tn)+O(∆t2)−s(un))+Rvn.
B.5 Wave equations 523
where c is the constant wave velocity of the physical medium in [0, L]. The equation can also be more compactly written as
utt=c2uxx+f, x∈(0,L),t∈(0,T], (B.69) Centered, second-order finite differences are a natural choice for discretiz-
ing the derivatives, leading to
[DtDtu=c2DxDxu+f]ni . (B.70)
Inserting the exact solution ue(x, t) in (B.70) makes this function fulfill the equation if we add the term R:
[DtDtue = c2DxDxue + f + R]ni (B.71) Our purpose is to calculate the truncation error R. From (B.17)-(B.18)
we have that
[DtDtue]ni = ue,tt(xi, tn) + 1 ue,tttt(xi, tn)∆t2 + O(∆t4), 12
when we use a notation taking into account that ue is a function of two variables and that derivatives must be partial derivatives. The notation ue,tt means ∂2ue/∂t2.
The same formula may also be applied to the x-derivative term: [DxDxue]ni = ue,xx(xi, tn) + 1 ue,xxxx(xi, tn)∆x2 + O(∆x4),
12 Equation (B.71) now becomes
ue,tt+ 1ue,tttt(xi,tn)∆t2=c2ue,xx+c2 1ue,xxxx(xi,tn)∆x2+f(xi,tn)+ 12 12
O(∆t4, ∆x4) + Rin .
Because ue fulfills the partial differential equation (PDE) (B.69), the
first, third, and fifth term cancel out, and we are left with
Rin = 1 ue,tttt(xi, tn)∆t2 − c2 1 ue,xxxx(xi, tn)∆x2 + O(∆t4, ∆x4),
(B.72) showing that the scheme (B.70) is of second order in the time and space
mesh spacing.
12 12
524 B Truncation error analysis
B.5.2 Finding correction terms
Can we add correction terms to the PDE and increase the order of Rin in (B.72)? The starting point is
[DtDtue = c2DxDxue + f + C + R]ni (B.73) From the previous analysis we simply get (B.72) again, but now with C:
Rin + Cin = 1 ue,tttt(xi, tn)∆t2 − c2 1 ue,xxxx(xi, tn)∆x2 + O(∆t4, ∆x4) .
12 12
The idea is to let Cin cancel the ∆t2 and ∆x2 terms to make Rin =
O(∆t4, ∆x4):
Cin = 1 ue,tttt(xi, tn)∆t2 − c2 1 ue,xxxx(xi, tn)∆x2 .
(B.74)
12 12 Essentially, it means that we add a new term
C = 1 utttt∆t2 − c2uxxxx∆x2 , 12
to the right-hand side of the PDE. We must either discretize these 4th-order derivatives directly or rewrite them in terms of lower-order derivatives with the aid of the PDE. The latter approach is more feasible. From the PDE we have the operator equality
∂2 ∂t2
∂2 = c2 ,
so
∂x2
uxxxx = c−2uttxx .
utttt = c2uxxtt,
Assuming u is smooth enough, so that uxxtt = uttxx, these relations lead
to
C = 1 ((c2∆t2 − ∆x2)uxx)tt . 12
A natural discretization is
Cin = 1 ((c2∆t2 − ∆x2)[DxDxDtDtu]ni . 12
Writing out [DxDxDtDtu]ni as [DxDx(DtDtu)]ni gives
B.5 Wave equations
525
1 un+1−2un i+1 i+1
+un−1
i+1 −2
∆t2
∆x2
un+1 −2un +un−1 un+1 −2un +un−1
i i i + i−1 i−1 i−1 ∆x2 ∆x2
Now the unknown values un+1, un+1, and un+1 are coupled, and we must i+1 i i−1
solve a tridiagonal system to find them. This is in principle straightfor- ward, but it results in an implicit finite difference schemes, while we had a convenient explicit scheme without the correction terms.
B.5.3 Extension to variable coefficients
Now we address the variable coefficient version of the linear 1D wave equation,
∂2u ∂ ∂u ∂t2 = ∂x λ(x)∂x ,
or written more compactly as
utt = (λux)x . (B.75)
The discrete counterpart to this equation, using arithmetic mean for λ and centered differences, reads
[DtDtu = DxλxDxu]ni . (B.76) The truncation error is the residual R in the equation
[DtDtue = DxλxDxue + R]ni . (B.77)
The difficulty with (B.77) is how to compute the truncation error of the term [DxλxDxue]ni .
We start by writing out the outer operator:
xn1xnxn
[Dxλ Dxue]i = [λ Dxue]i+ 1 − [λ Dxue]i− 1 . (B.78)
∆x2 2 With the aid of (B.5)-(B.6) and (B.21)-(B.22) we have
526 B Truncation error analysis
[Dxue]ni+ 1 = ue,x(xi+ 1 , tn) + 1 ue,xxx(xi+ 1 , tn)∆x2 + O(∆x4), 2 2 24 2
[λx]i+1 =λ(xi+1)+1λ′′(xi+1)∆x2+O(∆x4), 2282
[λxDxue]ni+1 =(λ(xi+1)+1λ′′(xi+1)∆x2+O(∆x4))× 2282
(ue,x(xi+1,tn)+ 1ue,xxx(xi+1,tn)∆x2+O(∆x4)) 2 24 2
= λ(xi+ 1 )ue,x(xi+ 1 , tn) + λ(xi+ 1 ) 1 ue,xxx(xi+ 1 , tn)∆x2+ 2 2 2242
ue,x(xi+1 )1λ′′(xi+1 )∆x2 + O(∆x4) 282
= [λue,x]ni+ 1 + Gni+ 1 ∆x2 + O(∆x4), 22
where we have introduced the short form
Gni+1 =(1ue,xxx(xi+1,tn)λ((xi+1)+ue,x(xi+1,tn)1λ′′(xi+1))∆x2.
2242 2 282 Similarly, we find that
[λxDxue]ni− 1 = [λue,x]ni− 1 + Gni− 1 ∆x2 + O(∆x4) . 222
Inserting these expressions in the outer operator (B.78) results in [DxλxDxue]ni = 1 ([λxDxue]ni+ 1 − [λxDxue]ni− 1 )
∆x2 2
= 1 ([λue,x]ni+ 1 + Gni+ 1 ∆x2 − [λue,x]ni− 1 − Gni− 1 ∆x2 + O(∆x4))
∆x22 22 =[Dxλue,x]ni +[DxG]ni∆x2+O(∆x4).
The reason for O(∆x4) in the remainder is that there are coefficients in front of this term, say H∆x4, and the subtraction and division by ∆x results in [DxH]ni ∆x4.
We can now use (B.5)-(B.6) to express the Dx operator in [Dxλue,x]ni as a derivative and a truncation error:
[Dxλue,x]ni = ∂ λ(xi)ue,x(xi, tn) + 1 (λue,x)xxx(xi, tn)∆x2 + O(∆x4) . ∂x 24
Expressions like [DxG]ni ∆x2 can be treated in an identical way,
B.5 Wave equations 527
[DxG]ni ∆x2 = Gx(xi, tn)∆x2 + 1 Gxxx(xi, tn)∆x4 + O(∆x4) . 24
There will be a number of terms with the ∆x2 factor. We lump these now into O(∆x2). The result of the truncation error analysis of the spatial derivative is therefore summarized as
[DxλxDxue]ni = ∂ λ(xi)ue,x(xi, tn) + O(∆x2) . ∂x
After having treated the [DtDtue]ni term as well, we achieve Rin = O(∆x2) + 1 ue,tttt(xi, tn)∆t2 .
12
The main conclusion is that the scheme is of second-order in time and space also in this variable coefficient case. The key ingredients for second order are the centered differences and the arithmetic mean for λ: all
those building blocks feature second-order accuracy.
B.5.4 1D wave equation on a staggered mesh B.5.5 Linear wave equation in 2D/3D
The two-dimensional extension of (B.68) takes the form
∂2u ∂t2
∂2u ∂x2
∂2u ∂y2
= c2
where now c(x, y) is the constant wave velocity of the physical medium
+
+f(x,y,t), (x,y) ∈ (0,L)×(0,H), t ∈ (0,T], (B.79)
[0, L] × [0, H]. In the compact notation, the PDE (B.79) can be written utt =c2(uxx +uyy)+f(x,y,t), (x,y)∈(0,L)×(0,H), t∈(0,T],
(B.80)
in 2D, while the 3D version reads
utt =c2(uxx +uyy +uzz)+f(x,y,z,t), (B.81) for (x, y, z) ∈ (0, L) × (0, H) × (0, B) and t ∈ (0, T ].
528 B Truncation error analysis
Approximating the second-order derivatives by the standard formulas (B.17)-(B.18) yields the scheme
[DtDtu = c2(DxDxu + DyDyu) + f]ni,j,k . (B.82) The truncation error is found from
[DtDtue = c2(DxDxue + DyDyue) + f + R]n . (B.83)
The calculations from the 1D case can be repeated to the terms in the y and z directions. Collecting terms that fulfill the PDE, we end up with
∆x2 + u ∆z2]n + e,zzzz i,j,k
(B.84)
Rn = [ 1 u ∆t2 − c2 1 u ∆x2 + u
i,j,k 12 e,tttt 12 e,xxxx O(∆t4, ∆x4, ∆y4, ∆z4) .
e,yyyy
B.6 Diffusion equations
B.6.1 Linear diffusion equation in 1D
The standard, linear, 1D diffusion equation takes the form ∂u=α∂2u+f(x,t), x∈(0,L), t∈(0,T], (B.85)
∂t ∂x2
where α > 0 is the constant diffusion coefficient. A more compact form of the diffusion equation is ut = αuxx + f .
The spatial derivative in the diffusion equation, αuxx, is commonly discretized as [DxDxu]ni . The time-derivative, however, can be treated by a variety of methods.
The Forward Euler scheme in time. Let us start with the simple Forward Euler scheme:
[ D t+ u = α D x D x u + f ] n .
The truncation error arises as the residual R when inserting the exact
solution ue in the discrete equations:
[Dt+ue = αDxDxue + f + R]ni .
B.6 Diffusion equations 529
Now, using (B.11)-(B.12) and (B.17)-(B.18), we can transform the differ- ence operators to derivatives:
ue,t(xi, tn) + 1ue,tt(tn)∆t + O(∆t2) = αue,xx(xi, tn)+ 2
αue,xxxx(xi,tn)∆x2 +O(∆x4)+f(xi,tn)+Rin. 12
The terms ue,t(xi,tn)−αue,xx(xi,tn)−f(xi,tn) vanish because ue solves the PDE. The truncation error then becomes
Rin = 1ue,tt(tn)∆t+O(∆t2)− αue,xxxx(xi,tn)∆x2 +O(∆x4). 2 12
The Crank-Nicolson scheme in time. The Crank-Nicolson method consists of using a centered difference for ut and an arithmetic average of the uxx term:
n+1 1 n+1 [Dtu] 2 = α ([DxDxu]ni + [DxDxu]n+1 + f 2
.
n+1 1 n+1 n+1 [Dtue] 2 = α ([DxDxue]ni + [DxDxue]n+1) + f 2 + R 2
i2ii The equation for the truncation error is
.
i2 iii
To find the truncation error, we start by expressing the arithmetic average
in terms of values at time tn+ 1 . According to (B.21)-(B.22), 2
1 n+11 n+1
([DxDxue]ni +[DxDxue]n+1) = [DxDxue] 2 + [DxDxue,tt] 2 ∆t2+O(∆t4) .
2ii8i
With (B.17)-(B.18) we can express the difference operator DxDxu in
terms of a derivative:
n+1 1
[DxDxue] 2 = ue,xx(xi, t 1 ) + ue,xxxx(xi, t 1 )∆x2 + O(∆x4) . i n+2 12 n+2
The error term from the arithmetic mean is similarly expanded,
1 n+1 1
[DxDxue,tt] 2 ∆t2 = ue,ttxx(xi, t 1 )∆t2 + O(∆t2∆x2) 8 i 8 n+2
530
B Truncation error analysis
The time derivative is analyzed using (B.5)-(B.6): n+1 1
[Dtu] 2 = ue,t(xi, t 1 ) + ue,ttt(xi, t 1 )∆t2 + O(∆t4) . i n+2 24 n+2
Summing up all the contributions and notifying that ue,t (xi , tn+ 1 ) = αue,xx (xi , tn+ 1 ) + f (xi , tn+ 1 ),
222
the truncation error is given by
n+11 1
R 2 = ue,xx(xi, t 1 )∆t2 + ue,xxxx(xi, t 1 )∆x2+
i 8 n+2 12 n+2
1 ue,ttt(xi, tn+ 1 )∆t2 + +O(∆x4) + O(∆t4) + O(∆t2∆x2)
24 2
B.6.2 Nonlinear diffusion equation in 1D
We address the PDE
∂u ∂ ∂u ∂t=∂x α(u)∂x +f(u),
with two potentially nonlinear coefficients q(u) and α(u). We use a Backward Euler scheme with arithmetic mean for α(u),
[D−u=Dxα(u)xDxu+f(u)]ni . Inserting ue defines the truncation error R:
[D−ue = Dxα(ue)xDxue + f(ue)]ni .
The most computationally challenging part is the variable coefficient with α(u), but we can use the same setup as in Section B.5.3 and arrive at a truncation error O(∆x2) for the x-derivative term. The nonlinear term [f(ue)] =ni = f(ue(xi,tn)) matches x and t derivatives of ue in the PDE. We end up with
1 ∂2
Rin =−2∂t2ue(xi,tn)∆t+O(∆x2).
B.7 Exercises 531
B.7 Exercises
Exercise B.1: Truncation error of a weighted mean
Derive the truncation error of the weighted mean in (B.19)-(B.20). Hint. Expand un+1 and un around t .
e e n+θ Filename: trunc_weighted_mean.
Exercise B.2: Simulate the error of a weighted mean
We consider the weighted mean
u (t )≈θun+1 +(1−θ)un.
enee
Choose some specific function for ue(t) and compute the error in this approximation for a sequence of decreasing ∆t = tn+1 − tn and for θ = 0, 0.25, 0.5, 0.75, 1. Assuming that the error equals C ∆tr , for some constants C and r, compute r for the two smallest ∆t values for each choice of θ and compare with the truncation error (B.19)-(B.20). Filename: trunc_theta_avg.
Exercise B.3: Verify a truncation error formula
Set up a numerical experiment as explained in Section B.3.5 for verifying the formulas (B.15)-(B.16). Filename: trunc_backward_2level.
Problem B.4: Truncation error of the Backward Euler scheme
Derive the truncation error of the Backward Euler scheme for the decay ODE u′ = −au with constant a. Extend the analysis to cover the variable- coefficient case u′ = −a(t)u + b(t). Filename: trunc_decay_BE.
Exercise B.5: Empirical estimation of truncation errors
Use the ideas and tools from Section B.3.5 to estimate the rate of the truncation error of the Backward Euler and Crank-Nicolson schemes applied to the exponential decay model u′ = −au, u(0) = I.
532 B Truncation error analysis
Hint. In the Backward Euler scheme, the truncation error can be esti-
mated at mesh points n = 1, . . . , N , while the truncation error must be
estimated at midpoints tn+ 1 , n = 0, . . . , N − 1 for the Crank-Nicolson 2
scheme. The truncation_error(dt, N) function to be supplied to the estimate function needs to carefully implement these details and return the right t array such that t[i] is the time point corresponding to the quantities R[i] and R_a[i].
Filename: trunc_decay_BNCN.
Exercise B.6: Correction term for a Backward Euler scheme
Consider the model u′ = −au, u(0) = I. Use the ideas of Section B.3.6 to add a correction term to the ODE such that the Backward Euler scheme applied to the perturbed ODE problem is of second order in ∆t. Find the amplification factor. Filename: trunc_decay_BE_corr.
Problem B.7: Verify the effect of correction terms
Make a program that solves u′ = −au, u(0) = I, by the θ-rule and computes convergence rates. Adjust a such that it incorporates correction terms. Run the program to verify that the error from the Forward and Backward Euler schemes with perturbed a is O(∆t2), while the error arising from the Crank-Nicolson scheme with perturbed a is O(∆t4). Filename: trunc_decay_corr_verify.
Problem B.8: Truncation error of the Crank-Nicolson scheme
The variable-coefficient ODE u′ = −a(t)u + b(t) can be discretized in
two different ways by the Crank-Nicolson scheme, depending on whether
we use averages for a and b or compute them at the midpoint tn+ 1 : 2
[D u = −aut + b]n+ 1 , (B.86) t2
[Du=−au+bt]n+1 . (B.87) t2
Compute the truncation error in both cases. Filename: trunc_decay_CN_vc.
B.7 Exercises 533
Problem B.9: Truncation error of u′ = f (u, t) Consider the general nonlinear first-order scalar ODE
u′(t) = f(u(t), t) .
Show that the truncation error in the Forward Euler scheme,
[Dt+u = f(u,t)]n, and in the Backward Euler scheme,
[Dt−u = f(u,t)]n,
both are of first order, regardless of what f is.
Showing the order of the truncation error in the Crank-Nicolson
scheme,
is somewhat more involved: Taylor expand un, un+1, f(un,t ), and
f(un+1,t ) around t 1 , and use that e n+1 n+2
df = ∂ f u ′ + ∂ f . dt ∂u ∂t
Check that the derived truncation error is consistent with previous results for the case f (u, t) = −au. Filename: trunc_nonlinear_ODE.
Exercise B.10: Truncation error of [DtDtu]n
Derive the truncation error of the finite difference approximation (B.17)-
(B.18) to the second-order derivative. Filename: trunc_d2u.
Exercise B.11: Investigate the impact of approximating u′(0)
Section B.4.1 describes two ways of discretizing the initial condition u′(0) = V for a vibration model u′′ + ω2u = 0: a centered difference [D2tu = V ]0 or a forward difference [Dt+u = V ]0. The program vib_ undamped.py solves u′′ + ω2u = 0 with [D2tu = 0]0 and features a function convergence_rates for computing the order of the error in the numerical solution. Modify this program such that it applies the forward difference [Dt+u = 0]0 and report how this simpler and more
[D u = f(u,t)]n+1 , t2
eeen
534 B Truncation error analysis
convenient approximation impacts the overall convergence rate of the scheme. Filename: trunc_vib_ic_fw.
Problem B.12: Investigate the accuracy of a simplified scheme
Consider the ODE
mu′′ +β|u′|u′ +s(u)=F(t).
The term |u′|u′ quickly gives rise to nonlinearities and complicates the scheme. Why not simply apply a backward difference to this term such that it only involves known values? That is, we propose to solve
[mDtDtu + β|Dt−u|Dt−u + s(u) = F ]n .
Drop the absolute value for simplicity and find the truncation error of the scheme. Perform numerical experiments with the scheme and compared with the one based on centered differences. Can you illustrate the accuracy loss visually in real computations, or is the asymptotic analysis here mainly of theoretical interest? Filename: trunc_vib_bw_damping.
C.1 A 1D wave equation simulator C.1.1 Mathematical model
Let ut, utt, ux, uxx denote derivatives of u with respect to the sub- script, i.e., utt is a second-order time derivative and ux is a first-order space derivative. The initial-boundary value problem implemented in the wave1D_dn_vc.py code is
utt =(q(x)ux)x +f(x,t), x∈(0,L), t∈(0,T] u(x,0) = I(x), x ∈ [0,L] ut(x,0)=V(t), x∈[0,L] u(0,t) = U0(t) or ux(0,t) = 0, t ∈ (0,T] u(L,t) = UL(t) or ux(L,t) = 0, t ∈ (0,T]
(C.1) (C.2) (C.3) (C.4) (C.5)
We allow variable wave velocity c2(x) = q(x), and Dirichlet or homoge- neous Neumann conditions at the boundaries.
C.1.2 Numerical discretization
The PDE is discretized by second-order finite differences in time and space, with arithmetic mean for the variable coefficient
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
Software engineering; wave equation model
C
536 C Software engineering; wave equation model
[DtDtu=DxqxDxu+f]ni . (C.6) The Neumann boundary conditions are discretized by
[ D 2 x u ] ni = 0 ,
at a boundary point i. The details of how the numerical scheme is worked
out are described in Sections 2.6 and 2.7. C.1.3 A solver function
The general initial-boundary value problem (C.1)-(C.5) solved by finite difference methods can be implemented as shown in the following solver function (taken from the file wave1D_dn_vc.py). This function builds on simpler versions described in Sections 2.3, 2.4 2.6, and 2.7. There are several quite advanced constructs that will be commented upon later. The code is lengthy, but that is because we provide a lot of flexibility with respect to input arguments, boundary conditions, and optimization
(scalar versus vectorized loops).
def solver(
I, V, f, c, U_0, U_L, L, dt, C, T,
user_action=None, version=’scalar’,
stability_safety_factor=1.0):
“””Solve u_tt=(c^2*u_x)_x + f on (0,L)x(0,T].”””
# — Compute time and space mesh —
Nt = int(round(T/dt))
t = np.linspace(0, Nt*dt, Nt+1) # Mesh points in time
# Find max(c) using a fake mesh and adapt dx to C and dt
if isinstance(c, (float,int)):
c_max = c
elif callable(c):
c_max = max([c(x_) for x_ in np.linspace(0, L, 101)])
dx = dt*c_max/(stability_safety_factor*C)
Nx = int(round(L/dx))
x = np.linspace(0, L, Nx+1) # Mesh points in space
# Make sure dx and dt are compatible with x and t
dx = x[1] – x[0]
dt = t[1] – t[0]
# Make c(x) available as array
if isinstance(c, (float,int)):
c = np.zeros(x.shape) + c
elif callable(c):
# Call c(x) and fill array c
c_ = np.zeros(x.shape)
C.1 A 1D wave equation simulator 537
for i in range(Nx+1):
c_[i] = c(x[i])
c = c_ q = c**2
C2 = (dt/dx)**2; dt2 = dt*dt # Help variables in the scheme
# — Wrap user-given f, I, V, U_0, U_L if None or 0 —
if f is None or f == 0:
f = (lambda x, t: 0) if version == ’scalar’ else \
lambda x, t: np.zeros(x.shape)
if I is None or I == 0:
I = (lambda x: 0) if version == ’scalar’ else \
lambda x: np.zeros(x.shape)
if V is None or V == 0:
V = (lambda x: 0) if version == ’scalar’ else \
lambda x: np.zeros(x.shape)
if U_0 is not None:
if isinstance(U_0, (float,int)) and U_0 == 0:
U_0 = lambda t: 0
if U_L is not None:
if isinstance(U_L, (float,int)) and U_L == 0:
U_L = lambda t: 0
# — Make hash of all input data —
import hashlib, inspect
data = inspect.getsource(I) + ’_’ + inspect.getsource(V) + \
’_’ + inspect.getsource(f) + ’_’ + str(c) + ’_’ + \
(’None’ if U_0 is None else inspect.getsource(U_0)) + \
(’None’ if U_L is None else inspect.getsource(U_L)) + \
’_’ + str(L) + str(dt) + ’_’ + str(C) + ’_’ + str(T) + \
’_’ + str(stability_safety_factor)
hashed_input = hashlib.sha1(data).hexdigest()
if os.path.isfile(’.’ + hashed_input + ’_archive.npz’):
# Simulation is already run
return -1, hashed_input
# — Allocate memomry for solutions —
u = np.zeros(Nx+1)
u_n = np.zeros(Nx+1)
u_nm1 = np.zeros(Nx+1)
# Solution array at new time level
# Solution at 1 time level back
# Solution at 2 time levels back
import time; t0 = time.clock() # CPU time measurement
# — Valid indices for space and time mesh —
Ix = range(0, Nx+1)
It = range(0, Nt+1)
# — Load initial condition into u_n —
for i in range(0,Nx+1):
u_n[i] = I(x[i])
if user_action is not None:
user_action(u_n, x, t, 0)
538 C Software engineering; wave equation model
# — Special formula for the first step —
for i in Ix[1:-1]:
u[i] = u_n[i] + dt*V(x[i]) + \
0.5*C2*(0.5*(q[i] + q[i+1])*(u_n[i+1] – u_n[i]) – \
0.5*(q[i] + q[i-1])*(u_n[i] – u_n[i-1])) + \
0.5*dt2*f(x[i], t[0])
i = Ix[0]
if U_0 is None:
# Set boundary values (x=0: i-1 -> i+1 since u[i-1]=u[i+1] # when du/dn = 0, on x=L: i+1 -> i-1 since u[i+1]=u[i-1]) ip1 = i+1
im1=ip1 #i-1->i+1
u[i] = u_n[i] + dt*V(x[i]) + \
0.5*C2*(0.5*(q[i] + q[ip1])*(u_n[ip1] – u_n[i]) – \
0.5*(q[i] + q[im1])*(u_n[i] – u_n[im1])) + \
0.5*dt2*f(x[i], t[0])
else:
u[i] = U_0(dt)
i = Ix[-1]
if U_L is None:
im1 = i-1
ip1=im1 #i+1->i-1
u[i] = u_n[i] + dt*V(x[i]) + \
0.5*C2*(0.5*(q[i] + q[ip1])*(u_n[ip1] – u_n[i]) – \
0.5*(q[i] + q[im1])*(u_n[i] – u_n[im1])) + \
0.5*dt2*f(x[i], t[0])
else:
u[i] = U_L(dt)
if user_action is not None:
user_action(u, x, t, 1)
# Update data structures for next step
#u_nm1[:] = u_n; u_n[:] = u # safe, but slower
u_nm1, u_n, u = u_n, u, u_nm1
# — Time loop —
for n in It[1:-1]:
# Update all inner points
if version == ’scalar’:
for i in Ix[1:-1]:
u[i] = – u_nm1[i] + 2*u_n[i] + \
C2*(0.5*(q[i] + q[i+1])*(u_n[i+1] – u_n[i]) – \
0.5*(q[i] + q[i-1])*(u_n[i] – u_n[i-1])) + \
dt2*f(x[i], t[n])
elif version == ’vectorized’:
u[1:-1] = – u_nm1[1:-1] + 2*u_n[1:-1] + \
C2*(0.5*(q[1:-1] + q[2:])*(u_n[2:] – u_n[1:-1]) –
0.5*(q[1:-1] + q[:-2])*(u_n[1:-1] – u_n[:-2])) + \
dt2*f(x[1:-1], t[n])
C.2 Saving large arrays in files 539
else:
raise ValueError(’version=%s’ % version)
# Insert boundary conditions
i = Ix[0]
if U_0 is None:
# Set boundary values
# x=0: i-1 -> i+1 since u[i-1]=u[i+1] when du/dn=0
# x=L: i+1 -> i-1 since u[i+1]=u[i-1] when du/dn=0
ip1 = i+1
im1 = ip1
u[i] = – u_nm1[i] + 2*u_n[i] + \
C2*(0.5*(q[i] + q[ip1])*(u_n[ip1] – u_n[i]) – \
0.5*(q[i] + q[im1])*(u_n[i] – u_n[im1])) + \
dt2*f(x[i], t[n])
else:
u[i] = U_0(t[n+1])
i = Ix[-1]
if U_L is None:
im1 = i-1
ip1 = im1
u[i] = – u_nm1[i] + 2*u_n[i] + \
C2*(0.5*(q[i] + q[ip1])*(u_n[ip1] – u_n[i]) – \
0.5*(q[i] + q[im1])*(u_n[i] – u_n[im1])) + \
dt2*f(x[i], t[n])
else:
u[i] = U_L(t[n+1])
if user_action is not None:
if user_action(u, x, t, n+1):
break
# Update data structures for next step
u_nm1, u_n, u = u_n, u, u_nm1
cpu_time = time.clock() – t0
return cpu_time, hashed_input
C.2 Saving large arrays in files
Numerical simulations produce large arrays as results and the software needs to store these arrays on disk. Several methods are available in Python. We recommend to use tailored solutions for large arrays and not standard file storage tools such as pickle (cPickle for speed in Python version 2) and shelve, because the tailored solutions have been optimized for array data and are hence much faster than the standard tools.
540 C Software engineering; wave equation model
C.2.1 Using savez to store arrays in files
Storing individual arrays. The numpy.storez function can store a set of arrays to a named file in a zip archive. An associated func- tion numpy.load can be used to read the file later. Basically, we call numpy.storez(filename, **kwargs), where kwargs is a dictionary containing array names as keys and the corresponding array objects as values. Very often, the solution at a time point is given a natural name where the name of the variable and the time level counter are combined, e.g., u11 or v39. Suppose n is the time level counter and we have two solution arrays, u and v, that we want to save to a zip archive. The appropriate code is
Since the name of the array must be given as a keyword argument to savez, and the name must be constructed as shown, it becomes a little tricky to do the call, but with a dictionary kwargs and **kwargs, which sends each key-value pair as individual keyword arguments, the task gets accomplished.
Merging zip archives. Each separate call to np.savez creates a new file (zip archive) with extension .npz. It is very convenient to collect all results in one archive instead. This can be done by merging all the individual .npz files into a single zip archive:
import numpy as np
u_name = ’u%04d’ % n # array name
v_name = ’v%04d’ % n # array name
kwargs = {u_name: u, v_name: v} # keyword args for savez
fname = ’.mydata%04d.dat’ % n
np.savez(fname, **kwargs)
if n == 0: # store x once
np.savez(’.mydata_x.dat’, x=x)
def merge_zip_archives(individual_archives, archive_name):
“””
Merge individual zip archives made with numpy.savez into
one archive with name archive_name.
The individual archives can be given as a list of names
or as a Unix wild chard filename expression for glob.glob.
The result of this function is that all the individual
archives are deleted and the new single archive made.
“””
import zipfile
archive = zipfile.ZipFile(
archive_name, ’w’, zipfile.ZIP_DEFLATED,
allowZip64=True)
if isinstance(individual_archives, (list,tuple)):
filenames = individual_archives
elif isinstance(individual_archives, str):
C.2 Saving large arrays in files 541
filenames = glob.glob(individual_archives)
# Open each archive and write to the common archive
for filename in filenames:
f = zipfile.ZipFile(filename, ’r’,
zipfile.ZIP_DEFLATED)
for name in f.namelist():
data = f.open(name, ’r’)
# Save under name without .npy
archive.writestr(name[:-4], data.read())
f.close()
os.remove(filename)
archive.close()
Here we remark that savez automatically adds the .npz extension to the names of the arrays we store. We do not want this extension in the final archive.
Reading arrays from zip archives. Archives created by savez or the merged archive we describe above with name of the form myarchive.npz, can be conveniently read by the numpy.load function:
C.2.2 Using joblib to store arrays in files
The Python package joblib has nice functionality for efficient storage of arrays on disk. The following class applies this functionality so that one can save an array, or in fact any Python data structure (e.g., a dictionary of arrays), to disk under a certain name. Later, we can retrieve the object by use of its name. The name of the directory under which the arrays are stored by joblib can be given by the user.
import numpy as np
array_names = np.load(‘myarchive.npz‘)
for array_name in array_names:
# array_names[array_name] is the array itself
# e.g. plot(array_names[’t’], array_names[array_name])
class Storage(object):
“””
Store large data structures (e.g. numpy arrays) efficiently
using joblib.
Use:
>>> from Storage import Storage
>>> storage = Storage(cachedir=’tmp_u01’, verbose=1)
>>> import numpy as np
>>> a = np.linspace(0, 1, 100000) # large array
542 C Software engineering; wave equation model
>>> b = np.linspace(0, 1, 100000) # large array
>>> storage.save(’a’, a)
>>> storage.save(’b’, b)
>>> # later
>>> a = storage.retrieve(’a’)
>>> b = storage.retrieve(’b’)
“””
def __init__(self, cachedir=’tmp’, verbose=1):
“””
Parameters
———-
cachedir: str
Name of directory where objects are stored in files.
verbose: bool, int
Let joblib and this class speak when storing files
to disk. “””
import joblib
self.memory = joblib.Memory(cachedir=cachedir,
verbose=verbose)
self.verbose = verbose
self.retrieve = self.memory.cache(
self.retrieve, ignore=[’data’])
self.save = self.retrieve
def retrieve(self, name, data=None):
if self.verbose > 0:
print ’joblib save of’, name
return data
The retrive and save functions, which do the work, seem quite magic. The idea is that joblib looks at the name parameter and saves the return value data to disk if the name parameter has not been used in a previous call. Otherwise, if name is already registered, joblib fetches the data object from file and returns it (this is example of a memoize function, see Section ??in [11]).
C.2.3 Using a hash to create a file or directory name
Array storage techniques like those outlined in Sections C.2.2 and C.2.1 demand the user to assign a name for the file(s) or directory where the solution is to be stored. Ideally, this name should reflect parameters in the problem such that one can recognize an already run simulation. One technique is to make a hash string out of the input data. A hash string is a 40-character long hexadecimal string that uniquely reflects another potentially much longer string. (You may be used to hash strings from
C.2 Saving large arrays in files 543
the Git version control system: every committed version of the files in Git is recognized by a hash string.)
Suppose you have some input data in the form of functions, numpy arrays, and other objects. To turn these input data into a string, we may grab the source code of the functions, use a very efficient hash method for potentially large arrays, and simply convert all other objects via str to a string representation. The final string, merging all input data, is then converted to an SHA1 hash string such that we represent the input with a 40-character long string.
def myfunction(func1, func2, array1, array2, obj1, obj2):
# Convert arguments to hash
import inspect, joblib, hashlib
data = (inspect.getsource(func1),
inspect.getsource(func2),
joblib.hash(array1),
joblib.hash(array2),
str(obj1),
str(obj2))
hash_input = hashlib.sha1(data).hexdigest()
It is wise to use joblib.hash and not try to do a str(array1), since that string can be very long, and joblib.hash is more efficient than hashlib when turning these data into a hash.
Remark: turning function objects into their source code is unreliable!
The idea of turning a function object into a string via its source code may look smart, but is not a completely reliable solution. Suppose we have some function
x0 = 0.1
f = lambda x: 0 if x <= x0 else 1
The source code will be f = lambda x: 0 if x <= x0 else 1, so if the calling code changes the value of x0 (which f remembers - it is a closure), the source remains unchanged, the hash is the same, and the change in input data is unnoticed. Consequently, the technique above must be used with care. The user can always just remove the stored files in disk and thereby force a recomputation (provided the software applies a hash to test if a zip archive or
joblib subdirectory exists, and if so, avoids recomputation).
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C.3 Software for the 1D wave equation
We use numpy.storez to store the solution at each time level on disk. Such actions must be taken care of outside the solver function, more precisely in the user_action function that is called at every time level.
We have, in the wave1D_dn_vc.py code, implemented the user_action callback function as a class PlotAndStoreSolution with a __call__(self, x, t, t, n) method for the user_action function. Basically, __call__ stores and plots the solution. The storage makes use of the numpy.savez function for saving a set of arrays to a zip archive. Here, in this callback function, we want to save one array, u. Since there will be many such arrays, we introduce the array names
’u%04d’ % n and closely related filenames. The usage of numpy.savez in __call__ goes like this:
For example, if n is 10 and self.filename is tmp, the above call to savez becomes savez(’.tmp_u0010.dat’, u0010=u). The actual file- name becomes .tmp_u0010.dat.npz. The actual array name becomes u0010.npy.
Each savez call results in a file, so after the simulation we have one file per time level. Each file produced by savez is a zip archive. It makes sense to merge all the files into one. This is done in the close_file method in the PlotAndStoreSolution class. The code goes as follows.
from numpy import savez
name = ’u%04d’ % n # array name
kwargs = {name: u} # keyword args for savez
fname = ’.’ + self.filename + ’_’ + name + ’.dat’
self.t.append(t[n]) # store corresponding time value
savez(fname, **kwargs)
if n == 0: # store x once
savez(’.’ + self.filename + ’_x.dat’, x=x)
class PlotAndStoreSolution:
...
def close_file(self, hashed_input):
"""
Merge all files from savez calls into one archive.
hashed_input is a string reflecting input data
for this simulation (made by solver).
"""
if self.filename is not None:
# Save all the time points where solutions are saved
savez(’.’ + self.filename + ’_t.dat’,
t=array(self.t, dtype=float))
# Merge all savez files to one zip archive
archive_name = ’.’ + hashed_input + ’_archive.npz’
C.3 Software for the 1D wave equation 545
filenames = glob.glob(’.’ + self.filename + ’*.dat.npz’)
merge_zip_archives(filenames, archive_name)
We use various ZipFile functionality to extract the content of the indi- vidual files (each with name filename) and write it to the merged archive (archive). There is only one array in each individual file (filename) so strictly speaking, there is no need for the loop for name in f.namelist() (as f.namelist() returns a list of length 1). How- ever, in other applications where we compute more arrays at each time level, savez will store all these and then there is need for iterating over f.namelist().
Instead of merging the archives written by savez we could make an alternative implementation that writes all our arrays into one archive. This is the subject of Exercise C.9.
C.3.1 Making hash strings from input data
The hashed_input argument, used to name the resulting archive file with all solutions, is supposed to be a hash reflecting all import parame- ters in the problem such that this simulation has a unique name. The hashed_input string is made in the solver function, using the hashlib and inspect modules, based on the arguments to solver:
# Make hash of all input data
import hashlib, inspect
data = inspect.getsource(I) + ’_’ + inspect.getsource(V) + \
’_’ + inspect.getsource(f) + ’_’ + str(c) + ’_’ + \
(’None’ if U_0 is None else inspect.getsource(U_0)) + \
(’None’ if U_L is None else inspect.getsource(U_L)) + \
’_’ + str(L) + str(dt) + ’_’ + str(C) + ’_’ + str(T) + \
’_’ + str(stability_safety_factor)
hashed_input = hashlib.sha1(data).hexdigest()
To get the source code of a function f as a string, we use inspect.getsource(f). All input, functions as well as variables, is then merged to a string data, and then hashlib.sha1 makes a unique, much shorter (40 characters long), fixed-length string out of data that we can use in the archive filename.
Remark
Note that the construction of the data string is not fool proof: if, e.g., I is a formula with parameters and the parameters change, the
546 C Software engineering; wave equation model
source code is still the same and data and hence the hash remains unaltered. The implementation must therefore be used with care!
C.3.2 Avoiding rerunning previously run cases
If the archive file whose name is based on hashed_input already exists, the simulation with the current set of parameters has been done before and one can avoid redoing the work. The solver function returns the CPU time and hashed_input, and a negative CPU time means that no simulation was run. In that case we should not call the close_file method above (otherwise we overwrite the archive with just the self.t array). The typical usage goes like
action = PlotAndStoreSolution(...)
dt = (L/Nx)/C # choose the stability limit with given Nx
cpu, hashed_input = solver(
I=lambda x: ...,
V=0, f=0, c=1, U_0=lambda t: 0, U_L=None, L=1,
dt=dt, C=C, T=T,
user_action=action, version=’vectorized’,
stability_safety_factor=1)
action.make_movie_file()
if cpu > 0: # did we generate new data?
action.close_file(hashed_input)
C.3.3 Verification
Vanishing approximation error. Exact solutions of the numerical equa- tions are always attractive for verification purposes since the software should reproduce such solutions to machine precision. With Dirichlet boundary conditions we can construct a function that is linear in t and quadratic in x that is also an exact solution of the scheme, while with Neumann conditions we are left with testing just a constant solution (see comments in Section 2.6.5).
Convergence rates. A more general method for verification is to check the convergence rates. We must introduce one discretization parameter h and assume an error model E = Chr, where C and r are constants to be determine (i.e., r is the rate that we are interested in). Given two experiments with different resolutions hi and hi−1, we can estimate r by
C.3 Software for the 1D wave equation 547
r = ln(Ei/Ei−1), tp ln(hi hi−1
where Ei is the error corresponding to hi and Ei−1 corresponds to hi−1. Section 2.2.2 explains the details of this type of verification and how we introduce the single discretization parameter h = ∆t = cˆ∆t, for some constant cˆ. To compute the error, we had to rely on a global variable in the user action function. Below is an implementation where we have a more elegant solution in terms of a class: the error variable is not a class attribute and there is no need for a global error (which is always considered as an advantage).
def convergence_rates(
u_exact,
I, V, f, c, U_0, U_L, L,
dt0, num_meshes,
C, T, version=’scalar’,
stability_safety_factor=1.0):
“””
Half the time step and estimate convergence rates for
for num_meshes simulations.
“””
class ComputeError:
def __init__(self, norm_type):
self.error = 0
def __call__(self, u, x, t, n):
“””Store norm of the error in self.E.”””
error = np.abs(u – u_exact(x, t[n])).max()
self.error = max(self.error, error)
E = []
h = [] # dt, solver adjusts dx such that C=dt*c/dx
dt = dt0
for i in range(num_meshes):
error_calculator = ComputeError(’Linf’)
solver(I, V, f, c, U_0, U_L, L, dt, C, T,
user_action=error_calculator,
version=’scalar’,
stability_safety_factor=1.0)
E.append(error_calculator.error)
h.append(dt)
dt /= 2 # halve the time step for next simulation
print ’E:’, E
print ’h:’, h
r = [np.log(E[i]/E[i-1])/np.log(h[i]/h[i-1])
for i in range(1,num_meshes)]
return r
The returned sequence r should converge to 2 since the error anal- ysis in Section 2.10 predicts various error measures to behave like
548 C Software engineering; wave equation model
O(∆t2) + O(∆x2). We can easily run the case with standing waves and the analytical solution u(x, t) = cos( 2π t) sin( 2π x). The call will be
very similar to the one provided in the test_convrate_sincos function in Section 2.3.4, see the file wave1D_dn_vc.py for details.
C.4 Programming the solver with classes
Many who know about class programming prefer to organize their soft- ware in terms of classes. This gives a richer application programming interface (API) since a function solver must have all its input data in terms of arguments, while a class-based solver naturally has a mix of method arguments and user-supplied methods. (Well, to be more precise, our solvers have demanded user_action to be a function provided by the user, so it is possible to mix variables and functions in the input also in a solver function.)
We will create a class Problem to hold the physical parameters of the problem and a class Solver to hold the numerical parameters and the solver function. In addition, it is convenient to collect the arrays that describe the mesh in a special Mesh class and make a class Function for a mesh function (mesh point values and its mesh).
C.4.1 Class Problem
C.4.2 Class Mesh
The Mesh class can be made valid for a space-time mesh in any number of space dimensions. To make the class versatile, the constructor accepts either a tuple/list of number of cells in each spatial dimension or a tuple/list of cell spacings. In addition, we need the size of the hypercube mesh as a tuple/list of 2-tuples with lower and upper limits of the mesh coordinates in each direction. For 1D meshes it is more natural to just write the number of cells or the cell size and not wrap it in a list. We also need the time interval from t0 to T. Giving no spatial discretization information implies a time mesh only, and vice versa. The Mesh class with documentation and a doc test should now be self-explanatory:
LL
import numpy as np
class Mesh(object):
C.4 Programming the solver with classes 549
“””
Holds data structures for a uniform mesh on a hypercube in
space, plus a uniform mesh in time.
======== ==================================================
Argument Explanation
======== ==================================================
L List of 2-lists of min and max coordinates
in each spatial direction.
T Final time in time mesh.
Nt Number of cells in time mesh.
dt Time step. Either Nt or dt must be given.
N List of number of cells in the spatial directions.
d List of cell sizes in the spatial directions.
Either N or d must be given.
======== ==================================================
Users can access all the parameters mentioned above, plus
‘‘x[i]‘‘ and ‘‘t‘‘ for the coordinates in direction ‘‘i‘‘
and the time coordinates, respectively.
Examples:
>>> from UniformFDMesh import Mesh
>>>
>>> # Simple space mesh
>>> m = Mesh(L=[0,1], N=4)
>>> print m.dump()
space: [0,1] N=4 d=0.25
>>>
>>> # Simple time mesh
>>> m = Mesh(T=4, dt=0.5)
>>> print m.dump()
time: [0,4] Nt=8 dt=0.5
>>>
>>> # 2D space mesh
>>> m = Mesh(L=[[0,1], [-1,1]], d=[0.5, 1])
>>> print m.dump()
space: [0,1]x[-1,1] N=2×2 d=0.5,1
>>>
>>> # 2D space mesh and time mesh
>>> m = Mesh(L=[[0,1], [-1,1]], d=[0.5, 1], Nt=10, T=3)
>>> print m.dump()
space: [0,1]x[-1,1] N=2×2 d=0.5,1 time: [0,3] Nt=10 dt=0.3
“””
def __init__(self,
L=None, T=None, t0=0,
N=None, d=None,
Nt=None, dt=None):
if N is None and d is None:
# No spatial mesh
if Nt is None and dt is None:
raise ValueError(
550 C Software engineering; wave equation model
’Mesh constructor: either Nt or dt must be given’)
if T is None:
raise ValueError(
’Mesh constructor: T must be given’)
if Nt is None and dt is None:
if N is None and d is None:
raise ValueError(
’Mesh constructor: either N or d must be given’)
if L is None:
raise ValueError(
’Mesh constructor: L must be given’)
# Allow 1D interface without nested lists with one element
if L is not None and isinstance(L[0], (float,int)):
# Only an interval was given
L = [L]
if N is not None and isinstance(N, (float,int)):
N = [N]
if d is not None and isinstance(d, (float,int)):
d = [d]
# Set all attributes to None
self.x = None
self.t = None
self.Nt = None
self.dt = None
self.N = None
self.d = None
self.t0 = t0
if N is None and d is not None and L is not None:
self.L = L
if len(d) != len(L):
raise ValueError(
’d has different size (no of space dim.) from ’
’L: %d vs %d’, len(d), len(L))
self.d = d
self.N = [int(round(float(self.L[i][1] –
self.L[i][0])/d[i]))
for i in range(len(d))]
if d is None and N is not None and L is not None:
self.L = L
if len(N) != len(L):
raise ValueError(
’N has different size (no of space dim.) from ’
’L: %d vs %d’, len(N), len(L))
self.N = N
self.d = [float(self.L[i][1] – self.L[i][0])/N[i]
for i in range(len(N))]
if Nt is None and dt is not None and T is not None:
self.T = T
self.dt = dt
self.Nt = int(round(T/dt))
C.4 Programming the solver with classes 551
if dt is None and Nt is not None and T is not None:
self.T = T
self.Nt = Nt
self.dt = T/float(Nt)
if self.N is not None:
self.x = [np.linspace(
self.L[i][0], self.L[i][1], self.N[i]+1)
for i in range(len(self.L))]
if Nt is not None:
self.t = np.linspace(self.t0, self.T, self.Nt+1)
def get_num_space_dim(self):
return len(self.d) if self.d is not None else 0
def has_space(self):
return self.d is not None
def has_time(self):
return self.dt is not None
def dump(self):
s = ’’
if self.has_space():
s += ’space: ’ + \
’x’.join([’[%g,%g]’ % (self.L[i][0], self.L[i][1])
for i in range(len(self.L))]) + ’ N=’
s += ’x’.join([str(Ni) for Ni in self.N]) + ’ d=’
s += ’,’.join([str(di) for di in self.d])
if self.has_space() and self.has_time():
s += ’ ’
if self.has_time():
s += ’time: ’ + ’[%g,%g]’ % (self.t0, self.T) + \
’ Nt=%g’ % self.Nt + ’ dt=%g’ % self.dt
return s
We rely on attribute access – not get/set functions!
Java programmers in particular are used to get/set functions in classes to access internal data. In Python, we usually apply direct access of the attribute, such as m.N[i] if m is a Mesh object. A widely used convention is to do this as long as access to an attribute does not require additional code. In that case, one applies a prop- erty construction. The original interface remains the same after a property is introduced (in contrast to Java), so user will not notice a change to properties.
552 C Software engineering; wave equation model
The only argument against direct attribute access in class Mesh is that the attributes are read-only so we could avoid offering a set function. Instead, we rely on the user that she does not assign new values to the attributes.
C.4.3 Class Function
A class Function is handy to hold a mesh and corresponding values for a scalar or vector function over the mesh. Since we may have a time or space mesh, or a combined time and space mesh, with one or more components in the function, some if tests are needed for allocating the right array sizes. To help the user, an indices attribute with the name of the indices in the final array u for the function values is made. The examples in the doc string should explain the functionality.
class Function(object):
“””
A scalar or vector function over a mesh (of class Mesh).
========== ===================================================
Argument Explanation
========== ===================================================
mesh Class Mesh object: spatial and/or temporal mesh.
num_comp Number of components in function (1 for scalar).
space_only True if the function is defined on the space mesh
only (to save space). False if function has values
in space and time.
========== ===================================================
The indexing of ‘‘u‘‘, which holds the mesh point values of the
function, depends on whether we have a space and/or time mesh.
Examples:
>>> from UniformFDMesh import Mesh, Function
>>>
>>> # Simple space mesh
>>> m = Mesh(L=[0,1], N=4)
>>> print m.dump()
space: [0,1] N=4 d=0.25
>>> f = Function(m)
>>> f.indices
[’x0’]
>>> f.u.shape
(5,)
>>> f.u[4] # space point 4
0.0
C.4 Programming the solver with classes 553
>>>
>>> # Simple time mesh for two components
>>> m = Mesh(T=4, dt=0.5)
>>> print m.dump()
time: [0,4] Nt=8 dt=0.5
>>> f = Function(m, num_comp=2)
>>> f.indices
[’time’, ’component’]
>>> f.u.shape
(9, 2)
>>> f.u[3,1] # time point 3, comp=1 (2nd comp.)
0.0
>>>
>>> # 2D space mesh
>>> m = Mesh(L=[[0,1], [-1,1]], d=[0.5, 1])
>>> print m.dump()
space: [0,1]x[-1,1] N=2×2 d=0.5,1
>>> f = Function(m)
>>> f.indices
[’x0’, ’x1’]
>>> f.u.shape
(3, 3)
>>> f.u[1,2] # space point (1,2)
0.0
>>>
>>> # 2D space mesh and time mesh
>>> m = Mesh(L=[[0,1],[-1,1]], d=[0.5,1], Nt=10, T=3)
>>> print m.dump()
space: [0,1]x[-1,1] N=2×2 d=0.5,1 time: [0,3] Nt=10 dt=0.3
>>> f = Function(m, num_comp=2, space_only=False)
>>> f.indices
[’time’, ’x0’, ’x1’, ’component’]
>>> f.u.shape
(11, 3, 3, 2)
>>> f.u[2,1,2,0] # time step 2, space point (1,2), comp=0
0.0
>>> # Function with space data only
>>> f = Function(m, num_comp=1, space_only=True)
>>> f.indices
[’x0’, ’x1’]
>>> f.u.shape
(3, 3)
>>> f.u[1,2] # space point (1,2)
0.0
“””
def __init__(self, mesh, num_comp=1, space_only=True):
self.mesh = mesh
self.num_comp = num_comp
self.indices = []
# Create array(s) to store mesh point values
if (self.mesh.has_space() and not self.mesh.has_time()) or \
(self.mesh.has_space() and self.mesh.has_time() and \
space_only):
554 C Software engineering; wave equation model
# Space mesh only
if num_comp == 1:
self.u = np.zeros(
[self.mesh.N[i] + 1
for i in range(len(self.mesh.N))])
self.indices = [
’x’+str(i) for i in range(len(self.mesh.N))]
else:
self.u = np.zeros(
[self.mesh.N[i] + 1
for i in range(len(self.mesh.N))] +
[num_comp])
self.indices = [
’x’+str(i)
for i in range(len(self.mesh.N))] +\
[’component’]
if not self.mesh.has_space() and self.mesh.has_time():
# Time mesh only
if num_comp == 1:
self.u = np.zeros(self.mesh.Nt+1)
self.indices = [’time’]
else:
# Need num_comp entries per time step
self.u = np.zeros((self.mesh.Nt+1, num_comp))
self.indices = [’time’, ’component’]
if self.mesh.has_space() and self.mesh.has_time() \
and not space_only:
# Space-time mesh
size = [self.mesh.Nt+1] + \
[self.mesh.N[i]+1
for i in range(len(self.mesh.N))]
if num_comp > 1:
self.indices = [’time’] + \
[’x’+str(i)
for i in range(len(self.mesh.N))] +\
[’component’]
size += [num_comp]
else:
self.indices = [’time’] + [’x’+str(i)
for i in range(len(self.mesh.N))]
self.u = np.zeros(size)
C.4.4 Class Solver
With the Mesh and Function classes in place, we can rewrite the solver function, but we put it as a method in class Solver:
C.5 Migrating loops to Cython 555
C.5 Migrating loops to Cython
We now consider the wave2D_u0.py code for solving the 2D linear wave equation with constant wave velocity and homogeneous Dirichlet bound- ary conditions u = 0. We shall in the present chapter extend this code with computational modules written in other languages than Python. This extended version is called wave2D_u0_adv.py.
The wave2D_u0.py file contains a solver function, which calls an advance_* function to advance the numerical scheme one level forward in time. The function advance_scalar applies standard Python loops to implement the scheme, while advance_vectorized performs correspond- ing vectorized arithmetics with array slices. The statements of this solver are explained in Section 2.12, in particular Sections 2.12.1 and 2.12.2.
Although vectorization can bring down the CPU time dramatically compared with scalar code, there is still some factor 5-10 to win in these types of applications by implementing the finite difference scheme in compiled code, typically in Fortran, C, or C++. This can quite easily be done by adding a little extra code to our program. Cython is an extension of Python that offers the easiest way to nail our Python loops in the scalar code down to machine code and achieve the efficiency of C.
Cython can be viewed as an extended Python language where vari- ables are declared with types and where functions are marked to be implemented in C. Migrating Python code to Cython is done by copying the desired code segments to functions (or classes) and placing them in one or more separate files with extension .pyx.
C.5.1 Declaring variables and annotating the code
Our starting point is the plain advance_scalar function for a scalar
implementation of the updating algorithm for new values un+1: i,j
def advance_scalar(u, u_n, u_nm1, f, x, y, t, n, Cx2, Cy2, dt2,
V=None, step1=False):
Ix = range(0, u.shape[0]); Iy = range(0, u.shape[1])
if step1:
dt = sqrt(dt2) # save
Cx2 = 0.5*Cx2; Cy2 = 0.5*Cy2; dt2 = 0.5*dt2 # redefine D1=1; D2=0
else:
D1=2; D2=1
for i in Ix[1:-1]:
for j in Iy[1:-1]:
556 C Software engineering; wave equation model
u_xx = u_n[i-1,j] – 2*u_n[i,j] + u_n[i+1,j]
u_yy = u_n[i,j-1] – 2*u_n[i,j] + u_n[i,j+1]
u[i,j] = D1*u_n[i,j] – D2*u_nm1[i,j] + \
Cx2*u_xx + Cy2*u_yy + dt2*f(x[i], y[j], t[n])
if step1:
u[i,j] += dt*V(x[i], y[j])
# Boundary condition u=0
j = Iy[0]
for i in Ix: u[i,j] = 0
j = Iy[-1]
for i in Ix: u[i,j] = 0
i = Ix[0]
for j in Iy: u[i,j] = 0
i = Ix[-1]
for j in Iy: u[i,j] = 0
return u
We simply take a copy of this function and put it in a file wave2D_u0_loop_cy.pyx. The relevant Cython implementation arises from declaring variables with types and adding some important anno- tations to speed up array computing in Cython. Let us first list the complete code in the .pyx file:
import numpy as np
cimport numpy as np
cimport cython
ctypedef np.float64_t DT # data type
@cython.boundscheck(False) # turn off array bounds check
@cython.wraparound(False) # turn off negative indices (u[-1,-1])
cpdef advance(
np.ndarray[DT, ndim=2, mode=’c’] u,
np.ndarray[DT, ndim=2, mode=’c’] u_n,
np.ndarray[DT, ndim=2, mode=’c’] u_nm1,
np.ndarray[DT, ndim=2, mode=’c’] f,
double Cx2, double Cy2, double dt2):
cdef:
int Ix_start = 0
int Iy_start = 0
int Ix_end = u.shape[0]-1
int Iy_end = u.shape[1]-1
int i, j
double u_xx, u_yy
for i in range(Ix_start+1, Ix_end):
for j in range(Iy_start+1, Iy_end):
u_xx = u_n[i-1,j] – 2*u_n[i,j] + u_n[i+1,j]
u_yy = u_n[i,j-1] – 2*u_n[i,j] + u_n[i,j+1]
u[i,j] = 2*u_n[i,j] – u_nm1[i,j] + \
Cx2*u_xx + Cy2*u_yy + dt2*f[i,j]
# Boundary condition u=0
C.5 Migrating loops to Cython 557
j = Iy_start
for i in range(Ix_start, Ix_end+1): u[i,j] = 0
j = Iy_end
for i in range(Ix_start, Ix_end+1): u[i,j] = 0
i = Ix_start
for j in range(Iy_start, Iy_end+1): u[i,j] = 0
i = Ix_end
for j in range(Iy_start, Iy_end+1): u[i,j] = 0
return u
This example may act as a recipe on how to transform array-intensive code with loops into Cython.
1. Variables are declared with types: for example, double v in the argument list instead of just v, and cdef double v for a variable v in the body of the function. A Python float object is declared as double for translation to C by Cython, while an int object is declared by int.
2. Arrays need a comprehensive type declaration involving
•the type np.ndarray,
•the data type of the elements, here 64-bit floats, abbreviated as
DT through ctypedef np.float64_t DT (instead of DT we could use the full name of the data type: np.float64_t, which is a Cython-defined type),
•the dimensions of the array, here ndim=2 and ndim=1, •specification of contiguous memory for the array (mode=’c’).
3. Functions declared with cpdef are translated to C but are also acces- sible from Python.
4. In addition to the standard numpy import we also need a special Cython import of numpy: cimport numpy as np, to appear after the standard import.
5. By default, array indices are checked to be within their legal limits. To speed up the code one should turn off this feature for a specific function by placing @cython.boundscheck(False) above the function header.
6. Also by default, array indices can be negative (counting from the end), but this feature has a performance penalty and is therefore here turned off by writing @cython.wraparound(False) right above the function header.
7. The use of index sets Ix and Iy in the scalar code cannot be success- fully translated to C. One reason is that constructions like Ix[1:-1] involve negative indices, and these are now turned off. Another rea- son is that Cython loops must take the form for i in xrange or
558
C Software engineering; wave equation model
for i in range for being translated into efficient C loops. We have therefore introduced Ix_start as Ix[0] and Ix_end as Ix[-1] to hold the start and end of the values of index i. Similar variables are introduced for the j index. A loop for i in Ix is with these new variables written as for i in range(Ix_start, Ix_end+1).
Array declaration syntax in Cython
We have used the syntax np.ndarray[DT, ndim=2, mode=’c’] to declare numpy arrays in Cython. There is a simpler, alternative syntax, employing typed memory views, where the declaration looks like double [:,:]. However, the full support for this functionality is not yet ready, and in this text we use the full array declaration syntax.
C.5.2 Visual inspection of the C translation
Cython can visually explain how successfully it translated a code from Python to C. The command
Terminal> cython -a wave2D_u0_loop_cy.pyx
produces an HTML file wave2D_u0_loop_cy.html, which can be loaded into a web browser to illustrate which lines of the code that have been translated to C. Figure C.1 shows the illustrated code. Yellow lines indicate the lines that Cython did not manage to translate to efficient C code and that remain in Python. For the present code we see that Cython is able to translate all the loops with array computing to C, which is our primary goal.
You can also inspect the generated C code directly, as it appears in the file wave2D_u0_loop_cy.c. Nevertheless, understanding this C code requires some familiarity with writing Python extension modules in C by hand. Deep down in the file we can see in detail how the compute- intensive statements have been translated into some complex C code that is quite different from what a human would write (at least if a direct correspondence to the mathematical notation was intended).
Terminal
C.5 Migrating loops to Cython 559
Fig. C.1 Visual illustration of Cython’s ability to translate Python to C.
C.5.3 Building the extension module
Cython code must be translated to C, compiled, and linked to form what is known in the Python world as a C extension module. This is usually done by making a setup.py script, which is the standard way of building and installing Python software. For an extension module arising from Cython code, the following setup.py script is all we need to build and install the module:
from distutils.core import setup
from distutils.extension import Extension
from Cython.Distutils import build_ext
cymodule = ’wave2D_u0_loop_cy’
setup(
name=cymodule
ext_modules=[Extension(cymodule, [cymodule + ’.pyx’],)],
cmdclass={’build_ext’: build_ext},
)
We run the script by
Terminal> python setup.py build_ext –inplace
The –inplace option makes the extension module available in the current directory as the file wave2D_u0_loop_cy.so. This file acts as a normal Python module that can be imported and inspected:
Terminal
>>> import wave2D_u0_loop_cy
>>> dir(wave2D_u0_loop_cy)
[’__builtins__’, ’__doc__’, ’__file__’, ’__name__’,
560 C Software engineering; wave equation model
’__package__’, ’__test__’, ’advance’, ’np’]
The important output from the dir function is our Cython function advance (the module also features the imported numpy module under the name np as well as many standard Python objects with double underscores in their names).
The setup.py file makes use of the distutils package in Python and Cython’s extension of this package. These tools know how Python was built on the computer and will use compatible compiler(s) and options when building other code in Cython, C, or C++. Quite some experience with building large program systems is needed to do the build process manually, so using a setup.py script is strongly recommended.
Simplified build of a Cython module
When there is no need to link the C code with special libraries, Cython offers a shortcut for generating and importing the extension module:
import pyximport; pyximport.install()
This makes the setup.py script redundant. However, in the wave2D_u0_adv.py code we do not use pyximport and require an explicit build process of this and many other modules.
C.5.4 Calling the Cython function from Python
The wave2D_u0_loop_cy module contains our advance function, which we now may call from the Python program for the wave equation:
Efficiency. For a mesh consisting of 120 × 120 cells, the scalar Python code require 1370 CPU time units, the vectorized version requires 5.5, while the Cython version requires only 1! For a smaller mesh with 60 × 60 cells Cython is about 1000 times faster than the scalar Python code, and the vectorized version is about 6 times slower than the Cython version.
import wave2D_u0_loop_cy
advance = wave2D_u0_loop_cy.advance
…
for n in It[1:-1]: # time loop
f_a[:,:] = f(xv, yv, t[n]) # precompute, size as u
u = advance(u, u_n, u_nm1, f_a, x, y, t, Cx2, Cy2, dt2)
C.6 Migrating loops to Fortran 561
C.6 Migrating loops to Fortran
Instead of relying on Cython’s (excellent) ability to translate Python to C, we can invoke a compiled language directly and write the loops ourselves. Let us start with Fortran 77, because this is a language with more convenient array handling than C (or plain C++), because we can use the same multi-dimensional indices in the Fortran code as in the numpy arrays in the Python code, while in C these arrays are one- dimensional and requires us to reduce multi-dimensional indices to a single index.
C.6.1 The Fortran subroutine
We write a Fortran subroutine advance in a file wave2D_u0_loop_f77.f for implementing the updating formula (2.117) and setting the solution to zero at the boundaries:
subroutine advance(u, u_n, u_nm1, f, Cx2, Cy2, dt2, Nx, Ny)
integer Nx, Ny
real*8 u(0:Nx,0:Ny), u_n(0:Nx,0:Ny), u_nm1(0:Nx,0:Ny)
real*8 f(0:Nx,0:Ny), Cx2, Cy2, dt2
integer i, j
real*8 u_xx, u_yy
Cf2py intent(in, out) u
C
C
Scheme at interior points
do j = 1, Ny-1
&
dt2*f(i,j)
end do
do i = 1, Nx-1
u_xx = u_n(i-1,j) – 2*u_n(i,j) + u_n(i+1,j)
u_yy = u_n(i,j-1) – 2*u_n(i,j) + u_n(i,j+1)
u(i,j) = 2*u_n(i,j) – u_nm1(i,j) + Cx2*u_xx + Cy2*u_yy +
end do
Boundary conditions
j=0
do i = 0, Nx
u(i,j) = 0
end do
j = Ny
do i = 0, Nx
u(i,j) = 0
end do
i=0
do j = 0, Ny
u(i,j) = 0
562 C Software engineering; wave equation model
end do
i = Nx
do j = 0, Ny
u(i,j) = 0
end do
return end
This code is plain Fortran 77, except for the special Cf2py comment line, which here specifies that u is both an input argument and an object to be returned from the advance routine. Or more precisely, Fortran is not able return an array from a function, but we need a wrapper code in C for the Fortran subroutine to enable calling it from Python, and from this wrapper code one can return u to the calling Python code.
Tip: Return all computed objects to the calling code
It is not strictly necessary to return u to the calling Python code since the advance function will modify the elements of u, but the convention in Python is to get all output from a function as returned values. That is, the right way of calling the above Fortran subroutine from Python is
u = advance(u, u_n, u_nm1, f, Cx2, Cy2, dt2)
The less encouraged style, which works and resembles the way the
Fortran subroutine is called from Fortran, reads
advance(u, u_n, u_nm1, f, Cx2, Cy2, dt2)
C.6.2 Building the Fortran module with f2py
The nice feature of writing loops in Fortran is that, without much effort, the tool f2py can produce a C extension module such that we can call the Fortran version of advance from Python. The necessary commands to run are
Terminal> f2py -m wave2D_u0_loop_f77 -h wave2D_u0_loop_f77.pyf \
–overwrite-signature wave2D_u0_loop_f77.f
Terminal> f2py -c wave2D_u0_loop_f77.pyf –build-dir build_f77 \
-DF2PY_REPORT_ON_ARRAY_COPY=1 wave2D_u0_loop_f77.f
Terminal
C.6 Migrating loops to Fortran 563
The first command asks f2py to interpret the Fortran code and make a Fortran 90 specification of the extension module in the file wave2D_u0_loop_f77.pyf. The second command makes f2py generate all necessary wrapper code, compile our Fortran file and the wrapper code, and finally build the module. The build process takes place in the specified subdirectory build_f77 so that files can be inspected if something goes wrong. The option -DF2PY_REPORT_ON_ARRAY_COPY=1 makes f2py write a message for every array that is copied in the commu- nication between Fortran and Python, which is very useful for avoiding unnecessary array copying (see below). The name of the module file is wave2D_u0_loop_f77.so, and this file can be imported and inspected as any other Python module:
>>> import wave2D_u0_loop_f77
>>> dir(wave2D_u0_loop_f77)
[’__doc__’, ’__file__’, ’__name__’, ’__package__’,
’__version__’, ’advance’]
>>> print wave2D_u0_loop_f77.__doc__
This module ’wave2D_u0_loop_f77’ is auto-generated with f2py….
Functions:
u = advance(u,u_n,u_nm1,f,cx2,cy2,dt2,
nx=(shape(u,0)-1),ny=(shape(u,1)-1))
Examine the doc strings!
Printing the doc strings of the module and its functions is extremely important after having created a module with f2py. The reason is that f2py makes Python interfaces to the Fortran functions that are different from how the functions are declared in the Fortran code (!). The rationale for this behavior is that f2py creates Pythonic interfaces such that Fortran routines can be called in the same way as one calls Python functions. Output data from Python functions is always returned to the calling code, but this is technically impossible in Fortran. Also, arrays in Python are passed to Python functions without their dimensions because that information is packed with the array data in the array objects. This is not possible in Fortran, however. Therefore, f2py removes array dimensions from the ar- gument list, and f2py makes it possible to return objects back to Python.
564 C Software engineering; wave equation model
Let us follow the advice of examining the doc strings and take a close look at the documentation f2py has generated for our Fortran advance subroutine:
>>> print wave2D_u0_loop_f77.advance.__doc__
This module ’wave2D_u0_loop_f77’ is auto-generated with f2py
Functions:
u = advance(u,u_n,u_nm1,f,cx2,cy2,dt2,
nx=(shape(u,0)-1),ny=(shape(u,1)-1))
.
advance – Function signature:
u = advance(u,u_n,u_nm1,f,cx2,cy2,dt2,[nx,ny])
Required arguments:
u : input rank-2 array(’d’) with bounds (nx + 1,ny + 1)
u_n : input rank-2 array(’d’) with bounds (nx + 1,ny + 1)
u_nm1 : input rank-2 array(’d’) with bounds (nx + 1,ny + 1)
f : input rank-2 array(’d’) with bounds (nx + 1,ny + 1)
cx2 : input float
cy2 : input float
dt2 : input float
Optional arguments:
nx := (shape(u,0)-1) input int
ny := (shape(u,1)-1) input int
Return objects:
u : rank-2 array(’d’) with bounds (nx + 1,ny + 1)
Here we see that the nx and ny parameters declared in Fortran are optional arguments that can be omitted when calling advance from Python.
We strongly recommend to print out the documentation of every Fortran function to be called from Python and make sure the call syntax is exactly as listed in the documentation.
C.6.3 How to avoid array copying
Multi-dimensional arrays are stored as a stream of numbers in memory. For a two-dimensional array consisting of rows and columns there are two ways of creating such a stream: row-major ordering, which means that rows are stored consecutively in memory, or column-major ordering, which means that the columns are stored one after each other. All programming languages inherited from C, including Python, apply the row-major ordering, but Fortran uses column-major storage. Thinking of a two-dimensional array in Python or C as a matrix, it means that Fortran works with the transposed matrix.
Fortunately, f2py creates extra code so that accessing u(i,j) in the Fortran subroutine corresponds to the element u[i,j] in the underlying
C.6 Migrating loops to Fortran 565
numpy array (without the extra code, u(i,j) in Fortran would access u[j,i] in the numpy array). Technically, f2py takes a copy of our numpy array and reorders the data before sending the array to Fortran. Such copying can be costly. For 2D wave simulations on a 60 × 60 grid the overhead of copying is a factor of 5, which means that almost the whole performance gain of Fortran over vectorized numpy code is lost!
To avoid having f2py to copy arrays with C storage to the correspond- ing Fortran storage, we declare the arrays with Fortran storage:
In the compile and build step of using f2py, it is recommended to add an extra option for making f2py report on array copying:
Terminal> f2py -c wave2D_u0_loop_f77.pyf –build-dir build_f77 \
-DF2PY_REPORT_ON_ARRAY_COPY=1 wave2D_u0_loop_f77.f
It can sometimes be a challenge to track down which array that causes a copying. There are two principal reasons for copying array data: either the array does not have Fortran storage or the element types do not match those declared in the Fortran code. The latter cause is usually effectively eliminated by using real*8 data in the Fortran code and float64 (the default float type in numpy) in the arrays on the Python side. The former reason is more common, and to check whether an array before a Fortran call has the right storage one can print the result of isfortran(a), which is True if the array a has Fortran storage.
Let us look at an example where we face problems with array storage. A typical problem in the wave2D_u0.py code is to set
f_a = f(xv, yv, t[n])
before the call to the Fortran advance routine. This computation creates a new array with C storage. An undesired copy of f_a will be produced when sending f_a to a Fortran routine. There are two remedies, either direct insertion of data in an array with Fortran storage,
or remaking the f(xv, yv, t[n]) array,
f_a = asarray(f(xv, yv, t[n]), order=’Fortran’)
order = ’Fortran’ if version == ’f77’ else ’C’
u = zeros((Nx+1,Ny+1), order=order)
u_n = zeros((Nx+1,Ny+1), order=order)
u_nm1 = zeros((Nx+1,Ny+1), order=order)
# solution array
# solution at t-dt
# solution at t-2*dt
Terminal
f_a = zeros((Nx+1, Ny+1), order=’Fortran’)
…
f_a[:,:] = f(xv, yv, t[n])
566 C Software engineering; wave equation model
The former remedy is most efficient if the asarray operation is to be performed a large number of times.
Efficiency. The efficiency of this Fortran code is very similar to the Cython code. There is usually nothing more to gain, from a computational efficiency point of view, by implementing the complete Python program in Fortran or C. That will just be a lot more code for all administering work that is needed in scientific software, especially if we extend our sample program wave2D_u0.py to handle a real scientific problem. Then only a small portion will consist of loops with intensive array calculations. These can be migrated to Cython or Fortran as explained, while the rest of the programming can be more conveniently done in Python.
C.7 Migrating loops to C via Cython
The computationally intensive loops can alternatively be implemented in C code. Just as Fortran calls for care regarding the storage of two- dimensional arrays, working with two-dimensional arrays in C is a bit tricky. The reason is that numpy arrays are viewed as one-dimensional arrays when transferred to C, while C programmers will think of u, u_n, and u_nm1 as two dimensional arrays and index them like u[i][j]. The C code must declare u as double* u and translate an index pair [i][j] to a corresponding single index when u is viewed as one-dimensional. This translation requires knowledge of how the numbers in u are stored in memory.
C.7.1 Translating index pairs to single indices
Two-dimensional numpy arrays with the default C storage are stored row by row. In general, multi-dimensional arrays with C storage are stored such that the last index has the fastest variation, then the next last index, and so on, ending up with the slowest variation in the first index. For a two-dimensional u declared as zeros((Nx+1,Ny+1)) in Python, the individual elements are stored in the following order:
Viewing u as one-dimensional, the index pair (i, j) translates to i(Ny + 1)+j. So, where a C programmer would naturally write an index u[i][j],
u[0,0], u[0,1], u[0,2], …, u[0,Ny], u[1,0], u[1,1], …,
u[1,Ny], u[2,0], …, u[Nx,0], u[Nx,1], …, u[Nx, Ny]
C.7 Migrating loops to C via Cython 567
the indexing must read u[i*(Ny+1) + j]. This is tedious to write, so it can be handy to define a C macro,
#define idx(i,j) (i)*(Ny+1) + j
so that we can write u[idx(i,j)], which reads much better and is easier to debug.
Be careful with macro definitions
Macros just perform simple text substitutions: idx(hello,world) is expanded to (hello)*(Ny+1) + world. The parenthesis in (i) are essential – using the natural mathematical formula i*(Ny+1) + j in the macro definition, idx(i-1,j) would expand to i-1*(Ny+1)
+ j, which is the wrong formula. Macros are handy, but requires careful use. In C++, inline functions are safer and replace the need for macros.
C.7.2 The complete C code
The C version of our function advance can be coded as follows.
#define idx(i,j) (i)*(Ny+1) + j
void advance(double* u, double* u_n, double* u_nm1, double* f,
double Cx2, double Cy2, double dt2, int Nx, int Ny)
{
int i, j;
double u_xx, u_yy;
/* Scheme at interior points */
for (i=1; i<=Nx-1; i++) {
for (j=1; j<=Ny-1; j++) {
u_xx = u_n[idx(i-1,j)] - 2*u_n[idx(i,j)] + u_n[idx(i+1,j)];
u_yy = u_n[idx(i,j-1)] - 2*u_n[idx(i,j)] + u_n[idx(i,j+1)];
u[idx(i,j)] = 2*u_n[idx(i,j)] - u_nm1[idx(i,j)] +
Cx2*u_xx + Cy2*u_yy + dt2*f[idx(i,j)];
} }
/* Boundary conditions */
j = 0; for (i=0; i<=Nx; i++) u[idx(i,j)] = 0;
j = Ny; for (i=0; i<=Nx; i++) u[idx(i,j)] = 0;
i = 0; for (j=0; j<=Ny; j++) u[idx(i,j)] = 0;
i = Nx; for (j=0; j<=Ny; j++) u[idx(i,j)] = 0;
}
568 C Software engineering; wave equation model
C.7.3 The Cython interface file
All the code above appears in a file wave2D_u0_loop_c.c. We need to compile this file together with C wrapper code such that advance can be called from Python. Cython can be used to generate appropriate wrapper code. The relevant Cython code for interfacing C is placed in a file with extension .pyx. Here this file, called wave2D_u0_loop_c_cy.pyx, looks like
import numpy as np
cimport numpy as np
cimport cython
cdef extern from "wave2D_u0_loop_c.h":
void advance(double* u, double* u_n, double* u_nm1, double* f,
double Cx2, double Cy2, double dt2,
int Nx, int Ny)
@cython.boundscheck(False)
@cython.wraparound(False)
def advance_cwrap(
np.ndarray[double, ndim=2, mode=’c’] u,
np.ndarray[double, ndim=2, mode=’c’] u_n,
np.ndarray[double, ndim=2, mode=’c’] u_nm1,
np.ndarray[double, ndim=2, mode=’c’] f,
double Cx2, double Cy2, double dt2):
advance(&u[0,0], &u_n[0,0], &u_nm1[0,0], &f[0,0],
Cx2, Cy2, dt2,
u.shape[0]-1, u.shape[1]-1)
return u
We first declare the C functions to be interfaced. These must also appear in a C header file, wave2D_u0_loop_c.h,
The next step is to write a Cython function with Python objects as arguments. The name advance is already used for the C function so the function to be called from Python is named advance_cwrap. The contents of this function is simply a call to the advance version in C. To this end, the right information from the Python objects must be passed on as arguments to advance. Arrays are sent with their C pointers to the first element, obtained in Cython as &u[0,0] (the & takes the address of a C variable). The Nx and Ny arguments in advance are easily obtained from the shape of the numpy array u. Finally, u must be returned such that we can set u = advance(...) in Python.
extern void advance(double* u, double* u_n, double* u_nm1, double* f,
double Cx2, double Cy2, double dt2,
int Nx, int Ny);
C.7 Migrating loops to C via Cython 569
C.7.4 Building the extension module
It remains to build the extension module. An appropriate setup.py file is
from distutils.core import setup
from distutils.extension import Extension
from Cython.Distutils import build_ext
sources = [’wave2D_u0_loop_c.c’, ’wave2D_u0_loop_c_cy.pyx’]
module = ’wave2D_u0_loop_c_cy’
setup(
name=module,
ext_modules=[Extension(module, sources,
libraries=[], # C libs to link with
)],
cmdclass={’build_ext’: build_ext},
)
All we need to specify is the .c file(s) and the .pyx interface file. Cython is automatically run to generate the necessary wrapper code. Files are then compiled and linked to an extension module residing in the file wave2D_u0_loop_c_cy.so. Here is a session with running setup.py and examining the resulting module in Python
Terminal> python setup.py build_ext –inplace
Terminal> python
>>> import wave2D_u0_loop_c_cy as m
>>> dir(m)
[’__builtins__’, ’__doc__’, ’__file__’, ’__name__’, ’__package__’,
’__test__’, ’advance_cwrap’, ’np’]
The call to the C version of advance can go like this in Python:
Efficiency. In this example, the C and Fortran code runs at the same speed, and there are no significant differences in the efficiency of the wrapper code. The overhead implied by the wrapper code is negligible as long as there is little numerical work in the advance function, or in other words, that we work with small meshes.
Terminal
import wave2D_u0_loop_c_cy
advance = wave2D_u0_loop_c_cy.advance_cwrap
…
f_a[:,:] = f(xv, yv, t[n])
u = advance(u, u_n, u_nm1, f_a, Cx2, Cy2, dt2)
570 C Software engineering; wave equation model
C.8 Migrating loops to C via f2py
An alternative to using Cython for interfacing C code is to apply f2py. The C code is the same, just the details of specifying how it is to be called from Python differ. The f2py tool requires the call specification to be a Fortran 90 module defined in a .pyf file. This file was automatically generated when we interfaced a Fortran subroutine. With a C function we need to write this module ourselves, or we can use a trick and let f2py generate it for us. The trick consists in writing the signature of the C function with Fortran syntax and place it in a Fortran file, here wave2D_u0_loop_c_f2py_signature.f:
subroutine advance(u, u_n, u_nm1, f, Cx2, Cy2, dt2, Nx, Ny)
Cf2py intent(c) advance
integer Nx, Ny, N
real*8 u(0:Nx,0:Ny), u_n(0:Nx,0:Ny), u_nm1(0:Nx,0:Ny)
real*8 f(0:Nx, 0:Ny), Cx2, Cy2, dt2
Cf2py intent(in, out) u
Cf2py intent(c) u, u_n, u_nm1, f, Cx2, Cy2, dt2, Nx, Ny
return end
Note that we need a special f2py instruction, through a Cf2py comment line, to specify that all the function arguments are C variables. We also need to tell that the function is actually in C: intent(c) advance.
Since f2py is just concerned with the function signature and not the complete contents of the function body, it can easily generate the Fortran 90 module specification based solely on the signature above:
Terminal> f2py -m wave2D_u0_loop_c_f2py \
-h wave2D_u0_loop_c_f2py.pyf –overwrite-signature \
wave2D_u0_loop_c_f2py_signature.f
The compile and build step is as for the Fortran code, except that we list C files instead of Fortran files:
Terminal> f2py -c wave2D_u0_loop_c_f2py.pyf \
–build-dir tmp_build_c \
-DF2PY_REPORT_ON_ARRAY_COPY=1 wave2D_u0_loop_c.c
As when interfacing Fortran code with f2py, we need to print out the doc string to see the exact call syntax from the Python side. This doc string is identical for the C and Fortran versions of advance.
Terminal
Terminal
C.9 Exercises 571
C.8.1 Migrating loops to C++ via f2py
C++ is a much more versatile language than C or Fortran and has over the last two decades become very popular for numerical computing. Many will therefore prefer to migrate compute-intensive Python code to C++. This is, in principle, easy: just write the desired C++ code and use some tool for interfacing it from Python. A tool like SWIG can interpret the C++ code and generate interfaces for a wide range of languages, including Python, Perl, Ruby, and Java. However, SWIG is a comprehensive tool with a correspondingly steep learning curve. Alternative tools, such as Boost Python, SIP, and Shiboken are similarly comprehensive. Simpler tools include PyBindGen.
A technically much easier way of interfacing C++ code is to drop the possibility to use C++ classes directly from Python, but instead make a C interface to the C++ code. The C interface can be handled by f2py as shown in the example with pure C code. Such a solution means that classes in Python and C++ cannot be mixed and that only primitive data types like numbers, strings, and arrays can be transferred between Python and C++. Actually, this is often a very good solution because it forces the C++ code to work on array data, which usually gives faster code than if fancy data structures with classes are used. The arrays coming from Python, and looking like plain C/C++ arrays, can be efficiently wrapped in more user-friendly C++ array classes in the C++ code, if desired.
C.9 Exercises
Exercise C.1: Explore computational efficiency of numpy.sum versus built-in sum
Using the task of computing the sum of the first n integers, we want to compare the efficiency of numpy.sum versus Python’s built-in func- tion sum. Use IPython’s %timeit functionality to time these two func- tions applied to three different arguments: range(n), xrange(n), and arange(n).
Filename: sumn.
572 C Software engineering; wave equation model
Exercise C.2: Make an improved numpy.savez function
The numpy.savez function can save multiple arrays to a zip archive. Unfortunately, if we want to use savez in time-dependent problems and call it multiple times (once per time level), each call leads to a separate zip archive. It is more convenient to have all arrays in one archive, which can be read by numpy.load. Section C.2 provides a recipe for merging all the individual zip archives into one archive. An alternative is to write a new savez function that allows multiple calls and storage into the same archive prior to a final close method to close the archive and make it ready for reading. Implement such an improved savez function as a class Savez.
The class should pass the following unit test:
def test_Savez():
import tempfile, os
tmp = ’tmp_testarchive’
database = Savez(tmp)
for i in range(4):
array = np.linspace(0, 5+i, 3)
kwargs = {’myarray_%02d’ % i: array}
database.savez(**kwargs)
database.close()
database = np.load(tmp+’.npz’)
expected = {
’myarray_00’: np.array([ 0. , 2.5, 5. ]),
’myarray_01’: np.array([ 0., 3., 6.])
’myarray_02’: np.array([ 0. , 3.5, 7. ]),
’myarray_03’: np.array([ 0., 4., 8.]),
}
for name in database:
computed = database[name]
diff = np.abs(expected[name] – computed).max()
assert diff < 1E-13
database.close
os.remove(tmp+’.npz’)
Hint. Study the source code for function savez (or more precisely, function _savez).
Filename: Savez.
Exercise C.3: Visualize the impact of the Courant number
Use the pulse function in the wave1D_dn_vc.py to simulate a pulse through two media with different wave velocities. The aim is to visualize
C.9 Exercises 573
the impact of the Courant number C on the quality of the solution. Set slowness_factor=4 and Nx=100.
Simulate for C = 1, 0.9, 0.75 and make an animation comparing the three curves (use the animate_archives.py program to combine the curves and make animations on the screen and video files). Perform the investigations for different types of initial profiles: a Gaussian pulse, a
“cosine hat” pulse, half a “cosine hat” pulse, and a plug pulse. Filename: pulse1D_Courant.
Exercise C.4: Visualize the impact of the resolution
We solve the same set of problems as in Exercise C.9, except that we now fix C = 1 and instead study the impact of ∆t and ∆x by varying the Nx parameter: 20, 40, 160. Make animations comparing three such curves. Filename: pulse1D_Nx.
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D. Duran. Numerical Methods for Fluid Dynamics - With Applica- tions to Geophysics. Springer, second edition, 2010.
C. A. J. Fletcher. Computational Techniques for Fluid Dynamics,
Vol. 1: Fundamental and General Techniques. Springer, second edition, 2013.
C. Greif and U. M. Ascher. A First Course in Numerical Methods. Computational Science and Engineering. SIAM, 2011.
E. Hairer, S. P. Nørsett, and G. Wanner. Solving Ordinary Differen- tial Equations I. Nonstiff Problems. Springer, 1993.
M. Hjorth-Jensen. Computational Physics. Institute of Physics Publishing, 2016. https://github.com/CompPhysics/ ComputationalPhysics1/raw/gh-pages/doc/Lectures/ lectures2015.pdf.
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H. P. Langtangen. Finite Difference Computing with Exponential Decay Models. Lecture Notes in Computational Science and Engi- neering. Springer, 2016. http://hplgit.github.io/decay-book/
© 2016, Hans Petter Langtangen, Svein Linge. Released under CC Attribution 4.0 license
References
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People, Words and Mathematics. World Scientific, 2011.
3D visualization, 210
alternating mesh, 53
amplification factor, 279 animation, 14
argparse (Python module), 73 ArgumentParser (Python class),
73 arithmetic mean, 162
array computing, 137 array slices, 137 averaging
arithmetic, 162 geometric, 68, 162 harmonic, 162
boundary condition
open (radiation), 177
boundary conditions Dirichlet, 150
Neumann, 150 periodic, 179
C extension module, 559
C/Python array storage, 564 callback function, 125
centered difference, 3
central difference approximation,
249
Cholesky factorization, 336
closure, 131
column-major ordering, 564 conjugate gradient method, 338 continuation method, 461, 485 correction terms, 509
Courant number, 190
Cython, 555
cython -a (Python-C translation
in HTML), 558
decay ODE, 502
declaration of variables in Cython,
557
diffusion coefficient, 247
piecewise constant, 295
non-constant, 293 diffusion equation
1D, 247 577
Index
578
INDEX
2D, 2D, 2D, 2D,
2D,
2D, 2D,
2D,
1D, 1D,
303
banded matrix, 308 implementation, 311
implementation (sparse),
317
numbering of mesh points,
304
sparse matrix, 307 verification (conv. rates), 316
verification (exact num. sol.), 315
boundary condition, 248
Crank-Nicolson scheme,
diffusion limit of random walk, 347 dimensionless number, 249 Dirichlet conditions, 150
discrete Fourier transform, 187 distutils, 559
DOF (degree of freedom), 81 domain, 249
energy estimates (diffusion), 377 energy principle, 41
error
global, 28
Euler-Cromer scheme, 46
explicit discretization methods, 249
finite differences backward, 496
centered, 3, 498
forward, 497
fixed-point iteration, 425
Flash (video format), 14 Fokker-Planck equation, 362 forced vibrations, 67
Fortran array storage, 564
Fortran subroutine, 561
forward difference approximation,
249
forward-backward Euler-Cromer scheme, 46
Fourier series, 187
Fourier transform, 187 fractional step methods, 462 frequency (of oscillations), 2
Gauss-Seidel method, 329 geometric mean, 68, 162 Gnuplot, 210
harmonic average, 162 heat equation, 247
268
discrete equations, 249 explicit scheme, 248
1D,
1D,
1D, Forward Euler scheme, 249 1D, Fourier number, 249
1D, Implementation, 294
1D, implementation (FE), 251 1D, implicit schemes, 263
1D, initial boundary value
problem, 248
1D, initial condition, 248
1D, mesh Fourier number, 249 1D, numerical experiments,
257
1D, theta rule, 270
1D, tridiagonal matrix, 267 1D, verification (BE), 267
1D, verification (CN), 270
1D, verification (FE), 253 implementation, 296 axi-symmetric diffusion, 299 diffusion coefficient, 247 source term, 249 spherically-symmetric diffu-
sion, 302
stationary solution, 247, 295
INDEX
579
homogeneous Dirichlet conditions,
150
homogeneous Neumann conditions,
150
HTML5 video tag, 15
Hz (unit), 2
index set notation, 153, 205
interrupt a program by Ctrl+c, 360 Jacobi method, 322
lambda function (Python), 140 Laplace equation, 247 linearization, 424
explicit time integration, 422 fixed-point iteration, 425 Picard iteration, 425 successive substitutions, 425
LU factorization, 336
making movies, 14 Mayavi, 212
mechanical energy, 41 mechanical vibrations, 2 mesh
finite differences, 2, 112 mesh function, 2, 113, 249 mesh points, 249
MP4 (video format), 14
Neumann conditions, 150 nonlinear restoring force, 67 nonlinear spring, 67
nose, 7, 127
Ogg (video format), 14
open boundary condition, 177 operator splitting, 462 oscillations, 2
parallelism, 137
period (of oscillations), 2
periodic boundary conditions, 179 phase plane plot, 37
Picard iteration, 425 plotslopes.py, 10
Plotter class (SciTools), 360 preconditioning, 339, 379
pytest, 7, 127
radiation condition, 177
random walk, 341
red-black numbering, 332 relaxation, 323
relaxation (nonlinear equations),
430 resonance, 104
Richardson iteration, 379 row-major ordering, 564
scalar code, 137
scitools movie command, 16 scitools.avplotter, 360
seed (random numbers), 346 setup.py, 559
single Picard iteration technique,
426 slice, 137
slope marker (in convergence plots),
10
SOR method, 330
splitting ODEs, 462
stability criterion, 29, 190 staggered Euler-Cromer scheme, 53 staggered mesh, 53
stationary solution, 247
stencil
1D wave equation, 113
Neumann boundary, 150 stochastic difference equation, 361 stochastic ODE, 362 Stoermer-Verlet algorithm, 51
580
INDEX
stopping criteria (nonlinear prob- lems), 426, 442
Strang splitting, 463 successive substitutions, 425 symplectic scheme, 47
test function, 7, 127 truncation error
Backward Euler scheme, 496 correction terms, 509 Crank-Nicolson scheme, 498 Forward Euler scheme, 497 general, 493
table of formulas, 499 unit testing, 7, 127
upwind difference, 394
vectorization, 6, 137, 345 verification, 347, 514
convergence rates, 8 hand calculations, 7 polynomial solution, 127 polynomial solutions, 8
vibration ODE, 2
video formats, 14
visualization of 2D scalar fields, 210
wave equation 1D, 111
1D, analytical properties, 185 1D, exact numerical solution,
189
1D, finite difference method,
112
1D, implementation, 124 1D, stability, 190
2D, implementation, 203
waves
on a string, 111
WebM (video format), 14
Wiener process, 362 wrapper code, 561