Monash University
FIT2094
MOCK EXAM SAMPLE SOLUTIONS
Author: FIT Database Teaching Team
License: Copyright © Monash University, unless otherwise stated. All Rights Reserved.
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PART A Relational Model [Total: 10 Marks]
Q1 [3 Marks]
A company wishes to record the following attributes about their employees: employee ID, department number, name, home address, education qualifications and skills which the employee has.
A small sample of data is show below:
Employee ID
Department Number
Employee Name
Home Address
Qualification
Skill
101
21
Given name: Joe
Family name: Bloggs
Street: 12 Wide Rd Town: Mytown Postcode: 1234
Bachelor of Commerce MBA
Project Management Hadoop
R
102
13
Given name: Wendy Family name: Xiu
Street: 55 Narrow St Town: Mytown Postcode: 1234
Bachelor of Computer Science Master of IT Doctor of Philosophy
SQL PL/SQL
103
13
Given name: Sarah
Family name: Green
Street: 25 High St Rd Town: Mytown Postcode: 1234
Certificate IV in Business Administration
SQL Java Phyton
Use this data to explain the difference between a simple attribute, a composite attribute and a multivalued attribute. Your answer must include examples drawn from this data.
Simple – an attribute which cannot be subdivided eg. employeeid, department number
Composite – an attribute which can be subdivided into additional attributes eg. employee name, home address
Multivalued – an attribute which has many potential values eg. qualification, skill
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Q2 [7 Marks]
The following relations represent a publications database: author (author_id, first_name, last_name)
author_paper (author_id, paper_id, author_position) paper (paper_id, paper_title, journal_id)
journal (journal_id, journal_title, month, year, editor)
* editor in journal references author(author_id) – this is an author acting as the journal editor
Authors write papers which are published in an edition of a journal. Each edition of a journal is assigned a journal id and appoints an editor. A given paper may be authored by several authors, in such cases each author is assigned a position representing their contribution to the paper:
Write the relational algebra for the following queries (your answer must show an understanding of query efficiency):
List of symbols:
project: π, select: σ, join: ⨝, left outer join ⟕, right outer join ⟖, full outer join ⟗, intersect ⋂, union ⋃, minus –
(a) Show the paper title, journal title and month and year of publication for all papers published before 2012 (3 marks)
π paper_title, journal_title, month, year (
(π
⨝
(π
ANSWER1 ANSWER2 ANSWER3 ANSWER4
journal_id, journal_title, month, year (σ year < 2012 (JOURNAL)) journal_id, paper_title(PAPER))
= π journal_id, journal_title, month, year (σ year < 2012 (JOURNAL)) = π journal_id, paper_title(PAPER)
= ANSWER1 ⨝ ANSWER2
= π paper_title, journal_title, month, year (ANSWER3)
) OR
Here ANSWER1 could be done in two steps, a select and then a project.
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(b) Show the names of all authors who have never been listed as first author (author_position = 1) in any paper (4 marks)
π author_fname, author_lname(AUTHOR) - (
π author_fname, author_lname( AUTHOR
⨝
(π author_id (σ author_position = 1 (AUTHOR_PAPER))) )
) OR
ANSWER1 = π author_id (σ author_position = 1 (AUTHOR_PAPER)) ANSWER2 = AUTHOR ⨝ ANSWER1
ANSWER3 = π author_fname, author_lname(ANSWER2) ANSWER4 = π author_fname, author_lname(AUTHOR) - ANSWER3
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PART B Database Design [Total: 20 Marks]
Q3 [20 marks]
Monash Computing Students Society (MCSS) is one of the student clubs at Monash University.
Students are welcome to join as a member. When a student joins MCSS, a member id is assigned, and the students first name, last name, date of birth, email and phone number will be recorded. This club has an annual membership fee. When a member has paid the membership fee for the current year, the current year is recorded against the year of membership as part of their membership details.
MCSS hosts several events throughout the year. The events are currently categorised into Professional Events, General Events, and Social Events. MCSS would like to be able to add further categories as they develop new events. When an event is scheduled, MCSS assigns an event id to the event. The event date and time, description, location, allocated budget, the ticket price and the discount rate (eg 5%) for members. Some events are organised as free events for members. In this situation, the discount rate is recorded as 100% for members. For all events, only members can purchase the tickets. However, members can buy additional tickets for their friends or family at full price. For each of the sales, the receipt number, number of tickets sold, total amount paid and the member id are recorded.
Some events attract some sponsorships. The sponsor may be an organisation or an individual. The sponsors provide financial support to the event. Some events may have several sponsors. The amount of financial support provided by each sponsor is recorded for the event. Each sponsor is identified by a sponsor id. The name, contact email and sponsor type are also recorded. A sponsor may support several events throughout the year.
For some events such as career night, MCSS may also invite some guest speakers to share their experience. The database records all guests’ information, the guests full name, email and phone number are recorded. If a guest comes from an organisation or an individual that provides a sponsorship to any of the MCSS events (does not have to be at the event where the guest speaks), this fact will also be recorded. A guest may be invited to several events.
Create a logical level diagram using Crow’s foot notations to represent the "Monash Computing Students Society" data requirements described above. Clearly state any assumptions you make when creating the model.
Please note the following points:
● Be sure to include all relations, attributes and relationships (unnecessary relationships must not be included)
● Identify clearly the Primary Keys (P) and Foreign Keys (F), as part of your design
● In building your model you must conform to FIT2094 modelling requirements
● The following are NOT required on your diagram
○ verbs/names on relationship lines
○ indicators (*) to show if an attribute is required or not
○ data types for the attributes
NOTE: This question has been designed such that the model will fit on a single A4 page. You are allowed to use blank worksheets to draft your model and then submit your final response on ONE page.
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Monash Computing Students Society (MCSS) Logical Model
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PART C Normalisation [Total: 10 Marks] Q3 [10 marks]
The Super Electronics Invoice shown below displays the details of an invoice for the client Alice Paul.
Client Number: C3178713 Client Name: Alice Paul
Client Address: 43 High Street,
Caulfield, VIC 3162 Client Phone: 0411 245 718
Invoice No.: 132 Invoice Date: 02/11/2018
Super Electronics INVOICE
ItemID
Item Name
Purchase Price
Expected Delivery Date
Quantity
Cost
316772
Soniq S55UV16B 55"
499.00
2 weeks
1
499.00
452550
Microsoft Surface Pro
1198.00
1-3 weeks
1
1198.00
483041
Delonghi Digital Coffee
299.00
Same Day
2
598.00
SUB TOTAL: $ 2295.00
DELIVERY: $145.00
ORDER TOTAL: $2440.00
Represent this form in UNF. In creating your representation you should note that Super Electronics wish to treat the client name and address as simple attributes. Convert your UNF to first normal form (1NF) and then continue the normalisation to third normal form (3NF). At each normal form show the appropriate dependencies for that normal form, if there are none write "No Dependencies"
Do not add new attributes during the normalisation. Clearly write the relations in each step from the unnormalised form (UNF) to the third normal form (3NF). Clearly, indicate primary keys on all relations from 1NF onwards.
[10 marks]
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UNF
INVOICE (invoice_nbr, inv_date, client_number, client_name, client_address, client_phone, (item_id, item_name, item_purchase_price, item_delivery_time, qty_ordered, line_cost) sub_total, delivery_fee, order_total)
ii) Remove repeating groups and identify the primary key for each relation 1NF
INVOICE (invoice_nbr, inv_date, client_number, client_name, client_address, client_phone, sub_total, delivery_fee, order_total)
INVOICE_LINE (invoice_nbr, item_id, item_name, item_purchase_price, item_delivery_time, qty_ordered, line_cost)
Partial Dependencies: item_id -> item_name
iii) Remove partial dependency and identify the primary key for each relation 2NF
INVOICE (invoice_nbr, inv_date, client_number, client_name, client_address, client_phone, sub_total, delivery_fee, order_total)
INVOICE_LINE (invoice_nbr, item_id, item_purchase_price, item_delivery_time, qty_ordered, line_cost)
ITEM (item_id, item_name)
Transitive Dependencies:
client_number -> client_name, client_address, client_phone
iv) Remove transitive dependency and identify the primary key for each relation 3NF
INVOICE (invoice_nbr, inv_date, client_number, sub_total, delivery_fee, order_total) CLIENT (client_number, client_name, client_address, client_phone)
INVOICE_LINE (invoice_nbr, item_id, item_purchase_price, item_delivery_time, qty_ordered, line_cost)
ITEM (item_id, item_name)
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Full Dependencies:
invoice_nbr -> inv_date, client_number, sub_total, delivery_fee, total_cost client_number -> client_name, client_address, client_phone
invoice_nbr, item_id -> item_purchase_price, item_delivery_time, qty_ordered, line_cost item_id -> item_name
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PART D SQL [Total: 40 Marks] Employee System Model and Schema File for Part D
The following relational model depicts an employee system:
Given this model and assuming the tables have been created and populated in an Oracle database, provide the SQL statements for the following questions in Part D.
Note in coding your SQL each SELECT, FROM, WHERE, GROUP BY, HAVING and ORDER BY clause must start on a new line.
The schema file to create these tables is: The schema file to create these tables is: CREATE TABLE SALGRADE (
salgrade NUMBER(2)
sallower NUMBER(6,2)
salupper NUMBER(6,2)
salbonus NUMBER(6,2)
NOT NULL ,
NOT NULL ,
NOT NULL ,
NOT NULL ,
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CONSTRAINT salgrade_pk PRIMARY KEY (salgrade),
CONSTRAINT salgrade_chk1 CHECK (sallower >= 0),
CONSTRAINT salgrade_chk2 CHECK (sallower <= salupper));
COMMENT ON COLUMN salgrade.salgrade IS 'Salary Grade';
COMMENT ON COLUMN salgrade.sallower IS 'Salary Lower Limit';
COMMENT ON COLUMN salgrade.salupper IS 'Salary Upper Limit';
COMMENT ON COLUMN salgrade.salbonus IS 'Salary Bonus';
CREATE TABLE course (
crscode VARCHAR(6)
crsdesc VARCHAR(30)
crscategory CHAR(3)
crsduration NUMBER(2)
NOT NULL ,
CONSTRAINT course_pk PRIMARY KEY (crscode),
NOT NULL ,
NOT NULL ,
NOT NULL ,
CONSTRAINT course_chk1 CHECK (crscode = upper(crscode)),
CONSTRAINT course_chk2 CHECK (crscategory in ('GEN','BLD','DSG')));
COMMENT ON COLUMN course.crscode IS 'Course Code';
COMMENT ON COLUMN course.crsdesc IS 'Course Description';
COMMENT ON COLUMN course.crscategory IS 'Course Category';
COMMENT ON COLUMN course.crsduration IS 'Course Duration';
CREATE TABLE DEPARTMENT (
deptno NUMBER(2) NOT NULL ,
deptname VARCHAR(10) NOT NULL ,
deptlocation VARCHAR(8) NOT NULL ,
empno NUMBER(4) ,
CONSTRAINT department_pk PRIMARY KEY (deptno),
CONSTRAINT department_un UNIQUE (deptname),
CONSTRAINT department_chk1 CHECK (deptname = upper(deptname)),
CONSTRAINT department_chk2 CHECK (deptlocation = upper(deptlocation)));
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COMMENT ON COLUMN department.deptno IS 'Department Number';
COMMENT ON COLUMN department.deptname IS 'Department Name';
COMMENT ON COLUMN department.deptlocation IS 'Location of department';
COMMENT ON COLUMN department.empno
CREATE TABLE EMPLOYEE (
empno NUMBER(4) NOT NULL ,
IS 'Employee who manages department';
empname VARCHAR(8)
empinit VARCHAR(5)
empjob VARCHAR(8)
empbdate DATE NOT NULL ,
empmsal NUMBER(6,2) NOT NULL ,
empcomm NUMBER(6,2) ,
deptno NUMBER(2) ,
mgrno NUMBER(4) ,
CONSTRAINT employee_pk PRIMARY KEY (empno),
CONSTRAINT employee_fk1 FOREIGN KEY (mgrno)
REFERENCES EMPLOYEE (empno),
CONSTRAINT employee_fk2 FOREIGN KEY (deptno)
REFERENCES DEPARTMENT (deptno));
NOT NULL ,
NOT NULL ,
,
COMMENT ON COLUMN employee.empno
COMMENT ON COLUMN employee.empname
COMMENT ON COLUMN employee.empinit
COMMENT ON COLUMN employee.empjob
COMMENT ON COLUMN employee.empbdate IS 'Employee birthdate';
COMMENT ON COLUMN employee.empmsal
COMMENT ON COLUMN employee.empcomm
COMMENT ON COLUMN employee.deptno
COMMENT ON COLUMN employee.mgrno
IS 'Employee monthly salary';
IS 'Employee commission';
IS 'Department Number';
IS 'Employees manager (empno of manager)';
IS 'Employee number';
IS 'Employee name';
IS 'Employee initials';
IS 'Employee job';
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ALTER TABLE DEPARTMENT
ADD (CONSTRAINT department_fk FOREIGN KEY (empno)
REFERENCES employee (empno));
CREATE TABLE HISTORY (
empno NUMBER(4) NOT NULL ,
histbegindate DATE NOT NULL ,
histbeginyear NUMBER(4) NOT NULL ,
histenddate DATE ,
histmsal NUMBER(6,2) NOT NULL ,
histcomments VARCHAR(60) ,
deptno NUMBER(2) NOT NULL
,
CONSTRAINT history_pk PRIMARY KEY (empno, histbegindate),
CONSTRAINT history_chk CHECK (histbegindate < histenddate),
CONSTRAINT history_fk1 FOREIGN KEY (empno)
REFERENCES EMPLOYEE (empno)
ON DELETE CASCADE,
CONSTRAINT history_fk2 FOREIGN KEY (deptno)
REFERENCES DEPARTMENT (deptno));
COMMENT ON COLUMN history.deptno IS 'Department Number';
COMMENT ON COLUMN history.histbegindate IS 'Date history record begins';
COMMENT ON COLUMN history.histbeginyear IS 'Year history record begins';
COMMENT ON COLUMN history.histenddate IS 'Date history record ends';
COMMENT ON COLUMN history.histmsal IS 'Monthly Salary for this history
record';
COMMENT ON COLUMN history.histcomments IS 'Comments for this history record';
COMMENT ON COLUMN history.empno IS 'Employee number';
CREATE TABLE OFFERING (
offbegindate DATE NOT NULL ,
crscode VARCHAR(6) NOT NULL ,
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offlocation VARCHAR(8) ,
empno NUMBER(4) ,
CONSTRAINT offering_pk PRIMARY KEY (offbegindate, crscode),
CONSTRAINT offering_fk1 FOREIGN KEY (crscode)
REFERENCES course(crscode),
CONSTRAINT offering_fk2 FOREIGN KEY (empno)
REFERENCES EMPLOYEE (empno));
COMMENT ON COLUMN offering.offbegindate IS 'Begin date for offering';
COMMENT ON COLUMN offering.crscode IS 'Course Code';
COMMENT ON COLUMN offering.offlocation IS 'Location for offering';
COMMENT ON COLUMN offering.empno
offering';
CREATE TABLE REGISTRATION (
offbegindate DATE NOT NULL ,
crscode VARCHAR(6) NOT NULL ,
empno NUMBER(4) NOT NULL,
regevaluation NUMBER(1) ,
IS 'Employee number for employee running
CONSTRAINT registration_pk PRIMARY KEY (offbegindate, crscode, empno),
CONSTRAINT resgitration_chk CHECK (regevaluation in (1,2,3,4,5)),
CONSTRAINT registration_fk1 FOREIGN KEY (empno)
REFERENCES EMPLOYEE (empno),
CONSTRAINT registration_fk2 FOREIGN KEY (offbegindate, crscode)
REFERENCES OFFERING (offbegindate, crscode));
COMMENT ON COLUMN registration.offbegindate IS 'Begin date for offering';
COMMENT ON COLUMN registration.crscode IS 'Course Code';
COMMENT ON COLUMN registration.regevaluation IS 'Grade for course completed';
COMMENT ON COLUMN registration.empno IS 'Employee number of employee
completing course';
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Q5 [15 marks]
The company needs to record a new department. This new department's number will be 10 higher than the highest current department number and will be called EXAM and is located in BOSTON. The employee named KING who has a job as the only company DIRECTOR has been assigned to manage the new EXAM department.
The company has also decided that they wish to record, for each department, the number of employees currently working in the department (the employee count). For new departments the number of employees in the department should be set to 0. For those departments which currently have employees, the employee count should correctly reflect the current number of employees in the department.
Code the SQL statements to modify the database to meet these requirements.
INSERT INTO department VALUES (
(
SELECT
MAX(deptno)
FROM
department
) + 10,
'EXAM',
'BOSTON',
(
SELECT empno
FROM
employee
WHERE
empname = 'KING'
AND empjob = 'DIRECTOR'
) );
COMMIT;
ALTER TABLE department ADD deptcount NUMBER(3, 0) DEFAULT 0 NOT NULL;
UPDATE department d
SET
deptcount = (
SELECT
COUNT(empno)
FROM
employee e
WHERE
); COMMIT;
e.deptno = d.deptno
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Q6 [10 marks]
(a) Display the course code, course name and duration for all those courses which are from the course category "GEN" or "BLD", order the output with the course with the longest duration first. Where two courses have the same duration, order their output by the course code. (4 marks)
SELECT
crscode,
crsdesc,
crsduration
FROM
course WHERE
crscategory = 'GEN'
OR crscategory = 'BLD'
ORDER BY
crsduration DESC,
crscode;
(b) For each department list the department name, the department location, the name of the manager and the number of employees in that department. The name of the manager must be output in a column called "MANAGERS NAME" and the number of employees must be output in a column called "TOTAL EMPLOYEES". Order the output by the number of employees in the department. (6 marks)
SELECT
deptname,
deptlocation,
e1.empname
COUNT(e2.empno)
AS "MANAGERS NAME",
AS "TOTAL EMPLOYEES"
FROM (
department d
JOIN employee e1
ON d.empno = e1.empno
)
LEFT OUTER JOIN employee e2
ON d.deptno = e2.deptno
GROUP BY
deptname,
deptlocation,
e1.empname
ORDER BY
"TOTAL EMPLOYEES";
Q7 [15 marks]
List ALL employees whose total course registrations are less than the average number of registrations for employees who have registered for a course. Note that some employees may repeat a course, this repeat does not count as a different course. In the list, include the employee
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number, name, date of birth and the number of different courses they have registered for. Order the output by employee number.
SELECT
e.empno,
empname,
to_char(empbdate, 'dd-Mon-yyyy') AS dob,
COUNT(DISTINCT r.crscode) AS crscount
FROM
employee e
LEFT JOIN registration
GROUP BY
e.empno,
empname,
r ON e.empno = r.empno
to_char(empbdate, 'dd-Mon-yyyy')
HAVING
COUNT(DISTINCT r.crscode) < (
SELECT
AVG(COUNT(DISTINCT r.crscode))
FROM
) ORDER BY
employee e
JOIN registration
GROUP BY
r ON e.empno = r.empno
e.empno
e.empno;
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PART E Web Technology [Total: 10 Marks] Q8 [6 marks]
” ;
print $e[‘message’] ;
exit;
} ?>
Explain what the PHP script snippet above is about.
The PHP script shows that the web page connects to the Oracle database using oci_connect function that is provided in oci8 library. The oci_connect function requires details of the database (host, port and sid), username and password as parameters to connect to the database. If the attempt to connect to the host returns errors, the error message will be displayed on the web page.
Q9 [4 marks]
Scenario: your team’s client wants a database app implemented in Microsoft .NET – for licensing reasons, the client said that you CANNOT use Java.
Your colleague Bruce then proposes the use of JDBC for Oracle connectivity, as he thinks it is very suitable for the client.
Do you agree or disagree with Bruce? Provide a full explanation and justification. (Simply saying ‘agree’/’disagree’ without a full explanation = no marks).
<
I disagree with Bruce. Using JDBC to connect to Oracle from a .NET application is not appropriate since JDBC cannot be used directly in .NET application. The application needs JDBC-ODBC bridge which may cause some performance issues and some possible driver-related problems. Instead of using JDBC the team should use ODBC Driver for Oracle.
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PART F Transaction [Total: 10 Marks] Q10. [ 5 marks]
Given two transactions:
T1 – R(X), W(X)
T2 – R(Y), W(Y), R(X), W (X)
Where R(X) means Read(X) and W(X) means Write(X).
(a) If we wish to complete both of these transactions, explain the difference between a serial and non-serial ordering of these two transactions. Provide an example of each as part of your answer.
(b) What transaction ACID property does a non-serial ordering of these two transactions potentially violate.
(a)
Serial – all of one transaction followed by all of the other T1 R(X), T1 W(X), T2 R(Y), T2 W(Y), T2 R(X), T2 W(X) Non-Serial – interleaving of the transactions
T1 R(X), T2 R(Y), T2 W(Y), T1 W(X), T2 R(X), T2 W(X)
(b)
Isolation or Consistency
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Q11 [5 marks]
A write through database has five transactions running as listed below (the time is shown horizontally from left to right):
At time tc a checkpoint is taken, at time tf the database fails due to a power outage. Explain for each transaction what recovery operations will be needed when the database is
restarted and why.
T1 – nothing required, committed before checkpoint
T2 – ROLL FORWARD, committed after checkpoint and before fail
T3 – ROLL BACK, never reached commit
T4 – ROLL FORWARD, started after checkpoint committed before fail T5 – ROLL BACK, never reached commit
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