程序代写 IA32: 1, 4, 4, 4 x86-64: 1, 4, 8, 8

Exam 1 Solutions
15-213 / 18-243 Fall 2010

1-b 2-a 3-c 4-b 5-a 6-d 7-b 8-a 9-a 10-a

Copyright By PowCoder代写 加微信 powcoder

13-IA32: 1, 4, 4, 4 x86-64: 1, 4, 8, 8
14-a 15-a 16-a 17-a 18-a 19-elided (ambiguous) 20-a

Value FP bits Rounded value
1 011 00 1 easy normalized, exact (1 pt)
12 110 10 12 normalized exact (1 pt)
11 110 10 12 round up to 12 (because 10 is odd) (1 pt)
1/8 000 10 1/8 denorm, exact (2 pt)
7/32 001 00 1/4 straddles norm/denorm boundary, round up

Version A: H = 15 J = 3
Version B: H = 5 J = 7

abccddddeeeefXXX

There are multiple correct answers. In general, put
the largest data items first. E.g.,

ddddeeeeffffccab

A. . Inky
C. . Blinky

Cases 210, 214, and 218 should have “break”.

0x400590: 0x400470
0x400598: 0x40048a
0x4005a0: 0x40048a
0x4005a8: 0x400477
0x4005b0: 0x40047c
0x4005b8: 0x40048a
0x4005c0: 0x400482
0x4005c8: 0x40048a
0x4005d0: 0x400482
0x4005d8: 0x400487

A. (a) Call pushes the return address on the stack, jmp does not.
(b) Ret gets the return address from the top of the stack.
C. string “0123456” is stored at 0x80484d0
D. buf[0] = 0x33323130
buf[1] = 0x00363534
buf[2] = 0xffffd3e8
buf[3] = 0x080483fc
buf[4] = 0x080484d0
E. Value at %ebp is 0xffffd3e8
F. Value at %esp is 0x080483fc
G. No segfault. “0123456” is only 8 bytes including ‘\0’, and
int[2] can store 8 bytes.

程序代写 CS代考 加微信: powcoder QQ: 1823890830 Email: powcoder@163.com