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I'd like to learn how return to libc attacks work, so I have written a vulnerable program so that I can change the return address of a function to that of system(). However, the program doesn't appear to call system() and exits cleanly.


- I'm using Debain Squeeze

- I have disabled address randomization with:

echo 0 > /proc/sys/kernel/randomize_va_space

Vulnerable Code

#include <stdio.h>

void someFunc(void);

void someFunc(void){
    char buffer[64];


int main(int argc, char **argv)
    return 0;

The code is compiled with:

gcc -fno-stack-protector -ggdb -o vuln vuln.c

Using GDB I have asserted that:

  1. /bin/zsh is @ 0xbffff9b9
  2. system() is @ 0xb7ed0000
  3. exit() is @ 0xb7ec60f0


I exploit it by piping in 72 zeros, exit, system and the pointer to /bin/zsh, in that order:

printf "%072x\xf0\x60\xec\xb7\x00\x00\xed\xb7\xb9\xf9\xff\xbf" | ./vuln

The program doesn't segfault or execute /bin/zsh.


Interestingly, if I change SHELL="/xin/zsh", and execute it in gdb, the system call works:

Cannot exec /xin/zsh

So my questions are:

  1. Have I understood the return to libc attack concept correctly?

  2. Am I piping the malicious code in the correct way and order?

  3. Why does it appear to work in GDB, but not in the shell?
    (I've already read return to libc works in gdb but not when running alone)

share|improve this question
What platform are you on? Maybe you need -O0 to disable inlining? –  Thomas Sep 9 '12 at 15:21
It's debian squeeze x86, running inside a virtualbox. –  Chris Adams Sep 9 '12 at 15:43
what does bt return after the segfault when you run this in gdb? –  zv_ Sep 9 '12 at 20:19
There may be a problem with aligning stack boundaries. Have you tried setting -mpreferred-stack-boundary=2…... this is crucial to get your exploit to work –  asudhak Sep 14 '12 at 15:03

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