Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

As an assignment for a security class, I am trying to use __asm__("jmp 0xbffff994"); in my code, but when I disassemble things in gdb, the instruction is changed to jmp 0xc8047e2a. Any idea why and how can I jump to a particular address?

share|improve this question
2  
Why the heck do you need to jump to a raw address? I'm having a hard time understanding any possible (non-nefarious) use for that. –  kquinn Apr 21 '09 at 23:33
    
What system do you use? –  Liran Orevi Apr 21 '09 at 23:36
4  
@kquinn regardless, his question has been asked, let's try to answer it. –  samoz Apr 21 '09 at 23:41

5 Answers 5

up vote 10 down vote accepted

Probably because it's a jumping to a relative address, and the linker or loader has moved your code. Try putting the address into a variable, and then do:

jmp dword [var]

or alternatively:

push 0xbffff994
ret
share|improve this answer
4  
that is the correct answer, also note that: "mov eax, 0x11223344; jmp eax"; will also work and is likely the most straight forward. –  Evan Teran Apr 21 '09 at 23:45
1  
very true, but he might be using fastcall (I'm not sure of the significance of 0xbffff994). –  Mark Apr 21 '09 at 23:47
    
The PUSH RET combination works! Thank you! –  Martin Apr 21 '09 at 23:50
1  
0xbffff994 likely = a location on the stack on a linux box :-P –  Evan Teran Apr 22 '09 at 0:11

Daniel Explains why your jump is not the same you programmed. It has to do with object files and linking.

if you want to jump to a particular address, it's best to patch the jump using a Debugger or Disassembler.

share|improve this answer

It is hard to determine the exact address upon compile time, have you tried using labels? It is much more common to use them with jmp.

example:

start:
 jmp exit

exit:
 ret
share|improve this answer

I would recommend using a hex editor and simply changing the value if it's just a one time thing.

share|improve this answer

On my system (gcc version 4.2.4, Ubuntu) this looks fine on the disassmbley (insight):

int main()
{
asm("jmp 0xbffff994"); 
return 0;
};       

results of the disassmbley (insight):

        0x8048344       :                 lea    0x4(%esp),%ecx
-       0x8048348       :               and    $0xfffffff0,%esp
-       0x804834b       :               pushl  -0x4(%ecx)
-       0x804834e       :              push   %ebp
-       0x804834f       :              mov    %esp,%ebp
-       0x8048351       :              push   %ecx
-       0x8048352       :              jmp    0xbffff994
-       0x8048357       :              mov    $0x0,%eax
-       0x804835c       :              pop    %ecx
-       0x804835d       :              pop    %ebp
-       0x804835e       :              lea    -0x4(%ecx),%esp
-       0x8048361       :              ret
share|improve this answer
    
I would guess that that disassembler is showing the offset of the jmp and not its actual target. (the jmp instruction takes an offset relative to eip when you give it a 32-bit immediate operand). –  Evan Teran Apr 22 '09 at 0:28
    
Why would you guess that? is there a way to test it? it is running as a graphical interface with GDB below. –  Liran Orevi Apr 22 '09 at 7:56
    
Or it could be that there's no relocation. However, if you dump the opcodes with the assembly you'll be able to see the offset. –  Mark Apr 22 '09 at 11:55
    
I see this 8048352: e9 3d 76 fb b7 jmp bffff994 <_end+0xb7fb6454> can't find the _end label, but it looks mighty close to the end of the program. –  Liran Orevi Apr 22 '09 at 13:39

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.