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I am trying to run the program to test buffer overflow, but when program crashes it shows me SIGSEGV error as follows:

Program received signal SIGSEGV, Segmentation fault. 0x00000000004006c0 in main (argc=2, argv=0x7fffffffde78)

But the tutorial which I am following is getting the below message:

Program received signal SIGSEGV, Segmentation fault. 0x41414141 in ?? ()

Due to this I am not able to get the exact memory location of buffer overflow.

I have already used -fno-stack-protector while compiling my program. because before this I was getting SIGABRT error.

Does anyone have any clue so that i can get in sync with the tutorial.

  • Think about the implications of undefined behaviour! – too honest for this site Nov 28 '15 at 10:55
  • @Olaf Think about the fact that this question is about what actually happens and not what should happen according to the C standard! – immibis Nov 28 '15 at 10:58
  • Which tutorial? – rnrneverdies Nov 28 '15 at 11:05
  • youtube.com/watch?v=8S0SqXIGv98 – TechJ Nov 28 '15 at 11:10
  • @immibis: No, it is about what could happen and that there is no use in expecting undefined behaviour to behave a defined way. Nasal demons are always an option. – too honest for this site Nov 28 '15 at 11:23
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I was able to figure out the difference in both.

Actually I was trying the same code on Ubuntu 64-bit on virtual box. But then I tried installing Ubuntu 32-bit on virtual box, so now I am also getting the same message as what was coming in the tutorial.

Also another difference which I noticed in 64 bit and 32-bit OS is that when using 32 bit we can examine the stack using $esp but in 64-bit machine we have to use $rsp

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SIGSEGV is the signal raised when your program attempts to access a memory location where it is not supposed to do. Two typical scenarios are:

  • Deference a non-initialized pointer.
  • Access an array out-of-bound.

Note, however, even in these two cases, there is no guarantee that SIGSEGV always happen. So don't expect that SIGSEGV message is always the same even with the same code.

  • you are right but do you see the difference of memory patterns in both messages which I have posted in my question. – TechJ Nov 28 '15 at 11:41
  • you mean the virtual addresses are different? – artm Nov 28 '15 at 11:48
  • right, how can I get the address same type pattern which comes in tutorial – TechJ Nov 28 '15 at 12:05
  • There is no guarantee such accesses will be detected. Nor is the program reuqired (or likely will) behave in a specific/defined way. – too honest for this site Nov 28 '15 at 23:18

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