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Using gcc 4.7:

$ gcc --version
gcc (GCC) 4.7.0 20120505 (prerelease)

Code listing (test.c):

#include <stdint.h>

struct test {
    int before;

    char start[0];
    unsigned int v1;
    unsigned int v2;
    unsigned int v3;
    char end[0];

    int after;
};

int main(int argc, char **argv)
{
  int x, y;

  x = ((uintptr_t)(&((struct test*)0)->end)) - ((uintptr_t)(&((struct test*)0)->start));
  y = ((&((struct test*)0)->end)) - ((&((struct test*)0)->start));

  return x + y;
}

Compile & execute

$ gcc -Wall -o test test.c && ./test
Floating point exception

The SIGFPE is caused by the second assignment (y = ...). In the assembly listing, there is a division on this line? Note that the only difference between x= and y= is casting to (uintptr_t).

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GCC explorer output: preview.tinyurl.com/8ah2fa7 –  Wade Sep 25 '12 at 21:54
3  
char start[0]; means you're out of the territory defined by the standard. What happens beyond that, is it really so interesting? –  Daniel Fischer Sep 25 '12 at 21:57

1 Answer 1

up vote 7 down vote accepted

Disregarding the undefined behaviour due to violation of constarints in the standard, what gcc does here is to calculate the difference between two pointers to char[0] - &(((struct test*)0)->start) and &(((struct test*)0)->end), and divide that difference by the size of a char[0], which of course is 0, so you get a division by 0.

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And for historical reasons in UNIX an integer division by 0 yields a Floating point exception (SIGFPE signal) –  ouah Sep 25 '12 at 22:09
    
Is that a UNIX (and derivatives) speciality? I thought it was an x86 thing. –  Daniel Fischer Sep 25 '12 at 22:09
    
Good question I know it is the case for x86 on UNIX but I'm not sure it is the case for other systems. –  ouah Sep 25 '12 at 22:11
    
If anybody definitely knows, please ping @ouah too. I'd be interested to know for sure. –  Daniel Fischer Sep 25 '12 at 22:13
    
Tested integer division by 0 on a Linux armv6l, it also gives a Floating point exception. –  ouah Sep 25 '12 at 22:26

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