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Why is this code throwing up a SIGSEGV:

int main()
{
    unsigned long toshuffle[9765625];

    unsigned long i;

    for (i=0; i< 1000; i++)
        toshuffle[i]= i;

    return 0;
}

Pointers will be appreciated. (No Pun intended :))

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1  
Please, for the love of whatever gods you worship, use "int main(void)" or "int main (int c,char *v[])" The standard has been aroung for ages :-) –  paxdiablo Oct 27 '09 at 8:19
    
My bad. I do follow that in almost call cases. –  Amit Oct 27 '09 at 9:44

3 Answers 3

up vote 15 down vote accepted

Use malloc() to get that much memory. You're overflowing the stack.

unsigned long *toshuffle = malloc(9765625 * sizeof(unsigned long));

Of course when you're done with it, you'll need to free() it.

NOTE: In C++, you need to cast the pointer to the correct type.

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8  
"Overflowing the stack", it finally has been said! :))) –  kolypto Oct 27 '09 at 8:11
2  
in C++ you would be doing new long[9765625], and wouldn't bother with neither casts nor sizeof... :) –  falstro Oct 27 '09 at 8:24
    
how to make the compiler to report an error when the stack size is exceeded. –  Rohit Banga Oct 27 '09 at 9:28
1  
@iamrohitbanga: At compile time, which is where the compiler works, you do not have an idea about the Stack size that is available to you. –  Amit Oct 27 '09 at 9:51
5  
@Amit is right but it's worse than that. The compiler has no idea how big the stack is, it just generates the instructions. The linker does know the stack size but has no idea how your code will use it. That means you have to fail at runtime. –  paxdiablo Oct 27 '09 at 12:17

Probably because you can't allocate 9765625 longs on stack (what is this site called again? :)). Use malloc() instead.

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From the manpage

  • RLIMIT_STACK

The maximum size of the process stack, in bytes. Upon reaching this limit, a SIGSEGV signal is generated. To handle this signal, a process must employ an alternate signal stack (sigaltstack(2)).

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