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This question might be remedial but I am having a lot of trouble with malloc. Why does my progrm crash upon freeing memory?

#include <stdlib.h>
#include <malloc.h>
int main(int argc, char *argv[]) {
    int *arr[10];
    void *mem = malloc( 10 * sizeof(int) );
    int i;
    for(i=0;i<=9;i++) {
        arr[i] = (int*) mem + i*sizeof(int);
        *arr[i]= 9-i;
    }
    //void** ar = (void**) arr;
    //medianSort(ar, cmp, 0, 9);
    free(mem); //crashes here
    return 0;
}

Runtime Error Message Box Reports:

Windows has triggered a breakpoint in medianSort.exe. This may be due to a corruption of the heap, which indicates a bug in medianSort.exe or any of the DLLs it has loaded. This may also be due to the user pressing F12 while medianSort.exe has focus. The output window may have more diagnostic information.

The following is is the error block from malloc.c:

#ifdef _WIN64
    return HeapAlloc(_crtheap, 0, size ? size : 1);
#else  /* _WIN64 */
    if (__active_heap == __SYSTEM_HEAP) {
        return HeapAlloc(_crtheap, 0, size ? size : 1); //crashes here
    } else
    if ( __active_heap == __V6_HEAP ) {
        if (pvReturn = V6_HeapAlloc(size)) {
            return pvReturn;
        }
    }
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1 Answer 1

up vote 0 down vote accepted

You are writing beyond allocated memory. Note that (int*) mem is int pointer, so adding 1 actually moves memory location by sizeof(int) bytes. In other words, you shouldn't be doing sizeof(int) yourself within loop, because pointer arithmetic says compiler does that for you.

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1  
would be better if you'd declare int *mem from the start and just use it naturally such as arr[i] = mem + i; –  Jens Gustedt Jul 16 '10 at 16:52

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