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I have a swap function like so:

void swap(int i, int j, void* arr[])
{
    void *temp;
    temp = arr[i];
    arr[i] = arr[j];
    arr[j] = temp;
}

I call swap in main like so:

main()
{
    int arr[8] = {4,7,9,2,6,7,8,1};
    void *ptr = arr;
    swap(0, 1, ptr);
    int k;
    for (k=0; k<8; k++)
        printf("%d ", arr[k]);
}

Now, the swap seems to work fine, however instead of swapping 1 value with another, it is swapping 2 values with another 2 values. For example, when I do swap(0, 1, ptr), i get the array

9,2,4,7,6,7,8,1

when I should be getting:

7,4,9,2,6,7,8,1

Instead of swapping 4 and 7, it is swapping 4,7 with 9,2. Why is it doing this?

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it looks like you are on a 64 bit system that gives you 64 bits by default, try a printf of sizeof arr[0] and sizeof int to verify, you can pass an extra parameter for size and use a char[size] buffer with memcpy or just use an xor swap if you verify they are different addresses (in other words don't swap 1 and 1) –  technosaurus Nov 28 '12 at 2:55
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1 Answer

up vote 5 down vote accepted

swap() is treating the array as an array of pointers, but the actual array being passed is an array of type int. Apparently, your system is such that a pointer is the size of two ints, and so everytime it swaps a "pointer", it's really swapping two integers.

You would need your swap routine to be something like this:

void swap(int i, int j, int arr[])
{
    int temp;
    temp = arr[i];
    arr[i] = arr[j];
    arr[j] = temp;
}
share|improve this answer
    
which then might segfault if i/j were > size/2 –  Karthik T Nov 28 '12 at 2:48
    
Ah, yes, the type was void* arr[], not void*... –  Luchian Grigore Nov 28 '12 at 2:48
    
This seems to be the best thing to do, thank you. –  me45 Nov 28 '12 at 3:10
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