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#include <stdio.h>

void swap(void *v[], int i, int j)
{
    void *tmp;

    tmp = v[i];
    v[i] = v[j];
    v[j] = tmp;
}

int main(void)
{
    char *s[] = {"one", "two"};
    printf("%s, %s\n", s[0], s[1]);
    swap(s, 0, 1);
    printf("%s, %s\n", s[0], s[1]);
    return 0;
}

Output:

one, two

two, one

Warning: no compatible pointer casting, need void**, but char

I used this program to simulate the swap function in K&R, to demonstrate the use of the function pointer, and my question is whether the cast of the void pointer is always safe, or if there is any way to replace it.

share|improve this question
    
i use gcc std=c99 to compile it. –  pupu007 May 15 '13 at 4:29
    
what really is happening is, pointers are like handles or addresses.. you are not swapping the data, you are swapping the address to the data. So, it is quite safe. –  Aniket May 15 '13 at 4:33
    
@Aniket: No, this is not necessarily safe. Imagine a system where char* is a different size than int*. –  jamesdlin May 15 '13 at 5:06
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3 Answers

up vote 6 down vote accepted

No, it is not necessarily safe to pass a char** where a void** (which is what a void*[] function parameter actually is) is expected. The fact that the compiler makes you perform an explicit cast is a hint about that.

In practice, it is likely to be fine. Strictly speaking, however, you have no guarantee that sizeof (T*) == sizeof (U*) for distinct types T and U. (For example, you could imagine a hypothetical system where sizeof (int*) < sizeof (char*) because pointers-to-int are aligned and therefore don't need to store the least significant bits.) Consequently, your swap function might index into the v array using the wrong offsets.

Also see Q4.9 from the comp.lang.c FAQ: Can I give the formal parameter type void **, and do something like this?

To call swap safely, you should do something like:

void* temp[] = { &s[0], &s[1] };
swap(temp, 0, 1);

although that would swap the elements of temp, not of s.

If you're authoring swap, in general you should make such a function take a void* argument (instead of a void** one) and a size_t argument that specifies the size of each element. Your function then could cast the void* to char* safely and swap individual bytes:

void swap(void* p, size_t elementSize, size_t i, size_t j)
{
    char* item1 = p;
    char* item2 = p;

    item1 += i * elementSize;
    item2 += j * elementSize;

    while (elementSize-- > 0) {
        char temp = *item1;
        *item1 = *item2;
        *item2 = temp;
        item1++;
        item2++;
    }
}
share|improve this answer
    
brilliant anwser!thank you,jamesdlin, but in my computer, all pointers seem to be equivalent, and i followed your link,found [c-faq.com/null/machexamp.html], this is what i want to find. –  pupu007 May 15 '13 at 11:59
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You need to typecast the pointer in swap call. Change it to swap ( ( void * )s, 0, 1 );

share|improve this answer
    
unxnut,thank you,i haven't think it before. –  pupu007 May 15 '13 at 4:31
    
@Jens Gustedt: Is ( void * )s changing from void * to a different type? –  unxnut May 15 '13 at 12:04
    
( void * )s by itself not, but since the first parameter of swap is void** an implicit conversion to that is taking place immediately after the explicit cast and before calling the function. –  Jens Gustedt May 15 '13 at 12:12
    
@unxnut: You're essentially casting char** => void* => void**. char** and void** are not the same type. –  jamesdlin May 15 '13 at 15:33
    
No, the code is just casting char * => void * and swapping the void * pointers, effectively swapping the char * pointers. It does not dereference the void * pointers in any way. –  unxnut May 15 '13 at 15:40
show 1 more comment

To avoid the warning call the function as follows,

swap((void *) s, 0, 1);

It is always safe to cast any pointer as a void pointer.

share|improve this answer
    
thank you for your answer! –  pupu007 May 15 '13 at 4:32
1  
You're actually casting a char** to a void* which then is being implicitly cast to a void**. Casting a T** to a void** is not necessarily safe. –  jamesdlin May 15 '13 at 5:17
    
This answer is wrong. Converting to void* is always safe, but the implicit conversion from void* to a different type than the original isn't. –  Jens Gustedt May 15 '13 at 7:35
    
@JensGustedt why? some computers make that different representations for pointers to different types.So void *[] may make a worry pointing to char *[] –  pupu007 May 15 '13 at 12:27
    
@pupu007 a function parameter of void*[] is equivalent to a void**. I don't understand your use of "worry". –  Jens Gustedt May 15 '13 at 12:32
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