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I'm qsort()ing some memory pointers in a list to allow a bsearch of them later in a function. My question is, do I need to type cast those values to something other than const void * to do a legal comparison in C? I could just do the conversion and let the compiler tell me, but I have a feeling that this might be compiler dependent.

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i don't see any reason it would not work as void* unless you are trying to compare the underlying values. (and from your question it doesn't look like you are.) the things that won't work with a void* are the things that require knowledge of the underlying datatype, so, checking a value, or doing pointer arithmetic. for what you've described, comparing pointer to pointer, there should be no problems. –  shelleybutterfly Aug 11 '11 at 4:06
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2 Answers

up vote 4 down vote accepted

Comparisons are fine, arithmetic and dereferencing are not (because you don't know the size of the underlying data). So yes, you can compare void pointers quite well (a).

However, keep in mind that you don't usually compare the pointers passed to a qsort comparison function, unless you want to sort on their addresses. But, since they'll be sorted in that order already (being an array), there's not much of a use case for that :-)

You generally cast the void pointers to a specific pointer and then compare what they point to. Something like:

int compfn (const void *p1, const void *p2) {
    const char *str1 = *((const char **)(p1));
    const char *str2 = *((const char **)(p2));
    return strcmp (str1, str2);
}

You don't have to create temporaries like str1 and str2 (even though any decent compiler would optimise them out anyway). Other than a slight readability issue, there's nothing wrong with:

int compfn (const void *p1, const void *p2) {
    return strcmp (*((const char **)(p1)), *((const char **)(p2)));
}

(a) Subject to the normal rules that the pointers must both point to elements of the same array or one beyond that array - anything else is undefined. I mention that for completeness but, if you're using qsort, you'll be working on an array anyway.

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Is there a reason for the return 0 after the return strcmp? –  Jesus Ramos Aug 11 '11 at 4:05
    
@Jesus, yes, it was cut and pasted from more complicated code and then (almost) pared down to the simplest form. "Almost" because I missed that bit, which I've now fixed :-) –  paxdiablo Aug 11 '11 at 4:15
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Usually you want to do something like this in your compare function

int compare(const void *a, const void *b) 
{
    int aa = *(int *)a;
    int bb = *(int *)b;
    return aa - bb;
}

and convert the void * to the appropriate type (with int's it's just an example).

It is valid to compare to const void * types but this is a comparison of the address. If this is what you want then that's fine if not the above (contrived example) applies (depending on what you're comparing).

EDIT: For your case

int compare(const void *a, const void *b)
{
    if (a < b) return -1;
    else if (a == b) return 0;
    return 1;
}

The reason I do it this way is because addresses are sizeof(unsigned long) which is greater than the size of an int which could cause an issue if you overflow the int somehow.

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This will not work, try char x[4]; compare(x, x+1) and they will compare as equal (except on a few bizarre systems). –  Dietrich Epp Aug 11 '11 at 3:56
    
@Dietrich, this is an example I stated so already.... you would have to do the appropriate comparison.... –  Jesus Ramos Aug 11 '11 at 3:58
    
It is an example, but that does not change the fact that the cast causes the function to behave incorrectly and is in fact not necessary in the first place, as it is perfectly legal to compare void * and the semantics are just as well-defined as they are for other types. –  Dietrich Epp Aug 11 '11 at 4:02
    
@Dietrich, yes you can compare them but the point is if you want meaningful comparison you compare the types (unless you're sorting by address). –  Jesus Ramos Aug 11 '11 at 4:03
    
I thought that was the question... –  Dietrich Epp Aug 11 '11 at 4:06
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