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I found this code, in my lecture files. This is a generic function that gets a compare function and array, and sort it with BUBBLE SORT

typedef Relation (*CmpFunction)(void*, void*);
void sort(void **array, int n, CmpFunction compare){ 
   int i, j;
   void*  tmp;
   assert(array !=NULL && compare != NULL);
   for(i=0; i<n; i++) {
      for(j=i+1; j<n; j++) {
         if(compare(arr[i], arr[j])==Left) {
            tmp = array[i];
            array[i] = array[j];
            array[j] = tmp;
          }
       }
    }
}

Relation is: ENUM Type(Not interesting). My Question is, Why sort() get

void**,

Why isn't it

void*

. P.S The writer of the lecture did it on purpose, but I can't figure it out.

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check this link: A somewhat generic implementation –  Grijesh Chauhan Jul 1 '13 at 13:37

1 Answer 1

It's not a generic sort, it's a sorter for arrays of void *.

Thus, the array is void **, meaning "pointer to pointer to void *". You can dereference it once, array[0] is the first void * to be sorted. Of course you can't dereference that though, since void * doesn't support that.

By the way, the standard library's qsort() is a better example of a generic sort.

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So if i pass an array of ints, then the function will cast the array to void** and every element will be casted to void*? –  G.w. Weil Jul 1 '13 at 13:30
    
Yes, so don't do that since you can't assume that sizeof (int) == sizeof (void *). It's intended to sort arrays of void pointers. –  unwind Jul 1 '13 at 13:34
    
postimg.org/image/sttaubgiz ???? –  G.w. Weil Jul 1 '13 at 13:51

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