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Code below taken from here.

* qsort example */
#include <stdio.h>
#include <stdlib.h>

int values[] = { 40, 10, 100, 90, 20, 25 };

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

int main ()
{
  int n;
  qsort (values, 6, sizeof(int), compare);
  for (n=0; n<6; n++)
     printf ("%d ",values[n]);
  return 0;
}

We have a compare function with parameters in its signature but when we call it in qsort no arguments are passed. How are the values of a and b passed to the function? Thanks

share|improve this question
    
Not related to your question, but your comparison function has a major bug unless you know a priori that the range of integers in your array is bounded by INT_MAX. –  R.. Jul 6 '12 at 3:42
    
@R.. I just took it from cpluscplus.com, thanks though –  Steve Jul 7 '12 at 0:17
    
Yet another reason why cplusplus.com is an atrociously bad source for C and C++ information... –  R.. Jul 7 '12 at 0:59

3 Answers 3

up vote 4 down vote accepted

In the context of this expression:

qsort (values, 6, sizeof(int), compare);

the subexpression compare that identifies a function decays into a pointer to that function (and not a function call). The code is effectively equivalent to:

qsort (values, 6, sizeof(int), &compare);

This is exactly the same thing that happens to arrays when used as arguments to a function (which you might or not have seen before but is more frequently asked):

void f( int * x );
int main() {
   int array[10];
   f( array );      // f( &array[0] )
}
share|improve this answer
    
So writing a function pointer without the ampersand just the lazy way of doing it? –  Steve Jul 5 '12 at 22:21
1  
In a function call, the compiler translates the function for a pointer to the function. The reason is that, just like arrays, a function cannot really be passed by value so the language has specific rules that will perform that conversion both in a function declaration and the call. typedef void function(); void f( function f ); is translated into typedef void function(); void f( function* f );` in the declaration, and f( myvoidfunction ) is translated into f( &myvoidfunction ) at the place of call. –  David Rodríguez - dribeas Jul 5 '12 at 22:25
    
I would not call it the lazy way; I would call it the consistent way. The () operator (i.e. the function call operator) takes a function pointer as its operand. Unless you go around writing (&function)(...); every time you make a function call, it's inconsistent to write &function when you want to use the address of a function for a non-call purpose. –  R.. Jul 6 '12 at 3:40
    
@R.. I am not too sure about that. The standard clearly states that for a regular function call, the postfix expression shall be either a function or a function pointer, so func() is correct on the first account. On the other hand, only a function pointer can be passed as argument to another function. That is, the standard is quite clear that you can call a function, but you can only pass a pointer to a function. Whether you prefer one or the other syntax is a different issue, but if the goal is consistency then you should pass &func. –  David Rodríguez - dribeas Jul 6 '12 at 3:57
    
Where do you get that? C99 6.5.2.2 reads (under Constraints): "The expression that denotes the called function80) shall have type pointer to function returning void or returning an object type other than an array type." And footnote 80 reads: "Most often, this is the result of converting an identifier that is a function designator," i.e. if the expression is just a function name, it becomes a function pointer by decay. –  R.. Jul 6 '12 at 4:03

When calling qsort, you're passing a pointer to the function which is why you don't specify any parameters.

Inside the qsort implementation choses values from the 'values' array and calls the 'compare' function. That's how 'a' and 'b' get passed.

share|improve this answer

qsort passes the addresses of whichever items in the array it wants to compare. For example, &values[3] and &values[5].

Since it doesn't really know the actual types of the items in the array, it uses the size parameter to correctly compute the addresses. See this implementation for example: http://insanecoding.blogspot.ie/2007/03/quicksort.html

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