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Is it possible to pass a function pointer as an argument to a function in C?

If so, how would I declare and define a function which takes a function pointer as an argument?

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up vote 33 down vote accepted

Definitely.

void f(void (*a)()) {
    a();
}

void test() {
    printf("hello world\n");
}

int main() {
     f(&test);
     return 0;
}
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2  
Change the call to f(test); – Richard Pennington Nov 24 '09 at 12:41
4  
Both will work. The ampersand is optional. So is dereferencing the pointer when you're calling the function pointer. – Mehrdad Afshari Nov 24 '09 at 13:05
    
True, there's no need to change anything. Moreover, even the "pointer" syntax in parameter declaration is optional. The above f could've been declared as void f(void a()). – AnT Nov 24 '09 at 14:57
4  
Using a typedef for the function pointer type could make the code eaiser to read. – David R Tribble Nov 24 '09 at 20:15

Let say you have function

int func(int a, float b);

So pointer to it will be

int (*func_pointer)(int, float);

So than you could use it like this

  func_pointer = func;
  (*func_pointer)(1, 1.0);

  /*below also works*/
  func_pointer(1, 1.0);

To avoid specifying full pointer type every time you need it you coud typedef it

typedef int (*FUNC_PTR)(int, float);

and than use like any other type

void executor(FUNC_PTR func)
{ 
   func(1, 1.0);
}

int silly_func(int a, float b)
{ 
  //do some stuff
}

main()
{
  FUNC_PTR ptr;
  ptr = silly_func;
  executor(ptr); 
  /* this should also wotk */
  executor(silly_func)
}

I suggest looking at the world-famous C faqs.

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I suggest looking at the world-famous C faqs

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Check qsort()

void qsort(void *base, size_t nmemb, size_t size,
           int (*compar)(const void *, const void *));

The last argument to the function is a function pointer. When you call qsort() in a program of yours, the execution "goes into the library" and "steps back into your own code" through the use of that pointer.

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a good example :

#include <iostream>
using namespace std;

int sum(int a, int b)
{
   return a + b;
}

int mul(int a, int b)
{
   return a * b;
}

int div(int a, int b)
{
   return a / b;
}

int mathOp(int (*OpType)(int, int), int a, int b)
{
   return OpType(a, b);
}

int main()
{

   cout << mathOp(sum, 10, 12) << ", " << mathOp(div, 10, 2) << endl;
   return 0;
}

output is : '22, 5'

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