8

Possible Duplicate:
How do you pass a function as a parameter in C?

Suppose I have a function called

void funct2(int a) {

}


void funct(int a, (void)(*funct2)(int a)) {

 ;


}

what is the proper way to call this function? What do I need to setup to get it to work?

marked as duplicate by Björn Pollex, Bo Persson, Dori Jun 14 '11 at 7:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • This question might help: stackoverflow.com/questions/9410/… – Jim Jun 14 '11 at 6:46
  • 1
    You have two functions, which one are you having problems calling? Note that you have hidden the function funct2 in funct by having an identically named pointer-to-function parameter so you will have to fully qualify funct2 to call it directly from inside funct. – CB Bailey Jun 14 '11 at 6:50
  • 4
    Right on, because C++ is C as we all know. Welcome to CloseOverflow. In case one uses C++11 there is good read here: stackoverflow.com/questions/16111285/… -- avoiding passing functions with pointers improves readability. – greenoldman Jun 3 '14 at 12:44
  • A more complete set of answers: stackoverflow.com/questions/16111285/… – Eponymous Mar 9 '17 at 18:39
  • How is this a duplicate of the referenced question about C? It is possible that C++ provides (or at some point will provide) a different approach. – pooya13 Jan 14 at 21:01
18

Normally, for readability's sake, you use a typedef to define the custom type like so:

typedef void (* vFunctionCall)(int args);

when defining this typedef you want the returning argument type for the function prototypes you'll be pointing to, to lead the typedef identifier (in this case the void type) and the prototype arguments to follow it (in this case "int args").

When using this typedef as an argument for another function, you would define your function like so (this typedef can be used almost exactly like any other object type):

void funct(int a, vFunctionCall funct2) { ... }

and then used like a normal function, like so:

funct2(a);

So an entire code example would look like this:

typedef void (* vFunctionCall)(int args);

void funct(int a, vFunctionCall funct2)
{
   funct2(a);
}

void otherFunct(int a)
{
   printf("%i", a);
}

int main()
{
   funct(2, (vFunctionCall)otherFunct);
   return 0;
}

and would print out:

2
  • 1
    Since C++11, one would rather use using vFunctionCall = void (*)(int args); for better readability. Or even better, use std::function – Frederico Pantuzza Sep 15 '17 at 8:29
-1

You want:

funct( 42, funct2 );
  • 1
    This shows how to call the function, but how do you declare and define the function parameter? – Harrison Nov 10 '15 at 15:31
-1

check this

typedef void (*funct2)(int a);

void f(int a)
{
    print("some ...\n");
}

void dummy(int a, funct2 a)
{
     a(1);
}

void someOtherMehtod
{
    callback a = f;
    dummy(a)
}

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