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I've written a simple C program to learn usage of function pointers:

#include <stdio.h>

int (*workA) ( char *vA );
int (*workB) ( char *vB );

int main( int argc, char * argv[] )
{
    char *strA = "Hello.";
    char *strB = "Bonjour.";

    int a = workA(strA);
    int b = workB(strB);

    printf("Return value of A = %d, B = %d.\n", a, b);

    return 0;
}

int (*workA)( char *vA )
{
    printf("A: %s\n", vA); // line 20

    return 'A';
}

int (*workB)( char *vB )
{
    printf("B: %s\n", vB); // line 27

    return 'B';
}

GCC complains:

test.c:20: error: expected ‘=’, ‘,’, ‘;’, ‘asm’ or ‘__attribute__’ before ‘{’ token
test.c:27: error: expected ‘=’, ‘,’, ‘;’, ‘asm’ or ‘__attribute__’ before ‘{’ token

I don't know what's wrong with it. Any comments will be highly appreciated.

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2 Answers

up vote 2 down vote accepted

workA and workB are pointers to two functions. You need to declare actual functions that will do the work, then assign them to your two pointers before you call them...

#include <stdio.h>

int (*workA) ( char *vA );
int (*workB) ( char *vB );

int workAFunction( char *vA )
{
    printf("A: %s\n", vA); // line 20

    return 'A';
}

int workBFunction( char *vB )
{
    printf("B: %s\n", vB); // line 27

    return 'B';
}

int main( int argc, char * argv[] )
{
    char *strA = "Hello.";
    char *strB = "Bonjour.";

    workA = workAFunction;
    workB = workBFunction;

    int a = workA(strA);
    int b = workB(strB);

    printf("Return value of A = %d, B = %d.\n", a, b);

    return 0;
}
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When you write int (*workA) ( char *vA ), it means that workA is a pointer to a function that returns an int. workA is not a function.

Removing the parentheses around *workA and simply writing int (*workA) ( char *vA ) makes workA a function returning a pointer to an int, as required.

The same goes for workB.

You can use this great program called cdecl to ease things up.

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Thanks. "cdecl" is an awesome example. –  user1361391 May 6 '13 at 18:19
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