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#include <stdio.h>

int f() {
  return 20;
}

int main() {
    void (*blah)() = f;

    printf("%d\n",*((int *)blah())());     // error is here ! Need help !
    return 0;
}

I want to cast 'blah' back to (int *) so that I can use it as a function to return 20 in printf statement. Doesn't seem to work. Can somebody help?

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1  
Is there a reason you are using a function pointer that does not match the function signature? –  crashmstr Jul 29 '11 at 12:50
2  
What a hack. Functions without prototypes and then reinterpreting a function pointer returning void to one returning int. I think there is no excuse possible for doing things like this. –  Jens Gustedt Jul 29 '11 at 12:54
    
yes, i can make 'blah' to point to whatever i want, hence saving variables :) –  root Jul 29 '11 at 12:55
    
@Jens: Actually there is a very good excuse; it's the only way to implement the equivalent of void * for function pointer types. Presumably another variable would be used to hold information that would determine the actual type of the function pointed to, in order to allow it to be called correctly. –  R.. Jul 29 '11 at 15:10
    
Or, if the void (*)() function pointer were just part of a "context" you pass in to an API that gets passed back to your callback function, you might statically know the type to cast to before calling it. –  R.. Jul 29 '11 at 15:13

4 Answers 4

up vote 4 down vote accepted

How about this?

printf("%d\n",((int (*)())blah)() ); 
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Besides the compiler (here gcc giving a warning: initialization from incompatible pointer type the solution works. –  Dilettant Jul 29 '11 at 12:50

What your code appears to be doing is invoking the function pointed to by blah, then attempting to cast its void return value to int *, which of course can't be done.

You need to cast the function pointer before invoking the function. It is probably clearer to do this in a separate statement, but you can do it within the printf call as you've requested:

printf( "%d\n" , ((int (*)())blah)() );
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Instead of initializing a void pointer and recasting later on, initialize it as an int pointer right away (since you already know it's an int function):

int (*blah)() = &f; // I believe the ampersand is optional here

To use it in your code, you simply call it like so:

printf("%d\n", (*blah)());
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this solution works but not what i want –  root Jul 29 '11 at 12:44
    
Why do you not want it like this? –  crashmstr Jul 29 '11 at 12:51
    
@crashmstr my guess is that there's an external API involved, for which he doesn't have the ability to change signatures. –  Foo Bah Jul 29 '11 at 12:53
    
If "f" is an external API function, then it either returns int or not. Also, from the example, there seems to be no reason to use function pointers at all as well. So "works but not what I want" is still a little vague. –  crashmstr Jul 29 '11 at 12:56
1  
@crash, I'm sure the example is just a generic stub, but even if the OP wanted to have a void function pointer to recast later on to the appropriate type, the code would have to know ahead of time what type that function is, something that would be hard-coded anyway. –  Manny D Jul 29 '11 at 12:59

typedef the int version:

typedef int (*foo)();

void (*blah)() = f;
foo qqq = (foo)(f);

Edit: oops forgot to give the print statement

printf("%d\n", qqq());
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