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I am trying to figure out how to declare a function that returns a pointer to a function that returns a function. It's a circular problem and I don't know if this can be done in c. This is an illustrative example of what I'm trying to do (it does not work):

typedef (*)(void) (*fp)(void);

fp funkA(void) {
    return funkB;
}

fp funkB(void) {
    return funkA;
}
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"a pointer to a function that returns a function" - what's the signature of this last function? –  detly Jul 22 '11 at 8:02
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4 Answers 4

up vote 6 down vote accepted

To create completely circular types like this in C, you must use a struct (or union). In C99:

typedef struct fpc {
    struct fpc (*fp)(void);
} fpc;

fpc funkB(void);

fpc funkA(void) {
    return (fpc){ funkB };
}

fpc funkB(void) {
    return (fpc){ funkA };
}

In C89, you don't have compound literals, so you must do:

fpc funkA(void) {
    fpc rv = { funkB };
    return rv;
}

fpc funkB(void) {
    fpc rv = { funkA };
    return rv;    
}
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i can't experiment it now, but why shouldn't the OP solution, adding only the prototype for funkB as you did, work? (the other way: why do we need to wrap the pointer?) –  ShinTakezou Jul 22 '11 at 7:42
    
Great answer. +1 –  Stan Jul 22 '11 at 7:54
    
@ShinTakezou: Because the only kinds of types that can be defined to reference themselves are struct and union (you would need a "pointer to a function returning a pointer to a function returning a pointer to a function returning a pointer to a function returning..." - it's a snake trying to swallow its own tail). –  caf Jul 22 '11 at 7:54
    
I've just tested it with gcc, I needed casting to silent a warning I've not investigated yet deeply, but it worked... I am adding an answer, just for reference and analysis –  ShinTakezou Jul 22 '11 at 7:58
1  
This worked. And I've learned that the compiler I'm using is only C89 compliant. Thank you very much! –  Kenneth Jul 22 '11 at 8:10
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Try this:

void (*(*f())())()

I always find cdecl worthy and useful for such tasks. Query for the above was

declare f as function returning pointer to function returning pointer to function returning void
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+1 for mentioning cdecl. That tool is massively helpful for stuff like this. –  DevSolar Jul 22 '11 at 7:39
    
You can't use this to create a function that can return a pointer to itself, which is the circular reference that the OP seems to be after. –  caf Jul 22 '11 at 7:39
    
Thanks, I did not know about that cdecl. However trying a few different examples it seems that ultimately an actual value needs to be returned. I am looking for a way to just return a pointer. –  Kenneth Jul 22 '11 at 7:48
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What about this?

typedef void (*rfp)(void);
typedef rfp (*fp)(void);

This is not fully circular, but is very simple and could be ok for you.

A complete solution can be found on "Guru of the Week" with full explanation, and is this:

 struct FuncPtr_;
 typedef FuncPtr_ (*FuncPtr)();
 struct FuncPtr_
 {
     FuncPtr_( FuncPtr pp ) : p( pp ) { }
     operator FuncPtr() { return p; }
     FuncPtr p;
 };


 FuncPtr_ f() { return f; } // natural return syntax
 int main()
 {
    FuncPtr p = f();  // natural usage syntax
    p();
 }

Not so simple, but correct and portable...

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1  
That's not circular at all. –  caf Jul 22 '11 at 7:26
    
@caf: you are right, I knew that well upfront. still, lacking a better solution... now, please, check the full solution I found on GOTW... –  sergio Jul 22 '11 at 7:41
1  
The GOTW answer is C++ and is definitely not portable C. –  Charles Bailey Jul 22 '11 at 7:45
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I tried the following, which avoid indeed the circular problem, and so it is wrong in the context (and needs casting); though, if you don't need to be really circular nor strict, it works

#include <stdio.h>


typedef void *(*fp)(void);

fp funcB(void);

fp funcA(void)
{
  printf("funcA %p\n", funcB);
  return (fp)funcB;
}

fp funcB(void)
{
  printf("func B %p\n", funcA);
  return (fp)funcA;
}

int main()
{
  printf("%p %p\n", funcA, funcB);
  printf("%p %p\n", funcA(), funcB()); 
  return 0;
}
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and of course, need casting... –  ShinTakezou Jul 22 '11 at 8:03
    
It won't be natural when you use type casting~ Logically it's not circular, although it can work. –  Stan Jul 22 '11 at 8:03
    
Apart from the nonportability, you can't use the return values of the functions to call through, without using another cast. –  caf Jul 22 '11 at 8:04
    
See caf's answer, you can call (*(((*((funkA()).fp))()).fp))(); to call funkA() if you like... no casting in it. –  Stan Jul 22 '11 at 8:12
    
yes, you need to know the pointer you have is a "fp"; though I find it more practical than other solution; at least I would sacrifice type check if I would need such a thing for real. Likely not so good, but not too much shame I hope –  ShinTakezou Jul 22 '11 at 8:13
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