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If I have a prototype that is declared as:

void foo(int (*fi)(void *, void *))

And I call the function with something like this:

foo(int (*)(void*, void*)(bool_expr ? func1 : func2));

Where func1 and func2 are defined as follows:

int func1(char *s1, char *s2);
int func2(int *i1, int *i2);

Is the function call casting one of the functions (func1 ^ func2) to the type of the function required by foo? Could I also make the prototype for foo look like:

void foo(int (*)(void *, void *))
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What does this sign ^ should mean? –  Beginner Nov 30 '11 at 23:23
    
The ^ is my short hand for XOR, since you will be casting one function or the other, but not both, and not none. I hope that clears things up. –  Matthew Hoggan Nov 30 '11 at 23:29
    
I'm not sure that would compile. –  Oliver Charlesworth Nov 30 '11 at 23:34
1  
Can you give an example of where this would be useful? –  Oliver Charlesworth Nov 30 '11 at 23:44

3 Answers 3

up vote 1 down vote accepted

As commented the code as posted did not compile.

FWIW, this compiles and executes as you would expect with VC2010:

int func1(char *s1, char *s2) { printf("func1\n"); return 0; }
int func2(int *i1, int *i2)   { printf("func2\n"); return 0; }

void foo(int (*)(void *, void *));

int main(int argc, char** argv)
{
    foo(2 == argc ? (int(*)(void*,void*))func1 :
                    (int(*)(void*,void*))func2);

    return 0;
}

void foo(int (*a)(void *, void *))
{
    a((void*)0, (void*)0);
}
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3  
Note that this code invokes undefined behavior. 6.5.2.2(9) says that the function pointer type must be compatible with the actual function. 6.7.5.3(15) says that functions are compatible if they have compatible return types and compatible parameter types. But char* is not compatible with int* because 6.7.5.1(2) says that pointer types are compatible if they are identically qualified and are pointers to compatible types, and char is not compatible with int. [There exists at least one real machine where sizeof(char*) != sizeof(int*).] –  Raymond Chen Dec 1 '11 at 1:28

According to C specification, casting function pointers results in unspecified behavior, but many compilers (e.g. gcc) do what you expect them to do, because function pointer is just an address in memory. Just to be safe, I would re-declare func1 and func2 to take void*, and then cast these pointers to char* and int* as required.

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casting function pointers doesn't result in UB. calling a function through an incompatible pointer type does result in UB. –  ninjalj Dec 1 '11 at 0:00
1  
That's not quite what the C standard says. Calling a function via a pointer that has a type that's incompatible with the function's actual type has undefined (not merely unspecified) behavior. Casting a function pointer to any pointer-to-function type is valid, as long as the type used in any call is correct. –  Keith Thompson Dec 1 '11 at 0:02

In GCC, this expression:

bool_expr ? func1 : func2

gives this warning:

warning: pointer type mismatch in conditional expression

even if you don't turn on special warnings.

What's more, GCC resolves this pointer-type mismatch by casting both expressions to void *; so then, when you try to cast it back (either explicitly, with (int (*)(void*, void*)), or implicitly, by passing it to foo), it gives this warning:

warning: ISO C forbids conversion of object pointer to function pointer type

if you enable pedantry. (The reason that ISO C forbids this is that a function pointer does not have to be implemented, internally, as a pointer to a memory location, so it may not have the same size and whatnot as a regular "object" pointer.)

That said, this:

foo((bool_expr ? (int (*)(void*, void*))func1 : (int (*)(void*, void*))func2));

should be relatively safe, provided that foo is passing valid char pointers to func1 or valid int pointers to func2.

And I would guess that, on a system where function pointers are truly incompatible with void *, a compiler wouldn't resolve the mismatch bool_expr ? func1 : func2 in favor of void * (though I haven't consulted the spec on this).

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