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Example: A function that takes a function (that takes a function (that ...) and an int) and an int.

typedef void(*Func)(void (*)(void (*)(...), int), int);

It explodes recursively where (...). Is there a fundamental reason this can't be done or is there another syntax? It seems to me it should be possible without a cast. I'm really trying to pass a dispatch-table but I could figure that out if I could just pass this one type.

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Does it explode recursively, or does it interpret the "..." as a vararg without you actually specifying a previous arg where the vararg point must start from? –  Jim Buck May 3 '09 at 5:22
    
I know I saw a SO question almost exactly like this, but I can't find it. –  Matthew Flaschen May 3 '09 at 5:29
    
stackoverflow.com/q/793449/10396 –  AShelly Apr 15 '11 at 17:55

2 Answers 2

up vote 9 down vote accepted

You can wrap the function pointer in a struct:

struct fnptr_struct;
typedef void (*fnptr)(struct fnptr_struct *);
struct fnptr_struct {
  fnptr fp;
};

I'm not sure if this is an improvement on casting. I suspect that it's impossible without the struct because C requires types to be defined before they are used and there's no opaque syntax for typedef.

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Nice that there is a workaround, sad it doesn't "just work". Ah, legacy. :-/ –  HostileFork Dec 18 '14 at 9:34

It's impossible to do directly. Your only options are to make the function pointer argument accept unspecified arguments, or to accept a pointer to a structure containing the function pointer, as Dave suggested.

// Define fnptr as a pointer to a function returning void, and which takes one
// argument of type 'pointer to a function returning void and taking
// an unspecified number of parameters of unspecified types'
typedef void (*fnptr)(void (*)());
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