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For example:

#include <stdio.h>

typedef void (* proto_1)();
typedef void proto_2();

void my_function(int j){
    printf("hello from function. I got %d.\n",j);
}

void call_arg_1(proto_1 arg){
    arg(5);
}
void call_arg_2(proto_2 arg){
    arg(5);
}
void main(){
    call_arg_1(&my_function);
    call_arg_1(my_function);
    call_arg_2(&my_function);
    call_arg_2(my_function);
}

Running this I get the following:

> tcc -run try.c
hello from function. I got 5.
hello from function. I got 5.
hello from function. I got 5.
hello from function. I got 5.

My two questions are:

  • What is the difference between a function prototype defined with (* proto) and one defined without?
  • What is the difference between calling a function with the reference operator (&) and without?
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1  
I don't think there is a difference. Not posting as an answer because I'm not really sure. –  JAB Jun 9 '11 at 13:20
    
possible duplicate of Function pointers in C - address operator "unnecessary" –  outis Jan 24 '12 at 3:48

4 Answers 4

up vote 16 down vote accepted

There is no difference. For evidence see the C99 specification (section 6.7.5.3.8).

"A declaration of a parameter as ‘‘function returning type’’ shall be adjusted to ‘‘pointer to function returning type’’, as in 6.3.2.1."

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+1 for reference to spec –  groovingandi Jun 9 '11 at 13:42
    
Thanks for the reference Nick! (It's section 6.7.**5**.3.8, by the way.) So it's essentially a language special case? –  brice Jun 9 '11 at 13:51
    
@brice - thanks I've edited. Yes a special case. The function pointer one makes more sense for being consistent with the rest of the language, but I guess they added the other case for readability –  Nick Fortescue Jun 9 '11 at 13:53
    
The corollary to this is that you can explicitly dereference function names or function pointers and arbitrary number of times (zero, one or more) and always get the same result: stackoverflow.com/questions/5834520/c-function-pointers/… –  Michael Burr Jun 9 '11 at 14:37
    
this is only half of the truth: 6.7.5.3.8 is only concerned with the type declarations; the implicit conversion of function designators to function pointers is covered by section 6.3.2.1 –  Christoph Jun 22 '11 at 14:01

there is no difference between &function and function when passing as arguement

however there is a difference between your typedefs. I do not know the official explanation, i.e what exactly the difference, but from what i remember

typedef void (*name1)(void);

and

typedef void(name2)(void);

are different:

name1 is a pointer to a function that takes no paramter and returns nothing

name2 is a function that takes no paramter and returns nothing

you can test it by compiling:

typedef void (*pointer)(void);
typedef void (function)(void);

void foo(void){}

int main()
{
    pointer p;
    function f;

    p = foo; //compiles
    p();

    f = foo; //does not compile
    f();
}

again, i am not the right person to explain exact reason of this behavior but i believe if you take a look at standards you will find the explanation somewhere there

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1  
I guess you could already feel this one coming: ... when passing as arguement - what's the difference otherwise, then? :-) –  Johann Gerell Jun 9 '11 at 13:33
    
hehe :) not sure but as far as i know totally the same. why both of them exist? i don't know. i think it is just like int & const r; and int &r; of c++ –  Hayri Uğur Koltuk Jun 9 '11 at 13:39
    
Thanks for the clarification about the typedefs. That makes sense and follows the usual semantics. –  brice Jun 9 '11 at 13:57

There is no difference between &function and function - they're both addresses. You can see this by printing them both:

function bar(); 

.... 
printf("addr bar is 0x%d\n", &bar);
printf("bar is 0x%d\n", bar);
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2  
Your answer is correct, but the "you can see this by..." is wrong. For an array, array and &array are not remotely the same (they have very different types!) but printing their addresses with printf will show the same thing (assuming you correctly use %p rather than %d and cast to void *). BTW there is no way to print function pointers with printf since C completely lacks any conversion from a function pointer type to void * or any integer types. –  R.. Jun 9 '11 at 13:34
    
The statement "there is no way to print function pointers" is not true. You can run the code I pasted in above (I did so). –  Scott Wilson Jun 9 '11 at 13:42
2  
That code invokes undefined behavior by passing mismatching types to printf. If it does what you expected, that just means you got unlucky, i.e. the bug in your code went undetected. –  R.. Jun 9 '11 at 13:43
5  
By the way, printing an 0x before a decimal number is rather perverse... :-) –  R.. Jun 9 '11 at 13:43
    
Also, while it is true that in the C language array and &array are not the same, they compile to the same value: an address. I think in the spirit of the OP's question, it is helpful to point this out. –  Scott Wilson Jun 9 '11 at 13:44

The difference is only stylistic. You have the same scenario when using function pointers:

void func (void);

...

void(*func_ptr)(void) = func;

func_ptr();    // call func
(*func_ptr)(); // call func

printf("%d\n", ptr); 
printf("%d\n", *ptr);

There are some who say that the (*func_ptr)() syntax is to prefer, to make it clear that the function call is done through a function pointer. Others believe that the style with the * is clearer.

As usual, there are likely no scientific studies proving that either form is better than the other, so just pick one style and stick to it.

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