This question already has an answer here:

I came across the following code:

int H3I_hook(int (*progress_fn)(int*), int *id)
{
...
}

I don't understand the purpose of (int*) at the end of the first argument?

marked as duplicate by Jakuje, Siyual, Jason, William Pursell, lmo Aug 31 '16 at 23:21

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  • Do you understand it is a pointer to a function? – Eugene Sh. Aug 31 '16 at 17:46
  • @usr: Not even close. – Scott Hunter Aug 31 '16 at 17:48
  • @ScottHunter Is it so? I thought if OP had understood function pointers this would have been clear. – usr Aug 31 '16 at 17:50
  • 3
    @usr: If OP understood function pointers, we wouldn't be here. – Scott Hunter Aug 31 '16 at 17:51
  • There is a cool little program in K&R C book, around pg 137 here that parses complicated pointer declarations to english descriptions and back. Definitely worth a read – jenesaisquoi Aug 31 '16 at 17:58
up vote 10 down vote accepted

Demystifying:

int (*progress_fn)(int*)

it can be interpreted like below:

int (*progress_fn)(int*)
 ^       ^          ^
 |       |          |___________ pointer to integer as argument
 |       |
 |     pointer to any function that has V and takes ^
 |
 |__________________________return type an integer

int (*progress_fn)(int*) is function pointer decleration, and (int *) is the list of parameters the function accepts.

So, this:

int (*progress_fn)(int*)

is a pointer to a function that will return an int and will receive one parameter, of type int*.

So you have to understand that progess_fn is the actual parameter. All its relevant components define how the function's prototype is actually.


For more, read How do function pointers in C work?

  • Maybe you should point out that progress_fn is the actual parameter, and the rest is how you specify what its type is. – Scott Hunter Aug 31 '16 at 17:50
  • @ScottHunter something like the edit I just made? – gsamaras Aug 31 '16 at 17:52
  • @gsamaras, The part under the bar is rather redundant. – ikegami Aug 31 '16 at 17:52

Given this declarartion:

int progress_callback(int* a);
//                    ^ this is the (int*) you asked about

You can call H3I_hook like this:

int id = something;
int x = H3I_hook(progress_callback, &id);
  • 1
    The question does not appear to be about typedefs. – Scott Hunter Aug 31 '16 at 17:52
  • @ScottHunter I've changed that, but the answer used typedef to avoid the confusion between an int pointer and a function pointer. – Elazar Aug 31 '16 at 17:54

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