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How come pointer to a function be called without dereferencing?
How does dereferencing of a function pointer happen?

Supposing I have a function pointer like:

void fun() { /* ... */ };
typedef void (* func_t)();
func_t fp = fun;

Then I can invoke it by:

fp();

or

(*fp)();

What is the difference/

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marked as duplicate by Chris Lutz, Jonathan Leffler, Robᵩ, ephemient, Greg Hewgill Nov 4 '11 at 3:39

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1 Answer 1

Precisely two parentheses and an asterisk.

Both call the function pointed to by fun, and both do so in the same manner.

However, visually, (*fun) makes it clear that fun is not a function in and of itself, and the dereference operator is a visual cue that it is a pointer of some kind.

The without-parentheses syntax, fun(), is the same as a regular function call and so visually equates to that, making it primarily clear you're calling some kind of function. It takes context or a lookup to notice that it is a function pointer.

This is just a style difference, as far as what happens.

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1  
It should also be noted that (fun)() and (**fun)() are also both legal equivalents. –  Chris Lutz Nov 4 '11 at 2:13
    
+1 for the first line. It was almost exactly the answer I was going to give, except I figured I'd say "one is ugly and the other isn't". :-) –  R.. Nov 4 '11 at 3:36

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