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I am trying to understand C function pointers. I made this example to describe what I do not understand about the syntax specifically.

//somewhere in a .h
void(*func_pointer)(int i);

//somewhere in a .c
void func_test(int i)
{
    printf("%d\n", i);
}

//initializing the func_pointer
func_pointer = &func_test;// works as expected
func_pointer = func_test;//why this works ? left: pointer, right: function
func_pointer = *func_test;//why this works ? left: pointer, right: ?

//calling the func
(*func_pointer)(2);//works as expected
func_pointer(2);//why this works ? calling a pointer ?

Why is this syntax accepted ?

  • Is there a reason not to close this as a duplicate of How do function pointers in C work?? The reasons are mainly hysterical…I mean, historical. Although you're mostly querying the newer, more recent, less encrusted notations. – Jonathan Leffler Apr 8 '15 at 1:45
  • @JonathanLeffler I actually had this question opened in another tab as we speak. However in the answer, only func_pointer = &func_test; and (*func_pointer)(2); was used, which makes complete sense syntax-wise. I am just confused of why the other syntax cases even work at all, because I expected that it should give a compile error – dimitris93 Apr 8 '15 at 1:51
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    You might also find Understanding typedefs for function pointers in C helpful, too. And I think you should look at How typedef works for function pointers. – Jonathan Leffler Apr 8 '15 at 1:51
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    In pre-standard C, the (*pointer)(args) notation was necessary for calling a function via a pointer, and the & was not used (because a function name is a sort of pointer to function). Then the simpler pointer(args) notation was allowed by the standard, probably with some precedent. The & didn't do any harm; the * I've never understood — look at the second question linked in my previous comment. But the standard says "it shall be like this", so that is how it is. – Jonathan Leffler Apr 8 '15 at 1:54
  • @JonathanLeffler thanks a lot, I will check all of this, looks interesting :) – dimitris93 Apr 8 '15 at 1:56
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func_pointer = func_test and func_pointer = *func_test work because function names are automatically turned into function addresses when used in this context. func_pointer(2) works because function pointers automatically dereference themselves, much like references. As to why they do these things, I don't know. Maybe it was decided the syntax was complicated enough already.

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