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Arrays of function pointers can be created like so:

typedef void(*FunctionPointer)();
FunctionPointer FunctionPointers[] = {/* Stuff here */};

What is the syntax for creating a function pointer array without using the typedef?

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5  
Interesting question, but in "real" code you should just follow the golden rule of function pointers: use typedef otherwise no one will be able to understand your code. :) – Matteo Italia Feb 23 '11 at 15:43
up vote 46 down vote accepted
arr    //arr 
arr [] //is an array (so index it)
* arr [] //of pointers (so dereference them)
(* arr [])() //to functions taking nothing (so call them with ())
void (* arr [])() //returning void 

so your answer is

void (* arr [])() = {};

But naturally, this is a bad practice, just use typedefs :)

Extra: Wonder how to declare an array of 3 pointers to functions taking int and returning a pointer to an array of 4 functions taking double and returning char? (how cool is that, huh? :))

arr //arr
arr [3] //is an array of 3 (index it)
* arr [3] // pointers
(* arr [3])(int) //to functions taking int (call it) and
*(* arr [3])(int) //returning a pointer (dereference it)
(*(* arr [3])(int))[4]  //to an array of 4
((*(* arr [3])(int))[4])(double) //functions taking double
char  ((*(* arr [3])(int))[4])(double) //returning char

:))

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8  
+1, but for this kind of masochism there's cdecl.org. :) – Matteo Italia Feb 23 '11 at 15:52
3  
Oh God my eyes. @_@ – Maxpm Feb 23 '11 at 21:07
    
Thank you Matteo; cdecl.org is an awesome site! – player_03 Nov 21 '12 at 4:56
    
Awesome explanation of the approach! :) – Narek Jul 16 '14 at 3:09

Remember "delcaration mimics use". So to use said array you'd say

 (*FunctionPointers[0])();

Correct? Therefore to declare it, you use the same:

 void (*FunctionPointers[])() = { ... };
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Use this:

void (*FunctionPointers[])() = { };

Works like everything else, you place [] after the name.

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