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void (*(*f[])())() defines f as an array of unspecified size, of pointers to functions that return pointers to functions that return void.

What does this means in a very very very simple explanation

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2  
In very very very simple terms, it means you need to find a different, simpler, way to express whatever this is. –  David Heffernan Nov 10 '11 at 23:14
1  
You can't simplify that explanation without making it wrong. –  Dietrich Epp Nov 10 '11 at 23:15
    
I need to understand it , my mind go in a loop every time thinking of it ... –  xsari3x Nov 10 '11 at 23:16

3 Answers 3

up vote 3 down vote accepted

Imagine you have a function - let's call it a() - that returns void.

a() has an address in memory.

Now imagine you have a function pa() that returns a pointer to a(), i.e. pa() returns the address of a().

Now, you don't have just one pair of functions like this but several:

  • b() returns void, pb() returns the address of b()

  • c() returns void, pc() returns the address of c()

and so on.

Now you want to store the addresses of pa(), pb(), pc() etc in an array, but you don't know how many of them there are yet, so you declare an array of unspecified size to hold all those.

The type of that array, is an array of pointers to functions that return pointers to functions that return void.

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If in doubt, typedef:

typedef void (*f1)();  // function returning void
typedef f1 (*f2)();    // function returning f1

f2 f[];                // your array (not valid C!)

Note that this has the same number of opening parentheses, closing parentheses, brackets and asterisks as your declaration.

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Excellent description, but why isn't it valid C? –  sarnold Nov 10 '11 at 23:18
    
@sarnold: You cannot have empty array specifiers without an initializer. Arrays must always have definite, compile-time known size. (Though you can use empty brackets in a function argument, in which case the array decays to a pointer.) –  Kerrek SB Nov 10 '11 at 23:18
    
Even in our new VLA C99? –  sarnold Nov 10 '11 at 23:20
    
@sarnold: Hehe, OK, in C99 you can have runtime-known size, but in any case it has to be fixed. The array size cannot be changed once the array has been declared. –  Kerrek SB Nov 10 '11 at 23:21
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You can have extern declarations of arrays of unknown size, though (6.7.5.2/8). So, extern f2 f[]; is a valid use of the questioner's type-of-doom. In that case the array type is an incomplete type (6.7.5.2/4), which is why it can't be a definition. –  Steve Jessop Nov 11 '11 at 2:09

I don't know if it is simple, but cdecl(1) can pull it apart for you:

cdecl> explain void (*(*f[])())();
declare f as array of pointer to function returning pointer to function returning void

(Not using the code formatting because it introduces the hateful horizontal scrollbar with that long descriptive line.)

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