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My question is pretty simple. I'm learning about friend functions, but this does not work for some reason. It only words if i swap the screen class with the Window_Mgr class, and then add a forward declaration of the screen class. Does it not work because screen doesn't know of the existence of "Relocate" at that point in time?

class Window_Mgr;
class screen
{
public:
    typedef string::size_type index;
    friend Window_Mgr& Window_Mgr::relocate(int, int, screen&);
private:
    int width, height;
};

class Window_Mgr
{
public:
    Window_Mgr& relocate(int r, int c, screen& s);
private:

};

Window_Mgr& Window_Mgr::relocate(int r, int c, screen& s)
{
    s.height=10;
    s.width=10;
};

int main(int argc, char* argv[])
{

    system("pause");
}
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What compiler error do you get? – aschepler Jan 18 '13 at 15:53
2  
You never call anything in main() what were you expecting? – Alok Save Jan 18 '13 at 15:53
    
Your guess is correct. It does not work because screen doesn't know of the existence of Relocate at that point in time. – Angew Jan 18 '13 at 15:54
    
IMHO you should avoid friend functions. Scott Myers has a good argument to this recourse. – Ed Heal Jan 18 '13 at 15:54
    
You can't refer to members of a class until after they are declared. This is not specific to friend. – Bo Persson Jan 18 '13 at 15:55

You have to define the class Window_Mgr BEFORE screen, because in your code the compiler cannot make sure that Window_Mgr really has a member function with name relocate, OR you are simply lying to it. The compiler parses the file from top to bottom, and on the way down, it's job is to make sure that every declaration is a fact, not lie!

Since relocate() takes a parameter of type screen&, you've to provide the forward declaration of screen instead!

With these fixes, (and along with other minor ones) this code compiles fine now (ignore the silly warnings).

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Is it worth mentioning that this is distinctly different from non-member functions, in which case the friend declaration also serves as a function declaration, which it cannot do for member functions (for obvious reasons)? – JaredC Jan 18 '13 at 16:07
    
@JaredC: That is an interesting question. But it is not entirely different from non-member functions. The rule is more about scope, rather than member-ness of a function. I mean a friend from different namespace will have the same problem, e.g friend void other_namespace::relocate(int, int, screen&); is NOT a declaration. So if you have to provide the declaration before the class even in this case! – Nawaz Jan 18 '13 at 16:30
    
Nice clarification, thanks! – JaredC Jan 18 '13 at 16:46
    
In the previous comment, I meant, "[...] is NOT a function declaration." It is a friend declaration though! – Nawaz Jan 18 '13 at 17:04

Yes, Window_Mgr::relocate is unknown at the time of the friend declaration. You have to define Window_Mgr beforehand.

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