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I wrote the following code:

class Osoba{
private:
    string imie, nazwisko, kolorOczu;
    friend void Dziecko::coutall();
public:
    Osoba(string imie, string nazwisko, string kolorOczu):imie(imie), nazwisko(nazwisko), kolorOczu(kolorOczu){};
    void coutall(){
        cout << "Imie: " << imie << endl; //
        cout << "Nazwisko: " << nazwisko << endl;
        cout << "Kolor oczu: " << kolorOczu << endl;
    }

};

class Dziecko: public Osoba{
private:
    string nazwaPrzedszkola, choroba;
    typedef Osoba super;
public:
    Dziecko(string imie, string nazwisko, string kolorOczu, string nazwaPrzedszkola, string choroba):super(imie, nazwisko, kolorOczu), nazwaPrzedszkola(nazwaPrzedszkola), choroba(choroba){};
    void coutall(){
        cout << super::imie; // this one gets underlined.
        cout << "Nazwa przedszkola: " << nazwaPrzedszkola << endl;
        cout << "Choroba: " << choroba << endl;
    }
};

and this line is underlined:

cout << super::imie; 

It says it's inaccessible. But in my opinion it is - I "friended" this method. I tried a forward declaration of class Dziecko - didn't work, either. What am I doing wrong?

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3 Answers 3

You can declare another class' member function as a friend, but for that, you need the class' definition. So this would work:

class Bar; // fwd declaration

struct Foo
{
  void foo(Bar&);
};

struct Bar
{
 private:
  int i;
  friend void Foo::foo(Bar&); // requires Foo definition
};

void Foo::foo(Bar& b) { b.i = 42; } // requires Bar definition

But you are using inheritance, which means that you cannot have the derived class' definition before the base class' one.

You have two ways of granting the derived type access to the base's non-public members: declare the class as friend, or make the relevant data members protected.

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You cannot do it, because Dziecko::coutall is not defined when Osoba is compiled and there are no means in c++ to make forward member method declaration. Instead you can make friend all Dziecko class (as Nbr44 suggested)

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This is correct. but making friend to the entire class doesnt look like the best practice if using inheritance... –  Itzik984 Jan 6 at 16:39
    
I agree. Maybe it makes sense to provide protected method in Osoba that return const ref to imie? –  sliser Jan 6 at 16:49

It seems you can't call that method because it uses private members of class Osoba.

Try using the imie as a protected variable instead of private.

Here is a short explenation.

The 2 options available are:

1) friend the entire class, not a good practice when using inheritance.

2) Use protected members. this is the best way to access private members on inheritance.

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OP expects the friend declaration to fix this. So the question is, why doesn't it? –  juanchopanza Jan 6 at 16:22
    
The page states Private members of the base class cannot be used by the derived class unless friend declarations within the base class explicitly grant access to them, which is the issue the OP seems to be encountering. –  Nbr44 Jan 6 at 16:22
    
so you say I should friend the whole class? so it's impossible to friend just one method of a derived class? –  TomDavies92 Jan 6 at 16:25
    
@TomDavies92, the previous comments were right. im not on my pc right now so i cant check that. i would try to use the 'imie' as protected. for now. will that work? –  Itzik984 Jan 6 at 16:29
    
@TomDavies92 the problem is that you need the full derived class definition in order to declare the friend member function. But you can't have it because it requires the full base definition. If there was no inheritance, you could make it work. –  juanchopanza Jan 6 at 16:32

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