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I write a virtual function with protected inherientence

#include<iostream>
using namespace std;
class D{
private:
    int a;
protected:
    int b;
public:
    D(){a=b=c=0;}
    virtual void f(){
    a=2;
    cout <<"D::f"<<a<<endl;
    }
    void g(){cout<<"D::g"<<a<<endl;}
    int c;
};
class E:protected D{
    private:
        int a,b,c;
    public:
        E(){a=b=c;}
        void f(){
            a=3;
            cout<<"E::f"<<a<<endl;
        }
        void g(){cout<<"E::g"<<a<<endl;}
};
int main(){
    D *d = new E;
    d->f();
    d->g();
    return 0;
}

but if I use it, it turn out inaccessible base.

If I change it to public inherience , it can run.

I wonder that why I cannot use D *d = new E; with private and protected inherience?

Thx in advance.

share|improve this question
up vote 3 down vote accepted

private or protected base means the base is inaccessible to the world. So when you write an expression which requires conversion from the derived to the inaccessible base, that is forbidden due to accessibility rules because the conversion needs to take place at the call-site which is a part of the world.

In object-oriented terminology, private or protected base doesn't define is-a relationship. It is actually an implemented-in-terms-of relationship, which is composition in simpler term.

share|improve this answer
    
Sorry, I still don't understand how it violate the accessiblity rule? I think that I just make a base class pointer to the derived class only. – Liang-Yu Pan Jan 9 '13 at 20:22
    
@Liang-YuPan: The base, being protected, cannot be accessed from outside. It is NOT a base in object-oriented sense when you view it from outside. Try to understand the protected thing. – Nawaz Jan 9 '13 at 20:25

because non-public inheritance does not define a "is-a" relationship, compiler generally will not allow implicit up-cast

The following would have worked, but it's a bad idea/design

D*d = (D*)(new E);
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