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Am a newbie to C++.

class A 
{
    public:
        int i;
    protected: //**--- [1]**
        void set()
        {
            i=5;
            cout<<i;
        }
};

class B : public A
{
    public:
        void call()
        {
            A obj;
            obj.set(); //**----[2]**
            set(); //**---[3]**
        }
};

int main()
{
    B* b_obj = new B;
    b_obj->call();
}

Why doesn't the code compiled if i try including [2] and not replacing [1] to public BUT it works if i compile including [3] alone?

Compiled error: error: ‘void A::set()’ is protected.

In short, My intention is to understand why base object cannot be called in derived class if the access specifier for the base class interface is set as protected.

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marked as duplicate by Angew, mkaes, Oliver Charlesworth, Mike Seymour, Ben Voigt Jun 1 '13 at 3:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I believe A is Pet and B is Dog, but it's a wild guess. @OP - please clarify. –  Kiril Kirov May 31 '13 at 9:14

2 Answers 2

Not sure if my answer is correct, but here goes:

set is protected in class A. This means no outside member can access set, but derived classes can.

When calling set() by itself inside B you are calling the function as a derived function from A inside your derived class B, meaning the compiler will accept this because the function is protected (accessible to derived classes.)

However when you define A obj, calling obj.set(), in relation to the obj instance, the call is external to the class, hence why the compiler gives error.

Hope that helps.

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Pet is unrelated to A or B, so whether f.set() is allowed depends on the definition of Pet. By contrast, just set() works because it's protected in the base class, and hence accessible in derived classes.

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thanks for pointing out the mistakes. now rectified. –  Xpeditor May 31 '13 at 9:18

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