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Is the following acceptable programming practice:

class TestA
{
    protected:
        int A;

    public:
        TestA(){A = 10;}
        TestA &operator=(const TestA &ItemCopy)
        {
            A = ItemCopy.A;
            printf("A is: %d!\n",A);
            return *this;
        }
};

class TestB : public TestA
{
    protected:
        int B;

    public:
        TestB(){A = 20; B = 30;}
        operator const TestA&(){ return *this; } //Note returns reference, upcasts implicitly.
};

int main()
{
    TestA Test;
    TestB Test2;

    Test = Test2; //Calls Test2's (AKA TestB's) conversion operator
    return 0;
}

What reason is it acceptable/unacceptable?

(Please avoid making the obvious suggestion about making a TestB assignment operator in TestA - this is a question on whether upcasting and/or conversion operators should or should not be used in this manner).

I also encourage that feedback is left in the comments for question upvote/downvotes so I can improve my questions in future.

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1  
Note: you changed the accessibility of the operator, but your code still has public inheritance. –  Ben Voigt Oct 5 '11 at 14:31

2 Answers 2

up vote 2 down vote accepted

No conversion operator is needed here, a const TestA& is perfectly capable of binding to an instance of a derived class (because inheritance is public).

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Okay, I'll switch it to protected. This is just pseudo code so... –  SSight3 Oct 5 '11 at 14:25
    
I've upvoted both comments. Is it possible to hypothetically entertain a situation where it might be needed? –  SSight3 Oct 5 '11 at 14:27
1  
@SSight3: Obviously how "acceptable" it is would depend on that hypothetical situation. Quick example: change the inheritance to private. Then the operator serves a somewhat useful purpose: it gives users outside the class only const access to the base class, absent abuse of const_cast, only the class itself will be able to make changes to the base class content. –  Ben Voigt Oct 5 '11 at 14:30
    
So generally you're saying if TestA and TestB had the same protected members, then the downcast/assignment is automatic? What about in cases that involve pointers etc? –  SSight3 Oct 5 '11 at 14:42
    
@SSight3: What you have is an upcast, which is automatic, not a downcast. Pointers also upcast automatically. And it has nothing to do with "same members", it's because of inheritance. –  Ben Voigt Oct 5 '11 at 14:43

The operator you've written is actually not needed at all. The language does that for you automatically when you use public inheritance. You could completely remove the operator and it will still function the same. And upcasting is typically fine, that's how you use inheritance by assigning a parent pointer/reference to a derived instance.

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I've upvoted both comments. Is it possible to hypothetically entertain a situation where it might be needed? –  SSight3 Oct 5 '11 at 14:27

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