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I've found a strange behavior while using a reference variable.

Here is class implementations:

class Base {
    public:
        virtual void Method() = 0;
};

class DerivedA : public Base {
    public:
        virtual void Method() {}
}

class DerivedB : public Base {
    public:
        virtual void Method() {}
}

Here is an example code which have the strange behavior:

void main(int argc, char *argv[]) {
    DerivedA a;
    DerivedB b;
    Base &base = a;

    base.Method();   // Calls DerivedA::Method

    base = b;
    base.Method();   // Calls DerivedA::Method!!! Why doesn't call DerivedB.Method()?
}

In conclusion, it seems that the virtual function pointer table "associated" to the reference variable is determine only when initializing the reference variable. If I re-assign the reference variable the vfpt doesn't change.

What happens here?

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2 Answers 2

up vote 10 down vote accepted

Base &base is a reference, i.e. alias to the a object, so the assignment base = b is equivalent to a = b, which leaves the base thingie still the same object of the same class. It is not a reassignment of pointer as you seem to assume.

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4  
I think this answer deserves the green tick! –  Walter Dec 3 '11 at 13:57
1  
Yeah, I think this should be the accepted answer. –  Rafid Nov 24 '13 at 11:38
    
Thanks, though accepted answer is the one questioner has accepted and it's okay that he accepted the other answer ;-) –  Michael Krelin - hacker Nov 24 '13 at 15:45

References can only be initialized once. You can not assign a new object to a reference. What is actually happening here is that operator= of Base is called and the underlying object is still DerivedA and not DerivedB.

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1  
Every day there is always something to learn. –  Luca Dec 3 '11 at 10:48
    
I am not sure this is correct actually. The operator= is not defined in Base, so there is nothing to call really, apart from C++ default implementation of operator=. I think what is happening here is what @MichaelKrelin answered below. –  Rafid Nov 24 '13 at 11:39
    
@Rafid As you wrote, there's the default implementation of operator=. The default implementation is not virtual and the type of base is Base so Base::operator=() is called. Michael answer is correct too. The two answers do not contradict each other. –  selalerer Nov 24 '13 at 12:41
    
This answer contradicts neither my answer nor the truth. The only thing that bothers me is how is it important that the default operator= implementation is not virtual? ;-) –  Michael Krelin - hacker Nov 24 '13 at 15:50
    
@MichaelKrelin-hacker Just noting that which operator is to be called is dependent only on the type of the reference and not dependent on the type of the object. –  selalerer Nov 24 '13 at 16:59

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