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The following C++ code doesn't compile:

class BaseA {
protected:
    BaseA &operator = (const BaseA &rhs);
};

template<typename T>
class BaseB {
public:
    T &operator = (const T &rhs) {
        return *static_cast<T *>(this);
    };
};

class Derived :
    public BaseA,
    public BaseB<Derived> {
};

int main() {
    Derived foo;
    Derived bar;
    foo = bar;
    return 0;
};

When I try to compile this I get a complaint that BaseA &BaseA::operator = (const BaseA &) is undefined. There are several other questions like this on stackoverflow however they all seem to concern the compiler auto-generating a Derived &Derived::operator = (const Derived &) function which calls BaseA::operator = (const BaseA&). In this case though Derived should already be inheriting a function with that exact signature from BaseB<Derived>. If I follow the advice on another question and add using BaseB<Derived>::operator =; to Derived the compiler complains that Derived &operator = (const Derived &) cannot be overloaded.

Is it simply not possible for a class to inherit this operator?

Edit: To be clear, I'm confused why the compiler is giving Derived a default Derived &operator = (const Derived &) when it already inherits T &operator (const T &) where [T = Derived] from Base<Derived>. I can understand why the default copy assignment operator would normally be created and override any inherited assignment operators but in this case Derived is inheriting an operator with the exact same signature as its copy assignment operator. Is there a way to write BaseB so that its subclasses use this operator?

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I'm not sure how that error relates to your question. You're getting that error because you declared that function, but never defined it. –  Drew Dormann Apr 24 '13 at 3:56
    
The compiler is quite right that you haven't defined BaseA& operator= since you've only declared it. Change it to BaseA &operator = (const BaseA &rhs) = default; and it will happily compile. –  Yuushi Apr 24 '13 at 3:58
    
The linker shouldn't care that it isn't defined because it should never be getting called. The only reason it would be getting called is if the compiler is generating its own Derived::operator = (const Derived &) function. –  Shum Apr 24 '13 at 4:01
    
If your goal is to have Derived's assignment operator not call BaseA's assignment operator, then you are going to have to create a custom assignment operator for Derived. –  Vaughn Cato Apr 24 '13 at 4:17

3 Answers 3

no, assignment operator operator= is not inherited. You don't have a default

Derived& operator=(const BaseA& a);

in your Derived class.

A default assignment operator, however, is created:

Derived& operator=(const Derived& a);

and this calls the assignment operator from BaseA. So it's not a matter of inheriting the assignment operator, but calling it via the default generated operator in your derived class. And some notes: Standard says (12.8):

An assignment operator shall be implemented by a non-static member function with exactly one parameter. Because a copy assignment operator operator= is implicitly declared for a class if not declared by the user (12.8), a base class assignment operator is always hidden by the copy assignment operator of the derived class.

and then assignment operator of derived call your base

The implicitly-defined copy/move assignment operator for a non-union class X performs memberwise copy-/move assignment of its subobjects. The direct base classes of X are assigned first, in the order of their declaration in the base-specifier-list, and then the immediate non-static data members of X are assigned, in the order in which they were declared in the class definition.

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The assignment operator is one of the special member functions. If you don't provide one yourself the compiler will generate one for you by assigning the bases and then the members. If any of the base does not have an assignment operator one will be generated.

Your problem is that you have declared the assignment operator for BaseA, but have not provided a definition. Because it is declared, the compiler will not generate one for you, but it will try to call it to copy the BaseA subobject. The linker will then fail to find the definition.

Note that for the specific case of assignment, inheriting the base implementation does not really make sense. If that was used, as soon as one base had an assignment operator, the rest of the object would not be assigned. The semantics of the operation would be broken in most cases.

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You can inherit base class operators and all other methods, if you not declare it in the base class - default assignment operator will be generated by compiler, if you declare it - when you have to provide you own implementation, so you are getting the error due to operator= is not defined in you BaseA class, only declared.

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