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Consider following hierarchy:

class Interface {
public:
    virtual void foo() = 0;
};

class SubInterface: public Interface {
public:
    virtual void bar() = 0;
};

class Base: public Interface {
public:
    void foo() {};
};

class Impl: public SubInterface, public Base {
public:
    void bar() {};
};
  • There are several sub interfaces which offer other methods in addition to foo().
  • There can be several implementing classes to a sub interface.
  • foo() is always implemented the same way.

Here is an example which simulates how these classes would be used:

int main() {
    SubInterface* view1 = new Impl(); // Error! Interface::foo() is pure virtual within Impl
    view1->foo();
    view1->bar();
    Interface* view2 = view1;
    view2->foo();
}

Why can't the compiler see that Interface::foo() is implemented in Base which Impl inherits from?

I figured that I could implement foo() in Impl explicitly and delegate the call to Base like this:

class Impl: public SubInterface, public Base {
public:
    void foo() {
        Base::foo();
    }
    void bar() {};
};

However, I would have to do that for all classes which implement a sub interface, so this way isn't exactly ideal. Is there a better solution?

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Oh, I really wish this was possible. –  Travis Gockel Feb 17 '13 at 1:36
    
@Travis: what do you mean? Of course it's possible... –  eladidan Feb 17 '13 at 1:50
    
@eladidan: It is possible if he can add virtual inheritance to Base and SubInterface...I suppose it isn't clear in the question :-) –  Travis Gockel Feb 17 '13 at 6:37

2 Answers 2

up vote 5 down vote accepted

SubInterface and Base should inherit virtually from Interface otherwise you are creating ambiguity in form of the dreaded diamond Basically, what happens is that Impl contains two 'instances' of Interface.

share|improve this answer
    
Ah. I had read about the virtual inheritance when trying to solve this but I screwed up by making Impl inherit Interface virtually. Thanks. My fancy IDE still thinks that Impl is abstract but it works in gcc. –  user2079303 Feb 17 '13 at 10:18
    
Actually, it's virtual inheritance that creates a diamond. Without virtual inheritance you get a tree. –  Pete Becker Feb 17 '13 at 13:35

Here is why - follow the diagram:

enter image description here

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