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I know that when you want to declare a polymorphic function you have to declare the base class function virtual.

class Base
{
public:
    virtual void f();
};

My question is are you required to declare the inheriting class function as virtual, even if it's expected that Child behaves as if it were "sealed"?

class Child : public Base
{
public:
    void f();
};
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I know if Child could be inherited from and f() in turn overridden virtual is required That is just plain wrong. because he base class's function is virtual, any inheriting function is implied virtual. As such, there is no need to use virtual again. Not ever. –  Jasper Apr 20 '12 at 20:42

3 Answers 3

up vote 7 down vote accepted

No, you don't need to re-declare the function virtual.

A virtual function in a base class will automatically declare all overriding functions as virtual:

struct A
{
   void foo();          //not virtual
};
struct B : A
{
   virtual void foo();  //virtual
}
struct C : B
{
   void foo();          //virtual
}
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1  
remember to re-edit your example so that C is inheriting from B. –  Kevin Anderson Apr 20 '12 at 20:41
    
@Kevin thanks for that. Also, B from A. –  Luchian Grigore Apr 20 '12 at 20:42

Declaring f() as virtual in Child helps some one reading the definition of Child. It is useful as documentation.

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Once the base class override is marked as virtual all other overrides are implicitly so. While you are not required to mark the function as virtual I tend to do so for documentation purposes.

As of the last part: even if it's expected that Child behaves as if it were "sealed"?, if you want to seal the class, you can actually do it in C++11 (this was not fully implementable in C++03 generically) by creating a seal class like so:

template <typename T>
class seal {
   seal() {}
   friend T;
};

And then inheriting your sealed class from it (CRTP):

class Child : public Base, virtual seal<Child> {
// ...
};

The trick is that because of the use of virtual inheritance, the most derived type in the hierarchy must call the virtual base constructor (int this case seal<Child>), but that constructor is private in the templated class, and only available to Child through the friend declaration.

In C++ you would have to either create a seal type for every class that you wanted to seal, or else use a generic approach that did not provide a perfect seal (it could be tampered with)

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