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I am using gcc. I am aware how the virtual destructors solve the problem when we destroy a derived class object pointed by a base class pointer. I want to know how do they work?

class A
{
      public:
      A(){cout<<"A constructor"<<endl;}
     ~A(){cout<<"A destructor"<<endl;}

};

class B:public A
{
      public:
      B(){cout<<"B constructor"<<endl;}
      ~B(){cout<<"B destructor"<<endl;}
};       

int main()
{
  A * a = new B();
  delete a;    
  getch();
  return 0;   
} 

When I change A's destructor to a virtual function, the problem is solved. What is the inner working for this. Why do I make A's destructor virtual. I want to know what happens to the vtable of A and B?

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2 Answers 2

up vote 4 down vote accepted

The key thing you need to know is that not using a virtual destructor in the above code is undefined behavior and that's not what you want. Virtual destructors are like any other virtual functions - when you call delete the program will decide what destructor to call right in runtime and that solves your problem.

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@sharptooth: Why doesn't the same problem occur in the case of constructors? –  Bruce Apr 22 '10 at 12:04
3  
@Jack When you constructed your object, you explicitly called new B(), so at that point the object is unambiguously a B, and so the B constructor was called. But when the object was deleted, what you deleted was an A*, so it is treated as if it were an A object, and so the A destructor is called unless it is virtual. –  Tyler McHenry Apr 22 '10 at 12:12
    
@Tyler McHenry: Thanks a lot that really cleared a lot of thing for me :) –  Bruce Apr 22 '10 at 12:19

Virtual destructor is just a virtual function, so it adheres to the same rules.

When you call delete a, a destructor is implicitly called. If the destructor is not virtual, you get called a->~A(), because it's called as every other non-virtual function.

However if the destructor is virtual, you get ~B() called, as expected: the destructor function is virtual, so what gets called is the destructor of derived class, not base class.

Edit:
Note that the destructor of the base class will be called implicitly after the destructor of the derived class finishes. This is a difference to the usual virtual functions.

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2  
but shouldn't virtual functions have the same name? –  Bruce Apr 22 '10 at 11:56
3  
@Jack: usually yes; destructor is an exception. –  Vlad Apr 22 '10 at 11:56
2  
@Jack: That would not be possible for destructors - they must have the same name as the class they belong to. –  sharptooth Apr 22 '10 at 11:57
2  
Luckily, the compiler treats all destructors as if they where the same function, "destroy()". So virtual overriding of the destructor works. –  Little Bobby Tables Apr 22 '10 at 11:58
3  
@Jack: there is no construction polymorphism in C++: with constructors, you always get an instance of the class according to the constructor you called. With destruction, it's more complicated: you can destroy an object by a pointer to the base class. –  Vlad Apr 22 '10 at 12:07

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