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Assume the following simple case (notice the location of virtual)

class A {
    virtual void func();
};

class B : public A {
    void func();
};

class C : public B {
    void func();
};

Would the following call call B::func() or C::func()?

B* ptr_b = new C();
ptr_b->func();
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1  
yes, declaring a method as virtual makes all its descendants virtual –  knittl Apr 10 '11 at 10:44

3 Answers 3

up vote 6 down vote accepted

Examples using pointers as well as reference.

  • Using pointer

    B *pB = new C();
    pB->func(); //calls C::func()
    
    A *pA = new C();
    pA->func(); //calls C::func()
    
  • Using reference. Note the last call: the most important call.

    C c;
    B & b = c;
    b.func(); //calls C::func() 
    
    //IMPORTANT - using reference!
    A & a = b;
    a.func(); //calls C::func(), not B::func()
    

Online Demo : http://ideone.com/fdpU7

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  1. Your code is invalid C++. What are the parentheses in class definition?
  2. It depends on the dynamic type of the object that is pointed to by pointer_to_b_type.
  3. If I understand what you really want to ask, then 'Yes'. This calls C::func:

    C c;
    B* p = &c;
    p->func();
    
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@Amir: he IS asking yes/no question. –  Nawaz Apr 10 '11 at 8:58
    
@Amir: "Is “Virtual” inherited to all descendants" sounds like a yes/no question to me. –  Xeo Apr 10 '11 at 8:59
    
@Amir: really? I've always thought that questions of the form "Is ..." and "Would ..." are yes/no questions. –  ybungalobill Apr 10 '11 at 9:00
    
I corrected the code, thanks –  Jonathan Apr 10 '11 at 9:00

It calls the function in the class that you're referring to. It works it's way up if it doesn't exist, however.

Try the following code:

#include <iostream>
using namespace std;

class A {
    public:
    virtual void func() { cout << "Hi from A!" << endl; }
};

class B : public A {
    public:
    void func()  { cout << "Hi from B!" << endl; }
};

class C : public B {
    public:
    void func()  { cout << "Hi from C!" << endl; }
};

int main() {
  B* b_object = new C;
  b_object->func();
  return 0;
}

Hope this helps

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Apologies for that - I completely missed that in his post. Amended. My answer still stands though ;) –  Ben Stott Apr 10 '11 at 9:09
    
Yep, now it's fine. –  Xeo Apr 10 '11 at 9:12

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