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I'm new to C++, and I'm now confused about the polymorphism concept and function pointers. It's kinda mixed up in my head.

In the code snipped below, I declare a function pointer that points to a method in BaseClass. Then I assigned it with &BaseClass::Print

The last two lines is the part i get confused: why these two lines doesn't yield the same result? I guess it's because the pointer myPtr points to the v-table, but i'm not sure. Also, if I want to make myPtr call the overridden BaseClass::Print() function, how could I do so?

Could anyone please clarify this to me? Thanks.

#include <iostream>
using namespace std;

class BaseClass{
    public:
        virtual void Print(){
            cout << "Hey!" << endl;
        }
};

class DerivedClass : public BaseClass
{
    public:
        void Print(){
            cout << "Derived!" << endl;
        } 
};

int main()
{
    BaseClass *b = new DerivedClass;

    void (BaseClass::*myPtr)();

    myPtr = &BaseClass::Print;

    (b->*myPtr)(); //print "Derived!"
    b->BaseClass::Print(); //print "Hey!"
}
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A good read if you want to know a bit more about the nitty gritty of member function pointers: codeproject.com/Articles/7150/… – Pete Feb 18 '13 at 22:37
    
Aside: Perhaps unintuitively, if print were to not be virtual, both would print "Hey!". – Dynite Feb 18 '13 at 23:25
up vote 4 down vote accepted

The line (b->*myPtr)(); calls the BaseClass::Print member of b. BaseClass::Print is a virtual function and, since you're calling it through a pointer type, will be looked up polymorphically. That is, the correct function according to the dynamic type of b (which is DerivedClass) will be found.

The second line b->BaseClass::Print(); explicitly calls the Print member function that is a member of BaseClass. That's precisely what this syntax is for. It says "Hey, I don't care what the dynamic type of b is - I want you to call the BaseClass version."

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this indeed clarify things. Thanks! – user2084986 Feb 19 '13 at 6:08

Even though you created object of type DerivedClass it still has information about class from which it inherits, in that case - BaseClass. So when you are using:

b->BaseClass::Print();

You just ask to call Print() method from it's parent - BaseClass.

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