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This question already has an answer here:

If a function is overloaded in a derived class but the function signature is unchanged, is there any way to call the derived class' function from a base class pointer? For instance:

Given the following base and derived classes

class Base {
public:
    Base(int n): n_(n) {}
    ~Base() {}
    int get_n() {
    return n_;
    }
private:
    const int n_;
};

class Derived : public Base {
public:
    Derived(int n): Base(n), n_(n) {}
    ~Derived() {}
    double get_n() {
    return 1.5*n_;
    }
private:
    const int n_;
};

Is there any way to get the following to output 1.5 given that two get_n() functions differ only in their return types?

#include <iostream>
int main() {
Base *b = new Derived(1);
std::cout << b->get_n() << std::endl;
}

marked as duplicate by Deduplicator, chris c++ Jun 6 '14 at 1:43

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  • Yes, use virtual, or member-function-pointers. – Deduplicator Jun 6 '14 at 1:36
  • You are changing the return type of get_n() so even if you made it a virtual function it will still not work. You should look at templates maybe or change the classes design – user142650 Jun 6 '14 at 1:38
  • I cannot use virtual if the return type has changed. – glinka Jun 6 '14 at 1:38
  • 2
  • @Deduplicator, The return type is not part of the signature. – chris Jun 6 '14 at 1:40
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Make your get_n virtual in base class. Like,

virtual int get_n() 
{
    return n_;
}

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