Query on friend function

/* How to get out like below using single friend function? Note: Don't use public getter method. show value = 100 show value = 1000 */ #include <iostream> using namespace std; class T { public: virtual int show()=0; virtual ~T() {} }; class Test:public T { public: int i; Test(int _i):i(_i) { } int show() { return i; } friend void display(T& ); }; class Test2:public T { int i; public: Test2(int _i):i(_i) { } int show() { return i; } friend void display(T& ); }; void display(T& t) { cout<<"show value = "<<t.i<<endl; } int main(void) { Test t(100); display(t); Test2 t1(1000); display(t1); return 0; }

c++friend

4th Jun 2019, 2:00 PM

$¢𝐎₹𝔭!𝐨𝓝

1 Answer

+ 1

First of all polymorphism doesn't work well with references, use pointers. The best solution is to use your virtual show from a base pointer and forget the friend function. Another way is to use CRTP but requires advanced knowledge and it's really complicated. template <typename D> Class Base{ friend void display<D>(Base*) }; class Derived : public Base<Derived>{ int i; }; template<typename T> void display (Base* b){ cout<< static_cast<T*>(b)->i; } not tested, I suggest you to use your virtual function which is intended for that.

4th Jun 2019, 9:27 PM

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