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Early binding for template and late binding for virtual function. Therefore, is it safe if a template contains virtual function?

template<typename T> 
class base {
public:
    T data;
    virtual void fn(T t){}
};
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2  
Do you expect a problem with that? How would you write a program that checks to see whether it works properly? What happens when you run that program? –  Greg Hewgill Nov 1 '11 at 4:51

3 Answers 3

up vote 8 down vote accepted

It is completely safe. Once you instantiate the class template, it becomes normal class just like other classes.

template<typename T> 
class base {
public:
    T data;
    virtual void fn(T t){}
};


class derived : base<int> {
public:
    virtual void fn(int t){} //override
};

base<int> *pBase = new derived();
pBase->fn(10); //calls derived::fn()

I would also like to point out that while it is allowed virtual function in a class template, it is not allowed virtual function template inside a class (as shown below):

class A
{
   template<typename T>
   virtual void f(); //error: virtual function template is not allowed
};
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how is it a virtual function template ? –  krammer Nov 1 '11 at 5:20
    
@krammer: Because it is a function template and it is declared with virtual keyword, that is why it is a virtual function template. –  Nawaz Nov 1 '11 at 5:39
    
oh thanks. I was misled by the newline before virtual. –  krammer Nov 1 '11 at 9:38

Yes, it's quite safe. You'd use it by having a class derive from it:

class derived : public base<int> {
    virtual void fn(int) { std::cout << "derived"; }
};

Of course, if it contains any other virtual functions (i.e., is intended to be used as a base class) you generally want to make the dtor virtual as well.

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There is no safety concern associated with virtual function inside a template class. It is as good as, having a virtual function inside a normal class.

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