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I have two classes as follows in a header file

template<size_t N>
class Parent{
    protected:
    char array[N];
    size_t i;
    public:
    virtual void operator()(int i);
};

template<size_t N>
void Parent<N>::operator()(int i){
    this->i = i;
}

class Child: public Parent<16>{
    public:
    virtual void operator()();
};

Child has operator()() defined elsewhere in a cpp file. Whenever I include this header file from another cpp file I can access operator()() but operator()(int) is not even defined. Why is this? I thought since I inherit from a specific instance of Parent, all the methods of it should be instanced as well and available.

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2  
Is that actual code? You have a function with no return type. –  K-ballo Sep 26 '11 at 6:13
    
Show the exact code you're using (or a narrowed down example of the same thing) and the compiler error. –  selalerer Sep 26 '11 at 6:19
    
You could help people by indenting your code... –  arne Sep 26 '11 at 6:40

2 Answers 2

up vote 2 down vote accepted

Apart from the errors in your code, this is an example of hiding: Your derived class declares a function of the same name but with different signature as a base class. Thus the base function is hidden:

class A { virtual void foo(); };

class B : public A { virtual void foo(int); /* hides A::foo() ! */ };

Inheritance only affects functions that have the same signature (with some mild exceptions).

Your base class function is declared as void Parent<N>::operator()(int), while in your derived class you declare void Child::operator()().

In C++11 you can explicitly say virtual void foo(int) override to trigger a compiler error if the function isn't overriding anything.

If you intentionally want to define a new function with the same name as an existing one but with different signature, and not overriding the base function, then you can make the base function visible with a using directive:

class C : public A
{
  using A::foo();
  void foo(int);
};  // now have both C::foo(int) and C::foo()
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Add information on making hidden functions visible with using. –  K-ballo Sep 26 '11 at 8:25
    
@K-ballo: OK, done. I wasn't sure if the OP was looking for that, but it's actually quite likely. –  Kerrek SB Sep 26 '11 at 8:29
    
Thank you. I had posted the example in a fury before I went to sleep. I appreciate the help. I think I have ran into the issue once before, but cannot seem to commit this use of the 'using' operator to my knowledge of c++. –  Eric Urban Sep 26 '11 at 22:44

Because the Parent's operator() hides the Child's operator() (they have different signatures). How come you are not getting warnings when you compile your code?

This is how it should be :

class Child: public Parent<16>{
  public:
    using Parent<16>::operator();
    virtual void operator()();
};
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