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I have a number of classes that represent various computer components, each of which have an overloaded << operator declared as follows:

friend ostream& operator << (ostream& os, const MotherBoard& mb);

Each returns an ostream object with a unique stream describing that component, some of which are composed of other components. I decided to create a base class called Component in order to generate a unique id as well as some other functions that all the components will publicly derive. Of course, the overloaded << operator doesn't work with pointers to Component objects.

I was wondering how I would effect something like a pure virtual function that will be overwritten by each derived class's << operator so I could do something like:

Component* mobo = new MotherBoard();

cout << *mobo << endl;

delete mobo;

Also related to: overloading << operators and inherited classes

share|improve this question
up vote 5 down vote accepted

Maybe something like this:

#include <iostream>

class Component 
{
public:
    // Constructor, destructor and other stuff

    virtual std::ostream &output(std::ostream &os) const
        { os << "Generic component\n"; return os; }
};

class MotherBoard : public Component
{
public:
    // Constructor, destructor and other stuff

    virtual std::ostream &output(std::ostream &os) const
        { os << "Motherboard\n"; return os; }
};

std::ostream &operator<<(std::ostream &os, const Component &component)
{
    return component.output(os);
}

int main()
{
    MotherBoard mb; 
    Component &component = mb;

    std::cout << component;
}
share|improve this answer
    
+1 I have actually seen this a couple of times and it makes sense. But, given that output is public, operator<< need not be a friend (and shouldn't). Also, in the past I have seen the signature as: virtual std::ostream& print( std::ostream& out ) const; so that it could be chained if called manually: myobj.output( std::cout ) << std::endl; I don't quite like the syntax though. – David Rodríguez - dribeas Feb 10 '12 at 13:39
    
@DavidRodríguez-dribeas You're right, the friend declaration isn't needed, just a force of habit I guess. :) Updated code as per your suggestions. – Joachim Pileborg Feb 10 '12 at 13:44

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