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i have a question for the operatorr << in derived clases ex:

if i have

class Base
{
      //......
      friend ostream& operator<<(ostream& out,Base &B)
      {
          return  out<<B.x<<B.y<</*........*/<<endl;
      }
      //......    
};

is the folowing posible?

class Derived: public Base
{
       //......
       friend ostream& operator<<(ostream& out,Derived &DERIVEDOBJECT)
       {
           return  out<<DERIVEDOBJECT<<DERIVEDOBJECT.nonderivedvar1 <</*.....*/<< endl;
       }
}

or putting the DERIVEDOBJECT in the << operator won't result in the << recoqnizing it as a reference just to the base class?

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1  
@Aleksander - Use 4 spaces before each code statement or just use {} that is present on the editior window for code formatting. –  Mahesh Apr 20 '11 at 21:56

3 Answers 3

What you normally want is something like this:

class Base { 

     virtual std::ostream &write(std::ostream &os) { 
         // write *this to stream
         return os;
     }
};

std::ostream &operator<<(std::ostream &os, Base const &b) { 
     return b.write(os); 
}

Then a derived class overrides write when/if necessary.

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+1: In the end it is probably best to have a specific write function. –  Loki Astari Apr 20 '11 at 21:59
    
I think the b.write won't call the virtual function because its not a call by pointer. –  Giovanni Funchal Apr 20 '11 at 22:02
    
@Giovanni: Polymorphism in C++ works just as well with references as it does with pointers. –  Fred Larson Apr 20 '11 at 22:21
    
Ah, yes, I didn't see the reference (I usually write const Base& b not Base const &b). –  Giovanni Funchal Apr 20 '11 at 22:22

This is going to cause a recursive call:

out<<DERIVEDOBJECT

I would do:

   friend ostream& operator(ostream& out,Derived &DERIVEDOBJECT)
   {
       return  out << static_cast<Base&>(DERIVEDOBJECT)
                   << DERIVEDOBJECT.nonderivedvar1
                   <<.....<< endl;
   }

PS. Space and lowercase letters are your friends.
By convention identifiers that are all uppercase are macros so you may confuse people by using all uppercase identifiers for normal variables.

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+1 for talking about lowercasing variables. THOSE HURTS MY EYES :-) –  Giovanni Funchal Apr 20 '11 at 22:10

You can achieve the expected result by upcasting to the base type:

struct base {};
std::ostream& operator<<( std::ostream& o, base const & b ) {
   return o << "base";
};
struct derived : base {};
std::ostream& operator<<( std::ostream& o, derived const & d ) {
   return o << static_cast<base&>(d) << " derived";
}
int main() {
   derived d;
   std::cout << d << std::endl; // "base derived"
}
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