Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let's say I make a class, like, which contains a char array. Now, what operator handles this:

myClass inst;
cout << inst;

At the "cout << inst;" what is called, by simply the class' name? Thanks.

share|improve this question
6  
The << operator? –  Shog9 Oct 27 '10 at 18:24
    
Tricky one :D. You got me there :-D. Haha. Thank you. So my original question is dumb as always, since there is no need to have an universal "return value", you can define it with every operator including the binary shift operator etc... Do I got it right? –  johnny-john Oct 27 '10 at 18:26
    
Perfect man, thank you. –  johnny-john Oct 27 '10 at 21:01

5 Answers 5

up vote 12 down vote accepted

What is called is std::ostream &operator<<(std::ostream &, myClass const &). You can overload this if you want.

share|improve this answer

By creating a friend output operator, as in the following example.

#include <iostream>

class MyClass {
  friend std::ostream & operator<<(std::ostream &out, const MyClass &inst);
public:
  // ... public interface ...
private:
  char array[SOME_FIXED_SIZE];
};

std::ostream & operator<<(std::ostream &out, const MyClass &inst)
{
   out.write(inst.array, SOME_FIXED_SIZE);
   return out;
}

Please not this makes some assumptions about what you mean by "char array", it is greatly simplified if your char array is actually nul (0 character) terminated.

Update: I will say this is not strictly a return value for the class, but rather a textual representation of the class -- which you are free to define.

share|improve this answer
    
Doesn't have to be friend function, but then you have to add another public function method to the class, which will really print values (or whatever) to the ostream. –  BЈовић Oct 27 '10 at 19:01
    
It may be that all the information needed to print the object is available in public functions. The operator<<() has to be external to the class (since the first argument isn't of the class type). It can be a friend, if it gets all its information from the public class interface. It can call a member function to perform the printing, and sometimes this is a good idea. –  David Thornley Oct 27 '10 at 19:22
    
@VJo + @David -- yes I totally agree it does not need to be a friend function if you can collect all the information from the public interface. –  Marc Butler Oct 27 '10 at 22:21

The compiler will look for an overload of operator<<. In particular, it will look for either a member-function overload of std::ostream (won't exist), or a free function, that you should overload with the following prototype:

std::ostream &operator<< (std::ostream &os, const myClass &x);

You may need to make this a friend of myClass if you need to access protected/private members.

share|improve this answer

This results in compiler error, unless you have an overloaded typecast operator for some type that ostream knows. You can add your own types to the types that ostream knows by overloading the global ostream& operator(ostream& os, const myClass& x) or making your type convertible to a string/int etc. Be careful though, the typecast overloading can shoot you in the foot and is considered a bad practice.

The simplest way is just printing some variables from your class:

myClass inst;
cout << inst.getName() << ": " << inst.getSomeValue();
share|improve this answer

To be able to use std::cout << someClass, you have to create an operator like following :

std::ostream &operator<< (std::ostream &, const someClass &);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.