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i have a struct like this

struct X{
    ostream out;
    X() : out(cout) {}
    ...
};

and I noticed that I have to define out with the & to correctly pass cout as default parameter: ostream &out; I don't know why and I don't know if there are other possibilities keeping ostream without the &. Furthermore, when I try to set

X x;
ofstream out;
x.out = out;

the compiler found many errors... I want to be able to set X::out to cout or to an ofstream. How to do it?

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2  
ostream is essentially an abstract base class, which moreover is not copyable (but movable). – Kerrek SB May 31 '14 at 13:36
up vote 1 down vote accepted

ostreams cannot be passed by value. You have to pass by reference or pointer.

If you want the ability to make x.out refer to different streams during its lifetime, then make it a pointer. Otherwise make it a reference.

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I wonder why. One could implement copy and assignment semantics similar to a shared_ptr, couldn't one? I.e. all copies refer to the same fd and share one buffer, unless re-assigned to. – Peter A. Schneider May 31 '14 at 13:36
    
@PeterSchneider: Well, you can always just do std::shared_ptr<std::ostream> (which has the same problems as a stream class doing this directly would have) – Christian Hackl May 31 '14 at 13:57
    
@ChristianHackl With disastrous results for cout, if I'm not mistaken... – Peter A. Schneider May 31 '14 at 13:58
    
@PeterSchneider: Yes, I edited my comment to reflect this. – Christian Hackl May 31 '14 at 13:59

The best thing you can probably do is to change your class design so that you don't need to initialize a member variable anymore. Copying is prevented by the compiler, solutions based on pointers will introduce ownership issues, std::shared_ptr creates troubles with std::cout, and a reference member will create the possibility of dangling references.

Try to refactor your code such that a stream is always passed as a reference to methods from outside when needed:

struct X{
    X() {}
    void f(std::ostream &os);
};
share|improve this answer

Stream object are cannot be copied, you need to use reference.

struct X{
    ostream& out;

     X() :out( std::cout ) {}

     // X( ostream& out_ = std::cout ) : out( out_ ) {}

}; 
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