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So I have this code written by myself but taken from other example codes...

class A{
    friend std::ostream& operator<< (std::ostream& out, A& a);
    // Constructors, destructor, and variables have been declared
    // and initialized and all good.
}

std::ostream& operator<< (std::ostream& out, A& a){
    out << " this gets written " << endl; // it doesn't get executed
    return out;
}

int main(){
    A *_a = new A();
    return 0;
}

And well, this is just not printing in the console " this gets written "

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3  
Your code makes no sense. Your << operator accepts an argument of type AccountInfo&, not A*, and you're not even showing us the part where you actually try to use the operator. You've omitted so much code that was is left is useless for debugging your problem. –  meagar Feb 2 '12 at 20:18
    
use? I thought it was kind of automatic, like when an object gets created. Also the AccountInfo type is a mistake, I will fix it now. –  Yokhen Feb 2 '12 at 20:20
1  
By "use" I mean, "show us how you're attempting to write your object to a stream". You can't just declare the operator and expect it to do something, you have to actually invoke it. What are you expecting the above code to do? The only code you've posted, A *_a = new A();, has nothing to do with a << operator or streams. It just makes a new A and then exits. –  meagar Feb 2 '12 at 20:22
    
umm well I have the friend std::ostream& operator<< (std::ostream& out, A& a); inside the class, I thought that would write it into the console every time a new object was created or something like that. –  Yokhen Feb 2 '12 at 20:28
3  
I think it's time for a good book on C++! –  Kerrek SB Feb 2 '12 at 20:54

1 Answer 1

If you're attempting to use the operator via std::cout << a or something similar, the problem is you're passing a pointer to an object, while the << operator is defined as taking a reference to an object. You either need to declare a as regular (non-pointer) A, or use std::cout << *a.

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where should I use std::cout << *a so that it's written every time that a new A object is created it's printed? –  Yokhen Feb 2 '12 at 20:26
1  
Inside the class's constructor. You would write something like std::cout << *this. –  meagar Feb 2 '12 at 20:30
    
oh I see, thank you! –  Yokhen Feb 2 '12 at 20:42
    
Also @meagar, whenever I set a as a regular A and use std::cout << *a I always get the address anyway. The only case when the address isn't printed is when I don't change the type of a and use std::cout << *a –  Yokhen Feb 2 '12 at 20:48
    
@Yokhen : If you instantiate a regular A vs. an A*, std::cout << *a wouldn't compile; the correct syntax would be std::cout << a. –  ildjarn Feb 2 '12 at 20:51

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