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Is there a way I can make my custom class be passed by reference only?

Basically, I have the following class:

class A{
private:
  int _x;
public:
  A(int y){
    _x = y;
  }
};

Can I make it to where I can ONLY pass it by reference? And it will throw a compile time error otherwise?

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2  
Yes, make its copy constructor private. –  n.m. Mar 9 '12 at 20:41

3 Answers 3

up vote 3 down vote accepted

Several people have suggested making the copy constructor private. This is a mostly good solution to the problem however it's not complete. It still allows the type itself to accidentally pass itself by value. A more thorough solution is to declare the copy constructor private and then never implement it.

class A{
private:
  // Prevent value copying
  A(const A&);

  int _x;
public:
  A(int y){
    _x = y;
  }
};

Note: As @DeadMG points out, in C++11 using delete is preferred.

A(const A&) = delete;
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I never suggested implementing the copy constructor. –  Puppy Mar 10 '12 at 0:36

You can prevent copying by declaring the copy constructor as private (or deleted in C++11).

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1  
Or in pre-C++11 inherit from boost::noncopyable. –  Mark B Mar 9 '12 at 21:02

Yes declaring the copy constructor private (but still implementing it) allows friend functions or friend classes to still use the private function/members of the class, therefore, the copy constructor would still be accessible. Which is why you declare it private and do not implement it.

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+1 for mentioning friend. –  innochenti Mar 9 '12 at 21:35

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