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.

Hey this is a really basic question and but I got confused about it. Say I created an object

MyObject a.

It comes with a copy constructor, so I know I can do this:

MyObject b(a); But can I do this?

MyObject& b(a);

And if I do this:

MyObject b = a; what is in b? Apology if this question is too fundamental to be bothered posting.

share|improve this question

2 Answers 2

up vote 7 down vote accepted

Doing MyObject& b(a) has nothing to do with the copy constructor. It just creates b which is a reference to the object a. Nothing is copied. Think of b as an alias for the object a. You can use b and a equivalently from then on to refer to the same object.

MyObject b = a; will use the copy constructor, just as MyObject b(a); would.


There are two forms of initialisation: T x = a; is known as copy-initialization; T x(a) and T x{a} are known as direct-initialization.

When T is a reference type, it doesn't matter which type of initialisation is used. Both have the same effect.

When T is a class type, we have two possibilities:

  1. If the initialisation is direct-initialization (MyClass b(a);), or, if it is copy-initialization with a being derived from or the same type as T (MyClass b = a;): an applicable constructor of T is chosen to construct the object.

    As you can see, both of your examples fall in this category of class type initialisers.

  2. If the initialisation is any other form of copy-initialization, any user-defined conversion sequence will be considered followed by a direct-initialization. A user-defined conversion sequence is basically any sequence of standard conversions with a single conversion constructor thrown in there.

    If c were of Foo class type and there was a conversion constructor from Foo to MyClass, then MyClass b = c; would be equivalent to MyClass b(MyClass(c));.

So basically, if the source and destination types are the same, both forms of initialisation are equivalent. If a conversion is required, they are not. A simple example to show this is:

#include <iostream>

struct Bar { };

struct Foo
{
  Foo(const Foo& f) { std::cout << "Copy" << std::endl; }
  Foo(const Bar& b) { std::cout << "Convert" << std::endl; }
};

int main(int argc, const char* argv[])
{
  Bar b;
  Foo f1(b);
  std::cout << "----" << std::endl;
  Foo f2 = b;
  return 0;
}

The output for this program (with copy elision disabled) is:

Convert
----
Convert
Copy

Of course, there are lots of other types of initialisations too (list initialisation, character arrays, aggregates, etc.).

share|improve this answer
    
crystal clear explanation. thanks! –  user1861088 Feb 12 '13 at 21:38
    
just making sure i get it, so MyObject& b = a is absolutely equivalent to MyObject& b(a) and MyObject b(a) to `MyOjbect b = a' ? –  user1861088 Feb 12 '13 at 21:40
    
@user1861088 not really, search for copy initialization vs direct initialization. –  Luchian Grigore Feb 12 '13 at 21:43
    
@user1861088 For the reference type, always, yes. For the class type, it depends. In this case, yes. –  Joseph Mansfield Feb 12 '13 at 21:43
1  
Excellent post @sftrabbit. –  Nik Bougalis Feb 12 '13 at 22:12

Here is my view:

References are tied to someones else's storage, whenever u access a reference, you’re accessing that storage. References cannot be assigned to null because of the fact that they are just an aliases. A reference must be initialized when it is created. (Pointers can be initialized at any time.)

so when you say

    MyObject& b(a);

compiler allocates a piece of storage b, and ties the reference to a.

when you say

    MyObject b = a;

you pass a reference of a to the copy constructor and creates new b from it. Note that its a deep copy only if you have a copy constructor written for it. Otherwise it calls the default copy constructor which results in a shallow copy.

and when you say

   a = b; // after creating these objects

it translates as Object::operator=(const Object&), thus A.operator=(B) is called (invoke simple copy, not copy constructor!)

share|improve this answer
    
When you say MyObject &b(a) the compiler doesn't allocate a piece of storage a and ties the reference to that piece of storage. It allocates a reference called b and ties it to a. And it's not accurate to say that a copy-constructor results in a deep copy. It may - but it's not required. –  Nik Bougalis Feb 12 '13 at 22:13
    
@Nik: I edited my answer. Good catch for deep copy, i was assuming that he had a valid copy constructor. –  DotNetUser Feb 12 '13 at 22:24

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.