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this is an assignment operator. &rhs != this is confusing. my questions: rhs is a reference of Message type. What does &rhs mean? what does & do (a memory address of a reference?)? Another question is about return *this . since we want a reference to type Message, but *this is a Message typed object, right? How can we return an object to a reference?

Message& Message::operator=(const Message &rhs)
{
    if (&rhs != this)
    {
         some functions;
    }
    return *this;
}
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to understand WHY this PATTERN is common in most any operator= method, read Scott Meyer's Effective C++; in the 3rd edition, see items #10 and #11 (those are readable via amazon's "Look Inside" mechanism) amazon.com/Effective-Specific-Improve-Programs-Designs/dp/… Actually, the entire book is recommended reading. –  franji1 Nov 19 '11 at 5:34
    
@franji1: I wouldn't call it common. It is even better if you go swap all the way, then you usually do not need to force the self-assignment-check onto each and every caller. –  phresnel Nov 21 '11 at 16:25

3 Answers 3

up vote 10 down vote accepted

&rhs means address of the object which reference is referecing to.

Message a;
const Message &rhs = a;

if (&rhs == &a) std::cout << "true" << std::endl;

This is will print true.

A reference is not a different object; it is just a syntactic sugar of pointer, which points to the same object whose reference it is. So when you write return this, it returns a pointer to the object, but if you write return *this, it returns either a copy of the object, or reference to the object, depending on the return type. If the return type is Message &, then you tell the compiler that "don't make a copy and instead return the same object". Now the same object is nothing but a reference. A reference of an object can be made anytime. For example, see the declaration of rhs above; it is const Message & rhs = a, since the targer type is mentioned as reference type, you're making a reference rhs of the object a. It is that simple.

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what about the return *this? *this is an object. but the return type is a Message typed reference Message& –  ihm Nov 19 '11 at 3:25
    
so basically, rhs is just another name for a. –  ihm Nov 19 '11 at 3:27
1  
@ihm: Yes. It just yet another name. It is an alias. –  Nawaz Nov 19 '11 at 3:28
    
Thanks a lot. I got it. –  ihm Nov 19 '11 at 3:36
    
@ihm: 'this' is a pointer. You can dereference pointers to get their value, like *pointer. Doing *this returns the value of the pointer, which is converted into a reference since the function returns a reference. It's for allowing functions to be chained. (A = B) + C; (Assigns 'B' to 'A' and adds 5 to C. Function chaining can be abused to make messy code, but it can also be used well to create clean code. std::cout and the standard stream classes using function chaining with the bitshift operators << >> to chain text output: std::cout << "Blah" << "blah"; Where each << is a call to operator<<. –  Jamin Grey Mar 5 '13 at 1:51

Besides Nawaz's great answer, I want to point out that you have to be careful about returning a reference to a local variable which will go out of scope after function return. So avoid returning a reference like this:

string& foo()
{
    string result = "abc";
    return result;
}

which causes the following compiler warning:

reference to local variable result returned

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A reference is just an alias to an object. References are formed by request of the function that is called; they are not (necessarily) part of an object's type. This is probably already familiar to you, but consider this:

void f1(int a) { ++a; }
void f2(int & a { ++a; }

int main()
{
  int x = 5;
  f1(x); 
  f2(x);
}

Surely you know the difference between the two functions. But note that x is always just an object of type int. Whether it is passed by reference or by value is not a property of x, but rather of the function.

The same goes for return types:

int q;
int g1()   { return q; }
int & g2() { return q; }

int main()
{
  ++g2();
  ++g1(); // error
}

Again, q is just an object. Whether return q; returns it by value or by reference is not a property of q, but of the function. g1 makes a copy of q, while g2 returns a reference to the actual q object (which we can increment). (The return value of g1 cannot be incremented, precisely because it doesn't have a permanent existence and this would be meaningless (technially, the expression is an rvalue).)

So in you example, return *this; returns a reference to the object itself. That has nothing to do with this, but it has everything to do with the fact that the return type of the function is Message&.

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Thanks SB. it helps a lot. –  ihm Nov 19 '11 at 3:41
    
Are you implying that ++g1() is a compilation error because it returns an rvalue? If so, it is not entirely correct. –  Nawaz Nov 19 '11 at 3:43
    
@Nawaz: No, the expression is an rvalue at that point, and since it's of fundamental type, it cannot be incremented. I've reworded it. –  Kerrek SB Nov 19 '11 at 3:47

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