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Question 1> what does the following code meaning and what the order of assignment is?

ClassName a1, a2, a3;
a1 = a2 = a3;

Does it mean to First assign value of a3 to a2 and then assign ?? to a1.

Question 2> what does the following code meaning?

ClassName a1, a2, a3;
(a1 = a2) = a3;

Question 3> Given a class as follows:

class A
{
   ...
}

What operators have to be defined in order to support the following operation?

A a1, a2, a3;
(a1 = a2) = a3;
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10  
Just reading these sorts of questions makes me resolve never to use such syntax. –  David Heffernan Aug 9 '11 at 18:00
    
@David, I don't like those either:) +1 –  q0987 Aug 9 '11 at 18:02
1  
Smells like a quiz. –  Mark Ransom Aug 9 '11 at 18:03
1  
For the third question, although it will compile as-is, you probably want to overload A& A::operator=(const A& other) {myvar = other.myvar; return *this;} –  Mooing Duck Aug 9 '11 at 18:09

2 Answers 2

up vote 9 down vote accepted

Question 1

This:

a1 = a2 = a3;

is equivalent to this:

a1 = (a2 = a3);

For primitive types, or for PODs, this is equivalent to:

a2 = a3;
a1 = a2;

For user-defined types, it's equivalent to:

a1.operator=(a2.operator=(a3));

If you don't define your own overloads of operator=, then this will be the same as for the primitive types.

Question 2

This:

(a1 = a2) = a3;

only works for user-defined types. It is equivalent to:

a1.operator=(a2).operator=(a3);

If you use the compiler-provided operators, then this is equivalent to:

a1 = a2;
a1 = a3;

Question 3

No operators have to be defined, as the compiler provides a copy-assignment operator implementation if you don't write your own.

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1  
"which is equivalent to this: a2 = a3; a1 = a2;" assuming a sensible implementation of operator=. If ClassName::operator= is user-defined to return a reference to something other than a2, that's not sensible but it breaks the equivalence... –  Steve Jessop Aug 9 '11 at 18:09
    
@Steve: Good point. Let me work that into my answer. –  Oliver Charlesworth Aug 9 '11 at 18:11

Question 1:

Evaluation order is performed from right to left, so a1 = a2 = a3 is equivalent to a2 = a3; a1 = a2;

Question 2:

If operator= has not been redefined, it means a1 = a3.

Question 3:

Nothing, it works as is.

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Probably you mean to say Overloaded not Redefined –  Alok Save Aug 9 '11 at 18:03

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