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I am reading the C++ Primer, in the overloaded operation chapter, the author gave an example:

// member binary operator: left-hand operand bound to implicit this pointer
Sales_item& Sales_item::operator+=(const Sales_item&);
// nonmember binary operator: must declare a parameter for each operand
Sales_item operator+(const Sales_item&, const Sales_item&);

then, the author explained:

This difference matches the return types of these operators when applied to arithmetic types: Addition yields an rvalue and compound assignment returns a reference to the left-hand operand.

I'm not quite sure about "compound assignment returns a reference to the left-hand operand". Can anyone elaborate on that, and relevant things, please?

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Look up method chaining. It basically means a = b returns a so that c = a = b evaluates to c = (a = b) or a = b then c = a all in 1 statement. –  chris May 4 '12 at 2:04

2 Answers 2

up vote 5 down vote accepted

It means that you can do something like the following

a = 1; 
(a += 1) += 1;

and the result will be a == 3. This is because the left most call to += modifies a and then returns a reference to it. Then the next += operates on the reference to a and again adds a number to it.

On the other hand, the normal + operator returns a copy of the result, not a reference to one of the arguments. So this means that an expression such as a + a = 3; is illegal.

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1  
"a += 1 += 1;". Are you sure about that? –  Robᵩ May 4 '12 at 3:05
    
@Robᵩ: He is surely sure about that. But that doesn't mean he is correct. -1 for wrong answer. –  Nawaz May 4 '12 at 3:52
1  
@Nawaz: I find the downvote a little harsh, since it's solved with just a pair of parentheses. The essence of compound assignment has been captured in the answer, so failing Davis because he tripped on a simple issue (artifact of the whiteboard) seems a tad hard. –  Matthieu M. May 4 '12 at 6:28
    
@MatthieuM.: Doesn't that modify a twice without any intervening sequence point? Which in others means, doesn't it invoke undefined behavior? –  Nawaz May 4 '12 at 8:28
    
@Nawaz, no, it's just two successive calls to the OP's Sales_item::operator+=() routine. This is just as valid as any other construct such as obj.funct().another(). –  Davis King May 4 '12 at 12:07
a = a + b;

is also

a += b;

which is equivalent to

a.operator+= (b)

operator += supports compound assignment:

(a += b) += c;

is equivalent to

a.operator+= (b).operator+= (c);

The last line would not be possible if a value was returned instead of an rvalue.

Consider the following:

c = a + b;

is also

c = a.operator+ (b);

writing

a.operator+ (b) = c;

has no effect because the value of a is not changed.

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