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If I've overloaded operator+ and operator= do I still need to overload operator+= for something like this to work: -?-

MyClass mc1, mc2; mc1 += mc2;

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13  
Try it and see for yourself. This is an incredibly quick test. –  Brian Jul 7 '09 at 13:29
5  
It' easy to gain empirical results, but there is a times you still need some explanation. –  Artem Barger Jul 7 '09 at 13:43
1  
@Artem sure, sometimes, in this case it won't even compile and does not concern intricate features of language semantics - just pick any reference on C++, it'll tell you enough about operators overloading –  MadH Jul 7 '09 at 13:57
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4 Answers

up vote 7 down vote accepted

operator+= is not a composite of + and =, therefore you do need to overload it explicitly, since compiler do not know to build puzzles for you. but still you do able to benefit from already defined/overloaded operators, by using them inside operator+=.

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Yes, you do.

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Yes, you need to define that as well.

A common trick however, is to define operator+=, and then implement operator+ in terms of it, something like this:

MyClass operator+ (MyClass lhs, const MyClass& rhs){
  return lhs += rhs;
}

If you do it the other way around (use + to implement +=), you get an unnecessary copy operation in the += operator which may be a problem i performance-sensitive code.

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Old, I know, but it's better just to take lhs by value instead of doing the copy manually. –  GManNickG Apr 7 '10 at 2:05
    
@GMan: You're right. Wonder why I didn't do this the first time around. Consider it fixed. :) –  jalf Apr 7 '10 at 10:24
    
@jalf: And if you want to be really terse, return lhs += rhs;. :) –  GManNickG Apr 7 '10 at 14:04
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@GMan: pf, now you're just showing off. It's not fair to correct my code right now. I'm busy panicking over my masters' thesis! Can't expect me to write sensible code at the moment! ;) (Also, fixed) –  jalf Apr 7 '10 at 15:27
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@GMan: IIRC, I was once shown that return lhs += rhs; might be a pessimization, since it's harder for the compiler to figure out that += returns lhs, which makes it hard to apply RVO. That was ten years ago and maybe compilers are clever enough to do this, but I will cling to lhs += rhs; return lhs; just in case. And, @jalf, Good luck with that! –  sbi Jun 26 '10 at 12:08
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If the real question here is, "I don't want to write a load of repetitive operators, please tell me how to avoid it", then the answer may be:

http://www.boost.org/doc/libs/1_38_0/libs/utility/operators.htm

The syntax looks a little fiddly, though. As I've never used it myself, I can't reassure you that it's simple really.

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