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Given the following code snippet,

class Num
{
public:
    Num(int iNumber = 0) : m_iNumber(iNumber) {}

    Num operator+=(const Num& rhs)
    {
        this->m_iNumber = (this->m_iNumber + rhs.m_iNumber);
        return *this;
    }
private:
    int m_iNumber;
};

int _tmain(int argc, _TCHAR* argv[])
{
    Num a(10);

    Num b(100);

    b += a;

    return 0;
}

I would like to know how to correctly overload the operator+=.

Question 1> How to define the signature of this operator? Specially, what should be used for the return value?

Question 2> How to implement the function body?

Question 3> How to use this overload operator?

I have provided a solution as above but I have concerns that it is not correct.

Thank you

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@James, I searched through Google and didn't find one good resource to show me how to implement the operator+=. Also, I have seen some people use a "reference" as the return value of this function, but I could not figure out why and what the usage of that is. -- thank you –  q0987 Jan 3 '11 at 4:04
    
A decent C++ book will tell you how to do it. Sometimes "searching through Google" is not enough; it's certainly not reliable. :) –  Lightness Races in Orbit Jan 3 '11 at 4:16
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5 Answers

up vote 5 down vote accepted

Returning by reference would be better

Num& operator+=(const Num& rhs){

      this->m_iNumber += rhs.m_iNumber;
      return *this;
}
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Hello Prasoon, what is the benefit to return by reference and how could you use it? I assume that "return by reference" allows the user to change the internal data. thank you –  q0987 Jan 3 '11 at 4:00
    
@q0987: The result of any assignment usually returns the variable which is leftmost in the assignment. If you return a reference, that's what you're actually doing. If you return a value, you're returning a copy of the leftmost assignment instead of the actual value. That is, Num a(10); (a += Num(10)) = 100; results in a having the content 20 instead of what some programmer might expect, 100. –  Billy ONeal Jan 3 '11 at 4:02
    
@q0987 : Furthermore returning by reference won't create a copy of the object (returning by value will) and so there won't be any call to the copy c-tor. However modern compilers would elide the copy in most cases. Read about RVO(Return Value Optimization). –  Prasoon Saurav Jan 3 '11 at 4:02
    
If you don't return by reference you invoke copy constructors, temp copies, etc. Returning by reference WON'T allow the user to modify internal data that you haven't permitted through accessors to be modified. –  JUST MY correct OPINION Jan 3 '11 at 4:03
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If you follow to this Wikibook you'll find these answers by example:

  1. Type& operator+=(const Type& right) is the correct signature.
  2. You did it right.
  3. You use an overloaded operator just like the plain operators, only with your type in place. That's kind of the point of the exercise. ;)

Note as an added point (which you did right) the compound assignment operators have to be member functions.

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I didn't know this "the compound assignment operators have to be member functions" -- thank you for pointing out. –  q0987 Jan 3 '11 at 4:09
    
Well, the operator needs detailed knowledge of your class' internals in most cases. By definition this pretty much requires it to be a member function. –  JUST MY correct OPINION Jan 3 '11 at 5:13
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Your example is completely correct: http://codepad.org/PVhQw9sc .

  1. You can define the return value to be whatever you want. If you wanted it to match what int does, it would need to return the type Num&, and return the value *this.
  2. You did it correctly.
  3. You also did that correctly.
share|improve this answer
    
Hello Billy, I have similar comments as the one I gave to @Prasoon. For example, for the INT, how can you use += chaining or assign a new value to the returned value of operator+=? thank you –  q0987 Jan 3 '11 at 4:02
    
@w0987: Answered your question there :) –  Billy ONeal Jan 3 '11 at 4:02
    
thank you very much and Happy New Year! –  q0987 Jan 3 '11 at 4:13
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The signature of any of the assignment operators (operator= or operator @= for your favorite operator @) should be

Class& operator @= (const Class& rhs);

That is, the function takes its parameter by const reference (because it doesn't modify it), then returns a mutable reference to the object. The reason you return a non-const reference is because, for historical reasons, you can write code like this:

(a += b) += c;

This is by no means good style, but it works for ints and so you should endeavor to make it work for your types as well.

As for the body of your function, what you have there is perfectly correct. In general, though, you should be sure that the code works even if the parameter is the receiver object. For example, if you write something like

a += a;

This gets translated into

a.operator+= (a);

And so the code will operate with both the parameter and the receiver being the same object. This usually doesn't come up for compound assignment operators (usually only operator= needs to worry about this), but in some cases you can get burned if you're not careful.

Finally, you can use this operator += function just as you have been in the example code above. Any use of += automatically calls it.

Hope this helps!

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Pedantic, picky point but we usually prefer '@' to '#' for arbitrary operators to avoid triggering 'comment mode' in syntax highlighters. :) –  Lightness Races in Orbit Jan 3 '11 at 4:15
    
very helpful, thank you –  q0987 Jan 3 '11 at 4:17
    
@Tomalak Geret'kal- Thanks for letting me know! I'll be sure to fix that in the future. –  templatetypedef Jan 3 '11 at 4:18
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Write the body like you did. Use the operator like you did. The operator should return a reference to allow chaining.

See here.

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