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I was doing this as a personal exercise and wanted to make sure I got this right and understand it correctly. I have a coordinate class with members row and column. I wanted to overload the + and += operator. Here is my code:

Coordinate& Coordinate :: operator+= (const Coordinate& rhs){
    this->m_Row += rhs.m_Row;
    this->m_Column += rhs.m_Column;

    return *this;

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


friend Coordinate& operator + (const Coordinate& lhs, const Coordinate& rhs);

is a friend function defined in Coordinate class.

Are there any pitfalls to this code ?

Here is my understanding of how these work:

operator += 

Add rhs m_Row and m_Column to this members. Return a reference to the object pointed by this pointer and thereby avoid creating another object due to copy constructor.

operator +

Create a local object of lhs (since lhs is a constant and we don't want to modify its contents) using the copy constructor (lets call it localObj). Invoke the += member operator on localObj which performs the addition. Return a reference to this localObj so that we don't create another object due to copy constructor, otherwise.

Now, the very last statement concerns me, since I am returning a reference to a local object. As soon as the function (operator +) goes out of scope, localObj will be destroyed and returned reference will point to an object which has been destroyed. Am I correct in understanding this ?

If so, how should I fix it ??

EDIT: After all the answers and what I learnt: here is what my Coordinate class looks like now:

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your operator + is returning ref to local object – Mr.Anubis Aug 11 '12 at 17:51
@Mr.Anubis Yes, this is in line with the explanation I gave ? (see the text in bold) – brainydexter Aug 11 '12 at 17:52
sorry, hadn't read the question completely – Mr.Anubis Aug 11 '12 at 17:54
@Mr.Anubis No worries, I wanted to verify my understanding. – brainydexter Aug 11 '12 at 17:57
There's no reason to declare operator+ as friend because it only accesses the public interface of Coordinate. – celtschk Aug 11 '12 at 18:06

2 Answers 2

up vote 6 down vote accepted

You are right to be worried, you are returning a reference to a temporary here:

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

You need to return a Coordinate by value, for example like this:

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

In the example above, we make a copy of the first parameter instead of taking a reference and then copying in the body of the function. Then we return the result of += on that, by value.

With this setup, there is no need to declare operator+ as a friend.

See this SO link for more information, and thanks to @Blastfurnace for pointing it out.

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why is it a temporary? in a=b+c; wont his operator return a reference to b? – Gir Aug 11 '12 at 17:54
@Gir it is a temporary because it is a Coordinate object in the body of the function, which is returned by reference. The object dies when we exit the function scope, so the reference on the caller side is left dangling. – juanchopanza Aug 11 '12 at 17:57
@Gir This Coordinate(lhs) += rhs only lives in the scope of the function, yet a reference to it is returned. That is bad. – juanchopanza Aug 11 '12 at 18:04
@brainydexter Yes, and no. The compiler is allowed to do copy elision, particularly return value optimization. Why not pass lhs by reference? Because we cannot modify it, and we will probably end up making a copy anyway, so passing by value lets the compiler perform more copy elisions than if we pass by reference. – juanchopanza Aug 11 '12 at 18:07
@brainydexter: There are good guidelines in this operator overloading question. Defining operator+ in terms of operator+= is a recommended practice. – Blastfurnace Aug 11 '12 at 18:13

Personally, I would define operator+=() in terms of operator+() and operator=():

Coordinate operator+(const Coordinate& lhs, const Coordinate& rhs) {
  return Coordinate(lhs.getRow() + rhs.getRow(), lhs.getCol() + rhs.getCol();

const Coordinate& operator=(Coordinate& lhs, const Coordinate& rhs) {

  return lhs;

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

I'm using setters and getters here. Alternatively, you can use friend and/or member functions. Note that all functions that return references are returning the parameters that are sent in so that there are no issues with references to local or temporary objects.

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Personally, why would you do that? Now your operator+= makes an unnecessary copy followed by an unnecessary assignment. – Benjamin Lindley Aug 11 '12 at 18:14
This code won't compile. You are trying to change lhs which is a const reference. – Blastfurnace Aug 11 '12 at 18:15
I would disagree with this (although I have seen it done in many places). This is a good link. – juanchopanza Aug 11 '12 at 18:17
@Blastfurnace Oops! I fixed it now. – Code-Apprentice Aug 11 '12 at 18:17
@Code-Guru Cleaner to read for whom? The standard C++ idiom is to define + in terms of +=; it's even possible to do this by means of derivation from an instance of a template. Deviating from the standard idiom makes code more difficult to read, because less expected. (Regardless of what one thinks of the standard idiom, and there are some I'm not too happy with.) – James Kanze Aug 11 '12 at 18:29

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