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When a class overloads operator+, should it be declared const since it does not do any assignment on the object? Also, I know that operator= and operator+= return a reference because an assignment is made. But, what about operator+? When I implement it should I make a copy of the current object, add the given object to that, and return that value?

Here is what I have:

class Point
{
public:
    int x, int y;

    Point& operator += (const Point& other) {
        X += other.x;
        Y += other.y;
        return *this;
    }

    // The above seems pretty straightforward to me, but what about this?:
    Point operator + (const Point& other) const { // Should this be const?
        Point copy;
        copy.x = x + other.x;
        copy.y = y + other.y;
        return copy;
    }
};

Is this a correct implementation of the operator+? Or is there something I am overlooking that could cause trouble or unwanted/undefined behavior?

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1  
Many details of operator overloading can be found here: stackoverflow.com/questions/4421706/operator-overloading –  chris Nov 16 '12 at 5:13
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1 Answer

up vote 4 down vote accepted

Better than that, you should make it a free function:

Point operator+( Point lhs, const Point& rhs ) { // lhs is a copy
    lhs += rhs;
    return lhs;
}

But yes, if you leave it as a member function it should be const as it does not modify the left hand side object.

Regarding whether to return a reference or a copy, the advice for operator overloading is do as fundamental types do (i.e. do as ints do). In this case, addition for two integers returns a separate integer that is not a reference to neither one of the inputs.

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Ah, I see. Thank you. Also, what is the benefit of having it as a free function? –  Brandon Miller Nov 16 '12 at 5:15
1  
@BrandonMiller: Symmetry respect to types. If your type has an implicit conversion constructor (i.e. can be implicitly converted from some other type), the free function implementation will allow conversions on both arguments, while the member function can only do conversions on the right hand side. –  David Rodríguez - dribeas Nov 16 '12 at 5:17
    
Some good information there! I had never thought of that. –  Brandon Miller Nov 16 '12 at 5:19
    
Also, if I overload operator<, should I make the return type a bool? So ptA < ptB will evaluate to true or false? It seems like it should be obvious, but I am not so sure. –  Brandon Miller Nov 16 '12 at 5:25
    
@BrandonMiller: Go with the obvious. –  Fred Larson Nov 16 '12 at 5:30
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