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I'm learn C++ (overloading operators if be precise). I try overload operator+ by this way:

Complex4d Complex4d::operator+(const Complex4d &rvalue)
{
    return Complex4d(a() + rvalue.a(), b());
}

Where rvalue.a() and a(), rvalue.b() and b() it's object of the Complex2d. In Complex2d class I overload operator+ too, by this way:

Complex2d Complex2d::operator +(Complex2d &rvalue)
{
    return Complex2d(a() + rvalue.a(), b() + rvalue.b());
} 

If I write this:

Complex4d Complex4d::operator+(const Complex4d &rvalue)
{
    Complex2d test = rvalue.a();
    return Complex4d(a() + test, b());
}

All it's OK. What do i do wrong?

share|improve this question
1  
operator+ should generally be a free function that just does return lhs += rhs;. – chris Jul 9 '13 at 19:31
    
Do you mean, that i need realize operator+ as out the class function, but not as member of class? – Сергей Волков Jul 9 '13 at 19:34
3  
You don't have to, but you should if you want the operator to be completely symmetric to LHS and RHS. – juanchopanza Jul 9 '13 at 19:39
1  
@chris: not according to what reference? Howard Hinnat? Other than the fact he said "RVO" instead of "NRVO", I'm agreeing with him 100%. move prevents NRVO. Making a question might be a good idea. – Mooing Duck Jul 9 '13 at 20:29
1  
The real trick should be lhs+=rhs; return lhs;, which doesn't block NRVO and implicitly moves. (lhs+=rhs returns an lvalue reference to lhs, which can neither be NRVO'd or moved implicitly). Still, std::move( lhs += rhs ) or std::move(lhs) == rhs somehow seems more moving. – Yakk Jul 9 '13 at 20:30
up vote 4 down vote accepted

The problem is that you're trying to bind a temporary to a non-const reference, which is not allowed and makes no sense:

Complex2d Complex2d::operator +(Complex2d &rvalue)
                                ^^^^^^^^^^^
return Complex4d(a() + rvalue.a(), b());
                       ^^^^^^^^^^

To fix it, make it take a const reference, to which temporaries can be bound. Const-correctness also applies. If you're not modifying it (you shouldn't be), make it const.

Complex2d Complex2d::operator +(const Complex2d &rvalue)
                                ^^^^^

The other argument (*this) isn't modified either:

Complex2d Complex2d::operator +(const Complex2d &rvalue) const
                                ^^^^^                    ^^^^^                

As well, I suggest making them free functions and reusing other code:

Complex2d operator+(const Complex2d &lhs, const Complex2d &rhs) {
    auto ret = lhs;
    ret += rhs;
    return ret; //see comments for implementation reasoning
}

This allows the left side to act the same as the right and improves encapsulation by having one less unnecessary function with access to the private members of the class.

share|improve this answer
    
Calling += on a const reference won't work very well :-) I would pass by value, and just return lhs += rhs. – juanchopanza Jul 9 '13 at 20:03
    
@juanchopanza, Oops, did I do that? One sec. – chris Jul 9 '13 at 20:04
    
Better! So is the move in case there is no RVO? – juanchopanza Jul 9 '13 at 20:05
    
@juanchopanza, See the comments on the question about that. Either I remember correctly and now there cannot be RVO, or, more likely, my memory sucks and now it will have a possibility of either. – chris Jul 9 '13 at 20:05
    
this post seems to argue against moving in this case. I suspect Hinnant knows his stuff too :) – juanchopanza Jul 9 '13 at 20:08

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