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I've a class which stores a reference to its parent, the reference is passed in the constructor. If I try to copy an instance I get an error "error C2582: 'operator =' function is unavailable" presumably down to the reference being non-assignable.

Is there a way around this, or do I just change the variable to pointer instead of reference?

e.g (over-simplified but I think has the key points):

class MyClass
{
public:
 MyClass(OtherClass &parent) : parent(parent) {}
private:
 OtherClass &parent;
};

MyClass obj(*this);
.
.
.
obj = MyClass(*this);
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Maybe compiler is confused with the same parameter and member names? –  Alex Farber Oct 1 '10 at 16:50

5 Answers 5

up vote 5 down vote accepted

Yes, if you need to support assignment, making it a pointer instead of a reference is nearly your only choice.

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I don't recommend this at all

but if you are really gung ho about doing this:

#include <new>

MyClass::MyClass(const MyClass &rhs): parent(rhs.parent)
{
}

MyClass &MyClass::operator=(const MyClass &rhs)
{
    if (this!=&rhs)
    {
        this->~MyClass();
        new (this) MyClass(rhs);
    }

    return *this;
}
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nice solution with placement new, though a bit tricky. –  joker Oct 10 '13 at 8:16

Yes just make the member a pointer. A reference won't be able to be reseated, and there is no work-around.

Edit: @"Steve Jessop" makes a valid point to how work-around the problem using the PIMPL idiom (private implementation using a "d-pointer"). In an assignment, you will delete the old implementation and create a new one copy-constructed from the source object's d-pointer.

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1  
"there is no work-around". Just for that, I'm going to mention the possibility of mis-implementing operator= to explicitly call the destructor, then construct with placement new and the copy constructor. Or more validly, use pimpl and have operator= do a copy-and-swap. The impl itself doesn't need operator=, and can still use a reference. Still, it's a lot of boilerplate to write if this is the only feature of pimpl desired... –  Steve Jessop Oct 1 '10 at 20:43
    
@Steve good point. Adopted. –  Johannes Schaub - litb Oct 1 '10 at 21:12
    
@Steve Jessop: Sorry, but can you please explain a bit more. I am not sure if I understand the workaround –  Chubsdad Oct 2 '10 at 4:18
    
@Chubsdad the idea is that your class will be like class MyClass { class Pimpl; Pimpl *p; public: /* dtor and ctors ... */ void swap(MyClass &m); MyClass(MyClass const&m); MyClass &operator=(MyClass m); }; and in the C++ file class MyClass::Pimpl { Parent &parent; }; MyClass::MyClass(MyClass const& m):p(new Pimpl(*m.p)) { } MyClass &operator=(MyClass m) { swap(m); return *this; } void MyClass::swap(MyClass &m) { std::swap(p, m.p); }. This in some kind could be regarded as a "work around", I suspect :) –  Johannes Schaub - litb Oct 2 '10 at 8:52
    
Yeah, what he said but with more linebreaks ;-). As I said it's a lot of boilerplate just to avoid a pointer, and on reflection litb's right: if it's a work-around then it's a very long way round. –  Steve Jessop Oct 2 '10 at 11:32

I would make it a boost::shared_ptr. You can be pretty rough with these and they take care of themselves. Whereas using a raw pointer means tha you have to worry about that object being kept alive

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That's no difference from using a reference... you have to trust the object referred to still exists whether using a reference or raw pointer. –  John Oct 2 '10 at 9:38
    
its very different. boost shared_ptr will keep the object alive as long as somebody points at it, raw pointer or reference will not do that –  pm100 Oct 4 '10 at 16:31

You need to implement a copy constructor and initialize the reference in that copy constructor, to point to the same reference as the original object.

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