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If overloading the dereferencing operator (operator*), does the member selection operator (operator->) use the overloaded operator or does one need to overload it aswell?

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3 Answers 3

up vote 4 down vote accepted

You will need to overload the arrow operator separately. More generally, even if there is a nice mapping between related operators in C++, if you overload one operator, you do not get the rest overloaded "for free" and must implement them yourself.

That said, it's easy to implement arrow in terms of dereference:

T* Class::operator -> () const {
    return &**this;
}

This works by dereferencing this to get a reference to the receiver object, then dereferencing that to invoke operator *, then taking the address of the returned reference to get a pointer to the object the arrow should be applied to.

You may want to look into the Boost.Operators library, which makes it possible to define many logically related operators automatically from a small set of base operations.

Hope ths helps!

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so theres actually no "default implementation" of operator-> ? –  Paranaix Jan 26 '12 at 9:18
    
@Paranaix- No, unfortunately not. More generally, there are no default implementations of an overloaded operators (save the assignment operator) even if there is a reasonable way to implement that operator from other related operators. –  templatetypedef Jan 26 '12 at 9:19
    
And of course you can easily implement unary operator* in terms of operator->: return *(this->operator->());. C++ doesn't say which one you "should" implement in terms of the other, or bother to look at which one you've done and then provide a default for the other. Similarly with other operators there's more than one way to do it: implement binary operator- in terms of operator-=, or in terms of unary operator- and binary operator+? C++ doesn't tell you what the "base operations" are, and doesn't try to work out what you think they are. It's consistent, if not helpful. –  Steve Jessop Jan 26 '12 at 9:55
    
If you do this a lot, it's also possible to define default implementations of some operators (like this) in terms of other operators (eg. in a CRTP mixin class) and have each class you want to use them inherit from it, but -> is sufficiently simple and rarely used it's probably not worth it. –  Jack V. Jan 26 '12 at 10:13

you can essentially implement a overloaded dereferencing operator but to then you have to deference it twice for your overloaded operator to come into play !

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5.2.5 "If E1 has the type “pointer to class X,” then the expression E1->E2 is converted to the equivalent form (*(E1)).E2". The problem is that in your case, E1 is not a pointer.

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