16

Is there a way to implement operator->, not only operator*. To have following code working:

Iterator<value> it = ...
i = (*it).get();
i = it->get(); // also works

Let we say that value type has method get. When Iterator is implemnted as below:

template<T> class Iterator {
    T operator*() { return ... }
    T operator->()  { return ... }
 }

Here ... is an implementation of getting right T object.

Somehow it won't work when I implement it in this way. I think I misunderstand something.

19

operator-> should return a pointer:

T * operator->();
T const * operator->() const;

operator* should return a reference if you want to use it for modification:

T & operator*();
T operator*() const; // OR T const & operator*() const;
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5

As odd as this may seem, you want to return a pointer to T, thusly:

T * operator->() { return &the_value; }

Or a pointer to const.

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2

You don't specify what "it won't work" means - does it fail to compile, or does something else than expected? I will assume it compiles, because from your snippet I can't see why it shouldn't.

What you are doing is returning by value. So you return a new instance of the pointed-to object. You instead should return a pointer in operator-> and reference in operator*

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  • It won't compile, but I don't remember the right error message. – kokosing Jan 25 '12 at 18:14

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