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I'm trying to create a pointer to a class that have * operator overloaded, but it returns another value. Class code:

template<class T> class Node
{
public:
    T *pointer;

    T& operator*()
    {
        return *pointer;
    }
}

Then this code doesn't work, returning int instead of pointer:

Node<int>* examplePointer;      //this works
Node<int> example;            //creates an instance of Node<T> class
examplePointer = *example;           //this doesn't work

How can I make pointers with overloaded * operator?

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You must have a T defined somewhere for the Node<T>* examplePointer to compile. Can you post a small example that compile with the suspiscious assignment commented ? –  Johan Dec 7 '13 at 20:58
    
It's just a typo. As I said this is already solved by creating additional operator for pointers only. –  chris710 Dec 7 '13 at 21:05
    
What do you expect examplePointer = *example to do? int x = *example would work fine, as would examplePointer = &example. –  Alan Stokes Dec 7 '13 at 22:04
    
I expected examplePointer to point to Node<int> –  chris710 Dec 7 '13 at 22:10
    
You return an int&, but expect it to be a pointer? –  Casey Dec 8 '13 at 3:31

2 Answers 2

This Node<int>* example; means that example is a pointer on a Node<int> (yes, I am captain Obvious :) ).

If you use it afterward with *, that does mean that you're just dereferencing the pointer to accessto the Node<int>. So, basically you have something like:

*example; // Just a pointer dereference expression type 
          // is something like Node<int>
**example; // something like:  example->operator*();

I do not really see what's your goal... Using a pointer to a container like this seems to creates a lot of indirection...

And more generally, you cannot overload an operator* outside a class definition, so you cannot define it for a pointer.

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Node<int>* example; should create a pointer to Node<T> but instead it just uses the overloaded operator and makes example an int. –  chris710 Dec 7 '13 at 18:08
1  
@chris710 Node<int>* example does declare a pointer to Node<int> and does not use the overloaded operator.. Here's an example : ideone.com/jZPtZM –  Johan Dec 7 '13 at 18:44
    
OK, but then how to make a pointer in other situations like exampleVector.push_back(*exampleNode); ? –  chris710 Dec 7 '13 at 19:32
    
First of all, why do you want a pointer ? You're Node<T> is already a wrapper over a pointer. Second, I need some type signature to understand what you want. Is exampleVector a std::vector<Node<T>> ? –  Johan Dec 7 '13 at 20:38
    
@chris710 sorry I forgot to mention your name in the previous comment to warn you. –  Johan Dec 7 '13 at 20:54

Try just Node<int> example. That gives you a Node, and *example will call your operator - so it behaves like a pointer.

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