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So, after researching everywhere for it, I cannot seem to find how to create a class arrow operator, i.e.,

class Someclass
{
  operator-> ()  /* ? */
  {
  }
};

I just need to know how to work with it and use it appropriately. - what are its inputs? - what does it return? - how do I properly declare/prototype it?

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3  
no inputs. Return type should be a pointer. This is usually used to create "smart" pointers, so it returns a pointer to the wrapped object. –  Tim Feb 8 '11 at 1:18

4 Answers 4

up vote 5 down vote accepted

The operator -> is used to overload member access. A small example:

#include <iostream>
struct A 
{
    void foo() {std::cout << "Hi" << std::endl;}
};

struct B 
{
    A a;
    A* operator->() {
        return &a;
    }
};

int main() {
    B b;
    b->foo();
}

This outputs:

Hi
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does the arrow operator also work to return structure members as it does class members? –  AUTO Feb 8 '11 at 1:25
    
It can return struct members just as easily as it can return class members. What happens when you use the arrow is determined by the body of the operator->() member function. The line "return &a;" can be changed to return whatever you decide is appropriate. –  Darryl Feb 8 '11 at 1:31

The arrow operator has no inputs. Technically, it can return whatever you want, but it should return something that acts like a pointer unless you really want to confuse yourself six months from now. :-) It must also return something that has a dereference operator in order to compile. Another reason to return something that acts like a pointer.

The -> operator automatically dereferences its return value before calling its argument, so you could have the following class:

class PointerToString
{
    string a;

  public:
    PointerToString(const string &s) : a(s) {}
    PointerToString operator->() const
    {
        std::cout << "arrow dereference\n"; 
        return this;
    }
    string &operator*() const
    {
        std::cout << "dereference\n";
        return a;
    }
};

Use it like:

PointerToString ptr(string("hello"));
string::size_type size = ptr->size();

which is converted by the compiler into:

string::size_type size = ptr.operator->().operator*().size();

and should output

arrow dereference
dereference

Note, however, that you can do the following:

PointerToString ptr2 = ptr.operator->();

From Stroupstrup:

The transformation of the object p into the pointer p.operator->() does not depend on the member m pointed to. That is the sense in which operator->() is a unary postfix operator. However, there is no new syntax introduced, so a member name is still required after the ->

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class T {
    public:
        const memberFunction() const;
};

// forward declaration
class DullSmartReference;

class DullSmartPointer {
    private:
        T *m_ptr;
    public:
        DullSmartPointer(T *rhs) : m_ptr(rhs) {};
        DullSmartReference operator*() const {
            return DullSmartReference(*m_ptr);
        }
        T *operator->() const {
            return m_ptr;
        }
};

http://en.wikibooks.org/wiki/C++_Programming/Operators/Operator_Overloading#Address_of.2C_Reference.2C_and_Pointer_operators

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The "arrow" operator can be overloaded by:

a->b

will be translated to

return_type my_class::operator->()
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