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In the code below I would like to know what does the operator* overloadind do here.

// struct pointer to Shape
struct PtrToShape
{
Shape *ptr;

bool operator < (const PTRToShape & rhs) const
{ return *ptr < *rhs.ptr; }

const Shape & operator*() const
{ return *ptr; }

};

What will it overload? Will it overload the * operator for the struct or for the shape objects? Is this overloading used in:

return *ptr < *rhs.ptr

And in the line I previously mentioned the * (overloaded or not) refers to what? to rhs or to rhs.ptr ?

Thank you.

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2 Answers 2

up vote 2 down vote accepted
const Shape & operator*() const
{ return *ptr; }

This returns a reference dereferenced Shape object, the one called ptr, which is a member of your struct.

That overload will overload this *operator for your PtrToShape struct.

Also, no, it's not used in return *ptr < *rhs.ptr

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so if I got it right *rhs would return the same as *rhs.ptr now that the operator is overloaded for that struct right? –  Mppl Sep 20 '12 at 11:57
    
@user611295 yes that's correct. However I'm not sure if that's necessarily a good idea. –  Tony The Lion Sep 20 '12 at 11:58

It is a de-reference operator, so that you can de-reference a PtrToShape as you would do with a plain pointer to Shape.

PtrToShape p = ....;
(*p).methodOfShapeClass();

It applies to instances of ShapePtr, so it does not take part in the comparisons in operator<, since in this expression,

return *ptr < *rhs.ptr;

the RHS is equivalent to *(rhs.ptr) due to operator precedence rules.

This is usually accompanied by an operator-> overload.

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