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I am reading through implementing smart pointers and I found the following code,

template <class T>
class SmartPtr
{
public:
explicit SmartPtr(T* pointee) : pointee_(pointee);
SmartPtr& operator=(const SmartPtr& other);
~SmartPtr();
T& operator*() const
{
...
return *pointee_;
}
T* operator->() const
{
...
return pointee_;
}
private:
T* pointee_;
...
};

I am not able to understand the following,

  1. "SmartPtr& operator=(const SmartPtr& other)": why the parameter is constant? Doesn't it lose its ownership when the assignment is done?
  2. And why do we need "T& operator*() const" and "T* operator->() const" methods?

Thx@

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I think you need to read more about assignment operator and what does smart pointer is, what types there are and what's their usage/purpose. And this, before trying to implement such. –  Kiril Kirov Aug 10 '12 at 21:41
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3 Answers

up vote 2 down vote accepted

Point 1. Not necessarily, depends on the design of the smart pointer. Some like boost:shared_ptr do not transfer ownership on assignment.

Point 2. Those methods simulate normal pointer operations on the smart pointer.

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To answer 2.:

To simulate a raw pointer. You can use *ptr to return the object it points to (just like a C-pointer), and you can use ptr->foo() to call the method foo in T, (just like a C-pointer).

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  1. There are two types of smart pointer semantics I can think of that would work with that signature. The first would be a reference counting pointer like std::shared_ptr. The other would be value semantics, i.e. copying the pointer makes a new copy of the pointed to object. This signature wouldn't work with a pointer like auto_ptr/unique_ptr.
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