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I'm writing a smart pointer implementation in C++, and I'm having some trouble with const-correctness. Below is an excerpt from the code:

template <class T> class Pointer {
  T* pointee;

public:  

  Pointer(const Pointer<T>& other) { // must be const Pointer& for assignments
    pointee = other.getPointee();
  }

  T* getPointee() const {
    return pointee;
  }
};

This is one way to do it, however I feel uneasy the const member not returning a const pointer. Another possibility would be to let getPointee() return a const T* and perform a const_cast<T*> in the copy constructor.

Is there a better way of doing this? If not, which do you think to be the lesser evil, returning a non-const or doing a const_cast?

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2  
Is there a particular reason you are trying to write your own smart pointer. Most of the time, the ones provided by the standard do a fine job. –  Michael Price Oct 26 '11 at 16:36
    
Yes, there is. I'm using internal reference counting in my objects. –  lucas clemente Oct 26 '11 at 16:38
5  
Boost provides an intrusive smart pointer: boost.org/doc/libs/1_47_0/libs/smart_ptr/intrusive_ptr.html –  Fred Larson Oct 26 '11 at 16:42
    
Thanks for the hint, although I probably can't use it, it's always nice to see how Boost solved it ;) –  lucas clemente Oct 26 '11 at 16:47
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2 Answers 2

up vote 6 down vote accepted

Best to think of your constant smart pointer as a constant pointer to a non-constant object. This is similar to:

int * const int_ptr;

If you wanted a pointer to a constant object:

Pointer<const int> const_int_smart_ptr;

which is basically equivalent to:

const int *const_int_ptr;
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so you would choose the version i wrote in the question? –  lucas clemente Oct 26 '11 at 16:37
1  
yes - the constant pointer can't be made to point to something different, (e.g. operator= should not be allowed for const Pointer), but the value of whatever it points to should be changeable. –  zennehoy Oct 26 '11 at 16:39
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The object designated by pointee doesn't seem to belong to Pointer, so I see no reason to assume that calling a const function of Pointer would return a T const*, rather than a T*. (If the pointed to object were conceptually part of Pointer, of course, the issue would be different.)

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"If the pointed to object were conceptually part of Pointer" then the class is no longer a "pointer", rather a container. –  curiousguy Nov 22 '11 at 7:37
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