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I would like to know if its possible to call a non-const member function from a const member function. In the example below First gives a compiler error. I understand why it gives an error, I would like to know if there is a way to work around it.

class Foo
{
   const int& First() const
   {
         return Second();
   }

   int& Second()
   {
        return m_bar;
   }

   int m_bar;
}

I don't really want to discuss the wisdom of doing this, I'm curious if its even possible.

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3  
You are not the first one: stackoverflow.com/questions/856542/… –  Till Theis Oct 28 '10 at 21:13
    
thanks Till, that didn't come up in my search –  Steve Oct 28 '10 at 21:26

7 Answers 7

up vote 17 down vote accepted
return (const_cast<Foo*>(this))->Second();

Then cry, quietly.

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It is possible:

const int& First() const 
{ 
    return const_cast<Foo*>(this)->Second(); 
}

int& Second() { return m_bar; }

I wouldn't recommend this; it's ugly and dangerous (any use of const_cast is dangerous).

It's better to move as much common functionality as you can into helper functions, then have your const and non-const member functions each do as little work as they need to.

In the case of a simple accessor like this, it's just as easy to return m_bar; from both of the functions as it is to call one function from the other.

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Or just turn int& Second() into int& Second() const. The non-const member functions will have no problem calling Second(), but now the const member functions will be able to call it without any jiggery-pokery, too. –  Jeremy W. Sherman Oct 28 '10 at 21:30
    
@Jeremy: How do you suppose we return a non-const reference to a member, then? –  GManNickG Oct 28 '10 at 21:32
    
@GMan: Touché. You can't without declaring m_bar as a mutable int. @Fred Larson's recommendation is quite good, but the direction it leads - writing every blessed accessor twice, once const-modified and once not - is not so cheery. –  Jeremy W. Sherman Oct 28 '10 at 21:39
    
@Jeremy: In most cases (not all, but most), it isn't necessary to have a non-const accessor (at least that's been my experience). Even if you do need both, since you have to write both functions anyway, writing the return m_bar; in both of them isn't usually too much of an additional burden. –  James McNellis Oct 28 '10 at 21:43
    
the issue was inheritance of a zip iterator interface in a const version of the zip iterator, so it isn't as simple as the example suggests –  Steve Oct 29 '10 at 1:54

By the definition of const, a function should not modify the state of an object. But if it calls another non-const member, the object's state might get changed, so it's disallowed.

I know you said you didn't want to hear about this, but I think it's important for others that happen upon the question.

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Overload on const:

const int& Second() const
{
    return m_bar;
}

You can add this method and keep the original non-const version.

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iterators are similar in this and make an interesting study.

const iterators are often the base for 'non const' iterators, and you will often find const_cast<>() or C style casts used to discard const from the base class with accessors in the child.

Edit: Comment was

I have a zip iterator where the const one inherits from the non-const

This would generally be the wrong inheritence structure (if your saying what I think you are), the reason being that children should not be less restrictive than parents.

say you had some algorithm taking your zip iterator, would it be appropriate to pass a const iterator to a non const ?

if you had a const container, could only ask it for a const iterator, but then the const iterator is derived from an iterator so you just use the features on the parent to have non const access.

Here is a quick outline of suggested inheritence following the traditional stl model

class ConstIterator: 
    public std::_Bidit< myType, int, const myType *, const mType & >
{
  reference operator*() const { return m_p; }
}

class Iterator : public ConstIterator 
{
  typedef ConstIterator _Mybase;
  // overide the types provided by ConstIterator
  typedef myType * pointer;
  typedef myType & reference;

  reference operator*() const
  { 
    return ((reference)**(_Mybase *)this);
  }
}

typedef std::reverse_iterator<ConstIterator> ConstReverseIterator;
typedef std::reverse_iterator<Iterator> ReverseIterator;
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I tend to write iterators as template classes and used type traits to manipulate the constness of the member functions; it avoids the need for const_cast and makes the code easier to read. –  James McNellis Oct 28 '10 at 22:22
    
Sounds interesting, though does it allow for using iterators where you might use const_iterator? I'm making this original observation on the stl(s) I've seen - which is mainly to ones with MSVC. –  Greg Domjan Oct 28 '10 at 22:38
    
this was actually my use case for this. I have a zip iterator where the const one inherits from the non-const. @James, could you answer this question with the type traits answer? I'm really interested in not doing this if possible –  Steve Oct 29 '10 at 1:56
    
@Steve: I'll try and dig something up; I don't have my PC with all my projects on it at the moment. The general approach is to create a single class template template <typename T> class iterator_impl and then in the container that is using it provide a typedef iterator_impl<const T> const_iterator and typedef iterator_impl<T> iterator. You can then inside of the iterator_impl template extract the constness from T and set all the return types and pointers and such appropriately. Is that what you're looking for? (I just want to make sure I understand exactly what you need). –  James McNellis Oct 29 '10 at 2:45

I found myself trying to call a non-const member function that was inherited, but was actually const because of the API I was using. Finally I settled on a different solution: re-negotiate the API so that the function I inherit is properly const.

It won't always be possible to negotiate changes to others' functions, but doing so when possible seems cleaner and nicer than needing to use const_cast and it benefits other users as well.

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The restriction of const member methods are came from compile time. If you can fool the compiler, then yes.

class CFoo
{ 
public:
    CFoo() {m_Foo = this;}
    void tee();

    void bar() const 
    { 
        m_Foo->m_val++;  // fine 
        m_Foo->tee();    // fine
    }
private:
   CFoo * m_Foo;
   int    m_Val;  

};

This actually abolishes the purpose of const member function, so it is better not to do it when design a new class. It is no harm to know that there is a way to do it,especially it can be used as an work-around on these old class that was not well designed on the concept of const member function.

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