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class A
{
    ...

    public:
        shared_ptr<Logger> GimmeLogger () const
        {
            return m_logger;
        }

    private:
        shared_ptr<Logger> m_logger;
};

In class A, should GimmeLogger be const or non-const?

It would make sense to be const because it is a simple getter that doesn't modify *this (syntactic const).

But on the other hand, it returns a non-const pointer to another object that it owns (semantically non-const).

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Could m_logger be shared_ptr<Logger const> instead? –  K-ballo Oct 6 '11 at 16:41
1  
Scott Mayers book (Effective C++) Item 21 has an interesting discussion on const. It is a book well worth reading if you are programming C++. Basically the upshot is use const whereever possible and use the wiggle room. –  Ed Heal Oct 6 '11 at 16:48
    
Are you asking about loggers in particular, or "owned" objects in general? Without getting too deep into the concept of monads from functional programming, it's probably reasonable for you to consider a logger to be something into which data is thrown without really changing its state. As such, there's no reason that you shouldn't use a logger belonging to a const object. –  Steve Jessop Oct 6 '11 at 17:22

4 Answers 4

up vote 4 down vote accepted

If you make that non-const, then you cannot write this:

void f(const A & a)
{
    auto v = a.GimmeLogger(); //error
}

So if you want to write this; that is, if you want to call GimmeLogger on const object, then make GimmeLogger a const member function, because you cannot invoke a non-const member function, on const object. However, you can invoke a const member function, on non-const object (as well as on const object).

Inside a const member function, every member is semantically const objects. So the type of m_logger in the function becomes const share_ptr<const m_logger>. So change the return type accordingly.

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Double negatives always makes me think... –  K-ballo Oct 6 '11 at 16:43
    
uh..."The party of the first part shall be known in this contract as the party of the first part." --from "A Night at the Opera" –  David Rodríguez - dribeas Oct 6 '11 at 16:48

Yes, it should be const. The const-ness of the function has nothing to do with the const-ness of the return type.

I get your point, but I think the function remains const either way.

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Because const is a keyword, it is checked syntactically, but it should be used semantically, that is, in your design operations that don't change the visible state of your class should be marked as const.

That is the whole idea behind the mutable keyword: adding the ability to mark a member as this does not take part of the visible state of the object so that the syntactic check matches the semantic meaning. In your particular case, because you are copying a pointer, you don't even need to use mutable there (this is one of the weak points of const-correctness actually, as returning a non-const pointer does not trigger errors while compiling, even though you are opening a door for changes in your object)

In this particular case, on the other hand, I don't see a good reason by which the object would publicize it's logger... That is, const-correctness aside, why do you need to grant access to the logger?

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Generally you shouldn't return a handle to a member data when you can avoid it. Try hard to review your design and find a way around this. That said, if you must, it should be const. This allows you to call the function on const objects as well as non-const objects. See for example std::string::c_str(). You can also overload the function so you get both, like standard containers do with iterators.

When in doubt, look in the standard library for a hint.

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