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I have been looking at how the initializer_list is implemented so I found section 18.9 of the standard and found a simple enough looking interface. I thought it would be instructive to make my own version which I named MyNamespace::InitializerList and a use case:

template<class T>
class ArrayPrinter
{
public:
    ArrayPrinter(MyNamespace::InitializerList<T> list)
    {
        for (auto i : list) cout << i << endl;
    }
};

...

ArrayPrinter ap{ {1,2,3} };

I was surprised to find that this did not work and the compiler complained that it couldn't find a suitable constructor (it wanted to give me 3 arguments but section 18.9 only describes a default constructor).

After a bit of fiddling I found that my class had to be named exactly std::initializer_list in order to work. I could also alias std::initializer_list it into MyNamespace but I could not alias MyNamespace::InitializerList asstd::initializer_list.

It seems that this it is not really a language feature as it depends on the standard library?

The main point to my question is why the name is so important and what were those 3 arguments it was trying to pass to the constructor?

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The std::initializer_list class is very much compiler specific. –  Joachim Pileborg Aug 10 '13 at 17:09
    
Just because something is in the standard library doesn't mean it's not built into the language whole. C++ in its entirely contains both the language core and the standard library. –  GManNickG Aug 10 '13 at 17:09
2  
Is new operator a language feature? It depends on std::bad_alloc. What about dynamic_cast, which depends on std::bad_cast? typeid operator producing an object of type std::type_info? There's a whole section in the standard called "Language support library". –  Igor Tandetnik Aug 10 '13 at 17:32
    
After adding the missing template argument to ArrayPrinter<int> ap{ {1,2,3} }; it works as expected: live example –  dyp Aug 10 '13 at 17:59
    
template <typename... TT> InitializerList(TT&&... pp) : storage{pp...} {} is just forwarding thestd::initializer_list to the vector. –  DrYap Aug 10 '13 at 18:21

1 Answer 1

up vote 10 down vote accepted

The name is important because the standard says it is. The standard needs some way for you to be able to say, "this constructor can be passed a braced-init-list containing a sequence values of the type T". That way was given the name "std::initializer_list".

You cannot make a class that has all of the language properties of initializer_list. You can make one that satisfies the conditions of the type specified by section 18.9 of the standard. But you'll notice that the only constructor specified there is a default constructor. The only way to create an initializer_list with actual elements relies on the compiler, not user-land code.

So you can't replicate everything about initializer_list. Just as you can't replicate std::type_info. The C++ standard library is not optional.

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