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Where and why do I have to put the “template” and “typename” keywords?

This is reproduced from Stroustroup's FAQ. I've seen typename used when you don't know the type, for instance in templates, template <typename> class some_class. Why is typename used in the example below?

    template<class T> void printall(const vector<T>& v)
    {
        for (auto p = v.begin(); p!=v.end(); ++p)
            cout << *p << "\n";
    }

In C++98, we'd have to write 

    template<class T> void printall(const vector<T>& v)
    {
        for (typename vector<T>::const_iterator p = v.begin(); p!=v.end(); ++p)
            cout << *p << "\n";
    }
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marked as duplicate by Mike Seymour, Prasoon Saurav, Matteo Italia, Karoly Horvath, BЈовић Feb 27 '12 at 19:16

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1 Answer 1

Your example is exactly the typical example. Since vector<T> is used with a templated parameter T we have to tell the compiler that ::const_iterator is a type. This is there to help the compiler to know that for any T the vector<T> type has a type named const_iterator.

Perhaps a simpler case to understand is T::some_name. T is unknow so it's not know if some_name is a type of a variable, function, etc... The compiler does not analyze to figure out that in this particular case with vector<T> ::const_iterator is always going to be a type for any T, so the case for The vector<T>.

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So the iterator depends upon not only the container type but what it holds..that is an iterator for vector<int> is different than an iterator for vector<float>? –  user656925 Feb 27 '12 at 19:12
    
vector<float> is completely specified so the compiler can just use it like any other type at that point. –  Johan Lundberg Feb 27 '12 at 19:14
    
@GuyMontag - compiler cannot know that vector<T>::const_iterator is a type at all. It could be a method or a static data member, and the compiler won't know until it creates a concrete type from the vector template. –  Robᵩ Feb 27 '12 at 19:18