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I have seen the code

vector<char> v(10);
vector<char>::iterator p;

here what is the need of vector<char>::.Does it mean iterator is a class inside vector namespace?

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5 Answers 5

up vote 4 down vote accepted

Does it mean iterator is a class inside vector namespace?

Not quite, is a type inside vector class template. The iterator not only depends on the type of container (here a vector), but on the type of element iterated over as well (here a char).

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vector<char>::iterator need not be a class. What we can say is that it's a nested type. Perhaps add a small example of such a type? –  Luc Danton Sep 25 '11 at 4:45
    
@Luc Danton: Touché. Fixed. –  K-ballo Sep 25 '11 at 4:47
    
@K-ballo @Luc Danton I was thinking that only static members can be accessed using :: operator.I was unaware of nested types .Thanks for the answer. –  Vaysage Sep 25 '11 at 4:57
    
@Vaysage: You are thinking the wrong way around. Non static member variables are accessed via .. All other members of the class are accessed via :: –  Loki Astari Sep 25 '11 at 5:24
    
@Tux-D: The difference is that . is for member access via an object (or rvalue), whereas :: is the scope resolution operator. So for example, member functions can be accessed using object.func or Class::func, depending on context. See 3.3.6/2 ([basic.scope.class]) in C++03. –  Steve Jessop Sep 25 '11 at 10:10

Possibly the easiest way is to understand that :: is the scope operator, not just for namespaces.

std::vector<char> is a class, and therefore it has its own class scope (3.3.6 in C++03, 3.3.7 in C++11). std::vector<char>::iterator is a fully-qualified name in that scope. In the case of iterator, it names a type -- not necessarily a class, and even if it is the class itself is not necessarily defined in std::vector<char>, since iterator could be a typedef.

As it happens, a class scope is not one of those things that C++ calls a "namespace". In everyday[*] English, you could describe it as a kind of namespace, it just isn't the proper terminology in C++.

However you call it, though, be aware that it's vector<char> which is the class, and has the scope that contains iterator, not vector. std::vector does guarantee that any vector<T> has an iterator type, but for other templates it is not necessarily the case that every specialization has the same members and nested types. So there is no vector scope.

[*] "everyday", if your days are the kind of days had by people who talk a lot about namespaces.

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Yes, it does mean exactly that. Iterator is defined within the scope of the class vector, and for each different type a vector is created, there's a different implementation of the iterator as well.

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Not exactly, since he thinks vector is a namespace. –  K-ballo Sep 25 '11 at 4:43
    
vector is neither a class nor a namespace. –  Steve Jessop Sep 25 '11 at 10:22

It also means that the iterator operates on a vector<char> instead of, say, a vector<int>.

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Namespaces cannot be templetized, so vector cannot be a namespace. In fact vector is a template class (and vector is an instantiation) for which iterator is a nested type.

But the question has some point: the A::B syntax is normally not distinguishable. In term of name resolution, if fact, both classes an name-spaces are ... container of names.

Classes are more than name containers: they represent data having instances and associated functionalities. Namespaces are just container for names

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