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I was reading this article from this page, so let me present the code:

template <class T> class D: typename C<T>::Base { //#1 error
    D(): typename C<T>::Base(typename C<T>::Base(0)) { } //#2 error, #3 correct
    typename C<T> f() { //#4 error
        typename C<T>::A* p; //#5 correct
        A<T>::B * n;
    }
};
class Q{
    typename C<long>::A * p; // #6 error
}
template <class T, class U> class R{
    typename C<long>::A * p; // #7 optional
}

#3 is correct but I am trying to understand what the author is attempting to convey. He says:

typename #3: correct. Here, typename is used for disambiguating the type of a parameter. Without typename, the expression C::Base(0) would be treated as a call to a function called Base. With the typename prefix, C::Base(0) creates a temporary object of type C::Base initialized with the argument 0.

Also, if you see a little above that part the author says:

The typename keyword must prefix a dependent name when that name satisfies the following three rules:

1.It appears inside a template

2.It's qualified // i am unable to understand this line at all in conjunction with starting para of this quote

3.It isn’t used in a base class specification or a member initialization list.

I am unable to understand this line (#2 above) at all in conjunction with starting paragraph of this quote. Can you explain what the author means?

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Do you have a question? –  Kerrek SB Sep 2 '11 at 17:19
    
I cleaned it up quite a bit and I moved what I think is the question out of the block quote. –  jeffamaphone Sep 2 '11 at 17:23
    
@Kerrek : yes (read the bolded sentences?) , you saying this cause you haven't read it whole i think grins –  Mr.Anubis Sep 2 '11 at 17:32
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2 Answers 2

up vote 2 down vote accepted

"Qualified" means that it is not in the same scope, but a subscope of the current one, which also depends on a template. For instance,

template <class T> C {
    typedef int b;
}

b is a qualified id.

Relevant quote from the standard (§14.6.3):

A qualified-id that refers to a type and in which the nested-name-specifier depends on a template-parameter (14.6.2) shall be prefixed by the keyword typename to indicate that the qualified-id denotes a type, forming an elaborated-type-specifier (7.1.5.3).

And §14.6.2:

A name used in a template declaration or definition and that is dependent on a template-parameter is
assumed not to name a type unless the applicable name lookup finds a type name or the name is qualified
by the keyword typename. [Example:
    // no B declared here
    class X;
    template<class T> class Y {
        class Z; // forward declaration of member class
        void f() {
            X* a1; // declare pointer to X
            T* a2; // declare pointer to T
            Y* a3; // declare pointer to Y<T>
            Z* a4; // declare pointer to Z
            typedef typename T::A TA;
            TA* a5; // declare pointer to T’s A
            typename T::A* a6; // declare pointer to T’s A
            T::A* a7; // T::A is not a type name:
            // multiply T::A by a7; ill-formed,
            // no visible declaration of a7
            B* a8; // B is not a type name:
            // multiply B by a8; ill-formed,
            // no visible declarations of B and a8
        }
    };
—end example]

And §14.6.7:

Within the definition of a class template or within the definition of a member of a class template, the keyword
typename is not required when referring to the unqualified name of a previously declared member
of the class template that declares a type. The keyword typename shall always be specified when the
member is referred to using a qualified name, even if the qualifier is simply the class template name.
[Example:
    template<class T> struct A {
        typedef int B;
        A::B b; // ill-formed: typename required before A::B
        void f(A<T>::B); // ill-formed: typename required before A<T>::B
        typename A::B g(); // OK
    };

The keyword typename is required whether the qualified name is A or A<T> because A or A<T> are synonyms
within a class template with the parameter list <T>. ]
share|improve this answer
    
you answered the question which is after also word , can you please tell what author is saying in template typename #3 –  Mr.Anubis Sep 2 '11 at 17:36
    
@Mr.Anubis if you left of typename and just did C<T>::Base(0), it would think you were trying to call the function C<T>::Base with the argument of 0, when really you are trying to construct an instance of C<T>::Base passing 0 to its constructor. –  Seth Carnegie Sep 2 '11 at 17:56
    
but constructor is function which we need to call to create a object , so what's the difference? –  user72424 Sep 2 '11 at 18:11
    
@x4d3 the constructor is not a function in the normal sense because it doesn't return anything. And you have to get to it through a name that could be a type name (which would make it a ctor) or a function name. So you have to tell the compiler what you want to do to resolve the ambiguity. –  Seth Carnegie Sep 2 '11 at 18:18
    
Can you please explain your this line bit more? -> And you have to get to it through a name that could be a type name (which would make it a ctor) or a function name. –  user72424 Sep 2 '11 at 18:26
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Not sure if this might help, but an example of template usage:

template<typename TemplateVar>
class SimpleTemplate
{
    public:
        TemplateVar Item;

        void SetItem(TemplateVar &ItemCopy);
        TemplateVar &GetItem();
};

template<typename TemplateVar>
void SimpleTemplate<TemplateVar>::SetItem(TemplateVar &ItemCopy)
{
    Item = ItemCopy;
    return;
}

template<typename TemplateVar>
TemplateVar &SimpleTemplate<TemplateVar>::GetItem()
{
    return Item;
}

int main(int ArgC, char *ArgV[])
{
    SimpleTemplate<char> Test;
    return 0;
}

Feel free to do whatever you want with the code (even sell it, if you can).

share|improve this answer
    
+1 for Feel free to do whatever you want with the code (even sell it, if you can). –  user72424 Sep 2 '11 at 19:07
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