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Consider the following:

template <typename T>
class Base {
  public:
    template <typename U>
    class Nested { };
};

template <typename T>
class Derived : public Base<T> {
  public:
    //How do we typedef of redefine Base<T>::Nested?
    using Base<T>::Nested; //This does not work
    using Base<T>::template<typename U> Nested; //Cannot do this either
    typedef typename Base<T>::template<typename U> Nested Nested; //Nope..

    //now we want to use the Nested class here
    template <typename U>
    Class NestedDerived : public Nested { };

    //or like this:
    Nested<int> nestedVar; // obviously does not work
};

How to use the templated Nested class in the Derived class? Is this possible to do in current version of C++ standard?

share|improve this question
    
I don't understand why you are making Nested a 'derived' class, because the Class Derived will inherit the Nested class anyway. –  Craig Feb 18 '10 at 1:35
    
I want "Nested" class encapsulated in "Base", and "Derived" class can extend or use the "Base::Nested" class. –  leiiv Feb 18 '10 at 1:40
    
In what use-case does using Base<T>::Nested; not work? –  Georg Fritzsche Feb 18 '10 at 2:22
    
@gf: in the last line of my example: Nested<int> nestedVar;. I cannot just use/refer to the Nested class by just a word Nested, even though I already use using Base<T>::Nested –  leiiv Feb 18 '10 at 3:30

4 Answers 4

up vote 7 down vote accepted

Actually using works as advertised, it just doesn't get rid of the dependent-name issue in the template and it can't currently alias templates directly (will be fixed in C++0x):

template <class T>
struct Base {
    template <class U> struct Nested {};
};

template <class T>
struct Derived : Base<T> {
    using Base<T>::Nested;

    // need to prefix Nested with template because
    // it is a dependent template:
    struct X : Base<T>::template Nested<int> {};

    // same here:
    template<class U>
    struct Y : Base<T>::template Nested<U> {};

    // data member, typename is needed here:
    typename Base<T>::template Nested<int> data;
};

void f() { 
    Derived<int>::Nested<int> n; // works fine outside
}

There is another possible gotcha when using Derived<T>::Nested in templates, but again that is a dependent-name issue, not inheritance-related:

template<class T>
void g() {
    // Nested is a dependent type and a dependent template, thus
    // we need 'typename' and 'template':
    typedef typename Derived<T>::template Nested<int> NestedInt;
}

Just remember that names that depend on template arguments have to be

  • prefixed with typename if its a dependent type: typename A<T>::B
  • directly prefixed with template if its a dependent template: A<T>::template f<int>()
  • both if both: typename A<T>::template B<int>
  • typename is illegal in base-class-lists: template<class T> struct A : B<T>, C<T>::template D<int> {};
share|improve this answer
    
Can you give example how to use the Nested type for a data member of Derived class? If we still have to use Base<T>:: , then would the using Base<T>::Nested be useless? –  leiiv Feb 18 '10 at 3:32
1  
Will do. using Base<T>::Nested is not useless though, it is used in f() and g() - without the using declaration, you would have to access Nested via Base in f(). –  Georg Fritzsche Feb 18 '10 at 3:38
    
Thank you gf, that's very helpful. –  leiiv Feb 18 '10 at 5:49
1  
Nice answer. +1! Worth pointing out that there is another version using typename that is used if Nested is a type name (and C++0x will then classify Nested in the scope of Derived as a type-name (C++03 missed this classification, even tho supporting using typename!)). There is, sadly, no way to just write using Base<T>::template Nested; to use Nested as a template-name in the derived class (neither in C++03 nor in C++0x. In C++0x you would have to use an alias-declaration like you are saying). –  Johannes Schaub - litb Mar 6 '10 at 14:50
    
(the defect report for all this is open-std.org/jtc1/sc22/wg21/docs/cwg_defects.html#11 ) –  Johannes Schaub - litb Mar 6 '10 at 15:34

This seems to work:
(EDIT: added some more lines to show the first template statement. And thanks to Samir Talwar for correcting my formatting!)

template <typename T, typename U> 
class Derived : public Base<T> { 
  public: 
    typedef typename Base<T>::template Nested<U> Nested;

    class NestedDerived : public Nested { }; 

    Nested nestedVar;
};
share|improve this answer
    
But now users always have to specify a second template argument for Derived. –  Georg Fritzsche Feb 18 '10 at 2:26
    
Yes, and one Derived cannot have more than one type of NestedDerived. It is a serious limitation, but otherwise I don't see any way to have NestedDerived make use of Base::Nested. –  Beta Feb 18 '10 at 2:32

Try this:

template <typename T>
class Base {
  public:
    template <typename U>
    class Nested { };
};

template <typename T>
class Derived : public Base<T> {
  public:
    //How do we typedef of redefine Base<T>::Nested?
    //using Base<T>::Nested; //This does not work
  //using Base<T>::template<typename U> Nested; //Cannot do this either
  //typedef typename Base<T>::template<typename U> Nested Nested; //Nope..

    //now we want to use the Nested class here
  template <typename U>
  class NestedDerived : public Base<T>::template Nested<U> { };
};

int main()
{
  Base<int>::Nested<double> nested;

  Derived<int>::NestedDerived<double> nested_derived;

  return 0;
}

Compiled fine using gcc 4.3.3 on slackware 13

share|improve this answer
    
Sorry, but this is not what I am asking. What I want to know is, is it possible to typedef or using the public Base<T>::template Nested<U> inside the Derived class, because that type will be used in lots of places. –  leiiv Feb 18 '10 at 1:47
    
Ok, sorry, I will try to find a suitable answer –  coelhudo Feb 18 '10 at 1:58

I'm still not 100% sure what you want, but you could try.
This compiled on Visual Studio

template <typename T>
class Base {
  public:
    template <typename U>
    class Nested { };
};

template <typename T>
class Derived : public Base<T> {
  public:
    //now we want to use the Nested class here
    template <typename U>
    class NestedDerived : public Nested<U> { };
};

int _tmain(int argc, _TCHAR* argv[])
{
Base<int>::Nested<double> blah2;
Derived<int>::NestedDerived<int> blah;

return 0;
}
share|improve this answer
    
this can also use Derived<int>::Nested<float> blah3; –  Craig Feb 18 '10 at 1:55
    
ah good ol' VS.. g++ 4.4.1 does not let me do that.. –  leiiv Feb 18 '10 at 1:55
    
What is the difference between what I did and what Craig did? I really didn`t spotted :/ –  coelhudo Feb 18 '10 at 1:58
    
The problem is you can't use the Nested definition just like that inside Derived class, you have to use a fully qualified name. –  leiiv Feb 18 '10 at 1:58
    
onyl difference i see is this line class NestedDerived : public Base<T>::template Nested<U> { }; –  Craig Feb 18 '10 at 1:59

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