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The next code works fine (this is a oversimplified version of other problem of mine, with types longer, deeper and more templates):

template<class C>
struct Base
{};

template<class C>
struct Derived : public Base<C>
{
   Derived() : Base<C>()
   {}
};

But, how could I call to the base class constructor without "write" the complete type of its base class? For example, I tried something like:

template<class C>
struct Base
{
   typedef Base base_type;
};

template<class C>
struct Derived : public Base<C>
{
   Derived() : base_type() {}
};

int main()
{
   Derived<void> b;
}

But "base_type" isn't recognized. The message that gcc throws is:

test3.cpp: In constructor 'Derived<C>::Derived()':
  test3.cpp:100:17: error: class 'Derived<C>' does not have any field
  named 'base_type'

To solve it I have to write Base<C>::base_type in the constructor but this would make the existence of base_type itself irrelevant.

Is it my campaign of writting-saving impossible?

And, why base_type in the constructor isn't found, and however this works fine?

int main()
{
   Derived<void>::base_type b;
}

EDIT: With the comment of @Jack Aidley the best form I've found to get the type of the base class with a simple alias is:

template<typename C> struct Base {};

template<typename C, typename Base>
struct Derived_impl : public Base
{
    Derived_impl() : Base()
    {}
};

template<typename C>
using Derived = Derived_impl<C, Base<C> >;

int main()
{
   Derived<void> b;
}
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1  
Any reason you can't do template<class C, class Base> struct Derived : public Base<C>? –  Jack Aidley Feb 7 '13 at 11:02
    
It seems good idea. Thank you. –  Peregring-lk Feb 7 '13 at 11:10

2 Answers 2

up vote 2 down vote accepted

According to the standard

When looking for the declaration of a name used in a template definition, the usual lookup rules (3.4.1, 3.4.2) are used for nondependent names. The lookup of names dependent on the template parameters is postponed until the actual template argument is known (14.6.2).

It means, that you have to tell to the compiler, that base_type in the Base class, that depends of C. You can use, for example, this:

template<class C>
struct Derived : public Base<C>
{
    using typename Base<C>::base_type;

    Derived() : base_type() {}
};

or this

template<class C>
struct Derived : public Base<C>
{
    Derived() : Derived<C>::base_type() {} 

    // or, as you already told, Base<C>::base_type()
};
share|improve this answer

You can always do this:

template<class C>
struct Base
{
};

template<class C>
struct Derived : public Base<C>
{
   typedef Base<C> base_type;  // define here

   Derived() : base_type() {}
};

Makes sense if you will refer to the base type in Derived...

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