2

I have a non-template class which is derived from a specific template instance. As usual, the base class must be initialized in the derived class's constructor. I discovered that it is possible to omit the specific template argument when calling the constructor: The major compilers (VC, g++, clang) accept it. That looks strange because the class template in itself is not a class name:

$ cat template-base.cpp && g++ --pedantic -o template-base template-base.cpp  && ./template-base
template <int I>
struct T
{
        T(int) {}
};

struct DT: public T<1>
{
        // Note: T<1>(42) is possible but not necessary.
        // T<2>(42) is an error ("T<2> is not a base class", which is correct).
        DT(): T(42) {}
};

int main()
{
        DT dt;
}

(There is this similar question answered by Johannes Schaub, in which also the derived class itself is a template. In that case the template argument is mandatory, even though it is equally well deductible there.)

Why can I use a template name like a class name here? T is not a class!

0
7

This has to do with the injected class name. When a class template is used as a base class, the language allows you to use the name of the template as if you specified the parameters since it knows what those parameters are. Doing

DT(): T(42) {}

gets expanded to

DT(): T<1>(42) {}

by the compiler for you.


The standard language that allows this can be found in [temp.local]

1
  • 1
    "When a class template is used as a base class" sounds a bit iffy. The injected class name isn't special cased for base classes, it is found by name lookup in the base class after T couldn't be found in the derived class. This is pertinent in the case where the base class is a dependent type, or when there is a member T in the derived class. – Passer By Sep 16 '20 at 16:37

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.