5

What am I doing wrong?

template<class T>
class Binder
{
public:
    static std::vector< Binder< T >* > all;
    Node<T>* from;
    Node<T>* to;
    Binder(Node<T>* fnode, Node<T>* tonode)
    {
        from = fnode;
        to = tonode;
        Binder<T>::all.push_back(this);
    }
};

std::vector<Binder<int>*> Binder<int>::all = std::vector< Binder<int>* >(); //here it is

Thank you.

1 Answer 1

7

The definition of the static member is interpreted by the compiler as a specialization (actually, it is a specialization: you are giving a declaration that is specific to T = int). This can be fixed by adding template<> before the definition.

Defining static members in templates is a bit of a bummer: the static member needs to be defined outside a header, and that is possible only if you already know all the possible T for your binder.

For instance, right now you are defining it for T=int. Now, if you start using Binder<double> somewhere, the static member is going to be an undefined reference.

3
  • 2
    Static members for template classes can be defined in the header.
    – Timo
    Sep 21, 2012 at 6:15
  • @Timo Does not seem so. I moved the template code in bla.h that I included in bla.cpp and main.cpp. I think that compilers don't know how to "unify" global variables the same way they do for inline functions doudou@demeter:~/tmp$ g++ main.cpp bla.cpp/tmp/ccdgiTrw.o:(.bss+0x0): multiple definition of `Binder<int>::all' /tmp/ccXM1TWJ.o:(.bss+0x0): first defined here collect2: ld returned 1 exit status</pre> Sep 21, 2012 at 6:17
  • See $3.2/5 in the standard. It specifically allows multiple definition of static data members for class templates assuming they're in different translation units.
    – Timo
    Sep 21, 2012 at 6:27

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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