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I'm trying to figure out why this example doesn't compile. My understanding is that if a static variable is not explicitly set then it defaults to 0. In the five examples below four of them behave as I would expect, but the one that's commented out won't compile.

#include <iostream>
class Foo
{
public:
    static int i;
    static int j;
};
template <int n>
class Bar
{
public:
    Bar(int) { }
    static int i;
}; 

static int i;
int Foo::i;
int Foo::j = 1;
template <> int Bar<2>::i;
template <> int Bar<3>::i = 3;

int main(int argc, char** argv)
{
    std::cout << "i         " << i << std::endl;
    std::cout << "Foo::i    " << Foo::i << std::endl;
    std::cout << "Foo::j    " << Foo::j << std::endl;
    //std::cout << "Bar<2>::i " << Bar<2>::i << std::endl; // Doesn't compile?
    std::cout << "Bar<3>::i " << Bar<3>::i << std::endl;
    return 0;
}

Why doesn't int Bar<2>::i do the same thing as int Foo::i or static int i?

Edit: I had forgotten to add template<> to the Bar<2> and Bar<3> declarations. (doesn't solve the problem though, still getting linker errors)

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3  
    
what is the linking error? – Chubsdad Sep 8 '10 at 5:35
    
@Chubsdad: Undoubtedly it is "Undefined reference to Bar<2>::i" or something meaning that. In the OP's code, template<> int Bar<2>::i; is a nondefining declaration (see the linked duplicate for litb's detailed explanation). – James McNellis Sep 8 '10 at 5:37
    
I'm not quite following litb's answer as the code is slightly different in the other case. Is he saying that I must explicitly set Bar<2>::i in order to use it? If at all possible I'd like to be able to declare it without having to explicitly set it. – Alex Sep 8 '10 at 5:46
    
14.7/1: The implicit instantiation of a class template specialization causes the implicit instantiation of the declarations, but not of the definitions or default arguments, of the class member functions, member classes, *static data members* and member templates; and it causes the implicit instantiation of the definitions of member anonymous unions. This is probably what is going on. (Emphasis mine.) – dirkgently Sep 8 '10 at 5:50
up vote 5 down vote accepted

Under the rules of the current C++ standard, the specialisation template <> int Bar<2>::i; is only a declaration and never a definition. To become a definition, you must specify an initialiser. (See clause 14.7.3/15)

Apart from that, you were missing one very common case: the definition of a non-specialised static member of a template:

template <int n> int Bar<n>::i;

This provides a definition for Bar<N>::i for N not equal to 2 or 3.

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According to the latest draft of Standard C++ it says

14.7.3/13 An explicit specialization of a static data member of a template is a definition if the declaration includes an initializer; otherwise, it is a declaration.
[Note: the definition of a static data member of a template that requires default initialization must use a braced-init-list:

 template<> X Q<int>::x;       //declaration
 template<> X Q<int>::x ();    // error: declares a function
 template<> X Q<int>::x { };   // definition

— end note ]

So what you are asking is possible, if your compiler is supporting it.

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