Consider this example code:
template<class D>
char register_(){
return D::get_dummy(); // static function
}
template<class D>
struct Foo{
static char const dummy;
};
template<class D>
char const Foo<D>::dummy = register_<D>();
struct Bar
: Foo<Bar>
{
static char const get_dummy() { return 42; }
};
I'd expect dummy
to get initialized as soon as there is a concrete instantiation of Foo
, which I have with Bar
. This question (and the standard quote at the end) explained pretty clear, why that's not happening.
[...] in particular, the initialization (and any associated side-effects) of a static data member does not occur unless the static data member is itself used in a way that requires the definition of the static data member to exist.
Is there any way to force dummy
to be initialized (effectively calling register_
) without any instance of Bar
or Foo
(no instances, so no constructor trickery) and without the user of Foo
needing to explicitly state the member in some way? Extra cookies for not needing the derived class to do anything.
Edit: Found a way with minimal impact on the derived class:
struct Bar
: Foo<Bar>
{ // vvvvvvvvvvvv
static char const get_dummy() { (void)dummy; return 42; }
};
Though, I'd still like the derived class not having to do that. :|
Consider:
template<typename T, T> struct value { };
template<typename T>
struct HasStatics {
static int a; // we force this to be initialized
typedef value<int&, a> value_user;
};
template<typename T>
int HasStatics<T>::a = /* whatever side-effect you want */ 0;
It's also possible without introducing any member:
template<typename T, T> struct var { enum { value }; };
typedef char user;
template<typename T>
struct HasStatics {
static int a; // we force this to be initialized
static int b; // and this
// hope you like the syntax!
user :var<int&, a>::value,
:var<int&, b>::value;
};
template<typename T>
int HasStatics<T>::a = /* whatever side-effect you want */ 0;
template<typename T>
int HasStatics<T>::b = /* whatever side-effect you want */ 0;