C ++中的模板类可以有静态成员吗?由于它不存在并且在使用之前是不完整的,这可能吗?
答案 0 :(得分:31)
是。静态成员在template< … > class { … }块内声明或定义。如果声明但未定义,则必须有另一个声明来提供成员的定义。
template< typename T >
class has_static {
// inline method definition: provides the body of the function.
static void meh() {}
// method declaration: definition with the body must appear later
static void fuh();
// definition of a data member (i.e., declaration with initializer)
// only allowed for const integral members
static int const guh = 3;
// declaration of data member, definition must appear later,
// even if there is no initializer.
static float pud;
};
// provide definitions for items not defined in class{}
// these still go in the header file
// this function is also inline, because it is a template
template< typename T >
void has_static<T>::fuh() {}
/* The only way to templatize a (non-function) object is to make it a static
data member of a class. This declaration takes the form of a template yet
defines a global variable, which is a bit special. */
template< typename T >
float has_static<T>::pud = 1.5f; // initializer is optional
为模板的每个参数化创建单独的静态成员。在模板生成的所有类之间共享单个成员是不可能的。为此,您必须在模板外定义另一个对象。部分专业的特质课可能对此有所帮助。