Gri*_*wes 4 c++ variadic-templates c++11
我正在工作(主要是为了学习目的)自己的实现,tuple我刚遇到一个问题.我有以下代码:
namespace Rose
{
template<typename T>
struct RemoveReference
{
typedef T Type;
};
template<typename T>
struct RemoveReference<T &>
{
typedef T Type;
};
template<typename... Elems>
class Tuple;
template<typename First, typename... Elems>
class Tuple<First, Elems...>
{
public:
Tuple(First a, Elems... more)
: More(more...), Element(a)
{
}
Tuple<First, Elems...> & operator=(const Tuple<RemoveReference<First>::Type,
RemoveReference<Elems>::Type...> & rhs)
{
this->Element = rhs.Element;
this->More = rhs.More;
return *this;
}
private:
Tuple<Elems...> More;
First Element;
};
template<typename Only>
class Tuple<Only>
{
public:
Tuple(Only a) : Element(a)
{
}
Tuple<Only> & operator=(const Tuple<RemoveReference<Only>::Type> & rhs)
{
this->Element = rhs.Element;
return *this;
}
private:
Only Element;
};
}
int main()
{
Rose::Tuple<int, float, int> t(1, 1.f, 2);
}
这导致以下错误(有更多,但这一个是必不可少的):
错误:模板参数列表中参数1的类型/值不匹配'template struct Rose :: Tuple'错误:期望一个类型,得到'Rose :: RemoveReference :: Type'
我真的不明白这是什么.RemoveReference当单独使用时,该特性有效.
这是两个测试用例:
我用G ++ 4.6.1,4.5.1和Clang ++ 2.9尝试了这段代码.
这些错误出现的原因是什么?
RemoveReference<T>::Type是一个依赖类型,所以你需要在typename这里添加:
Tuple<First, Elems...> & operator=(const Tuple<typename RemoveReference<First>::Type,
typename RemoveReference<Elems>::Type...> & rhs)
可能还有其他地方.