我想创建一个我可以用作模板参数的字符串文字。它将编译器抛入某种无限循环。有什么问题并修复?
template <char...> struct slit { };
template <typename ...A>
constexpr auto make_slit(char const* const s, A const ...args)
{
return *s ? make_slit(s + 1, *s, args...) : slit<args...>();
}
int main()
{
auto const tmp_(make_slit("slit"));
return 0;
}
强制性错误(clang++ -std=c++1y):
t.cpp:4:16: fatal error: recursive template instantiation exceeded maximum depth of 256
constexpr auto make_slit(char const* const s, A const ...args)
^
t.cpp:6:15: note: in instantiation of function template specialization 'make_slit<char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char,
char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char, char>' requested here
return *s ? make_slit(s + 1, *s, args...) : slit<args...>();
答案 0 :(得分:3)
抛开循环实例化,您无法实现您想要的功能,因为函数参数不能用作常量表达式,这是模板参数所必需的。意味着不允许以下内容:
template <typename... A>
constexpr auto make_slit(A const... args)
{
return slit<args...>();
}
// error
make_slit('a');
如果您发现这一点令人惊讶,请记住constexpr函数是一项功能,允许某些函数也可用于常量表达式。然而,你的一般情况并非如此:
char c;
std::cin >> c;
// what is the result type?
make_slit(c);
但是我应该注意到,在文字字符串运算符的设计过程中,建议允许函数模板形式(就像它们对于整数和浮点文字一样),这将完全满足您的需求:
// allowed...
template<char... Cs>
constexpr slit<Cs...> operator"" _slit()
{ return {}; }
// ...but only for
auto constexpr s = 123_slit;
auto constexpr t = 12.3_slit;
// ... and not
auto constexpr u = "abc"_slit;
这个缺失的功能最近于2013年由理查德史密斯的n3599: Literal operator templates for strings提出。不幸的是,我不知道该功能的当前状态是什么。
答案 1 :(得分:3)
您可以找到将字符串文字扩展为参数包here
的解决方案#include <iostream>
// c++14 has it http://en.cppreference.com/w/cpp/utility/integer_sequence
namespace detail {
template <int... Is> struct seq { };
template <int N, int... Is> struct gen_seq : gen_seq<N - 1, N - 1, Is...> { };
template <int... Is> struct gen_seq<0, Is...> : seq<Is...> { };
}
constexpr size_t operator"" _len ( const char*, size_t len ){ return len; }
template < char... val > struct slit {};
#define EXPAND_STRING( type_name, str ) \
template <int... Is> slit< str[Is]...> make_##type_name( detail::seq<Is...> ); \
using type_name = decltype( make_##type_name( detail::gen_seq<str##_len>{} ) );
using Manual = slit< 'b', 'a', 'z'>;
EXPAND_STRING( MyFoo, "foo bar baz");
EXPAND_STRING( MyBar, "bla bli blo blu");
inline std::ostream& operator<<( std::ostream& os, slit<> ) { return os; }
template < char first, char... chars >
std::ostream& operator<<( std::ostream& os, slit<first,chars...> ) {
return os << first << " " << slit<chars...>{};
}
int main() {
std::cout << Manual{} << "\n";
std::cout << MyFoo{} << "\n";
std::cout << MyBar{} << "\n";
}
编辑:用自定义文字替换constexpr strlen,它直接返回长度并使用C ++ 1y的轻松constexpr函数删除依赖项。