简化为:
// CHAR_TYPE == char, wchar_t, ...
template <typename CHAR_TYPE, unsigned CHAR_COUNT>
void Foo(CHAR_TYPE const (&value)[CHAR_COUNT]) noexcept
{
TRACE("const ref array");
// perform a bit of logic and forward...
}
template <typename CHAR_TYPE>
void Foo(CHAR_TYPE const* value) noexcept
{
TRACE("const ptr");
// perform a bit of logic and forward...
}
// [ several other overloads ]
Callsite:
char const* ptr = ...
wchar_t const* wptr = ...
Foo(ptr); // <-- good: "const ptr"
Foo(wptr); // <-- good: "const ptr"
constexpr char const buffer[] { "blah blah blah" };
constexpr wchar_t const wbuffer[] { L"blah blah blah" };
Foo(buffer); // <-- ambiguous
Foo(wbuffer); // <-- ambiguous
当然,我可以删除const ref数组重载。但是我想以不同的方式处理这些类型。我试图有条件地启用正确的过载,但我无法确定必要的条件。
template <typename CHAR_TYPE, unsigned COUNT>
typename std::enable_if</* std::is_?? */, void>::type
Foo(CHAR_TYPE const (&value)[COUNT]) noexcept
{
TRACE("by ref array");
// perform a bit of logic and forward...
}
template <typename CHAR_TYPE>
typename std::enable_if</* std::is_?? */, void>::type
Foo(CHAR_TYPE const* value) noexcept
{
TRACE("ptr");
// perform a bit of logic and forward...
}
消除这些重载歧义的最佳方法是什么? (我宁愿不使用数组包装器)
答案 0 :(得分:8)
一个有用的想法是删除指针,而只需T代替std::enable_if_t<std::is_pointer<T>::value>后卫。简化示例如下:
#include <iostream>
#include <type_traits>
template<class T, size_t N>
void f(T const (&) [N])
{
std::cout << __PRETTY_FUNCTION__ << std::endl;
}
template<class T, std::enable_if_t<std::is_pointer<T>::value>* = nullptr >
void f(T)
{
std::cout << __PRETTY_FUNCTION__ << std::endl;
}
int main()
{
const char* str = "test";
char str2[]{"test2"};
f(str);
f(str2);
}
答案 1 :(得分:7)
通过(const)引用的参数在模板参数推导期间阻止数组到指针的衰减。见http://www.myapp.com。所以:
template <typename CHAR_TYPE>
void Foo(CHAR_TYPE const* const & value) noexcept
{
TRACE("const ptr");
// perform a bit of logic and forward...
}