0

In the following code the compiler can successfully resolve the call to f() to call f(int&, const char*).

The call to g(), however, is ambiguous. It lists all four overloads as the possible overload set. If I remove , typename T2, std::size_t I from the template argument list for the array argument, and hard code them instead, there is no ambiguity and the compiler picks g(T&, const char*).

How is it that adding the two template arguments makes this ambiguous? I can see how, though decay and casting, it could resolve to any one of the overloads, but I cannot figure out how adding those template parameters introduces the ambiguity.

I have testing this on Clang 3.8 (unreleased) and VC++ 2015.

#include <string>

void f(int&, const char*){}
void f(int&, char(&)[8]){}
void f(int&, bool){}
void f(int&, const std::string&){}

template <typename T>
void g(T&, bool){}
template <typename T>
void g(T&, const char*){}
template <typename T>
void g(T&, const std::string&){}
template <typename T, typename T2, std::size_t I>
void g(T&, T2(&)[I]){}

int main(int argc, char* argv[])
{
   int i = 1;
   f(i, "       ");
   g(i, "       ");
   return 0;
}
1

Overload #2:

void g(T&, const char*){}

Overload #4:

template <typename T, typename T2, std::size_t I>
void g(T&, T2(&)[I]){}

Overload #2 and overload #4 will be ambiguous when calling g(...) with a string literal; the string literal argument will be deduced to const char* as well as T2(&)[I].

Reason

Your string literal " " is const char[8], which clearly shows how it gets deduced to overload #4. However, since arrays decay to pointers, const char[8] is also const char* which clearly deduces to overload #2.

  • You are right. I missed the const in the overload with the array. – Graznarak Sep 29 '15 at 21:01
1

Compiler will usually list all possible overloads, not only the ambiguous ones. So there is no ambiguity regarding overloads 1 and 3. They are of second order. However, overloads 2 and 4 are of first order - string literal is an array, and array decaying is a the first order as well.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.