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Is it

template <typename T>
void foo(T) {}

template <>
void foo(int) {}

explicit specialization or function overloading, and for the explicit initialization compiler want to see the following code?

template <typename T>
void foo(T) {}

template <>
void foo<int>(int) {}

I think that standard accepts both of these:

ISO/IEC 14882:2011

14.7.3 Explicit specialization [temp.expl.spec]

1 ...

can be declared by a declaration introduced by template<>; that is:
explicit-specialization:
template < > declaration
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1 Answer 1

Either are allowed. In the specialization

template <>
void foo(int) {}

the compiler infers the template argument T = int from the function arguments. From 14.7.3p10:

A trailing template-argument can be left unspecified in the template-id naming an explicit function template specialization provided it can be deduced from the function argument type.

The example given involves a deduction from a class template, but it's just as applicable to deduction from a type used directly:

template<class T> class Array { /∗ ... ∗/ };
template<class T> void sort(Array<T>& v);
// explicit specialization for sort(Array<int>&)
// with deduced template-argument of type int
template<> void sort(Array<int>&);
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