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Asked: 2026-05-24T00:24:33+00:00

I’ve come across a strange problem with method specialisation. Given this code… #include <string>

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I’ve come across a strange problem with method specialisation.

Given this code…

#include <string>

class X
{
public:

    template< typename T >
    void set( T v );
};

template<>
void X::set( const std::string & v )
{
}

template<>
void X::set( int v )
{
}

int main( int, char *[] )
{
    X x;

    std::string y;

    x.set( y );

    x.set( 1 );
}

When I link it with g++ 4.3.3 I get an undefined reference to
void X::set<std::basic_string<char, std::char_traits<char>, std::allocator<char> > >(std::basic_string<char, std::char_traits<char>, std::allocator<char> >).

Which is basically an undefined reference to void X::set( std::string ).

So my question is, why doesn’t the compiler use the specialisation with const std::string & ?

If I explicitly call x.set< const std::string & >( y ) then this compiles and links fine.

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1 Answer

  1. Editorial Team

    Probably this article
    will explain the situation.

    You might expect the specialization
    void X::set( const std::string& ) will participate in overload
    resolution.
    However, surprisingly,
    specializations don’t participate in overload resolution.

    In the call x.set( y ), the compiler deduces the type of T in the primary
    template from the argument y with a type std::string.
    So, the compiler deduces that T is std::string, then searches matching
    specialization.

    However, since std::string and const std::string& are different types,
    the compiler selects primary template in the end.

    After proper primary template is selected, the matching specialization is
    selected in the same manner as the case for class template.
    The reason that the specialization set( const std::string& ) isn’t selected
    is similar to that the specialization A< std::string > isn’t selected
    in the following code:

    template< class > class A; // primary

template<> class A< const std::string& > {}; // specialization

int main() {
  A< std::string > a; // This doesn't select the specialization
}
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