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Editorial Team
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Asked: 2026-05-13T13:16:22+00:00

I just found out how to check if operator<< is provided for a type.

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I just found out how to check if operator<< is provided for a type.

template<class T> T& lvalue_of_type();
template<class T> T  rvalue_of_type();

template<class T>
struct is_printable
{
    template<class U> static char test(char(*)[sizeof(
        lvalue_of_type<std::ostream>() << rvalue_of_type<U>()
    )]);
    template<class U> static long test(...);

    enum { value = 1 == sizeof test<T>(0) };
    typedef boost::integral_constant<bool, value> type;
};

Is this trick well-known, or have I just won the metaprogramming Nobel prize? 😉

EDIT: I made the code simpler to understand and easier to adapt with two global function template declarations lvalue_of_type and rvalue_of_type.

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1 Answer

  1. Editorial Team

    It’s a well known technique, I’m afraid 🙂

    The use of a function call in the sizeof operator instructs the compiler to perform argument deduction and function matching, at compile-time, of course. Also, with a template function, the compiler also instantiates a concrete function from a template. However, this expression does does not cause a function call to be generated. It’s well described in SFINAE Sono Buoni PDF.

    Check other C++ SFINAE examples.

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