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Consider the code:

#include <type_traits>

struct CByteArray {};
struct HLVariant {
    HLVariant() {}
    HLVariant(const HLVariant&) {}
    HLVariant(const CByteArray&) {}

    };

template <typename T>
inline CByteArray serialize(const typename std::enable_if<true, T>::type& value)
{
    return serialize(HLVariant(value));
}

template <typename T>
inline CByteArray serialize(const typename std::enable_if<false, T>::type& value)
{
    return CByteArray();
}

template <>
inline CByteArray serialize(const HLVariant& value)
{
    return CByteArray();
}

int main()
{
    serialize(0);
    serialize(CByteArray());
    serialize(HLVariant());

    return 0;
}

Microsoft Visual Studio 2013 gives the following error:

C2912: explicit specialization 'CByteArray serialize(const HLVariant &)' is not a specialization of a function template

error C2783: 'CByteArray serialize(const std::enable_if::type &)' : could not deduce template argument for 'T'

The error suggests that there's no template <typename T> CByteArray serialize(const T&); function visible to the compiler, and I don't understand why. Note that I'm simply using true and false for enable_if condition for testing purposes here.

I've also tried this way instead (enable_if on return type instead of argument):

    template <typename T>
inline typename std::enable_if<true, CByteArray>::type serialize(const T& value)
{
    return serialize(HLVariant(value));
}

template <typename T>
inline typename std::enable_if<false, CByteArray>::type serialize(const T& value)
{
    return CByteArray();
}

Now the error is:

C2039: 'type' : is not a member of 'std::enable_if<false,CByteArray>'
  • I think if you do it with structure spécialization it will work... (working on it) – CollioTV Nov 3 '14 at 13:47
  • For SFINAE, the condition should depend of a template parameter. – Jarod42 Nov 3 '14 at 13:48
  • 1
    template <> inline CByteArray serialize(const HLVariant& value) Since you don't explicitly specify the template arguments, the compiler will have to deduce them (from the function parameter type). But that's no possible since for both serialize templates, T is in a non-deduced context. – dyp Nov 3 '14 at 13:50
  • 2
    std::enable_if<false, CByteArray>::type Since there is no type dependent on a template parameter, no substitution takes place here, therefore the error does not occur during substitution (=> hard error, no SFINAE). – dyp Nov 3 '14 at 13:51
2

typename std::enable_if<true, T>::type is not deductible in your context (which T should the compiler test, it may be an infinite type for the general case).

You may use instead:

template <typename T>
inline
typename std::enable_if</*your condition depending of T*/, CByteArray>::type
serialize(const T& value)
{
    // Your code
}
  • Nope, doesn't work. See my latest addition to the question. – Violet Giraffe Nov 3 '14 at 13:47
  • ideone.com/WTaWpD – Violet Giraffe Nov 3 '14 at 13:48
  • true/false doesn't depend of T, so you have an hard error, and not a substitution failure. – Jarod42 Nov 3 '14 at 13:49
  • I see! Almost there, but not quite yet. Now it compiles with ideone, but MSVC still gives an error 'type' : is not a member of any direct or indirect base class of 'std::enable_if<false,CByteArray>'. See here for code: ideone.com/WTaWpD – Violet Giraffe Nov 3 '14 at 13:57

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