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Consider the following code :

template <class Crtp>
struct Base
{
    const float& get(const short int i) const {return std::get<0>(tuple);}
    const double& get(const int i) const {return std::get<1>(tuple);}
    const long double& get(const unsigned long long int i) const {return std::get<2>(tuple);}
    std::tuple<float, double, long double> tuple;
};

struct Derived
: public Base<Derived>
{
    template <class... Misc, class Return = /*SOMETHING*/>
    const Return& test(Misc&&... misc) const
    {return this->get(std::forward<Misc>(misc)...);} 
};

This is an EXAMPLE code: it does not illustrate something useful, and the problem could be solved using an auto function declaration for instance. I know that and I do not search a workaround concerning this particular example.

My question is : what would be /*SOMETHING*/ in order to get the return type of the correct overload of get depending of the passed Misc types ?

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3  
The same you'd do with a deduced return? This should work just fine: class Return = decltype(this->get(std::declval<Misc>()...)). –  Xeo Jul 2 '13 at 6:59
    
@Xeo: If I say that, can I replace the const Return& by Return? –  Vincent Jul 2 '13 at 7:03
    
If you want to "perfect-return", i.e. return exactly what the base function gives you, then yes. –  Xeo Jul 2 '13 at 7:04
    
@Xeo: invalid use of ‘this’ at top level, but I think that a declval of Derived should be ok. –  Vincent Jul 2 '13 at 7:15
    
@Xeo Probably std::declval<const Derived>().get(...) works. –  KennyTM Jul 2 '13 at 7:23
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1 Answer

up vote 2 down vote accepted

Just using decltype with std::declval (from <type_traits>) should be fine:

class Return = decltype(std::declval<Derived const>().get(std::declval<Misc>()...))
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