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Asked: 2026-06-17T05:00:03+00:00

Consider the following function in C++11: template<class Function, class… Args, typename ReturnType = /*SOMETHING*/>

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Consider the following function in C++11:

template<class Function, class... Args, typename ReturnType = /*SOMETHING*/> 
inline ReturnType apply(Function&& f, const Args&... args);

I want ReturnType to be equal to the result type of f(args...)
What do I have to write instead of /*SOMETHING*/ ?

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1 Answer

  1. Editorial Team

    I think you should rewrite your function template using trailing-return-type as:

    template<class Function, class... Args> 
inline auto apply(Function&& f, const Args&... args) -> decltype(f(args...))
{
    typedef decltype(f(args...)) ReturnType;

    //your code; you can use the above typedef.
}

    Note that if you pass args as Args&&... instead of const Args&..., then it is better to use std::forward in f as:

    decltype(f(std::forward<Args>(args)...))

    When you use const Args&..., then std::forward doesn’t make much sense (at least to me).

    It is better to pass args as Args&&... called universal-reference and use std::forward with it.

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