3

This question already has an answer here:

Is it possible to figure out the return type and parameter type of a function and use them as template types? Consider the following example:

template <typename ret, typename in>
class Bar {
  // Some code
}

int foo(float x) {
  return 0;
}

int main() {
  Bar<int, float> b; // Can this be done automatically by inspection of foo at compile time?
}

Can I use the function signature of foo to set the template types of Bar?

marked as duplicate by TobiMcNamobi, jww, CinCout, YSC c++ Sep 27 '18 at 10:06

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    Bar<int, float> b doesn't mention foo in any way. What's the supposed connection? In your ideal world, what would the declaration look like? – Igor Tandetnik Sep 25 '18 at 14:37
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    Im not sure if I understood correctly, but I believe you are trying to do the exact opposite as what templates are used for? In that case, what are you trying to accomplish? – Nadir Sep 25 '18 at 14:40
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    I believe you can use something like this decltype(foo(1.0)) to get the return type of a function. And then you can use it like this: Bar<decltype(foo(1.0)), float> b; – NutCracker Sep 25 '18 at 14:41
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    You can write a type trait and specialize for R(*)(T) where R and T are template arguments. – François Andrieux Sep 25 '18 at 14:42
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    Are you trying to use arbitrary function's return type as first template argument and function's argument type as second template argument? – Yksisarvinen Sep 25 '18 at 14:43
5

Yessir.

template <class Function>
struct BarFor_;

template <class Ret, class In>
struct BarFor_<Ret(*)(In)> {
    using type = Bar<Ret, In>;
};

template <auto function>
using BarFor = typename BarFor_<decltype(function)>::type;

Now you can get your type via:

 BarFor<foo> b;

See it live on Coliru

1

As far as I know, you can get the return type of function but you cannot get the type of a function argument (at least in a way you are doing it right now).

This is how you can deduce the return type of a function:

Bar<decltype(foo(1.0)), float> b;

However, you need to pass an argument to the foo function which I think is not what you want.

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