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I've been trying to find out the return type of a lambda expression to know if the function returns a void, or not.

My first thought was using std::invoke_result, however that did not work as expected, since it doesnt work with std::is_same, which expects two types.

Here's what i've been trying

auto lamb = [] ( int x ) { cout << x << endl; };
is_same<(invoke_result<decltype(lamb),int>),void>;

The error is:

 trabapply2.cc:32:50: error: template argument 1 is invalid
 is_same<(invoke_result<decltype(lamb),int>),void>;

Any suggestions?

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  • 1
    Remove the parentheses around the expression. It's a syntax error. You also need to use invoke_result_t as invoke_result is just the type trait type. This will work: static_assert(std::is_same_v<(std::invoke_result_t<decltype(lamb),int>), void>); – Joseph Thomson Sep 27 '19 at 1:08
  • Thank you, that did the trick, I dont really know why the :: didnt work properly but you fixed the problem ;) – João Maia Sep 27 '19 at 1:23
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You should remove the superfluous parentheses around invoke_result, and get type from invoke_result, and get value from is_same. e.g.

is_same<invoke_result<decltype(lamb), int>::type, void>::value // gives true or false

or

is_same_v<invoke_result_t<decltype(lamb), int>, void> // since C++17

LIVE

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  • Thank you, the second solution worked when i was doing it from inside a function, while the first one did not, not sure why, thanks anyway ;) – João Maia Sep 27 '19 at 1:22
  • @JoãoMaia For dependent names, such as in templates, you might need adding typename like typename invoke_result<decltype(foo), int>::type. – songyuanyao Sep 27 '19 at 1:26

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