4

I have the following code:

template<class Callable, class ...Args>
void f(Callable t, Args &&... args)
{
    auto lambda = [t, args...](){ t(args...); };
}

int main()
{
    int x = 8;
    using callable_t = decltype(std::greater{});
    f(std::greater{}, x, 10);
}

If I understand correctly (correct me if I'm wrong), the compiler generates the following function:

void f(callable_t t, int& x, int&& y);

All I want to achieve is to make sure that in the lambda capture list, x is captured by reference and y is captured by value. How can I achieve this?

5
  • Your example did not work. Simply print out the result in case you modify x inside main. If it is used by ref the result should change but it did not... try again :-)
    – Klaus
    Commented Mar 25, 2022 at 21:00
  • 1
    I know C++20 lets you ...args = std::forward<Args>(args), but I'm not sure whether that captures an rvalue by value or if it would have be an rvalue reference. You can pass the pack to a function taking (int&, int&&) using std::forward<Args>(args)..., but not with the usual decltype(args)(args)... alternative. Rather, that matches (int&&, int&&), which someone will know more about than me.
    – chris
    Commented Mar 25, 2022 at 21:20
  • 1
    Actually, looking on cppinsights, it has both captures as plain int in that case.
    – chris
    Commented Mar 25, 2022 at 21:31
  • 2
    It seems impossible to select the capture type by template metaprogramming, but you can always capture a custom wrapper by value and make it either a reference wrapper or a value wrapper, depending on what is being wrapped. Commented Mar 25, 2022 at 21:59
  • 1
    You can do [t, tup = std::tuple<Args...>{args...}]{ apply(t, tup); }
    – Passer By
    Commented Mar 26, 2022 at 7:10

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