2

Let's say we have a class template Foo, that has one type template parameter that it can deduce from an argument in its constructor. If we use std::make_unique to construct an instance of Foo, is there a way for Foo's constructor to deduce the template arguments as it would have if its constructor was called normally? Is this the simplest way to achieve this?

std::make_unique< decltype(Foo{...}) > (...);

This seems pretty clean but if Foo's constructor takes a lot of arguments it can turn into a pretty ugly line.

1 Answer 1

4

You can leverage a helper function to wrap the ugly code into a pretty wrapper. That would look like

template <typename... Args>
auto make_foo_ptr(Args&&... args)
{
    return std::make_unique<decltype(Foo{std::forward<Args>(args)...})>(std::forward<Args>(args)...);
}
2
  • Doesn't this enforce the template classes instantiated from Foo to be copy/move constructible because eventually it would have to be something like auto x = make_foo_ptr();?
    – Zoso
    Dec 10, 2021 at 22:18
  • 1
    @Zoso It does not, because the function is return a unique_ptr<Foo>, not a Foo and unique_ptr<T> is always moveable. Also, from C++17 onward, even if it was returning a Foo and Foo is not moveable or copyable, it would still work thanks to C++17's guaranteed copy elision. Dec 10, 2021 at 22:20

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.