2

This is not something that has any actual applications, but it surprised me today and I would like to understand why it works.

So this is actually valid code:

var test: ((Bool) -> ())?

test = .init({a in print(a)})

This however is not

test = ((Bool) -> ()).init({a in print(a)})

Reason being "Type '(Bool) -> ()' has no member 'init'"

Why does example one work? What does the init call actually belong to?

3

test is a optional closure, and

test = .init({a in print(a)})

calls the init method of Optional, not of the closure type. It is an “implicit member expression” because the type is inferred from the left-hand side. This also becomes apparent if you Option-click on the .init call in the Xcode source editor:

enter image description here

It is equivalent to both of

test = Optional.init({a in print(a)})
test = Optional({a in print(a)})

or just

test = {a in print(a)}

because the compiler automatically wraps an expression of type T into an Optional<T> if necessary.

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  • That totally makes sense, it is sometimes easy to forget that optional is an actual type, with all the syntactic sugar... thanks – fleshgolem Jul 4 '19 at 7:31

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