3

In Haskell, when using typeclass, it is easy to declare constraint of its' instances' type kind.

class Functor (f :: * -> *) where
  ...

* -> * represents HKT (Higher-Kinded Types), this means any type conforming to Functor must be a HKT.

How can I achieve this with Swift's protocol ?

2

Swift does not support HKT as a type form natively, but you can simulate the constraint with a trick of associatedtype:

public protocol Functor {
    /// (* -> *)
    associatedtype FunctorT: Functor = Self
    /// *
    associatedtype FunctorTT
    /// fmap
    func map<T>(_ transform: ((FunctorTT) -> T)) -> FunctorT where FunctorT.FunctorTT == T
}

And conformance example:

public enum Maybe<T> {
    case just(T)
    case nothing
}

extension Maybe: Functor {
    public typealias FunctorTT = T
    public func map<U>(_ transform: ((T) -> U)) -> Maybe<U> {
        switch self {
        case .nothing:
            return .nothing
        case .just(let v):
            return .just(transform(v))
        }
    }
}
  • Nice documentation of a nice trick. Two comments: 1) I'd love to see some further explanation of why this is useful, possible applications (maybe built into the code examples) 2) why the use of Maybe as a type when we already have Optional? – sjwarner Oct 20 '18 at 13:43
  • @sjwarner Functor is a concept from functional programming. It is an abstraction of a way to apply a function over or around some structure that we don’t want to alter. You may heard of Monad, it is a typeclass(protocol) based on Functor. – duan Oct 20 '18 at 14:18
  • Absolutely, that's a good definition. But I'm assuming that by posting a question and self-answer, you're seeking to educate existing Swift users. Perhaps you'd see value in editing your question or answer to better convey to any readers not just what a functor is, but also why it's useful; what real-world problems can it be applied to? :) – sjwarner Oct 21 '18 at 1:54
  • 1
    @sjwarner the question is not about functor, it's about HKT constraint in protocol. – duan Oct 21 '18 at 7:00

Your Answer

By clicking "Post Your Answer", you agree to our terms of service, privacy policy and cookie policy

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