5

I have the following swift code:

protocol Animal {
var name: String { get }
}

struct Bird: Animal {
    var name: String
    var canEat: [Animal]
}

struct Mammal: Animal {
    var name: String
}

extension Array where Element: Animal {
    func mammalsEatenByBirds() -> [Mammal] {
        var eatenMammals: [Mammal] = []
        self.forEach { animal in
            if let bird = animal as? Bird {
                bird.canEat.forEach { eatenAnimal in
                    if let eatenMammal = eatenAnimal as? Mammal {
                        eatenMammals.append(eatenMammal)
                    } else if let eatenBird = eatenAnimal as? Bird {
                        let innerMammals = eatenBird.canEat.mammalsEatenByBirds()
                        eatenMammals.append(contentsOf: innerMammals)
                    }
                }
            }
        }
        return eatenMammals
    }
}

The compiler does not let me compile complaining: Using 'Animal' as a concrete type conforming to protocol 'Animal' is not supported at the point where I recursively call the function mammalsEatenByBirds()

I have seen some other answers but could not relate my problem to any of those.

  • Please read the results of stackoverflow.com/… – vadian May 7 '17 at 18:56
  • 1
    Compare Protocol doesn't conform to itself? – simple fix would just be to make the extension extension Array where Element == Animal {...}. Although that being said, given you're only working with the Bird elements, you may want to consider making it extension Sequence where Iterator.Element == Bird, and just doing a (lazy) flatMap before calling in order to filter only the Bird elements. – Hamish May 7 '17 at 20:01
  • Thanks it worked – Muhammad Ali Jun 2 '17 at 13:09
8

Fix is replacing Element: Animal with Element == Animal.

|improve this answer|||||
  • If you do it, you must cast explicitly Bird array to Animal. Like this: let mammals = (birds as Animal).mammalsEatenByBirds(). Thats dumb (not of you, but of Swift). – kelin Sep 27 '18 at 7:05

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.