44

I have a generic class that I want to be able to use with a default type. Right now I can initialize it with any type, but I have to be explicit.

//Initialize with a type
MyManager<MyCustomerObject>()

// Initialize with NSObject (what I want to be my default type)
MyManager<NSObject>()

// This doesn't work, but I want this kind of functionality
class MyManager<T = NSObject> {}

// So I can create my manager like so and it inserts the default type as NSObject
MyManager() //Or MyManager<>()

Is this possible in Swift?

3 Answers 3

57

There's no support for default generic arguments, but you can fake it by defining the default init() on a type-constrained extension, in which case the compiler will be smart enough to use that type. E.g.:

class MyManager<T> {
    let instance: T

    init(instance: T) {
        self.instance = instance
    }
}

extension MyManager where T == NSObject {
    convenience init() {
        self.init(instance: NSObject())
    }
}

And now you can initialize the type with no argument and it will default to MyManager<NSObject>:

let mm1 = MyManager(instance: "Foo") // MyManager<String>
let mm2 = MyManager(instance: 1) // MyManager<Int>
let mm3 = MyManager() // MyManager<NSObject>

SwiftUI uses this technique quite a lot.

2
  • 3
    I have been racking my brain trying to figure out how SwiftUI did this, thanks so much. I really hope in the future Swift implements some sort of init() where T==NSObject syntax.
    – mginn
    Jun 28, 2020 at 20:25
  • Thanks for the answer! It's hard to wrap my head around why it works. But I guess the compiler has a fallback to look at the first type constrained extension before complaining that it can't figure it out. Wish there was a simpler way to provide a default generic type especially when you are working with optionals and might not have a type.
    – Mark
    Sep 6, 2022 at 10:17
37

No, this currently isn't possible – although it is a part of the Generics Manifesto, so might be something that the Swift team will consider for a future version of the language.

Default generic arguments

Generic parameters could be given the ability to provide default arguments, which would be used in cases where the type argument is not specified and type inference could not determine the type argument. For example:

public final class Promise<Value, Reason=Error> { ... }

func getRandomPromise() -> Promise<Int, Error> { ... }

var p1: Promise<Int> = ... 
var p2: Promise<Int, Error> = p1     // okay: p1 and p2 have the same type Promise<Int, Error>
var p3: Promise = getRandomPromise() // p3 has type Promise<Int, Error> due to type inference

In the meantime however, a somewhat unsatisfactory compromise would be the use of a typealias:

class MyManager<T> {}

typealias MyManagerDefault = MyManager<NSObject>

let defaultManager = MyManagerDefault()

Not nearly as slick as just being able to say MyManager(), but it does show up next to MyManager in auto-complete, which is pretty handy.

2

If T is always a NSObject subclass, you can use a generic constraint in Swift 5.3:

class MyManager<T: NSObject> {
    let t = T()
}

class MyCustomerObject: NSObject { }

let a = MyManager()
let b = MyManager<MyCustomerObject>()

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.