44

Is it possible to switch on a generic type in Swift?

Here's an example of what I mean:

func doSomething<T>(type: T.Type) {
    switch type {
    case String.Type:
        // Do something
        break;
    case Int.Type:
        // Do something
        break;
    default:
        // Do something
        break;
    }
}

When trying to use the code above, I get the following errors:

Binary operator '~=' cannot be applied to operands of type 'String.Type.Type' and 'T.Type'
Binary operator '~=' cannot be applied to operands of type 'Int.Type.Type' and 'T.Type'

Is there a way to switch on a type, or to achieve something similar? (calling a method with a generic and performing different actions depending on the type of the generic)

1 Answer 1

67

You need the is pattern:

func doSomething<T>(type: T.Type) {
    switch type {
    case is String.Type:
        print("It's a String")
    case is Int.Type:
        print("It's an Int")
    default:
        print("Wot?")
    }
}

Note that the break statements are usually not needed, there is no "default fallthrough" in Swift cases.

8
  • 3
    I get a strange warning when using switch type, however switch T.self works perfectly. Thanks! Commented Oct 18, 2015 at 22:02
  • 2
    @jackwilsdon: Strange, I tested it in Xcode 7.0.1 and got no warnings.
    – Martin R
    Commented Oct 18, 2015 at 22:03
  • I am using a playground, however after reloading the playground the warning was gone. Thanks! Commented Oct 18, 2015 at 22:06
  • 1
    @jackwilsdon: My personal experience is that the Playground is great to play with working code. If anything "unexpected" happens, switch to a compiled project, the compiler diagnostics and debugging facilities are better.
    – Martin R
    Commented Oct 18, 2015 at 22:14
  • 1
    So how do you fix this when you try to assign a tintColor (i.e. for UIButton) ? This makes T an ImplicitlyUnwrappedOptional<UIColor>, how to check against those? Commented Dec 4, 2017 at 11:13

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