I am having problems using strings in switch statements in Swift.

I have a dictionary called opts which is declared as <String, AnyObject>

I have this code:

switch opts["type"] {
case "abc":
    println("Type is abc")
case "def":
    println("Type is def")
default:
    println("Type is something else")
}

and on the lines case "abc" and case "def" I get the following error:

Type 'String' does not conform to protocol 'IntervalType'

Can someone explain to me what I am doing wrong?

up vote 55 down vote accepted

This error is shown when an optional is used in a switch statement. Simply unwrap the variable and everything should work.

switch opts["type"]! {
  case "abc":
    println("Type is abc")
  case "def":
    println("Type is def")
  default:
    println("Type is something else")
}

Edit: In case you don't want to do a forced unwrapping of the optional, you can use guard. Reference: Control Flow: Early Exit

  • 3
    Behold the only correct answer. – John Factorial Feb 15 '15 at 6:33
  • 2
    Added the answer with alternative and safer solution below. – mikejd May 2 '15 at 21:09
  • 4
    don't use this! The value is marked optional in it's own reason, a nil value will crash your app. @mikejd offered a much better answer – Lcsky Oct 24 '15 at 13:44
  • 1
    This dangerous because if the optional is nil then the program will crash! – Adahus Sep 9 '16 at 13:15
  • 1
    You should never use ! directly like here, so potential crash. It is forbidden if you use SwiftLint for example. I prefer mikejd solution. – Dam Nov 14 '16 at 15:41

According to Swift Language Reference:

The type Optional is an enumeration with two cases, None and Some(T), which are used to represent values that may or may not be present.

So under the hood an optional type looks like this:

enum Optional<T> {
  case None
  case Some(T)
}

This means that you can go without forced unwrapping:

switch opts["type"] {
case .Some("A"):
  println("Type is A")
case .Some("B"):
  println("Type is B")
case .None:
  println("Type not found")
default:
  println("Type is something else")
}

This may be safer, because the app won't crash if type were not found in opts dictionary.

  • this is probably the best answer, but I dont do app development anymore, so I have no way of testing this. – Jimmery Aug 3 '15 at 13:06
  • the best answer indeed! – Lcsky Oct 24 '15 at 13:40
  • 1
    You have been hit by the friendly Swift 3 renaming goblin: .Some has been renamed to .some (which luckily the Swift 3 compiler ant has been happy to tell you :-). Still the best answer, thanks (even more if you return for a Swift 3 version). – Patru Jun 2 '17 at 13:59

Try using:

let str:String = opts["type"] as String
switch str {
case "abc":
    println("Type is abc")
case "def":
    println("Type is def")
default:
    println("Type is something else")
}
  • just tried both of these, and both still give me the error Type 'String' does not conform to protocol 'IntervalType' – Jimmery Nov 11 '14 at 12:48
  • What kind of dictionary is opts? – Kirsteins Nov 11 '14 at 12:52
  • I tried both versions and with this var opts = ["type": "Type is abc"] it works in a playground – Antonio Nov 11 '14 at 12:55
  • opts is <String, AnyObject> – Jimmery Nov 11 '14 at 13:37
  • case let string as String where string == "abc": gives the error Type 'String' does not conform to protocol 'AnyObject' – Jimmery Nov 11 '14 at 13:39

I had this same error message inside prepareForSegue(), which I imagine is fairly common. The error message is somewhat opaque but the answers here got me on the right track. If anyone encounters this, you don't need any typecasting, just a conditional unwrap around the switch statement:-

if let segueID = segue.identifier {
    switch segueID {
        case "MySegueIdentifier":
            // prepare for this segue
        default:
            break
    }
}
  • A guard statement also works well inside prepareForSegue(): guard let segueID = segue.identifier else { return } – Mike Fay Dec 2 '15 at 19:24

Instead of the unsafe force unwrap.. I find it easier to test for the optional case:

switch opts["type"] {
  case "abc"?:
    println("Type is abc")
  case "def"?:
    println("Type is def")
  default:
    println("Type is something else")
}

(See added ? to the case)

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