73

In this code I've written a really useless enum that defines a possible Number with Int or Float.

I can't understand how can I access the value that I set with the association. If I try to print it I get just (Enum Value)

enum Number {
    case int (Int)
    case float (Float)
}

let integer = Number.int(10)
let float = Number.float(10.5)
println("integer is \(integer)")
println("float is \(float)")
4
  • 7
    @MikePollard It's not. They access the value only through switch. – MatterGoal Jun 17 '14 at 12:24
  • 1
    I'm assuming that's the only way to do it ... – Mike Pollard Jun 17 '14 at 12:35
  • @MikePollard it's a bit strange :P but probably it has sense for the nature of enumeration (and for its usage). – MatterGoal Jun 17 '14 at 12:39
  • Perhaps you want to write a function eg. fund getInt() -> Int? { switch self{ case .int(let n) : return n default: return nil ... – Mike Pollard Jun 17 '14 at 12:46
94

The value is associated to an instance of the enumeration. Therefore, to access it without a switch, you need to make a getter and make it available explicitly. Something like below:

enum Number {
    case int(Int)
    case float(Float)

    func get() -> NSNumber {
        switch self {
        case .int(let num):
            return num
        case .float(let num):
            return num
        }
    }
}

var vInteger = Number.int(10)
var vFloat = Number.float(10.5)

println(vInteger.get())
println(vFloat.get())

Maybe in the future something like that may be automatically created or a shorter convenience could be added to the language.

109

For sake of completeness, enum's association value could be accesed also using if statement with pattern matching. Here is solution for original code:

enum Number {
  case int (Int)
  case float (Float)
}

let integer = Number.int(10)
let float = Number.float(10.5)

if case let .int(i) = integer {
  print("integer is \(i)")
}
if case let .float(f) = float {
  print("float is \(f)")
}

This solution is described in detail in: https://appventure.me/2015/10/17/advanced-practical-enum-examples/

1
  • Alternate syntax: if case .int(let i) = integer { ... } – P. Stern Feb 23 at 5:00
15

It surprises me that Swift 2 (as of beta 2) does not address this. Here's an example of a workaround approach for now:

enum TestAssociatedValue {
  case One(Int)
  case Two(String)
  case Three(AnyObject)

  func associatedValue() -> Any {
    switch self {
    case .One(let value):
      return value
    case .Two(let value):
      return value
    case .Three(let value):
      return value
    }
  }
}

let one = TestAssociatedValue.One(1)
let oneValue = one.associatedValue() // 1
let two = TestAssociatedValue.Two("two")
let twoValue = two.associatedValue() // two

class ThreeClass {
  let someValue = "Hello world!"
}

let three = TestMixed.Three(ThreeClass())
let threeValue = three. associatedValue() as! ThreeClass
print(threeValue.someValue)

If your enum mixes cases with and without associated values, you'll need to make the return type an optional. You could also return literals for some cases (that do not have associated values), mimicking raw-value typed enums. And you could even return the enum value itself for non-associated, non-raw-type cases. For example:

enum TestMixed {
  case One(Int)
  case Two(String)
  case Three(AnyObject)
  case Four
  case Five

  func value() -> Any? {
    switch self {
    case .One(let value):
      return value
    case .Two(let value):
      return value
    case .Three(let value):
      return value
    case .Four:
      return 4
    case .Five:
      return TestMixed.Five
    }
  }
}

let one = TestMixed.One(1)
let oneValue = one.value() // 1
let two = TestMixed.Two("two")
let twoValue = two.value() // two

class ThreeClass {
  let someValue = "Hello world!"
}

let three = TestMixed.Three(ThreeClass())
let threeValue = three.value() as! ThreeClass
print(threeValue.someValue)

let four = TestMixed.Four
let fourValue = four.value() // 4

let five = TestMixed.Five
let fiveValue = five.value() as! TestMixed

switch fiveValue {
case TestMixed.Five:
  print("It is")
default:
  print("It's not")
}
// Prints "It is"
6

like @iQ. answer, you can use property in enum also

enum Number {
    case int (Int)
    var value: Int {
        switch self {
            case .int(let value):
                return value
        }
    }
}

let integer = Number.int(10)
println("integer is \(integer.value)")
4

I have used something like this:

switch number {
case .int(let n):
    println("integer is \(n)")
case .float(let n):
    println("float is \(n)")
}
6
  • 11
    I'd like to access the value directly and not through a switch. – MatterGoal Jun 17 '14 at 12:24
  • @MatterGoal - How can you access it without knowing what it is? As far as I know, the switch is the only way. – manojlds Jun 17 '14 at 12:39
  • 1
    @MatterGoal - as manojids has pointed out, any attempt to access the associated values must be associated with a check for the enum case, so the switch really isn't adding any code, maybe moving it around a bit is all. – David Berry Jun 17 '14 at 15:59
  • @MatterGoal "How can you access it without knowing what it is? As far as I know, the switch is the only way. " - How about the if statement? It woudl be great to be able to test against one particular case and on match, extract the associated value. – Nicolas Miari Mar 2 '16 at 4:14
  • @NicolasMiari - I have added solution with if statement extraction: stackoverflow.com/a/37159851/466677 – Marek Gregor May 11 '16 at 10:28
3

If you're using guard, you can write like below:

enum Action {
    case .moveTab(index: Int)
}

guard let case .moveTab(index) = someAction else { return }
0

Swift 4,

I have created a simple enum with associated values for handling firebase database reference paths

import Firebase

    enum FirebaseDBConstants  {

        case UserLocation(database : DatabaseReference, userID :String)
        case UserRequest(database : DatabaseReference, requestID :String)

        func getDBPath() -> DatabaseReference {
            switch self {
            case  .UserLocation(let database,let userID):
                return database.root.child(FirebaseDBEnvironmentEnum.getCurrentEnvioronMent()).child("Location").child(userID).child("JSON")

            case .UserRequest(let database,let requestID):
                return database.root.child(FirebaseDBEnvironmentEnum.getCurrentEnvioronMent()).child("Request").child(requestID)

            default:
                break
            }
        }
    }

Use it like as shown

//Pass Database refenence root as parameter with your request id
let dbPath = FirebaseDBConstants.UserRequest(database: database, requestID: requestId).getDBPath()

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.