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This question already has an answer here:

I get compiler error at this line:

UIDevice.currentDevice().identifierForVendor.UUIDString.substringToIndex(8)

Type 'String.Index' does not conform to protocol 'IntegerLiteralConvertible'

My intention is to get the substring, but how?

marked as duplicate by jtbandes, Martin R, Mick MacCallum Jul 23 '14 at 13:44

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • more elegant solution ( UIDevice.currentDevice().identifierForVendor.UUIDString as NSString).substringToIndex(8) - need convert type – János Aug 4 '14 at 6:34
181

In Swift, String indexing respects grapheme clusters, and an IndexType is not an Int. You have two choices - cast the string (your UUID) to an NSString, and use it as "before", or create an index to the nth character.

Both are illustrated below :

However, the method has changed radically between versions of Swift. Read down for later versions...

Swift 1

let s: String = "Stack Overflow"
let ss1: String = (s as NSString).substringToIndex(5) // "Stack"
//let ss2: String = s.substringToIndex(5)// 5 is not a String.Index
let index: String.Index = advance(s.startIndex, 5)
let ss2:String = s.substringToIndex(index) // "Stack"

CMD-Click on substringToIndex confusingly takes you to the NSString definition, however CMD-Click on String and you will find the following:

extension String : Collection {
    struct Index : BidirectionalIndex, Reflectable {
        func successor() -> String.Index
        func predecessor() -> String.Index
        func getMirror() -> Mirror
    }
    var startIndex: String.Index { get }
    var endIndex: String.Index { get }
    subscript (i: String.Index) -> Character { get }
    func generate() -> IndexingGenerator<String>
}

Swift 2
As commentator @DanielGalasko points out advance has now changed...

let s: String = "Stack Overflow"
let ss1: String = (s as NSString).substringToIndex(5) // "Stack"
//let ss2: String = s.substringToIndex(5)// 5 is not a String.Index
let index: String.Index = s.startIndex.advancedBy(5) // Swift 2
let ss2:String = s.substringToIndex(index) // "Stack"

Swift 3
In Swift 3, it's changed again:

let s: String = "Stack Overflow"
let ss1: String = (s as NSString).substring(to: 5) // "Stack"
let index: String.Index = s.index(s.startIndex, offsetBy: 5)
var ss2: String = s.substring(to: index) // "Stack"

Swift 4
In Swift 4, yet another change:

let s: String = "Stack Overflow"
let ss1: String = (s as NSString).substring(to: 5) // "Stack"
let index: String.Index = s.index(s.startIndex, offsetBy: 5)
var ss3: Substring = s[..<index] // "Stack"
var ss4: String = String(s[..<index]) // "Stack"
  • 1
    can you, please, extent you answer with adding the types explicitly to the vars? thank you! – holex Jul 23 '14 at 9:04
  • 4
    In Swift 2 advance is no longer a global function but now a function on Index. s.startIndex.advanceBy(5) – Daniel Galasko Nov 9 '15 at 13:04
  • 1
    Doesn't work for Swift 2.1. I got the msg: "value of type 'index'...has no member 'advancedBy'". – Frederick C. Lee Nov 11 '15 at 21:32
  • 2
    @FrederickC.Lee new syntax is s.startIndex.advancedBy(1) – carbonr Feb 8 '16 at 20:22
  • 7
    Using NSString isn't really a Swift answer. – Suragch Sep 24 '16 at 6:32

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