14

This is driving me nuts.

In Swift 2.2, it makes it impossible to subscript String with Int. For example:

let myString = "Test string"
let index = 0
let firstCharacter = myString[index]

This will result with a compile error, saying

'subscript' is unavailable: cannot subscript String with an Int, see the documentation comment for discussion

One workaround I see is to convert integer to the index type, but I can't figure out how..

3

5 Answers 5

22

It annoyed the heck out of me too so I wrote an extension to deal with it:

extension String {
    subscript (index: Int) -> Character {
        let charIndex = self.startIndex.advancedBy(index)
        return self[charIndex]
    }

    subscript (range: Range<Int>) -> String {
        let startIndex = self.startIndex.advancedBy(range.startIndex)
        let endIndex = startIndex.advancedBy(range.count)

        return self[startIndex..<endIndex]
    }
}

// Usage
let str = "Hello world"

print(str[0])       // H
print(str[0..<5])   // Hello

Updated for Swift 4.x:

extension String {
    subscript (index: Int) -> Character {
        let charIndex = self.index(self.startIndex, offsetBy: index)
        return self[charIndex]
    }

    subscript (range: Range<Int>) -> Substring {
        let startIndex = self.index(self.startIndex, offsetBy: range.startIndex)
        let stopIndex = self.index(self.startIndex, offsetBy: range.startIndex + range.count)
        return self[startIndex..<stopIndex]
    }

}

let s = "👨‍👩‍👧‍👦 family"

print(s[0])      // 👨‍👩‍👧‍👦
print(s[2..<8])  // family
1
  • 1
    how would the solution look like without extension?
    – YuZ
    Nov 7, 2021 at 13:19
18

It's not that subscripting is impossible necessarily, it just takes one extra step to get the same results as before. Below, I've done the same thing as you, but in Swift 2.2

let myString = "Test string"
let intForIndex = 0
let index = myString.startIndex.advancedBy(intForIndex)
let firstCharacter = myString[index]

Swift 3.x + 4.x

let myString = "Test string"
let intForIndex = 0
let index = myString.index(myString.startIndex, offsetBy: intForIndex)
let firstCharacter = myString[index]

EDIT 1:

Updated code so you can use the Int that was passed into the "index" value elsewhere.


Syntax Edits:

I'll consistently update this answer to support the newest version of Swift.

10
  • This does the trick, but what about converting the other way?
    – nekonari
    May 18, 2016 at 17:20
  • Taking an .Index type and turn it into Int.
    – nekonari
    May 18, 2016 at 17:21
  • Are you looking to directly convert Index to Int, or are your looking to use the Int to find a character in a String?
    – ZGski
    May 18, 2016 at 18:39
  • No for other use. I needed an int so I can manipulate another array at the corresponding index according to the Character. I ended mapping the CharacterView into array of Characters then work with it. Still not ideal since it wastes time on conversion :(
    – nekonari
    May 18, 2016 at 20:05
  • I've updated my answer so you can re-use the Int passed into "index".
    – ZGski
    May 18, 2016 at 20:18
4

An example for swift 4:

let myString = "Test string"
let index = 0
let firstCharacter = myString[String.Index(encodedOffset: index)]
0

An easy cheat is to convert the string to an array of characters, which you can index with an Int:

let a = Array("hello")
for i in a.indices {
   print(a[i])
}
-1

ZGski answer updated to Swift 3

let testText = "Test text 123"  
let position = 11  
let index = testText.characters.index(testText.startIndex, offsetBy: position)  
let character = testText[index] // "2"

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