13

I'd like to know how can I convert a String in an Int array in Swift. In Java I've always done it like this:

String myString = "123456789";
int[] myArray = new int[myString.lenght()];
for(int i=0;i<myArray.lenght;i++){
   myArray[i] = Integer.parseInt(myString.charAt(i));
}  

Thanks everyone for helping!

1
  • I'm removing the java tag, since this question isn't actually about Java.
    – yshavit
    Feb 19 '15 at 16:27
18
let str = "123456789"
let intArray = map(str) { String($0).toInt() ?? 0 }
  • map() iterates Characters in str
  • String($0) converts Character to String
  • .toInt() converts String to Int. If failed(??), use 0.

If you prefer for loop, try:

let str = "123456789"
var intArray: [Int] = []

for chr in str {
    intArray.append(String(chr).toInt() ?? 0)
}

OR, if you want to iterate indices of the String:

let str = "123456789"
var intArray: [Int] = []

for i in indices(str) {
    intArray.append(String(str[i]).toInt() ?? 0)
}
1
  • 2
    toInt() is no longer available in String in Swift 2.x. Feb 7 '16 at 19:35
16

You can use flatMap to convert the characters into a string and coerce the character strings into an integer:

Swift 2 or 3

let string = "123456789"
let digits = string.characters.flatMap{Int(String($0))}
print(digits)   // [1, 2, 3, 4, 5, 6, 7, 8, 9]"

Swift 4

let string = "123456789"
let digits = string.flatMap{Int(String($0))}
print(digits)   // [1, 2, 3, 4, 5, 6, 7, 8, 9]"

Swift 4.1

let digits = string.compactMap{Int(String($0))}

Swift 5 or later

We can use the new Character Property wholeNumberValue https://developer.apple.com/documentation/swift/character/3127025-wholenumbervalue

let digits = string.compactMap{$0.wholeNumberValue}
1
  • Swift 4.1 deprecates .flatMap for this use case. Use .compactMap instead: let digits = string.compactMap{Int(String($0))}
    – leanne
    May 27 '18 at 16:53
1

@rintaro's answer is correct, but I just wanted to add that you can use reduce to weed out any characters that can't be converted to an Int, and even display a warning message if that happens:

let str = "123456789"
let intArray = reduce(str, [Int]()) { (var array: [Int], char: Character) -> [Int] in
    if let i = String(char).toInt() {
        array.append(i)
    } else {
        println("Warning: could not convert character \(char) to an integer")
    }
    return array
}

The advantages are:

  • if intArray contains zeros you will know that there was a 0 in str, and not some other character that turned into a zero
  • you will get told if there is a non-Int character that is possibly screwing things up.
1

Swift 3

Int array to String

let arjun = [1,32,45,5]
    print(self.get_numbers(array: arjun))

 func get_numbers(array:[Int]) -> String {
        let stringArray = array.flatMap { String(describing: $0) }
        return stringArray.joined(separator: ",")

String to Int Array

let arjun = "1,32,45,5"
    print(self.get_numbers(stringtext: arjun))

    func get_numbers(stringtext:String) -> [Int] {
    let StringRecordedArr = stringtext.components(separatedBy: ",")
    return StringRecordedArr.map { Int($0)!}   
}
0
var myString = "123456789"
var myArray:[Int] = []

for index in 0..<countElements(myString) {
    var myChar = myString[advance(myString.startIndex, index)]
    myArray.append(String(myChar).toInt()!)
}

println(myArray)   // [1, 2, 3, 4, 5, 6, 7, 8, 9]"

To get the iterator pointing to a char from the string you can use advance

The method to convert string to int in Swift is toInt()

1
  • 2
    You have a loop in your loop—calling advance over and over like that is a bad idea, since you're making the program step through the string from the beginning each time.
    – Nate Cook
    Feb 19 '15 at 17:00
0

Swift 3 update:

@appzYourLife : That's correct toInt() method is no longer available for String in Swift 3. As an alternative what you can do is :

intArray.append(Int(String(chr)) ?? 0)

Enclosing it within Int() converts it to Int.

0

Swift 3: Functional Approach

  1. Split the String into separate String instances using: components(separatedBy separator: String) -> [String]

Reference: Returns an array containing substrings from the String that have been divided by a given separator.

  1. Use the flatMap Array method to bypass the nil coalescing while converting to Int

Reference: Returns an array containing the non-nil results of calling the given transformation with each element of this sequence.

Implementation

let string = "123456789"
let intArray = string.components(separatedBy: "").flatMap { Int($0) }
3
  • Swift 4.1 deprecates .flatMap for this use case. Instead, use .compactMap: let intArray = string.components(separatedBy: "").compactMap { Int($0) }
    – leanne
    May 27 '18 at 16:56
  • @leanne this is wrong it would result in an array with a single element of the same value of the input [123456789]. The first method components(separatedBy: "") would result in a single string element ["123456789"]
    – Leo Dabus
    May 28 '18 at 18:20
  • I simply replaced the deprecated .flatMap with the new .compactMap, @LeoDabus. Both results are the same. As printed in Xcode's debug console: [123456789] and [123456789]. Note that I am not judging whether the result is appropriate for the original question, but simply remarking for anyone who comes here that .flatMap has been deprecated in favor of .compactMap in cases where one is attempting to achieve a result that removes nil values.
    – leanne
    May 29 '18 at 0:08
0
let array = "0123456789".compactMap{ Int(String($0)) }
print(array)
1
  • 2
    Please don't post only code as answer, but also provide an explanation what your code does and how it solves the problem of the question. Answers with an explanation are usually more helpful and of better quality, and are more likely to attract upvotes. Jul 26 '20 at 9:05

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