I need to determine if a string contains any of the characters from a custom set that I have defined.

I see from this post that you can use rangeOfString to determine if a string contains another string. This, of course, also works for characters if you test each character one at a time.

I'm wondering what the best way to do this is.

  • Do you want to check if a string is empty or not? – Cesare Feb 12 '15 at 19:35
  • @CeceXX no, I have a custom set of characters I would like to check against. – mattnedrich Feb 12 '15 at 19:38
  • @mattnedrich: Why don't you add that information to the question itself? Both the question contents and the title sound as if you are looking for a single character (which might be the reason for the down-vote). – Martin R Feb 12 '15 at 20:02
  • 1
    @MartinR thanks for the feedback, I've updated the question and the title – mattnedrich Feb 12 '15 at 20:06
up vote 44 down vote accepted

You can create a CharacterSet containing the set of your custom characters and then test the membership against this character set:

Swift 3:

let charset = CharacterSet(charactersIn: "aw")
if str.rangeOfCharacter(from: charset) != nil {
    print("yes")
}

For case-insensitive comparison, use

if str.lowercased().rangeOfCharacter(from: charset) != nil {
    print("yes")
}

(assuming that the character set contains only lowercase letters).

Swift 2:

let charset = NSCharacterSet(charactersInString: "aw")
if str.rangeOfCharacterFromSet(charset) != nil {
    print("yes")
}

Swift 1.2

let charset = NSCharacterSet(charactersInString: "aw")
if str.rangeOfCharacterFromSet(charset, options: nil, range: nil) != nil {
    println("yes")
}
  • Why lowercase? It could be that the custom character set specifically excludes some or all lowercase characters. Also, CharacterSet conforms to the SetAlgebra protocol; CharacterSet.isDisjoint() could be used to determine if the custom CharacterSet has any members in common with the input string (as per Chris Hatton's answer below, but with CharacterSets instead of Sets.) – Matt Mar 4 '17 at 5:21
  • @Matt: I do not remember why I added the lowercase conversion, perhaps as an option or because it is used in the Q&A which is referenced in the question. I have tried to clarify that now. – And yes, you could write if !charset.isDisjoint(with: CharacterSet(charactersIn: str)). Is that what you meant? Not sure if it is simpler or more efficient. – Martin R Mar 4 '17 at 9:04
  • @MartinR Do you know why rangeOfCharacter(from: charset, options: .caseInsensitive) doesn't work? – Leo Dabus Jan 15 at 15:05
  • 1
    @LeoDabus: developer.apple.com/documentation/foundation/nsstring/… specifies "anchored" and "backwards" as the only possible options. The technical reason might be that a CharacterSet is internally just a large bitmap (for efficiency). – Martin R Jan 15 at 15:14

From Swift 1.2 you can do that using Set

var str = "Hello, World!"
let charset: Set<Character> = ["e", "n"]

charset.isSubsetOf(str)     // `true` if `str` contains all characters in `charset`
charset.isDisjointWith(str) // `true` if `str` does not contains any characters in `charset`
charset.intersect(str)      // set of characters both `str` and `charset` contains.

Swift 3 or later

let isSubset = charset.isSubset(of: str)        // `true` if `str` contains all characters in `charset`
let isDisjoint = charset.isDisjoint(with: str)  // `true` if `str` does not contains any characters in `charset`
let intersection = charset.intersection(str)    // set of characters both `str` and `charset` contains.
print(intersection.count)   // 1
  • 1
    In Swift 2.0, str should be str.characters – Aaron Brager Jan 9 '16 at 21:48

swift3

var str = "Hello, playground"
let res = str.characters.contains { ["x", "z"].contains( $0 ) }

Using Swift 3 to determine if your string contains characters from a specific CharacterSet:

    let letters = CharacterSet.alphanumerics
    let string = "my-string_"
    if (string.trimmingCharacters(in: letters) != "") {
        print("Invalid characters in string.")
    }
    else {
        print("Only letters and numbers.")
    }
  • 2
    For a real Swift 3 answer, you should use CharacterSet instead of NSCharacterSet. – Moritz Nov 21 '16 at 15:40
  • Thanks, updated. – AndyDunn Nov 29 '16 at 17:02

You could do it this way:

var string = "Hello, World!"

if string.rangeOfString("W") != nil {
     println("exists")
} else {
     println("doesn't exist")
}

// alternative: not case sensitive
if string.lowercaseString.rangeOfString("w") != nil {
     println("exists")
} else {
     println("doesn't exist")
}
func isAnyCharacter( from charSetString: String, containedIn string: String ) -> Bool
{
    return Set( charSetString.characters ).isDisjointWith( Set( string.characters) ) == false
}

Swift 3:

let myString = "Some Words"

if (myString.range(of: "Some") != nil){
    print("myString contains the word `Some`")
}else{
    print("Word does not contain `Some`")
}

Swift 3 example:

extension String{
    var isContainsLetters : Bool{
        let letters = CharacterSet.letters
        return self.rangeOfCharacter(from: letters) != nil
    }
}

Usage :

"123".isContainsLetters // false

Nice Swift4 solution to check if contains letters:

CharacterSet.letters.isSuperset(of: CharacterSet(charactersIn: myString) // returns BOOL

Another case when you need to validate string for custom char sets. For example if string contains only letters and (for example) dashes and spaces:

let customSet: CharacterSet = [" ", "-"]
let finalSet = CharacterSet.letters.union(customSet)
finalSet.isSuperset(of: CharacterSet(charactersIn: myString)) // BOOL

Hope it helps someone one day:)

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