112

I'm used to do this in JavaScript:

var domains = "abcde".substring(0, "abcde".indexOf("cd")) // Returns "ab"

Swift doesn't have this function, how to do something similar?

2
  • @eric-d This is not a duplicate of the one you've mentioned. The OP is about indexOf() and not substring().
    – mdupls
    Sep 23, 2015 at 19:26
  • In Swift 2 there is a String.rangeOfString(String) method that returns a Range.
    – mdupls
    Sep 24, 2015 at 12:08

11 Answers 11

183

edit/update:

Xcode 11.4 • Swift 5.2 or later

import Foundation

extension StringProtocol {
    func index<S: StringProtocol>(of string: S, options: String.CompareOptions = []) -> Index? {
        range(of: string, options: options)?.lowerBound
    }
    func endIndex<S: StringProtocol>(of string: S, options: String.CompareOptions = []) -> Index? {
        range(of: string, options: options)?.upperBound
    }
    func indices<S: StringProtocol>(of string: S, options: String.CompareOptions = []) -> [Index] {
        ranges(of: string, options: options).map(\.lowerBound)
    }
    func ranges<S: StringProtocol>(of string: S, options: String.CompareOptions = []) -> [Range<Index>] {
        var result: [Range<Index>] = []
        var startIndex = self.startIndex
        while startIndex < endIndex,
            let range = self[startIndex...]
                .range(of: string, options: options) {
                result.append(range)
                startIndex = range.lowerBound < range.upperBound ? range.upperBound :
                    index(range.lowerBound, offsetBy: 1, limitedBy: endIndex) ?? endIndex
        }
        return result
    }
}

usage:

let str = "abcde"
if let index = str.index(of: "cd") {
    let substring = str[..<index]   // ab
    let string = String(substring)
    print(string)  // "ab\n"
}

let str = "Hello, playground, playground, playground"
str.index(of: "play")      // 7
str.endIndex(of: "play")   // 11
str.indices(of: "play")    // [7, 19, 31]
str.ranges(of: "play")     // [{lowerBound 7, upperBound 11}, {lowerBound 19, upperBound 23}, {lowerBound 31, upperBound 35}]

case insensitive sample

let query = "Play"
let ranges = str.ranges(of: query, options: .caseInsensitive)
let matches = ranges.map { str[$0] }   //
print(matches)  // ["play", "play", "play"]

regular expression sample

let query = "play"
let escapedQuery = NSRegularExpression.escapedPattern(for: query)
let pattern = "\\b\(escapedQuery)\\w+"  // matches any word that starts with "play" prefix

let ranges = str.ranges(of: pattern, options: .regularExpression)
let matches = ranges.map { str[$0] }

print(matches) //  ["playground", "playground", "playground"]
18
  • 3
    This isn't quite right, as "ab".indexOf("a") and "ab".indexOf("c") both return 0.
    – Graham
    Jun 7, 2016 at 8:33
  • and for those that have upgraded to Swift 3.0: extension String { func indexOf(string: String) -> String.Index? { return range(of: string, options: .literal, range: nil, locale: nil)?.lowerBound } }
    – gammachill
    Jul 30, 2016 at 13:25
  • 2
    Make sure you import Foundation or this will not work. Because really you're just using NSString at this point.
    – CommaToast
    Aug 12, 2016 at 16:59
  • 1
    This is a ton of work - and not the Swift native way. See @Inder Kumar Rathore's answer below - simple use of '.range( of: "text" )' method
    – Marchy
    Jun 2, 2018 at 14:34
  • 1
70

Using String[Range<String.Index>] subscript you can get the sub string. You need starting index and last index to create the range and you can do it as below

let str = "abcde"
if let range = str.range(of: "cd") {
  let substring = str[..<range.lowerBound] // or str[str.startIndex..<range.lowerBound]
  print(substring)  // Prints ab
}
else {
  print("String not present")
}

If you don't define the start index this operator ..< , it take the starting index. You can also use str[str.startIndex..<range.lowerBound] instead of str[..<range.lowerBound]

0
38

Swift 5

Find index of substring

let str = "abcdecd"
if let range: Range<String.Index> = str.range(of: "cd") {
    let index: Int = str.distance(from: str.startIndex, to: range.lowerBound)
    print("index: ", index) //index: 2
}
else {
    print("substring not found")
}

Find index of Character

let str = "abcdecd"
if let firstIndex = str.firstIndex(of: "c") {
    let index = str.distance(from: str.startIndex, to: firstIndex)
    print("index: ", index)   //index: 2
}
else {
    print("symbol not found")
}
8

In Swift 4 :

Getting Index of a character in a string :

let str = "abcdefghabcd"
if let index = str.index(of: "b") {
   print(index) // Index(_compoundOffset: 4, _cache: Swift.String.Index._Cache.character(1))
}

Creating SubString (prefix and suffix) from String using Swift 4:

let str : String = "ilike"
for i in 0...str.count {
    let index = str.index(str.startIndex, offsetBy: i) // String.Index
    let prefix = str[..<index] // String.SubSequence
    let suffix = str[index...] // String.SubSequence
    print("prefix \(prefix), suffix : \(suffix)")
}

Output

prefix , suffix : ilike
prefix i, suffix : like
prefix il, suffix : ike
prefix ili, suffix : ke
prefix ilik, suffix : e
prefix ilike, suffix : 

If you want to generate a substring between 2 indices , use :

let substring1 = string[startIndex...endIndex] // including endIndex
let subString2 = string[startIndex..<endIndex] // excluding endIndex
2
  • What is _compoundOffset, the number of bytes in the string until that point?
    – ArielSD
    Feb 28, 2018 at 23:33
  • This is extremely inefficient. It will offset the string from the start index on every iteration. You should simply keep the index position and get the index(after:) on each iteration. Note also that string[startIndex...endIndex] would crash. Btw Swift 5 or later you can use PartialRangeFrom subscript let substring1 = str[str.startIndex...]
    – Leo Dabus
    Oct 16, 2021 at 22:16
7

Doing this in Swift is possible but it takes more lines, here is a function indexOf() doing what is expected:

func indexOf(source: String, substring: String) -> Int? {
    let maxIndex = source.characters.count - substring.characters.count
    for index in 0...maxIndex {
        let rangeSubstring = source.startIndex.advancedBy(index)..<source.startIndex.advancedBy(index + substring.characters.count)
        if source.substringWithRange(rangeSubstring) == substring {
            return index
        }
    }
    return nil
}

var str = "abcde"
if let indexOfCD = indexOf(str, substring: "cd") {
    let distance = str.startIndex.advancedBy(indexOfCD)
    print(str.substringToIndex(distance)) // Returns "ab"
}

This function is not optimized but it does the job for short strings.

3
  • 7
    Its extremely frustrating that they haven't added this to the Swift libraries yet! Aug 31, 2015 at 18:47
  • Im adding an extension String to a utils.swift class that will need to be available to all others Jun 18, 2020 at 23:47
  • btw the above appears to be O(N^2) in the length of the string .. ? Jun 18, 2020 at 23:48
5

Swift 5

   let alphabet = "abcdefghijklmnopqrstuvwxyz"

    var index: Int = 0
    
    if let range: Range<String.Index> = alphabet.range(of: "c") {
         index = alphabet.distance(from: alphabet.startIndex, to: range.lowerBound)
        print("index: ", index) //index: 2
    }
1
  • stackoverflow.com/a/34540310/2303865 Note that String indices is not integer based. You won't be able to use it to subscript the collection and access the elements (a character or a substring)
    – Leo Dabus
    Nov 7, 2021 at 12:15
4

There are three closely connected issues here:

  • All the substring-finding methods are over in the Cocoa NSString world (Foundation)

  • Foundation NSRange has a mismatch with Swift Range; the former uses start and length, the latter uses endpoints

  • In general, Swift characters are indexed using String.Index, not Int, but Foundation characters are indexed using Int, and there is no simple direct translation between them (because Foundation and Swift have different ideas of what constitutes a character)

Given all that, let's think about how to write:

func substring(of s: String, from:Int, toSubstring s2 : String) -> Substring? {
    // ?
}

The substring s2 must be sought in s using a String Foundation method. The resulting range comes back to us, not as an NSRange (even though this is a Foundation method), but as a Range of String.Index (wrapped in an Optional, in case we didn't find the substring at all). However, the other number, from, is an Int. Thus we cannot form any kind of range involving them both.

But we don't have to! All we have to do is slice off the end of our original string using a method that takes a String.Index, and slice off the start of our original string using a method that takes an Int. Fortunately, such methods exist! Like this:

func substring(of s: String, from:Int, toSubstring s2 : String) -> Substring? {
    guard let r = s.range(of:s2) else {return nil}
    var s = s.prefix(upTo:r.lowerBound)
    s = s.dropFirst(from)
    return s
}

Or, if you prefer to be able to apply this method directly to a string, like this...

let output = "abcde".substring(from:0, toSubstring:"cd")

...then make it an extension on String:

extension String {
    func substring(from:Int, toSubstring s2 : String) -> Substring? {
        guard let r = self.range(of:s2) else {return nil}
        var s = self.prefix(upTo:r.lowerBound)
        s = s.dropFirst(from)
        return s
    }
}
9
  • Is this copying the original string? What if the original string were lengthy and this were a repeated operation? That can be done with zero data copy in the jvm world. Jun 18, 2020 at 23:46
  • @javadba No copying in deriving a Substring, that's the whole point of a Substring. Basically that code just walks a bunch of pointers.
    – matt
    Jun 19, 2020 at 0:12
  • OK - I see the dropFirst and have not looked at how that's implemented. How can we extract the final returning Substring into just a String ? I'm seeing super lengthy posts just on that .. Jun 19, 2020 at 0:48
  • Just coerce to a String. I'm not sure whether there's a copy at that point; there might not be, as long as neither this nor the original string is modified, but I'm unclear on the details of how String adopts copy-on-write.
    – matt
    Jun 19, 2020 at 0:51
  • ok thx - coercion here we go. I'm getting warning "Cast from Substring to String always fails" when doing as! String Jun 19, 2020 at 0:53
3

Swift 5

    extension String {
    enum SearchDirection {
        case first, last
    }
    func characterIndex(of character: Character, direction: String.SearchDirection) -> Int? {
        let fn = direction == .first ? firstIndex : lastIndex
        if let stringIndex: String.Index = fn(character) {
            let index: Int = distance(from: startIndex, to: stringIndex)
            return index
        }  else {
            return nil
        }
    }
}

tests:

 func testFirstIndex() {
        let res = ".".characterIndex(of: ".", direction: .first)
        XCTAssert(res == 0)
    }
    func testFirstIndex1() {
        let res = "12345678900.".characterIndex(of: "0", direction: .first)
        XCTAssert(res == 9)
    }
    func testFirstIndex2() {
        let res = ".".characterIndex(of: ".", direction: .last)
        XCTAssert(res == 0)
    }
    func testFirstIndex3() {
        let res = "12345678900.".characterIndex(of: "0", direction: .last)
        XCTAssert(res == 10)
    }
1
  • Adding String. prefix inside a String extension is redundant. SearchDirection would suffice. Note also that Swift is a type inferred language. No need to explicitly set the resulting type if it is not generic.
    – Leo Dabus
    Nov 2, 2021 at 3:02
2

In the Swift version 3, String doesn't have functions like -

str.index(of: String)

If the index is required for a substring, one of the ways to is to get the range. We have the following functions in the string which returns range -

str.range(of: <String>)
str.rangeOfCharacter(from: <CharacterSet>)
str.range(of: <String>, options: <String.CompareOptions>, range: <Range<String.Index>?>, locale: <Locale?>)

For example to find the indexes of first occurrence of play in str

var str = "play play play"
var range = str.range(of: "play")
range?.lowerBound //Result : 0
range?.upperBound //Result : 4

Note : range is an optional. If it is not able to find the String it will make it nil. For example

var str = "play play play"
var range = str.range(of: "zoo") //Result : nil
range?.lowerBound //Result : nil
range?.upperBound //Result : nil
2

Leo Dabus's answer is great. Here is my answer based on his answer using compactMap to avoid Index out of range error.

Swift 5.1

extension StringProtocol {
    func ranges(of targetString: Self, options: String.CompareOptions = [], locale: Locale? = nil) -> [Range<String.Index>] {

        let result: [Range<String.Index>] = self.indices.compactMap { startIndex in
            let targetStringEndIndex = index(startIndex, offsetBy: targetString.count, limitedBy: endIndex) ?? endIndex
            return range(of: targetString, options: options, range: startIndex..<targetStringEndIndex, locale: locale)
        }
        return result
    }
}

// Usage
let str = "Hello, playground, playground, playground"
let ranges = str.ranges(of: "play")
ranges.forEach {
    print("[\($0.lowerBound.utf16Offset(in: str)), \($0.upperBound.utf16Offset(in: str))]")
}

// result - [7, 11], [19, 23], [31, 35]
0
1

Have you considered using NSRange?

if let range = mainString.range(of: mySubString) {
  //...
}

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