656

In Objective-C the code to check for a substring in an NSString is:

NSString *string = @"hello Swift";
NSRange textRange =[string rangeOfString:@"Swift"];
if(textRange.location != NSNotFound)
{
    NSLog(@"exists");
}

But how do I do this in Swift?

2
  • If you're still around, please change the accepted answer to the one by user1021430... it's correct Jan 5, 2015 at 22:50
  • Swift 5+: if largeText.contains("stringToSearchFor") { print("yes") }
    – MBH
    Jun 7, 2022 at 2:44

27 Answers 27

1275

You can do exactly the same call with Swift:

Swift 4 & Swift 5

In Swift 4 String is a collection of Character values, it wasn't like this in Swift 2 and 3, so you can use this more concise code1:

let string = "hello Swift"
if string.contains("Swift") {
    print("exists")
}

Swift 3.0+

var string = "hello Swift"

if string.range(of:"Swift") != nil { 
    print("exists")
}

// alternative: not case sensitive
if string.lowercased().range(of:"swift") != nil {
    print("exists")
}

Older Swift

var string = "hello Swift"

if string.rangeOfString("Swift") != nil{ 
    println("exists")
}

// alternative: not case sensitive
if string.lowercaseString.rangeOfString("swift") != nil {
    println("exists")
}

I hope this is a helpful solution since some people, including me, encountered some strange problems by calling containsString().1

PS. Don't forget to import Foundation

Footnotes

  1. Just remember that using collection functions on Strings has some edge cases which can give you unexpected results, e. g. when dealing with emojis or other grapheme clusters like accented letters.
20
  • 14
    Apple's documentation says: An NSRange structure giving the location and length in the receiver of the first occurrence of aString. Returns {NSNotFound, 0} if aString is not found or is empty (@""). So maybe just checking for nil won't work properly.
    – Alex
    Sep 22, 2014 at 9:01
  • 7
    string.lowercaseString.rangeOfString("swift").location != NSNotFound. Please read the documentation.. you will not get a nil object back. Oct 24, 2014 at 2:33
  • 4
    @TheGamingArt Yes you will. Swift round-trips the whole thing for you automagically so that if the NSRange is {NSNotFound, 0} it is represented for you as nil. If it is an actual range, it is represented for you as a Swift Range (optional). Cool.
    – matt
    Nov 26, 2014 at 18:53
  • 4
    Grr. containsString is not in the docs, even as of Xcode 6.3.1.
    – Duncan C
    May 15, 2015 at 14:49
  • 20
    @TheGoonie: This is not calling NSString's .rangeOfString(). This is calling String's .rangeOfString(), which is declared as func rangeOfString(aString: String, options mask: NSStringCompareOptions = default, range searchRange: Range<Index>? = default, locale: NSLocale? = default) -> Range<Index>?
    – newacct
    Jul 11, 2015 at 20:32
202

Extension way

Swift 4

extension String {
    func contains(find: String) -> Bool{
        return self.range(of: find) != nil
    }
    func containsIgnoringCase(find: String) -> Bool{
        return self.range(of: find, options: .caseInsensitive) != nil
    }
}

var value = "Hello world"

print(value.contains("Hello")) // true
print(value.contains("bo"))    // false

print(value.containsIgnoringCase(find: "hello"))    // true
print(value.containsIgnoringCase(find: "Hello"))    // true
print(value.containsIgnoringCase(find: "bo"))       // false

Generally Swift 4 has contains method however it available from iOS 8.0+


Swift 3.1

You can write extension contains: and containsIgnoringCase for String

extension String { 

   func contains(_ find: String) -> Bool{
     return self.range(of: find) != nil
   }

   func containsIgnoringCase(_ find: String) -> Bool{
     return self.range(of: find, options: .caseInsensitive) != nil 
   }
 }

Older Swift version

extension String {

    func contains(find: String) -> Bool{
       return self.rangeOfString(find) != nil
     }

    func containsIgnoringCase(find: String) -> Bool{
       return self.rangeOfString(find, options: NSStringCompareOptions.CaseInsensitiveSearch) != nil
     }
}

Example:

var value = "Hello world"

print(value.contains("Hello")) // true
print(value.contains("bo"))    // false

print(value.containsIgnoringCase("hello"))    // true
print(value.containsIgnoringCase("Hello"))    // true
print(value.containsIgnoringCase("bo"))       // false
4
  • 6
    to ignore case use return self.rangeOfString(find, options: NSStringCompareOptions.CaseInsensitiveSearch) != nil
    – masgar
    Nov 28, 2015 at 10:54
  • 1
    No longer necessary unless you don't have Foundation around... containsString works fine. Mar 29, 2016 at 19:21
  • 5
    for swift 3.0. Change to below: extension String { func contains(find: String) -> Bool{ return self.range(of: find) != nil } func containsIgnoringCase(find: String) -> Bool{ return self.range(of: find, options: .caseInsensitive) != nil } } Sep 18, 2016 at 10:18
  • For Swift 4 -> extension String { func contains(find: String) -> Bool{ return self.range(of: find) != nil } func containsIgnoringCase(find: String) -> Bool{ return self.range(of: find, options: .caseInsensitive) != nil } }
    – shokaveli
    Nov 7, 2017 at 22:49
51

From the docs, it seems that calling containsString() on a String should work:

Swift’s String type is bridged seamlessly to Foundation’s NSString class. If you are working with the Foundation framework in Cocoa or Cocoa Touch, the entire NSString API is available to call on any String value you create, in addition to the String features described in this chapter. You can also use a String value with any API that requires an NSString instance.

However, it doesn't seem to work that way.

If you try to use someString.containsString(anotherString), you will get a compile time error that states 'String' does not contain a member named 'containsString'.

So, you're left with a few options, one of which is to explicitly bridge your String to Objective-C by using bridgeToObjectiveC() other two involve explicitly using an NSString and the final one involves casting the String to an NSString

By bridging, you'd get:

var string = "hello Swift"
if string.bridgeToObjectiveC().containsString("Swift") {
    println("YES")
}

By explicitly typing the string as an NSString, you'd get:

var string: NSString = "hello Swift"
if string.containsString("Swift") {
    println("YES")
}

If you have an existing String, you can initialize an NSString from it by using NSString(string:):

var string = "hello Swift"
if NSString(string: string).containsString("Swift") {
    println("YES")
}

And finally, you can cast an existing String to an NSString as below

var string = "hello Swift"
if (string as NSString).containsString("Swift") {
    println("YES")
}
3
  • 4
    The last example (I haven't tried others) crashes for me on iOS 7 (device); Swift apps should run just fine on iOS 7. The error I get is [__NSCFString containsString:]: unrecognized selector sent to instance. Also, I can't find the method containsString in the dev docs to confirm if its new for iOS 8. Jun 15, 2014 at 3:32
  • Interesting. I only tested this on a playground. I will give it a try later when I'm on my computer.
    – Cezar
    Jun 15, 2014 at 3:36
  • the third and fourth options are the only ones the compiler allowed. both crash for me in beta 4 in iOS 7. Jul 25, 2014 at 5:06
41

Another one. Supports case and diacritic options.

Swift 3.0

struct MyString {
  static func contains(_ text: String, substring: String,
                       ignoreCase: Bool = true,
                       ignoreDiacritic: Bool = true) -> Bool {

    var options = NSString.CompareOptions()

    if ignoreCase { _ = options.insert(NSString.CompareOptions.caseInsensitive) }
    if ignoreDiacritic { _ = options.insert(NSString.CompareOptions.diacriticInsensitive) }

    return text.range(of: substring, options: options) != nil
  }
}

Usage

MyString.contains("Niels Bohr", substring: "Bohr") // true

iOS 9+

Case and diacritic insensitive function available since iOS 9.

if #available(iOS 9.0, *) {
  "Für Elise".localizedStandardContains("fur") // true
}
0
31

As of Xcode 7.1 and Swift 2.1 containsString() is working fine for me.

let string = "hello swift"
if string.containsString("swift") {
    print("found swift")
}

Swift 4:

let string = "hello swift"
if string.contains("swift") {
    print("found swift")
}

And a case insensitive Swift 4 example:

let string = "Hello Swift"
if string.lowercased().contains("swift") {
    print("found swift")
}

Or using a case insensitive String extension:

extension String {
    func containsIgnoreCase(_ string: String) -> Bool {
        return self.lowercased().contains(string.lowercased())
    }
}

let string = "Hello Swift"
let stringToFind = "SWIFT"
if string.containsIgnoreCase(stringToFind) {
    print("found: \(stringToFind)")  // found: SWIFT
}
print("string: \(string)")
print("stringToFind: \(stringToFind)")

// console output:
found: SWIFT
string: Hello Swift
stringToFind: SWIFT
6
  • 3
    you need to import Foundation, otherwise this won't work. Mar 21, 2016 at 15:55
  • Either import UIKit of import Foundation is required, at least with iOS 11 and Swift 4. Oct 30, 2017 at 19:24
  • But that is case sensitive. How do you do comparison while ignoring case . Like in java String.equalsIgnoreCase(anotherString) ? Nov 7, 2017 at 5:11
  • @zulkarnainshah I added an example to the answer. Nov 7, 2017 at 14:41
  • @MurraySagal Thats still not case insensitive search. You're converting the original string to lowercase and then comparing that explicitly with a lower case string. It will do the job, but thats not the ideal way to do that Nov 7, 2017 at 17:22
23

In Swift 4.2

Use

func contains(_ str: String) -> Bool

Example

let string = "hello Swift"
let containsSwift = string.contains("Swift")
print(containsSwift) // prints true
1
  • 6
    Please note that this requires that you import Foundation.
    – rmaddy
    Oct 5, 2017 at 3:57
16

> IN SWIFT 3.0

let str = "Hello Swift"
if str.lowercased().contains("Swift".lowercased()) {
    print("String Contains Another String")
} else {
    print("Not Exists")
}

Output

String Contains Another String
15

You can do this very easily in Swift using the code:

let string = "hello Swift";
let subString = (string as NSString).containsString("Swift")
if(subString){println("Exist")}
10

Of all of the answers here, I think they either don't work, or they're a bit of a hack (casting back to NSString). It's very likely that the correct answer to this has changed with the different beta releases.

Here is what I use:

let string: String = "hello Swift"
if string.rangeOfString("Swift") != nil
{
    println("exists")
}

The "!= nil" became required with Beta 5.

10

Just an addendum to the answers here.

You can also do a local case insensitive test using:

 - (BOOL)localizedCaseInsensitiveContainsString:(NSString *)aString

Example:

    import Foundation

    var string: NSString  =  "hello Swift"
   if string.localizedCaseInsensitiveContainsString("Hello") {
    println("TRUE")
}

UPDATE

This is part of the Foundation Framework for iOS & Mac OS X 10.10.x and was part of 10.10 at Time of my original Posting.

Document Generated: 2014-06-05 12:26:27 -0700 OS X Release Notes Copyright © 2014 Apple Inc. All Rights Reserved.

OS X 10.10 Release Notes Cocoa Foundation Framework

NSString now has the following two convenience methods:

- (BOOL)containsString:(NSString *)str;

- (BOOL)localizedCaseInsensitiveContainsString:(NSString *)str;

1
  • 1
    Be aware this approach requires iOS 8. May 11, 2015 at 12:58
9

Here is my first stab at this in the swift playground. I extend String by providing two new functions (contains and containsIgnoreCase)

extension String {
    func contains(other: String) -> Bool{
        var start = startIndex

        do{
            var subString = self[Range(start: start++, end: endIndex)]
            if subString.hasPrefix(other){
                return true
            }

        }while start != endIndex

        return false
    }

    func containsIgnoreCase(other: String) -> Bool{
        var start = startIndex

        do{
            var subString = self[Range(start: start++, end: endIndex)].lowercaseString
            if subString.hasPrefix(other.lowercaseString){
                return true
            }

        }while start != endIndex

        return false
    }
}

Use it like this

var sentence = "This is a test sentence"
sentence.contains("this")  //returns false
sentence.contains("This")  //returns true
sentence.containsIgnoreCase("this")  //returns true

"This is another test sentence".contains(" test ")    //returns true

I'd welcome any feedback :)

1
  • Next step: Make this a generic function which works on all Collection's :-) E.g. checkout the startsWith() builtin function. In the 'ignore case' variant, only lowercase the strings once (let lc = other.lowercaseString before the do)
    – hnh
    Jul 4, 2014 at 11:07
9

You can just do what you have mentioned:

import Foundation
...
string.contains("Swift");

From the docs:

Swift’s String type is bridged seamlessly to Foundation’s NSString class. If you are working with the Foundation framework in Cocoa or Cocoa Touch, the entire NSString API is available to call on any String value you create, in addition to the String features described in this chapter. You can also use a String value with any API that requires an NSString instance.

You need to import Foundation to bridge the NSString methods and make them available to Swift's String class.

3
  • Not me, but no, it doesn't.
    – Cezar
    Jun 4, 2014 at 12:28
  • yep. Tried in a Playground, in a Mac App and in an iOS app. Also tried in Playground importing Cocoa, UIKit, Foundation and all possible combinations of the three of them (except Cocoa/UIKit, which doesn't make sense)
    – Cezar
    Jun 4, 2014 at 12:29
  • This is no longer the case as of Swift 1.2
    – Kelvin Lau
    May 26, 2015 at 10:40
7

Swift 5, case insensitive:

if string.localizedLowercase.contains("swift".localizedLowercase){
    // your code here
}
6

Here you are:

let s = "hello Swift"
if let textRange = s.rangeOfString("Swift") {
    NSLog("exists")
}
1
  • Sometime you might need a compact form as follows: let rangeIfExists = string.rangeOfString("Swift") ?? false which either returns false as a boolean if it's not contained or the NSRange otherwise Jul 18, 2015 at 16:39
5

You don't need to write any custom code for this. Starting from the 1.2 version Swift has already had all the methods you need:

  • getting string length: count(string);
  • checking if string contains substring: contains(string, substring);
  • checking if string starts with substring: startsWith(string, substring)
  • and etc.
2
  • Swift 2 is not the same.
    – Suragch
    Oct 6, 2015 at 12:48
  • 2
    Swift 2: string.hasPrefix(“start”) Oct 14, 2015 at 14:19
5

In Swift 3

if((a.range(of: b!, options: String.CompareOptions.caseInsensitive, range: nil, locale: nil)) != nil){
    print("Done")
}
4

Here you go! Ready for Xcode 8 and Swift 3.

import UIKit

let mString = "This is a String that contains something to search."
let stringToSearchUpperCase = "String"
let stringToSearchLowerCase = "string"

mString.contains(stringToSearchUpperCase) //true
mString.contains(stringToSearchLowerCase) //false
mString.lowercased().contains(stringToSearchUpperCase) //false
mString.lowercased().contains(stringToSearchLowerCase) //true
3

string.containsString is only available in 10.10 Yosemite (and probably iOS8). Also bridging it to ObjectiveC crashes in 10.9. You're trying to pass a NSString to NSCFString. I don't know the difference, but I can say 10.9 barfs when it executes this code in a OS X 10.9 app.

Here are the differences in Swift with 10.9 and 10.10: https://developer.apple.com/library/prerelease/mac/documentation/General/Reference/APIDiffsMacOSX10_10SeedDiff/index.html containsString is only available in 10.10

Range of String above works great on 10.9. I am finding developing on 10.9 is super stable with Xcode beta2. I don't use playgrounds through or the command line version of playgrounds. I'm finding if the proper frameworks are imported the autocomplete is very helpful.

3

Xcode 8/Swift 3 version:

let string = "hello Swift"

if let range = string.range(of: "Swift") {
    print("exists at range \(range)")
} else {
    print("does not exist")
}

if let lowercaseRange = string.lowercased().range(of: "swift") {
    print("exists at range \(lowercaseRange)")
} else {
    print("does not exist")
}

You can also use contains:

string.contains("swift") // false
string.contains("Swift") // true
3

Swift 4 way to check for substrings, including the necessary Foundation (or UIKit) framework import:

import Foundation // or UIKit

let str = "Oh Canada!"

str.contains("Can") // returns true

str.contains("can") // returns false

str.lowercased().contains("can") // case-insensitive, returns true

Unless Foundation (or UIKit) framework is imported, str.contains("Can") will give a compiler error.


This answer is regurgitating manojlds's answer, which is completely correct. I have no idea why so many answers go through so much trouble to recreate Foundation's String.contains(subString: String) method.

3

With and new syntax in swift 4 you can just

string.contains("Swift 4 is the best")

string is your string variable

2

Check if it contains 'Hello'

let s = "Hello World"

if s.rangeOfString("Hello") != nil {
    print("Yes it contains 'Hello'")
}
2

If you want to check that one String contains another Sub-String within it or not you can check it like this too,

var name = String()  
name = "John has two apples." 

Now, in this particular string if you want to know if it contains fruit name 'apple' or not you can do,

if name.contains("apple") {  
  print("Yes , it contains fruit name")    
} else {    
  print("it does not contain any fruit name")    
}    

Hope this works for you.

2

SWIFT 4 is very easy!!

if (yourString.contains("anyThing")) {
   print("Exist")
}
2
  • 2
    How is this any different to several of the other answers here? Aug 19, 2018 at 16:55
  • 1
    $ swift Welcome to Apple Swift version 4.2 (swiftlang-1000.11.37.1 clang-1000.11.45.1). Type :help for assistance. 1> print ("Ping") Ping 2> Print ("Ping") error: repl.swift:2:1: error: use of unresolved identifier 'Print' Print ("Ping") ^~~~~ By providing an untested answer that does't work. Print != print. Oct 29, 2018 at 9:29
1
// Search string exist in employee name finding.
var empName:NSString! = employeeDetails[filterKeyString] as NSString

Case sensitve search.
let rangeOfSearchString:NSRange! = empName.rangeOfString(searchString, options: NSStringCompareOptions.CaseInsensitiveSearch)

// Not found.
if rangeOfSearchString.location != Foundation.NSNotFound
{
    // search string not found in employee name.
}
// Found
else
{
    // search string found in employee name.
}
0

In iOS 8 and newer, you can use these two NSString methods:

@availability(iOS, introduced=8.0)
func containsString(aString: String) -> Bool

@availability(iOS, introduced=8.0)
func localizedCaseInsensitiveContainsString(aString: String) -> Bool
1
  • What? it looks like it is not available? in the version that comes with xcode 6.1
    – Ali
    Dec 2, 2014 at 17:15
0

I've found a couple of interesting use cases. These variants make use of the rangeOfString method and I include the equality example to show how one might best use the search and comparison features of Strings in Swift 2.0

//In viewDidLoad() I assign the current object description (A Swift String) to self.loadedObjectDescription
self.loadedObjectDescription = self.myObject!.description

Later after I've made changes to self.myObject, I can refer to the following string comparison routines (setup as lazy variables that return a Bool). This allows one to check the state at any time.

lazy var objectHasChanges : Bool = {
        guard self.myObject != nil else { return false }
        return !(self.loadedObjectDescription == self.myObject!.description)
    }()

A variant of this happens when sometimes I need to analyze a missing property on that object. A string search allows me to find a particular substring being set to nil (the default when an object is created).

    lazy var isMissingProperty : Bool = {
        guard self.myObject != nil else { return true }
        let emptyPropertyValue = "myProperty = nil"
        return (self.myObject!.description.rangeOfString(emptyPropertyValue) != nil) ? true : false
    }()

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