223

I need a way to remove the first character from a string which is a space. I am looking for a method or even an extension for the String type that I can use to cut out a character of a string.

2

32 Answers 32

486

To remove leading and trailing whitespaces:

let trimmedString = string.stringByTrimmingCharactersInSet(NSCharacterSet.whitespaceCharacterSet())

Swift 3 / Swift 4:

let trimmedString = string.trimmingCharacters(in: .whitespaces)
5
  • 217
    this will only work for leading and trailing whitespaces. this will not remove the whitespaces contained in string.
    – sun
    Commented May 24, 2015 at 22:38
  • 102
    if you wanna remove all blank spaces you can try myString.stringByReplacingOccurrencesOfString(" ", withString: "")
    – Lucas
    Commented Jul 18, 2015 at 16:52
  • 7
    You could also use NSCharacterSet.whitespaceAndNewlineCharacterSet() if you want to trim newline characters as well.
    – Blip
    Commented Jul 28, 2015 at 23:54
  • 2
    To make it work with Swift 3.0 and also remove white spaces in between string, use answer: stackoverflow.com/a/39067610/4886069
    – user4886069
    Commented Oct 7, 2016 at 10:49
  • 3
    Swift 3+ user: yourString.replacingOccurrences(of: " ", with: "") Commented Nov 8, 2017 at 10:21
169

The correct way when you want to remove all kinds of whitespaces (based on this SO answer) is:

extension String {
    var stringByRemovingWhitespaces: String {
        let components = componentsSeparatedByCharactersInSet(.whitespaceCharacterSet())
        return components.joinWithSeparator("")
    }
}

Swift 3.0+ (3.0, 3.1, 3.2, 4.0)

extension String {
    func removingWhitespaces() -> String {
        return components(separatedBy: .whitespaces).joined()
    }
}

EDIT

This answer was posted when the question was about removing all whitespaces, the question was edited to only mention leading whitespaces. If you only want to remove leading whitespaces use the following:

extension String {
    func removingLeadingSpaces() -> String {
        guard let index = firstIndex(where: { !CharacterSet(charactersIn: String($0)).isSubset(of: .whitespaces) }) else {
            return self
        }
        return String(self[index...])
    }
}
9
  • 6
    also .components(separatedBy: .whitespacesAndNewlines) for new lines too
    – Derek
    Commented Jan 18, 2017 at 10:29
  • This should be a func not a var Commented Jan 20, 2017 at 15:16
  • 1
    Because of the logic of the feature. You are making a calculated property when you should make a function. It is doing smt rather then holding a value or calculate it from another one. Look at: stackoverflow.com/questions/24035276/… Commented Jan 20, 2017 at 17:44
  • 4
    @JakubTruhlář - That's a matter of opinion, not a statement of fact. See softwareengineering.stackexchange.com/questions/304077/… Commented Aug 8, 2017 at 11:35
  • 1
    @JakubTruhlář You say "This should be a func not a var" - this sounds very much like you are stating a fact, not your opinion. If you read the answers to the linked question, you'll see that while it "makes sense" to you, to other people… not necessarily. Commented Aug 8, 2017 at 13:22
96

This String extension removes all whitespace from a string, not just trailing whitespace ...

 extension String {
    func replace(string:String, replacement:String) -> String {
        return self.replacingOccurrences(of: string, with: replacement, options: NSString.CompareOptions.literal, range: nil)
    }

    func removeWhitespace() -> String {
        return self.replace(string: " ", replacement: "")
    }
  }

Example:

let string = "The quick brown dog jumps over the foxy lady."
let result = string.removeWhitespace() // Thequickbrowndogjumpsoverthefoxylady.
3
  • 4
    Only works for " " (doesn't consider other kinds of whitesapce)
    – fpg1503
    Commented Aug 21, 2016 at 18:31
  • @fpg1503 what other kinds of whitespace?
    – Ricardo
    Commented Aug 25, 2017 at 12:11
  • The ones defined on the Zs category: fileformat.info/info/unicode/category/Zs/list.htm
    – fpg1503
    Commented Aug 29, 2017 at 15:15
51

Swift 3

You can simply use this method to remove all normal spaces in a string (doesn't consider all types of whitespace):

let myString = " Hello World ! "
let formattedString = myString.replacingOccurrences(of: " ", with: "")

The result will be:

HelloWorld!
2
25

Swift 4, 4.2 and 5

Remove space from front and end only

let str = "  Akbar Code  "
let trimmedString = str.trimmingCharacters(in: .whitespacesAndNewlines)

Remove spaces from every where in the string

let stringWithSpaces = " The Akbar khan code "
let stringWithoutSpaces = stringWithSpaces.replacingOccurrences(of: " ", with: "")
1
  • str.trimmingCharacters(in: .whitespacesAndNewlines) seems likes the simplest way. Thanks Commented Feb 15, 2023 at 13:40
19

You can also use regex.

let trimmedString = myString.stringByReplacingOccurrencesOfString("\\s", withString: "", options: NSStringCompareOptions.RegularExpressionSearch, range: nil)
1
  • Swift 4: myString.replacingOccurrences(of: "\\s", with: "", options: NSString.CompareOptions.regularExpression, range: nil)
    – norbDEV
    Commented Jan 27, 2019 at 12:28
16

For Swift 3.0+ see the other answers. This is now a legacy answer for Swift 2.x

As answered above, since you are interested in removing the first character the .stringByTrimmingCharactersInSet() instance method will work nicely:

myString.stringByTrimmingCharactersInSet(NSCharacterSet.whitespaceCharacterSet())

You can also make your own character sets to trim the boundaries of your strings by, ex:

myString.stringByTrimmingCharactersInSet(NSCharacterSet(charactersInString: "<>"))

There is also a built in instance method to deal with removing or replacing substrings called stringByReplacingOccurrencesOfString(target: String, replacement: String). It can remove spaces or any other patterns that occur anywhere in your string

You can specify options and ranges, but don't need to:

myString.stringByReplacingOccurrencesOfString(" ", withString: "")

This is an easy way to remove or replace any repeating pattern of characters in your string, and can be chained, although each time through it has to take another pass through your entire string, decreasing efficiency. So you can do this:

 myString.stringByReplacingOccurrencesOfString(" ", withString: "").stringByReplacingOccurrencesOfString(",", withString: "")

...but it will take twice as long.

.stringByReplacingOccurrencesOfString() documentation from Apple site

Chaining these String instance methods can sometimes be very convenient for one off conversions, for example if you want to convert a short NSData blob to a hex string without spaces in one line, you can do this with Swift's built in String interpolation and some trimming and replacing:

("\(myNSDataBlob)").stringByTrimmingCharactersInSet(NSCharacterSet(charactersInString: "<>")).stringByReplacingOccurrencesOfString(" ", withString: "")
2
  • Only works for " " (doesn't consider other kinds of whitesapce)
    – fpg1503
    Commented Aug 21, 2016 at 18:31
  • It still doesn't consider other kinds of whitespace in the middle of the String
    – fpg1503
    Commented Mar 3, 2017 at 12:43
12

For swift 3.0

import Foundation

var str = " Hear me calling"

extension String {
    var stringByRemovingWhitespaces: String {
        return components(separatedBy: .whitespaces).joined()
    }
}

str.stringByRemovingWhitespaces  // Hearmecalling
9

Swift 4

The excellent case to use the regex:

" this is    wrong contained teee xt     "
    .replacingOccurrences(of: "^\\s+|\\s+|\\s+$", 
                          with: "", 
                          options: .regularExpression)

// thisiswrongcontainedteeext
7

If you are wanting to remove spaces from the front (and back) but not the middle, you should use stringByTrimmingCharactersInSet

    let dirtyString   = " First Word "
    let cleanString = dirtyString.stringByTrimmingCharactersInSet(NSCharacterSet.whitespaceCharacterSet())

If you want to remove spaces from anywhere in the string, then you might want to look at stringByReplacing...

2
  • How to remove the middle space as well? Commented May 11, 2015 at 4:12
  • @NikhilGupta no, only leading and trailing (the example " First Word " outputs "First Word").
    – fpg1503
    Commented Oct 31, 2016 at 9:35
7

I'd use this extension, to be flexible and mimic how other collections do it:

extension String {
    func filter(pred: Character -> Bool) -> String {
        var res = String()
        for c in self.characters {
            if pred(c) {
                res.append(c)
            }
        }
        return res
    }
}

"this is a String".filter { $0 != Character(" ") } // "thisisaString"
1
  • Only works for " " (doesn't consider other kinds of whitesapce)
    – fpg1503
    Commented Aug 21, 2016 at 18:30
5

Yet another answer, sometimes the input string can contain more than one space between words. If you need to standardize to have only 1 space between words, try this (Swift 4/5)

let inputString = "  a very     strange   text !    "
let validInput = inputString.components(separatedBy:.whitespacesAndNewlines).filter { $0.count > 0 }.joined(separator: " ")

print(validInput) // "a very strange text !"
5

Code less do more.

"Hello World".filter({$0 != " "}) // HelloWorld
0
4

Try functional programming to remove white spaces:

extension String {
  func whiteSpacesRemoved() -> String {
    return self.filter { $0 != Character(" ") }
  }
}
4

Hi this might be late but worth trying. This is from a playground file. You can make it a String extension.

This is written in Swift 5.3

Method 1:

var str = "\n \tHello, playground       "
if let regexp = try? NSRegularExpression(pattern: "^\\s+", options: NSRegularExpression.Options.caseInsensitive) {
    let mstr = NSMutableString(string: str)
    regexp.replaceMatches(in: mstr, options: [], range: NSRange(location: 0, length: str.count), withTemplate: "")
    str = mstr as String
}

Result: "Hello, playground       "

Method 2:

if let c = (str.first { !($0 == " " || $0 == "\t" || $0 == "\n") }) {
    if let nonWhiteSpaceIndex = str.firstIndex(of: c) {
        str.replaceSubrange(str.startIndex ..< nonWhiteSpaceIndex, with: "")
    }
}

Result: "Hello, playground       "
2
  • This is for Swift 5.x Commented Jul 9, 2020 at 3:50
  • This is great! Thanks
    – RJ Uy
    Commented Jul 9, 2020 at 3:59
3

You can try This as well

   let updatedString = searchedText?.stringByReplacingOccurrencesOfString(" ", withString: "-")
1
  • Only works for " " (doesn't consider other kinds of whitesapce)
    – fpg1503
    Commented Aug 21, 2016 at 18:30
3
extension String {

    var removingWhitespaceAndNewLines: String {
        return removing(.whitespacesAndNewlines)
    }

    func removing(_ forbiddenCharacters: CharacterSet) -> String {
        return String(unicodeScalars.filter({ !forbiddenCharacters.contains($0) }))
    }
}
3

If anybody remove extra space from string e.g = "This is the demo text remove extra space between the words."

You can use this Function in Swift 4.

func removeSpace(_ string: String) -> String{
    var str: String = String(string[string.startIndex])
    for (index,value) in string.enumerated(){
        if index > 0{
            let indexBefore = string.index(before: String.Index.init(encodedOffset: index))
            if value == " " && string[indexBefore] == " "{
            }else{
                str.append(value)
            }
        }
    }
    return str
}

and result will be

"This is the demo text remove extra space between the words."
2

Swift 3 version

  //This function trim only white space:
   func trim() -> String
        {
            return self.trimmingCharacters(in: CharacterSet.whitespaces)
        }
    //This function trim whitespeaces and new line that you enter:
     func trimWhiteSpaceAndNewLine() -> String
        {
            return self.trimmingCharacters(in: CharacterSet.whitespacesAndNewlines)
        }
2

Trimming white spaces in Swift 4

let strFirstName = txtFirstName.text?.trimmingCharacters(in: 
 CharacterSet.whitespaces)
2

OK, this is old but I came across this issue myself and none of the answers above worked besides removing all white spaces which can be detrimental to the functionality of your app. My issue was like so:

["This", " is", " my", " array", " it is awesome"]

If trimmed all white spaces this would be the output:

["This", "is", "my", "array", "itisawesome"]

So I needed to eliminate the leading spacing and simply switching from:

 let array = jsonData.components(separatedBy: ",")

To

let array = jsonData.components(separatedBy: ", ")

Fixed the issue. Hope someone find this useful in the future.

1

For me, the following line used to remove white space.

let result = String(yourString.filter {![" ", "\t", "\n"].contains($0)})
1
string = string.filter ({!" ".contains($0) })
0
1

Swift 5+ Remove All whitespace from prefix(start) of the string, you can use similar for sufix/end of the string

 extension String {
    func deletingPrefix(_ prefix: String) -> String {
      guard self.hasPrefix(prefix) else { return self }
      return String(self.dropFirst(prefix.count))
    }
    
    func removeWhitespacePrefix() -> String {
     let prefixString = self.prefix(while: { char in
        return char == " "
      })
      return self.deletingPrefix(String(prefixString))
    }
  }
0
1

This worked for me in swift 5

var myString = " Kwame Ch ef "
myString = myString.replacingOccurrences(of: " ", with: "")
print(myString)

output: Kwame Chef
1

Removing leading space (including newlines) –without touching anything else!

var string = "   ABC"
if let index = string.firstIndex(where: { char in !char.isWhitespace }) {
    string = String(string[index...]) // "ABC"
}
0

For anyone looking for an answer to remove only the leading whitespaces out of a string (as the question title clearly ask), Here's an answer:

Assuming:

let string = "   Hello, World!   "

To remove all leading whitespaces, use the following code:

var filtered = ""
var isLeading = true
for character in string {
    if character.isWhitespace && isLeading {
        continue
    } else {
        isLeading = false
        filtered.append(character)
    }
}
print(filtered) // "Hello, World!   "

I'm sure there's better code than this, but it does the job for me.

-1

Really FAST solution:

usage:

let txt = "        hello world     "
let txt1 = txt.trimStart() // "hello world     "
let txt2 = txt.trimEnd()   // "        hello world"

usage 2:

let txt = "rr rrr rrhello world r r r r r r"
let txt1 = txt.trimStart(["r", " "]) // "hello world r r r r r r"
let txt2 = txt.trimEnd(["r", " "])   // "rr rrr rrhello world"

if you need to remove ALL whitespaces from string:

txt.replace(of: " ", to: "")
public extension String {
    func trimStart(_ char: Character) -> String {
        return trimStart([char])
    }
    
    func trimStart(_ symbols: [Character] = [" ", "\t", "\r", "\n"]) -> String {
        var startIndex = 0
        
        for char in self {
            if symbols.contains(char) {
                startIndex += 1
            }
            else {
                break
            }
        }
        
        if startIndex == 0 {
            return self
        }
        
        return String( self.substring(from: startIndex) )
    }
    
    func trimEnd(_ char: Character) -> String {
        return trimEnd([char])
    }
    
    func trimEnd(_ symbols: [Character] = [" ", "\t", "\r", "\n"]) -> String {
        var endIndex = self.count - 1
        
        for i in (0...endIndex).reversed() {
            if symbols.contains( self[i] ) {
                endIndex -= 1
            }
            else {
                break
            }
        }
        
        if endIndex == self.count {
            return self
        }
        
        return String( self.substring(to: endIndex + 1) )
    }
}

/////////////////////////
/// ACCESS TO CHAR BY INDEX
////////////////////////
extension StringProtocol {
    subscript(offset: Int) -> Character { self[index(startIndex, offsetBy: offset)] }
    subscript(range: Range<Int>) -> SubSequence {
        let startIndex = index(self.startIndex, offsetBy: range.lowerBound)
        return self[startIndex..<index(startIndex, offsetBy: range.count)]
    }
    subscript(range: ClosedRange<Int>) -> SubSequence {
        let startIndex = index(self.startIndex, offsetBy: range.lowerBound)
        return self[startIndex..<index(startIndex, offsetBy: range.count)]
    }
    subscript(range: PartialRangeFrom<Int>) -> SubSequence { self[index(startIndex, offsetBy: range.lowerBound)...] }
    subscript(range: PartialRangeThrough<Int>) -> SubSequence { self[...index(startIndex, offsetBy: range.upperBound)] }
    subscript(range: PartialRangeUpTo<Int>) -> SubSequence { self[..<index(startIndex, offsetBy: range.upperBound)] }
}

-2

Swift 3 version of BadmintonCat's answer

extension String {
    func replace(_ string:String, replacement:String) -> String {
        return self.replacingOccurrences(of: string, with: replacement, options: NSString.CompareOptions.literal, range: nil)
    }

    func removeWhitespace() -> String {
        return self.replace(" ", replacement: "")
    }
}
2
  • Only works for " " (doesn't consider other kinds of whitesapce)
    – fpg1503
    Commented Aug 21, 2016 at 18:30
  • Because your answer is wrong. The answer you've provided an update to is also wrong. There are several kinds of whitespaces and that's why using whitespaceCharacterSet is a best practice.
    – fpg1503
    Commented Aug 23, 2016 at 10:24
-2

To remove all spaces from the string:

let space_removed_string = (yourstring?.components(separatedBy: " ").joined(separator: ""))!

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