41

I have a string like this in Swift:

var stringts:String = "3022513240"

If I want to change it to string to something like this: "(302)-251-3240", I want to add the partheses at index 0, how do I do it?

In Objective-C, it is done this way:

 NSMutableString *stringts = "3022513240";
 [stringts insertString:@"(" atIndex:0];

How to do it in Swift?

  • did yo try this? stringts.insert("(", atIndex: 0) – Dharmesh Nov 24 '14 at 11:34
  • it gives me an error: Type: 'String.index' does not conform to protocol 'IntegerLiteralConvertible' – lakesh Nov 24 '14 at 11:45
29

If you are declaring it as NSMutableString then it is possible and you can do it this way:

let str: NSMutableString = "3022513240)"
str.insert("(", at: 0)
print(str)

The output is :

(3022513240)

EDIT:

If you want to add at starting:

var str = "3022513240)"
str.insert("(", at: str.startIndex)

If you want to add character at last index:

str.insert("(", at: str.endIndex)

And if you want to add at specific index:

str.insert("(", at: str.index(str.startIndex, offsetBy: 2))
  • 7
    You should not do that, because if your string contains Unicode characters you do not expect, you might be inserting stuff in the middle of grapheme clusters. Instead, look at how you are obtaining your indices and make them String.Index-friendly in order to design an Unicode-friendly flow... – Thomas Deniau Nov 24 '14 at 12:12
  • 1
    Edit the answer for swift 3 – fnc12 Jul 5 '17 at 8:24
  • The question was about Swift which has its own String. Do you for example answer each objective-c question with C code? Downvoted – Vyachaslav Gerchicov Jan 24 at 13:06
  • @VyachaslavGerchicov Answer updated!! – Dharmesh Jan 25 at 5:29
71

Swift 3

Use the native Swift approach:

var welcome = "hello"

welcome.insert("!", at: welcome.endIndex) // prints hello!
welcome.insert("!", at: welcome.startIndex) // prints !hello
welcome.insert("!", at: welcome.index(before: welcome.endIndex)) // prints hell!o
welcome.insert("!", at: welcome.index(after: welcome.startIndex)) // prints h!ello
welcome.insert("!", at: welcome.index(welcome.startIndex, offsetBy: 3)) // prints hel!lo

If you are interested in learning more about Strings and performance, take a look at @Thomas Deniau's answer down below.

  • 2
    unable to use in swift 3 – Abhi Feb 13 '17 at 7:03
  • @Abhi Updated with improved examples in Swift 3 – Dan Beaulieu Feb 13 '17 at 16:01
6

var phone= "+9945555555"

var indx = phone.index(phone.startIndex,offsetBy: 4)

phone.insert("-", at: indx)

index = phone.index(phone.startIndex, offsetBy: 7)

phone.insert("-", at: indx)

//+994-55-55555

6
var myString = "hell"
let index = 4
let character = "o" as Character

myString.insert(
    character, at:
    myString.index(myString.startIndex, offsetBy: index)
)

print(myString) // "hello"

Careful: make sure that index is bigger than or equal to the size of the string, otherwise you'll get a crash.

  • Why is this an accepted answer? what is "advance"? This is not a working code – breakline Aug 12 '18 at 6:34
  • @breakline fixed. – Eric Aug 14 '18 at 13:14
4

To Display 10 digit phone number into USA Number format (###) ###-#### SWIFT 3

func arrangeUSFormat(strPhone : String)-> String {
    var strUpdated = strPhone
    if strPhone.characters.count == 10 {
        strUpdated.insert("(", at: strUpdated.startIndex)
        strUpdated.insert(")", at: strUpdated.index(strUpdated.startIndex, offsetBy: 4))
        strUpdated.insert(" ", at: strUpdated.index(strUpdated.startIndex, offsetBy: 5))
        strUpdated.insert("-", at: strUpdated.index(strUpdated.startIndex, offsetBy: 9))
    }
    return strUpdated
}
3

You can't, because in Swift string indices (String.Index) is defined in terms of Unicode grapheme clusters, so that it handles all the Unicode stuff nicely. So you cannot construct a String.Index from an index directly. You can use advance(theString.startIndex, 3) to look at the clusters making up the string and compute the index corresponding to the third cluster, but caution, this is an O(N) operation.

In your case, it's probably easier to use a string replacement operation.

Check out this blog post for more details.

3

Maybe this extension for Swift 4 will help:

extension String {
  mutating func insert(string:String,ind:Int) {
    self.insert(contentsOf: string, at:self.index(self.startIndex, offsetBy: ind) )
  }
}
  • Please explain your lines of code so other users can understand its functionality. Thanks! – Ignacio Ara May 4 '18 at 9:58
  • What he (@IgnacioAra) said ! ^^^^^ Plus.. the code you provided is wrong. See my answer below. – Dilapidus Feb 28 at 18:31
  • @IgnacioAra I've just replaced String.Index parameter of native insert function into Integer, for easy to use. – Dilmurat Abduqayyum Mar 1 at 7:41
  • @Dilapidus I've tested my code, there is no any issue. It works as I wish. What's wrong? I've seen your answer there is no any difference between yours and mine. – Dilmurat Abduqayyum Mar 1 at 7:41
  • 1
    Hi @DilmuratAbduqayyum you are indexing against the string passed in, not self. For me your code barfed immediately since ind is almost always bigger than the length of the string passed in. Notice I replaced string in string.index and string.startIndex with self. – Dilapidus Mar 2 at 16:40
2

You can't use in below Swift 2.0 because String stopped being a collection in Swift 2.0. but in Swift 3 / 4 is no longer necessary now that String is a Collection again. Use native approach of String,Collection.

var stringts:String = "3022513240"
let indexItem = stringts.index(stringts.endIndex, offsetBy: 0)
stringts.insert("0", at: indexItem)
print(stringts) // 30225132400
1

Swift 4.2 version of Dilmurat's answer (with code fixes)

extension String {
    mutating func insert(string:String,ind:Int) {
        self.insert(contentsOf: string, at:self.index(self.startIndex, offsetBy: ind) )
    }
}

Notice if you will that the index must be against the string you are inserting into (self) and not the string you are providing.

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