17

I have a string such as "00123456" that I would like to have in an string "123456", with the leading zeros removed.

I've found several examples for Objective-C but not sure best way to do so with Swift.

1
  • Good question! Moreover, to check this you have to testify with CPU time in async.main queue Commented Jul 19, 2018 at 13:19

4 Answers 4

46

You can do that with Regular Expression

let string = "00123456"
let trimmedString = string.replacingOccurrences(of: "^0+", with: "", options: .regularExpression)

The benefit is no double conversion and no force unwrapping.

Update:

This works also with negative numbers

let trimmedString = string.replacingOccurrences(of: #"^([+-])?0+"#, with: "$1", options: .regularExpression)

or with Swift Regex (available in Swift 5.7+)

let trimmedString = string.replacing(/^([+-])?0+/, with: {$0.output.1 ?? ""})
2
  • 1
    This should be an excepted answer. Commented May 13, 2022 at 3:56
  • Does not work if the number is negative
    – ratkevich
    Commented Oct 25, 2023 at 13:56
20

Just convert the string to an int and then back to a string again. It will remove the leading zeros.

let numberString = "00123456"
let numberAsInt = Int(numberString)
let backToString = "\(numberAsInt!)"

Result: "123456"

5
  • 2
    Be careful here with the forced unwrap: make sure that the String is not empty ("") i.e. with a guard statement. Otherwise this code will crash.
    – Blackvenom
    Commented Mar 6, 2018 at 11:41
  • In this case the string is defined so it will never be nil. But yes, if the string is dynamic you would have to handle it to guard for a nil value.
    – livtay
    Commented Mar 6, 2018 at 14:01
  • 2
    if the resulting number is too big this will fail.
    – jimijon
    Commented Dec 17, 2018 at 13:36
  • 2
    why is this marked correct, it's obviously not the right type safe decision. Commented Jul 27, 2019 at 0:47
  • Be careful with this implementation. I used it for a production code and it crushed because some user entered a number that exceeds the Int64 limit. Int(numberString) was nil in this case, and force-unwrapping caused a crash Commented May 13, 2022 at 3:53
0

First, create Validator then use it in any class. This is an example and it works :) This is swift 4.0

class PhoneNumberExcludeZeroValidator {
    func validate(_ value: String) -> String {
        var subscriberNumber = value
        let prefixCase = "0"
        if subscriberNumber.hasPrefix(prefixCase) {
            subscriberNumber.remove(at: subscriberNumber.startIndex)
        }
        return subscriberNumber
    }
}

example for usage:

if let countryCallingCode = countryCallingCodeTextField.text, var subscriberNumber = phoneNumberTextField.text {

     subscriberNumber = PhoneNumberExcludeZeroValidator().validate(subscriberNumber)

          let phoneNumber = "\(countryCallingCode)\(subscriberNumber)"
          registerUserWith(phoneNumber: phoneNumber)
}
1
  • 2
    This only removes first 0. If someone enters 0011234 then it will be like: 011234 Commented Dec 18, 2019 at 13:23
-2
let number = "\(String(describing: Int(text)!))"
1
  • 1
    Why not simply "\(Int(text)!)" or String(Int(text)!)? Creating a string from a string with String Interpolation is redundant.
    – vadian
    Commented Aug 20, 2018 at 7:20

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