17

I am trying to remove all non alphanumeric characters from a string.

I tried using replace() with a regex as followed:

var answer = answerEditText.text.toString()
Log.d("debug", answer)
answer = answer.replace("[^A-Za-z0-9 ]", "").toLowerCase()
Log.d("debug", answer)

D/debug: Test. ,replace

D/debug: test. ,replace

Why are the punctuation characters still present? How to get only the alphanumeric characters?

  • I think you want replaceAll? – smarx Aug 29 '17 at 2:13
  • String.replace searches for a literal string, while String.replaceAll searches for a regular expression. – smarx Aug 29 '17 at 2:13
  • You have to create a regex object. Otherwise you're just replacing occurrences of the literal string [^A-Za-z0-9 ] which is obviously not in your input. – hasen Aug 29 '17 at 2:14
  • 5
    Although my suggestion (replaceAll) would work in Java, Kotlin has its own String class, which does not contain a definition for replaceAll. So please disregard my suggestion. – smarx Aug 29 '17 at 2:24
36

You need to create a regex object

var answer = "Test. ,replace"
println(answer)
answer = answer.replace("[^A-Za-z0-9 ]", "") // doesn't work
println(answer)
val re = Regex("[^A-Za-z0-9 ]")
answer = re.replace(answer, "") // works
println(answer)

Try it online: https://try.kotlinlang.org/#/UserProjects/ttqm0r6lisi743f2dltveid1u9/2olerk6jvb10l03q6bkk1lapjn

  • 3
    @AbhijitSarkar No it's not. – hasen Aug 29 '17 at 2:20
  • 1
    ok, whatever floats your boat. – Abhijit Sarkar Aug 29 '17 at 2:20
  • @AbhijitSarkar I'm open to be persuaded but it just seems like you made that up. – hasen Aug 29 '17 at 2:21
  • 1
    Going with val answer = answerEditText.text.toString().replace("[^A-Za-z0-9 ]".toRegex(), "").toLowerCase() – Distwo Aug 29 '17 at 2:23
  • Alternatively (?i)[^\\w\\d ] - case insensitive checks using \w and \d instead of manually typing the matches – Zoe May 10 '18 at 10:00
4

I find this to be much more succinct and maintainable. Could be that the previous answers were made before these extensions were added?

val alphaNumericString = someString.toCharArray()
   .filter { it.isLetterOrDigit() }
   .joinToString(separator = "")
  • I'd be interested in seeing what the performance of this was once reduced to bytecode – Tom Jun 17 at 23:13
3

The standard library of Kotlin is beautiful like this. Just use String.filter combined with Char.isLetterOrDigit, like this:

val stringToFilter = "A1.2-b3_4C"
val stringWithOnlyDigits = stringToFilter.filter { it.isLetterOrDigit() }
println(stringWithOnlyDigits) //Prints out "A12b34C"
0

You can try without regex, for example:

val ranges = ('0'..'9') + ('a'..'z') + ('A'..'Z')
val escaped = "1! at __ 2? at 345..0986 ZOk".filter { it in ranges }

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