I want to replace 5 different chars to 5 different chars, and the current way im doing it looks stupid, so what would be a better way to do this?

currently:

 private def fixChars(str: String): String = {
    str.replaceAll("Ø","O")
    str.replaceAll("ø", "o")
    str.replaceAll("Ž","Z")
    str.replaceAll("ž","z")
    str.replaceAll("Ö","O")
}

?

  • 4
    Please define "better". Your code looks fine, except that you ignore the result of the replaceAll call. – Seelenvirtuose Sep 20 '16 at 11:35
  • @Seelenvirtuose what do you mean " ignore the result"? – Joe Sep 20 '16 at 11:39
  • 1
    The method replaceAll returns a result that contains the modified string. It does not modify the original string. – Seelenvirtuose Sep 20 '16 at 11:40
  • Note the important hint from @Seelenvirtuose. In addition, replaceAll is for regular expressions, for Strings just use replace. – calloc_org Aug 1 at 10:15
up vote 4 down vote accepted

I believe this approach will work for you and takes only one iteration to substitute all characters:

private def fixChars(str: String): String = {
  val substitutions = Map(
    'Ø' -> 'O',
    'ø' -> 'o',
    ...
  )
  str.map(c => substitutions.getOrElse(c, c))
}

Well, you could wrap the characters replacements into a map:

def fixChars(str: String): String = {
    val repl = Map(
      "Ø" -> "O",
      "ø" -> "o",
      "Ž" -> "Z",
      "ž" -> "z",
      "Ö" -> "O"
    )
    repl.foldLeft(str) { case (cur, (from, to)) => cur.replaceAll(from, to) } 
}

Not sure if it looks THAT better.

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