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I've got a simple recursive function to convert a list of booleans to a string:

def boolsToString(lst: List[Boolean]): String = lst match {
    case Nil => ""
    case x::xs => x match {
      case false => "0" + boolsToString(xs)
      case true => "1" + boolsToString(xs)
    }
  }

This works, but I don't like the repetition of boolsToString. I'd like to do the string concatenation just once (after the case) :

  def boolsToString2(lst: List[Boolean]): String = lst match {
    case Nil => ""
    case x::xs => x match {
      case false => "0"
      case true => "1"
    } + boolsToString2(xs)
  }

but this is rejected by the Scala compiler: "';' expected but identifier found."

Is there another way to do the string concatenation just once, after the case?

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3 Answers 3

up vote 3 down vote accepted

How about:

def boolsToString(lst: List[Boolean]): String = lst match {
    case Nil => ""
    case x::xs => (if (x) "1" else "0") + boolsToString(xs)
  }
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Short + very elegant. Nice, thanks! –  Frank Schmitt Nov 16 '13 at 7:51

No need to reinvent the wheel. Iterables already have a method for joining items into a string, called mkString:

def boolsToString(lst: List[Boolean]) =
  lst.map(if(_) "1" else "0").mkString("")
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I figured it out; the trick to get the original version working is to put extra parentheses around the body of the case:

def boolsToString2(lst: List[Boolean]): String = lst match {
    case Nil => ""
    case x::xs => (x match {
      case false => "0"
      case true => "1"
    }) + boolsToString2(xs)
}

But @Shadowlands' answer is so much nicer :-)

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