Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm looking for a Scala implementation of Haskell's groupBy.

The behavior should be like this:

isD :: Char -> Bool
isD c = elem c "123456789-_ "

groupBy (\a b -> isD a == isD b) "this is a line with 0123344334343434343434-343 3345"
["this"," ","is"," ","a"," ","line"," ","with"," 0123344334343434343434-343 3345"]

I tried the Scala groupBy function, however it only takes a function of one argument, instead of Haskell's 2. I also looked at partition, however it only returns a tuple.

The function I'm looking for should group each consecutive element matching a predicate.

share|improve this question
1  
This is nontrivial, but the answer already exists (for arbitrary types, including strings) as an example used to answer another question: stackoverflow.com/questions/5410846 (Note that the method is called groupedWhile.) –  Rex Kerr Nov 24 '11 at 20:21
    
thanks for pointing this out, obviously not the term I searched for ;) –  Sander Nov 24 '11 at 21:08
    
@hammar thanks for the pointer. Removed the answer and moved it to a separate one below. –  Sander Nov 25 '11 at 10:38

4 Answers 4

up vote 2 down vote accepted

Questions like this seem to come up quite often, which is a good indication IMO that Rex Kerr's groupedWhile method should be included in the standard collections library. However if you don't want to copy / paste that into your project...

I like your recursive solution, but it doesn't actually output the right thing (i.e. Strings), so here's how I'd change it:

def groupBy(s: String)(f: (Char, Char) => Boolean): List[String] = s match {
  case "" => Nil
  case x => 
    val (same, rest) = x span (i => f(x.head, i))
    same :: groupBy(rest)(f)
}

Then, take your function and try it in the REPL:

val isD = (x: Char) => "123456789-_ " contains x
groupBy("this is a line with 0123344334343434343434-343 3345")(isD(_) == isD(_))

The result is a List[String], which is presumably what you really wanted.

share|improve this answer
    
nice use of span! I like it! –  Sander Nov 25 '11 at 10:40

Used this for now, thanks to the answers:

def groupByS(eq: (Char,Char) => Boolean, list: List[Char]): List[List[Char]] = {
    list match {
    case head :: tail => {
      val newHead = head :: tail.takeWhile(eq(head,_))
      newHead :: groupByS(eq, tail.dropWhile(eq(head,_)))
    }
    case nil => List.empty
  }
}

this can probably be improved upon ;)

share|improve this answer

It's surely can't be too difficult to translate the Haskell version into Scala. Here's the Haskell definition of groupBy. It uses span; I don't know offhand whether there's an equivalent to span in Scala or whether you'll need to translate the Haskell definition of span as well.

share|improve this answer
    
There is a Scala version of span, but it is hard to keep all the types straight in the general case, due to the differences between the Haskell and Scala type systems. –  Rex Kerr Nov 24 '11 at 20:24
    
Thanks for the answers. I've hacked up something that's on its way to working for this specific case. –  Sander Nov 24 '11 at 21:07

My version, just messing around -- not too sure about it. I know Haskell better than Scala but trying to learn Scala:

object GroupByTest extends App {    
  val ds = Set('0', '1', '2', '3', '4', '5', '6', '7', '8', '9', '-', '_', ' ')

  def isD(d: Char) = ds contains d

  def hgroupBy[A](op: A => (A => Boolean), a: List[A]): List[List[A]] = 
    a match {
      case Nil => List.empty
      case x :: xs =>
        val t = xs span op(x)         
        (x :: t._1) :: hgroupBy(op, t._2)        
    }

  val lambda: Char => Char => Boolean = x => y => isD(x) == isD(y)

  println(hgroupBy(lambda, "this is a line with 0123344334343434343434-343 3345".toList))
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.