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I'm trying to 'group' a string into segments, I guess this example would explain it more succintly

scala> val str: String = "aaaabbcddeeeeeeffg"
... (do something)
res0: List("aaaa","bb","c","dd","eeeee","ff","g")

I can thnk of a few ways to do this in an imperative style (with vars and stepping through the string to find groups) but I was wondering if any better functional solution could be attained? I've been looking through the Scala API but there doesn't seem to be something that fits my needs.

Any help would be appreciated

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It would be helpful if you would mention (and tag) the language(s) you want to work in! –  Colin Fine Mar 9 '11 at 15:35
the post is tagged? Might have taken a while to appear on the SO servers or something –  djhworld Mar 9 '11 at 15:46
Do you expect to match aaabbccddeeffffffhhhhhiiiiijjjj etc also? Or just those 7 chars? –  OscarRyz Mar 9 '11 at 16:12
Are builders functional enough for you? The are, of course, mutable in nature, but should be trustworthy since part of standard library. –  Raphael Mar 9 '11 at 18:45
I have seen this question, for Scala alone, two or three times already. –  Daniel C. Sobral Mar 9 '11 at 20:05

7 Answers 7

up vote 17 down vote accepted

You can split the string recursively with span:

def s(x : String) : List[String] = if(x.size == 0) Nil else {
    val (l,r) = x.span(_ == x(0))
    l :: s(r) 

Tail recursive:

@annotation.tailrec def s(x : String, y : List[String] = Nil) : List[String] = {
    if(x.size == 0) y.reverse 
    else {
        val (l,r) = x.span(_ == x(0))
        s(r, l :: y)
share|improve this answer
Might the conditional might be cleare expressed as a match? –  The Archetypal Paul Mar 9 '11 at 16:41
@Paul - No, I don't think so. The match would take more space, and a check against size is pretty clear. @Thomas - See my comment to Martin Ring's answer. I like this answer, but I do want to point out the drawbacks of this style of method. –  Rex Kerr Mar 9 '11 at 17:37
@Paul You could implement it as Martin has done it. I actually did this but it was not more readable. –  Thomas Jung Mar 9 '11 at 18:00
Thanks for your reply, I don't really have much experience with the span method so reading something like this has given me some great insight into your thought process behind the solution for this question, so thanks! –  djhworld Mar 9 '11 at 23:10
Any ideas how to make this tail recursive? I'm getting stack overflow errors with large inputs –  djhworld Mar 10 '11 at 14:58

Seems that all other answers are very concentrated on collection operations. But pure string + regex solution is much simpler:

str split """(?<=(\w))(?!\1)""" toList

In this regex I use positive lookbehind and negative lookahead for the captured char

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+1 - very nice! I always forget about the amazing power of regexes. –  Rex Kerr Mar 9 '11 at 19:13
And the amazing unreadability. Can you really say you understand that one without careful study. –  The Archetypal Paul Mar 9 '11 at 19:32
Is this "functional"? @Paul That's what comments are for –  Raphael Mar 9 '11 at 20:02
@marcello, but I am familiar with regexps. Why did you assume I am not? I think this use counts as advanced regexp use (lookahead and lookbehind) and will leave most readers behind. I would claim Martin's solution is more comprehensible to more readers. –  The Archetypal Paul Mar 10 '11 at 16:51
@Paul: I agree, but consider this: If you used the above code for real, you would put it in a method, give that a nice name splitByGroup, document and unit-test it. The guy who wants to split strings does not have to understand the regex, as long as the implementer of splitByGroup does. –  Raphael Mar 10 '11 at 17:50
def group(s: String): List[String] = s match {
  case "" => Nil
  case s  => s.takeWhile(_==s.head) :: group(s.dropWhile(_==s.head))

Edit: Tail recursive version:

def group(s: String, result: List[String] = Nil): List[String] = s match {
  case "" => result reverse
  case s  => group(s.dropWhile(_==s.head), s.takeWhile(_==s.head) :: result)

can be used just like the other because the second parameter has a default value and thus doesnt have to be supplied.

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@Rex Kerr why would it be O(n^2)? I think there are 2 comparison operations for each character of the string which is less then optimal (better solution is to use span like Thomas suggested), but that still is O(n) or not? Am i missing something? –  Martin Ring Mar 9 '11 at 17:42
@Rex I'd say you consume every character once (okay actually twice in this implementation). This would be O(n). (Yes, you could make it tail-recursive. This is an exercise not a problem.) –  Thomas Jung Mar 9 '11 at 17:56
@Martin, @Thomas - If every character is different, you generate n strings of average length n/2, for O(n^2) work total. –  Rex Kerr Mar 9 '11 at 19:11
@Rex Creating a substring of length k is O(1) and not O(k). (See here) –  Martin Ring Mar 9 '11 at 19:41
@djhworld See my edit for tail recursive version. –  Martin Ring Mar 10 '11 at 15:55

Make it one-liner:

scala>  val str = "aaaabbcddddeeeeefff"
str: java.lang.String = aaaabbcddddeeeeefff

scala> str.groupBy(identity).map(_._2)
res: scala.collection.immutable.Iterable[String] = List(eeeee, fff, aaaa, bb, c, dddd)


As @Paul mentioned about the order here is updated version:

scala> str.groupBy(identity).toList.sortBy(_._1).map(_._2)
res: List[String] = List(aaaa, bb, c, dddd, eeeee, fff)
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I think it's clear from the OP's example that order of the segments matters. –  The Archetypal Paul Mar 9 '11 at 16:44
@Paul The order wasn't mentioned by anyway I updated the code –  Rustem Suniev Mar 9 '11 at 16:57
this would result in List(bb, aaa) for "aabba"... wouldnt it? Dont know if that is what djhworld wanted. –  Martin Ring Mar 9 '11 at 17:26
@Martin Ring - Well yeah it will be List(aaa,bb). I guess the way the question was asked it can be interpreted in many ways. –  Rustem Suniev Mar 9 '11 at 17:40
I'm a bit confused, where does this 'identity' thing come from? Thanks for your answer but it's not quite what I'm after, I'm interesting in the specific order the string comes in in the first place –  djhworld Mar 9 '11 at 23:06

You could use some helper functions like this:

val str = "aaaabbcddddeeeeefff"

def zame(chars:List[Char]) = chars.partition(_==chars.head)

def q(chars:List[Char]):List[List[Char]] = chars match {
    case Nil => Nil
    case rest =>
        val (thesame,others) = zame(rest)
        thesame :: q(others)

q(str.toList) map (_.mkString)

This should do the trick, right? No doubt it can be cleaned up into one-liners even further

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Partition doesn't do what is wanted, I think. Given aaabbbbbaa it will return aaaaa bbbbb –  The Archetypal Paul Mar 9 '11 at 16:43
partition splits the list in two, so splitting "aaaabbbbaaa".toList like this will yield "aaaa","bbbbaaaaa" and then the same function is applied for the remainder of the list in a recursive fashion. I think it does do what you need –  Anne Mar 10 '11 at 8:36
Partition does not split the list at a point. It collects all the elements that match or don't match the predicate scala> "aaabbbbaaa" partition (_ == 'a') res0: (String, String) = (aaaaaa,bbbb) scala> –  The Archetypal Paul Mar 10 '11 at 9:30
The function you are looking for is span (see Thomas' post) –  Martin Ring Mar 11 '11 at 7:53
Yes. You are right, partition is wrong here. Didn't read through the documentation well enough. Thx –  Anne Mar 11 '11 at 11:37

A functional* solution using fold:

def group(s : String) : Seq[String] = {
  s.tail.foldLeft(Seq(s.head.toString)) { case (carry, elem) =>
    if ( carry.last(0) == elem ) {
      carry.init :+ (carry.last + elem)
    else {
      carry :+ elem.toString

There is a lot of cost hidden in all those sequence operations performed on strings (via implicit conversion). I guess the real complexity heavily depends on the kind of Seq strings are converted to.

(*) Afaik all/most operations in the collection library depend in iterators, an imho inherently unfunctional concept. But the code looks functional, at least.

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Edit: Have to read more carefully. Below is no functional code.

Sometimes, a little mutable state helps:

def group(s : String) = {
  var tmp = ""
  val b = Seq.newBuilder[String]

  s.foreach { c =>
    if ( tmp != "" && tmp.head != c ) {
      b += tmp
      tmp = ""

    tmp += c
  b += tmp


Runtime O(n) (if segments have at most constant length) and tmp.+= probably creates the most overhead. Use a string builder instead for strict runtime in O(n).

> Seq[String] = List(aaaa, bb, c, dd, eeeeee, ff, g)
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If there was some method on collection.mutable.Seq that actually modified the sequence, you could use a double-linked-list in tmp and be in O(n) time and memory. –  Raphael Mar 9 '11 at 18:42

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