Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

99 scala problems has this question:

Pack consecutive duplicates of list elements into sublists. If a list contains repeated elements they should be placed in separate sublists.

Example:
scala> pack(List('a, 'a, 'a, 'a, 'b, 'c, 'c, 'a, 'a, 'd, 'e, 'e, 'e, 'e))
res0: List[List[Symbol]] = List(List('a, 'a, 'a, 'a), List('b), List('c, 'c), List('a, 'a), List('d), List('e, 'e, 'e, 'e))

I have an understanding of the tail-recursive way to solve the above given problem. I was wondering if there was a way to accomplish the above using scanLeft where the intermediate result is the list of common elements?

share|improve this question
up vote 1 down vote accepted

Here's a solution using foldLeft:

def pack[A](l:List[A]): List[List[A]] = l match {
  case head :: tail =>
    tail.foldLeft(List(List(head))) { (collector:List[List[A]], elem:A) =>
      if (collector.head.head == elem)
        (elem +: collector.head) +: collector.tail
      else
        List(elem) +: collector
    }.reverse
  case _ => List.empty
}

This only works for Lists. A better solution would probably use MultiSets, although finding a Scala implementation is difficult.

share|improve this answer

A concise but unoptimized version could look like this:

val l = List('a, 'a, 'a, 'a, 'b, 'c, 'c, 'a, 'a, 'd, 'e, 'e, 'e, 'e)
for (i <-l.distinct) yield l.filter(_ == i)

res0: List[List[Symbol]] = List(List('a, 'a, 'a, 'a, 'a, 'a), List('b), List('c, 'c), List('d), List('e, 'e, 'e, 'e))
share|improve this answer
    
Your result is not expected. The result should be List(List('a, 'a, 'a, 'a), List('b), List('c, 'c), List('a, 'a), List('d), List('e, 'e, 'e, 'e)) – Dihui Bao Nov 2 '14 at 3:27

No, scanLeft is not the appropriate method in this case. scanLeft will yield a collection of results with one element for each value in your list, plus the initial value you provide. So for example using scanLeft on List(1,2,3,4) will always yield a result with 5 elements

e.g.

scala> List(1,2,3,4).scanLeft(">"){case (last, x) => last + x}
res7: List[String] = List(>, >1, >12, >123, >1234)
share|improve this answer

scanLeft is useful to calculate prefix sum, which is not the case in the problem. You may try to combine it with other calls, but I don't think it is the good way of solving the problem.

foldLeft seems to be more useful for this task.

def pack[T](list: Seq[T]) = list.foldLeft(new ArrayBuffer[ArrayBuffer[T]])((ret, el) => {
    if (ret.isEmpty || ret.last.head != el)
      ret.append(new ArrayBuffer[T])
    ret.last.append(el)
    ret
  })

Two simple tasks was left for curious reader:

  • Make it purely functional using List prepending
  • Make the right return type
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.