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I have a simple piece of Scala code. I loop sequentially through a List of Strings, and I want to count the occurrence of each String which I collect as tuples (String, Int) in the list r. The part in the main function should remain (so no groupBy or something). My question is about the update function:

right now I do a find first, and then add a new tuple to r if it doesn't exist. If it does exist, I loop through r and update the counter for the matching String.

Can the update function be modified so that it is more efficient? Can r be updated in a single iteration (adding if it doesn't exist, updating the counter if it does exist)?

Thanks

var r = List[(String, Int)]() // (string, count)

def update(s: String, l: List[(String, Int)]) : List[(String, Int)] = {
  if (r.find(a => a._1  == s) == None) {
    (s, 1) :: r // add a new item if it does not exist
  } else {
    for (b <- l) yield {
      if (b._1 == s) {
        (b._1, b._2 + 1) // update counter if exists
      } else {
        b // just yield if no match
      }
    }
  }
}

def main(args : Array[String]) : Unit = {
  val l = "A" :: "B" :: "A" :: "C" :: "A" :: "B" :: Nil

  for (s <- l) r = update(s, r)

  r foreach println
}
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1  
I do not understand exactly what your objection to groupBy is. It seems to say that the code in the main definition may not be changed by the solution; It might also mean that l may not be changed. So, could you please clarify? –  Daniel C. Sobral Nov 25 '10 at 10:49
    
mainly because I also want to work with lazy collections. Or can you also use groupBy for lazy collections and Streams (or Source.getLines)? If so, please give me an example. –  Jan Willem Tulp Nov 25 '10 at 13:13

4 Answers 4

up vote 4 down vote accepted

If you don't want to use groupBy or work with lazy collections (Streams), this could be the way to go:

ss.foldLeft(Map[String, Int]())((m, s) => m + (s -> (m.getOrElse(s, 0) + 1)))
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1  
That does return a Map instead of a List, though, and is not a stand-in replacement for update (even though I see @JanWillem has accepted your answer :). –  Daniel C. Sobral Nov 25 '10 at 11:04
    
That's true, return type is different, but it does comply with the goal I want to reach: "...I want to count the occurrence of each String..." –  Jan Willem Tulp Nov 25 '10 at 13:16

I suggest you go for the functional style and use the power of Scala's collections:

ss.groupBy(identity).mapValues(_.size)
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2  
s => s is predefined as identity –  Landei Nov 25 '10 at 9:45
    
mapValues instead? –  Daniel C. Sobral Nov 25 '10 at 10:44
4  
This solution comes up so often, it really should go in the core library. I'd call the method tally. –  Kevin Wright Nov 25 '10 at 12:18
    
+1 for mapValues. –  axel22 Nov 25 '10 at 14:04
    
I agree, this is a good solution, but I was looking for an alternative for groupBy, also to be used with lazy collections, so therefore I selected the other answer by Heiko. –  Jan Willem Tulp Nov 25 '10 at 14:31

Something like this also works:

val l = List("A","B","A","C","A","B")

l.foldLeft(Map[String,Int]()) {
  case (a: Map[String, Int], s: String) => {
    a + (s -> (1 + a.getOrElse(s, 0)))
  }
}

res3: scala.collection.immutable.Map[String,Int] = Map((A,3), (B,2), (C,1))
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Your present solution is horribly slow, mainly because of the choice of r as a List. But your iteration throughout the whole list in case of update can be improved on, at least. I'd write it like this

def update(s: String, l: List[(String, Int)]) : List[(String, Int)] = {
  l span (_._1 != s) match {
    case (before, (`s`, count) :: after) => before ::: (s, count + 1) :: after
    case _ => (s, 1) :: l
  }
}

Using span avoids having to search the list twice. Also, we just append after, without having to iterate through it again.

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Thanks! That's valuable feedback! –  Jan Willem Tulp Nov 25 '10 at 12:13

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