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I was thinking about a nice way to convert a List of tuple with duplicate key [("a","b"),("c","d"),("a","f")] into map ("a" -> ["b", "f"], "c" -> ["d"]). Normally (in python), I'd create an empty map and for-loop over the list and check for duplicate key. But I am looking for something more scala-ish and clever solution here.

btw, actual type of key-value I use here is (Int, Node) and I want to turn into a map of (Int -> NodeSeq)

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2 Answers 2

up vote 21 down vote accepted

Group and then project:

scala> val x = List("a" -> "b", "c" -> "d", "a" -> "f")
//x: List[(java.lang.String, java.lang.String)] = List((a,b), (c,d), (a,f))
scala> x.groupBy(_._1).map { case (k,v) => (k,v.map(_._2))}
//res1: scala.collection.immutable.Map[java.lang.String,List[java.lang.String]] = Map(c -> List(d), a -> List(b, f))

More scalish way to use fold, in the way like there (skip map f step).

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Thanks, simple but works. I will look into your link later. –  Tg. Nov 4 '11 at 23:50

Here's another alternative:

x.groupBy(_._1).mapValues(_.map(_._2))
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This gives us a Map[String, SeqView[String,Seq[_]]]... is this intentional? –  Luigi Plinge Nov 5 '11 at 1:04
    
@LuigiPlinge A SeqView[String,Seq[_]] is also a Seq[String]. Still in hindsight I don't think that is worthwhile, so I removed the view. mapValues will do a view anyway on the values. –  Daniel C. Sobral Nov 5 '11 at 2:59
    
This did the job perfectly for my case (coursera homework): lazy val dictionaryByOccurrences: Map[Occurrences, List[Word]] = { val pairs = for (curWord <- dictionary) yield { val curWordOccurrences = wordOccurrences(curWord) (curWordOccurrences, curWord) } pairs.groupBy(._1).mapValues(.map(_._2)) } –  JasonG May 9 '13 at 2:14

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