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Having

val a: IndexedSeq[String] = Array("one", "two", "three")

def f(s: String): Int = s match {
    case "one" => 1; case "two" => 2; case "three" => 3;
    case _ => throw new IllegalArgumentException
}

how do I best derive

val m: Map[String, Int] = Map("one" -> 1, "two" -> 2, "three" -> 3)

assuming I don't mind introducing a proxy function to return key-value pairs as tuples if this would make a better solution.

PS: I am actually interested in how to map a collection to a collection of a different desired type at all, but have chosen this example as a particular case to illustrate and make the question more specific. This means that the particular case (IndexedSeq to Map) solution is acceptable, but more generic commentaries are welcome. Right now I use foreach populating a mutable map buffer for such cases, but this seems too far from the true Scala functional way IMHO. I find myself using too many of foreach and mutable buffers which makes me nervous and that's why I ask all these questions about mapping.

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up vote 2 down vote accepted

This is more efficient but more complicated to fully understand. This avoids the intermediate IndexedSeq[(String, Int)] created by map. Just having fun ;-)

val result: Map[String, Int] = a.map(i => (i, f(i)))(scala.collection.breakOut)

See this SO post: scala 2.8 breakout

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This is weird: if I don't specify the val result type explicitly, it gets IndexedSeq[(String, Int)], but if I do - it works as desired. I am going to study about the bereakOut, thank you for linking to that question. – Ivan Mar 15 '12 at 23:42

And what's wrong with:

a map {i => (i, f(i))} toMap

producing:

scala.collection.immutable.Map[String,Int] = Map(one -> 1, two -> 2, three -> 3)
share|improve this answer
    
Looks like nothing, I was just doing it a bit wrong. Thanks. – Ivan Mar 15 '12 at 22:56

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