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I have a Map[String,Seq[String]] and want to basically covert it to a Map[String,String] since I know the sequence will only have one value.

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The operation is called "map" (not to be confused with the Map ADT). What has been tried? – user166390 Sep 18 '12 at 17:35
Looks like someone asked a very similar question back in january:… – dhg Sep 18 '12 at 18:36
@dhg ha that was me! – chiappone Sep 18 '12 at 18:37

4 Answers 4

up vote 4 down vote accepted

Someone else already mentioned mapValues, but if I were you I would do it like this:

scala> val m = Map(1 -> Seq(1), 2 -> Seq(2))
m: scala.collection.immutable.Map[Int,Seq[Int]] = Map(1 -> List(1), 2 -> List(2))

scala> { case (k,Seq(v)) => (k,v) }
res0: scala.collection.immutable.Map[Int,Int] = Map(1 -> 1, 2 -> 2)

Two reasons:

  1. The mapValues method produces a view of the result Map, meaning that the function will be recomputed every time you access an element. Unless you plan on accessing each element exactly once, or you only plan on accessing a very small percentage of them, you don't want that recomputation to take place.

  2. Using a case with (k,Seq(v)) ensures that an exception will be thrown if the function ever sees a Seq that doesn't contain exactly one element. Using _(0) or _.head will throw an exception if there are zero elements, but will not complain if you had more than one, which will likely result in mysterious bugs later on when things go missing without errors.

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Yet another suggestion:

m mapValues { _.mkString }

This one's agnostic to whether the Seq has multiple elements -- it'll just concatenate all the strings together. If you're concerned about the recomputation of each value, you can make it happen up-front:

(m mapValues { _.mkString }).view.force
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You can use mapValues().

scala> Map("a" -> Seq("aaa"), "b" -> Seq("bbb"))
res0: scala.collection.immutable.Map[java.lang.String,Seq[java.lang.String]] = M
ap(a -> List(aaa), b -> List(bbb))

scala> res0.mapValues(_(0))
res1: scala.collection.immutable.Map[java.lang.String,java.lang.String] = Map(a
-> aaa, b -> bbb)
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It's idiomatic to write .head instead of (0) – om-nom-nom Sep 18 '12 at 17:47

I think I got it by doing the following:

mymap.flatMap(x => Map(x._1 -> x._2.head))
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This is a start. Consider putting it in the post itself. However it can be done simpler and more efficiently with a normal map (or other specialized function). – user166390 Sep 18 '12 at 17:36

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