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I have a Seq containing objects of a class that looks like this:

class A (val key: Int, ...)

Now I want to convert this Seq to a Map, using the key value of each object as the key, and the object itself as the value. So:

val seq: Seq[A] = ...
val map: Map[Int, A] = ... // How to convert seq to map?

How can I does this efficiently and in an elegant way in Scala 2.8?

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3 Answers 3

up vote 14 down vote accepted

Map over your Seq and produce a sequence of tuples. Then use those tuples to create a Map. Works in all versions of Scala.

val map = Map(seq map { a => a.key -> a }: _*)
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2  
Using breakOut as Seth Tisue shows in another answer can make it more efficient by avoiding creating a temporary sequence of tuples. –  Jesper Jun 1 '10 at 11:54

Since 2.8 Scala has had .toMap, so:

val map = seq.map(a => a.key -> a).toMap

or if you're gung ho about avoiding constructing an intermediate sequence of tuples:

val map: Map[Int, A] = seq.map(a => a.key -> a)(collection.breakOut)

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Thanks. I've seen the breakOut thing before but I don't yet know what it is. Time to learn something new again. –  Jesper May 28 '10 at 5:10
1  
Found a good explanation of breakOut here: stackoverflow.com/questions/1715681/scala-2-8-breakout/… –  Jesper Jun 1 '10 at 11:49
    
Why is it that val map = Seq(1,2,3).map(a => a -> a)(collection.breakOut) is actually of type Vector? map: scala.collection.immutable.IndexedSeq[(Int, Int)] = Vector((1,1), (2,2), (3,3)) –  simou Feb 28 at 22:43
1  
I'm not sure offhand. Maybe ask it as a new question? Also see stackoverflow.com/a/1716558/86485 –  Seth Tisue Mar 1 at 3:45

One more 2.8 variation, for good measure, also efficient:

scala> case class A(key: Int, x: Int)
defined class A

scala> val l = List(A(1, 2), A(1, 3), A(2, 1))
l: List[A] = List(A(1,2), A(1,3), A(2,1))

scala> val m: Map[Int, A] = (l, l).zipped.map(_.key -> _)(collection.breakOut)
m: Map[Int,A] = Map((1,A(1,3)), (2,A(2,1)))

Note that if you have duplicate keys, you'll discard some of them during Map creation! You could use groupBy to create a map where each value is a sequence:

scala> l.groupBy(_.key)
res1: scala.collection.Map[Int,List[A]] = Map((1,List(A(1,2), A(1,3))), (2,List(A(2,1))))
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