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I have the following 2 lists:

val a = List(List(1,2,3),List(2,3,4),List(3,4,5))
val b = List(1,2,3)

I want to filter elements in a that contain an element in b and add them to a Map like so:

Map(1 -> List(List(1, 2, 3)), 2 -> List(List(1, 2, 3), List(2, 3, 4)), 3 -> List(List(1, 2, 3), List(2, 3, 4), List(3, 4, 5)))

I tried the following:

b.map(x => Map( x -> a.filter(y => y contains x)))

but it gives me

List(Map(1 -> List(List(1, 2, 3))), Map(2 -> List(List(1, 2, 3), List(2, 3, 4))), Map(3 -> List(List(1, 2, 3), List(2, 3, 4), List(3, 4, 5))))

How do I flatten this into a single Map? Is my approach wrong?

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2 Answers 2

up vote 3 down vote accepted

First, the answer:

Map(b.map(i => (i, a.filter(_.contains(i)))):_*)

As you can see, you were pretty close, but you were calling Map() (that is, Map.apply()) too 'early'. Rather, you should create a List of tuples first, since you can pass a sequence of tuples to Map.apply().

Update: As aztek says, this can be simplified:

b.map(i => (i, a.filter(_.contains(i)))).toMap
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2  
No need for Map.apply() here, there's a .toMap method, that converts a list of 2-tuples to a map. –  aztek Dec 22 '12 at 23:18

Alternatively, if parens make your eyes boggle,

scala> for (k <- b; c <- a; if c contains k) yield k -> c
res4: List[(Int, List[Int])] = List((1,List(1, 2, 3)), (2,List(1, 2, 3)), (2,List(2, 3, 4)), (3,List(1, 2, 3)), (3,List(2, 3, 4)), (3,List(3, 4, 5)))

scala> .groupBy(_._1)
res5: scala.collection.immutable.Map[Int,List[(Int, List[Int])]] = Map(2 -> List((2,List(1, 2, 3)), (2,List(2, 3, 4))), 1 -> List((1,List(1, 2, 3))), 3 -> List((3,List(1, 2, 3)), (3,List(2, 3, 4)), (3,List(3, 4, 5))))

scala> .mapValues(_.map(_._2))
res6: scala.collection.immutable.Map[Int,List[List[Int]]] = Map(2 -> List(List(1, 2, 3), List(2, 3, 4)), 1 -> List(List(1, 2, 3)), 3 -> List(List(1, 2, 3), List(2, 3, 4), List(3, 4, 5)))

Someone said recently that he often has to do this operation, namely flattening the values; now I wonder if this is what he meant.

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