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Learning Scala currently and needed to invert a Map to do some inverted value->key lookups. I was looking for a simple way to do this, but came up with only:

(Map() ++ origMap.map(kvp=>(kvp._2->kvp._1)))

Anybody have a more elegant approach?

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7 Answers 7

up vote 79 down vote accepted

Assuming values are unique, this works:

(Map() ++ origMap.map(_.swap))

On Scala 2.8, however, it's easier:

origMap.map(_.swap)

Being able to do that is part of the reason why Scala 2.8 has a new collection library.

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Mathematically, the mapping might not be ivertible, e.g., from Map[A,B], you can't get Map[B,A], but rather you get Map[B,Iterable[A]], because there might be different keys associated with same values. So, if you are interested in knowing all the keys, here's the code:

scala> Map(1 -> "a", 2 -> "b", 4 -> "b").groupBy(_._2).mapValues(_.map(_._1))
res0: Map[String,Iterable[Int]] = Map(b -> List(2, 4), a -> List(1))
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You can avoid the ._1 stuff while iterating in few ways.

Here's one way. This uses a partial function that covers the one and only case that matters for the map:

Map() ++ (origMap map {case (k,v) => (v,k)})

Here's another way:

import Function.tupled        
Map() ++ (origMap map tupled {(k,v) => (v,k)})

The map iteration calls a function with a two element tuple, and the anonymous function wants two parameters. Function.tupled makes the translation.

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In scala REPL:

scala> val m = Map(1 -> "one", 2 -> "two")
m: scala.collection.immutable.Map[Int,java.lang.String] = Map(1 -> one, 2 -> two)

scala> val reversedM = m map { case (k, v) => (v, k) }
reversedM: scala.collection.immutable.Map[java.lang.String,Int] = Map(one -> 1, two -> 2)

Note that duplicate values will be overwritten by the last addition to the map:

scala> val m = Map(1 -> "one", 2 -> "two", 3 -> "one")
m: scala.collection.immutable.Map[Int,java.lang.String] = Map(1 -> one, 2 -> two, 3 -> one)

scala> val reversedM = m map { case (k, v) => (v, k) }
reversedM: scala.collection.immutable.Map[java.lang.String,Int] = Map(one -> 3, two -> 2)
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  1. Inverse is a better name for this operation than reverse (as in "inverse of a mathematical function")

  2. I often do this inverse transformation not only on maps but on other (including Seq) collections. I find it best not to limit the definition of my inverse operation to one-to-one maps. Here's the definition I operate with for maps (please suggest improvements to my implementation).

    def invertMap[A,B]( m: Map[A,B] ) : Map[B,List[A]] = {
      val k = ( ( m values ) toList ) distinct
      val v = k map { e => ( ( m keys ) toList ) filter { x => m(x) == e } }
      ( k zip v ) toMap
    }
    

If it's a one-to-one map, you end up with singleton lists which can be trivially tested and transformed to a Map[B,A] rather than Map[B,List[A]].

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I edited the original question to say "invert". –  Seth Tisue Jan 25 '14 at 13:36

I came here looking for a way to invert a Map of type Map[A, Seq[B]] to Map[B, Seq[A]], where each B in the new map is associated with every A in the old map for which the B was contained in A's associated sequence.

E.g.,
Map(1 -> Seq("a", "b"), 2-> Seq("b", "c"))
would invert to
Map("a" -> Seq(1), "b" -> Seq(1, 2), "c" -> Seq(2))

Here's my solution :

val newMap = oldMap.foldLeft(Map[B, Seq[A]]().withDefaultValue(Seq())) {
  case (m, (a, bs)) => bs.foldLeft(m)((map, b) => map.updated(b, m(b) :+ a))
}

where oldMap is of type Map[A, Seq[B]] and newMap is of type Map[B, Seq[A]]

The nested foldLefts make me cringe a little bit, but this is the most straightforward way I could find to accomplish this type of inversion. Anyone have a cleaner solution?

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Yes, I do. See above. –  Rok Kralj Oct 11 '14 at 11:03

You could invert a map using:

val i = origMap.map({case(k, v) => v -> k})

The problem with this approach is that if your values, which have now become the hash keys in your map, are not unique you will drop the duplicate values. To illustrate:

scala> val m = Map("a" -> 1, "b" -> 2, "c" -> 3, "d" -> 1)
m: scala.collection.immutable.Map[String,Int] = Map(a -> 1, b -> 2, c -> 3, d -> 1)

// Notice that 1 -> a is not in our inverted map
scala> val i = m.map({ case(k , v) => v -> k})
i: scala.collection.immutable.Map[Int,String] = Map(1 -> d, 2 -> b, 3 -> c)

To avoid this you can convert your map to a list of tuples first, then invert, so that you don't drop any duplicate values:

scala> val i = m.toList.map({ case(k , v) => v -> k})
i: List[(Int, String)] = List((1,a), (2,b), (3,c), (1,d))
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