Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What is the best way to turn a Map[A, Set[B]] into a Map[B, Set[A]]?

For example, how do I turn a

Map(1 -> Set("a", "b"),
    2 -> Set("b", "c"),
    3 -> Set("c", "d"))

into a

Map("a" -> Set(1),
    "b" -> Set(1, 2),
    "c" -> Set(2, 3),
    "d" -> Set(3))

(I'm using immutable collections only here. And my real problem has nothing to do with strings or integers. :)

share|improve this question
    
Best in what way? :) I found the preferred solutions to be much slower than mine. –  hbatista Mar 31 '11 at 12:40
1  
Ah, right. Until I have a complete system, I always prefer conciseness and clarity over performance. (And I'm writing a full compiler, so I doubt this will be the bottle neck :) –  aioobe Mar 31 '11 at 13:02
    
Perfectly sound approach, but I find that sometimes conciseness and clarity don't go hand in hand... :) –  hbatista Mar 31 '11 at 17:26
add comment

6 Answers

up vote 6 down vote accepted

with help from aioobe and Moritz:

def reverse[A, B](m: Map[A, Set[B]]) =
  m.values.toSet.flatten.map(v => (v, m.keys.filter(m(_)(v)))).toMap

It's a bit more readable if you explicitly call contains:

def reverse[A, B](m: Map[A, Set[B]]) =
  m.values.toSet.flatten.map(v => (v, m.keys.filter(m(_).contains(v)))).toMap
share|improve this answer
    
heh. aioobe's solution is nearly identical –  Seth Tisue Mar 31 '11 at 12:13
    
Nice. I think we got a winner :D May I suggest changing k => ... into just m(_).contains(v) :-) –  aioobe Mar 31 '11 at 12:15
    
Also, is .distinct really needed? Isn't that step taken care of in .toMap? After removing .distinct I think one could get rid of .toSeq as well, or am I missing something? –  aioobe Mar 31 '11 at 12:17
    
@aiiobe: I edited this to incorporate your m(_) change. As for the toSeq.distinct part, you're right, it isn't strictly necessary. But I figured it was better to discard the duplicates early in the computation. –  Seth Tisue Mar 31 '11 at 12:28
2  
@aioobe then you could go even further and write it as m.values.toSet.flatten.map(v => (v, m.keys.filter(m(_)(v)))).toMap - I think that is as short as it can get (as Set[A] <: (A => Boolean)). –  Moritz Mar 31 '11 at 12:35
show 3 more comments

Best I've come up with so far is

val intToStrs = Map(1 -> Set("a", "b"),
                    2 -> Set("b", "c"),
                    3 -> Set("c", "d"))

def mappingFor(key: String) =
    intToStrs.keys.filter(intToStrs(_) contains key).toSet

val newKeys = intToStrs.values.flatten
val inverseMap = newKeys.map(newKey => (newKey -> mappingFor(newKey))).toMap
share|improve this answer
add comment

Or another one using folds:

  def reverse2[A,B](m:Map[A,Set[B]])=
      m.foldLeft(Map[B,Set[A]]()){case (r,(k,s)) =>
         s.foldLeft(r){case (r,e)=>
            r + (e -> (r.getOrElse(e, Set()) + k))
         }
      }
share|improve this answer
add comment

Here's a one statement solution

 orginalMap
 .map{case (k, v)=>value.map{v2=>(v2,k)}}
 .flatten
 .groupBy{_._1}
 .transform {(k, v)=>v.unzip._2.toSet}

This bit rather neatly (*) produces the tuples needed to construct the reverse map

Map(1 -> Set("a", "b"),
    2 -> Set("b", "c"),
    3 -> Set("c", "d"))
.map{case (k, v)=>v.map{v2=>(v,k)}}.flatten

produces

 List((a,1), (b,1), (b,2), (c,2), (c,3), (d,3))

Converting it directly to a map overwrites the values corresponding to duplicate keys though

Adding .groupBy{_._1} gets this

 Map(c -> List((c,2), (c,3)),
     a -> List((a,1)),
     d -> List((d,3)), 
     b -> List((b,1), (b,2)))

which is closer. To turn those lists into Sets of the second half of the pairs.

  .transform {(k, v)=>v.unzip._2.toSet}

gives

  Map(c -> Set(2, 3), a -> Set(1), d -> Set(3), b -> Set(1, 2))

QED :)

(*) YMMV

share|improve this answer
    
Nice "stepwise" solution! +1 :-) –  aioobe Mar 31 '11 at 19:43
add comment

A simple, but maybe not super-elegant solution:

  def reverse[A,B](m:Map[A,Set[B]])={
      var r = Map[B,Set[A]]()
      m.keySet foreach { k=>
          m(k) foreach { e =>
            r = r + (e -> (r.getOrElse(e, Set()) + k))
          }
      }
      r
  }
share|improve this answer
add comment

The easiest way I can think of is:

// unfold values to tuples (v,k)
// for all values v in the Set referenced by key k
def vk = for {
  (k,vs) <- m.iterator
  v <- vs.iterator
} yield (v -> k)

// fold iterator back into a map
(Map[String,Set[Int]]() /: vk) {
// alternative syntax: vk.foldLeft(Map[String,Set[Int]]()) {
  case (m,(k,v)) if m contains k =>
    // Map already contains a Set, so just add the value
    m updated (k, m(k) + v)
  case (m,(k,v)) =>
    // key not in the map - wrap value in a Set and return updated map
    m updated (k, Set(v))
}
share|improve this answer
    
That looks correct, but I always find the /: syntax for folds really hard to read. Any chance you could annotate your answer with an explanation? –  Marcus Downing Mar 31 '11 at 11:54
    
Added some comments. I personally prefer the /: to foldLeft and :\ to foldRight as it implies the order of arguments in the function / pattern match. –  Moritz Mar 31 '11 at 12:21
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.