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I have a map using the multimap trait, like so
val multiMap = new HashMap[Foo, Set[Bar]] with MultiMap[Foo, Bar]
I would like to combine filtering this map on specific values
multiMap.values.filter(bar => barCondition)
with flattening the matching results into a list of tuples of the form
val fooBarPairs: List[(Foo, Bar)]
What would be the idiomatic way of doing this? I was hoping that Scala might provide something like an anamorphism to do this without looping, but as a complete newbie I am not sure what my options are.

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If a foo maps to a set of bars that all satisfy the filter predicate, should the resulting list contains tuples (foo, bar) for all the bars? It would be helpful if you gave some illustrating examples. – Malte Schwerhoff Jul 22 '12 at 11:10
In my question "Matching results" was meant to specify that I was only interested in Bars that passed the filter criteria, sorry if it was unclear. – MilesHampson Jul 22 '12 at 13:02

3 Answers 3

up vote 4 down vote accepted

Here's an example:

import collection.mutable.{HashMap, MultiMap, Set}

val mm = new HashMap[String, Set[Int]] with MultiMap[String, Int]
mm.addBinding("One", 1).addBinding("One",11).addBinding("Two",22).
  // mm.type = Map(Two -> Set(22, 222), One -> Set(1, 11))

I think the easiest way to get what you want is to use a for-expression:

for {
  (str, xs) <- mm.toSeq
  x         <- xs
  if x > 10
} yield (str, x)      // = ArrayBuffer((Two,222), (Two,22), (One,11))

You need the .toSeq or the output type will be a Map, which would mean each mapping is overidden by subsequent elements. Use toList on this output if you need a List specifically.

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I like it, sequence comprehension fits this problem nicely. – MilesHampson Jul 22 '12 at 12:25
No need for a toSeq if you use collection.breakOut. – Debilski Jul 22 '12 at 12:35
@Debilski Intrigued. Can you use breakOut in for-expressions? Or just when you de-sugar it to something like @mhs's answer. – Luigi Plinge Jul 22 '12 at 13:06
(for {...} yield ())(breakOut) : List[(String, Int)] should indeed work. – Debilski Jul 22 '12 at 13:19

Here is an example of what I think you want to do:

scala> mm
res21: scala.collection.mutable.HashMap[String,scala.collection.mutable.Set[Int]] with scala.collection.mutable.MultiMap[String,Int]
= Map(two -> Set(6, 4, 5), one -> Set(2, 1, 3))

scala> mm.toList.flatMap(pair =>
         pair._2.toList.flatMap(bar =>
           if (bar%2==0)
             Some((pair._1, bar))

res22: List[(String, Int)] = List((two,6), (two,4), (one,2))
share|improve this answer
That is helpful, I hadn't considered doing that two level breakdown. I'm only using the matching types so I guess I'd have to filter the None types again with this. It seems like a good general solution though. – MilesHampson Jul 22 '12 at 12:36

Here is another, slightly more concise solution:

import collection.mutable.{HashMap, MultiMap, Set}

val mm = new HashMap[String, Set[Int]] with MultiMap[String, Int]
val f = (i: Int) => i > 10

mm.addBinding("One", 1)
  /* Map(Two -> Set(22, 222), One -> Set(1, 11)) */{case (k, vs) => vs.filter(f).map((k, _))}.flatten
  /* ArrayBuffer((Two,222), (Two,22), (One,11)) */
share|improve this answer
Filtering then rebuilding the map seems like a good way to solve this, I'd give you points if I could. I did need the result as a list rather than the iterator given by the flatten function though. – MilesHampson Jul 22 '12 at 12:56
You can get a list by either ....flatten.toList or ....toList.flatten. – Malte Schwerhoff Jul 22 '12 at 13:10

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