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With regard to maps in Scala, if ms - (k, 1, m) returns the map containing all mappings of ms except for any mapping with the given keys, x, 1 and m.

Then, what statement will return a map of all mappings of ms with only the given keys, x, 1 and m. i.e. I'm looking for the subset of ms where only k, 1 and m are keys.

This works, but it is terrible:

scala> val originalMap = Map("age" -> "20", "name" -> "jack", "hobby" -> "jumping")
ms: scala.collection.immutable.Map[java.lang.String,java.lang.String] = Map(age -> 20, name -> jack, hobby -> jumping)

scala> val interestingKeys = List("name", "hobby")
interesting: List[java.lang.String] = List(name, hobby)

scala> val notInterestingMap = originalMap -- interestingKeys
notInterestingMap: scala.collection.immutable.Map[java.lang.String,java.lang.String] = Map(age -> 20)

scala> val interestingMap = originalMap -- notInterestingMap.keySet
interestingMap: scala.collection.immutable.Map[java.lang.String,java.lang.String] = Map(name -> jack, hobby -> jumping)
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2 Answers 2

up vote 6 down vote accepted

Because filterKeys filters based on an arbitrary predicate, it has to consider every key in the map. This might be fine or not, depending on how large the map is, etc., but it's definitely not necessary for the operation you describe. I'd use something like the following:

interestingKeys.flatMap(k => originalMap.get(k).map((k, _))).toMap

This will be O(n) or O(n log m) depending on your map implementation (where n is the size of interestingKeys and m is the size of the map), instead of O(m log n) or O(mn).

If you really want your ~ operator, you can use the pimp-my-library pattern:

class RichMap[A, B](m: Map[A, B]) {
  def ~(ks: A*) = ks.flatMap(k => m.get(k).map((k, _))).toMap
}

implicit def enrichMap[A, B](m: Map[A, B]) = new RichMap(m)

Now originalMap ~ ("name", "hobby") returns Map(name -> jack, hobby -> jumping), as you'd expect.

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filterKeyscan help:

scala> originalMap.filterKeys(interestingKeys.contains)
res0: scala.collection.immutable.Map[java.lang.String,java.lang.String] = Map(name -> jack, hobby -> jumping)
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1  
possible improvement with interestingKeys.toSet` instead of interestingKeys contains, as checking membership into a set is likely to be be more efficient. Not with a two elements list however. –  Didier Dupont Feb 15 '12 at 12:28
1  
and not if you pass a list of distinc elements. It clearly depends on the context. –  Nicolas Feb 15 '12 at 12:31
1  
Why would distinct elements change that? Membership testing would still be O(n) rather than O(1) or O(log n) for a typical set implementation. –  Didier Dupont Feb 15 '12 at 13:36
    
Thanks a stack. It's a bit surprising though, I would have expected something like ms ~ (k, 1, m) where ~ denotes a fictional operator that processes the intersection of keys between a map and a list and returns the resulting map. –  JacobusR Feb 15 '12 at 13:41
    
@didierd: Yep I figure it out afterwards. –  Nicolas Feb 15 '12 at 14:35

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