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In my dao I receive a tuple[String,String] of which _1 is non-unique and _2 is unique. I groupBy based on _1 to get this -

val someCache : Map[String, List[(String, String)]]

This is obviously wasteful since _1 is being repeated for all values of the Map. Since _2 is unique, what I want is something like -

val someCache : Map[String, Set[String]]

i.e. group by _1 and use as key and use the paired _2s as value of type Set[String]

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2 Answers 2

up vote 1 down vote accepted
def foo(ts: Seq[(String, String)]): Map[String, Set[String]] = {
  ts.foldLeft(Map[String, Set[String]]()) { (agg, t) =>
    agg + (t._1 -> (agg.getOrElse(t._1, Set()) + t._2))
  }
}


scala> foo(List(("1","2"),("1","3"),("2","3")))
res4: Map[String,Set[String]] = Map(1 -> Set(2, 3), 2 -> Set(3))
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case (agg, (k, v)) => would have probably been better –  Victor Moroz Aug 8 '13 at 18:21
    
could you elaborate a little on this : (agg.getOrElse(t._1, Set()) + t._2) specifically, why Set() as getOrElse second argument ? –  Vaibhav Aug 12 '13 at 7:20
    
@Vaibhav if there is no value yet assigned to that key (t._1), then getOrElse returns a new empty set (Set()). if there is already a value assigned to that key, then getOrElse returns the value in the map. In either case, you next at t._2 to the set. –  john sullivan Dec 17 '13 at 19:21
    
yes @VictorMoroz good point –  john sullivan Dec 17 '13 at 19:21

Straightforward solution is to map over all elements and convert each list to set:

someCache.map{ case (a, l) => a -> l.map{ _._2 }.toSet }

You could also use mapValues but you should note that it creates a lazy collection and performs transformation on every access to value.

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