24

How do I sort a map of this kind:

"01" -> List(34,12,14,23), "11" -> List(22,11,34)

by the beginning values?

  • Do you need need the result to be another map, or are you just interested in forgetting the keys once they've been used for the sorting? – Kevin Wright Jan 25 '11 at 12:42
  • I need result in another map. – Adrian Modliszewski Jan 25 '11 at 12:42
  • 5
    i think that maps are unsorted by definition, aren't they? – coubeatczech Jan 25 '11 at 12:44
  • Sorry I do not know the definition of map, and i needed it in sorted way ;) – Adrian Modliszewski Jan 25 '11 at 16:55
60

One way is to use scala.collection.immutable.TreeMap, which is always sorted by keys:

val t = TreeMap("01" -> List(34,12,14,23), "11" -> List(22,11,34))

//If  you have already a map...
val m = Map("01" -> List(34,12,14,23), "11" -> List(22,11,34))
//... use this
val t = TreeMap(m.toSeq:_*)

You can convert it to a Seq or List and sort it, too:

//by specifying an element for sorting
m.toSeq.sortBy(_._1) //sort by comparing keys
m.toSeq.sortBy(_._2) //sort by comparing values

//by providing a sort function
m.toSeq.sortWith(_._1 < _._1) //sort by comparing keys

There are plenty of possibilities, each more or less convenient in a certain context.

  • You can also append an arbitrarily sorted sequence to a LinkedHashMap, which will retain the insertion order for traversal. – Jean-Philippe Pellet Jan 25 '11 at 12:56
  • heh heh, just updated my answer to use .toseq:_*, didn't spot that you'd already done it! Promise I'm not stealing :) – Kevin Wright Jan 25 '11 at 13:09
  • Reading Kevin's answer, using SortedMap seems to be the better style, as it shows clearly what behavior you need, not which implementation. – Landei Jan 25 '11 at 22:42
  • 1
    @Raphael By contract -- it extends SortedMap – Aaron Novstrup Jan 26 '11 at 20:37
  • 1
    what does expression :_* mean in TreeMap(m.toSeq:_*)? I am not able to get that – vumaasha Jan 23 '15 at 10:30
15

As stated, the default Map type is unsorted, but there's always SortedMap

import collection.immutable.SortedMap
SortedMap("01" -> List(34,12,14,23), "11" -> List(22,11,34))

Although I'm guessing you can't use that, because I recognise this homework and suspect that YOUR map is the result of a groupBy operation. So you have to create an empty SortedMap and add the values:

val unsorted = Map("01" -> List(34,12,14,23), "11" -> List(22,11,34))
val sorted = SortedMap.empty[String, List[Int]] ++ unsorted
//or
val sorted = SortedMap(unsorted.toSeq:_*)

Or if you're not wedded to the Map interface, you can just convert it to a sequence of tuples. Note that this approach will only work if both the keys and values have a defined ordering. Lists don't have a default ordering defined, so this won't work with your example code - I therefore made up some other numbers instead.

val unsorted = Map("01" -> 56, "11" -> 34)
val sorted = unsorted.toSeq.sorted

This might be useful if you can first convert your lists to some other type (such as a String), which is best done using mapValues

update: See Landei's answer, which shows how you can provide a custom sort function that'll make this approach work.

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