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I have defined a Map[Int, Map[String, Int]].

I know how to sort the outer Map, using ListMap. For example:

Actually all maps are mutable.

var myMap: Map[ Int, scala.collection.mutable.Map[String, Int] ] = Map()
....
// add some items to myMap
....
var sortedMap = scala.collection.immutable.ListMap( myMap.toList.sortBy{_._1}:_* )

But how do I sort the inner Map according to String?

The following seems to be wrong:

myMap foreach {
    case ( num, map ) ⇒ 
        map = scala.collection.immutable.ListMap( map.toList.sortBy{_._1}:_* ) 
}

Compiler says map: reassignment to val, but I already defined the inner map as mutable.Map. What can I do?

share|improve this question
    
The compiler error is because the case statement in the partial function you are passing to foreach to extract the values from the tuple declares a val num and val map. –  tysonjh Nov 7 '12 at 4:14

3 Answers 3

You could also consider using TreeMap. This way you won't need to sort the maps later.

Note that there is no mutable TreeMap, but this isn't a big issue (maybe it's even intentional). Having a mutable TreeMap doesn't bring a considerable benefit, as adding an element to an balanced tree takes O(log n), no matter if we consider the structure mutable or immutable.

This also means that using TreeMap has the same asymptotic complexity as having some other kind of collection and sorting it later. Adding n elements to a TreeMap will take n O(log n) = O(n log n) , which is just the same as sorting a list of n elements.

Also note that the constructors of TreeMap have an implicit argument ordering: Ordering[A]. By setting it explicitly when creating the map, you can plug in your own sorting function, if you want to sort using some different criterion than the default.

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It's pretty clean if you define a sortMap helper function for yourself:

def sortMap[K: Ordering, V](m: scala.collection.Map[K, V]) = 
  ListMap(m.toList.sortBy { _._1 }: _*)

val doubleSortedMap = sortMap(myMap.mapValues(sortMap(_)))
share|improve this answer

You can apply a function to each values using mapValues and then apply the same sorting function to the second map.

import scala.collection.immutable.ListMap

val myMap = Map[ Int, scala.collection.mutable.Map[String, Int] ] = Map()
....
// add some items to myMap
....
val outerSortedMap = ListMap(myMap.toList.sortBy{_._1}:_* )
val innerSortedMap = myMap.mapValues(innerMap => 
  ListMap(innerMap.toList.sortBy{_._1}:_* )
)

Sorting both the inner and the outer Map

For this, you just need to first sort the outer Map (so you get outerSortedMap as explained above), and then to sort the inner Maps of outerSortedMap.

val innerOuterSortedMap = outerSortedMap.mapValues(innerMap =>
  ListMap(innerMap.toList.sortBy{_._1}:_*)
)

Concerning your attempt

The foreach method has the following signature: foreach[U](f: ((A, B)) ⇒ U): Unit, so it is a side-effect method. What you want is to apply a function to all values of your map and to then replace the values by the result of the function. This is basically a map function (yes map represents two totally different things), and as you want to map values, then the function mapValues exists!

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Yeah, I understand your approach. Thanks. By the way, is there any way to change myMap after sorting both outer map and inner map? You just give a result for a innerSortedMap, but I want a change on the myMap, so that both the outer and the inner are sorted. –  user1725406 Oct 23 '12 at 19:08
    
@user1725406 please see my edit, basically you just need to sort the inner part of the outerSortedMap. –  Christopher Chiche Oct 23 '12 at 19:15
    
Hello, what if all the Maps are mutable, then your approach will fail. Do you know how to sort mutable Map? Thanks. –  user1725406 Oct 25 '12 at 8:16
    
Just take the values, sort them, and put them back. But first, why would you want to sort a Map, as the goal is to access values by key? –  Christopher Chiche Oct 26 '12 at 14:53

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