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I have List[(String,String)] and I need to sort them by the 2nd value and return a map

I have done the following:

val newMap = list.sortBy(_._2).foldLeft(Map.empty[String, String]) {
      (map, key) ⇒ map + (key._1 → key._2)
    }

list is a List[(String,String)]

However the returnning map isn't sorted!!

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3  
I think you should state why you need to return a Map and what sense of it being sorted you care about. For example; do you subsequently wish to add extra key-value pairs? –  oxbow_lakes Apr 1 '12 at 17:02

2 Answers 2

up vote 7 down vote accepted

Default Map implementations are hash-based and they do not preserve order. Instead use scala.collection.mutable.LinkedHashMap:

val newMap = list.sortBy(_._2).foldLeft(new LinkedHashMap[String, String]) {
    (map, key) => map += (key._1 -> key._2)
    map
}

As suggested by @Rex Kerr, scala.collection.immutable.ListMap might be a better choice for target type:

val newMap = list.sortBy(_._2).foldLeft(new ListMap[String, String]) {
    (map, key) => map + (key._1 -> key._2)
}

Or (once again full credits should go to @Rex Kerr):

val newMap = new ListMap() ++ list.sortBy(_._2)

However what do you really want to achieve? Looks like you might be choosing wrong data structure...

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I disagree with this answer because it is misleading: you are returning a mutable structure which is not sorted at alll. It is simply traversable in insertion order –  oxbow_lakes Apr 1 '12 at 16:57
2  
@oxbow_lakes: I think this is exactly what OP asks (based on sample code) - have a Map from key -> value but with entries sorted by value. However let OP decide which answer is correct or clarify. BTW I haven't downvoted your answer in return, to be clear ;-). –  Tomasz Nurkiewicz Apr 1 '12 at 17:29
    
The entries are not "sorted" - they are traversable in a predictable order. This is not the same thing –  oxbow_lakes Apr 1 '12 at 17:45
2  
If you use immutable.ListMap the distinction between "in insertion order" and "sorted" goes away. –  Rex Kerr Apr 1 '12 at 18:23
3  
Could you maybe ListMap() ++ list.sortBy(_._2) instead of the giant slow fold? –  Rex Kerr Apr 1 '12 at 18:33

My assumption from your question (which is not 100% clear): you wish to have a Map[A, B] which is sorted according to B

This is not possible; the scala sorted map is SortedMap[A, B] and this has to be sorted according to some ordering on the type A.

If all you want is a traversable sequence of pairs (A, B) according to B, then you have no need for a Map and the solution:

list sortBy (_._2)

...will suffice. If you wish to have a Map, then Tomasz's answer looks enticing - but it is misleading. The map is not sorted; it is traversable in a known order (the order of insertion). This is not the same thing - subsequent additions to the Map will appear at the end (from a traversal perspective) regardless of what the value is. So I think you need to ask yourself a question: what am I trying to do?

If you care about traversing a sequence of pairs according to the second elements, you don't need a Map at all.

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I have clarified what it was that I was assuming the OP is trying to do (i.e. create a SortedMap[A, B] which is sorted according to B) and then explain why this is impossible –  oxbow_lakes Apr 1 '12 at 17:05

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