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Given a Scala collection.SortedMap and a key k, what is the most efficient way of getting all keys (or even better, all key-value pairs) greater than k stored in the sorted map. The returned set of keys should preserve the order of keys. Of course, I would like to avoid to peruse the whole data structure (i.e. using filterKeys), and take advantage of the fact that the map is sorted.

I would like to do something like :

val m = collection.SortedMap((1,1) -> "somevalue", (1,2) -> "somevalue", 
  (1,3) -> "somevalue", (2,1) -> "somevalue", (3,1) -> "somevalue")
m.getKeysGreaterThan((2,1))
// res0: scala.collection.SortedSet[(Int, Int)] = TreeSet((2,1), (3,1))

If you can think of a more appropriate map-like data structure, please suggest it.

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1 Answer 1

up vote 5 down vote accepted

Try this from the API doc:

m.from((2,1))

Note, that the result is inclusive the key value.

I just checked in Scala 2.10, TreeMap.from calls from on RedBlackTree, which appears to be an efficient implementation (the usual O(log n) for tree-based data-structures).

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1  
The ScalaDocs give no performance bounds for this method. –  Randall Schulz Feb 19 '13 at 16:03
    
Oh thank you, I must be totally dumb. I have been browsing scaladoc and SO for one hour to find the answer to this question... –  Xion345 Feb 19 '13 at 16:07

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