23

If I have a List of Ints like:

val myList = List(3,2,1,9)

what is the right/preferred way to create a SortedSet from a List or Seq of Ints, where the items are sorted from least to greatest?

If you held a gun to my head I would have said:

val itsSorted = collection.SortedSet(myList)

but I get an error regarding that there is no implicit ordering defined for List[Int].

39

Use:

collection.SortedSet(myList: _*)

The way you used it, the compiler thinks you want to create a SortedSet[List[Int]] not a SortedSet[Int]. That's why it complains about no implicit Ordering for List[Int].

Notice the repeated parameter of type A* in the signature of the method:

def apply [A] (elems: A*)(implicit ord: Ordering[A]): SortedSet[A]

To treat myList as a sequence argument of A use, the _* type annotation.

1
  • I had hoped that apply had an overload to take a collection/iterable of type x. In hindsight how could it. I haven't told it what type of SortedSet I want. – Andy Jul 13 '11 at 20:16
13

You could also take advantage of the CanBuildFrom instance, and do this:

val myList = List(3,2,1,9)
myList.to[SortedSet]
// scala.collection.immutable.SortedSet[Int] = TreeSet(1, 2, 3, 9)
1
  • The recommended way is now myList.iterator.to[SortedSet] – rleibman Feb 12 at 2:32
8

There doesn't seem to be a constructor that directly accepts List (correct me if I'm wrong). But you can easily write

val myList = List(3,2,1,9)
val itsSorted = collection.SortedSet.empty[Int] ++ myList

to the same effect. (See http://www.scala-lang.org/docu/files/collections-api/collections_20.html.)

2
  • This is the solution that I finally stumbled upon earlier. It just doesn't feel idiomatic :) – Andy Jul 13 '11 at 20:12
  • Nice solution, avoids the need to explicitly bring in an implicit ordering. I think it is not that the solution is not idiomatic as that the scala collections library does not provide the developer with an idiomatic api. Which is rather unfortunate for scala. – matanster Apr 13 '16 at 21:26
3

This is especially useful if you have to map anyway:

import scala.collection.breakOut

val s: collection.SortedSet[Int] = List(1,2,3,4).map(identity)(breakOut)
//--> s: scala.collection.SortedSet[Int] = TreeSet(1, 2, 3, 4)

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