105

how to sort a list in Scala by two fields, in this example I will sort by lastName and firstName?

case class Row(var firstName: String, var lastName: String, var city: String)

var rows = List(new Row("Oscar", "Wilde", "London"),
                new Row("Otto",  "Swift", "Berlin"),
                new Row("Carl",  "Swift", "Paris"),
                new Row("Hans",  "Swift", "Dublin"),
                new Row("Hugo",  "Swift", "Sligo"))

rows.sortBy(_.lastName)

I try things like this

rows.sortBy(_.lastName + _.firstName)

but it doesn't work. So I be curious for a good and easy solution.

227
rows.sortBy(r => (r.lastName, r.firstName))
6
  • 5
    what if we want to reverse sort on lastName and then natural sort on firstName?
    – Sachin K
    Jun 18 '14 at 9:19
  • 18
    @SachinK: you have to create your own Ordering for Row class and use it with sorted method like this: rows.sorted(customOrdering). You could also use custom Ordering for Tuple2 like this: rows.sortBy(r => (r.lastName, r.firstName))( Ordering.Tuple2(Ordering.String.reverse, Ordering.String) ).
    – senia
    Jun 18 '14 at 10:16
  • 5
    @SachinK: You could implement customOrdering as Ordering[Row] manually or using Ordering.by like this: val customOrdering = Ordering.by((r: Row) => (r.lastName, r.firstName))( Ordering.Tuple2(Ordering.String.reverse, Ordering.String) )`
    – senia
    Jun 18 '14 at 10:21
  • 2
    Excellent. Or to sort in descending order rows.sortBy(r => (-r.field1, -r.field2)) Aug 25 '17 at 23:32
  • @BrentFaust you can't use - with String. You should use Ordering::reverse this way: rows.sortBy(r => (r.lastName, r.firstName))(implicitly[Ordering[(String, String)]].reverse).
    – senia
    Aug 27 '17 at 4:41
14
rows.sortBy (row => row.lastName + row.firstName)

If you want to sort by the merged names, as in your question, or

rows.sortBy (row => (row.lastName, row.firstName))

if you first want to sort by lastName, then firstName; relevant for longer names (Wild, Wilder, Wilderman).

If you write

rows.sortBy(_.lastName + _.firstName)

with 2 underlines, the method expects two parameters:

<console>:14: error: wrong number of parameters; expected = 1
       rows.sortBy (_.lastName + _.firstName)
                               ^
3
  • 1
    The order of this will probably not be the same as sorting by firstname, then lastname.
    – Marcin
    Apr 5 '12 at 11:23
  • 1
    Specifically, when last names are diffferent lengths Apr 5 '12 at 11:55
  • Well, you can add a delimiter, which is not part of regular names, like rows.sortBy (row => row.lastName + " " + row.firstName). Oct 13 '20 at 0:58
8

In general, if you use a stable sorting algorithm, you can just sort by one key, then the next.

rows.sortBy(_.firstName).sortBy(_.lastName)

The final result will be sorted by lastname, then where that is equal, by firstname.

7
  • Are you sure that scala sortBy use stable sort? Otherwise this answer is meaningless.
    – om-nom-nom
    Apr 5 '12 at 11:30
  • 1
    @om-nom-nom: scala-lang.org/api/current/scala/util/Sorting$.html quickSort is defined only for value types, so yes.
    – Marcin
    Apr 5 '12 at 11:44
  • 1
    rows is an immutable list and sortBy returns a new value rather than mutating that upon which it works (even in mutable classes). So your second expression is just sorting the original unsorted list. Apr 5 '12 at 12:14
  • 3
    Scala, under the hood of sortBy method uses java.util.Arrays.sort, which for array of objects guarantees to be stable. So, yes, this solution is correct. (This was checked in Scala 2.10) Jun 28 '13 at 12:44
  • 1
    It's interesting to think about the performance of this vs. a single sortBy that creates a tuple. With this approach you obviously don't have to create those tuples, but with the tuple approach you only have to compare first names where last names match. But I suppose it doesn't matter -- if you're writing performance-critical code you shouldn't be using sortBy at all!
    – AmigoNico
    Jan 5 '14 at 8:15
-3

Perhaps this works only for a List of Tuples, but

scala> var zz = List((1, 0.1), (2, 0.5), (3, 0.6), (4, 0.3), (5, 0.1))
zz: List[(Int, Double)] = List((1,0.1), (2,0.5), (3,0.6), (4,0.3), (5,0.1))

scala> zz.sortBy( x => (-x._2, x._1))
res54: List[(Int, Double)] = List((3,0.6), (2,0.5), (4,0.3), (1,0.1), (5,0.1))

appears to work and be a simple way to express it.

8
  • But doesn't work for strings, which is what the OP is sorting. Oct 6 '14 at 16:19
  • This question already has several well received answers which are not limited to lists of tuples. So what's the reason of posting it?
    – honk
    Oct 6 '14 at 16:36
  • @honk: The prior solutions actually do not work (AFAICT) on a List of Tuples. If I were not a Scala newbie, perhaps I would understand how to morph those prior solutions to work in that case, but today I don't. I thought that my answer might help another Scala newbie do the same thing I was trying to do. Oct 8 '14 at 15:37
  • @user3508605: I appreciate your will to contribute. However, the idea of Stack Overflow is to have questions with specific problems (as it is the case here) and answers that address those specific problems (and only those). Your answer provides a solution for a different problem. Therefore this is the wrong place to post it. If you think that your answer is valuable, then ask a new question. Describe your corresponding problem in the new question and then post your answer there. Finally don't forget to remove your answer here. Thank you for your cooperation!
    – honk
    Oct 8 '14 at 15:54
  • @honk: Sure, I'll move my answer to a separate question. And, if I could impose on you to add a comment to the previous answer to this question (from Marcin), it appears to be just wrong. (I don't have enough credibility points to be able to post on it.) The example in that answer just sorts first by one key and then sorts again by a different key, effectively eliminating the results of the first sort. At least on a List of Tuples it does. Oct 8 '14 at 20:40

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