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Suppose I have a Seq[Int]. Now I would like to re-order the sequence to put the sequence elements <= 0 first and elements > 0 after them. How to do it simply and efficiently in Scala ?

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4 Answers 4

up vote 6 down vote accepted

Simplest:

xs.sortBy(_ > 0)

Slightly more efficient:

xs.groupBy(_ > 0).toSeq.sortBy(_._1).flatMap(_._2)

More efficient yet:

xs.partition(_ <= 0) match { case(a,b) => a ++ b }

More efficient yet is to work directly with arrays. Since you start with Seq[Int], I'm assuming you aren't that pressed for speed.

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Its simple and pretty fast:

Seq(1, -1, 4, 2, -3, 6, -4).partition(_ <= 0) match{
    case (smaller, bigger) => smaller ++ bigger
}
//List(-1, -3, -4, 1, 4, 2, 6)
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val (xs, ys) = Seq(-1, 1, -2, 2, 3, -3, 0).partition(_ <= 0)
val zs = xs ++ ys
  // List(-1, -2, -3, 0, 1, 2, 3)
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Or:

def reorder(xs: Seq[Int]): Seq[Int] =
  ((_: Seq[Int]) ++ (_: Seq[Int])) tupled xs.partition(_ <= 0)
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