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Asked: 2026-05-14T05:51:52+00:00

I want to zip even and odd elements in a list to make a

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I want to zip even and odd elements in a list to make a list of pairs, like that:

["A", "B", "C", "D", "E", "F"] -> [("A", "B"), ("C", "D"), ("E", "F")]

What is the most concise expression to do this in elegant in functional way?

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1 Answer

  1. Editorial Team

    In 2.8, you’d probably use methods:

    scala> val a = "ABCDEF".toList.map(_.toString) 
a: List[java.lang.String] = List(A, B, C, D, E, F)

scala> a.grouped(2).partialMap{ case List(a,b) => (a,b) }.toList
res0: List[(java.lang.String, java.lang.String)] = List((A,B), (C,D), (E,F))

    (This is 2.8.0 Beta1; the latest trunk has collect in place of partialMap.)

    In 2.7–and not a bad runner-up in 2.8–you could create a recursive method as legoscia did:

    def zipPairs[A](la : List[A]): List[(A,A)] = la match {
  case a :: b :: rest => (a,b) :: zipPairs(rest)
  case _ => Nil
}

scala> zipPairs(a)
res1: List[(java.lang.String, java.lang.String)] = List((A,B), (C,D), (E,F))

    Edit: here’s another briefer approach that works on 2.7 also:

    scala> (a zip a.drop(1)).zipWithIndex.filter(_._2 % 2 == 0).map(_._1)
res2: List[(java.lang.String, java.lang.String)] = List((A,B), (C,D), (E,F))

    (Note the use of drop(1) instead of tail so it works with empty lists.)

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