106

Given the following Scala List:

val l = List(List("a1", "b1", "c1"), List("a2", "b2", "c2"), List("a3", "b3", "c3"))

How can I get:

List(("a1", "a2", "a3"), ("b1", "b2", "b3"), ("c1", "c2", "c3"))

Since zip can only be used to combine two Lists, I think you would need to iterate/reduce the main List somehow. Not surprisingly, the following doesn't work:

scala> l reduceLeft ((a, b) => a zip b)
<console>:6: error: type mismatch;
 found   : List[(String, String)]
 required: List[String]
       l reduceLeft ((a, b) => a zip b)

Any suggestions one how to do this? I think I'm missing a very simple way to do it.

Update: I'm looking for a solution that can take a List of N Lists with M elements each and create a List of M TupleNs.

Update 2: As it turns out it is better for my specific use-case to have a list of lists, rather than a list of tuples, so I am accepting pumpkin's response. It is also the simplest, as it uses a native method.

3

12 Answers 12

232
scala> (List(1,2,3),List(4,5,6),List(7,8,9)).zipped.toList
res0: List[(Int, Int, Int)] = List((1,4,7), (2,5,8), (3,6,9))

For future reference.

3
  • 35
    This is great for zipping three lists. Shame this doesn't work for more than three list :(
    – theon
    Apr 22, 2014 at 16:01
  • 2
    Do note that this needs to be in a tuple first: zipped is not a function of List. Dec 10, 2015 at 0:11
  • 17
    zipped is deprecated in Scala 2.13. in 2.13, do l1.lazyZip(l2).lazyZip(l3).toList
    – Seth Tisue
    Dec 8, 2019 at 23:02
38

I don't believe it's possible to generate a list of tuples of arbitrary size, but the transpose function does exactly what you need if you don't mind getting a list of lists instead.

3
  • Thanks, that works perfectly! As I go into my specific use case, I see that a list of lists would be better anyway, as I need to map and reduce the various sub-lists.
    – pr1001
    Nov 3, 2009 at 1:38
  • 2
    @JoshCason in the narrowest sense of "more than two", sure. Three is indeed more than two. I interpreted the question in the broader sense of "more than two", meaning arbitrarily many. And in that case, it is not possible to do what the question wants, unless you reach for HLists and the like.
    – copumpkin
    May 3, 2016 at 12:54
  • the link in the answer is broken, new link is scala-lang.org/api/2.12.1/scala/… Jun 22, 2018 at 8:52
35

So this piece of code won't answer the needs of the OP, and not only because this is a four year old thread, but it does answer the title question, and perhaps someone may even find it useful.

To zip 3 collections:

as zip bs zip cs map { 
  case ((a,b), c) => (a,b,c)
}
3
  • 1
    to do 4 collections looks like: as zip bs zip cs zip ds map { case ((a,b),c)} map {case ((a,b),c,d)=>(a,b,c,d)} Aug 25, 2016 at 17:59
  • 2
    @JamesTobin, u shorten to as zip bs zip cs zip ds map {case (((a,b),c),d)=>(a,b,c,d) } May 12, 2017 at 2:31
  • Nice for lists of varying type. Aug 31, 2017 at 3:07
11

Yes, with zip3.

2
  • 2
    Thanks, but it only works with 3 lists. I'm looking for a solution that can take a List of N Lists with M elements each and create a List of M TupleNs.
    – pr1001
    Nov 3, 2009 at 0:13
  • The link is broken
    – amarchin
    Mar 30, 2022 at 10:54
7

transpose does the trick. A possible algorithm is:

def combineLists[A](ss:List[A]*) = {
    val sa = ss.reverse;
    (sa.head.map(List(_)) /: sa.tail)(_.zip(_).map(p=>p._2 :: p._1))
}

For example:

combineLists(List(1, 2, 3), List(10,20), List(100, 200, 300))
// => List[List[Int]] = List(List(1, 10, 100), List(2, 20, 200))

The answer is truncated to the size of the shortest list in the input.

combineLists(List(1, 2, 3), List(10,20))
// => List[List[Int]] = List(List(1, 10), List(2, 20))
2
  • 1
    this answer almost does the trick, however, it reverse the elements. Can you suggest an improved version that produces the output in the expected order? thanks
    – fracca
    Jun 12, 2013 at 15:51
  • Modified version that retains the order: def combineLists[A](ss:List[A]*) = { val sa = ss.reverse; (sa.head.map(List(_)) /: sa.tail)(_.zip(_).map(p=>p._2 :: p._1)) } Jun 29, 2018 at 22:20
6

If you don't want to go down the applicative scalaz/cats/(insert your favourite functional lib here) route, pattern matching is the way to go, although the (_, _) syntax is a bit awkward with nesting, so let's change it:

import scala.{Tuple2 => &}

for (i1 & i2 & i3 & i4 <- list1 zip list2 zip list3 zip list4) yield (i1, i2, i3, i4)

The & is an arbitrary choice here, anything that looks nice infix should do it. You'll likely get a few raised eyebrows during code review, though.

It should also work with anything you can zip (e.g. Futures)

5

Scala treats all of its different tuple sizes as different classes (Tuple1, Tuple2, Tuple3, Tuple4,...,Tuple22) while they do all inherit from the Product trait, that trait doesn't carry enough information to actually use the data values from the different sizes of tuples if they could all be returned by the same function. (And scala's generics aren't powerful enough to handle this case either.)

Your best bet is to write overloads of the zip function for all 22 Tuple sizes. A code generator would probably help you with this.

5

I don't believe that's possible without being repetitive. For one simple reason: you can't define the returning type of the function you are asking for.

For instance, if your input was List(List(1,2), List(3,4)), then the return type would be List[Tuple2[Int]]. If it had three elements, the return type would be List[Tuple3[Int]], and so on.

You could return List[AnyRef], or even List[Product], and then make a bunch of cases, one for each condition.

As for general List transposition, this works:

def transpose[T](l: List[List[T]]): List[List[T]] = l match {
  case Nil => Nil
  case Nil :: _ => Nil
  case _ => (l map (_.head)) :: transpose(l map (_.tail))
}
3
  • This won't work for arbitrary sized lists. For example: transpose(List(List("a", "b"), List("c"))) Mar 12, 2015 at 17:56
  • 1
    @VenkatSudheerReddyAedama Transposition of incomplete matrices doesn't make sense to me. To take your example, if c in line with a or with b? And how would you represent it being in line with the other? Mar 12, 2015 at 20:56
  • Agreed. That's an incomplete matrix. I was looking for something along the lines of zipAll. Say in my case, c is in line with a (i.e., in-line with index) ? Mar 12, 2015 at 20:59
4

Scala 2.12.13 and below

If you know how long the input List is, you can join the list into a Tuple and use Tuple's .zipped method:

val l = List(List("a1", "b1", "c1"), List("a2", "b2", "c2"), List("a3", "b3", "c3"))

println(l match {
  case l1::l2::l3::_ => (l1,l2,l3).zipped.toList
  case _ => throw new IllegalArgumentException("List is not the right length")
}) // List((a1,a2,a3), (b1,b2,b3), (c1,c2,c3))

Scastie Example - 2.12.13

>= Scala 2.13

The above solution is deprecated - use lazyZip instead:

val l = List(List("a1", "b1", "c1"), List("a2", "b2", "c2"), List("a3", "b3", "c3"))

println(l match {
  case l1::l2::l3::_ => (l1 lazyZip l2 lazyZip l3).toList
  case _ => throw new IllegalArgumentException("List is not the right length")
}) // List((a1,a2,a3), (b1,b2,b3), (c1,c2,c3))

Scastie Example - 2.13.0

2

product-collections has aflatZip operation up to arity 22.

scala> List(1,2,3) flatZip Seq("a","b","c") flatZip Vector(1.0,2.0,3.0) flatZip Seq(9,8,7)
res1: com.github.marklister.collections.immutable.CollSeq4[Int,String,Double,Int] = 
CollSeq((1,a,1.0,9),
        (2,b,2.0,8),
        (3,c,3.0,7))
0

With Scalaz:

import scalaz.Zip
import scalaz.std.list._

// Zip 3
Zip[List].ap.tuple3(List("a1", "b1"),
                    List("a2", "b2"),
                    List("a3", "b3"))

// Zip 4
Zip[List].ap.tuple4(List("a1", "b1"),
                    List("a2", "b2"),
                    List("a3", "b3"),
                    List("a4", "b4"))

// Zip 5
Zip[List].ap.tuple5(List("a1", "b1"),
                    List("a2", "b2"),
                    List("a3", "b3"),
                    List("a4", "b4"),
                    List("a5", "b5"))

For more than 5:

// Zip 6
Zip[List].ap.apply6(List("a1", "b1"),
                    List("a2", "b2"),
                    List("a3", "b3"),
                    List("a4", "b4"),
                    List("a5", "b5"),
                    List("a6", "b6"))((_, _, _, _, _, _))

// Zip 7
Zip[List].ap.apply7(List("a1", "b1"),
                    List("a2", "b2"),
                    List("a3", "b3"),
                    List("a4", "b4"),
                    List("a5", "b5"),
                    List("a6", "b6"),
                    List("a7", "b7"))((_, _, _, _, _, _, _))

...

// Zip 12
Zip[List].ap.apply12(List("a1", "b1"),
                     List("a2", "b2"),
                     List("a3", "b3"),
                     List("a4", "b4"),
                     List("a5", "b5"),
                     List("a6", "b6"),
                     List("a7", "b7"),
                     List("a8", "b8"),
                     List("a9", "b9"),
                     List("a10", "b10"),
                     List("a11", "b11"),
                     List("a12", "b12"))((_, _, _, _, _, _, _, _, _, _, _, _))
0

Suppose we have three lists with names a, b, and c. mydata is in form of (a, (b, c)):

val mydata = a.zip(b.zip(c)).toList

then newly created result is in form of (a, b, c):

val result = for (x, (y, z)) <- mydata yield (x, y, z)

for example:

scala> val a = (1, 2, 3)
val a: (Int, Int, Int) = (1,2,3)
                                                                                                    
scala> val b = (4, 5, 6)
val b: (Int, Int, Int) = (4,5,6)
                                                                                                    
scala> val c = (7, 8, 9)
val c: (Int, Int, Int) = (7,8,9)
                                                                                                    
scala> val mydata = a.zip(b.zip(c)).toList
val mydata:
  List[(Int, (Int, Int)) | ((Int, (Int, Int)) | ((Int, (Int, Int)) | Nothing))] = List((1,(4,7)), (2,(5,8)), (3,(6,9)))

scala> val result = for (x, (y, z)) <- mydata yield (x, y, z)
val result: List[(Int, Int, Int)] = List((1,4,7), (2,5,8), (3,6,9))

scala> result.foreach(println)
(1,4,7)
(2,5,8)
(3,6,9)

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