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Suppose I have the following list of tuples:

val tuples = listOfStrings.map(string => {
            val split = string.split(":")
            (split(0), split(1), split(2))
        })

I would like to get the split(0) in a list, split(1) in another list and so on. A simple way this could be achieved is by writing:

list1 = tuples.map(x => x._1).toList
list2 = tuples.map(x => x._2).toList
list3 = tuples.map(x => x._3).toList

Is there a more elegant (functional) way of achieving the above without writing 3 separate statements?

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5 Answers 5

up vote 6 down vote accepted

This will give you your result as a list of list:

tuples.map{t => List(t._1, t._2, t._3)}.transpose

If you want to store them in local variables, just do:

val List(l1,l2,l3) = tuples.map{t => List(t._1, t._2, t._3)}.transpose

UPDATE: As pointed by Blaisorblade, the standard library actually has a built-in method for this: unzip3, which is just like unzip but for triples instead of pairs:

val (l1, l2, l3) = tuples.unzip3

Needless to say, you should favor this method over my hand-rolled solution above (but for tuples of arity > 3, this would still still apply).

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too slow :) was about to post: tuples.map{t => t._1 :: t._2 :: t._3 :: Nil}.transpose nice one. +1 –  gilad hoch Sep 12 '12 at 16:45
    
Bad idea, you should use unzip from the other answer: stackoverflow.com/a/17281359/53974 –  Blaisorblade Mar 9 '14 at 11:58
    
@Balisorblade: I have to disagree. This would be true if it was a Tuple2, but it is a Tuple3. unzip only handles unzipping pairs, and jeshan's own example show a List of Tuple3, not Tuple2. –  Régis Jean-Gilles Mar 9 '14 at 21:08
    
@RégisJean-Gilles: So you need unzip3. It's indeed a pity (or a bug) that only pairs and triples are supported — shapeless supports that, but for HList (docs.typelevel.org/api/shapeless/stable/1.2.4/doc_2.10/…). –  Blaisorblade Mar 29 '14 at 19:19
    
Also, you can convert a tuple to a list (of Any) with tuple.productIterator.toList. So: def unzip(l: List[Product]) = (l map (_.productIterator.toList)).transpose –  Blaisorblade Mar 29 '14 at 19:22

You want unzip:

scala> val (numbers, homonyms) = List(("one", "won"), ("two", "too")).unzip
numbers: List[java.lang.String] = List(one, two)
homonyms: List[java.lang.String] = List(won, too)
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1  
This only works on pairs though, not on any other kind of tuple –  Régis Jean-Gilles Mar 10 '14 at 7:13
    
There's unzip3 for triples. –  Blaisorblade Mar 29 '14 at 19:11

If you want something that can be used for arbitrary tuple sizes:

val tupleSize = 3
0.until(tupleSize).toList
    .map(x => (_:Product).productElement(x).asInstanceOf[String])
    .map(tuples.map(_))

Obviously, this could be expressed more elegantly if you had a List of Arrays instead.

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3  
+1 for a solution without _1, _2 and _3! –  jeshan Sep 12 '12 at 17:29
    
Or simply: tuples.map(_.productIterator.toList).transpose.asInstanceOf[List[List[String]]‌​. I was going to post this solution, but the cast is a pity. –  Régis Jean-Gilles Sep 12 '12 at 17:29
2  
@jeshan: the solutions that do use _1, _2, _3 have the advantage of being correctly typed without a runtime cast. When using productIterator or produxtElement as above, what you get back is typed as Any, hence the need for a cast. –  Régis Jean-Gilles Sep 12 '12 at 17:37
1  
The real solution is to use shapeless of course. –  Kim Stebel Sep 12 '12 at 17:39
1  
Real solution is to not use tuples –  Luigi Plinge Sep 12 '12 at 18:25

You could just write the statements in a single line.

Like

 (list1, list2, list3) = tuples.foldRight((List[String](), List[String](), List[String]()))( (a,b) => (a._1 :: b._1, a._2 :: b._2, a._3 :: b._3 ) )
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1  
but it's quite cryptic for possible reader –  om-nom-nom Sep 12 '12 at 16:36

I don't know about elegant but you could do it in one line without the intermediate step of storing the tuples. Perhaps it's a little hard to read...

(for(split <- listOfStrings.map(_.split(":")))
  yield List(split(0), split(1), split(2))).transpose

repl example:

scala> listOfStrings
res1: List[java.lang.String] = List(a:b:c, d:e:f, g:h:i)

scala> (for(split <- listOfStrings.map(_.split(":")))
     |   yield List(split(0), split(1), split(2))).transpose
res2: List[List[java.lang.String]] = List(List(a, d, g), List(b, e, h), List(c, f, i))
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