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I want to create a Scala sequence comprising tuples. The input is a text file like this:


I'm looking for an elegant way to construct "lagged" tuples like this:

(A, B), (B, C), (C, D), (D, E)
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2 Answers 2

up vote 11 down vote accepted

The easiest way to do this is by using the tail and zip:

val xs = Seq('A', 'B', 'C', 'D', 'E')
xs zip xs.tail

If efficiency is a concern (i.e. you don't want to create an extra intermediate sequence by calling tail and the Seq you use are not Lists, meaning that tail takes O(n)) then you can use views:

xs zip xs.view.tail
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If the Seq is actually a List then xs zip xs.tail is quite efficient. – Randall Schulz Mar 12 '13 at 14:00
Exactly - should be more efficient than using views in that case. – axel22 Mar 12 '13 at 14:09

I'm not quite sure how elegant it is, but this will work for at least all lists of more than 1 element:

val l = List('A,'B,'C,'D,'E,'F)
val tupled = l.sliding(2).map{case x :: y :: Nil => (x,y)}

// res8: List[(Symbol, Symbol)] = List(('A,'B), ('B,'C), ('C,'D), ('D,'E), ('E,'F))

If you want something more elegant than that, I'd advise you look at Shapeless for nice ways to convert between lists and tuples.

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Actually, @axel22's answer is much, much nicer than mine! Leaving it here for information only. – Impredicative Mar 12 '13 at 13:02
sliding (without your mapping code) produces lists instead of tuples, which might be also okay. Is l.sliding(2).toList then the better choice compared to l zip l.tail? – Dronkel Mar 13 '13 at 20:51

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