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Suppose I have a list of numbers. How to convert the list to a list of their "deltas" -- the pairwise differences of the subsequent numbers?

For example: Given List(5, 2, 1, 1) I would like to get List(3, 1, 0)

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6 Answers 6

up vote 14 down vote accepted

The correct answer is

(xs, xs drop 1)

And it does not even explode when you pass it an empty or single-digit list.

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Agreed, this is the briefest and also has the best performance. – Rex Kerr Nov 11 '11 at 23:01
List(5,2,1,1).sliding(2).map(pair => pair(0) - pair(1))
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Be aware that this explodes when the input list contains only one element. – kassens Nov 11 '11 at 21:04

Two other possible solutions: { case (x, y) => x - y }

// in case you don't like the extractor method of dealing with Tuples => p._1 - p._2)
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Note that you can use list.tail instead of list.drop(1) (but tail does not play nicely with Nil). Anyway, +1. – Tomasz Nurkiewicz Nov 11 '11 at 19:42
I think I'll stick with .drop(1) for the proper handling of Nil. Thanks, though! – dave Nov 11 '11 at 19:57

It's not dreadfully efficient (creating a two element list for every pair of adjacent numbers), but


should give you what you want.

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For everyone that prefers for-comprehensions over maps, doesn't mind extractors and likes to name intermediate results:

for (List(current, next) <- list.sliding(2);
     delta = current - next)
  yield delta
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The recursive way :

scala> def calcDeltas(l:List[Int]):List[Int] = l match {
     | case Nil => Nil
     | case x::Nil => Nil
     | case x::y::Nil => (x-y)::Nil
     | case x::y::tail => (x-y)::calcDeltas(y::tail)
     | }
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