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I would like to filter collection, so distance between adjacent elements would be at least 5.

So List(1, 2, 3, 4, 5, 6, 7, 11, 20) will become List(1, 6, 11, 20).

Is it possible to achieve in one pass using filter? What would be scala-way?

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The standard library filter HOF examines elements in isolation. Going to "extraordinary measures" by closing over mutable state outside the filter function in order to solve this problem would be ill-advised. The suggestions involving fold, assuming they satisfy the semantics you desire (which are not, to me, crystal clear) are vastly preferable. (If you said "between adjacent elements" instead of "between points," I'd say your request is sufficiently unambiguous and the suggested answers will work.) –  Randall Schulz Feb 5 '13 at 2:15
    
Changed wording of question from "between points," to "between adjacent elements" –  user482745 Feb 5 '13 at 9:29

2 Answers 2

up vote 5 down vote accepted

Try with foldLeft():

val input = List(1, 2, 3, 4, 5, 6, 7, 11, 20)

input.tail.foldLeft(List(input.head))((out, cur) => 
  if(cur - out.head >= 5) cur :: out else out
).reverse

If it's not obvious:

  1. Algorithm starts with first element (probably you need some edge cases handled) in the output collection

  2. It iterates over all remaining elements from the input. If the difference between this element (cur) and first element of input is greater than or equal than 5, prepend to input. Otherwise skip and proceed

  3. input was built by prepending and examining head to get better performance. .reverse is needed in the end

This is basically how you would implement this in imperative way, but with more concise syntax.

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How about this one-liner:

scala> l.foldLeft(Vector(l.head)) { (acc, item) => if (item - acc.last >= 5) acc :+ item else acc }

res7: scala.collection.immutable.Vector[Int] = Vector(1, 6, 11, 20)
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