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What is an efficient way to iterate through only the odd members of a collection in Scala, based on index position?

Given this list:

val fruits: List[String] = List("apples", "oranges", "pears", "bananas")

I want to to skip apples and pears, and process oranges and bananas. Thanks!

Update based on responses given:

Wow, each of the top three answers has merit. I originally meant the word "efficient" from a Scala Collections syntax perspective, and I was really just looking for a slick way to create the sublist for subsequent iteration. @Senia does a good job introducing the sliding() function, great for this particular use case, but I also like @Brian's more generalized approach using zipWithIndex().

However, when I consider the actual wording of the question as originally asked and the computational efficiency of @sourcedelica's response, I think he takes the prize for this one.

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None of the answers so far interate through the odd members. Instead, they produce a list of the odd members (which can then be iterated over, of course). There must be a simple way of directly iterating ove them, though? –  Paul Oct 8 '12 at 11:05
    
See my answer.. –  sourcedelica Oct 8 '12 at 23:58
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4 Answers

up vote 4 down vote accepted

Here is a way to directly iterate over the odd ones:

val fruits: List[String] = List("apples", "oranges", "pears", "bananas")
//> fruits  : List[String] = List(apples, oranges, pears, bananas)

val oddFruitsIterator = 
  Iterator.from(1, 2).takeWhile(_ < fruits.size).map(fruits(_))
//> oddFruits  : Iterator[String] = non-empty iterator

oddFruitsIterator.foreach(println)                      
//> oranges
//> bananas

If it is a large collection and/or of you are doing lots of iterations then you will want to consider converting it to an IndexedSeq first so the fruits(_) is O(1). For example:

val fruitsIs = fruits.toIndexedSeq
val oddFruits = Iterator.from(1, 2).takeWhile(_ < fruitsIs.size).map(fruitsIs(_))

Note that the iterator itself is separate from the collection that it is iterating over. Here is another example that makes that more clear:

scala> val oddSeqIterator = 
   (seq: Seq[String]) => Iterator.from(1, 2).takeWhile(_ < seq.size).map(seq(_))
oddSeqIterator: Seq[String] => Iterator[String] = <function1>

scala> val fruits: List[String] = List("apples", "oranges", "pears", "bananas")
fruits: List[String] = List(apples, oranges, pears, bananas)

scala> oddSeqIterator(fruits)
res0: Iterator[String] = non-empty iterator

scala> res0.foreach(println)
oranges
bananas
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scala> List("apples", "oranges", "pears", "bananas").drop(1).sliding(1, 2).flatten.toList
res0: List[java.lang.String] = List(oranges, bananas)
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val fruits: List[String] = List("apples", "oranges", "pears", "bananas")

fruits.zipWithIndex.filter(_._2 % 2 == 1).map(_._1)

res0: List[String] = List(oranges, bananas)

zipWithIndex pairs each element in List with an index giving:

List[(String, Int)] = List((apples,0), (oranges,1), (pears,2), (bananas,3))

filter the odd elements with filter(_._2 % 2 == 1) giving:

List[(String, Int)] = List((oranges,1), (bananas,3))

map the List[(String, Int)] to just List[String] by taking the first element of each tuple with .map(_._1) giving:

List[String] = List(oranges, bananas)

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10  
Alternatively, whenever you have a filter followed by a map, you can combine them using collect, eg, fruits.zipWithIndex.collect{case(item,idx) if idx % 2 == 1 => item} –  Kristian Domagala Oct 8 '12 at 5:00
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I would propose another method, using recursion, which seems to make as little operations as possible in my opinion even if it is less fancy than other solutions.

def iterateOdd(myList:List[String]):List[String] = myList match{
  case _::odd::tail => odd::iterateOdd(tail)
  case _ => Nil
}

Or, if you just want to process odd members

def iterateOdd(myList:List[String]):Unit = myList match{
  case _::odd::tail => println(odd); iterateOdd(tail)
  case _ =>   
}
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