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I am new to scala, the way I understood Seq is that its an ordered list. So I was wanted to see if I can get all the items based on a given index where retrieved items index is lesser than the given items index.

Lets say I have Seq:

scala> val s = Seq(1, 2, 34 ,44 )
s: Seq[Int] = List(1, 2, 34, 44)

Given index index as 3rd item I was expecting to get all the items(values) that has a lower index position than the given index.

Keep this in mind I wrote the following and Looks like I am wrong.

scala> val x = s.map {
     | id => id < s.indexOf(3) }
x: Seq[Boolean] = List(false, false, false, false)

What what I want is Seq(1,2,34) as the output because if of those element's index is less than the index of 44.

Whats the best way to do this?

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s.take(2) = List(1, 2). What do you want the output to be? –  Brian Aug 8 '13 at 18:54
    
@Brian just updated the question –  Null-Hypothesis Aug 8 '13 at 18:57
    
See the answer from @0__. –  Brian Aug 8 '13 at 19:00
1  
Keep in mind that depending on how you're producing that index, there might be a better way to do the broader thing you're aiming for. I generally consider index munging to be a bit of a code smell except in most contexts. For example, if the index came from a call to find the index of something, then use takeWhile. (Just trying to guard against meta.stackexchange.com/questions/66377/what-is-the-xy-problem) –  Myserious Dan Aug 8 '13 at 19:35
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1 Answer 1

up vote 1 down vote accepted

s.take(3) will take the first three elements of the sequence, i.e. all elements whose index is smaller than 3 (index counts from zero).

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