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How do you replace an element by index with an immutable List.

E.g.

val list = 1 :: 2 ::3 :: 4 :: List()

list.replace(2, 5)
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4 Answers 4

up vote 14 down vote accepted

In addition to what has been said before, you can use patch function that replaces sub-sequences of a sequence:

scala> val list = List(1, 2, 3, 4)
list: List[Int] = List(1, 2, 3, 4)

scala> list.patch(2, Seq(5), 1) // replaces one element of the initial sequence
res0: List[Int] = List(1, 2, 5, 4)

scala> list.patch(2, Seq(5), 2) // replaces two elements of the initial sequence
res1: List[Int] = List(1, 2, 5)

scala> list.patch(2, Seq(5), 0) // adds a new element
res2: List[Int] = List(1, 2, 5, 3, 4)
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If you want to replace index 2, then

list.updated(2,5)    // Gives 1 :: 2 :: 5 :: 4 :: Nil

If you want to find every place where there's a 2 and put a 5 in instead,

list.map { case 2 => 5; case x => x }  // 1 :: 5 :: 3 :: 4 :: Nil

In both cases, you're not really "replacing", you're returning a new list that has a different element(s) at that (those) position(s).

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You can use list.updated(2,5) (which is a method on Seq).

It's probably better to use a scala.collection.immutable.Vector for this purpose, becuase updates on Vector take (I think) constant time.

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5  
Not quite constant time, but logarithmic with a large base (which is close enough to "constant time with a pretty large constant" in practice). –  Alexey Romanov Feb 21 '11 at 7:13
2  
@Alexey An updated on Vector does not depend on the index, as opposed to an updated on List, which is O(index). That makes it really constant time for fixed-size collections, which might well apply. I'm not denying what you said, but I think this is an interesting point. –  Daniel C. Sobral Feb 21 '11 at 14:47
    
@Daniel: so is it correct to say that updated on List is O(index) and updated on Vector is O(lg size), which may make List advantageous when size is huge but index is small? (I'd love to know where to find more information about the time guarantees of Scala's immutable structures.) –  Ken Bloom Feb 21 '11 at 15:11
3  
Vector is O((log size)/32). In fact, the maximum number of nesting levels it accepts is 6, each of which has 32 elements. So, for the biggest collection possible, you'd have to copy 6 * 32 elements. Updating a List might well win if you know for sure only the first few elements will be updated, but it soon starts losing any advantage. As for looking it up, there's scala-lang.org/docu/files/collections-api/collections_40.html, but you may also check the implementation itself through a link on Scaladoc. –  Daniel C. Sobral Feb 21 '11 at 16:16
2  
Another point is that Vector has good spatial locality of reference, so it is cache-friendly. List, on the other hand, has very bad locality of reference. –  Daniel C. Sobral Feb 21 '11 at 16:20

If you do a lot of such replacements, it is better to use a muttable class or Array.

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1  
There are a lot of other... issues ...that come with using mutable data structures, so be sure you are cognizant of that before deciding to use them. –  pkaeding Jan 12 '12 at 17:52
3  
I agree there are issues. But there are also issues with using non-mutable data structures for mutable data. –  v6ak Jan 24 '12 at 7:09

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