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Which implementation from scala.collection.mutable package should I take if I intend to do lots of by-index-deletions, like remove(i: Int), in a single-threaded environment? The most obvious choice, ListBuffer, says that it may take linear time depending on buffer size. Is there some collection with log(n) or even constant time for this operation?

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2 Answers 2

up vote 7 down vote accepted

Removal operators, including buf remove i, are not part of Seq, but it's actually part of Buffer trait under scala.mutable. (See Buffers)

See the first table on Performance Characteristics. I am guessing buf remove i has the same characteristic as insert, which are linear for both ArrayBuffer and ListBuffer. As documented in Array Buffers, they use arrays internally, and Link Buffers use linked lists (that's still O(n) for remove).

As an alternative, immutable Vector may give you an effective constant time.

Vectors are represented as trees with a high branching factor. Every tree node contains up to 32 elements of the vector or contains up to 32 other tree nodes. [...] So for all vectors of reasonable size, an element selection involves up to 5 primitive array selections. This is what we meant when we wrote that element access is "effectively constant time".

scala> import scala.collection.immutable._
import scala.collection.immutable._

scala> def remove[A](xs: Vector[A], i: Int) = (xs take i) ++ (xs drop (i + 1))
remove: [A](xs: scala.collection.immutable.Vector[A],i: Int)scala.collection.immutable.Vector[A]

scala> val foo = Vector(1, 2, 3, 4, 5)
foo: scala.collection.immutable.Vector[Int] = Vector(1, 2, 3, 4, 5)

scala> remove(foo, 2)
res0: scala.collection.immutable.Vector[Int] = Vector(1, 2, 4, 5)

Note, however, a high constant time with lots of overhead may not win a quick linear access until the data size is significantly large.

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there's no column in the first table for "remove" –  Ron Dec 14 '10 at 17:31
    
That's why he says "I am guessing the indexed remove has the same characteristic as insert". –  Alexey Romanov Dec 14 '10 at 18:35
    
@Alexey Romanov I added most the answer above after @Ron pointed it out. –  Eugene Yokota Dec 14 '10 at 19:18
    
Thanks! Though an immutable vector is another trade-off for good old mutable implementation like LinkedList. Apparently Scala's LinkedList does not handle deletions at all (I wonder, what does "mutable" mean then). –  incarnate Dec 15 '10 at 16:25
    
removal operations come from Buffer trait. see my edits. –  Eugene Yokota Dec 15 '10 at 18:15

Depending on your exact use case, you may be able to use LinkedHashMap from scala.collection.mutable.

Although you cannot remove by index, you can remove by a unique key in constant time, and it maintains a deterministic ordering when you iterate.

scala> val foo = new scala.collection.mutable.LinkedHashMap[String,String]
foo: scala.collection.mutable.LinkedHashMap[String,String] = Map()

scala> foo += "A" -> "A"
res0: foo.type = Map((A,A))

scala> foo += "B" -> "B"
res1: foo.type = Map((A,A), (B,B))

scala> foo += "C" -> "C"
res2: foo.type = Map((A,A), (B,B), (C,C))

scala> foo -= "B"
res3: foo.type = Map((A,A), (C,C))
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Yeap, thanks for great suggestion. However, this approach has its own limitations (lacks index and does not inherit from Seq). But it is nice. –  incarnate Dec 20 '10 at 11:34

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