19

For any given set, for instance,

val fruits = Set("apple", "grape", "pear", "banana")

how to get a random element from fruits ?

Many Thanks.

19

convert into Vector and get random element from it

scala> val fruits = Set("apple", "grape", "pear", "banana")
fruits: scala.collection.immutable.Set[String] = Set(apple, grape, pear, banana)

scala> import scala.util.Random
import scala.util.Random

scala> val rnd=new Random
rnd: scala.util.Random = scala.util.Random@31a9253

scala> fruits.toVector(rnd.nextInt(fruits.size))
res8: String = apple
  • Indexing is O(n) on List. Why not use Array or Vector? – Kigyo Jul 31 '14 at 10:18
  • @Kigyo edited to Vector ;) – Govind Singh Jul 31 '14 at 10:20
  • Can't scala.util.Random.nextInt occasionally return negative numbers? – Tim Barrass Jan 30 '18 at 9:07
  • 2
    @TimBarrass nextInt() will return a negative number half of the time, but nextInt(n: Int), which is used here, starts at 0 and ends at n (exclusive): scala-lang.org/api/current/scala/util/… – László van den Hoek Sep 21 '18 at 10:01
  • Or convert to IndexedSeq, and code to interfaces. – Abhijit Sarkar Nov 18 '18 at 11:54
17

So, every answer posted before has complexity O(n) in terms of space, since they create a copy a whole collection in some way. Here is a solution without any additional copying (therefore it is "constant space"):

def random[T](s: Set[T]): T = {
  val n = util.Random.nextInt(s.size)
  s.iterator.drop(n).next
}
  • 1
    This is a better answer for the reason you put forward. It could be done in a one liner like this: val s = Set(1,2,3); s.drop(random.nextInt(s.size).head – justinhj Feb 12 '16 at 19:59
  • 7
    @justinhj: Nope, your solution is O(n) space again, since drop on Set causes a set with the remaining elements to be created. You have to use iterators, because they are non-strict. – Rok Kralj Feb 12 '16 at 21:52
  • 2
    Good point, thanks! – justinhj Sep 28 '16 at 23:02
  • 1
    @AntonyPerkov which makes sense because ... what does it mean to sample from an empty set? – Jus12 Feb 8 '17 at 12:10
  • 1
    This is still O(n) time, though. – Brian McCutchon Apr 28 '17 at 15:34
2

You can directly access an element of a Set with slice. I used this when I was working with a set that was changing in size, so converting it to a Vector every time seemed like overkill.

val roll = new Random ()

val n = roll nextInt (fruits size)
fruits slice (n, n + 1) last
2

Solution1

Random way ( import scala.util.Random )

scala>  fruits.toList(Random.nextInt(fruits.size))
res0: java.lang.String = banana

Solution2

Math way (no imports)

scala> fruits.toList((math.random*fruits.size).toInt)
res1: String = banana
  • Chained List is not a good option to pick one element at random. Chose array or vector instead – Boris Sep 21 '17 at 8:03
1
   import Scala.util.Random

   val fruits = Set("apple", "grape", "pear", "banana").toVector

   val sz =fruits.size

   val num = Random.nextInt(sz)

   fruits(num)
  • 2
    fruits(num) doesn't work on Set – Govind Singh Jul 31 '14 at 8:26
  • 3
    Yep, Set should be converted to container that supports accessing elements by sequential number. Vector is quicker than List. – Ashalynd Jul 31 '14 at 8:30
  • Notice there is a toVector, fruits is a vector not a set... – dividebyzero May 29 '15 at 21:38
  • @dividebyzero previously it was set – Govind Singh Jul 7 '15 at 6:00
1

Drawing inspiration from the other answers to this question, I've come up with:

private def randomItem[T](items: Traversable[T]): Option[T] = {
  val i = Random.nextInt(items.size)
  items.view(i, i + 1).headOption
}

This doesn't copy anything, doesn't fail if the Set (or other type of Traversable) is empty, and it's clear at a glance what it does. If you're certain that the Set is not empty, you could substitute .head and return T instead.

0

Not converting the Set to an ordered collection but using zipWithIndex we can attribute an index to each item in the collection,

fruits.zipWithIndex
Set((apple,0), (grape,1), (pear,2), (banana,3))

Thus for val rnd = util.Random.nextInt(fruits.size),

fruits.zipWithIndex.find( _._2 == rnd)
Option[(String, Int)] = Some((banana,3))

Given an empty set,

Set[String]().zipWithIndex.find( _._2 == 3)
Option[(String, Int)] = None
0

If you don't mind an O(n) solution:

import util.Random

// val fruits = Set("apple", "grape", "pear", "banana")
Random.shuffle(fruits).head
// "pear"

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