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 scala> Random.shuffle((1 to 10).toSet)
 res10: scala.collection.immutable.Set[Int] = Set(5, 10, 1, 6, 9, 2, 7, 3, 8, 4)

 scala> Random.shuffle((1 to 10).toSet)
 res11: scala.collection.immutable.Set[Int] = Set(5, 10, 1, 6, 9, 2, 7, 3, 8, 4)

 scala> Random.shuffle((1 to 10).toSet)
 res12: scala.collection.immutable.Set[Int] = Set(5, 10, 1, 6, 9, 2, 7, 3, 8, 4)

 scala> Random.shuffle((1 to 10).toList)
 res13: List[Int] = List(3, 9, 8, 5, 7, 6, 10, 2, 1, 4)

 scala> Random.shuffle((1 to 10).toList)
 res14: List[Int] = List(5, 10, 2, 9, 4, 7, 8, 6, 1, 3)

 scala> Random.shuffle((1 to 10).toList)
 res15: List[Int] = List(5, 9, 10, 6, 8, 3, 4, 1, 7, 2)

So shuffle can handle Lists just fine, but not sets ? Can't sets be shuffled ? Why is res10 == res11 == res12 ?

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1 Answer

up vote 7 down vote accepted

Scala's sets aren't ordered (just like the mathematical ones). They are iterable, however—you just can't rely on the order that you'll get the items in. Many implementations of sets will iterate the same elements in the same order—i.e.,

scala> Set(1, 2, 3, 4, 5).toList == Set(5, 4, 3, 2, 1).toList
res0: Boolean = true

Which explains the effect you're seeing here. You should never rely on this, though—there could be a perfect valid Set implementation for which the above wouldn't hold.

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Uh...ok. I accept your explanation, though I don't think Random.shuffle is fulfilling the postcondition here. The shuffle algorithm must provide a random order regardless of the underlying container. Its very easy to provide this behavior. For example: Random.shuffle((1 to 10).toSet) can internally call Random.shuffle((1 to 10).toSet.toList) to get an arbitrary ordering, which can then be shuffled. –  k r Jun 28 '12 at 20:58
4  
It is a little weird, and I'm not sure why shuffle is defined for any TraversableOnce (instead of say Seq). It's simply not possible to write a version of shuffle for sets that would provide a random order, since it doesn't make sense to talk about any kind of order for sets. –  Travis Brown Jun 28 '12 at 21:02
    
Just saw your comment edit: yes, but shuffle returns a collection of the same type as its input, and as soon as you put the shuffled list back into a set you're stuck in the same situation. –  Travis Brown Jun 28 '12 at 21:04
    
And please don't accept my explanation if it's not clear to you! –  Travis Brown Jun 28 '12 at 21:06
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