8

Scala version 2.10.3 running on java 7

import scala.util.Random
Random.shuffle(0 to 4) // works
Random.shuffle(0 until 4) // doesn't work

:9: error: Cannot construct a collection of type scala.collection.AbstractSeq[Int] with elements of type Int based on a collection of type scala.collection.AbstractSeq[Int].

The error message seems to really only tell me "You can't do that". Anyone have any insight as to why?

3
  • my current work around: Random.shuffle((0 until 4).toIndexedSeq) – Andrew Cassidy May 7 '14 at 17:13
  • My guess is that it might have something to do with 0 to 4 and 0 until 4 being different classes 0 to 4 res0: scala.collection.immutable.Range.Inclusive with scala.collection.immutable.Range.ByOne = Range(0, 1, 2, 3, 4) 0 until 4 res1: scala.collection.immutable.Range with scala.collection.immutable.Range.ByOne = Range(0, 1, 2, 3) – Anton May 7 '14 at 17:18
  • @Andrey yeah I noticed that... I looked at the type signature for shuffle: def shuffle[T, CC[X] <: scala.TraversableOnce[X]](xs : CC[T])(implicit bf : scala.collection.generic.CanBuildFrom[CC[T], T, CC[T]]) : CC[T] = { /* compiled code */ }. I see that the error comes from the CanBuildFrom.class and that it can't find an implicit for the .Range.ByOne class – Andrew Cassidy May 7 '14 at 17:24
7

Scala is inferring the wrong type parameters to shuffle. You can force working ones with:

Random.shuffle[Int, IndexedSeq](0 until 4)

or broken ones with:

Random.shuffle[Int, AbstractSeq](0 to 4)

I don't know why it comes up with the wrong parameters for Range, as returned by until, but the correct ones for Range.Inclusive, as returned by to. Range.Inclusive directly subclasses Range without mixing in any traits, so it shouldn't be treated any differently. This looks like a Scala bug to me.

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.