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Is there an easy/best way to get a BitSet I can pattern match like a list?

val btst = BitSet(1,2,3,4)
btst match {
  case head :: tail => tail
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2 Answers 2

up vote 4 down vote accepted

A BitSet is ordered, but extractorless.

Edit: but not humorless.

object |<| {
  def unapply(s: BitSet): Option[(Int, BitSet)] =
    if (s.isEmpty) None
    else Some((s.head, s.tail))

  def flags(b: BitSet) = b match {
    case f"5 || 10" => println("Five and dime")  // alas, never a literal
    case 5 |<| any  => println(s"Low bit is 5iver, rest are $any")
    case i |<| any  => println(s"Low bit is $i, rest are $any")
    case _          => println("None")

  def dump(b: BitSet) = println(b.toBitMask.mkString(","))
  val s = BitSet(5, 7, 11, 17, 19, 65)
  // ordinary laborious tests
  s match { 
    case x if x == BitSet(5)                => println("Five")
    case x if x == BitSet(5,7,11,17,19,65)  => println("All")
    case x if x(5)          => println("Five or more")
    case _                  => println("None")
  // manually matching on the mask is laborious
  // and depends on the bit length
  s.toBitMask match {
    case Array(2L)          => println("One")
    case Array(657568L)     => println("First word's worth")
    case Array(657568L, _)  => println("All")
    case _                  => println("None") 
  // or truncate for special case
  s.toBitMask(0) match {
    case 2L                 => println("One")
    case 657568L            => println("First word's worth")
    case _                  => println("None")
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Thanks a lot!!! – marcus Nov 18 '12 at 17:40

By definition a set is an unordered collection, and pattern matching over such one is error-prone. Convert it to list if you want to... Also, you should not rely on head and tail to always return the same thing.

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