8

I tried matching a seq like this:

val users: Seq[User] = ....

users match {
  case Seq.empty => ....
  case ..
}

I got an error saying:

stable identifier required, but scala.this.Predef.Set.empty found.

Can someone explain why I can't do this? i.e. the theory behind it

6

Both Seq.apply and Seq.empty are implemented in GenericCompanion, which has no unapply method, so you'd think that pattern matching wouldn't be possible, but you're still able to pattern match on Seq() because Seq.unapplySeq(), implemented in SeqFactory, makes that available.

From the unapplySeq() docs:

This method is called in a pattern match { case Seq(...) => }.

more background

Collections make pattern matching possible via the unapplySeq() method, which gets called when the compiler sees something like case List() => ....

It's interesting that List(42) is the same thing as List.apply(42) but not so in pattern matching:

lst match {
  case List(8)       => ...  // OK
  case List.apply(8) => ...  // won't compile
}

The same principle applies to Seq() and Seq.empty.

  • So it isn't really accurate to say that Seq.empty is a method? – evan.oman Jan 4 '17 at 23:10
  • 2
    @evan058, Seq.empty is a method but so is Seq.apply. After running a few tests I've added some details. – jwvh Jan 4 '17 at 23:56
  • Seq.empty isn't a partial function, that is the reason no? – cool breeze Jan 5 '17 at 14:27
  • 1
    @coolbreeze, Seq.empty is a partial function. You can call isDefinedAt() on it or runWith() or any of the other pf methods. Try this Seq.empty[Int] match {case _: PartialFunction[_,_] => true} and see what you get. No, the reason Seq() matches but Seq.empty doesn't is because the unapplySeq() method gets called when the compiler sees the former but no the latter. – jwvh Jan 5 '17 at 17:47
2

Match on Seq() or Nil instead:

scala> Seq.empty
res0: Seq[Nothing] = List()

scala> val a = Seq(1,2,3)
a: Seq[Int] = List(1, 2, 3)

scala> val b = Seq()
b: Seq[Nothing] = List()

scala> a match {case Seq() => "empty"
     | case _ => "other"
     | }
res1: String = other

scala> b match {case Seq() => "empty"
     | case _ => "other"
     | }
res2: String = empty

See @jwvh's answer for technical reasons why.

  • so its a value vs method reason? – cool breeze Jan 4 '17 at 22:41
  • 1
    Partially, but also because you don't want to match on something with type () => Seq() (if you use an eta expansion), you want to match on Seq() – evan.oman Jan 4 '17 at 22:45
  • @coolbreeze See @jwvh's answer for a better explanation. – evan.oman Jan 4 '17 at 23:19

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