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I am trying to match the case where a Seq contains Nothing.

models.Tasks.myTasks(idUser.toInt) match {
  case tasks => tasks.map {
    task => /* code here */
  }
  case _ => "" //matches Seq(models.Tasks)
}

How is Seq[Nothing] represented in pattern matching ?

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2 Answers 2

Matching against an empty sequence looks like this:

val x: Seq[Nothing] = Vector()

x match { 
  case Seq() => println("empty sequence") 
}

EDIT: Note that this is more general than case Nil since Nil is a subclass only of List, not Seq in general. Strangely, the compiler is ok with matching against Nil if the type is explicitly annotated as Seq, but it will complain if the type is any non-List subclass of Seq. Thus you can do this:

(Vector(): Seq[Int]) match { case Nil => "match" case _ => "no" }

but not this (fails with compile-time error):

Vector() match { case Nil => "match" case _ => "no" }
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better delete my answer then! –  Russell Oct 25 '12 at 12:12
    
I just tested this in the console and I think it will work –  Russell Oct 25 '12 at 12:14
    
Have added some repl output to my answer to show this in action. –  Russell Oct 25 '12 at 12:16
    
I'm confused as to why this answer is getting so many upvotes when it is wrong. Nil works just fine. –  Russell Oct 25 '12 at 14:26
    
@Russell. Saying Seq() calls List() behind the scenes since Seq is an interface. However, List is not the only implementation of Seq. –  dhg Oct 25 '12 at 19:11

Assuming I understand what you mean correctly, a sequence that contains nothing is empty, which is Nil:

case Nil => //do thing for empty seq

This works even though you're dealing with Seqs, not Lists:

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

scala> Seq() == Nil
res1: Boolean = true

Some more REPL output to show that this works absolutely fine with other subclasses of Seq:

scala> Nil
res3: scala.collection.immutable.Nil.type = List()

scala> val x: Seq[Int] = Vector()
x: Seq[Int] = Vector()

scala> x == Nil
res4: Boolean = true

scala> x match { case Nil => "it's nil" }
res5: java.lang.String = it's nil

scala> val x: Seq[Int] = Vector(1)
x: Seq[Int] = Vector(1)

scala> x match { case Nil => "it's nil"; case _ => "it's not nil" }
res6: java.lang.String = it's not nil

As can be seen from the above output, Nil is a type all of it's own. This question has some interesting things to say on the matter.

But @dhg is correct that if you manually create a specific subtype such as vector, the match does not work:

scala> val x = Vector()
x: scala.collection.immutable.Vector[Nothing] = Vector()

scala> x match { case Nil => "yes"} 
<console>:9: error: pattern type is incompatible with expected type;
 found   : object Nil
 required: scala.collection.immutable.Vector[Nothing]
              x match { case Nil => "yes"} 

Having said that, I don't know why you would need to force your objects to be a referred to as a specific concrete subclass very often.

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Saying Seq() calls List() behind the scenes since Seq is an interface. However, List is not the only implementation of Seq, just the default one. Try it with any other kind of Seq, and it will fail. –  dhg Oct 25 '12 at 19:15
    
@dhg (Vector(): Seq[Int]) match { case Nil => "match" case _ => "no" } returns "match" –  Luigi Plinge Oct 25 '12 at 19:36
    
@Luigi, but Vector() match { case Nil => "match" case _ => "no" } doesn't. I find the mis-match weird. –  dhg Oct 25 '12 at 19:44
    
@Russell, As Luigi pointed out, there is apparently a difference between matching something annotated as a Seq vs being annotated as a subclass of Seq. While I find it confusing to match a generic Seq with case Nil, it does work, so I've retracted my downvote. –  dhg Oct 25 '12 at 19:51
    
@dhg as you can see, it works fine for vector, and Nil appears to be, not a subclass of List, but a type all of its own. –  Russell Oct 26 '12 at 5:46

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