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I have a little problem in pattern matching an object in Scala when it is parameterized with a fully qualified class name. This is based on Scala 2.9.0.1. Anyone knows what's wrong with this code?

scala> "foo" match {
 | case y : Seq[Integer] =>
 | case y : Seq[java.lang.Integer] =>
<console>:3: error: ']' expected but '.' found.
   case y : Seq[java.lang.Integer] =>

Why does the first version work, but the latter fail? The problem only seems to occur when a fully qualified classname is used for the parameterization.

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2 Answers 2

up vote 11 down vote accepted

From the Scala Language Specification, section 8.1 Patterns, the identifier after the : needs to be what is referred to as a Type Pattern, defined in Section 8.2:

Type patterns consist of types, type variables, and wildcards. A type pattern T is of one of the following forms:

...

A parameterized type pattern T [a(1), . . . , a(n)], where the a(i) are type variable patterns or wildcards _. This type pattern matches all values which match T for some arbitrary instantiation of the type variables and wildcards. The bounds or alias type of these type variable are determined as described in (§8.3).

...

A type variable pattern is a simple identifier which starts with a lower case letter. However, the predefined primitive type aliases unit, boolean, byte, short, char, int, long, float, and double are not classified as type variable patterns.

So, syntactically, you can't use a fully qualified class as a type variable pattern IN THIS POSITION. You can however, use a type alias, so:

type JavaInt = java.lang.Integer
List(new java.lang.Integer(5)) match {
    case y: Seq[JavaInt] => 6
    case _ => 7
}

will return 6 as expected. The problem is that as Alan Burlison points out, the following also returns 6:

List("foobar") match {
    case y: Seq[JavaInt] => 6
    case _ => 7
}

because the type is being erased. You can see this by running the REPL, or scalac with the -unchecked option.

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Wow. I hit this today and eventually found this question. I had no idea such a thing as a "type variable pattern" even existed in Scala. What else is still hiding from me in the SLS...? –  Seth Tisue Nov 19 '13 at 18:56
2  
Some of the easter eggs only activate on 1/4 and Easter. –  Adriaan Moors Nov 19 '13 at 19:16
    
I started a thread on this at groups.google.com/d/msg/scala-language/2PNDjkI47Ao/MCQw7RzNUwcJ –  Seth Tisue Nov 19 '13 at 19:21
    
and there is now a ticket at issues.scala-lang.org/browse/SI-7985 ; Martin Odersky says it's a parser bug –  Seth Tisue Nov 19 '13 at 20:18

In fact your first example doesn't work either. If you run the REPL with -unchecked, you'll see the following error:

warning: non variable type-argument Integer in type pattern Seq[Integer] is unchecked since it is eliminated by erasure

So you can't actually do what you are trying to do - at run-time there's no difference between a List[Integer] and a List[AnythingElse], so you can't pattern-match on it. You might be able to do this with a Manifest, see http://ofps.oreilly.com/titles/9780596155957/ScalasTypeSystem.html#Manifests and http://www.scala-blogs.org/2008/10/manifests-reified-types.html

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I don't think type erasure was the point of the question. How about this: "foo".asInstanceOf[Any] match { <br/> case x: Seq[Integer] => <br/> case y: Seq[java.lang.Integer] => <br/> } –  Jamil Sep 14 '11 at 10:43
    
@Jamil, I believe Seq[java.lang.Integer] is just a syntax error. I believe the compiler is treating java.lang.Integer as an identifier and they can't have dots in them. You can demonstrate this by surrounding java.lang.Integer in backquotes - it will then compile but you'll still get the same erasure warning that you do with plain Integer. I agree the error is misleading, but it's not all that surprising considering that you can't really do what @Frank is trying to do anyway. –  Alan Burlison Sep 14 '11 at 10:53
    
java.lang.Integer is a type not a variable. Moreover Scala binds to variable when you use Constructor pattern, or tuple or sequence etc. Oddly enough, if I use the alias type myint = java.lang.Integer Scala doesn't complain –  Jamil Sep 14 '11 at 11:01
    
@Jamil, I know it's a type, that's the whole point - the compiler is expecting a variable and tries to interpret java.lang.Integer as one, but it's not a valid variable name as it has dots in it. –  Alan Burlison Sep 14 '11 at 11:12

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