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can someone assist me understanding this code

case "Foo" Foo(data) -> _ => { /*.. implementation */}

I see the usage of Foo.unapply(data) but I don't understand what this part

-> _

how and when to use it

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There is a popular question that also cover your problem stackoverflow.com/questions/7888944/… –  ɭɘ ɖɵʊɒɼɖ 江戸 Aug 28 '13 at 15:24
1  
btw you can easily understand this code if you use intellij gyazo.com/dcf31d20ccb925bed0e302fd45df7710.png or if you process it with scala x-ray scastie.org/2026 –  OlegYch Aug 28 '13 at 17:32
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1 Answer

up vote 23 down vote accepted

It looks like someone is being way too clever for their own good. Suppose I've got the following:

case class Foo[A](command: String, data: A)

object -> { def unapply[A, B](p: (A, B)) = Some(p) }

Now I can write this:

scala> Foo("foo", (42, 'whatever)) match {
     |   case "foo" Foo(data) -> _ => data
     | }
res0: Int = 42

Thanks to the magic of Scala's infix patterns, this is equivalent to the following:

Foo("foo", (42, 'whatever)) match {
  case Foo("foo", data -> _) => data
}

Except that the infix version is guaranteed to confuse and annoy your code's future readers.

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+1 because you understood the case right away. And for the scala magic –  ɭɘ ɖɵʊɒɼɖ 江戸 Aug 28 '13 at 15:30
1  
Wow. I didn't know that the compiler could perform that transform--moving the -> _ inside the parens, essentially? Or is that not what's going on? –  Rex Kerr Aug 28 '13 at 15:51
2  
@RexKerr: The parentheses aren't actually doing any work here—you could just as well (i.e., horribly) write case "foo" Foo data -> _. –  Travis Brown Aug 28 '13 at 15:53
1  
Oh, oh, of course. It is so tempting to interpret Foo(...) as the highest precedence instead of parens as a useless wrapper around data. –  Rex Kerr Aug 28 '13 at 15:55
1  
That is definitely a Scala puzzler! –  sschaef Aug 28 '13 at 16:03
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