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Warning: I'm cross-posting from #scala

The book Programming in Scala states that path-dependent types are different depending on the exact instance of the path in question. If so, I don't understand why all the following predicates return true:

class Outer {
  val in = new Inner
  class Inner
}

val o1 = new Outer
val o2 = new Outer

o1.in.isInstanceOf[Outer#Inner] //makes perfect sense
o1.in.isInstanceOf[o1.Inner]    //still makes sense, the path-dependent type is o1's own
o1.in.isInstanceOf[o2.Inner]    //why is this true? PiS p.423 says the path-dependent types are different, they only share a common supertype Outer#Inner
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3  
Looks like a bug to me, but it might be a result of erasure. Matching, which is preferred over isInstanceOf/asInstanceOf, works as expected. –  Daniel C. Sobral Jun 22 '10 at 21:17

1 Answer 1

up vote 8 down vote accepted

o1.Inner and o2.Inner are different types, but their erasures are the same:

scala> class Outer {
     |   val in = new Inner
     |   class Inner
     | }
defined class Outer

scala> val o1 = new Outer
o1: Outer = Outer@1d16ecf

scala> val m1 = implicitly[Manifest[o1.Inner]]
m1: Manifest[o1.Inner] = Outer@1d16ecf.type#Outer$Inner

scala> m1.erasure
res0: java.lang.Class[_] = class Outer$Inner

scala> val o2 = new Outer
o2: Outer = Outer@138ef1d

scala> val m2 = implicitly[Manifest[o2.Inner]]
m2: Manifest[o2.Inner] = Outer@138ef1d.type#Outer$Inner

scala> m2.erasure
res1: java.lang.Class[_] = class Outer$Inner

and o1.in.isInstanceOf[o2.Inner] can only check that o1.in is an instance of the erasure of o2.Inner.

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