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  trait B {
    type MyInnerType
    def foo: MyInnerType
  }      
  object B1 extends B {
    type MyInnerType = Double
    val foo = 3.0
  }

  trait A {
    type MyInnerType
    val b: B
    def foo(x: b.MyInnerType): MyInnerType
    def bar(y: MyInnerType): Unit
  }
  object A1 extends A {
    type MyInnerType = Int
    val b = B1
    def foo(x: b.MyInnerType) = 1
    def bar(y: MyInnerType) {}
  }
  object A2 extends A {
    type MyInnerType = String
    val b = B1
    def foo(x: b.MyInnerType) = "a"
    def bar(y: MyInnerType) {}
  }

  val as = Seq(A1, A2)
  as foreach { a => a.bar(a.foo(a.b.foo)) }   // wrong, a.foo(a.b.foo) infers to Any

However, if a.foo does not take parameters, everything works perfectly and a.foo infers to a.MyInnerType. It also works if I cast .asInstanceOf[a.MyInnerType]. Any explanations?

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I don't know the full answer (and I gotta split), but I think I know where the real problem is. It's the inferred type of as. Change it to val as: Seq[A] = Seq(A1, A2) and you should be good to go. –  Derek Wyatt Jan 4 '13 at 22:07
    
:Seq[A] Did not helped –  idonnie Jan 4 '13 at 22:17
    
My fault - pasted the same code. Works when annotating them –  idonnie Jan 4 '13 at 22:35
    
Seems to be a weird problem of type inference. Anyway that's a solution and thanks guys. –  Kane Jan 5 '13 at 22:51

1 Answer 1

up vote 1 down vote accepted

I'm running scala 2.9.1 and on the REPL I get this for as:

scala> val as = Seq(A1, A2)
as: Seq[ScalaObject with A{def foo(x: Double): Any; val b: B1.type; type MyInnerType >: java.lang.String with Int}] = List(A1$@6da13047, A2$@7168bd8b)

However, when I change it to val as:Seq[A] = Seq(A1, A2) I get:

scala> val as:Seq[A] = Seq(A1, A2)
as: Seq[A] = List(A1$@6da13047, A2$@7168bd8b)

scala> as foreach { a => a.bar(a.foo(a.b.foo)) }

Sometimes (all the time) scala has trouble inferring types, so you have to annotate what you want. I go to the REPL often to find out what's really going on.

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Hmm that's interesting. I also believe that scala is doing some over-inference here: I don't want x to be inferred as Double, since it depends on instances. Anyway the problem is solved. thanks! –  Kane Jan 5 '13 at 22:54

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