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This might not be the most correct terminology but what I mean by boxed type is Box[T] for type T. So Option[Int] is a boxed Int.

How might one go about extracting these types? My naive attempt:

//extractor
type X[Box[E]] = E //doesn't compile. E not found

//boxed
type boxed = Option[Int]

//unboxed
type parameter = X[boxed] //this is the syntax I would like to achieve
implicitly[parameter =:= Int] //this should compile

Is there any way to do this? Apart from the Apocalisp blog I have hard time finding instructions on type-level meta-programming in Scala.

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Which would be a use case where you have the higher-kind-type (what you call 'boxed') but not its type parameter? I can't imagine any scenario in which your parameter would occur or be useful? –  0__ Aug 23 '12 at 15:18
    
This is more of an exploration of scala typesystem and I don't have any usecases –  edofic Aug 23 '12 at 15:54

1 Answer 1

up vote 2 down vote accepted

I can only imagine two situations. Either you use type parameters, then if you use such a higher-kinded-type, e.g. as argument to a method, you will have its type parameter duplicated in the method generics:

trait Box[E]

def doSomething[X](b: Box[X]) { ... } // parameter re-stated as `X`

or you have type members, then you can refer to them per instance:

trait Box { type E }

def doSomething(b: Box) { type X = b.E }

...or generally

def doSomething(x: Box#E) { ... }

So I think you need to rewrite your question in terms of what you actually want to achieve.

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combination of #1 and #2 will do the trick. thanks –  edofic Aug 23 '12 at 15:55

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