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Assume the following trait:

trait A {
  type B       
}

Is there any way of making this into an ordered type, where only A's with the same B's can be compared, and this is enforced in compile time?

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1  
    
@user44242 Ok, Miles elaborated it. –  Peter Schmitz May 11 '11 at 13:58

2 Answers 2

up vote 4 down vote accepted

Yes, via an implicit (with a type alias to make things a little more DRY),

type AA[T] = A { type B = T }

implicit def aIsOrdered[T](a : AA[T]) = new Ordered[AA[T]] {
  def compare(that : AA[T]) = 0
}

Sample REPL session,

scala> val ai1 = new A { type B = Int }
ai1: java.lang.Object with A{type B = Int} = $anon$1@1ec264c

scala> val ai2 = new A { type B = Int }
ai2: java.lang.Object with A{type B = Int} = $anon$1@1a8fb1b

scala> val ad = new A { type B = Double }
ad: java.lang.Object with A{type B = Double} = $anon$1@891a0

scala> ai1 < ai2
res2: Boolean = false

scala> ai1 < ad
<console>:16: error: type mismatch;
 found   : ad.type (with underlying type java.lang.Object with A{type B = Double})
 required: AA[Int]
       ai1 < ad
             ^

Edit ...

Thanks to the implicit definitions in scala.math.LowPriorityOrderingImplicits this defintion is sufficient to provide us with corresponding Ordering type class instances. This allows us to use A with types which require Orderings, eg. a scala.collection.SortedSet,

scala> implicitly[Ordering[AA[Int]]]
res0: Ordering[AA[Int]] = scala.math.LowPriorityOrderingImplicits$$anon$4@39cc63

scala> import scala.collection.SortedSet
import scala.collection.SortedSet

scala> val s = SortedSet(ai1, ai2)
s: scala.collection.SortedSet[java.lang.Object with A{type B = Int}] = TreeSet($anon$1@1a8fb1b)
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Uh, so you can use a type alias to extract a type memeber back into a type parameter? I was looking for this some time ago. –  ziggystar May 11 '11 at 15:08
    
Two questions: How would you generate an ordering that would work for SortedSet, and would this work if the method accepts A's only, and the B is lost? –  user44242 May 11 '11 at 15:15
    
If you method accept plain A's without the refinement then the behaviour is equivalent to what you would expect with a wildcarded type parameter (ie. a hidden abstract type member is equivalent to a wildcarded type parameter). –  Miles Sabin May 11 '11 at 17:09
    
See the edit for Orderings and SortedSets ... –  Miles Sabin May 11 '11 at 17:17
    
So basically, once I have to explicitly type a variable, unless I type it with the refinement, I lose the refinement? Basically, this means that anytime I try to put these things in a collection, I lose the ordering defined. –  user44242 May 12 '11 at 6:42

How about making B a parameter of A?

trait A[B] {
    compare(x: A[B]): Int
}
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The use of abstract types is precisely to remove the need to carry the B around anywhere a dependency on type A is defined –  user44242 May 11 '11 at 14:43

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