Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm having trouble converting a java SortedMap into a scala TreeMap. The SortedMap comes from deserialization and needs to be converted into a scala structure before being used.

Some background, for the curious, is that the serialized structure is written through XStream and on desializing I register a converter that says anything that can be assigned to SortedMap[Comparable[_],_] should be given to me. So my convert method gets called and is given an Object that I can safely cast because I know it's of type SortedMap[Comparable[_],_]. That's where it gets interesting. Here's some sample code that might help explain it.

// a conversion from comparable to ordering
scala> implicit def comparable2ordering[A <: Comparable[A]](x: A): Ordering[A] = new Ordering[A] {
     |     def compare(x: A, y: A) = x.compareTo(y)
     |   }
comparable2ordering: [A <: java.lang.Comparable[A]](x: A)Ordering[A]

// jm is how I see the map in the converter. Just as an object. I know the key
// is of type Comparable[_]
scala> val jm : Object = new java.util.TreeMap[Comparable[_], String]()        
jm: java.lang.Object = {}

// It's safe to cast as the converter only gets called for SortedMap[Comparable[_],_]
scala> val b = jm.asInstanceOf[java.util.SortedMap[Comparable[_],_]]
b: java.util.SortedMap[java.lang.Comparable[_], _] = {}

// Now I want to convert this to a tree map
scala> collection.immutable.TreeMap() ++ (for(k <- b.keySet) yield { (k, b.get(k))  })
<console>:15: error: diverging implicit expansion for type Ordering[A]
starting with method Tuple9 in object Ordering
       collection.immutable.TreeMap() ++ (for(k <- b.keySet) yield { (k, b.get(k))  })
share|improve this question
    
(Edited.) How are two comparables supposed to put themselves into ordering? I don't quite understand. The keys are supposed to be ordered in a TreeMap. They keys are Comparable[]. So you need to order Comparables. So you need an Ordering[Comparable[]]. –  Rex Kerr Jan 29 '10 at 18:54

2 Answers 2

up vote 2 down vote accepted

Firstly, to clarify your error:

// The type inferencer can't guess what you mean, you need to provide type arguments.
// new collection.immutable.TreeMap  
// <console>:8: error: diverging implicit expansion for type Ordering[A]
//starting with method Tuple9 in object Ordering
//       new collection.immutable.TreeMap
//       ^

You can write an implicit to treat Comparable[T] as Ordering[T] as follows.

// This implicit only needs the type parameter.
implicit def comparable2ordering[A <: Comparable[A]]: Ordering[A] = new Ordering[A] {
   def compare(x: A, y: A) = x.compareTo(y)
}

trait T extends Comparable[T]

implicitly[Ordering[T]]

However, if you really don't know the type of the key, I don't think you can create the Ordering in terms of Comparable#compareTo, at least without reflection:

val comparableOrdering = new Ordering[AnyRef] {
  def compare(a: AnyRef, b: AnyRef) = {
    val m = classOf[Comparable[_]].getMethod("compareTo", classOf[Object])
    m.invoke(a, b).asInstanceOf[Int]
  }
}
new collection.immutable.TreeMap[AnyRef, AnyRef]()(comparableOrdering)
share|improve this answer
    
I think whenever possible an Ordering is preferable to an implicit conversion to Ordered. The latter will be invoked for every comparison the sorting or other order-sensitive algorithm needs. –  Randall Schulz Jan 30 '10 at 15:31
    
Thanks retronym. Unfortunately I don't know the type, which makes it a slightly messy problem. The code you've written works great though. –  Dave Feb 1 '10 at 10:21

You can probably also just give an explicit type to the TreeMap. That's how I just solved a similar problem:

collection.immutable.TreeMap[whatever,whatever]() ++ ...

(Sorry, I don't have the time to check how exactly this applies to the sources posted in the question.)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.