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Please bear with me, I am still pretty noobish with Scala. I have the following code:

private lazy val keys : List[String] = obj.getKeys().asScala.toList

obj.getKeys returns a java.util.Iterator

Calling asScala, via JavaConverers (which is imported) according to the docs..

java.util.Iterator <==> scala.collection.Iterator 

scala.collection.Iterator defines

def toList : List[A] 

So based on this I believed this should work, however here is the compilation error.

[scalac]  <file>.scala:11: error: type mismatch;
[scalac]  found   : List[?0] where type ?0
[scalac]  required: List[String]
[scalac]  private lazy val keys : List[String] = obj.getKeys().asScala.toList
[scalac]  one error found

I understand the type parameter or the java Iterator is a Java string, and that I am trying to create a list of Scala strings, but (perhaps naively) thought that there would be an implicit conversion.

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3 Answers 3

up vote 7 down vote accepted

That would work if obj.getKeys() was a java.util.Iterator<String>. I suppose it is not.

If obj.getKeys() is just java.util.Iterator in raw form, not java.util.Iterator<String>, not even java.util.Iterator<?>, this is something scala tend to dislikes, but anyway, there is no way scala will type your expression as List[String] if it has no guarantee obj.getKeys() contains String.

If you know your iterator is on Strings, but the type does not say so, you may cast :

obj.getKeys().asInstanceOf[java.util.Iterator[String]]

(then go on with .asScala.toList)

Note that, just as in java and because of type erasure, that cast will not be checked (you will get a warning). If you want to check immediately that you have Strings, you may rather do

obj.getKeys().map(_.asInstanceOf[String])

which will check the type of each element while you iterate to build the list

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1  
Thanks very much for the answer! seems like you and Matthew Farwell agree for the most part. I did what you suggest, obj.getKeys().asInstanceOf[java.util.Iterator[String]].asScala.toList and that seems to work, and I did not get a compilation warning. –  rshepherd Sep 28 '11 at 22:07

You don't need to call asScala, it is an implicit conversion:

import scala.collection.JavaConversions._

val javaList = new java.util.LinkedList[String]() // as an example

val scalaList = javaList.iterator.toList

If you really don't have the type parameter of the iterator, just cast it to the correct type:

javaList.iterator.asInstanceOf[java.util.Iterator[String]].toList

EDIT: Some people prefer not to use the implicit conversions in JavaConversions, but use the asScala/asJava decorators in JavaConverters to make the conversions more explicit.

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You are right, there is no type parameter for the Iterator that is being returned from the getKeys() method. Very astute observation, thank you. Though it appears I do need the asScala in there, in that case. Perhaps there is something else I am missing. –  rshepherd Sep 28 '11 at 22:05
    
The implicit conversion is on JavaConversions, but not on JavaConverters. That uses asScala. Many people, myself included, prefer to make this conversion explicit to avoid subtle bugs. –  Daniel C. Sobral Oct 1 '11 at 22:59
    
@Daniel I guess making stuff explicit is a good idea, thanks for the tip. –  Matthew Farwell Oct 1 '11 at 23:05

I dislike the other answers. Hell, I dislike anything that suggests using asInstanceOf unless there's no alternative. In this case, there is. If you do this:

private lazy val keys : List[String] = obj.getKeys().asScala.collect { 
    case s: String => s 
}.toList

You turn the Iterator[_] into a Iterator[String] safely and efficiently.

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