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I use Scala 2.10.3.
I have result.iterator() returning Iterator<java.util.Map<String, Object>>. (in Java so)

I want to convert it to the Scala equivalent.
I use import scala.collection.JavaConversions._ to try to do the trick.

However it seems that it is unable to take into account type parameters, in this case, it can convert java.util.Iterator to the Scala equivalent, but fails to convert java.util.Map in the Scala equivalent.

Indeed, a compiler error occurs at this line:

val results: Iterator[Map[String, AnyRef]] = result.iterator()

    type mismatch;
     found   : java.util.Iterator[java.util.Map[String,Object]]
     required: scala.collection.Iterator[scala.collection.immutable.Map[String,AnyRef]]
     val results: Iterator[Map[String, AnyRef]] = result.iterator()
                                                                ^

Is there a short way to do the trick?

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4  
JavaConversions is deprecated, you should favour JavaConverters as suggested by @senia –  Kevin Wright Jan 28 '14 at 13:25

1 Answer 1

up vote 5 down vote accepted

You could explicitly specify what you want to convert using JavaConverters instead of JavaConversions like this:

import scala.collection.JavaConverters._
def javaIt: java.util.Iterator[java.util.Map[String, Object]] = ???

def scalaIt = javaIt.asScala map {_.asScala}
// Iterator[scala.collection.mutable.Map[String,Object]]
share|improve this answer
    
Nice :) thanks a lot –  Mik378 Jan 28 '14 at 13:22
1  
@Mik378 An accepted answer is thanks enough :) –  Kevin Wright Jan 28 '14 at 13:25
    
@Kevin Wright Yes of course, but it takes at least 3 minutes to validate an answer. (stackoverflow prevents otherwise) –  Mik378 Jan 28 '14 at 13:26

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