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Is there an easy way to convert a

java.lang.Iterable[_]

to a

Scala.Iterable[_]

?

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2 Answers 2

up vote 33 down vote accepted

In Scala 2.8 this became much much easier, and there are two ways to achieve it. One that's sort of explicit (although it uses implicits):

import scala.collection.JavaConverters._

val myJavaIterable = someExpr()

val myScalaIterable = myJavaIterable.asScala

EDIT: Since I wrote this, the Scala community has arrived at a broad consensus that JavaConverters is good, and JavaConversions is bad, because of the potential for spooky-action-at-a-distance. So don't use JavaConversions at all!


And one that's more like an implicit implicit: :)

import scala.collection.JavaConversions._

val myJavaIterable = someExpr()

for (magicValue <- myJavaIterable) yield doStuffWith(magicValue)

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Yes use implicit conversions:

import java.lang.{Iterable => JavaItb}
import java.util.{Iterator => JavaItr}

implicit def jitb2sitb[T](jit: JavaItb[T]): Iterable[T] = new SJIterable(jit);
implicit def jitr2sitr[A](jit: JavaItr[A]): Iterator[A] = new SJIterator(jit)

Which can then be easily implemented:

class SJIterable[T](private val jitb: JavaItr[T]) extends Iterable[T] {
  def elements(): Iterator[T] = jitb.iterator()
}

class SJIterator[T](private val jit: JavaItr[T]) extends Iterator[T] {
  def hasNext: Boolean = jit hasNext

  def next: T = jit next
}
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Thanks, I was hoping there was something like this in the standard Scala libs, but as you've shown, it's not too hard to roll your own. –  Matt R Jul 2 '09 at 10:20
1  
It's ridiculous thinking how much code this would have been the other way around! –  oxbow_lakes Jul 2 '09 at 12:17
5  
This will be in the standard library starting with Scala 2.8. –  Jorge Ortiz Jul 2 '09 at 18:47

protected by om-nom-nom Jun 22 '13 at 12:10

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