I have a Java API that returns a List like:

public List<?> getByXPath(String xpathExpr)

I am using the below scala code:

val lst = node.getByXPath(xpath)

Now if I try scala syntax sugar like:

lst.foreach{ node => ... }

it does not work. I get the error:

value foreach is not a member of java.util.List[?0]

It seems I need to convert Java List to Scala List. How to do that in above context?

  • 1
    possible duplicate of Converting Java collection into Scala collection – Kim Stebel Jun 15 '11 at 11:00
  • @Kim: I'm not sure it's appropriate to close this as a duplicate of that particular question -- that particular question talks about Scala 2.7, and the scala.collection.jcl package doesn't exist anymore in Scala 2.8 and 2.9. – Ken Bloom Jun 15 '11 at 15:08
up vote 165 down vote accepted

Since Scala 2.8 this conversion is now built into the language using:

import scala.collection.JavaConversions._

...

lst.toList.foreach{ node =>   .... }

works. asScala did not work

  • 5
    can you elaborate as to why asScala doesn't work ? – Brian Agnew Jul 19 '12 at 11:01
  • 13
    On 2.10.4 I had to import scala.collection.JavaConverters._ otherwise I got "value asScala is not a member of java.util.List[String]" – dranxo May 23 '14 at 23:27
  • 9
    JavaConversions are deprecated since 2.12.0. Use JavaConverters instead. – Yaroslav Apr 5 '17 at 10:47

There's a handy Scala object just for this - scala.collection.JavaConverters

You can do the import and asScala afterwards as follows:

import scala.collection.JavaConverters._

val lst = node.getByXPath(xpath).asScala
lst.foreach{ node =>   .... }

This should give you Scala's Buffer representation allowing you to accomplish foreach.

  • 6
    JavaConverters should be preferred over JavaConversions since it makes the conversion explicit (and avoids accidental conversions that may be confusing). (I.e., this is the correct answer) – Mark Sep 18 '14 at 17:34

I was looking for an answer written in Java and surprisingly couldn't find any clean solutions here. After a while I was able to figure it out so I decided to add it here in case someone else is looking for the Java implementation (I guess it also works in Scala?):

JavaConversions.asScalaBuffer(myJavaList).toList()

If you have to convert a Java List<ClassA> to a Scala List[ClassB], then you must do the following:

1) Add

import scala.collection.JavaConverters._

2) Use methods asScala, toList and then map

List <ClassA> javaList = ...
var scalaList[ClassB] = javaList.asScala.toList.map(x => new ClassB(x))

3) Add the following to the ClassB constructor that receives ClassA as a parameter:

case class ClassB () {
   def this (classA: ClassA) {
      this (new ClassB (classA.getAttr1, ..., classA.getAttrN))
   }
}

Since scala 2.8.1 use JavaConverters._ to convert scala and Java collections using asScala and asJava methods.

import scala.collection.JavaConverters._

javalist.asScala

scalaSeq.asJava

see the Conversion relationship scala doc site

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