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Related to Stack Overflow question Scala equivalent of new HashSet(Collection) , how do I convert a Java collection (java.util.List say) into a Scala collection List?

I am actually trying to convert a Java API call to Spring's SimpleJdbcTemplate, which returns a java.util.List<T>, into a Scala immutable HashSet. So for example:

val l: java.util.List[String] = javaApi.query( ... )
val s: HashSet[String] = //make a set from l

This seems to work. Criticism is welcome!

import scala.collection.immutable.Set
import scala.collection.jcl.Buffer 
val s: scala.collection.Set[String] =
                      Set(Buffer(javaApi.query( ... ) ) : _ *)
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9 Answers 9

up vote 13 down vote accepted

Your last suggestion works, but you can also avoid using jcl.Buffer:

Set(javaApi.query(...).toArray: _*)

Note that scala.collection.immutable.Set is made available by default thanks to Predef.scala.

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7  
This suggestion doesn't work where I want to keep the type information –  oxbow_lakes Mar 24 '09 at 8:50

For future reference: With Scala 2.8, it could be done like this:

import scala.collection.JavaConversions._
val list = new java.util.ArrayList[String]()
list.add("test")
val set = list.toSet

set is a scala.collection.immutable.Set[String] after this.

Also see Ben James' answer for a more explicit way (using JavaConverters), which seems to be recommended now.

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Works like a charm almost every time! –  Jay Taylor Jul 18 '11 at 20:54
7  
@oxbow_lakes I think it's time to mark this answer as the one accepted. –  Nikita Volkov Apr 26 '12 at 22:15
    
Looks like now JavaConversions has some implicits making the toSet call not necessary. –  Rajish Aug 22 '12 at 8:08
    
@Rajish I think it's better if the conversion is explicit (see stackoverflow.com/questions/8301947/…) –  krookedking Mar 17 at 10:37

If you want to be more explicit than the JavaConversions demonstrated in robinst's answer, you can use JavaConverters:

import scala.collection.JavaConverters._
val l = new java.util.ArrayList[java.lang.String]
val s = l.asScala.toSet
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3  
Typing in this code verbatim (yes, including the import line) produces the following in the REPL "error: value asScala is not a member of java.util.ArrayList[java.lang.String]" –  robbbbbb Sep 21 '11 at 8:08
1  
Oops, I missed the ._ wildcard from the import. Fixed. –  Ben James Sep 21 '11 at 9:20

You may also want to explore this excellent library: scalaj-collection that has two-way conversion between Java and Scala collections. In your case, to convert a java.util.List to Scala List you can do this:

val list = new java.util.ArrayList[java.lang.String]
list.add("A")
list.add("B")
list.asScala
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1  
That library is the greatest thing ever. Really really works well. –  Michael Neale Oct 9 '10 at 0:16
3  
Revisiting this after couple of years, Scala's JavaConverters is the way to go. –  Surya Suravarapu Jun 30 '12 at 14:32

You can add the type information in the toArray call to make the Set be parameterized:

 val s = Set(javaApi.query(....).toArray(new Array[String](0)) : _*)

This might be preferable as the collections package is going through a major rework for Scala 2.8 and the scala.collection.jcl package is going away

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You could convert the Java collection to an array and then create a Scala list from that:

val array = java.util.Arrays.asList("one","two","three").toArray
val list = List.fromArray(array)
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2  
This isn't great because my java.util.List is coming back out of a Java API as a parametrized list (so my call to the API yields a java.util.List<String>) - I'm trying to turn this into a scala immutable HashSet –  oxbow_lakes Mar 23 '09 at 18:55
val array = java.util.Arrays.asList("one","two","three").toArray

val list = array.toList.map(_.asInstanceOf[String])
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Another simple way to solve this problem:

import collection.convert.wrapAll._
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JavaConversions (robinst's answer) and JavaConverters (Ben James's answer) have been deprecated with Scala 2.10.

Instead of JavaConversions use:

import scala.collection.convert.wrapAll._

as suggested by aleksandr_hramcov.

Instead of JavaConverters use:

import scala.collection.convert.decorateAll._

For both there is also the possibility to only import the conversions/converters to Java or Scala respectively, e.g.:

import scala.collection.convert.wrapAsScala._
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