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I want to copy file a.txt to newDir/ from within a scala script. In java this would be done by creating 2 file streams for the 2 files, reading into buffer from a.txt and writing it to the FileOutputStream of the new file. Is there a better way to achieve this in scala? May be something in I searched around but could not find much.

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9 Answers 9

Why not use Apache Commons IO and FileUtils.copyFile() in particular ? Note that FileUtils has a large number of methods to copy files/directories etc.

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Downvoted why ? Reuse of an existing component for this seems pragmatic to me. –  Brian Agnew Feb 9 '10 at 11:02

For performance reasons it is better to use java.nio.Channel to do the copying.

Listing of copy.scala:

val src = new File(args(0))
val dest = new File(args(1))
new FileOutputStream(dest) getChannel() transferFrom(
    new FileInputStream(src) getChannel, 0, Long.MaxValue )

To try this out create a file called test.txt with the following content:

Hello World

After creating test.txt, run the following from the command line:

scala copy.scala test.txt test-copy.txt

Verify that test-copy.txt has Hello World as its content.

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A side-benefit of my solution is that it supports binary files. A side-effect is that it ties you to Java, which is bad if you intend to run your Scala code on .NET. –  Alain O'Dea Jul 14 '10 at 15:25
That's also much nicer code than dealing with the bytes yourself. –  Marcus Downing Aug 8 '10 at 15:54
This is a great answer and should be the accepted solution IMO. One thing to note, you may need to call dest.createNewFile as the FileInputStream will fail if dest does not exist. Also, you may need dest.getCanonicalFile.getParentFile.mkdirs to create any parent directories of the dest file. –  Synesso Dec 5 '10 at 3:51
Oh, and src and dest are the wrong way around. –  Synesso Dec 5 '10 at 4:05
Oops. src and dest mix-up is now fixed. –  Alain O'Dea Dec 14 '10 at 18:54

Java 7 is now out and you have another option: java.nio.file.Files.copy. The probably easiest solution (And with Scalas superior import even easier). Provided that from and to are strings as in your question:

import java.nio.file.StandardCopyOption.REPLACE_EXISTING
import java.nio.file.Files.copy
import java.nio.file.Paths.get

implicit def toPath (filename: String) = get(filename)

copy (from, to, REPLACE_EXISTING)

Of course you should start using java.nio.file.Paths instead of strings.

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How about recursive file copying? –  DavidG Nov 14 '13 at 18:00
How about trying to read the Manual before asking Questions:… Works very well with Scala –  Martin Nov 17 '13 at 8:41

If you really want to do it yourself instead of using a library like commons-io, you can do the following in version 2.8. Create a helper method "use". It will give you a form of automatic resource management.

def use[T <: { def close(): Unit }](closable: T)(block: T => Unit) {
  try {
  finally {

Then you can define a copy method like this:


def copy(from: String, to: String) {
  use(new FileInputStream(from)) { in =>
    use(new FileOutputStream(to)) { out =>
      val buffer = new Array[Byte](1024)
          .takeWhile(_ != -1)
          .foreach { out.write(buffer, 0 , _) }

Note that the buffer size (here: 1024) might need some tuning.

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IMO, the nio.Channel solution is much simpler –  Graham Lea Aug 12 '11 at 9:54
this approach is usable across many more types of Streams –  Adam Rabung Apr 18 '13 at 15:53
The nio is indeed simpler, but this snippet is so cool! Classic Scala. –  corwin.amber Nov 19 '14 at 20:23

If you don't care too much about speed, you can make your life slightly easier by reading the file using (this implementation is for 2.7.7):

def copyF(from:, to: String) {
  val out = new new );
  io.Source.fromFile(from).getLines.foreach(s => out.write(s,0,s.length));

But Source goes to all the trouble of parsing the file line by line, and then you just write it out again without actually processing the lines. Using byte read/write Java style will be considerably faster (about 2-3x last time I benchmarked it).

Edit: 2.8 eats newlines, so you have to add them back in the write.

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I might have large number of files and different types of files to copy. The files can also quite big in size. Would slurp() or any other apis in the scalax help? –  kulkarni Feb 9 '10 at 1:14
In that case, I'd say Brian's suggestion is the right one--use the Apache Commons IO. It's made to do just what you want, and Scala is made to use Java libraries. –  Rex Kerr Feb 9 '10 at 15:05
-1. Messes up newlines on my system. –  aioobe Apr 11 '11 at 14:45
@aioobe - This answer was for 2.7.7, as I stated. 2.8 eats newlines. You also have to add () after getLines in 2.8. –  Rex Kerr Apr 11 '11 at 16:46
Ah, didn't know they changed the implementation! Changed to +1 –  aioobe Apr 11 '11 at 18:31

If you don't wanna use anything external, just do it as you would have done it in Java. The nice thing, is that you can.

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Hire sbt.IO. It's pure scala, it can copy only changed files, has usefull routines like copyDirectory, delete, listFiles etc . You can use it as follow:

import sbt._
IO.copyFile(file1, file2)

Note you should add proper dependency:

libraryDependencies += "org.scala-sbt" % "io" % "0.13.0"

EDIT: Actually this is not a good approach since dependency "org.scala-sbt" % "io" % "version" was compiled using particular scala version and for now you cannot use it with 2.10.X scala version. But maybe in future you will can add double %% in you dependency like "org.scala-sbt" %% "io" % "version" and it will work...

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Scalax has : File). But developement seems to have stopped.

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Link is dead... –  Luigi Plinge Sep 5 '11 at 1:36

From scala-io documentation:

import Resource._

fromFile("a.txt") copyDataTo fromFile("newDir/a.txt")
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