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I can find tons of examples but they seem to either rely mostly on Java libraries or just read characters/lines/etc.

I just want to read in some file and get a byte array with scala libraries - can someone help me with that?

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2  
I think relying on Java libraries is what (almost?) everyone would do, the Scala library included. See for instance the source code of scala.io.Source. –  Philippe Sep 29 '11 at 13:44
1  
You're not using a different language, just a standard JVM API that has proved good enough not to need replacing! –  Duncan McGregor Sep 29 '11 at 14:12
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Well, how do you think the Java classes are implemented? Deep down, somewhere, there is a native method: it has just a signature, no Java implementation, and relies on an OS-specific C implementation. Isn't that cheating too? :) –  Philippe Sep 29 '11 at 14:47
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It should be said that Scala on .Net does make this a more pressing issue. –  Duncan McGregor Sep 29 '11 at 20:19
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@Philippe: Sure, and using C is only cheating on assembly :P... What I meant is just, that the border between languages is usually rather clearly defined, Scala and Java sort of melt into each other. –  fgysin Sep 30 '11 at 9:59

6 Answers 6

up vote 17 down vote accepted

Edit: As has been noted in some comments on SO and elsewhere, this may not be the best solution anymore (nor do I know whether it’s ever been). Please look through the other answers here as well, do your testing and upvote those other answers, if they do work. Unfortunately, of course, I cannot unaccept this answer myself.

scala.io.Source.fromFile(fileName).map(_.toByte).toArray

(or toArray before map?)

Note that this may leave the file opened, so you’ll probably have to do:

val source = scala.io.Source.fromFile(fileName)
val byteArray = source.map(_.toByte).toArray
source.close()

Edit: If you need to load a specific encoding, you may want to use the fact that Source.fromFile accepts a scala.io.Codec as an implicit parameter (see API):

def fromFile(name: String)(implicit codec: Codec): BufferedSource

or, you may use a String as a second parameter, specifying a java.nio.charset.Charset:

def fromFile(name: String, enc: String): BufferedSource

Thus, for 8 bit binary data, it may be appropriate to use something like:

scala.io.Source.fromFile(fileName)(scala.io.Codec.ISO8859)
// or
scala.io.Source.fromFile(fileName, "ISO-8859-1")

and for UTF-8 data, it would be

scala.io.Source.fromFile(fileName)(scala.io.Codec.UTF8)
// or
scala.io.Source.fromFile(fileName, "UTF-8")
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6  
Try scala.io.Source.fromFile(fileName)(scala.io.Codec.ISO8859).map(_.toByte).toArra‌​y then. –  Debilski Sep 29 '11 at 13:58
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If you just need the bytes, doesn't this do useless char-code decoding? Wouldn't it be more efficient (albeit less functional) to use a plain Java FileInputStream? –  Cristian Vrabie Apr 19 '12 at 12:49
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I agree with Cristian. I would suggest going with jus12's answer –  Spencer Stejskal Sep 13 '12 at 19:32
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I also agree with Christian. Reading the bytes as ISO-8859-1 chars and converting them back to bytes is very inefficient and probably won't work - not all byte values are valid ISO-8859-1 code points. –  Jona Christopher Sahnwaldt Jul 29 '13 at 23:05
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I agree with the other comments. This approach (especially reading byte for byte) is both slow and depends on a character encoding (which you don't need if you want to read bytes). Please down-vote. –  Dibbeke Jun 23 at 11:27

This should work (Scala 2.8):

val bis = new BufferedInputStream(new FileInputStream(fileName))
val bArray = Stream.continually(bis.read).takeWhile(-1 !=).map(_.toByte).toArray
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I think this is a great example of wrapping a Java API function to get Stream semantics. Much appreciated. –  qu1j0t3 Oct 28 '12 at 22:37
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val bis = new java.io.BufferedInputStream(new java.io.FileInputStream(fileName)); if you do not have the java paths imported –  BeniBela Sep 21 '13 at 16:29
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Using this approach, is closing the file also needed or is it implicit? –  Max Nov 20 '13 at 0:18
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You need to close it yourself –  Tony K. Apr 1 at 23:41

Java 7:

import java.nio.file.{Files, Paths}

val byteArray = Files.readAllBytes(Paths.get("/path/to/file"))

I believe this is the simplest way possible. Just leveraging existing tools here. NIO.2 is wonderful.

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amazingly, this worked much better for me than the top-voted one –  Electric Coffee Jun 4 at 9:25

You might also consider using scalax.io:

scalax.io.Resource.fromFile(fileName).byteArray
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The library scala.io.Source is problematic, DON'T USE IT in reading binary files.

The error can be reproduced as instructed here: https://github.com/liufengyun/scala-bug

In the file data.bin, it contains the hexidecimal 0xea, which is 11101010 in binary and should be converted to 234 in decimal.

The main.scala file contain two ways to read the file:

import scala.io._
import java.io._

object Main {
  def main(args: Array[String]) {
    val ss = Source.fromFile("data.bin")
    println("Scala:" + ss.next.toInt)
    ss.close

    val bis = new BufferedInputStream(new FileInputStream("data.bin"))
    println("Java:" + bis.read)
    bis.close
  }
}

When I run scala main.scala, the program outputs follows:

Scala:205
Java:234

The Java library generates correct output, while the Scala library not.

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1  
If I set the encoding to Source.fromFile("data.bin", "ISO8859-1"), it works well. –  fengyun liu Jan 21 at 15:57
val is = new FileInputStream(fileName)
val cnt = is.available
val bytes = Array.ofDim[Byte](cnt)
is.read(bytes)
is.close()
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