44

With Scala, what is the best way to read from an InputStream to a bytearray?

I can see that you can convert an InputStream to char array

Source.fromInputStream(is).toArray()

12 Answers 12

50

How about:

Stream.continually(is.read).takeWhile(_ != -1).map(_.toByte).toArray

Update: use LazyList instead of Stream (since Stream is deprecated in Scala 3)

LazyList.continually(is.read).takeWhile(_ != -1).map(_.toByte).toArray
7
  • 1
    Could you explain the difference between this and the variant in the question?
    – Jus12
    Mar 2, 2011 at 20:25
  • @Jus12 I was looking for a byte array. What I have in the question, is a way to obtain the char array.
    – rahul
    Apr 4, 2011 at 3:45
  • 12
    Won't that create a huge linked list, then convert it to an array? That doesn't look very efficient, in time or memory. May 6, 2011 at 18:58
  • 1
    It looks like this does not create a linked list after all. Stream.continually produces an iterator, and takeWhile and map seem to convert iterators to iterators. E.g. evaluating Array(1, 2, 3, 4, -1).iterator.takeWhile(-1 !=).map(_.toByte) in a Scala 2.9.3 REPL gives me Iterator[Byte] = non-empty iterator.
    – mikhail_b
    Feb 4, 2014 at 2:24
  • 1
    This seemed to cause OOM errors for me. Things were GC'd eventually but the spikes were beyond what my server could handle.
    – James Ward
    Sep 2, 2014 at 0:49
47

Just removed bottleneck in our server code by replacing

Stream.continually(request.getInputStream.read()).takeWhile(_ != -1).map(_.toByte).toArray

with

org.apache.commons.io.IOUtils.toByteArray(request.getInputStream)

Or in pure Scala:

def bytes(in: InputStream, initSize: Int = 8192): Array[Byte] = {
  var buf = new Array[Byte](initSize)
  val step = initSize
  var pos, n = 0
  while ({
    if (pos + step > buf.length) buf = util.Arrays.copyOf(buf, buf.length << 1)
    n = in.read(buf, pos, step)
    n != -1
  }) pos += n
  if (pos != buf.length) buf = util.Arrays.copyOf(buf, pos)
  buf
}

Do not forget to close an opened input stream in any case:

val in = request.getInputStream
try bytes(in) finally in.close()
4
  • That's org.apache.commons.io.IOUtils.toByteArray, in case anyone was wondering.
    – Haakon
    Jun 14, 2013 at 21:16
  • This definitely feels faster. Anyone done any benchmarks or tests with larger files? Oct 9, 2015 at 13:49
  • Thank you. I had huge issues with GC Overhead errors running this with Apache Spark, where 90% of the time my tasks spent in GC. Replacing with toByteArray massively sped up things.
    – hermansc
    Oct 21, 2015 at 8:53
  • It's important to point out how this solution can really drastically out-perform the alternatives, where you have things like map(_.toByte) iterating over the input byte-by-byte... Do this you are working with big-data! Dec 7, 2017 at 22:26
20

In a similar vein to Eastsun's answer... I started this as a comment, but it ended up getting just a bit to long!

I'd caution against using Stream, if holding a reference to the head element then streams can easily consume a lot of memory.

Given that you're only going to read in the file once, then Iterator is a much better choice:

def inputStreamToByteArray(is: InputStream): Array[Byte] =
  Iterator continually is.read takeWhile (-1 !=) map (_.toByte) toArray
14
import scala.tools.nsc.io.Streamable
Streamable.bytes(is)

Don't remember how recent that is: probably measured in days. Going back to 2.8, it's more like

new Streamable.Bytes { def inputStream() = is } toByteArray
4
  • 1
    Is it safe to use stuff from scala.tools packages? Are they even a part of the standard library?
    – Y.H Wong
    Feb 5, 2011 at 7:20
  • No. But if you want to know how to write it, there it is.
    – psp
    Feb 5, 2011 at 8:14
  • 2
    It seems to have moved to the more standard scala.reflect.io package now.
    – Thilo
    Oct 7, 2015 at 2:29
  • 1
    scala.reflect.io.Streamable.bytes May 9, 2017 at 20:03
11

With Scala IO, this should work:

def inputStreamToByteArray(is: InputStream): Array[Byte] = 
   Resource.fromInputStream(in).byteArray
7

With better-files, you can simply do is.bytes

1
  • 3
    better.files should just be in std lib. It is so much better. Also if you want Array[Byte] you need to use is.byteArray instead. Nov 8, 2019 at 12:04
3

Source.fromInputStream(is).map(_.toByte).toArray

1
2

How about buffered version of solution based on streams plus ByteArraOutputStream to minimize boilerplate around final array growing?

val EOF: Int = -1

def readBytes(is: InputStream, bufferSize: Int): Array[Byte] = {
  val buf = Array.ofDim[Byte](bufferSize)
  val out = new ByteArrayOutputStream(bufferSize)

  Stream.continually(is.read(buf)) takeWhile { _ != EOF } foreach { n =>
    out.write(buf, 0, n)
  }

  out.toByteArray
}
1

Here's an approach using scalaz-stream:

import scalaz.concurrent.Task
import scalaz.stream._
import scodec.bits.ByteVector

def allBytesR(is: InputStream): Process[Task, ByteVector] =
  io.chunkR(is).evalMap(_(4096)).reduce(_ ++ _).lastOr(ByteVector.empty)
2
  • probably no reason to reduce, that would defeat the incremental nature of streams
    – OlegYch
    Mar 7, 2016 at 15:15
  • The reason is that the question asks for a byte array. Mar 7, 2016 at 20:30
1

Since JDK 9:

is.readAllBytes()
0

We can do using Google API ByteStreams

com.google.common.io.ByteStreams

pass the stream to ByteStreams.toByteArray method for conversion

ByteStreams.toByteArray(stream)
0
-1
def inputStreamToByteArray(is: InputStream): Array[Byte] = {
    val buf = ListBuffer[Byte]()
    var b = is.read()
    while (b != -1) {
        buf.append(b.byteValue)
        b = is.read()
    }
    buf.toArray
}
1
  • Does List[Byte] have a method "add"?
    – Eastsun
    Feb 5, 2011 at 8:06

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