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I have a handy function that I've used in Java for converting an InputStream to a String. Here is a direct translation to Scala:

  def inputStreamToString(is: InputStream) = {
    val rd: BufferedReader = new BufferedReader(new InputStreamReader(is, "UTF-8")) 
    val builder = new StringBuilder()    
    try {
      var line = rd.readLine 
      while (line != null) { 
        builder.append(line + "\n")
        line = rd.readLine
      }
    } finally {
      rd.close
    }
    builder.toString
  }

Is there an idiomatic way to do this in scala?

share|improve this question
up vote 102 down vote accepted
scala.io.Source.fromInputStream(is).getLines().mkString("\n")

does pretty much the same thing. Not sure why you want to get lines and then glue them all back together, though. If you can assume the stream's nonblocking, you could just use .available, read the whole thing into a byte array, and create a string from that directly.

Edit: in 2.11, a performance bug with mkString on Source has been fixed, so now it's just

scala.io.Source.fromInputStream(is).mkString
share|improve this answer
2  
One possible reason, that I've used myself, is to normalize line endings on different operating systems. – Kevin Wright Mar 7 '11 at 17:42
    
Raam's answer is also awesome (and slightly more concise), but marking Rex's as THE answer, because it's more specifically like the example. Glueing the lines back together was specific a few cases, but you reminded me that I've used this code in places where it isn't quite appropriate to do that. – bballant Mar 7 '11 at 18:40
    
the solution is not very safe as it uses getLines(); what if the input stream has no "new line" characters? then the whole thing blocks – Paul Sabou Mar 17 '13 at 12:11
    
Quite a bad solution. What if the inputstream contains DOS line-endings (\r\n). These would be removed by this method. Also, although mkString uses a buffer, it most certainly would be faster to read blocks of characters. – Dibbeke Jun 23 '14 at 11:42
1  
@RexKerr Can you please point out the "performance bug" that you mentioned in your answer. I tested both versions with some basic testcases and didn't hit any issue. – Sahil Sareen Sep 15 '15 at 16:11

Faster way to do this:

    private def inputStreamToString(is: InputStream) = {
        val inputStreamReader = new InputStreamReader(is)
        val bufferedReader = new BufferedReader(inputStreamReader)
        Iterator continually bufferedReader.readLine takeWhile (_ != null) mkString
    }
share|improve this answer
    
"faster"? But it provided me the answer for how to do it when I just have a Reader and not an InputStream. – BeepDog Jan 30 '14 at 22:12
2  
Just skip the first line, and pass inputStreamReader to method. – squixy Jan 31 '14 at 7:20
    
This is potentially an order of magnitude faster than scala.io.Source in Scala 2.11.7. I wrote a really basic benchmark of it and most of the time, it was about 5% faster for large files (test was ~35 MB text file) all the way up to 2,800% faster for small files (test was ~30 KB). – Colin Dean Nov 6 '15 at 19:31

Source.fromInputStream(is).mkString("") will also do the deed.....

share|improve this answer
    
Good point; source creates something that extends Iterator[Char]. – Rex Kerr Mar 7 '11 at 16:59
13  
+1 Source.fromInputStream(is).mkString also work for me. – Jonas Jun 5 '11 at 11:09
4  
It's generally good practice to also specify the character encoding when doing this sort of thing. To that end: Source.fromInputStream(is)(Codec.UTF8).mkString – Connor Doyle Aug 20 '13 at 20:42
    
This is terse, but it doesn't close the stream, whereas the original java code did. – Rich Jan 28 '14 at 13:36

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