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When using the scala 2.9 process API, I can do things like

"ls -l"!

which will send the process stdout and stderr into my own. Or:

val output = "ls -1"!!

which will return whatever was sent to stdout into the val output.

How can I similarly grab stderr?

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Honestly -- dunno. StdErr is 2. That's all I can contribute :\ –  TheBlastOne Apr 6 '11 at 8:36
    
I can always do bash trickery, but I want to do it the scala way. –  Omry Yadan Apr 6 '11 at 8:41

1 Answer 1

up vote 21 down vote accepted

You can create your own ProcessLogger:

import sys.process._

val logger = ProcessLogger(
    (o: String) => println("out " + o),
    (e: String) => println("err " + e))

scala> "ls" ! logger
out bin
out doc
out lib
out meta
out misc
out src
res15: Int = 0

scala> "ls -e" ! logger
err ls: invalid option -- e
err Try `ls --help' for more information.
res16: Int = 2

Edit: The previous example simply prints, but it could easily store the output in some structure:

val out = new StringBuilder
val err = new StringBuilder

val logger = ProcessLogger(
    (o: String) => out.append(o),
    (e: String) => err.append(e))

scala> "ls" ! logger
res22: Int = 0

scala> out
res23: StringBuilder = bindoclibmetamiscsrc

scala> "ls -e" ! logger
res27: Int = 2

scala> out
res28: StringBuilder =

scala> err
res29: StringBuilder = ls: invalid option -- eTry `ls --help' for more information.
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I need to also log the actual command, how to do that? For example "ls"!! would print two lines "cmd: ls" and "out: somefile". –  sscarduzio Jul 30 '14 at 12:23
    
@sscarduzio I think the quickest way is to just grab the name of the command before you execute it.. –  eivindw Aug 4 '14 at 11:57
1  
The quickest way to code this is to instantiate ProcessLogger inline and let it know the command as a closure (after grabbing the command into a variable as mentioned by @sscarduzio). e.g. "ls -e" ! ProcessLogger((e: String) => println(commandName + " error: " + e) –  matt Nov 9 '14 at 16:07

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