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I'd like to turn the following:

git status --short && (git status --short | xargs -Istr test -z str)

which gets me the desired result of mirroring the output to stdout and doing a zero length check on the result into something closer to:

git status --short | tee >(xargs -Istr test -z str)

which unfortunately returns the exit code of tee (always zero).

Is there any way to get at the exit code of the substituted process elegantly?

[EDIT]

I'm going with the following for now, it prevents running the same command twice but seems to beg for something better:

OUT=$(git status --short) && echo "${OUT}" && test -z "${OUT}"

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Excuse me, but what exactly do you want to achieve? Just checking if there is git status in that directory? –  Alexander Janssen Sep 28 '11 at 19:03
    
Yes, it's part of a deploy script and should exit nonzero if the directory is dirty. –  jodell Sep 29 '11 at 18:04

2 Answers 2

Look here:

  $ echo xxx | tee >(xargs test -n); echo $?
xxx
0
  $ echo xxx | tee >(xargs test -z); echo $?
xxx
0

and look here:

  $echo xxx | tee >(xargs test -z; echo  "${PIPESTATUS[*]}")
xxx
123
  $echo xxx | tee >(xargs test -n; echo  "${PIPESTATUS[*]}")
xxx
0

That is?

See also Pipe status after command substitution

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I didn't know about PIPESTATUS, that was helpful, thanks. –  jodell Sep 29 '11 at 18:06
#!/bin/bash
if read q < <(git status -s)
then
  echo $q
  exit
fi
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