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I need a bash script that does the following:

  • Starts a background process with all output directed to a file
  • Writes the process's exit code to a file
  • Returns the process's pid (right away, not when process exits).
  • The script must exit

I cannot figure out a way to do all of these things at the same time.

I can get the pid but not the exit code:

$executable >>$log 2>&1 &
pid=`jobs -p`

Or, I can capture the exit code but not the pid:

$executable >>$log;
# blocked on previous line until process exits
echo $0 >>$log;

Thanks.

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1 Answer 1

up vote 41 down vote accepted

The pid is in $!, no need to run jobs. And the return status is returned by wait:

$executable >> $log 2>&1 &
pid=$!
wait $!
echo $?  # return status of $executable

--EDIT-- If I understand the additional requirement as stated in a comment, and you want the script to return immediately (without waiting for the command to finish), then it will not be possible to have the initial script write the exit status of the command. But it is easy enough to have an intermediary write the exit status as soon as the child finishes. Something like:

sh -c "$executable"' & echo pid=$! > pidfile; wait $!; echo $? > exit-status' &

should work.

--EDIT-- As pointed out in the comments, that solution has a race condition: the main script terminates before the pidfile is written. The OP solves this by doing a polling sleep loop, which is an abomination and I fear I will have trouble sleeping at night knowing that I may have motivated such a travesty. IMO, the correct thing to do is to wait until the child is done. Since that is unacceptable, here is a solution that blocks on a read until the pid file exists instead of doing the looping sleep:

{ sh -c "$executable > $log 2>&1 &"'
echo $! > pidfile
echo   # Alert parent that the pidfile has been written
wait $!
echo $? > exit-status
' & } | read
share|improve this answer
    
Thanks a lot. That is pretty close. I'm afraid I left out one other requirement. The bash script must finish. If I run "wait $pid; echo $? >>$log" in a backgrounded helper script, I will get a "not a child" error. –  Bob B Feb 13 '12 at 14:41
2  
If you want the script to exit before the child finishes, it is not possible to write the exit code of the child without invoking a temporal anomaly of some sort. –  William Pursell Feb 13 '12 at 15:01
    
Wrap the whole sh -c "( $executable"' ...exit-status)' & in the sub-shell parentheses. That lets the subshell get on with its life while the parent gets on with whatever it needs to do. You might want to add another & after the ). –  Jonathan Leffler Feb 13 '12 at 16:01
    
@Jonathan Your suggestion would probably make for more readable code, but sh -c cmd & has the same effect (modulo unimportant details) as ( sh -c cmd & ) & –  William Pursell Feb 13 '12 at 16:11
    
Here are some final notes. I had to add a polling sleep loop to make sure that the pid file was generated. Any vars you want to use in the subshell command need to be exported, not just set. –  Bob B Feb 13 '12 at 20:00

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