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So I have a process running, and it will take several hours to complete. I would like to start another process right after that one finishes, automatically. Notice that I can't add a call to the second script in the first one, neither create another which sequentially runs both. Is there any way to do this in Linux?

Edit: One option is to poll every x minutes using pgrep and check if the process finished. If it did, start the other one. However, I don't like this solution.

PS: Both are bash scripts, if that helps.

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This has probably been asked before, but I can't find it. –  Tom Zych Sep 20 '11 at 13:20
    
I couldn't find it either –  skd Sep 20 '11 at 13:22
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5 Answers

up vote 8 down vote accepted

Polling is probably the way to go, but it doesn't have to be horrible.

pid=$(ps -opid= -C your_script_name)
while [ -d /proc/$pid ] ; do
    sleep 1
done && ./your_other_script
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So you complain that my one-liner is a script and fails, then you type this? Give me a break. –  Tom Zych Sep 20 '11 at 13:34
    
@Tom Zych: Your oneliner relies on the user entering both commands at the same time. This will work after the first command has been independently executed (e.g. by a cron job, or spawned from a noninteractive process). –  Sorpigal Sep 20 '11 at 13:35
    
Oh. I thought you were complaining about it being a script. Sorry. –  Tom Zych Sep 20 '11 at 13:36
    
This is the solution I was thinking of, however using wait seems better wait $PID && second_script. I don't know how wait is actually implemented so it may be the same. –  skd Sep 20 '11 at 13:38
    
@skd: wait is better if you can use it, but IIRC it only works for sub-processes, not arbitrary PIDs (which is too bad). –  Sorpigal Sep 20 '11 at 13:44
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Given the PID of the first process, the loop

while ps -p $PID; do sleep 1; done ; script2

should do the trick. This is a little more stable than pgrep and process names.

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You can wait already running process using bash built-in command wait. man bash.

wait [n ...] Wait for each specified process and return its termination status. Each n may be a process ID or a job specification; if a job spec is given, all processes in that job's pipeline are waited for. If n is not given, all currently active child processes are waited for, and the return status is zero. If n specifies a non-existent process or job, the return status is 127. Otherwise, the return status is the exit status of the last process or job waited for.

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This may be what I was looking for –  skd Sep 20 '11 at 13:33
    
I think this is the most elegant thanks. Use jobs to get the job number and then (assuming job 2) >wait %2 && php run.php –  zzapper Oct 25 '12 at 17:23
3  
I just want to point out that wait only works with child processes of the same shell. –  wting Dec 20 '12 at 0:59
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To have script2 run only if script1 finishes without an error:

script1 && script2

Unconditionally:

script1; script2
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What if script1 is already running? –  skd Sep 20 '11 at 13:21
2  
This fails the constraint, given by the requester, that a wrapper script which calls both is not feasible. I'm skeptical, of course. –  Sorpigal Sep 20 '11 at 13:22
    
Use @thiton's solution, it looks right for that case. –  Tom Zych Sep 20 '11 at 13:26
    
It will be feasible the next time I want to execute both, now I've already started the first one. –  skd Sep 20 '11 at 13:26
    
@Sorpigal: this doesn't have to be a script, you can just type it into the interpreter. –  Tom Zych Sep 20 '11 at 13:26
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Often it happens that your program is running several demons. In that case your pid will be an array. Just use:

PID=($(pidof -x process_name)) #this saves all the PIDs of the given process in the $pid array

Now, just modify the thiton's code as :

while ps -p ${PID[*]}; do sleep 1; done ; script2

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