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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
up vote 13 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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@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
1  
@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
2  
I disagree. Polling is almost never the way to go. With polling, there will always be discussion about the delay in the waiting loop: one second? A tenth of a second? Your choice will probably be OK for some use case but less than optimal for other use cases. However, UNIX/bash provides the way to do it right: wait. wait suspends your job until another process ends and then your job will be resumed immediately. No arbitrary delay. Subito. No loop necessary. Except if the job you want to wait for is not started in the same shell. – hagello Feb 23 at 20:56
1  
I accepted this answer since this is what I ended up doing. However, I agree that wait is probably always the way to go. This seems to be a popular question still, so if someone comes here looking for an answer just use wait as @hagello and more suggested. – skd Feb 24 at 10:28

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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5  
I would modify this to not flood the terminal: echo Waiting...; while ps -p $PID > /dev/null; do sleep 1; done; script2 – p014k Sep 30 '14 at 21:52

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
8  
I just want to point out that wait only works with child processes of the same shell. – wting Dec 20 '12 at 0:59
    
Only available within the same shell as your running pid is in: stackoverflow.com/q/1058047/1695680 – ThorSummoner Oct 18 '15 at 5:53

To have script2 run only if script1 finishes without an error:

script1 && script2

Unconditionally:

script1; script2
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1  
What if script1 is already running? – skd Sep 20 '11 at 13:21
5  
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

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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May be you can try press ctrl+z first and enter

fg;"your second job"
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A pragmatic (and probably very widely used) approach. – hagello Feb 23 at 21:13

I had a similar problem and solved it this way:

nohup bash script1.sh &

wait

nohup bash script2.sh &

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