12

I am running a job array with SLURM, with the following job array script (that I run with sbatch job_array_script.sh [args]:

#!/bin/bash

#SBATCH ... other options ...

#SBATCH --array=0-1000%200

srun ./job_slurm_script.py $1 $2 $3 $4

echo 'open' > status_file.txt

To explain, I want job_slurm_script.py to be run as an array job 1000 times with 200 tasks maximum in parallel. And when all of those are done, I want to write 'open' to status_file.txt. This is because in reality I have more than 10,000 jobs, and this is above my cluster's MaxSubmissionLimit, so I need to split it into smaller chunks (at 1000-element job arrays) and run them one after the other (only when the previous one is finished).

However, for this to work, the echo statement can only trigger once the entire job array is finished (outside of this, I have a loop which checks status_file.txt so see if the job is finished, i.e when the contents are the string 'open').

Up to now I thought that srun holds the script up until the whole job array is finished. However, sometimes srun "returns" and the script goes to the echo statement before the jobs are finished, so all the subsequent jobs bounce off the cluster since it goes above the submission limit.

So how do I make srun "hold up" until the whole job array is finished?

3
  • 1
    Each task of the job array is independent, so srun can not affect it. You could use dependencies to start a job once all the array steps have finished Commented Sep 28, 2017 at 2:27
  • what are dependencies in this context?
    – Marses
    Commented Oct 3, 2017 at 8:16
  • 1
    dependencies will prevent a job to start until the job that it depends on has finished Commented Oct 3, 2017 at 9:51

4 Answers 4

23

You can add the flag --wait to sbatch.

Check the manual page of sbatch for information about --wait.

2
8

You can use --wait option in sbatch in combination with wait in bash to send jobs off to the cluster, pause script execution until those are complete, and then continue. E.g.

#!/bin/bash
set -e
date

for((i=0; i<5; i++)); do
    sbatch -W --wrap='echo "hello from $SLURM_ARRAY_TASK_ID"; sleep 10' &
done;
wait

date
echo "I am finished"
0

0-1000%200 means 200 simultaneous jobs use %1 instead.

-5

You can use the wait bash command. It will wait until whatever lines of code above are finished. Thus you script should look like this:

#!/bin/bash

#SBATCH ... other options ...

#SBATCH --array=0-1000%200

srun ./job_slurm_script.py $1 $2 $3 $4

wait

echo 'open' > status_file.txt
4
  • This doesn't seem to work and gives the same problem as before.
    – Marses
    Commented Oct 3, 2017 at 8:16
  • What version of SLURM are you running and on what kind of system?
    – rmdcoding
    Commented Oct 3, 2017 at 15:31
  • slurm 17.02.7. Also what do you mean by system. From what I've seen, srun doesn't immediately skip past onto the next command. Usually what seems to happen is that srun holds/waits for quite a while. But something then happens to make it skip past. I'm not sure what, although one thing I suspect is that this happens when all the array job tasks are pending.
    – Marses
    Commented Oct 5, 2017 at 9:20
  • This would be the correct answer for the question "how do I wait for a local background process to finish" but that's not what is being asked here.
    – tripleee
    Commented Dec 7, 2023 at 5:01

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