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I've got this simple bash script that starts a server process. I want to output the pid of the server process to a file, pid.txt. After some quick searching on SO, I came up with this approach, but it seems to give me the pid of the bash script, not the server process executed from the script. Note: the --fork is required for my server process to run as a daemon to output data to a separate log file, and I suspect that's causing the issue here based on this previous SO question, hoping there's a way around this.

#! /bin/bash

./mongo-linux64-202/mongod --fork &
pid=$!

printf "%s\n" "$pid" > pid.txt
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2 Answers 2

up vote 6 down vote accepted

Might I suggest:

#! /bin/bash

./mongo-linux64-202/mongod --pidfilepath ./pid.txt --fork &

derived from Mongo help:

mongod --help
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Tried that, but it does not create the file... #! /bin/bash ./mongodb-linux-x86_64-2.0.2/bin/mongod --pidfilepath pid.txt --fork --dbpath /opt/mongo/data/db1/dbs --port 33479 --logpath /opt/mongo/data/db1/log/db1.log -logappend & –  raffian Feb 23 '12 at 22:11
    
Try making the pidfilepath more explicit: ./pid.txt (or even better /home/raffi/pid.txt or some other appropriate absolute path). It's possible that mongod is interpreting the relative path as relative to some other directory than your PWD. –  mattbornski Feb 23 '12 at 22:20
    
Yup, that was the problem, had to be more explicit, changed to --pidfilepath /opt/mongo/pid.txt, thanks for the help! –  raffian Feb 23 '12 at 22:29
./mongo-linux64-202/mongod --fork &
pid=$(jobs -p | tail -n 1)

Though look first whether mongod is willing to report its pid somehow.

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What exactly does pid=$(jobs -p | tail -n 1) do? Does this work if multiple mongo processes are running on the same machine? –  raffian Feb 23 '12 at 22:06

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