25

I'm working on an application that monitors the processes' resources and gives a periodic report in Linux, but I faced a problem in extracting the open files count per process.

This takes quite a while if I take all of the files and group them according to their PID and count them.

How can I take the open files count for each process in Linux?

  • 1
    you need lsof : man lsof – BMW Feb 13 '14 at 10:53
47

Have a look at the /proc/ file system:

ls /proc/$pid/fd/ | wc -l

To do this for all processes, use this:

cd /proc
for pid in [0-9]*
do
    echo "PID = $pid with $(ls /proc/$pid/fd/ | wc -l) file descriptors"
done

EDIT: Credit to @Boban for this addendum: You can pipe the output of the script above into the following script to see the ten processes (and their names) which have the most file descriptors open:

  ...
done | sort -rn -k5 | head | while read -r _ _ pid _ fdcount _
do
  command=$(ps -o cmd -p "$pid" -hc)
  printf "pid = %5d with %4d fds: %s\n" "$pid" "$fdcount" "$command"
done

Here's another approach to list the top-ten processes with the most open fds, probably less readable, so I don't put it in front:

find -maxdepth 1 -type d -name '[0-9]*' \
     -exec bash -c "ls {}/fd/ | wc -l | tr '\n' ' '" \; \
     -printf "fds (PID = %P), command: " \
     -exec bash -c "tr '\0' ' ' < {}/cmdline" \; \
     -exec echo \; | sort -rn | head
  • it gives me an error :"cannot access /proc/$pid/fd/: no such file or directoy " – Aladdin Feb 13 '14 at 11:11
  • 1
    Of course, you will need to have root permissions to do that for many of the processes. Their file descriptors are kind of private, you know ;-) – Alfe Feb 13 '14 at 11:20
  • 1
    This extends the answer and turns pids to command names: for pid in [0-9]*; do echo "PID = $pid with $(ls /proc/$pid/fd/ 2>/dev/null | wc -l) file descriptors"; done | sort -rn -k5 | head | while read -r line; do pid=echo $line | awk '{print $3}'; command=ps -o cmd -p $pid -hc; echo $line | sed -s "s/PID = \(.*\) with \(.*\)/Command $command (PID = \1) with \2/g"; done – Boban P. Jan 12 '18 at 9:44
  • 1
    Yeah, well. Instead of parsing the original output and then call ps again for each process to find out its command, it might make more sense to use /proc/$pid/cmdline in the first loop. While technically it is still possible for a process to disappear between the evaluating of [0-9]* and the scanning of its disc, this is less likely. – Alfe Jan 12 '18 at 11:46
  • 1
    Executing command=$(ps -o cmd -p "$pid" -hc) gave me Warning: bad syntax, perhaps a bogus '-'. It worked running as command=$(ps -o cmd -p "$pid" hc). – Lucas Basquerotto Sep 20 '18 at 18:09
3

Try this:

ps aux | sed 1d | awk '{print "fd_count=$(lsof -p " $2 " | wc -l) && echo " $2 " $fd_count"}' | xargs -I {} bash -c {}
  • Very nice as it works on mac too – mauhiz May 11 '18 at 9:05
2

I used this to find top filehandler-consuming processes for a given user (username) where dont have lsof or root access:

for pid in `ps -o pid -u username` ; do echo "$(ls /proc/$pid/fd/ 2>/dev/null | wc -l ) for PID: $pid" ; done  | sort -n | tail
  • Isn't it a comment? – Billa Mar 2 '18 at 18:21
  • Yes it can be a comment to the accepted answer – JG_ Mar 5 '18 at 12:46

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