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I'm writing script is ksh. Need to find all users who has over N process and echo them in shell. N reads from ksh.

I know what I should use ps -elf but how parse it, find users with >N process and create array with them. Little troubles with array in ksh. Please help. Maybe simple solutions can help me instead of array creating.

s162103@helios:/home/s162103$ ps -elf 
     0 S  s153308  4804     1   0  40 20        ?  17666        ? 11:03:08 ?           0:00 /usr/lib/gnome-settings-daemon --oa
     0 S     root  6546  1327   0  40 20        ?   3584        ? 11:14:06 ?           0:00 /usr/dt/bin/dtlogin -daemon -udpPor
     0 S webservd 15646   485   0  40 20        ?   2823        ?     п╪п╟я─я ?           0:23 /opt/csw/sbin/nginx
     0 S  s153246  6746  6741   0  40 20        ?  18103        ? 11:14:21 ?           0:00 iiim-panel --disable-crash-dialog
     0 S  s153246 23512     1   0  40 20        ?  17903        ? 09:34:08 ?           0:00 /usr/bin/metacity --sm-client-id=de
     0 S     root   933   861   0  40 20        ?   5234        ? 10:26:59 ?           0:00 dtgreet -display :14
     ...

when i type

ps -elf | awk '{a[$3]++;}END{for(i in a)if (a[i]>N)print i, a[i];}' N=1

s162103@helios:/home/s162103$ ps -elf | awk '{a[$3]++;}END{for(i in a)if (a[i]>N)print i, a[i];}' N=1
root 118
/usr/sadm/lib/smc/bin/smcboot 3
/usr/lib/autofs/automountd 2
/opt/SUNWut/lib/utsessiond 2
nasty 31
dima 22
/opt/oracle/product/Oracle_WT1/ohs/ 7
/usr/lib/ssh/sshd 5
/usr/bin/bash 11

that is not user /usr/sadm/lib/smc/bin/smcboot there is last field in ps -elf ,not user

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3 Answers 3

up vote 0 down vote accepted

The minimal ps command you want to use here is ps -eo user=. This will just print the username for each process and nothing more. The rest can be done with awk:

ps -eo user= |
  awk  -v max=3 '{ n[$1]++ }
    END {
      for (user in n)
        if (n[user]>max)
          print n[user], user
  }'

I recommend to put the count in the first column for readability.

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Something like this(assuming 3rd field of your ps command gives the user id):

 ps -elf | 
   awk '{a[$3]++;}
   END {
     for(i in a)
       if (a[i]>N)
         print i, a[i];
   }' N=3
share|improve this answer
    
yes 3rd field,but it outputs wrong information. It output random information(UID and CMD and other from ps -elf),not only names I need only names.(UIDs) –  Alex Zern Mar 19 '13 at 4:43
    
Can you post a sample output of your ps-elf command? –  Guru Mar 19 '13 at 4:45
    
F S UID PID PPID C PRI NI ADDR SZ WCHAN STIME TTY TIME CMD 5 S cl32387 18246 18241 0 80 0 - 5895 ? Mar16 ? 00:00:00 /usr/sbin/vsftpd /etc/vsftpd/vs5 S cl32387 18469 18436 0 80 0 - 13200 ? 09:51 ? 00:00:00 sshd: cl32387@pts/2 0 S cl32387 18481 18469 0 80 0 - 4470 - 09:51 pts/2 00:00:00 -bash 0 R cl32387 18842 18481 0 80 0 - 3431 - 09:51 pts/2 00:00:00 ps -elf –  Alex Zern Mar 19 '13 at 5:53
    
Sorry for unformated –  Alex Zern Mar 19 '13 at 5:59
1  
I am getting proper output for the same..keep in mind, the solution provided will list all the users and their no. of processes if it is more than 3(N=3). –  Guru Mar 19 '13 at 6:03
read number    
ps -elfo user= | sort | uniq -c | while read count user
do 
    if (( $count > $number )) 
    then 
      echo $user  
    fi  
done

That is best solution and it works!

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