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I have this php function that checks the script's name from the given PID, and compares it to itself.

function isRunning($pid) {
    $filename = exec('ps -p '.$pid.' -o "%c"');
    $self = basename($_SERVER['SCRIPT_NAME']);
    return ($filename == $self) ? TRUE : FALSE;
}

From what I know, I usually use this command to get the script name from the PID:

ps -o PID -o "%c"

It returns me the filename, but only the first 15 characters. Since my script's name is

daily_system_check.php

the function always returns FALSE, because it's comparing itself with

daily_system_ch

Is there another bash command for Centos 6 that will return me script's full name?

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3 Answers 3

You didn't specify what is your OS, but in Ubuntu Linux I can see full name of the script with adding --context to the ps call:

# ps -p 17165 --context
  PID CONTEXT                  COMMAND
17165 unconfined               /bin/bash ./testing_long_script_name.sh
# 
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The OS is Centos 6 –  user1105430 Feb 8 '13 at 2:36
    
--context didn't work ? –  julumme Feb 8 '13 at 2:44
    
--context returns the whole path of the filename. That can get me the filename by using php basename() function, but curious to see if there's a simpler bash command. –  user1105430 Feb 8 '13 at 2:51
1  
It looks like you might have to parse that a bit. You can shorter the output to just the "command" by using just ps -ocmd -p PID –  julumme Feb 8 '13 at 3:02

read the the proc cmdline file:

cat /proc/$pid/cmdline | awk 'BEGIN {FS="\0"} {print $2}'
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That's close. It returns the filepath but not just the filename. I could use php basename() function to get the filename but wondering if there's another way. –  user1105430 Feb 8 '13 at 2:58

There seems to be no flag or collumn in "ps" command to show the whole filename without the filepath or it being cutoff. Php basename() gets the job done.

function isRunning($pid) {
    $filename = basename(exec('ps -o cmd '.$pid));
    $self = basename($_SERVER['SCRIPT_NAME']);
    return ($filename == $self) ? TRUE : FALSE;
}
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