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I'm trying to daemonize my application using Apache Commons Daemon using the Daemon interface. Java application it self isn't doing anything just writes to stout.

I compiled jsvc: http://people.apache.org/~mturk/daemon-1.0.10/

(even tried newest version: http://people.apache.org/~mturk/daemon-1.0.12/ )

and wrote this basic script.

do_exec()
{
    $EXEC \
        -home "$JAVA_HOME" \
        -cp $CLASS_PATH \
        -outfile $LOG_OUT \
        -errfile $LOG_ERR \
        -pidfile $PID \
        $1 \
        $MAIN_CLASS
    echo "result: $?"
}

case "$1" in
    start)
            do_exec
            ;;
    stop)
            do_exec "-stop"
            ;;
    restart)
            do_exec "-stop"
            do_exec
            ;;
    *)
            echo "usage: daemon {start|stop|restart}" >&2
            exit 3
            ;;
esac

Now when I try to stop the daemon when it's not running I'll get response code 255. Thas fantastic.

But when I try start the daemon when it's already running I get response code 0. But in my errfile I find:

Still running according to PID file /tmp/deamon.pid, PID is 1799
Service exit with a return value of 122

Same thing when I try throw exception in start() method and attempt to start daemon, response code 0. But errfile:

 Service exit with a return value of 5

What I'm missing here? How can I inform user stat the deamon didn't start or that it is already running?

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this script is a windows batch file, yes? – Coffee Oct 26 '15 at 1:58
up vote 3 down vote accepted

After carefully reading how JSVC works: http://commons.apache.org/daemon/jsvc.html

I found out what I was doing wrong, I have to use the wait parameter

When the -wait parameter is used, the launcher process waits until the controller says "I am ready", otherwise it returns after creating the controller process.

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1  
Make sure that your start() method finish before -wait time expire. Otherwise you will get exit code 1 and not 0. – Maciej Łopaciński Sep 6 '13 at 9:32

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