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I have a script like that:

su lingcat -c PHPRC\=\/home\/lingcat\/etc\/php5\ 
PHP_FCGI_CHILDREN\=4\ \/usr\/bin\/php\-loop\.pl\ \/usr\/bin\/php5\-cgi\ \-b\ 
127\.0\.0\.1\:9006\ \>\>\/home\/lingcat\/logs\/php\.log\ 2\>\&1\ \<\/dev\/null\ \&\ 
echo\ \$\!\ \>\/var\/php\-nginx\/135488849520817\.php\.pid

This is working. But there is too many \ in the script, they make the code unreadable. So, I wrote a new shell script:

#!/bin/sh
case "$1" in
'start')
        su biergaizi -c "PHPRC=/home/biergaizi/etc/php5 PHP_FCGI_CHILDREN=2 
/usr/bin/php-loop.pl /usr/bin/php-cgi -b /var/run/virtualhost/php5-fpm-biergaizi.test.sock >>/home/biergaizi/logs/php.log 2>&1 </dev/null & 
echo $! > /var/php-nginx/biergaizi.test.php.pid"
        RETVAL=$?
        ;;
'stop')
        su biergaizi -c "kill `cat /var/php-nginx/biergaizi.test.php.pid` ; sleep 1"
        RETVAL=$?
        ;;
'restart')
        $0 stop ; $0 start
        RETVAL=$?
        ;;
*)
        echo "Usage: $0 { start | stop }"
        RETVAL=1
        ;;
esac
exit

But /var/php-nginx/biergaizi.test.php.pid is empty.

What's wrong?

share|improve this question
1  
Woah! Since when do you need to escape a forward-slash? Have you heard of quotes? You might find "jobs -p %1" more helpful in bash than just "$!" for getting the pid of background processes in general. –  Nicholas Wilson May 15 '13 at 10:21
    
This question is similar stackoverflow.com/questions/16542417/… –  anishsane May 15 '13 at 10:39
    
@Nicholas Wilson I never escape a forward-slash, but the auto-script-generator does. –  比尔盖子 May 15 '13 at 12:59

2 Answers 2

up vote 4 down vote accepted

The .pid file is empty, because $! gets substituted by the shell executing your script, instead of the shell executing the commands you pass through su. And as there is no recently started background command in your script, it substitutes an empty string. So, shell started by su executes simply echo > /var/php-nginx/biergaizi.test.php.pid.

To prevent that, quote your command passed to su using single quotes, instead of double quotes. It is better to do that to the "stop" command as well. Like this:

su biergaizi -c 'PHPRC=/home/biergaizi/etc/php5 PHP_FCGI_CHILDREN=2 
                 /usr/bin/php-loop.pl /usr/bin/php-cgi -b /var/run/virtualhost/php5-fpm-biergaizi.test.sock >>/home/biergaizi/logs/php.log 2>&1 </dev/null & 
                 echo $! > /var/php-nginx/biergaizi.test.php.pid'

And this:

su biergaizi -c 'kill `cat /var/php-nginx/biergaizi.test.php.pid` ; sleep 1'

See http://www.gnu.org/software/bash/manual/html_node/Quoting.html for details.

share|improve this answer
    
Thanks. I know $! is the source of the problem. I tried to escape it by \$\! but without success (I know why, now) Using single quotes is a more elegant way. –  比尔盖子 May 15 '13 at 13:00

try this:

Escape $ from $!, before passing to su -c.

share|improve this answer
    
Thanks. In fact, I tried \$\!... –  比尔盖子 May 15 '13 at 12:56

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