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So I call this PHP script from the command line:

/usr/bin/php /var/www/bims/index.php "projects/output"

and its output is:

file1 file2 file3

What I would like to do is get this output and feed to the "rm" command but I think im not doing it right:

/usr/bin/php /var/www/bims/index.php "projects/output" | rm 

My goal is to delete whatever file names the PHP script outputs. What should be the proper way to do this?

Thanks!

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4 Answers 4

up vote 6 down vote accepted
/usr/bin/php /var/www/bims/index.php "projects/output" | xargs rm
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that worked! what is xargs command about? thanks! –  r2b2 Apr 22 '10 at 9:27
    
man xargs: "xargs - build and execute command lines from standard input". You should read that manual page ;) –  Victor Sorokin Apr 22 '10 at 9:31

I guess this could help>>

grep -n "searchstring" filename | awk 'BEGIN { FS = " " };{print $1}'

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Simplest solution:

rm `/usr/bin/php /var/www/bims/index.php "projects/output"`

What is between the backticks (`) is run and the output is passed as argument to rm.

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1  
xargs is slightly better: it can handle output that is too long for the maximum command line length by running rm more than once. –  Harold L Apr 22 '10 at 9:36
    
I didn't say better. I said simple :). –  Felix Apr 22 '10 at 9:53
1  
note: might not work if the Php script produce files with spaces –  ghostdog74 Apr 22 '10 at 12:58
    
Wikipedia has some interesting examples, KISSly explained, regarding files with spaces, lines, etc: en.wikipedia.org/wiki/Xargs. –  igordcard May 7 '14 at 12:49

you can try xargs

/usr/bin/php /var/www/bims/index.php "projects/output" | xargs rm 

or just simply use a loop

/usr/bin/php /var/www/bims/index.php "projects/output" | while read -r out
do
  rm $out
done
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