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I have a command that i want to run from php

$shell = 'mysqldump -uuser -ppass --where="id>' . $larger .' and id<' . $smaller .'" view allasins | gzip -c | sshpass -p "pass2" ssh  \'cat>/home/user/\'';
$shell = escapeshellarg($shell); //this is not working, escapeshellcmd($shell) also not working

So, anyone know what is wrong with these codes? There is no error message, it simply does not work.

Thank you very much.

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1 Answer 1

Try using

escapeshellcmd so :

$Command = escapeshellarg($shell);

The usage for


is to escape individual strings, for it to work within your example:

$shell = 'mysqldump -uuser -ppass --where="id>' . escapeshellarg($larger) .' and id<' . escapeshellarg($smaller) .'" view allasins | gzip -c | sshpass -p "pass2" ssh  \'cat>/home/user/\'';
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Thank you very much for your answer. However, as i pointed out in the question, escapeshellcmd also does not work. I don't know how to debug this since there is no warning or error message. – aye Sep 5 '13 at 15:03
$smaller and $larger are just 2 numbers, so i think there is not anything to escape these variables. I worry about the end of the first line where there is ' character – aye Sep 5 '13 at 15:05
@aye So your worrying about your escape syntax? the '.? – Daryl Gill Sep 5 '13 at 15:07
I just guess so. I absolutely have no clue about the reason. shell_exec works fine for my simple query $shell = 'mysqldump -uuser -ppass --where="id>' . $larger .' and id<' . $smaller .'" view allasins > temp.sql. But when i attach the later part, it does not work. The whole original command mysqldump -uuser -ppass --where="id>0 and id<100" view allasins | gzip -c | sshpass -p "pass2" ssh 'cat>/home/user/' works fine in the command line. – aye Sep 5 '13 at 15:12
@aye Does the user you are running apache as have permission to run commands like this? and have correct write/read permissions in /home/user/ – Daryl Gill Sep 5 '13 at 15:19

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