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I'm attempting to launch a sh file through PHP with arguments, however I cannot get this working at all:

<?php
$ip = $_GET['ip'];
$port = $_GET['port'];

echo shell_exec('sh var/www/html/Grant73565/Grant.sh $ip $port')or die("bash didn't work");
echo('Sent!');
?>

Running the file through ssh manually works fine like:

./Grant.sh 127.0.0.1 80

However in php it just echo's "Bash didn't work".

It's not to-do with the arguments as far as I know as it's not even launching the file without them.

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4  
do NOT do this. you're opening your server to a complete remote compromise. consider example.com?ip=;rm -rf /. Enjoy having your server completely destroyed –  Marc B Dec 6 '12 at 20:18
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1 Answer

You need to use double-quotes if you want to include a variable.

echo shell_exec("sh var/www/html/Grant73565/Grant.sh $ip $port") or die("bash didn't work");

With your current code, anybody can alter the http query and execute anything on your server. This is a major security hole.

The solution is to verify the input. The port will always be numeric so that's simple. You can use a regular expression to verify the IP address.

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I understand the security risk, everything is IP locked anyway. Ill be working on it later. I still get "bash didn't work" with that code. –  user1372896 Dec 6 '12 at 20:32
    
Are you sure the path is correct? Have you tried to print out the command and running it through a shell? –  Michael Dec 6 '12 at 20:35
    
Yes, doing find / -name Grant.sh returns: /var/www/html/Grant73565/Grant.sh –  user1372896 Dec 6 '12 at 20:40
    
So.. include the forward slash in the beginning of the php command? Otherwise you're trying to execute a command relative to the script path. –  Michael Dec 6 '12 at 20:45
    
No luck, same error :/. –  user1372896 Dec 6 '12 at 21:00
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