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I am calling test.sh from PHP using shell_exec method.

$my_url="http://www.somesite.com/";
$my_refer="http://www.somesite.com/";
$page = shell_exec('/tmp/my_script.php $my_url $my_refer');

However, the command line script says it only received 1 argument: the /tmp/my_script.php

When i change the call to:

Code:

$page = shell_exec('/tmp/my_script.php {$my_url} {$my_refer}');

It says it received 3 arguments but the argv[1] and argv[2] are empty.

When i change the call to:

Code:

$page = shell_exec('/tmp/my_script.php "http://www.somesite.com/" "http://www.somesite.com/"');

The script finally receives all 3 arguments as intended.

Do you always have to send just quoted text with the script and are not allowed to send a variable like $var? Or is there some special way you have to send a $var?

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5 Answers 5

up vote 7 down vote accepted

There is need to send the arguments with quota so you should use it like:

$page = shell_exec('/tmp/my_script.php "'.$my_url.'" "'.$my_refer."');
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1  
This is working –  user2314387 Jun 5 '13 at 11:02
    
How do you read these in my_script.php? –  Henry Harris Jun 18 at 17:38
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Change

$page = shell_exec('/tmp/my_script.php $my_url $my_refer');

to

$page = shell_exec("/tmp/my_script.php $my_url $my_refer");

OR

$page = shell_exec('/tmp/my_script.php "'.$my_url.'" "'.$my_refer.'"');

Also make sure to use escapeshellarg on both your values.

Example:

$my_url=escapeshellarg($my_url);
$my_refer=escapeshellarg($my_refer);
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PHP will only parse $ variables wrapped around double quotes ("). –  Dave Chen Jun 5 '13 at 5:29
2  
also make sure you sanatize with escapseshellarg –  Orangepill Jun 5 '13 at 5:29
    
See the docs for the differences between single- and double-quoted strings: php.net/manual/en/language.types.string.php –  DaoWen Jun 5 '13 at 5:30
    
I don't think it would help. He`d better embed quotes inside. –  David Jashi Jun 5 '13 at 5:31
    
And what about spaces in filenames? –  David Jashi Jun 5 '13 at 5:33
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Variables won't interpolate inside of a single quoted string. Also you should make sure the your arguments are properly escaped.

 $page = shell_exec('/tmp/myscript.php '.escapeshellarg($my_url).' '.escapeshellarg($my_refer));
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Thanks Orangepill.. This is working –  user2314387 Jun 5 '13 at 5:40
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Change

$page = shell_exec('/tmp/my_script.php $my_url $my_refer');

to

$page = shell_exec('/tmp/my_script.php "'.$my_url.'" "'.$my_refer.'"');

Then you code will tolerate spaces in filename.

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Yes, I do intentionally. My real mistake was, that I forgot to take out $my_url and $my_refer out of string. –  David Jashi Jun 5 '13 at 5:35
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You might find sprintf helpful here:

$my_url="http://www.somesite.com/";
$my_refer="http://www.somesite.com/";
$page = shell_exec(sprintf('/tmp/my_script.php "%s" "%s"', $my_url, $my_refer));

You should definitely use escapeshellarg as recommended in the other answers if you're not the one supplying the input.

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