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I am using PHP's shell_exec() to execute a program via a commandline, passing it an URL as the parameter.

Problem: The program seem to receive only a truncated version of the parameter. PHP passes the parameter

http://www.mysite.com/Men/T-Shirts-Vests/Cat/pgecategory.aspx?cid=7616&parentID=-1&pge=0&pgeSize=200&sort=1

but the program receives it as

http://www.mysite.com/Men/T-Shirts-Vests/Cat/pgecategory.aspx?cid=7616

How can I prevent it from getting truncated after the &?

PHP

    $url = 'http://www.mysite.com/Men/T-Shirts-Vests/Cat/pgecategory.aspx?cid=7616&parentID=-1&pge=0&pgeSize=200&sort=1';
    $script = path('base')."application/phantomjs/httpget.js";
    $output = shell_exec("phantomjs $script $url");

httpget.js

// Get URL from command line parameter
var system = require('system');
var url = system.args[1];
console.log(url);

Output

http://www.mysite.com/Men/T-Shirts-Vests/Cat/pgecategory.aspx?cid=7616

share|improve this question
2  
That code looks open to injection. What if someone has a URL http://www.mysite.com/Men/T-Shirts-Vests/Cat/pgecategory.aspx?cid=7616&parentID‌​=-1&pge=0&pgeSize=200&sort=1&foo=;rm -rf .? –  Waleed Khan Aug 20 '12 at 2:23
    
I can't see the problem...Is there anything more to this you aren't telling us about? On a side note... arxanas = very wise person –  Jared Drake Aug 20 '12 at 2:27
    
I did a console.log(url) within the httpget.js called by phantomjs, and it gave me the truncated version of the parameter. @arxanas Thanks! Didn't notice that. All URLs are defined by me, so it should be fine I guess –  Nyxynyx Aug 20 '12 at 2:30
    
tried xdazz's answer and it works great :) –  Nyxynyx Aug 20 '12 at 2:46

2 Answers 2

up vote 4 down vote accepted

Use escapeshellarg

$url = escapeshellarg($url);
share|improve this answer

Quote your string:

$url = 'http://www.mysite.com/Men/T-Shirts-Vests/Cat/pgecategory.aspx?cid=7616&parentID=-1&pge=0&pgeSize=200&sort=1';
$script = path('base')."application/phantomjs/httpget.js";
$output = shell_exec("phantomjs $script \"$url\"");

For example, consider the following:

~ $ echo foo&bar
[1] 25361
foo
-bash: bar: command not found
[1]+  Done                    echo foo
~ $

vs

~ $ echo "foo&bar"
foo&bar
~ $ 
share|improve this answer
    
quoting is the way to go but please not manually - this will open a huge security hole if $url can contain untrusted data. –  ThiefMaster Aug 20 '12 at 2:36
    
oh lawd now it's the answer when there's a better answer –  Waleed Khan Aug 20 '12 at 2:38

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