66

I have a bash script, that I run like this via the command line:

./script.sh var1 var2

I am trying to execute the above command, after I call a certain php file.

What I have right now is:

$output = shell_exec("./script.sh var1 var2");
echo "<pre>$output</pre>";

But it doesn´t work. I tried it using exec and system too, but the script never got executed.

However when I try to run shell_exec("ls"); it does work and $output is a list of all files.

I am not sure whether this is because of a limitation of the VPS I am using or if the problem is somewhere else?

8
  • 1
    What path are you running it in? What does pwd return?
    – alex
    Jun 15, 2012 at 14:05
  • 1
    Is your script executable by apache or www-data user?
    – core1024
    Jun 15, 2012 at 14:06
  • 2
    Is that bash script in the same directory as your PHP script? Is the php script's working directory that same directory as well?
    – Marc B
    Jun 15, 2012 at 14:07
  • Does your script have an appropriate interpreter header, and can you run it manually from your terminal? Like: #!/bin/bash
    – Robert K
    Jun 15, 2012 at 14:09
  • 1
    Does it work with shell_exec('sh script.sh')?
    – dan-lee
    Jun 15, 2012 at 14:09

3 Answers 3

93

You probably need to chdir to the correct directory before calling the script. This way you can ensure what directory your script is "in" before calling the shell command.

$old_path = getcwd();
chdir('/my/path/');
$output = shell_exec('./script.sh var1 var2');
chdir($old_path);
5
  • I think this did the trick! At least I got it working with a simple test script. To finally verify it, I have to wait for the server hoster to let me know the exact path to the scripts. I am gonna mark the answer now nevertheless. Thanks!
    – r0skar
    Jun 15, 2012 at 14:24
  • 1
    @Andrej: Or use the absolute path to your script instead of a relative one. Jun 15, 2012 at 15:01
  • @Andrej If you're running PHP 5.3, you can use chdir(__DIR__) to change the directory to the directory containing the script. Or for PHP 5.2 or less, dirname(__FILE__) will do the trick.
    – Robert K
    Jun 15, 2012 at 15:07
  • Thanks guys! It is working now. There has appeared a new problem, but this one is solved ;)
    – r0skar
    Jun 15, 2012 at 15:16
  • If you want to be pithy swap shell_exec out for the backtick operator.
    – vhs
    Jun 6, 2017 at 2:10
5

Your shell_exec is executed by www-data user, from its directory. You can try

putenv("PATH=/home/user/bin/:" .$_ENV["PATH"]."");

Where your script is located in /home/user/bin Later on you can

$output = "<pre>".shell_exec("scriptname v1 v2")."</pre>";
echo $output;

To display the output of command. (Alternatively, without exporting path, try giving entire path of your script instead of just ./script.sh

2
  • It's a unnecessary to alter the PATH environment variable. The current working directory should be changed instead (see my answer).
    – Robert K
    Jun 15, 2012 at 14:19
  • 1
    True. Thanks. I was using the path settings in my code because I have various custom executables in more than one locations, and I wanted the input box to work as a console, so I can invoke any command from those. If it is to be used for just single file execution, we can anyway just use shell_exec('/entire/path/to/file/');
    – Hrishikesh
    Jun 15, 2012 at 14:22
0

Check if have not set a open_basedir in php.ini or .htaccess of domain what you use. That will jail you in directory of your domain and php will get only access to execute inside this directory.

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