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I'm creating some code that will upload the contents of a word document to a server, extract its text, and insert it into a database.

exec("PATH=$PATH:/home1/myserver/bin && antiword " . 
     $_FILES['file']['tmp_name'], $mycontent);

For some bizarre reason, $mycontent is always an empty array. Google wasn't that helpful. Does anyone know what I'm doing wrong?

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Perhaps escape $PATH (if you did not define it by yourself). exec("PATH=\$PATH... or use single quotes. – mAu Nov 2 '11 at 8:00
    
Thank you. Forgot to do that :) – Fernando Valente Nov 2 '11 at 8:06

The $PATH in your exec quote is trying to be converted to whatever your PHP $PATH is rather than the BASH $PATH.

You can either escape the $ (\$) or use single quotes.

In general, you should be using escapeshellarg() or escapeshellcmd() to make things a bit safer. It would have prevented this situation. Also if you call exec() with user inputs, it will help prevent them from escaping your command and calling their own malicious shell commands.

EDIT
Actually, you might have issues with your filename/path for some reason. Just start simple.

Does this work:

exec('/home1/myserver/bin/antiword ' . 
          escapeshellarg($_FILES['file']['tmp_name']), $mycontent);

If not, what is this:

echo '/home1/myserver/bin/antiword ' . 
          escapeshellarg($_FILES['file']['tmp_name']);

You'll have to create a file to test, and substitute it for the file in $_FILES. But does that work directly from the commandline?

share|improve this answer
    
Used single quotes, and still no luck :( – Fernando Valente Nov 2 '11 at 15:57
    
Get rid of the path part all together, just put in the full path for whatever you need it for. If you're using it for antiword then just do this exec('/home1/myserver/bin/antiword ' . escapeshellarg($_FILES['file']['tmp_name']), $mycontent); – evan Nov 2 '11 at 15:59

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