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I am using exec() to execute the file. One of the argument I need to pass is string.

shell_exec('/home/technoworld/Videos/LinSocket/client "Hi hello"'); This works fine!

But when I take string into var i.e. $s="Hi hello" and

'shell_exec('/home/technoworld/Videos/LinSocket/client . "$s"')`. It does not works. If

'shell_exec('/home/technoworld/Videos/LinSocket/client . $s')' goes in infinite wait!

Any Idea how to pass $s to the function?

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Basic php syntax rules: '-quoted strings do NOT interpret variables. you're passing a literal $ and s to the shell. –  Marc B Jul 8 '13 at 18:43

2 Answers 2

up vote 2 down vote accepted
shell_exec('/home/technoworld/Videos/LinSocket/client "'.$s.'"');

or use double quotes to parse variables

shell_exec("/home/technoworld/Videos/LinSocket/client '$s'");

or

shell_exec("/home/technoworld/Videos/LinSocket/client \"$s\"");
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I think $s needs to be between escaped double quotes too, judging the working command. This evaluates to shell_exec('/home/technoworld/Videos/LinSocket/client Hi Hello'); for both. –  Sumurai8 Jul 8 '13 at 18:45
    
This is really awwsome, All worked well! –  user123 Jul 9 '13 at 3:17

Your best bet is to use the escapeshellarg command

shell_exec('/home/technoworld/Videos/LinSocket/client '.escapeshellarg($s));
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