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if (!exec($ffmpegDo)) { $error[] = ERROR_EXEC_FFMPEGDO; }

You see, it's simple. If exec is executed, fine, else, return error.

The problem, the exec is getting executed here, but I also have the error.

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up vote 4 down vote accepted

Maybe you should read the function description. It doesn't return a Boolean. It returns the last line of the output.

What is $ffmpegDo and what does it output?

Maybe you should supply the &$return_var parameter. And check the return code. Ex.:

exec($ffmpegDo, $output, $return_var)
if ($return_var) { $error[] = ERROR_EXEC_FFMPEGDO; }
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1  
php makes me chuckle every once in a while. OPs (not unreasonable) code does quite the opposite of its intention. – Captain Giraffe May 18 '11 at 20:39
    
PHP is tricky. :) – Alin Purcaru May 18 '11 at 20:43
    
Tricky isn't the word I'd use. :-) – MarkD May 18 '11 at 21:05
    
Thanks Alin. A little function did the trick. function Xexec($var) { exec($var, $output, $result); return $result; } – Jeremy Roy May 18 '11 at 21:11
    
@Jeremy Row No problem, but don't name your function like that! It scares me... – Alin Purcaru May 18 '11 at 21:26

exec() returns the output of the command, not the return value. You probably want to do something like this instead:

exec($ffmpegDo, $output, $return_val);
if ($return_val) { $error[] = ERROR_EXEC_FFMPEGDO; }
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1  
You are not entirely correct. It returns the last line of the output, not the whole output. – Alin Purcaru May 18 '11 at 20:44

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