Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to read the output from ffmpeg in order to even try the solution to my question from yesterday. This is a separate issue from my problem there, so I made a new question.

How the heck do I get the output from an ffmpeg -i command in PHP?

This is what I've been trying:

<?PHP
    error_reporting(E_ALL);
    $src = "/var/videos/video1.wmv";
    $command = "/usr/bin/ffmpeg -i " . $src;
    echo "<B>",$command,"</B><br/>";
    $command = escapeshellcmd($command);

    echo "backtick:<br/><pre>";
    `$command`;

    echo "</pre><br/>system:<br/><pre>";
    echo system($command);

    echo "</pre><br/>shell_exec:<br/><pre>";
    echo shell_exec($command);

    echo "</pre><br/>passthru:<br/><pre>";
    passthru($command);

    echo "</pre><br/>exec:<br/><pre>";
    $output = array();
    exec($command,$output,$status);
    foreach($output AS $o)
    {
            echo $o , "<br/>";
    }
    echo "</pre><br/>popen:<br/><pre>";
    $handle = popen($command,'r');
    echo fread($handle,1048576);
    pclose($handle);
    echo "</pre><br/>";
?>

This is my output:

<B>/usr/bin/ffmpeg -i /var/videos/video1.wmv</B><br/>
backtick:<br/>
    <pre></pre><br/>
system:<br/>
    <pre></pre><br/>
shell_exec:<br/>
    <pre></pre><br/>
passthru:<br/>
    <pre></pre><br/>
exec:<br/>
    <pre></pre><br/>
popen:<br/>
    <pre></pre><br/>

I don't get it. safe_mode is off. There's nothing in disable_functions. The directory is owned by www-data (the apache user on my Ubuntu system). I get a valid status back from exec() and system() and running the same command from the command line give me tons of output. I feel like I must be missing something obvious but I have no idea what it is.

Help. Please.

share|improve this question
add comment

2 Answers 2

up vote 16 down vote accepted

The problem is you catch only stdout and not stderr (see Standard Streams). Change this line:

$command = "/usr/bin/ffmpeg -i " . $src;

into

$command = "/usr/bin/ffmpeg -i " . $src . " 2>&1";

and give it another try :)

share|improve this answer
    
Ahhh... yeah. That makes sense because my return status is 1 (not 0). I wish that worked, but I still get the same result, just with: "<B>/usr/bin/ffmpeg -i /var/videos/video1.wmv 2>&1</B>" at the beginning. I'll do some research to see if Ubuntu has some differences for redirecting stderr. –  Andrew Jul 10 '09 at 18:16
    
I can confirm that the following should work. I've used this exact line in a hobby project once. exec('ffmpeg -i ' . escapeshellarg($filepath) . ' 2>&1', $output); –  Werner Jul 10 '09 at 18:51
    
Ahha! I figured it out. My problem was the escapeshellcmd() function. It was changing "2>&1" to "2\>\&1". I tried your code and it worked. Lesson I've learned: output the command after you've made all modifications to it =p. Thanks. –  Andrew Jul 10 '09 at 19:07
add comment

Use ffprobe instead, it's much quicker and supports JSON output.

$output = shell_exec('ffprobe -v quiet -print_format json -show_format -show_streams "path/to/yourfile.ext"');
$parsed = json_decode($output, true);

And you have all your video info in a php array! This is much faster than ffmpeg -i for some reason.

share|improve this answer
    
Wow, what a useful function! I had no idea this existed. Thank you! –  Andrew Nov 20 '12 at 21:29
    
It is also much quicker than initializing ffmpeg every time! –  tweak2 Nov 29 '12 at 19:41
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.