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I want input HTTP file in ffmpeg parameter and I have tried this code


    $cmd = "/usr/local/bin/ffmpeg -i '' -vn -b 64k -f mp3 -acodec libmp3lame - $fname"; 
    header('Content-type: audio/mpeg');
    header("Content-Type: application/octet-stream");
    header("Content-Disposition: attachment; filename=\"$fname\"");


I tried to pass tinyurl URL but ffmpeg failed to create file. This code work fine if I pass some other direct URL to parameter.

I thinking of creating one PHP file and using CURL with proper headers and pass that PHP file in input parameter will that work? In simple words ffmpeg failed if input is not direct link. What should I do?

Can anybody help me on this?

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1 Answer 1

Based on a comment from you can use the below curl function to get the real URL from which you should be able to carry on as planned.

function resolve($url)
    $options = array(
        CURLOPT_HEADER => true,
        CURLOPT_ENCODING => "",
        CURLOPT_USERAGENT => "spider",
        CURLOPT_AUTOREFERER => true,
        CURLOPT_TIMEOUT => 120,
        CURLOPT_MAXREDIRS => 10,
        CURLOPT_NOBODY => 1

    $ch = curl_init($url);
    curl_setopt_array($ch, $options);
    $content = curl_exec($ch);
    $err = curl_errno($ch);
    $errmsg = curl_error($ch);
    $header = curl_getinfo($ch);
    return $header['url'];
share|improve this answer
Thanks for reply. actually that tinyURL contains same type of URL which is again not a direct link can you try on this url – phpweby Aug 11 '11 at 13:02

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