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Im trying to determine the mime-type of an uploaded file, i want to use fileinfo(), this is what ive been trying, it isnt working:

$uploadedfile = $_FILES['soup']['tmp_name'];
if(isset($uploadedfile))
{
    $uploadedname = $_FILES['soup']['name'];
    $file=$uploadedsong;
    $file.=$uploadedname;
    $finfo = finfo_open(FILEINFO_MIME_TYPE); 
    $mime = finfo_file($finfo, $file);

Unfortunately the finfo_file doesnt seem to be running, Im assuming i have the following $file set incorrectly for this, is there a way i can do this properly with a newly uploaded file using $_FILE like this? or am i going at this problem the completely improper way. Using a file i have pre-set in another directly, and setting $file="folder/file.doc" works properly.

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up vote 11 down vote accepted

You should be passing the path to the finfo_file function not the filename.

<?php 
if (isset($_FILES['soup']['tmp_name'])) {
    $finfo = finfo_open(FILEINFO_MIME_TYPE);
    $mime = finfo_file($finfo, $_FILES['soup']['tmp_name']);
    if ($mime == 'application/msword') {
        //Its a doc format do something
    }
    finfo_close($finfo);
}
?>
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In your php.ini file, make sure you have this entry: extension=fileinfo.so or in windows: php_fileinfo.dll – metamagicson Mar 13 '15 at 8:04

I know this is a bit old, but since you're using the $_FILES super global, can you use the type key of the file array (i.e. $_FILES['soup']['type']) rather than having the server check once the file is uploaded?

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Using the $_FILES array parameters to verify file type is spoof-able. That is why the finfo_file was created so we can actually check the binary of the file to determine if it is really for example an image file and not a php file with its file extension renamed to jpg, in which case the $_FILES array type would give jpg. – jessiPP Oct 13 '15 at 5:11

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