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I check file extension for upload or not uploaded. my i.e methods worked but now i need to understand, my methods (pathinfo) is true ? another better and faster way ?! Thanks

$filename = $_FILES['video_file']['name'];
$ext = pathinfo($filename, PATHINFO_EXTENSION);
if( $ext !== 'gif' || $ext !== 'png' || $ext !== 'jpg' ) {echo 'error';}
share|improve this question
8  
why is the filed called 'video_file' yet you're only allowing images.. – cream May 6 '13 at 7:53
up vote 62 down vote accepted

Using if( $ext !== 'gif') might not be efficient what if you allow like 20 different extensions

Try

$allowed =  array('gif','png' ,'jpg');
$filename = $_FILES['video_file']['name'];
$ext = pathinfo($filename, PATHINFO_EXTENSION);
if(!in_array($ext,$allowed) ) {
    echo 'error';
}
share|improve this answer

You can check the extension, but that's not the most reliable method. For better way of checking file type you should check it's mime type. Mime Types

From PHP Manual:

<?php
$finfo = finfo_open(FILEINFO_MIME_TYPE); // return mime type ala mimetype extension
foreach (glob("*") as $filename) {
    echo finfo_file($finfo, $filename) . "\n";
}
finfo_close($finfo);
?>

The above example will output something similar to:

text/html
image/gif
application/vnd.ms-excel
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1  
I almost doubt there is a way to get the REAL file extension. Everywhere there are answers "to analyze filename" which is the worst way... Thanks a lot for this answer! – instead Sep 24 '13 at 17:23
1  
This answer should be at the top, it's very easy for someone to change a file extension! – Talk nerdy to me Feb 26 at 3:23
    
What you suggest if the MIME is fake one ? A malicious user can easily upload files using a script or some other automated application that allows sending of HTTP POST requests, which allow him to send a fake mime-type. – Prafulla Kumar Sahu Jun 24 at 9:31
1  
@PrafullaKumarSahu You can find a detailed answer to your question here: stackoverflow.com/a/8028436/196917 – Reza S Jun 24 at 20:07
1  
I found a better resource may be this link will be removed in future but for now it seems to be a great one. acunetix.com/websitesecurity/upload-forms-threat – Prafulla Kumar Sahu Jun 27 at 5:22

Personally,I prefer to use preg_match() function:

if(preg_match("/\.(gif|png|jpg)$/", $filename))

or in_array()

$exts = array('gif', 'png', 'jpg'); 
if(in_array(end(explode('.', $filename)), $exts)

With in_array() can be useful if you have a lot of extensions to validate and perfomance question. Another way to validade file images: you can use @imagecreatefrom*(), if the function fails, this mean the image is not valid.

For example:

function testimage($path)
{
   if(!preg_match("/\.(png|jpg|gif)$/",$path,$ext)) return 0;
   $ret = null;
   switch($ext)
   {
       case 'png': $ret = @imagecreatefrompng($path); break;
       case 'jpeg': $ret = @imagecreatefromjpeg($path); break;
       // ...
       default: $ret = 0;
   }

   return $ret;
}

then:

$valid = testimage('foo.png');

Assuming that foo.png is a PHP-script file with .png extension, the above function fails. It can avoid attacks like shell update and LFI.

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pathinfo is cool but your code can be improved:

$filename = $_FILES['video_file']['name'];
$ext = pathinfo($filename, PATHINFO_EXTENSION);
$allowed = array('jpg','png','gif');
if( ! in_array( $ext, $allowed ) ) {echo 'error';}

Of course simply checking the extension of the filename would not guarantee the file type as a valid image. You may consider using a function like getimagesize to validate uploaded image files.

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Not sure if this would have a faster computational time, but another option...

$acceptedFormats = array('gif', 'png', 'jpg');

if(!in_array(pathinfo($filename, PATHINFO_EXTENSION), $acceptedFormats))) {
    echo 'error';
}
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file type can be checked in other ways also. I believe this is the easiest way to check the uploaded file type.. if u are dealing with an image file then go for the following code. if you are dealing with a video file then replace the image check with a video check in the if block.. have fun

     $img_up = $_FILES['video_file']['type'];
$img_up_type = explode("/", $img_up);
$img_up_type_firstpart = $img_up_type[0];

if($img_up_type_firstpart == "image") { // image is the image file type, you can deal with video if you need to check video file type

/* do your logical code */ }

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