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I wish to get the file extension of an image I am uploading, but I just get an array back.

$userfile_name = $_FILES['image']['name'];
$userfile_extn = explode(".", strtolower($_FILES['image']['name']));

Is there a way to just get the extension itself?

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5 Answers 5

1319

No need to use string functions. You can use something that's actually designed for what you want: pathinfo():

$path = $_FILES['image']['name'];
$ext = pathinfo($path, PATHINFO_EXTENSION);
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  • $path = $_FILES['image']['name'][0]; the actual file name is in an array. pathinfo will only evaluate a string. Commented Dec 4, 2013 at 22:36
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    @foureight84: That's only the case if you have upload fields named image[]... Commented Dec 4, 2013 at 23:42
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    I kinda modified your code a little and made a function, in case someone wants to use a function. Here is the code:function getFileExtension($path) { $ext = pathinfo($path, PATHINFO_EXTENSION); return $ext; } Commented Dec 5, 2014 at 14:56
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    @ThiefMaster this returns only the FIRST extension though. In the case of images this may not be relevant, but when someone's uploading an archive it could be .tar.gz or something... Commented Apr 24, 2015 at 17:48
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    @user1914292 I don't see how that is relevant, you should always modify code for own use instead of just copying it and expecting it to work. so if you are expecting archived files instead of images you should make your code work with that too (and not just copy this answer and expect it to work for you)
    – xorinzor
    Commented Jan 15, 2017 at 15:00
67

This will work as well:

$array = explode('.', $_FILES['image']['name']);
$extension = end($array);
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  • 19
    'Only variables should be passed by reference', the PHP Manual
    – dader
    Commented Dec 20, 2012 at 2:01
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    This is not a good approach since the end function is intended to move the internal pointer of an array to the end of the array and return that element. The problem is that the array is passed by reference and since your array is dynamically generated, it cannot be passed by reference, hence the warning or failure, depending on your version of PHP.
    – SteveK
    Commented May 19, 2013 at 2:27
  • 33
    Important Note: This will fail with paths like: /var/www/website.com/somefile (you're better off using pathinfo). Commented Nov 27, 2013 at 21:30
  • This will fail when you changed a file extention on Windows from .png to .jpg. Under water it will always be a .png. Commented Mar 25, 2019 at 13:51
37

A better method is using strrpos + substr (faster than explode for that) :

$userfile_name = $_FILES['image']['name'];
$userfile_extn = substr($userfile_name, strrpos($userfile_name, '.')+1);

But, to check the type of a file, using mime_content_type is a better way : http://www.php.net/manual/en/function.mime-content-type.php

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  • 8
    Better than pathinfo()? I don't think so. Commented Apr 28, 2012 at 22:53
  • 3
    Better than explode ;-). But, you are right, pathinfo is a better way when enabled (some mutualised server disable this function...).
    – Julien
    Commented Apr 28, 2012 at 22:56
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    Important Note: This will fail with paths like: /var/www/website.com/somefile. Commented Nov 27, 2013 at 21:31
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    This will fail where a filename has a '.' in it that occurs before the final . that separates the actual file extension. You'd be surprised at what filenames are out there that have multiple '.'
    – TARKUS
    Commented Feb 27, 2014 at 14:16
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    mime_content_type is deprecated in current PHP Version. Commented Jun 30, 2014 at 12:29
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You could try with this for mime type

$image = getimagesize($_FILES['image']['tmp_name']);

$image['mime'] will return the mime type.

This function doesn't require GD library. You can find the documentation here.

This returns the mime type of the image.

Some people use the $_FILES["file"]["type"] but it's not reliable as been given by the browser and not by PHP.

You can use pathinfo() as ThiefMaster suggested to retrieve the image extension.

First make sure that the image is being uploaded successfully while in development before performing any operations with the image.

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12

How about

$ext = array_pop($userfile_extn);
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  • 9
    I don't recommend this. You are relying on the order of the array being the same years from now. It's a lazy solution that will most likely cause issues in the future.
    – Wade
    Commented Jul 29, 2016 at 20:14

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