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I wrote this code to store an image and avoid that someone store a malware or other files different from an image:

$content = file_get_contents($image);
file_put_contents($path, $content);

// Check imagesize to know if it is an image or not:
$sizeimage = getimagesize(dirname(__FILE__)."/".$path);
if($sizeimage[0]<10000){ echo "ok"; }else{ unlink(dirname(__FILE__)."/".$path); }

I tried to insert another files like a CSS file and it store the CSS in the database.

Why ? What is wrong in my code ?

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5 Answers 5

In case the image file is invalid, $sizeimage[0] returns 0 (check PHP documentation).
Hence, the following statement also validates true in case the file is no valid image:

if($sizeimage[0]<10000)

Consider using the following statement:

if($sizeimage[0]>0 && $sizeimage[0]<10000)

This only validates true when getimagesize() found an image that's smaller then 1000 pixels.

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So, What do I have to check ? thanks –  xRobot Jun 18 '12 at 7:50
    
Updated answer. –  Anne Jun 18 '12 at 7:57
if($sizeimage[0]<10000){ echo "ok"; }else{ unlink(dirname(__FILE__)."/".$path); }

getimagesize returns false when a file is not an image, but you don't check on that. You use [0], but if that doesn't exist, it becomes "null", which is less than 10000. So:

<?php
if($sizeimage !== false && isset($sizeimage[0]) && $sizeimage[0] < 10000 && $imagesize[0] > 0) {
    echo "Okay.";
}
else {
    unlink(dirname(__FILE__)."/".$path);
}
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Why not only $sizeimage !== false ? thanks –  xRobot Jun 18 '12 at 7:54
    
Because maybe you still want images whose width are less than 10000? –  Emil Vikström Jun 18 '12 at 8:06
2  
Please check the "Return Values" section in the PHP documentation (link in my answer). According to the documentation, index 0 and 1 of getimagesize() might return 0 in case the image file is invalid. The if($sizeimage !== false && isset($sizeimage[0]) && $sizeimage[0] < 10000) statement might therefore validate true even though the file contains no valid image. –  Anne Jun 18 '12 at 8:08
    
@Anne Fair enough, but getimagesize may return false in case of an invalid image. The ultimate solution is a combination of our answers. –  Berry Langerak Jun 18 '12 at 10:13
    
Updated the example, now accounts for all possible return values for an invalid image. –  Berry Langerak Jun 18 '12 at 10:15

getimagesize will return false on error. This means that:

  • $sizeimage = false
  • $sizeimage[0] = null
  • null converts to 0 and 0 < 10000
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Please check file extension. If its not valid extension then don't allow.

see PHP example here

if ((($_FILES["file"]["type"] == "image/gif") || ($_FILES["file"]["type"] == "image/jpeg") || ($_FILES["file"]["type"] == "image/pjpeg"))) { echo 'valid file'; }else { echo 'invalid file type';} 

To delete a file, use PHP unlink()

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I revised your code as follows:

$content = file_get_contents($image);
file_put_contents($path,$content);

// Check imagesize to know if it is an image or not:

$sizeimage = getimagesize(dirname(__FILE__)."/".$path);
if($sizeimage){ echo "ok"; } else { unlink(dirname(__FILE__)."/".$path); }

This should work. The unlink will be executed when $sizeimage is null or false.

There is a better way to really tell if the file is an image by checking it's mime-type. See finfo_file (PHP 4) or finfo (PHP 5).

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