7

I have a question. I got a PHP script (PHP 5) which is saving a URL-Parameter $_GET['file'] to the variable $file. Is there now a way to check if this variable is a valid filename (for example: hello.txt and not /../otherdir/secret.txt). Because without checking the $file variable a hacker would be able to use the /../ to get to my parent folder.

  • 1
    Have you tried something ? OR wrote some pseudo code? OR did some research ? – Rizier123 Jun 27 '15 at 13:41
  • 1
    Just remove everything before / – adeneo Jun 27 '15 at 13:41
7

You may have a look in php's basename function, it will return with filename, see example below:

$file = '../../abc.txt';
echo basename($file); //output: abc.txt

Note: basename gets you the file name from path string irrespective of file physically exists or not. file_exists function can be used to verify that the file physically exists.

  • Thank you very much! <3 – askerno Jun 27 '15 at 13:48
  • 6
    As a side note, this isn't really checking if the file name is "valid". It's simply stripping out anything up to and including the last PHP directory separator. I understand the OP's intent was to do that. But others may think this validates something - and it does not. – Lee Fuller Dec 2 '15 at 22:09
  • 2
    $file = '../../abc\text.txt'; echo basename($file); will echo abc\text.txt and it's not a valid filename. – mechanicious Aug 12 '18 at 8:03
-1

Would that work? http://php.net/manual/en/function.file-exists.php E.g, in your case,

if(file_exists(str_replace("../", "", $file))){
  // valid
} 
else{
  // invalid
}

Files can be in subfolders but not in parent folders.

However, if you're just interested in the filename,

if(file_exists(pathinfo($file, PATHINFO_BASENAME))){
  // valid
}
else{
  // invalid
}

should work.

  • Work fine too but I think kamal pal's version is more compact and I don't want to go to subfolder.. But thank you too <3 – askerno Jun 27 '15 at 13:48
-3

i will like to combine kamal pal's and Pancake_M0nster's answers to create simple:

if(file_exists(basename($file))){
  // valid
} 
else{
  // invalid
}
  • 1
    Combining two different solutions doesn't always provide a better or more efficient answer. Sometimes, it even breaks the functionality: in this case, the result would be "true" only if the $file resides in the same directory as the main script. – Erenor Paz Mar 6 '18 at 8:28

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