3

I have read that the open() command with 2 arguments is vulnerable to injection whereas the open() command with 3 arguments isn't inject-able.

SAy I have a directory where all my files have a common prefix, i.e "file-" so an example filename would be, file-SomeSourceCode.txt

How would something like open(FILEHANDLE, "some/random/dir/file-" . $fileextension) be vulnerable?

where $fileextension could be any sort of 'filename' per say. As far as I understand, this would not be vulnerable to a filename like | shutdown -r | which would execute the command to the server.

  • It might not be vulnerable if the file name argument starts with a literal string (though I wouldn't bet large sums on it). The real vulnerability is when the argument is a variable name, perhaps derived without checking from a command-line argument. In any case, there's no good reason not to use the 3-argument version of open. Are you concerned about the safety of some old code that you're not able to update? – Keith Thompson Oct 28 '14 at 17:15
  • 3
    It's a question of danger vs. overhead. There is a danger. This danger is completely removed by 3 argument open. Why bother trying to mitigate this risk, when you don't need to take it in the first place. – Sobrique Oct 29 '14 at 7:41
  • A lot of the Secure Programming Techniques chapter in Mastering Perl shows these sorts of things. – brian d foy Nov 5 '14 at 20:33
9
open(my $fh, "some/random/dir/file-" . $user_text)

is completely vulnerable. Not only does the improper injection make it impossible to open a file named

some/random/dir/file-foo|

it can be used to execute arbitrary commands

$ perl -e'open(my $fh, "file-".$ARGV[0])' ' ; echo 0wned >&2 |'
sh: 1: file-: not found
0wned
  • thanks for clarifying – Random User Oct 28 '14 at 17:26
  • I think that's an excellent answer as to why 2 arg open should never be used - sure, you can ensure you validate your inputs, and be careful, but why bother when you can ensure the problem never existed in the first place. – Sobrique Oct 29 '14 at 7:43
1

I would comment on @ikegami excellent post but I don't have permission.

Another possible payload vector is to start the malicious input with = (equal), that way the name already hardcoded will be handle as a shell variable.

perl -e'open(my $fh, "file".$ARGV[0])' '=foo echo 0wned >&2 |'

In some cases cgi scripts stop on errors, with that payload an error isn't generated.

0

The easiest possible vulnerability is when your $fileextension suddenly becomes /../../../../../etc/passwd. Another possibility is to make your "some/random/dir/file-" . $fileextension point to some existing executable file, in that case a trick with adding | any-command | will perfectly work.

  • Note: That would require a dir that starts with some/random/dir/file- – ikegami Oct 28 '14 at 17:19
  • agree - your idea of passing the shell command directly is much better. – afenster Oct 28 '14 at 17:20
  • This has nothing to do with two-arg open; three-arg open would be equally vulnerable to this. – ikegami Sep 27 '17 at 4:05

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