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npf_state_tcp.c revision 1.10
      1  1.10  rmind /*	$NetBSD: npf_state_tcp.c,v 1.10 2012/07/21 17:11:02 rmind Exp $	*/
      2   1.1  rmind 
      3   1.1  rmind /*-
      4   1.7  rmind  * Copyright (c) 2010-2012 The NetBSD Foundation, Inc.
      5   1.1  rmind  * All rights reserved.
      6   1.1  rmind  *
      7   1.1  rmind  * This material is based upon work partially supported by The
      8   1.1  rmind  * NetBSD Foundation under a contract with Mindaugas Rasiukevicius.
      9   1.1  rmind  *
     10   1.1  rmind  * Redistribution and use in source and binary forms, with or without
     11   1.1  rmind  * modification, are permitted provided that the following conditions
     12   1.1  rmind  * are met:
     13   1.1  rmind  * 1. Redistributions of source code must retain the above copyright
     14   1.1  rmind  *    notice, this list of conditions and the following disclaimer.
     15   1.1  rmind  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1  rmind  *    notice, this list of conditions and the following disclaimer in the
     17   1.1  rmind  *    documentation and/or other materials provided with the distribution.
     18   1.1  rmind  *
     19   1.1  rmind  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.1  rmind  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.1  rmind  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.1  rmind  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.1  rmind  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.1  rmind  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.1  rmind  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.1  rmind  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.1  rmind  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.1  rmind  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.1  rmind  * POSSIBILITY OF SUCH DAMAGE.
     30   1.1  rmind  */
     31   1.1  rmind 
     32   1.1  rmind /*
     33   1.1  rmind  * NPF TCP state engine for connection tracking.
     34   1.1  rmind  */
     35   1.1  rmind 
     36   1.1  rmind #include <sys/cdefs.h>
     37  1.10  rmind __KERNEL_RCSID(0, "$NetBSD: npf_state_tcp.c,v 1.10 2012/07/21 17:11:02 rmind Exp $");
     38   1.1  rmind 
     39   1.1  rmind #include <sys/param.h>
     40   1.1  rmind #include <sys/types.h>
     41   1.1  rmind 
     42   1.1  rmind #ifndef _KERNEL
     43   1.1  rmind #include <stdio.h>
     44   1.1  rmind #include <stdbool.h>
     45   1.1  rmind #include <inttypes.h>
     46   1.1  rmind #endif
     47   1.1  rmind #include <netinet/in.h>
     48   1.1  rmind #include <netinet/tcp.h>
     49   1.1  rmind #include <netinet/tcp_seq.h>
     50   1.1  rmind 
     51   1.1  rmind #include "npf_impl.h"
     52   1.1  rmind 
     53   1.1  rmind /*
     54   1.1  rmind  * NPF TCP states.  Note: these states are different from the TCP FSM
     55   1.4  rmind  * states of RFC 793.  The packet filter is a man-in-the-middle.
     56   1.1  rmind  */
     57   1.6  rmind #define	NPF_TCPS_OK		(-1)
     58   1.1  rmind #define	NPF_TCPS_CLOSED		0
     59   1.1  rmind #define	NPF_TCPS_SYN_SENT	1
     60   1.1  rmind #define	NPF_TCPS_SIMSYN_SENT	2
     61   1.1  rmind #define	NPF_TCPS_SYN_RECEIVED	3
     62   1.1  rmind #define	NPF_TCPS_ESTABLISHED	4
     63   1.8  rmind #define	NPF_TCPS_FIN_SENT	5
     64   1.8  rmind #define	NPF_TCPS_FIN_RECEIVED	6
     65   1.8  rmind #define	NPF_TCPS_CLOSE_WAIT	7
     66   1.8  rmind #define	NPF_TCPS_FIN_WAIT	8
     67   1.8  rmind #define	NPF_TCPS_CLOSING	9
     68   1.8  rmind #define	NPF_TCPS_LAST_ACK	10
     69   1.8  rmind #define	NPF_TCPS_TIME_WAIT	11
     70   1.1  rmind 
     71   1.8  rmind #define	NPF_TCP_NSTATES		12
     72   1.1  rmind 
     73   1.1  rmind /*
     74   1.1  rmind  * TCP connection timeout table (in seconds).
     75   1.1  rmind  */
     76   1.2  rmind static u_int npf_tcp_timeouts[] __read_mostly = {
     77   1.1  rmind 	/* Closed, timeout nearly immediately. */
     78   1.1  rmind 	[NPF_TCPS_CLOSED]	= 10,
     79   1.1  rmind 	/* Unsynchronised states. */
     80   1.1  rmind 	[NPF_TCPS_SYN_SENT]	= 30,
     81   1.1  rmind 	[NPF_TCPS_SIMSYN_SENT]	= 30,
     82   1.1  rmind 	[NPF_TCPS_SYN_RECEIVED]	= 60,
     83   1.8  rmind 	/* Established: 24 hours. */
     84   1.1  rmind 	[NPF_TCPS_ESTABLISHED]	= 60 * 60 * 24,
     85   1.8  rmind 	/* FIN seen: 4 minutes (2 * MSL). */
     86   1.8  rmind 	[NPF_TCPS_FIN_SENT]	= 60 * 2 * 2,
     87   1.8  rmind 	[NPF_TCPS_FIN_RECEIVED]	= 60 * 2 * 2,
     88   1.8  rmind 	/* Half-closed cases: 6 hours. */
     89   1.8  rmind 	[NPF_TCPS_CLOSE_WAIT]	= 60 * 60 * 6,
     90   1.8  rmind 	[NPF_TCPS_FIN_WAIT]	= 60 * 60 * 6,
     91   1.8  rmind 	/* Full close cases: 30 sec and 2 * MSL. */
     92   1.1  rmind 	[NPF_TCPS_CLOSING]	= 30,
     93   1.1  rmind 	[NPF_TCPS_LAST_ACK]	= 30,
     94   1.1  rmind 	[NPF_TCPS_TIME_WAIT]	= 60 * 2 * 2,
     95   1.1  rmind };
     96   1.1  rmind 
     97   1.1  rmind #define	NPF_TCP_MAXACKWIN	66000
     98   1.1  rmind 
     99   1.2  rmind /*
    100   1.2  rmind  * List of TCP flag cases and conversion of flags to a case (index).
    101   1.2  rmind  */
    102   1.2  rmind 
    103   1.2  rmind #define	TCPFC_INVALID		0
    104   1.2  rmind #define	TCPFC_SYN		1
    105   1.2  rmind #define	TCPFC_SYNACK		2
    106   1.2  rmind #define	TCPFC_ACK		3
    107   1.2  rmind #define	TCPFC_FIN		4
    108   1.2  rmind #define	TCPFC_COUNT		5
    109   1.2  rmind 
    110   1.2  rmind static inline u_int
    111   1.2  rmind npf_tcpfl2case(const int tcpfl)
    112   1.2  rmind {
    113   1.2  rmind 	u_int i, c;
    114   1.2  rmind 
    115   1.3  rmind 	CTASSERT(TH_FIN == 0x01);
    116   1.3  rmind 	CTASSERT(TH_SYN == 0x02);
    117   1.3  rmind 	CTASSERT(TH_ACK == 0x10);
    118   1.3  rmind 
    119   1.2  rmind 	/*
    120   1.3  rmind 	 * Flags are shifted to use three least significant bits, thus each
    121   1.3  rmind 	 * flag combination has a unique number ranging from 0 to 7, e.g.
    122   1.3  rmind 	 * TH_SYN | TH_ACK has number 6, since (0x02 | (0x10 >> 2)) == 6.
    123   1.3  rmind 	 * However, the requirement is to have number 0 for invalid cases,
    124   1.3  rmind 	 * such as TH_SYN | TH_FIN, and to have the same number for TH_FIN
    125   1.3  rmind 	 * and TH_FIN|TH_ACK cases.  Thus, we generate a mask assigning 3
    126   1.3  rmind 	 * bits for each number, which contains the actual case numbers:
    127   1.3  rmind 	 *
    128   1.3  rmind 	 * TCPFC_SYNACK	<< (6 << 2) == 0x2000000 (6 - SYN,ACK)
    129   1.3  rmind 	 * TCPFC_FIN	<< (5 << 2) == 0x0400000 (5 - FIN,ACK)
    130   1.3  rmind 	 * ...
    131   1.3  rmind 	 *
    132   1.3  rmind 	 * Hence, OR'ed mask value is 0x2430140.
    133   1.2  rmind 	 */
    134   1.2  rmind 	i = (tcpfl & (TH_SYN | TH_FIN)) | ((tcpfl & TH_ACK) >> 2);
    135   1.2  rmind 	c = (0x2430140 >> (i << 2)) & 7;
    136   1.2  rmind 
    137   1.2  rmind 	KASSERT(c < TCPFC_COUNT);
    138   1.2  rmind 	return c;
    139   1.2  rmind }
    140   1.1  rmind 
    141   1.1  rmind /*
    142   1.1  rmind  * NPF transition table of a tracked TCP connection.
    143   1.1  rmind  *
    144   1.1  rmind  * There is a single state, which is changed in the following way:
    145   1.1  rmind  *
    146   1.2  rmind  * new_state = npf_tcp_fsm[old_state][direction][npf_tcpfl2case(tcp_flags)];
    147   1.1  rmind  *
    148   1.1  rmind  * Note that this state is different from the state in each end (host).
    149   1.1  rmind  */
    150   1.1  rmind 
    151   1.2  rmind static const int npf_tcp_fsm[NPF_TCP_NSTATES][2][TCPFC_COUNT] = {
    152   1.1  rmind 	[NPF_TCPS_CLOSED] = {
    153   1.1  rmind 		[NPF_FLOW_FORW] = {
    154   1.1  rmind 			/* Handshake (1): initial SYN. */
    155   1.2  rmind 			[TCPFC_SYN]	= NPF_TCPS_SYN_SENT,
    156   1.1  rmind 		},
    157   1.1  rmind 	},
    158   1.1  rmind 	[NPF_TCPS_SYN_SENT] = {
    159   1.1  rmind 		[NPF_FLOW_FORW] = {
    160   1.1  rmind 			/* SYN may be retransmitted. */
    161   1.2  rmind 			[TCPFC_SYN]	= NPF_TCPS_OK,
    162   1.1  rmind 		},
    163   1.1  rmind 		[NPF_FLOW_BACK] = {
    164   1.1  rmind 			/* Handshake (2): SYN-ACK is expected. */
    165   1.2  rmind 			[TCPFC_SYNACK]	= NPF_TCPS_SYN_RECEIVED,
    166   1.1  rmind 			/* Simultaneous initiation - SYN. */
    167   1.2  rmind 			[TCPFC_SYN]	= NPF_TCPS_SIMSYN_SENT,
    168   1.1  rmind 		},
    169   1.1  rmind 	},
    170   1.1  rmind 	[NPF_TCPS_SIMSYN_SENT] = {
    171   1.1  rmind 		[NPF_FLOW_FORW] = {
    172   1.1  rmind 			/* Original SYN re-transmission. */
    173   1.2  rmind 			[TCPFC_SYN]	= NPF_TCPS_OK,
    174   1.1  rmind 			/* SYN-ACK response to simultaneous SYN. */
    175   1.2  rmind 			[TCPFC_SYNACK]	= NPF_TCPS_SYN_RECEIVED,
    176   1.1  rmind 		},
    177   1.1  rmind 		[NPF_FLOW_BACK] = {
    178   1.1  rmind 			/* Simultaneous SYN re-transmission.*/
    179   1.2  rmind 			[TCPFC_SYN]	= NPF_TCPS_OK,
    180   1.1  rmind 			/* SYN-ACK response to original SYN. */
    181   1.2  rmind 			[TCPFC_SYNACK]	= NPF_TCPS_SYN_RECEIVED,
    182   1.9  rmind 			/* FIN may occur early. */
    183   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_FIN_RECEIVED,
    184   1.1  rmind 		},
    185   1.1  rmind 	},
    186   1.1  rmind 	[NPF_TCPS_SYN_RECEIVED] = {
    187   1.1  rmind 		[NPF_FLOW_FORW] = {
    188   1.1  rmind 			/* Handshake (3): ACK is expected. */
    189   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_ESTABLISHED,
    190   1.2  rmind 			/* FIN may be sent early. */
    191   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_FIN_SENT,
    192   1.1  rmind 		},
    193   1.1  rmind 		[NPF_FLOW_BACK] = {
    194   1.1  rmind 			/* SYN-ACK may be retransmitted. */
    195   1.2  rmind 			[TCPFC_SYNACK]	= NPF_TCPS_OK,
    196   1.1  rmind 			/* XXX: ACK of late SYN in simultaneous case? */
    197   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    198   1.9  rmind 			/* FIN may occur early. */
    199   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_FIN_RECEIVED,
    200   1.1  rmind 		},
    201   1.1  rmind 	},
    202   1.1  rmind 	[NPF_TCPS_ESTABLISHED] = {
    203   1.1  rmind 		/*
    204   1.1  rmind 		 * Regular ACKs (data exchange) or FIN.
    205   1.1  rmind 		 * FIN packets may have ACK set.
    206   1.1  rmind 		 */
    207   1.1  rmind 		[NPF_FLOW_FORW] = {
    208   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    209   1.1  rmind 			/* FIN by the sender. */
    210   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_FIN_SENT,
    211   1.1  rmind 		},
    212   1.1  rmind 		[NPF_FLOW_BACK] = {
    213   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    214   1.1  rmind 			/* FIN by the receiver. */
    215   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_FIN_RECEIVED,
    216   1.1  rmind 		},
    217   1.1  rmind 	},
    218   1.8  rmind 	[NPF_TCPS_FIN_SENT] = {
    219   1.8  rmind 		[NPF_FLOW_FORW] = {
    220   1.8  rmind 			/* FIN may be re-transmitted.  Late ACK as well. */
    221   1.8  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    222   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_OK,
    223   1.8  rmind 		},
    224   1.8  rmind 		[NPF_FLOW_BACK] = {
    225   1.8  rmind 			/* If ACK, connection is half-closed now. */
    226   1.8  rmind 			[TCPFC_ACK]	= NPF_TCPS_FIN_WAIT,
    227   1.8  rmind 			/* FIN or FIN-ACK race - immediate closing. */
    228   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_CLOSING,
    229   1.8  rmind 		},
    230   1.8  rmind 	},
    231   1.8  rmind 	[NPF_TCPS_FIN_RECEIVED] = {
    232   1.1  rmind 		/*
    233   1.8  rmind 		 * FIN was received.  Equivalent scenario to sent FIN.
    234   1.1  rmind 		 */
    235   1.1  rmind 		[NPF_FLOW_FORW] = {
    236   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_CLOSE_WAIT,
    237   1.2  rmind 			[TCPFC_FIN]	= NPF_TCPS_CLOSING,
    238   1.1  rmind 		},
    239   1.1  rmind 		[NPF_FLOW_BACK] = {
    240   1.8  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    241   1.8  rmind 			[TCPFC_FIN]	= NPF_TCPS_OK,
    242   1.1  rmind 		},
    243   1.1  rmind 	},
    244   1.1  rmind 	[NPF_TCPS_CLOSE_WAIT] = {
    245   1.1  rmind 		/* Sender has sent the FIN and closed its end. */
    246   1.1  rmind 		[NPF_FLOW_FORW] = {
    247   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    248   1.2  rmind 			[TCPFC_FIN]	= NPF_TCPS_LAST_ACK,
    249   1.1  rmind 		},
    250   1.1  rmind 		[NPF_FLOW_BACK] = {
    251   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    252   1.2  rmind 			[TCPFC_FIN]	= NPF_TCPS_LAST_ACK,
    253   1.1  rmind 		},
    254   1.1  rmind 	},
    255   1.1  rmind 	[NPF_TCPS_FIN_WAIT] = {
    256   1.1  rmind 		/* Receiver has closed its end. */
    257   1.1  rmind 		[NPF_FLOW_FORW] = {
    258   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    259   1.2  rmind 			[TCPFC_FIN]	= NPF_TCPS_LAST_ACK,
    260   1.1  rmind 		},
    261   1.1  rmind 		[NPF_FLOW_BACK] = {
    262   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_OK,
    263   1.2  rmind 			[TCPFC_FIN]	= NPF_TCPS_LAST_ACK,
    264   1.1  rmind 		},
    265   1.1  rmind 	},
    266   1.1  rmind 	[NPF_TCPS_CLOSING] = {
    267   1.1  rmind 		/* Race of FINs - expecting ACK. */
    268   1.1  rmind 		[NPF_FLOW_FORW] = {
    269   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_LAST_ACK,
    270   1.1  rmind 		},
    271   1.1  rmind 		[NPF_FLOW_BACK] = {
    272   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_LAST_ACK,
    273   1.1  rmind 		},
    274   1.1  rmind 	},
    275   1.1  rmind 	[NPF_TCPS_LAST_ACK] = {
    276   1.1  rmind 		/* FINs exchanged - expecting last ACK. */
    277   1.1  rmind 		[NPF_FLOW_FORW] = {
    278   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_TIME_WAIT,
    279   1.1  rmind 		},
    280   1.1  rmind 		[NPF_FLOW_BACK] = {
    281   1.2  rmind 			[TCPFC_ACK]	= NPF_TCPS_TIME_WAIT,
    282   1.1  rmind 		},
    283   1.1  rmind 	},
    284   1.1  rmind 	[NPF_TCPS_TIME_WAIT] = {
    285   1.1  rmind 		/* May re-open the connection as per RFC 1122. */
    286   1.1  rmind 		[NPF_FLOW_FORW] = {
    287   1.2  rmind 			[TCPFC_SYN]	= NPF_TCPS_SYN_SENT,
    288   1.1  rmind 		},
    289   1.1  rmind 	},
    290   1.1  rmind };
    291   1.1  rmind 
    292   1.1  rmind /*
    293   1.1  rmind  * npf_tcp_inwindow: determine whether the packet is in the TCP window
    294   1.1  rmind  * and thus part of the connection we are tracking.
    295   1.1  rmind  */
    296   1.1  rmind static bool
    297   1.1  rmind npf_tcp_inwindow(const npf_cache_t *npc, nbuf_t *nbuf, npf_state_t *nst,
    298   1.1  rmind     const int di)
    299   1.1  rmind {
    300   1.1  rmind 	const struct tcphdr * const th = &npc->npc_l4.tcp;
    301   1.1  rmind 	const int tcpfl = th->th_flags;
    302   1.1  rmind 	npf_tcpstate_t *fstate, *tstate;
    303  1.10  rmind 	int tcpdlen, ackskew;
    304   1.1  rmind 	tcp_seq seq, ack, end;
    305   1.1  rmind 	uint32_t win;
    306   1.1  rmind 
    307   1.1  rmind 	KASSERT(npf_iscached(npc, NPC_TCP));
    308   1.1  rmind 	KASSERT(di == NPF_FLOW_FORW || di == NPF_FLOW_BACK);
    309   1.1  rmind 
    310   1.1  rmind 	/*
    311   1.1  rmind 	 * Perform SEQ/ACK numbers check against boundaries.  Reference:
    312   1.1  rmind 	 *
    313   1.1  rmind 	 *	Rooij G., "Real stateful TCP packet filtering in IP Filter",
    314   1.1  rmind 	 *	10th USENIX Security Symposium invited talk, Aug. 2001.
    315   1.1  rmind 	 *
    316   1.3  rmind 	 * There are four boundaries defined as following:
    317   1.1  rmind 	 *	I)   SEQ + LEN	<= MAX { SND.ACK + MAX(SND.WIN, 1) }
    318   1.2  rmind 	 *	II)  SEQ	>= MAX { SND.SEQ + SND.LEN - MAX(RCV.WIN, 1) }
    319   1.1  rmind 	 *	III) ACK	<= MAX { RCV.SEQ + RCV.LEN }
    320   1.1  rmind 	 *	IV)  ACK	>= MAX { RCV.SEQ + RCV.LEN } - MAXACKWIN
    321   1.1  rmind 	 *
    322   1.1  rmind 	 * Let these members of npf_tcpstate_t be the maximum seen values of:
    323   1.1  rmind 	 *	nst_end		- SEQ + LEN
    324   1.1  rmind 	 *	nst_maxend	- ACK + MAX(WIN, 1)
    325   1.1  rmind 	 *	nst_maxwin	- MAX(WIN, 1)
    326   1.1  rmind 	 */
    327   1.1  rmind 
    328   1.1  rmind 	tcpdlen = npf_tcpsaw(__UNCONST(npc), &seq, &ack, &win);
    329   1.1  rmind 	end = seq + tcpdlen;
    330   1.1  rmind 	if (tcpfl & TH_SYN) {
    331   1.1  rmind 		end++;
    332   1.1  rmind 	}
    333   1.1  rmind 	if (tcpfl & TH_FIN) {
    334   1.1  rmind 		end++;
    335   1.1  rmind 	}
    336   1.1  rmind 
    337   1.1  rmind 	fstate = &nst->nst_tcpst[di];
    338   1.1  rmind 	tstate = &nst->nst_tcpst[!di];
    339   1.1  rmind 	win = win ? (win << fstate->nst_wscale) : 1;
    340   1.1  rmind 
    341   1.1  rmind 	/*
    342   1.1  rmind 	 * Initialise if the first packet.
    343   1.1  rmind 	 * Note: only case when nst_maxwin is zero.
    344   1.1  rmind 	 */
    345   1.1  rmind 	if (__predict_false(fstate->nst_maxwin == 0)) {
    346   1.1  rmind 		/*
    347   1.6  rmind 		 * Normally, it should be the first SYN or a re-transmission
    348   1.6  rmind 		 * of SYN.  The state of the other side will get set with a
    349   1.6  rmind 		 * SYN-ACK reply (see below).
    350   1.1  rmind 		 */
    351   1.1  rmind 		fstate->nst_end = end;
    352   1.1  rmind 		fstate->nst_maxend = end;
    353   1.1  rmind 		fstate->nst_maxwin = win;
    354   1.1  rmind 		tstate->nst_end = 0;
    355   1.1  rmind 		tstate->nst_maxend = 0;
    356   1.1  rmind 		tstate->nst_maxwin = 1;
    357   1.1  rmind 
    358   1.1  rmind 		/*
    359   1.1  rmind 		 * Handle TCP Window Scaling (RFC 1323).  Both sides may
    360   1.1  rmind 		 * send this option in their SYN packets.
    361   1.1  rmind 		 */
    362  1.10  rmind 		fstate->nst_wscale = 0;
    363  1.10  rmind 		(void)npf_fetch_tcpopts(npc, nbuf, NULL, &fstate->nst_wscale);
    364  1.10  rmind 
    365   1.1  rmind 		tstate->nst_wscale = 0;
    366   1.1  rmind 
    367   1.1  rmind 		/* Done. */
    368   1.1  rmind 		return true;
    369   1.1  rmind 	}
    370   1.1  rmind 	if (fstate->nst_end == 0) {
    371   1.1  rmind 		/*
    372   1.1  rmind 		 * Should be a SYN-ACK reply to SYN.  If SYN is not set,
    373   1.1  rmind 		 * then we are in the middle of connection and lost tracking.
    374   1.1  rmind 		 */
    375   1.1  rmind 		fstate->nst_end = end;
    376   1.1  rmind 		fstate->nst_maxend = end + 1;
    377   1.1  rmind 		fstate->nst_maxwin = win;
    378  1.10  rmind 		fstate->nst_wscale = 0;
    379   1.1  rmind 
    380   1.1  rmind 		/* Handle TCP Window Scaling (must be ignored if no SYN). */
    381   1.1  rmind 		if (tcpfl & TH_SYN) {
    382  1.10  rmind 			(void)npf_fetch_tcpopts(npc, nbuf, NULL,
    383  1.10  rmind 			    &fstate->nst_wscale);
    384   1.1  rmind 		}
    385   1.1  rmind 	}
    386   1.6  rmind 
    387   1.1  rmind 	if ((tcpfl & TH_ACK) == 0) {
    388   1.1  rmind 		/* Pretend that an ACK was sent. */
    389   1.1  rmind 		ack = tstate->nst_end;
    390   1.1  rmind 	} else if ((tcpfl & (TH_ACK|TH_RST)) == (TH_ACK|TH_RST) && ack == 0) {
    391   1.1  rmind 		/* Workaround for some TCP stacks. */
    392   1.1  rmind 		ack = tstate->nst_end;
    393   1.1  rmind 	}
    394   1.1  rmind 	if (seq == end) {
    395   1.1  rmind 		/* If packet contains no data - assume it is valid. */
    396   1.1  rmind 		end = fstate->nst_end;
    397   1.1  rmind 		seq = end;
    398   1.1  rmind 	}
    399   1.1  rmind #if 0
    400   1.1  rmind 	/* Strict in-order sequence for RST packets. */
    401   1.6  rmind 	if ((tcpfl & TH_RST) != 0 && (fstate->nst_end - seq) > 1) {
    402   1.1  rmind 		return false;
    403   1.1  rmind 	}
    404   1.1  rmind #endif
    405   1.1  rmind 	/*
    406   1.1  rmind 	 * Determine whether the data is within previously noted window,
    407   1.1  rmind 	 * that is, upper boundary for valid data (I).
    408   1.1  rmind 	 */
    409   1.1  rmind 	if (!SEQ_LEQ(end, fstate->nst_maxend)) {
    410   1.1  rmind 		npf_stats_inc(NPF_STAT_INVALID_STATE_TCP1);
    411   1.1  rmind 		return false;
    412   1.1  rmind 	}
    413   1.1  rmind 
    414   1.1  rmind 	/* Lower boundary (II), which is no more than one window back. */
    415   1.1  rmind 	if (!SEQ_GEQ(seq, fstate->nst_end - tstate->nst_maxwin)) {
    416   1.1  rmind 		npf_stats_inc(NPF_STAT_INVALID_STATE_TCP2);
    417   1.1  rmind 		return false;
    418   1.1  rmind 	}
    419   1.1  rmind 
    420   1.1  rmind 	/*
    421   1.6  rmind 	 * Boundaries for valid acknowledgments (III, IV) - one predicted
    422   1.1  rmind 	 * window up or down, since packets may be fragmented.
    423   1.1  rmind 	 */
    424   1.1  rmind 	ackskew = tstate->nst_end - ack;
    425   1.1  rmind 	if (ackskew < -NPF_TCP_MAXACKWIN ||
    426   1.1  rmind 	    ackskew > (NPF_TCP_MAXACKWIN << fstate->nst_wscale)) {
    427   1.1  rmind 		npf_stats_inc(NPF_STAT_INVALID_STATE_TCP3);
    428   1.1  rmind 		return false;
    429   1.1  rmind 	}
    430   1.1  rmind 
    431   1.1  rmind 	/*
    432   1.1  rmind 	 * Packet has been passed.
    433   1.1  rmind 	 *
    434   1.1  rmind 	 * Negative ackskew might be due to fragmented packets.  Since the
    435   1.1  rmind 	 * total length of the packet is unknown - bump the boundary.
    436   1.1  rmind 	 */
    437   1.6  rmind 
    438   1.1  rmind 	if (ackskew < 0) {
    439   1.4  rmind 		tstate->nst_end = ack;
    440   1.1  rmind 	}
    441   1.1  rmind 	/* Keep track of the maximum window seen. */
    442   1.1  rmind 	if (fstate->nst_maxwin < win) {
    443   1.1  rmind 		fstate->nst_maxwin = win;
    444   1.1  rmind 	}
    445   1.1  rmind 	if (SEQ_GT(end, fstate->nst_end)) {
    446   1.1  rmind 		fstate->nst_end = end;
    447   1.1  rmind 	}
    448   1.1  rmind 	/* Note the window for upper boundary. */
    449   1.1  rmind 	if (SEQ_GEQ(ack + win, tstate->nst_maxend)) {
    450   1.1  rmind 		tstate->nst_maxend = ack + win;
    451   1.1  rmind 	}
    452   1.1  rmind 	return true;
    453   1.1  rmind }
    454   1.1  rmind 
    455   1.7  rmind /*
    456   1.7  rmind  * npf_state_tcp: inspect TCP segment, determine whether it belongs to
    457   1.7  rmind  * the connection and track its state.
    458   1.7  rmind  */
    459   1.1  rmind bool
    460   1.1  rmind npf_state_tcp(const npf_cache_t *npc, nbuf_t *nbuf, npf_state_t *nst, int di)
    461   1.1  rmind {
    462   1.1  rmind 	const struct tcphdr * const th = &npc->npc_l4.tcp;
    463   1.1  rmind 	const int tcpfl = th->th_flags, state = nst->nst_state;
    464   1.1  rmind 	int nstate;
    465   1.1  rmind 
    466   1.7  rmind 	KASSERT(nst->nst_state == 0 || mutex_owned(&nst->nst_lock));
    467   1.6  rmind 
    468   1.1  rmind 	/* Look for a transition to a new state. */
    469   1.1  rmind 	if (__predict_true((tcpfl & TH_RST) == 0)) {
    470   1.2  rmind 		const int flagcase = npf_tcpfl2case(tcpfl);
    471   1.2  rmind 		nstate = npf_tcp_fsm[state][di][flagcase];
    472   1.1  rmind 	} else if (state == NPF_TCPS_TIME_WAIT) {
    473   1.1  rmind 		/* Prevent TIME-WAIT assassination (RFC 1337). */
    474   1.1  rmind 		nstate = NPF_TCPS_OK;
    475   1.1  rmind 	} else {
    476   1.1  rmind 		nstate = NPF_TCPS_CLOSED;
    477   1.1  rmind 	}
    478   1.5  rmind 
    479   1.1  rmind 	/* Determine whether TCP packet really belongs to this connection. */
    480   1.1  rmind 	if (!npf_tcp_inwindow(npc, nbuf, nst, di)) {
    481   1.1  rmind 		return false;
    482   1.1  rmind 	}
    483   1.1  rmind 	if (__predict_true(nstate == NPF_TCPS_OK)) {
    484   1.1  rmind 		return true;
    485   1.1  rmind 	}
    486   1.5  rmind 
    487   1.1  rmind 	nst->nst_state = nstate;
    488   1.1  rmind 	return true;
    489   1.1  rmind }
    490   1.1  rmind 
    491   1.1  rmind int
    492   1.1  rmind npf_state_tcp_timeout(const npf_state_t *nst)
    493   1.1  rmind {
    494   1.1  rmind 	const u_int state = nst->nst_state;
    495   1.1  rmind 
    496   1.1  rmind 	KASSERT(state < NPF_TCP_NSTATES);
    497   1.1  rmind 	return npf_tcp_timeouts[state];
    498   1.1  rmind }
    499