xref: /xnu-12377.41.6/bsd/netinet/tcp_input.c (revision bbb1b6f9e71b8cdde6e5cd6f4841f207dee3d828)
1 /*
2  * Copyright (c) 2000-2022 Apple Inc. All rights reserved.
3  *
4  * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
5  *
6  * This file contains Original Code and/or Modifications of Original Code
7  * as defined in and that are subject to the Apple Public Source License
8  * Version 2.0 (the 'License'). You may not use this file except in
9  * compliance with the License. The rights granted to you under the License
10  * may not be used to create, or enable the creation or redistribution of,
11  * unlawful or unlicensed copies of an Apple operating system, or to
12  * circumvent, violate, or enable the circumvention or violation of, any
13  * terms of an Apple operating system software license agreement.
14  *
15  * Please obtain a copy of the License at
16  * http://www.opensource.apple.com/apsl/ and read it before using this file.
17  *
18  * The Original Code and all software distributed under the License are
19  * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
20  * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
21  * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
22  * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
23  * Please see the License for the specific language governing rights and
24  * limitations under the License.
25  *
26  * @APPLE_OSREFERENCE_LICENSE_HEADER_END@
27  */
28 /*
29  * Copyright (c) 1982, 1986, 1988, 1990, 1993, 1994, 1995
30  *	The Regents of the University of California.  All rights reserved.
31  *
32  * Redistribution and use in source and binary forms, with or without
33  * modification, are permitted provided that the following conditions
34  * are met:
35  * 1. Redistributions of source code must retain the above copyright
36  *    notice, this list of conditions and the following disclaimer.
37  * 2. Redistributions in binary form must reproduce the above copyright
38  *    notice, this list of conditions and the following disclaimer in the
39  *    documentation and/or other materials provided with the distribution.
40  * 3. All advertising materials mentioning features or use of this software
41  *    must display the following acknowledgement:
42  *	This product includes software developed by the University of
43  *	California, Berkeley and its contributors.
44  * 4. Neither the name of the University nor the names of its contributors
45  *    may be used to endorse or promote products derived from this software
46  *    without specific prior written permission.
47  *
48  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
49  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
50  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
51  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
52  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
53  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
54  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
55  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
56  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
57  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
58  * SUCH DAMAGE.
59  *
60  *	@(#)tcp_input.c	8.12 (Berkeley) 5/24/95
61  * $FreeBSD: src/sys/netinet/tcp_input.c,v 1.107.2.16 2001/08/22 00:59:12 silby Exp $
62  */
63 /*
64  * NOTICE: This file was modified by SPARTA, Inc. in 2005 to introduce
65  * support for mandatory and extensible security protections.  This notice
66  * is included in support of clause 2.2 (b) of the Apple Public License,
67  * Version 2.0.
68  */
69 
70 #include "tcp_includes.h"
71 
72 #include <sys/param.h>
73 #include <sys/systm.h>
74 #include <sys/kernel.h>
75 #include <sys/sysctl.h>
76 #include <sys/malloc.h>
77 #include <sys/mbuf.h>
78 #include <sys/proc.h>           /* for proc0 declaration */
79 #include <sys/protosw.h>
80 #include <sys/socket.h>
81 #include <sys/socketvar.h>
82 #include <sys/syslog.h>
83 #include <sys/mcache.h>
84 #include <sys/kauth.h>
85 #include <kern/cpu_number.h>    /* before tcp_seq.h, for tcp_random18() */
86 
87 #include <machine/endian.h>
88 
89 #include <net/if.h>
90 #include <net/if_types.h>
91 #include <net/route.h>
92 #include <net/ntstat.h>
93 #include <net/content_filter.h>
94 #include <net/dlil.h>
95 #include <net/multi_layer_pkt_log.h>
96 #include <net/droptap.h>
97 
98 #include <netinet/in.h>
99 #include <netinet/in_systm.h>
100 #include <netinet/ip.h>
101 #include <netinet/ip_icmp.h>    /* for ICMP_BANDLIM		*/
102 #include <netinet/in_var.h>
103 #include <netinet/icmp_var.h>   /* for ICMP_BANDLIM	*/
104 #include <netinet/in_pcb.h>
105 #include <netinet/ip_var.h>
106 #include <mach/sdt.h>
107 #include <netinet/ip6.h>
108 #include <netinet/icmp6.h>
109 #include <netinet6/nd6.h>
110 #include <netinet6/ip6_var.h>
111 #include <netinet6/in6_pcb.h>
112 #include <netinet/tcp_syncookie.h>
113 #include <netinet/tcp.h>
114 #include <netinet/tcp_cache.h>
115 #include <netinet/tcp_fsm.h>
116 #include <netinet/tcp_seq.h>
117 #include <netinet/tcp_timer.h>
118 #include <netinet/tcp_var.h>
119 #include <netinet/tcp_cc.h>
120 #include <dev/random/randomdev.h>
121 #include <kern/zalloc.h>
122 #include <netinet6/tcp6_var.h>
123 #include <netinet/tcpip.h>
124 #include <netinet/tcp_log.h>
125 
126 #if IPSEC
127 #include <netinet6/ipsec.h>
128 #include <netinet6/ipsec6.h>
129 #include <netkey/key.h>
130 #endif /*IPSEC*/
131 
132 #include <sys/kdebug.h>
133 #if MPTCP
134 #include <netinet/mptcp_var.h>
135 #include <netinet/mptcp.h>
136 #include <netinet/mptcp_opt.h>
137 #endif /* MPTCP */
138 
139 #include <corecrypto/ccaes.h>
140 #include <net/sockaddr_utils.h>
141 
142 #define DBG_LAYER_BEG           NETDBG_CODE(DBG_NETTCP, 0)
143 #define DBG_LAYER_END           NETDBG_CODE(DBG_NETTCP, 2)
144 #define DBG_FNC_TCP_INPUT       NETDBG_CODE(DBG_NETTCP, (3 << 8))
145 #define DBG_FNC_TCP_NEWCONN     NETDBG_CODE(DBG_NETTCP, (7 << 8))
146 
147 #define TCP_RTT_HISTORY_EXPIRE_TIME     (60 * TCP_RETRANSHZ)
148 #define TCP_RECV_THROTTLE_WIN   (5 * TCP_RETRANSHZ)
149 
150 struct  tcpstat tcpstat;
151 
152 static int log_in_vain = 0;
153 SYSCTL_INT(_net_inet_tcp, OID_AUTO, log_in_vain,
154     CTLFLAG_RW | CTLFLAG_LOCKED, &log_in_vain, 0,
155     "Log all incoming TCP connections");
156 
157 static int blackhole = 0;
158 SYSCTL_INT(_net_inet_tcp, OID_AUTO, blackhole,
159     CTLFLAG_RW | CTLFLAG_LOCKED, &blackhole, 0,
160     "Do not send RST when dropping refused connections");
161 
162 SYSCTL_SKMEM_TCP_INT(OID_AUTO, delayed_ack,
163     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_delack_enabled, 3,
164     "Delay ACK to try and piggyback it onto a data packet");
165 
166 SYSCTL_SKMEM_TCP_INT(OID_AUTO, recvbg, CTLFLAG_RW | CTLFLAG_LOCKED,
167     int, tcp_recv_bg, 0, "Receive background");
168 
169 SYSCTL_SKMEM_TCP_INT(OID_AUTO, drop_synfin,
170     CTLFLAG_RW | CTLFLAG_LOCKED, static int, drop_synfin, 1,
171     "Drop TCP packets with SYN+FIN set");
172 
173 SYSCTL_NODE(_net_inet_tcp, OID_AUTO, reass, CTLFLAG_RW | CTLFLAG_LOCKED, 0,
174     "TCP Segment Reassembly Queue");
175 
176 static int tcp_reass_overflows = 0;
177 SYSCTL_INT(_net_inet_tcp_reass, OID_AUTO, overflows,
178     CTLFLAG_RD | CTLFLAG_LOCKED, &tcp_reass_overflows, 0,
179     "Global number of TCP segment reassembly queue overflows");
180 
181 int tcp_reass_total_qlen = 0;
182 SYSCTL_INT(_net_inet_tcp_reass, OID_AUTO, qlen,
183     CTLFLAG_RD | CTLFLAG_LOCKED, &tcp_reass_total_qlen, 0,
184     "Total number of TCP segments in reassembly queues");
185 
186 
187 SYSCTL_SKMEM_TCP_INT(OID_AUTO, slowlink_wsize, CTLFLAG_RW | CTLFLAG_LOCKED,
188     __private_extern__ int, slowlink_wsize, 8192,
189     "Maximum advertised window size for slowlink");
190 
191 SYSCTL_SKMEM_TCP_INT(OID_AUTO, maxseg_unacked,
192     CTLFLAG_RW | CTLFLAG_LOCKED, int, maxseg_unacked, 8,
193     "Maximum number of outstanding segments left unacked");
194 
195 SYSCTL_SKMEM_TCP_INT(OID_AUTO, rfc3465, CTLFLAG_RW | CTLFLAG_LOCKED,
196     int, tcp_do_rfc3465, 1, "");
197 
198 SYSCTL_SKMEM_TCP_INT(OID_AUTO, rfc3465_lim2,
199     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_do_rfc3465_lim2, 1,
200     "Appropriate bytes counting w/ L=2*SMSS");
201 
202 int rtt_samples_per_slot = 20;
203 
204 int tcp_acc_iaj_high_thresh = ACC_IAJ_HIGH_THRESH;
205 u_int32_t tcp_autorcvbuf_inc_shift = 3;
206 SYSCTL_SKMEM_TCP_INT(OID_AUTO, recv_allowed_iaj,
207     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_allowed_iaj, ALLOWED_IAJ,
208     "Allowed inter-packet arrival jiter");
209 
210 SYSCTL_SKMEM_TCP_INT(OID_AUTO, doautorcvbuf,
211     CTLFLAG_RW | CTLFLAG_LOCKED, u_int32_t, tcp_do_autorcvbuf, 1,
212     "Enable automatic socket buffer tuning");
213 
214 /* ToDo - remove once uTCP stops using it. */
215 SYSCTL_SKMEM_TCP_INT(OID_AUTO, autotunereorder,
216     CTLFLAG_RW | CTLFLAG_LOCKED, u_int32_t, tcp_autotune_reorder, 1,
217     "Enable automatic socket buffer tuning even when reordering is present");
218 
219 SYSCTL_SKMEM_TCP_INT(OID_AUTO, autorcvbufmax,
220     CTLFLAG_RW | CTLFLAG_LOCKED | CTLFLAG_KERN, u_int32_t, tcp_autorcvbuf_max, 2 * 1024 * 1024,
221     "Maximum receive socket buffer size");
222 
223 int tcp_disable_access_to_stats = 1;
224 SYSCTL_INT(_net_inet_tcp, OID_AUTO, disable_access_to_stats,
225     CTLFLAG_RW | CTLFLAG_LOCKED, &tcp_disable_access_to_stats, 0,
226     "Disable access to tcpstat");
227 
228 SYSCTL_SKMEM_TCP_INT(OID_AUTO, challengeack_limit,
229     CTLFLAG_RW | CTLFLAG_LOCKED, uint32_t, tcp_challengeack_limit, 10,
230     "Maximum number of challenge ACKs per connection per second");
231 
232 SYSCTL_SKMEM_TCP_INT(OID_AUTO, use_min_curr_rtt,
233     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_use_min_curr_rtt, 1,
234     "Use a min of k=4 RTT samples for congestion controllers");
235 
236 SYSCTL_SKMEM_TCP_INT(OID_AUTO, awdl_rtobase,
237     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_awdl_rtobase, 100,
238     "Initial RTO for AWDL interface");
239 
240 int tcp_syncookie = 0;
241 SYSCTL_INT(_net_inet_tcp, OID_AUTO, syncookie,
242     CTLFLAG_RW | CTLFLAG_LOCKED, &tcp_syncookie, 1,
243     "0: disable, 1: Use SYN cookies when backlog is full, 2: Always use SYN cookies");
244 
245 extern int tcp_acc_iaj_high;
246 extern int tcp_acc_iaj_react_limit;
247 extern int tcp_fin_timeout;
248 
249 uint8_t tcprexmtthresh = 3;
250 
251 uint32_t tcp_now;
252 
253 struct inpcbhead tcb;
254 #define tcb6    tcb  /* for KAME src sync over BSD*'s */
255 struct inpcbinfo tcbinfo;
256 
257 static void tcp_dooptions(struct tcpcb *, u_char *cp0 __counted_by(cnt0), int cnt0, struct tcphdr *,
258     struct tcpopt *);
259 static void tcp_finalize_options(struct tcpcb *, struct tcpopt *, unsigned int);
260 static void tcp_pulloutofband(struct socket *,
261     struct tcphdr *, struct mbuf *, int);
262 static void tcp_xmit_timer(struct tcpcb *, int, u_int32_t, tcp_seq);
263 static inline unsigned int tcp_maxmtu(struct rtentry *);
264 static inline void tcp_adaptive_rwtimo_check(struct tcpcb *, int);
265 
266 #if TRAFFIC_MGT
267 static inline void compute_iaj(struct tcpcb *tp);
268 static inline void compute_iaj_meat(struct tcpcb *tp, uint32_t cur_iaj);
269 #endif /* TRAFFIC_MGT */
270 
271 static inline unsigned int tcp_maxmtu6(struct rtentry *);
272 unsigned int get_maxmtu(struct rtentry *);
273 
274 static void tcp_sbrcv_grow(struct tcpcb *tp, struct sockbuf *sb,
275     struct tcpopt *to, uint32_t tlen);
276 void tcp_sbrcv_trim(struct tcpcb *tp, struct sockbuf *sb);
277 static void tcp_sbsnd_trim(struct sockbuf *sbsnd);
278 static inline void tcp_sbrcv_tstmp_check(struct tcpcb *tp);
279 static inline void tcp_sbrcv_reserve(struct tcpcb *tp, struct sockbuf *sb,
280     u_int32_t newsize, u_int32_t idealsize, u_int32_t rcvbuf_max);
281 static void tcp_bad_rexmt_restore_state(struct tcpcb *tp, struct tcphdr *th);
282 static void tcp_compute_rtt(struct tcpcb *tp, struct tcpopt *to,
283     struct tcphdr *th);
284 static void tcp_compute_rcv_rtt(struct tcpcb *tp, struct tcpopt *to,
285     struct tcphdr *th);
286 static void tcp_early_rexmt_check(struct tcpcb *tp, struct tcphdr *th);
287 static void tcp_bad_rexmt_check(struct tcpcb *tp, struct tcphdr *th,
288     struct tcpopt *to);
289 /*
290  * Constants used for resizing receive socket buffer
291  * when timestamps are not supported
292  */
293 #define TCPTV_RCVNOTS_QUANTUM 100
294 #define TCP_RCVNOTS_BYTELEVEL 204800
295 
296 /*
297  * Constants used for limiting early retransmits
298  * to 10 per minute.
299  */
300 #define TCP_EARLY_REXMT_WIN (60 * TCP_RETRANSHZ) /* 60 seconds */
301 #define TCP_EARLY_REXMT_LIMIT 10
302 
303 #define log_in_vain_log( a ) { log a; }
304 
305 /* ToDo - to be removed once uTCP stops using it */
306 #define TCP_RCV_SS_PKTCOUNT     512
307 SYSCTL_SKMEM_TCP_INT(OID_AUTO, rcvsspktcnt, CTLFLAG_RW | CTLFLAG_LOCKED,
308     int, tcp_rcvsspktcnt, TCP_RCV_SS_PKTCOUNT, "packets to be seen before receiver stretches acks");
309 
310 #define DELAY_ACK(tp, th) \
311 	(CC_ALGO(tp)->delay_ack != NULL && CC_ALGO(tp)->delay_ack(tp, th))
312 
313 static int tcp_dropdropablreq(struct socket *head);
314 static void tcp_newreno_partial_ack(struct tcpcb *tp, struct tcphdr *th);
315 static void update_base_rtt(struct tcpcb *tp, uint32_t rtt);
316 void tcp_set_background_cc(struct socket *so);
317 void tcp_set_foreground_cc(struct socket *so);
318 static void tcp_set_new_cc(struct socket *so, uint8_t cc_index);
319 static void tcp_bwmeas_check(struct tcpcb *tp);
320 
321 #if TRAFFIC_MGT
322 void
reset_acc_iaj(struct tcpcb * tp)323 reset_acc_iaj(struct tcpcb *tp)
324 {
325 	tp->acc_iaj = 0;
326 	CLEAR_IAJ_STATE(tp);
327 }
328 
329 static inline void
update_iaj_state(struct tcpcb * tp,int size,int rst_size)330 update_iaj_state(struct tcpcb *tp, int size, int rst_size)
331 {
332 	if (rst_size > 0) {
333 		tp->iaj_size = 0;
334 	}
335 	if (tp->iaj_size == 0 || size >= tp->iaj_size) {
336 		tp->iaj_size = size;
337 		tp->iaj_rcv_ts = tcp_now;
338 		tp->iaj_small_pkt = 0;
339 	}
340 }
341 
342 /* For every 64-bit unsigned integer(v), this function will find the
343  * largest 32-bit integer n such that (n*n <= v). This takes at most 32 iterations
344  * irrespective of the value of v and does not involve multiplications.
345  */
346 static inline uint32_t
isqrt(uint64_t val)347 isqrt(uint64_t val)
348 {
349 	uint32_t sqrt_cache[11] = {0, 1, 4, 9, 16, 25, 36, 49, 64, 81, 100};
350 	uint64_t temp, g = 0, b = 1 << 31, bshft = 31;
351 	if (val <= 100) {
352 		for (g = 0; g <= 10; ++g) {
353 			if (sqrt_cache[g] > val) {
354 				g--;
355 				break;
356 			} else if (sqrt_cache[g] == val) {
357 				break;
358 			}
359 		}
360 	} else {
361 		do {
362 			temp = (((g << 1) + b) << (bshft--));
363 			if (val >= temp) {
364 				g += b;
365 				val -= temp;
366 			}
367 			b >>= 1;
368 		} while (b > 0 && val > 0);
369 	}
370 	return (uint32_t)g;
371 }
372 
373 static inline void
compute_iaj_meat(struct tcpcb * tp,uint32_t cur_iaj)374 compute_iaj_meat(struct tcpcb *tp, uint32_t cur_iaj)
375 {
376 	/* When accumulated IAJ reaches MAX_ACC_IAJ in milliseconds,
377 	 * throttle the receive window to a minimum of MIN_IAJ_WIN packets
378 	 */
379 #define MAX_ACC_IAJ (tcp_acc_iaj_high_thresh + tcp_acc_iaj_react_limit)
380 #define IAJ_DIV_SHIFT 4
381 #define IAJ_ROUNDUP_CONST (1 << (IAJ_DIV_SHIFT - 1))
382 
383 	uint32_t allowed_iaj, acc_iaj = 0;
384 
385 	/* Using 64-bit storage for the inter-arrival jitter deviation,
386 	 * to avoid accidentally rolling over if the inter-arrival time exceeds 62 seconds.
387 	 */
388 	int64_t mean, temp, cur_iaj_dev;
389 
390 	cur_iaj_dev = (cur_iaj - tp->avg_iaj);
391 
392 	/* Allow a jitter of "allowed_iaj" milliseconds. Some connections
393 	 * may have a constant jitter more than that. We detect this by
394 	 * using standard deviation.
395 	 */
396 	allowed_iaj = tp->avg_iaj + tp->std_dev_iaj;
397 	if (allowed_iaj < tcp_allowed_iaj) {
398 		allowed_iaj = tcp_allowed_iaj;
399 	}
400 
401 	/* Initially when the connection starts, the senders congestion
402 	 * window is small. During this period we avoid throttling a
403 	 * connection because we do not have a good starting point for
404 	 * allowed_iaj. IAJ_IGNORE_PKTCNT is used to quietly gloss over
405 	 * the first few packets.
406 	 */
407 	if (tp->iaj_pktcnt > IAJ_IGNORE_PKTCNT) {
408 		if (cur_iaj <= allowed_iaj) {
409 			if (tp->acc_iaj >= 2) {
410 				acc_iaj = tp->acc_iaj - 2;
411 			} else {
412 				acc_iaj = 0;
413 			}
414 		} else {
415 			acc_iaj = tp->acc_iaj + (cur_iaj - allowed_iaj);
416 		}
417 
418 		if (acc_iaj > MAX_ACC_IAJ) {
419 			acc_iaj = MAX_ACC_IAJ;
420 		}
421 		tp->acc_iaj = acc_iaj;
422 	}
423 
424 	/* Compute weighted average where the history has a weight of
425 	 * 15 out of 16 and the current value has a weight of 1 out of 16.
426 	 * This will make the short-term measurements have more weight.
427 	 *
428 	 * The addition of 8 will help to round-up the value
429 	 * instead of round-down
430 	 */
431 	tp->avg_iaj = (((tp->avg_iaj << IAJ_DIV_SHIFT) - tp->avg_iaj)
432 	    + cur_iaj + IAJ_ROUNDUP_CONST) >> IAJ_DIV_SHIFT;
433 
434 	/* Compute Root-mean-square of deviation where mean is a weighted
435 	 * average as described above.
436 	 */
437 	temp = tp->std_dev_iaj * tp->std_dev_iaj;
438 	mean = (((temp << IAJ_DIV_SHIFT) - temp)
439 	    + (cur_iaj_dev * cur_iaj_dev)
440 	    + IAJ_ROUNDUP_CONST) >> IAJ_DIV_SHIFT;
441 
442 	tp->std_dev_iaj = isqrt(mean);
443 
444 	DTRACE_TCP3(iaj, struct tcpcb *, tp, uint32_t, cur_iaj,
445 	    uint32_t, allowed_iaj);
446 
447 	return;
448 }
449 
450 static inline void
compute_iaj(struct tcpcb * tp)451 compute_iaj(struct tcpcb *tp)
452 {
453 	compute_iaj_meat(tp, (tcp_now - tp->iaj_rcv_ts));
454 }
455 #endif /* TRAFFIC_MGT */
456 
457 /*
458  * Perform rate limit check per connection per second
459  * tp->t_challengeack_last is the last_time diff was greater than 1sec
460  * tp->t_challengeack_count is the number of ACKs sent (within 1sec)
461  * Return TRUE if we shouldn't send the ACK due to rate limitation
462  * Return FALSE if it is still ok to send challenge ACK
463  */
464 static boolean_t
tcp_is_ack_ratelimited(struct tcpcb * tp)465 tcp_is_ack_ratelimited(struct tcpcb *tp)
466 {
467 	boolean_t ret = TRUE;
468 	uint32_t now = tcp_now;
469 	int32_t diff = 0;
470 
471 	diff = timer_diff(now, 0, tp->t_challengeack_last, 0);
472 	/* If it is first time or diff > 1000ms,
473 	 * update the challengeack_last and reset the
474 	 * current count of ACKs
475 	 */
476 	if (tp->t_challengeack_last == 0 || diff >= 1000) {
477 		tp->t_challengeack_last = now;
478 		tp->t_challengeack_count = 0;
479 		ret = FALSE;
480 	} else if (tp->t_challengeack_count < tcp_challengeack_limit) {
481 		ret = FALSE;
482 	}
483 
484 	/* Careful about wrap-around */
485 	if (ret == FALSE && (tp->t_challengeack_count + 1 > 0)) {
486 		tp->t_challengeack_count++;
487 	}
488 
489 	return ret;
490 }
491 
492 /* Check if enough amount of data has been acknowledged since
493  * bw measurement was started
494  */
495 static void
tcp_bwmeas_check(struct tcpcb * tp)496 tcp_bwmeas_check(struct tcpcb *tp)
497 {
498 	int32_t bw_meas_bytes;
499 	uint32_t bw, bytes, elapsed_time;
500 
501 	if (SEQ_LEQ(tp->snd_una, tp->t_bwmeas->bw_start)) {
502 		return;
503 	}
504 
505 	bw_meas_bytes = tp->snd_una - tp->t_bwmeas->bw_start;
506 	if ((tp->t_flagsext & TF_BWMEAS_INPROGRESS) &&
507 	    bw_meas_bytes >= (int32_t)(tp->t_bwmeas->bw_size)) {
508 		bytes = bw_meas_bytes;
509 		elapsed_time = tcp_now - tp->t_bwmeas->bw_ts;
510 		if (elapsed_time > 0) {
511 			bw = bytes / elapsed_time;
512 			if (bw > 0) {
513 				if (tp->t_bwmeas->bw_sndbw > 0) {
514 					tp->t_bwmeas->bw_sndbw =
515 					    (((tp->t_bwmeas->bw_sndbw << 3)
516 					    - tp->t_bwmeas->bw_sndbw)
517 					    + bw) >> 3;
518 				} else {
519 					tp->t_bwmeas->bw_sndbw = bw;
520 				}
521 
522 				/* Store the maximum value */
523 				if (tp->t_bwmeas->bw_sndbw_max == 0) {
524 					tp->t_bwmeas->bw_sndbw_max =
525 					    tp->t_bwmeas->bw_sndbw;
526 				} else {
527 					tp->t_bwmeas->bw_sndbw_max =
528 					    max(tp->t_bwmeas->bw_sndbw,
529 					    tp->t_bwmeas->bw_sndbw_max);
530 				}
531 			}
532 		}
533 		tp->t_flagsext &= ~(TF_BWMEAS_INPROGRESS);
534 	}
535 }
536 
537 static int
tcp_reass(struct tcpcb * tp,struct tcphdr * th,int * tlenp,struct mbuf * m,struct ifnet * ifp,int * dowakeup)538 tcp_reass(struct tcpcb *tp, struct tcphdr *th, int *tlenp, struct mbuf *m,
539     struct ifnet *ifp, int *dowakeup)
540 {
541 	struct tseg_qent *q;
542 	struct tseg_qent *p = NULL;
543 	struct tseg_qent *nq;
544 	struct tseg_qent *te = NULL;
545 	struct inpcb *inp = tp->t_inpcb;
546 	struct socket *so = inp->inp_socket;
547 	int flags = 0;
548 	uint32_t qlimit;
549 	stats_functional_type ifnet_count_type = IFNET_COUNT_TYPE(ifp);
550 	boolean_t dsack_set = FALSE;
551 
552 	/*
553 	 * If the reassembly queue already has entries or if we are going
554 	 * to add a new one, then the connection has reached a loss state.
555 	 * Reset the force-ACK counter at this point.
556 	 */
557 	tp->t_forced_acks = TCP_FORCED_ACKS_COUNT;
558 
559 #if TRAFFIC_MGT
560 	if (tp->acc_iaj > 0) {
561 		reset_acc_iaj(tp);
562 	}
563 #endif /* TRAFFIC_MGT */
564 
565 	if (th->th_seq != tp->rcv_nxt) {
566 		struct mbuf *tmp = m;
567 
568 		if (tcp_memacct_softlimit()) {
569 			m_drop(m, DROPTAP_FLAG_DIR_IN | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_REASS_MEMORY_PRESSURE, NULL, 0);
570 			tcp_reass_overflows++;
571 			tcpstat.tcps_rcvmemdrop++;
572 			*tlenp = 0;
573 			return 0;
574 		}
575 
576 		while (tmp != NULL) {
577 			if (mbuf_class_under_pressure(tmp)) {
578 				m_drop(m, DROPTAP_FLAG_DIR_IN | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_REASS_MEMORY_PRESSURE, NULL, 0);
579 				tcp_reass_overflows++;
580 				tcpstat.tcps_rcvmemdrop++;
581 				*tlenp = 0;
582 				return 0;
583 			}
584 
585 			tmp = tmp->m_next;
586 		}
587 	}
588 
589 	/*
590 	 * Limit the number of segments in the reassembly queue to prevent
591 	 * holding on to too many segments (and thus running out of mbufs).
592 	 * Make sure to let the missing segment through which caused this
593 	 * queue.  Always keep one global queue entry spare to be able to
594 	 * process the missing segment.
595 	 */
596 	qlimit = min(max(100, so->so_rcv.sb_hiwat >> 10),
597 	    (tcp_autorcvbuf_max >> 10));
598 	if (th->th_seq != tp->rcv_nxt &&
599 	    (tp->t_reassqlen + 1) >= qlimit) {
600 		tcp_reass_overflows++;
601 		tcpstat.tcps_rcvmemdrop++;
602 		m_drop(m, DROPTAP_FLAG_DIR_IN | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_REASS_OVERFLOW, NULL, 0);
603 		*tlenp = 0;
604 		return 0;
605 	}
606 
607 	/* Create a new queue entry. If we can't, just drop the pkt. */
608 	te = tcp_create_reass_qent(tp, m, th, *tlenp);
609 	if (te == NULL) {
610 		m_drop_list(m, NULL,
611 		    DROPTAP_FLAG_DIR_IN | DROPTAP_FLAG_L2_MISSING,
612 		    DROP_REASON_TCP_REASSEMBLY_ALLOC, NULL, 0);
613 		*tlenp = 0;
614 		return 0;
615 	}
616 
617 	/*
618 	 * Find a segment which begins after this one does.
619 	 */
620 	LIST_FOREACH(q, &tp->t_segq, tqe_q) {
621 		if (SEQ_GT(q->tqe_th->th_seq, th->th_seq)) {
622 			break;
623 		}
624 		p = q;
625 	}
626 
627 	/*
628 	 * If there is a preceding segment, it may provide some of
629 	 * our data already.  If so, drop the data from the incoming
630 	 * segment.  If it provides all of our data, drop us.
631 	 */
632 	if (p != NULL) {
633 		int i;
634 		/* conversion to int (in i) handles seq wraparound */
635 		i = p->tqe_th->th_seq + p->tqe_len - th->th_seq;
636 		if (i > 0) {
637 			if (i > 1) {
638 				/*
639 				 * Note duplicate data sequence numbers
640 				 * to report in DSACK option
641 				 */
642 				tp->t_dsack_lseq = th->th_seq;
643 				tp->t_dsack_rseq = th->th_seq +
644 				    min(i, *tlenp);
645 
646 				/*
647 				 * Report only the first part of partial/
648 				 * non-contiguous duplicate sequence space
649 				 */
650 				dsack_set = TRUE;
651 			}
652 			if (i >= *tlenp) {
653 				struct mbuf *tmp;
654 
655 				tcpstat.tcps_rcvduppack++;
656 				tcpstat.tcps_rcvdupbyte += *tlenp;
657 				if (nstat_collect) {
658 					nstat_route_rx(inp->inp_route.ro_rt,
659 					    1, *tlenp,
660 					    NSTAT_RX_FLAG_DUPLICATE);
661 					INP_ADD_RXSTAT(inp, ifnet_count_type, 1, *tlenp);
662 					tp->t_stat.rxduplicatebytes += *tlenp;
663 				}
664 				tmp = tcp_destroy_reass_qent(tp, te);
665 				m_freem(tmp);
666 				te = NULL;
667 				/*
668 				 * Try to present any queued data
669 				 * at the left window edge to the user.
670 				 * This is needed after the 3-WHS
671 				 * completes.
672 				 */
673 				goto present;
674 			}
675 			m_adj(m, i);
676 			*tlenp -= i;
677 			te->tqe_len -= i;
678 			th->th_seq += i;
679 		}
680 	}
681 
682 	if (th->th_seq != tp->rcv_nxt) {
683 		tp->t_rcvoopack++;
684 		tcpstat.tcps_rcvoopack++;
685 		tcpstat.tcps_rcvoobyte += *tlenp;
686 		if (nstat_collect) {
687 			tp->t_stat.rxoutoforderbytes += *tlenp;
688 		}
689 	}
690 
691 	if (nstat_collect) {
692 		nstat_route_rx(inp->inp_route.ro_rt, 1, *tlenp,
693 		    NSTAT_RX_FLAG_OUT_OF_ORDER);
694 		INP_ADD_RXSTAT(inp, ifnet_count_type, 1, *tlenp);
695 	}
696 
697 	/*
698 	 * While we overlap succeeding segments trim them or,
699 	 * if they are completely covered, dequeue them.
700 	 */
701 	while (q) {
702 		struct mbuf *tmp;
703 
704 		int i = (th->th_seq + *tlenp) - q->tqe_th->th_seq;
705 		if (i <= 0) {
706 			break;
707 		}
708 
709 		/*
710 		 * Report only the first part of partial/non-contiguous
711 		 * duplicate segment in dsack option. The variable
712 		 * dsack_set will be true if a previous entry has some of
713 		 * the duplicate sequence space.
714 		 */
715 		if (i > 1 && !dsack_set) {
716 			if (tp->t_dsack_lseq == 0) {
717 				tp->t_dsack_lseq = q->tqe_th->th_seq;
718 				tp->t_dsack_rseq =
719 				    tp->t_dsack_lseq + min(i, q->tqe_len);
720 			} else {
721 				/*
722 				 * this segment overlaps data in multple
723 				 * entries in the reassembly queue, move
724 				 * the right sequence number further.
725 				 */
726 				tp->t_dsack_rseq =
727 				    tp->t_dsack_rseq + min(i, q->tqe_len);
728 			}
729 		}
730 		if (i < q->tqe_len) {
731 			q->tqe_th->th_seq += i;
732 			q->tqe_len -= i;
733 			m_adj(q->tqe_m, i);
734 			break;
735 		}
736 
737 		nq = LIST_NEXT(q, tqe_q);
738 
739 		LIST_REMOVE(q, tqe_q);
740 
741 		tmp = tcp_destroy_reass_qent(tp, q);
742 
743 		m_freem(tmp);
744 		q = nq;
745 	}
746 
747 	/* Insert the new segment queue entry into place. */
748 	if (p == NULL) {
749 		LIST_INSERT_HEAD(&tp->t_segq, te, tqe_q);
750 	} else {
751 		LIST_INSERT_AFTER(p, te, tqe_q);
752 	}
753 
754 present:
755 	/*
756 	 * Present data to user, advancing rcv_nxt through
757 	 * completed sequence space.
758 	 */
759 	if (!TCPS_HAVEESTABLISHED(tp->t_state)) {
760 		return 0;
761 	}
762 	q = LIST_FIRST(&tp->t_segq);
763 	if (!q || q->tqe_th->th_seq != tp->rcv_nxt) {
764 		return 0;
765 	}
766 
767 	/*
768 	 * If there is already another thread doing reassembly for this
769 	 * connection, it is better to let it finish the job --
770 	 * (radar 16316196)
771 	 */
772 	if (tp->t_flagsext & TF_REASS_INPROG) {
773 		return 0;
774 	}
775 
776 	tp->t_flagsext |= TF_REASS_INPROG;
777 	/* lost packet was recovered, so ooo data can be returned */
778 	tcpstat.tcps_recovered_pkts++;
779 
780 	do {
781 		uint8_t psh = q->tqe_th->th_flags & TH_PUSH;
782 		struct mbuf *tmp;
783 
784 		tp->rcv_nxt += q->tqe_len;
785 		flags = q->tqe_th->th_flags & TH_FIN;
786 
787 		LIST_REMOVE(q, tqe_q);
788 
789 		tmp = tcp_destroy_reass_qent(tp, q);
790 
791 		if (so->so_state & SS_CANTRCVMORE) {
792 			m_freem(tmp);
793 		} else {
794 			so_recv_data_stat(so, tmp, 0); /* XXXX */
795 			if (psh) {
796 				tp->t_flagsext |= TF_LAST_IS_PSH;
797 			} else {
798 				tp->t_flagsext &= ~TF_LAST_IS_PSH;
799 			}
800 
801 			if (sbappendstream_rcvdemux(so, tmp)) {
802 				*dowakeup = 1;
803 			}
804 		}
805 		q = LIST_FIRST(&tp->t_segq);
806 	} while (q && q->tqe_th->th_seq == tp->rcv_nxt);
807 	tp->t_flagsext &= ~TF_REASS_INPROG;
808 
809 	if ((inp->inp_vflag & INP_IPV6) != 0) {
810 		KERNEL_DEBUG(DBG_LAYER_BEG,
811 		    ((inp->inp_fport << 16) | inp->inp_lport),
812 		    (((inp->in6p_laddr.s6_addr16[0] & 0xffff) << 16) |
813 		    (inp->in6p_faddr.s6_addr16[0] & 0xffff)),
814 		    0, 0, 0);
815 	} else {
816 		KERNEL_DEBUG(DBG_LAYER_BEG,
817 		    ((inp->inp_fport << 16) | inp->inp_lport),
818 		    (((inp->inp_laddr.s_addr & 0xffff) << 16) |
819 		    (inp->inp_faddr.s_addr & 0xffff)),
820 		    0, 0, 0);
821 	}
822 
823 	return flags;
824 }
825 
826 /*
827  * Reduce congestion window when local AQM sends
828  * congestion event. We don't enter FAST_RECOVERY here
829  * as there is no packet loss.
830  */
831 void
tcp_local_congestion_notification(struct tcpcb * tp)832 tcp_local_congestion_notification(struct tcpcb *tp)
833 {
834 	if (CC_ALGO(tp)->pre_fr != NULL) {
835 		CC_ALGO(tp)->pre_fr(tp);
836 	}
837 
838 	tp->snd_cwnd = tp->snd_ssthresh;
839 }
840 
841 /*
842  * Enter fast recovery and reduce congestion window,
843  * used when CE is seen or when a tail loss
844  * probe recovers the last packet. Also used by RACK.
845  */
846 void
tcp_enter_fast_recovery(struct tcpcb * tp)847 tcp_enter_fast_recovery(struct tcpcb *tp)
848 {
849 	/*
850 	 * If the current tcp cc module has
851 	 * defined a hook for tasks to run
852 	 * before entering FR, call it
853 	 */
854 	if (CC_ALGO(tp)->pre_fr != NULL) {
855 		CC_ALGO(tp)->pre_fr(tp);
856 	}
857 	ENTER_FASTRECOVERY(tp);
858 	if (tp->t_flags & TF_SENTFIN) {
859 		tp->snd_recover = tp->snd_max - 1;
860 	} else {
861 		tp->snd_recover = tp->snd_max;
862 	}
863 
864 	tp->t_flagsext &= ~TF_CWND_NONVALIDATED;
865 
866 	tp->t_timer[TCPT_REXMT] = 0;
867 	tp->t_timer[TCPT_PTO] = 0;
868 	tp->t_rtttime = 0;
869 	if (tp->t_flagsext & TF_CWND_NONVALIDATED) {
870 		tcp_cc_adjust_nonvalidated_cwnd(tp);
871 	} else {
872 		/* No need to inflate the congestion window */
873 		tp->snd_cwnd = tp->snd_ssthresh;
874 	}
875 }
876 
877 /*
878  * This function is called upon reception of data on a socket. It's purpose is
879  * to handle the adaptive keepalive timers that monitor whether the connection
880  * is making progress. First the adaptive read-timer, second the TFO probe-timer.
881  *
882  * The application wants to get an event if there is a stall during read.
883  * Set the initial keepalive timeout to be equal to twice RTO.
884  *
885  * If the outgoing interface is in marginal conditions, we need to
886  * enable read probes for that too.
887  */
888 static inline void
tcp_adaptive_rwtimo_check(struct tcpcb * tp,int tlen)889 tcp_adaptive_rwtimo_check(struct tcpcb *tp, int tlen)
890 {
891 	struct ifnet *outifp = tp->t_inpcb->inp_last_outifp;
892 
893 	if ((tp->t_adaptive_rtimo > 0 ||
894 	    (outifp != NULL &&
895 	    (outifp->if_eflags & IFEF_PROBE_CONNECTIVITY)))
896 	    && tlen > 0 &&
897 	    tp->t_state == TCPS_ESTABLISHED) {
898 		tp->t_timer[TCPT_KEEP] = tcp_offset_from_start(tp,
899 		    (TCP_REXMTVAL(tp) << 1));
900 		tp->t_flagsext |= TF_DETECT_READSTALL;
901 		tp->t_rtimo_probes = 0;
902 	}
903 }
904 
905 inline void
tcp_keepalive_reset(struct tcpcb * tp)906 tcp_keepalive_reset(struct tcpcb *tp)
907 {
908 	tp->t_timer[TCPT_KEEP] = tcp_offset_from_start(tp,
909 	    TCP_CONN_KEEPIDLE(tp));
910 	tp->t_flagsext &= ~(TF_DETECT_READSTALL);
911 	tp->t_rtimo_probes = 0;
912 }
913 
914 void
tcp_set_finwait_timeout(struct tcpcb * tp)915 tcp_set_finwait_timeout(struct tcpcb *tp)
916 {
917 	/*
918 	 * Starting the TCPT_2MSL timer is contrary to the
919 	 * specification, but if we don't get a FIN
920 	 * we'll hang forever.
921 	 */
922 	ASSERT(tp->t_state == TCPS_FIN_WAIT_2);
923 	ASSERT((tp->t_inpcb->inp_socket->so_state & (SS_CANTRCVMORE)) == SS_CANTRCVMORE);
924 
925 	if (tcp_fin_timeout > 0 &&
926 	    tcp_fin_timeout < TCP_CONN_MAXIDLE(tp)) {
927 		tp->t_timer[TCPT_2MSL] = tcp_offset_from_start(tp, tcp_fin_timeout);
928 	} else {
929 		tp->t_timer[TCPT_2MSL] = tcp_offset_from_start(tp, TCP_CONN_MAXIDLE(tp));
930 	}
931 }
932 
933 /*
934  * TCP input routine, follows pages 65-76 of the
935  * protocol specification dated September, 1981 very closely.
936  */
937 int
tcp6_input(struct mbuf ** mp,int * offp,int proto)938 tcp6_input(struct mbuf **mp, int *offp, int proto)
939 {
940 #pragma unused(proto)
941 	struct mbuf *m = *mp;
942 	uint32_t ia6_flags;
943 	struct ifnet *ifp = m->m_pkthdr.rcvif;
944 
945 	IP6_EXTHDR_CHECK(m, *offp, sizeof(struct tcphdr), return IPPROTO_DONE);
946 
947 	/* Expect 32-bit aligned data pointer on strict-align platforms */
948 	MBUF_STRICT_DATA_ALIGNMENT_CHECK_32(m);
949 
950 	/*
951 	 * draft-itojun-ipv6-tcp-to-anycast
952 	 * better place to put this in?
953 	 */
954 	if (ip6_getdstifaddr_info(m, NULL, &ia6_flags) == 0) {
955 		if (ia6_flags & IN6_IFF_ANYCAST) {
956 			struct ip6_hdr *ip6;
957 
958 			ip6 = mtod(m, struct ip6_hdr *);
959 			icmp6_error(m, ICMP6_DST_UNREACH,
960 			    ICMP6_DST_UNREACH_ADDR,
961 			    (int)((caddr_t)&ip6->ip6_dst - (caddr_t)ip6));
962 
963 			IF_TCP_STATINC(ifp, icmp6unreach);
964 
965 			return IPPROTO_DONE;
966 		}
967 	}
968 
969 	tcp_input(m, *offp);
970 	return IPPROTO_DONE;
971 }
972 
973 static void
tcp_sbrcv_reserve(struct tcpcb * tp,struct sockbuf * sbrcv,u_int32_t newsize,u_int32_t idealsize,u_int32_t rcvbuf_max)974 tcp_sbrcv_reserve(struct tcpcb *tp, struct sockbuf *sbrcv,
975     u_int32_t newsize, u_int32_t idealsize, u_int32_t rcvbuf_max)
976 {
977 	/* newsize should not exceed max */
978 	newsize = min(newsize, rcvbuf_max);
979 
980 	/* The receive window scale negotiated at the
981 	 * beginning of the connection will also set a
982 	 * limit on the socket buffer size
983 	 */
984 	newsize = min(newsize, TCP_MAXWIN << tp->rcv_scale);
985 
986 	/* Set new socket buffer size */
987 	if (newsize > sbrcv->sb_hiwat &&
988 	    (sbreserve(sbrcv, newsize) == 1)) {
989 		sbrcv->sb_idealsize = min(max(sbrcv->sb_idealsize,
990 		    (idealsize != 0) ? idealsize : newsize), rcvbuf_max);
991 
992 		/* Again check the limit set by the advertised
993 		 * window scale
994 		 */
995 		sbrcv->sb_idealsize = min(sbrcv->sb_idealsize,
996 		    TCP_MAXWIN << tp->rcv_scale);
997 	}
998 }
999 
1000 /*
1001  * This function is used to grow  a receive socket buffer. It
1002  * will take into account system-level memory usage and the
1003  * bandwidth available on the link to make a decision.
1004  */
1005 static void
tcp_sbrcv_grow(struct tcpcb * tp,struct sockbuf * sbrcv,struct tcpopt * to,uint32_t pktlen)1006 tcp_sbrcv_grow(struct tcpcb *tp, struct sockbuf *sbrcv,
1007     struct tcpopt *to, uint32_t pktlen)
1008 {
1009 	struct socket *so = sbrcv->sb_so;
1010 
1011 	/*
1012 	 * Do not grow the receive socket buffer if
1013 	 * - auto resizing is disabled, globally or on this socket
1014 	 * - the high water mark already reached the maximum
1015 	 * - the stream is in background and receive side is being
1016 	 * throttled
1017 	 * - we are memory-limited
1018 	 */
1019 	if (tcp_do_autorcvbuf == 0 ||
1020 	    (sbrcv->sb_flags & SB_AUTOSIZE) == 0 ||
1021 	    sbrcv->sb_hiwat >= tcp_autorcvbuf_max ||
1022 	    (tp->t_flagsext & TF_RECV_THROTTLE) ||
1023 	    (so->so_flags1 & SOF1_EXTEND_BK_IDLE_WANTED) ||
1024 	    (tcp_memacct_limited() && sbrcv->sb_hiwat >= tcp_recvspace)) {
1025 		/* Can not resize the socket buffer, just return */
1026 		goto out;
1027 	}
1028 
1029 	if (!TSTMP_SUPPORTED(tp)) {
1030 		/*
1031 		 * Timestamp option is not supported on this connection,
1032 		 * use receiver's RTT. Socket buffer grows based on the
1033 		 * BDP of the link.
1034 		 */
1035 		if (TSTMP_GEQ(tcp_now,
1036 		    tp->rfbuf_ts + (tp->rcv_srtt >> TCP_RTT_SHIFT))) {
1037 			tp->rfbuf_cnt += pktlen;
1038 			if (tp->rfbuf_cnt > tp->rfbuf_space) {
1039 				int32_t rcvbuf_inc;
1040 				uint32_t idealsize;
1041 
1042 				/*
1043 				 * Increase receive-buffer aggressively if we
1044 				 * received more than 150% of what was received
1045 				 * in the previous round. Because, that means
1046 				 * the sender is in TCP slow-start and so
1047 				 * we need to give it more space to not be
1048 				 * limiting the sender with a small receive-window.
1049 				 */
1050 				if (tp->rfbuf_cnt > tp->rfbuf_space + (tp->rfbuf_space >> 1)) {
1051 					rcvbuf_inc = (tp->rfbuf_cnt << 2) - sbrcv->sb_hiwat;
1052 					idealsize = (tp->rfbuf_cnt << 2);
1053 				} else {
1054 					rcvbuf_inc = (tp->rfbuf_cnt << 1) - sbrcv->sb_hiwat;
1055 					idealsize = (tp->rfbuf_cnt << 1);
1056 				}
1057 
1058 				if (rcvbuf_inc > 0) {
1059 					rcvbuf_inc =
1060 					    (rcvbuf_inc / tp->t_maxseg) * tp->t_maxseg;
1061 
1062 					tcp_sbrcv_reserve(tp, sbrcv,
1063 					    sbrcv->sb_hiwat + rcvbuf_inc,
1064 					    idealsize, tcp_autorcvbuf_max);
1065 
1066 					tp->rfbuf_space = tp->rfbuf_cnt;
1067 				}
1068 			}
1069 			goto out;
1070 		} else {
1071 			tp->rfbuf_cnt += pktlen;
1072 			return;
1073 		}
1074 	} else if (to->to_tsecr != 0) {
1075 		/*
1076 		 * If the timestamp shows that one RTT has
1077 		 * completed, we can stop counting the
1078 		 * bytes. Here we consider increasing
1079 		 * the socket buffer if the bandwidth measured in
1080 		 * last rtt, is more than half of sb_hiwat, this will
1081 		 * help to scale the buffer according to the bandwidth
1082 		 * on the link.
1083 		 */
1084 		if (TSTMP_GEQ(to->to_tsecr, tp->rfbuf_ts)) {
1085 			tp->rfbuf_cnt += pktlen;
1086 
1087 			if (tp->rfbuf_cnt > tp->rfbuf_space) {
1088 				int32_t rcvbuf_inc;
1089 				uint32_t idealsize;
1090 
1091 				if (tp->rfbuf_cnt > tp->rfbuf_space + (tp->rfbuf_space >> 1)) {
1092 					rcvbuf_inc = (tp->rfbuf_cnt << 2) - sbrcv->sb_hiwat;
1093 					idealsize = (tp->rfbuf_cnt << 2);
1094 				} else {
1095 					rcvbuf_inc = (tp->rfbuf_cnt << 1) - sbrcv->sb_hiwat;
1096 					idealsize = (tp->rfbuf_cnt << 1);
1097 				}
1098 
1099 				tp->rfbuf_space = tp->rfbuf_cnt;
1100 
1101 				if (rcvbuf_inc > 0) {
1102 					rcvbuf_inc =
1103 					    (rcvbuf_inc / tp->t_maxseg) * tp->t_maxseg;
1104 
1105 					tcp_sbrcv_reserve(tp, sbrcv,
1106 					    sbrcv->sb_hiwat + rcvbuf_inc,
1107 					    idealsize, tcp_autorcvbuf_max);
1108 				}
1109 			}
1110 			/* Measure instantaneous receive bandwidth */
1111 			if (tp->t_bwmeas != NULL && tp->rfbuf_cnt > 0 &&
1112 			    TSTMP_GT(tcp_now, tp->rfbuf_ts)) {
1113 				u_int32_t rcv_bw;
1114 				rcv_bw = tp->rfbuf_cnt /
1115 				    (int)(tcp_now - tp->rfbuf_ts);
1116 				if (tp->t_bwmeas->bw_rcvbw_max == 0) {
1117 					tp->t_bwmeas->bw_rcvbw_max = rcv_bw;
1118 				} else {
1119 					tp->t_bwmeas->bw_rcvbw_max = max(
1120 						tp->t_bwmeas->bw_rcvbw_max, rcv_bw);
1121 				}
1122 			}
1123 			goto out;
1124 		} else {
1125 			tp->rfbuf_cnt += pktlen;
1126 			return;
1127 		}
1128 	}
1129 out:
1130 	/* Restart the measurement */
1131 	tp->rfbuf_ts = tcp_now;
1132 	tp->rfbuf_cnt = 0;
1133 	return;
1134 }
1135 
1136 /* This function will trim the excess space added to the socket buffer
1137  * to help a slow-reading app. The ideal-size of a socket buffer depends
1138  * on the link bandwidth or it is set by an application and we aim to
1139  * reach that size.
1140  */
1141 void
tcp_sbrcv_trim(struct tcpcb * tp,struct sockbuf * sbrcv)1142 tcp_sbrcv_trim(struct tcpcb *tp, struct sockbuf *sbrcv)
1143 {
1144 	if (tcp_do_autorcvbuf == 1 && sbrcv->sb_idealsize > 0 &&
1145 	    sbrcv->sb_hiwat > sbrcv->sb_idealsize) {
1146 		int32_t trim;
1147 		/* compute the difference between ideal and current sizes */
1148 		u_int32_t diff = sbrcv->sb_hiwat - sbrcv->sb_idealsize;
1149 
1150 		/* Compute the maximum advertised window for
1151 		 * this connection.
1152 		 */
1153 		u_int32_t advwin = tp->rcv_adv - tp->rcv_nxt;
1154 
1155 		/* How much can we trim the receive socket buffer?
1156 		 * 1. it can not be trimmed beyond the max rcv win advertised
1157 		 * 2. if possible, leave 1/16 of bandwidth*delay to
1158 		 * avoid closing the win completely
1159 		 */
1160 		u_int32_t leave = max(advwin, (sbrcv->sb_idealsize >> 4));
1161 
1162 		/* Sometimes leave can be zero, in that case leave at least
1163 		 * a few segments worth of space.
1164 		 */
1165 		if (leave == 0) {
1166 			leave = tp->t_maxseg << tcp_autorcvbuf_inc_shift;
1167 		}
1168 
1169 		trim = sbrcv->sb_hiwat - (sbrcv->sb_cc + leave);
1170 		trim = imin(trim, (int32_t)diff);
1171 
1172 		if (trim > 0) {
1173 			sbreserve(sbrcv, (sbrcv->sb_hiwat - trim));
1174 		}
1175 	}
1176 }
1177 
1178 /* We may need to trim the send socket buffer size for two reasons:
1179  * 1. if the rtt seen on the connection is climbing up, we do not
1180  * want to fill the buffers any more.
1181  * 2. if the congestion win on the socket backed off, there is no need
1182  * to hold more mbufs for that connection than what the cwnd will allow.
1183  */
1184 void
tcp_sbsnd_trim(struct sockbuf * sbsnd)1185 tcp_sbsnd_trim(struct sockbuf *sbsnd)
1186 {
1187 	if (((sbsnd->sb_flags & (SB_AUTOSIZE | SB_TRIM)) ==
1188 	    (SB_AUTOSIZE | SB_TRIM)) &&
1189 	    (sbsnd->sb_idealsize > 0) &&
1190 	    (sbsnd->sb_hiwat > sbsnd->sb_idealsize)) {
1191 		u_int32_t trim = 0;
1192 		if (sbsnd->sb_cc <= sbsnd->sb_idealsize) {
1193 			trim = sbsnd->sb_hiwat - sbsnd->sb_idealsize;
1194 		} else {
1195 			trim = sbsnd->sb_hiwat - sbsnd->sb_cc;
1196 		}
1197 		sbreserve(sbsnd, (sbsnd->sb_hiwat - trim));
1198 	}
1199 	if (sbsnd->sb_hiwat <= sbsnd->sb_idealsize) {
1200 		sbsnd->sb_flags &= ~(SB_TRIM);
1201 	}
1202 }
1203 
1204 /*
1205  * If timestamp option was not negotiated on this connection
1206  * and this connection is on the receiving side of a stream
1207  * then we can not measure the delay on the link accurately.
1208  * Instead of enabling automatic receive socket buffer
1209  * resizing, just give more space to the receive socket buffer.
1210  */
1211 static inline void
tcp_sbrcv_tstmp_check(struct tcpcb * tp)1212 tcp_sbrcv_tstmp_check(struct tcpcb *tp)
1213 {
1214 	struct socket *so = tp->t_inpcb->inp_socket;
1215 	u_int32_t newsize = 2 * tcp_recvspace;
1216 	struct sockbuf *sbrcv = &so->so_rcv;
1217 
1218 	if ((tp->t_flags & (TF_REQ_TSTMP | TF_RCVD_TSTMP)) !=
1219 	    (TF_REQ_TSTMP | TF_RCVD_TSTMP) &&
1220 	    (sbrcv->sb_flags & SB_AUTOSIZE) != 0) {
1221 		tcp_sbrcv_reserve(tp, sbrcv, newsize, 0, newsize);
1222 	}
1223 }
1224 
1225 /*
1226  * The last packet was a retransmission, check if this ack
1227  * indicates that the retransmission was spurious.
1228  *
1229  * If the connection supports timestamps, we could use it to
1230  * detect if the last retransmit was not needed. Otherwise,
1231  * we check if the ACK arrived within RTT/2 window, then it
1232  * was a mistake to do the retransmit in the first place.
1233  *
1234  * This function will return 1 if it is a spurious retransmit,
1235  * 0 otherwise.
1236  */
1237 int
tcp_detect_bad_rexmt(struct tcpcb * tp,struct tcphdr * th,struct tcpopt * to,u_int32_t rxtime)1238 tcp_detect_bad_rexmt(struct tcpcb *tp, struct tcphdr *th,
1239     struct tcpopt *to, u_int32_t rxtime)
1240 {
1241 	int32_t tdiff, bad_rexmt_win;
1242 	bad_rexmt_win = (tp->t_srtt >> (TCP_RTT_SHIFT + 1));
1243 
1244 	/* If the ack has ECN CE bit, then cwnd has to be adjusted */
1245 	if ((tp->accurate_ecn_on && tp->t_aecn.t_delta_ce_packets > 0) ||
1246 	    (TCP_ECN_ENABLED(tp) && (th->th_flags & TH_ECE))) {
1247 		return 0;
1248 	}
1249 	if (TSTMP_SUPPORTED(tp)) {
1250 		if (rxtime > 0 && (to->to_flags & TOF_TS) && to->to_tsecr != 0 &&
1251 		    TSTMP_LT(to->to_tsecr, rxtime)) {
1252 			return 1;
1253 		}
1254 	} else {
1255 		if ((tp->t_rxtshift == 1 || tcp_sent_tlp_retrans(tp)) &&
1256 		    rxtime > 0) {
1257 			tdiff = (int32_t)(tcp_now - rxtime);
1258 			if (tdiff < bad_rexmt_win) {
1259 				return 1;
1260 			}
1261 		}
1262 	}
1263 	return 0;
1264 }
1265 
1266 
1267 /*
1268  * Restore congestion window state if a spurious timeout
1269  * was detected.
1270  */
1271 static void
tcp_bad_rexmt_restore_state(struct tcpcb * tp,struct tcphdr * th)1272 tcp_bad_rexmt_restore_state(struct tcpcb *tp, struct tcphdr *th)
1273 {
1274 	if (TSTMP_SUPPORTED(tp)) {
1275 		u_int32_t fsize, acked;
1276 		fsize = tp->snd_max - th->th_ack;
1277 		acked = BYTES_ACKED(th, tp);
1278 
1279 		/*
1280 		 * Implement bad retransmit recovery as
1281 		 * described in RFC 4015.
1282 		 */
1283 		tp->snd_ssthresh = tp->snd_ssthresh_prev;
1284 
1285 		/* Initialize cwnd to the initial window */
1286 		if (CC_ALGO(tp)->cwnd_init != NULL) {
1287 			CC_ALGO(tp)->cwnd_init(tp);
1288 		}
1289 
1290 		tp->snd_cwnd = fsize + min(acked, tp->snd_cwnd);
1291 	} else {
1292 		tp->snd_cwnd = tp->snd_cwnd_prev;
1293 		tp->snd_ssthresh = tp->snd_ssthresh_prev;
1294 		if (tp->t_flags & TF_WASFRECOVERY) {
1295 			ENTER_FASTRECOVERY(tp);
1296 		}
1297 
1298 		/* Do not use the loss flight size in this case */
1299 		tp->t_lossflightsize = 0;
1300 	}
1301 	tp->snd_cwnd = max(tp->snd_cwnd, tcp_initial_cwnd(tp));
1302 	tp->snd_recover = tp->snd_recover_prev;
1303 	tp->snd_nxt = tp->snd_max;
1304 
1305 	/* Fix send socket buffer to reflect the change in cwnd */
1306 	tcp_bad_rexmt_fix_sndbuf(tp);
1307 
1308 	/* Restore rack related state */
1309 	if (TCP_RACK_ENABLED(tp)) {
1310 		tcp_rack_bad_rexmt_restore(tp);
1311 	}
1312 
1313 	/*
1314 	 * This RTT might reflect the extra delay induced
1315 	 * by the network. Skip using this sample for RTO
1316 	 * calculation and mark the connection so we can
1317 	 * recompute RTT when the next eligible sample is
1318 	 * found.
1319 	 */
1320 	tp->t_flagsext |= TF_RECOMPUTE_RTT;
1321 	tp->t_badrexmt_time = tcp_now;
1322 	tp->t_rtttime = 0;
1323 }
1324 
1325 /*
1326  * If the previous packet was sent in retransmission timer, and it was
1327  * not needed, then restore the congestion window to the state before that
1328  * transmission.
1329  *
1330  * If the last packet was sent as a tail loss probe retransmission, check if that
1331  * recovered the last packet. If so, that will indicate a real loss and
1332  * the congestion window needs to be lowered.
1333  */
1334 static void
tcp_bad_rexmt_check(struct tcpcb * tp,struct tcphdr * th,struct tcpopt * to)1335 tcp_bad_rexmt_check(struct tcpcb *tp, struct tcphdr *th, struct tcpopt *to)
1336 {
1337 	if (tp->t_rxtshift > 0 &&
1338 	    tcp_detect_bad_rexmt(tp, th, to, tp->t_rxtstart)) {
1339 		++tcpstat.tcps_sndrexmitbad;
1340 		tcp_bad_rexmt_restore_state(tp, th);
1341 		tcp_ccdbg_trace(tp, th, TCP_CC_BAD_REXMT_RECOVERY);
1342 	} else if (tcp_sent_tlp_retrans(tp) && tp->t_tlphighrxt > 0 &&
1343 	    SEQ_GEQ(th->th_ack, tp->t_tlphighrxt) &&
1344 	    !tcp_detect_bad_rexmt(tp, th, to, tp->t_tlpstart)) {
1345 		/*
1346 		 * The tail loss probe recovered the last packet and
1347 		 * we need to adjust the congestion window to take
1348 		 * this loss into account.
1349 		 * No need to update rack.reo_wnd_persist for a TLP recovery
1350 		 */
1351 		++tcpstat.tcps_tlp_recoverlastpkt;
1352 		if (!IN_FASTRECOVERY(tp)) {
1353 			tcp_enter_fast_recovery(tp);
1354 			EXIT_FASTRECOVERY(tp);
1355 		}
1356 		tcp_ccdbg_trace(tp, th, TCP_CC_TLP_RECOVER_LASTPACKET);
1357 	} else if (tcp_rxtseg_detect_bad_rexmt(tp, th->th_ack)) {
1358 		/*
1359 		 * All of the retransmitted segments were duplicated, this
1360 		 * can be an indication of bad fast retransmit.
1361 		 */
1362 		tcpstat.tcps_dsack_badrexmt++;
1363 		tcp_bad_rexmt_restore_state(tp, th);
1364 		tcp_ccdbg_trace(tp, th, TCP_CC_DSACK_BAD_REXMT);
1365 		tcp_rxtseg_clean(tp);
1366 	}
1367 	tp->t_flagsext &= ~(TF_SENT_TLPROBE);
1368 	tp->t_tlphighrxt = 0;
1369 	tp->t_tlpstart = 0;
1370 
1371 	/*
1372 	 * check if the latest ack was for a segment sent during PMTU
1373 	 * blackhole detection. If the timestamp on the ack is before
1374 	 * PMTU blackhole detection, then revert the size of the max
1375 	 * segment to previous size.
1376 	 */
1377 	if (tp->t_rxtshift > 0 && (tp->t_flags & TF_BLACKHOLE) &&
1378 	    tp->t_pmtud_start_ts > 0 && TSTMP_SUPPORTED(tp)) {
1379 		if ((to->to_flags & TOF_TS) && to->to_tsecr != 0
1380 		    && TSTMP_LT(to->to_tsecr, tp->t_pmtud_start_ts)) {
1381 			tcp_pmtud_revert_segment_size(tp);
1382 		}
1383 	}
1384 	if (tp->t_pmtud_start_ts > 0) {
1385 		tp->t_pmtud_start_ts = 0;
1386 	}
1387 
1388 	tp->t_pmtud_lastseg_size = 0;
1389 }
1390 
1391 /*
1392  * Check if early retransmit can be attempted according to RFC 5827.
1393  *
1394  * If packet reordering is detected on a connection, fast recovery will
1395  * be delayed until it is clear that the packet was lost and not reordered.
1396  * But reordering detection is done only when SACK is enabled.
1397  *
1398  * On connections that do not support SACK, there is a limit on the number
1399  * of early retransmits that can be done per minute. This limit is needed
1400  * to make sure that too many packets are not retransmitted when there is
1401  * packet reordering.
1402  */
1403 static void
tcp_early_rexmt_check(struct tcpcb * tp,struct tcphdr * th)1404 tcp_early_rexmt_check(struct tcpcb *tp, struct tcphdr *th)
1405 {
1406 	u_int32_t obytes, snd_off;
1407 	int32_t snd_len;
1408 	struct socket *so = tp->t_inpcb->inp_socket;
1409 
1410 	if ((SACK_ENABLED(tp) || tp->t_early_rexmt_count < TCP_EARLY_REXMT_LIMIT) &&
1411 	    SEQ_GT(tp->snd_max, tp->snd_una) &&
1412 	    (tp->t_dupacks == 1 || (SACK_ENABLED(tp) && !TAILQ_EMPTY(&tp->snd_holes)))) {
1413 		/*
1414 		 * If there are only a few outstanding
1415 		 * segments on the connection, we might need
1416 		 * to lower the retransmit threshold. This
1417 		 * will allow us to do Early Retransmit as
1418 		 * described in RFC 5827.
1419 		 */
1420 		if (TCP_RACK_ENABLED(tp)) {
1421 			obytes = tcp_flight_size(tp);
1422 		} else if (SACK_ENABLED(tp) &&
1423 		    !TAILQ_EMPTY(&tp->snd_holes)) {
1424 			obytes = tcp_flight_size(tp);
1425 		} else {
1426 			obytes = (tp->snd_max - tp->snd_una);
1427 		}
1428 
1429 		/*
1430 		 * In order to lower retransmit threshold the
1431 		 * following two conditions must be met.
1432 		 * 1. the amount of outstanding data is less
1433 		 * than 4*SMSS bytes
1434 		 * 2. there is no unsent data ready for
1435 		 * transmission or the advertised window
1436 		 * will limit sending new segments.
1437 		 */
1438 		snd_off = tp->snd_max - tp->snd_una;
1439 		snd_len = min(so->so_snd.sb_cc, tp->snd_wnd) - snd_off;
1440 		if (obytes < (tp->t_maxseg << 2) &&
1441 		    snd_len <= 0) {
1442 			u_int32_t osegs;
1443 
1444 			osegs = obytes / tp->t_maxseg;
1445 			if ((osegs * tp->t_maxseg) < obytes) {
1446 				osegs++;
1447 			}
1448 
1449 			/*
1450 			 * By checking for early retransmit after
1451 			 * receiving some duplicate acks when SACK
1452 			 * is supported, the connection will
1453 			 * enter fast recovery even if multiple
1454 			 * segments are lost in the same window.
1455 			 */
1456 			if (osegs < 4) {
1457 				tp->t_rexmtthresh =
1458 				    ((osegs - 1) > 1) ? ((uint8_t)osegs - 1) : 1;
1459 				tp->t_rexmtthresh =
1460 				    MIN(tp->t_rexmtthresh, tcprexmtthresh);
1461 				tp->t_rexmtthresh =
1462 				    MAX(tp->t_rexmtthresh,
1463 				    tp->t_dupacks > UINT8_MAX ? UINT8_MAX : (uint8_t)tp->t_dupacks);
1464 
1465 				if (tp->t_early_rexmt_count == 0) {
1466 					tp->t_early_rexmt_win = tcp_now;
1467 				}
1468 
1469 				if (tp->t_flagsext & TF_SENT_TLPROBE) {
1470 					tcpstat.tcps_tlp_recovery++;
1471 					tcp_ccdbg_trace(tp, th,
1472 					    TCP_CC_TLP_RECOVERY);
1473 				} else {
1474 					tcpstat.tcps_early_rexmt++;
1475 					tp->t_early_rexmt_count++;
1476 					tcp_ccdbg_trace(tp, th,
1477 					    TCP_CC_EARLY_RETRANSMIT);
1478 				}
1479 			}
1480 		}
1481 	}
1482 
1483 	/*
1484 	 * If we ever sent a TLP probe, the acknowledgement will trigger
1485 	 * early retransmit because the value of snd_fack will be close
1486 	 * to snd_max. This will take care of adjustments to the
1487 	 * congestion window. So we can reset TF_SENT_PROBE flag.
1488 	 */
1489 	tp->t_flagsext &= ~(TF_SENT_TLPROBE);
1490 	tp->t_tlphighrxt = 0;
1491 	tp->t_tlpstart = 0;
1492 }
1493 
1494 static boolean_t
tcp_tfo_syn(struct tcpcb * tp,struct tcpopt * to)1495 tcp_tfo_syn(struct tcpcb *tp, struct tcpopt *to)
1496 {
1497 	u_char out[CCAES_BLOCK_SIZE];
1498 	unsigned char len;
1499 
1500 	if (!(to->to_flags & (TOF_TFO | TOF_TFOREQ)) ||
1501 	    !(tcp_fastopen & TCP_FASTOPEN_SERVER)) {
1502 		return FALSE;
1503 	}
1504 
1505 	if ((to->to_flags & TOF_TFOREQ)) {
1506 		tp->t_tfo_flags |= TFO_F_OFFER_COOKIE;
1507 
1508 		tp->t_tfo_stats |= TFO_S_COOKIEREQ_RECV;
1509 		tcpstat.tcps_tfo_cookie_req_rcv++;
1510 		return FALSE;
1511 	}
1512 
1513 	/* Ok, then it must be an offered cookie. We need to check that ... */
1514 	tcp_tfo_gen_cookie(tp->t_inpcb, out, sizeof(out));
1515 
1516 	len = *to->to_tfo - TCPOLEN_FASTOPEN_REQ;
1517 	to->to_tfo++;
1518 	to->to_tfo_size--;
1519 	if (memcmp(out, to->to_tfo, len)) {
1520 		/* Cookies are different! Let's return and offer a new cookie */
1521 		tp->t_tfo_flags |= TFO_F_OFFER_COOKIE;
1522 
1523 		tp->t_tfo_stats |= TFO_S_COOKIE_INVALID;
1524 		tcpstat.tcps_tfo_cookie_invalid++;
1525 		return FALSE;
1526 	}
1527 
1528 	if (OSIncrementAtomic(&tcp_tfo_halfcnt) >= tcp_tfo_backlog) {
1529 		/* Need to decrement again as we just increased it... */
1530 		OSDecrementAtomic(&tcp_tfo_halfcnt);
1531 		return FALSE;
1532 	}
1533 
1534 	tp->t_tfo_flags |= TFO_F_COOKIE_VALID;
1535 
1536 	tp->t_tfo_stats |= TFO_S_SYNDATA_RCV;
1537 	tcpstat.tcps_tfo_syn_data_rcv++;
1538 
1539 	return TRUE;
1540 }
1541 
1542 static void
tcp_tfo_synack(struct tcpcb * tp,struct tcpopt * to)1543 tcp_tfo_synack(struct tcpcb *tp, struct tcpopt *to)
1544 {
1545 	if (to->to_flags & TOF_TFO) {
1546 		unsigned char len = *to->to_tfo - TCPOLEN_FASTOPEN_REQ;
1547 
1548 		/*
1549 		 * If this happens, things have gone terribly wrong. len should
1550 		 * have been checked in tcp_dooptions.
1551 		 */
1552 		VERIFY(len <= TFO_COOKIE_LEN_MAX);
1553 
1554 		to->to_tfo++;
1555 		to->to_tfo_size--;
1556 
1557 		tcp_cache_set_cookie(tp, to->to_tfo, len);
1558 		tcp_heuristic_tfo_success(tp);
1559 
1560 		tp->t_tfo_stats |= TFO_S_COOKIE_RCV;
1561 		tcpstat.tcps_tfo_cookie_rcv++;
1562 		if (tp->t_tfo_flags & TFO_F_COOKIE_SENT) {
1563 			tcpstat.tcps_tfo_cookie_wrong++;
1564 			tp->t_tfo_stats |= TFO_S_COOKIE_WRONG;
1565 		}
1566 	} else {
1567 		/*
1568 		 * Thus, no cookie in the response, but we either asked for one
1569 		 * or sent SYN+DATA. Now, we need to check whether we had to
1570 		 * rexmit the SYN. If that's the case, it's better to start
1571 		 * backing of TFO-cookie requests.
1572 		 */
1573 		if (!(tp->t_flagsext & TF_FASTOPEN_FORCE_ENABLE) &&
1574 		    tp->t_tfo_flags & TFO_F_SYN_LOSS) {
1575 			tp->t_tfo_stats |= TFO_S_SYN_LOSS;
1576 			tcpstat.tcps_tfo_syn_loss++;
1577 
1578 			tcp_heuristic_tfo_loss(tp);
1579 		} else {
1580 			if (tp->t_tfo_flags & TFO_F_COOKIE_REQ) {
1581 				tp->t_tfo_stats |= TFO_S_NO_COOKIE_RCV;
1582 				tcpstat.tcps_tfo_no_cookie_rcv++;
1583 			}
1584 
1585 			tcp_heuristic_tfo_success(tp);
1586 		}
1587 	}
1588 }
1589 
1590 static void
tcp_tfo_rcv_probe(struct tcpcb * tp,int tlen)1591 tcp_tfo_rcv_probe(struct tcpcb *tp, int tlen)
1592 {
1593 	if (tlen != 0) {
1594 		return;
1595 	}
1596 
1597 	tp->t_tfo_probe_state = TFO_PROBE_PROBING;
1598 
1599 	/*
1600 	 * We send the probe out rather quickly (after one RTO). It does not
1601 	 * really hurt that much, it's only one additional segment on the wire.
1602 	 */
1603 	tp->t_timer[TCPT_KEEP] = tcp_offset_from_start(tp, (TCP_REXMTVAL(tp)));
1604 }
1605 
1606 static void
tcp_tfo_rcv_data(struct tcpcb * tp)1607 tcp_tfo_rcv_data(struct tcpcb *tp)
1608 {
1609 	/* Transition from PROBING to NONE as data has been received */
1610 	if (tp->t_tfo_probe_state >= TFO_PROBE_PROBING) {
1611 		tp->t_tfo_probe_state = TFO_PROBE_NONE;
1612 	}
1613 }
1614 
1615 static void
tcp_tfo_rcv_ack(struct tcpcb * tp,struct tcphdr * th)1616 tcp_tfo_rcv_ack(struct tcpcb *tp, struct tcphdr *th)
1617 {
1618 	if (tp->t_tfo_probe_state == TFO_PROBE_PROBING &&
1619 	    tp->t_tfo_probes > 0) {
1620 		if (th->th_seq == tp->rcv_nxt) {
1621 			/* No hole, so stop probing */
1622 			tp->t_tfo_probe_state = TFO_PROBE_NONE;
1623 		} else if (SEQ_GT(th->th_seq, tp->rcv_nxt)) {
1624 			/* There is a hole! Wait a bit for data... */
1625 			tp->t_tfo_probe_state = TFO_PROBE_WAIT_DATA;
1626 			tp->t_timer[TCPT_KEEP] = tcp_offset_from_start(tp,
1627 			    TCP_REXMTVAL(tp));
1628 		}
1629 	}
1630 }
1631 
1632 /*
1633  * Update snd_wnd information.
1634  */
1635 static inline bool
tcp_update_window(struct tcpcb * tp,int thflags,struct tcphdr * th,u_int32_t tiwin,int tlen)1636 tcp_update_window(struct tcpcb *tp, int thflags, struct tcphdr * th,
1637     u_int32_t tiwin, int tlen)
1638 {
1639 	/* Don't look at the window if there is no ACK flag */
1640 	if ((thflags & TH_ACK) &&
1641 	    (SEQ_LT(tp->snd_wl1, th->th_seq) ||
1642 	    (tp->snd_wl1 == th->th_seq && (SEQ_LT(tp->snd_wl2, th->th_ack) ||
1643 	    (tp->snd_wl2 == th->th_ack && tiwin > tp->snd_wnd))))) {
1644 		/* keep track of pure window updates */
1645 		if (tlen == 0 &&
1646 		    tp->snd_wl2 == th->th_ack && tiwin > tp->snd_wnd) {
1647 			tcpstat.tcps_rcvwinupd++;
1648 		}
1649 		tp->snd_wnd = tiwin;
1650 		tp->snd_wl1 = th->th_seq;
1651 		tp->snd_wl2 = th->th_ack;
1652 		if (tp->snd_wnd > tp->max_sndwnd) {
1653 			tp->max_sndwnd = tp->snd_wnd;
1654 		}
1655 
1656 		if (tp->t_inpcb->inp_socket->so_flags & SOF_MP_SUBFLOW) {
1657 			mptcp_update_window_wakeup(tp);
1658 		}
1659 		return true;
1660 	}
1661 	return false;
1662 }
1663 
1664 static void
tcp_handle_wakeup(struct socket * so,int read_wakeup,int write_wakeup)1665 tcp_handle_wakeup(struct socket *so, int read_wakeup, int write_wakeup)
1666 {
1667 	if (read_wakeup != 0) {
1668 		sorwakeup(so);
1669 	}
1670 	if (write_wakeup != 0) {
1671 		sowwakeup(so);
1672 	}
1673 }
1674 
1675 static void
tcp_update_snd_una(struct tcpcb * tp,uint32_t ack)1676 tcp_update_snd_una(struct tcpcb *tp, uint32_t ack)
1677 {
1678 	uint32_t delta = ack - tp->snd_una;
1679 
1680 	tp->t_stat.bytes_acked += delta;
1681 	tp->snd_una = ack;
1682 }
1683 
1684 static bool
tcp_syn_data_valid(struct tcpcb * tp,struct tcphdr * tcp_hdr,int tlen)1685 tcp_syn_data_valid(struct tcpcb *tp, struct tcphdr *tcp_hdr, int tlen)
1686 {
1687 	/* No data? */
1688 	if (tlen <= 0) {
1689 		return false;
1690 	}
1691 
1692 	/* Not the right sequence-number? */
1693 	if (tcp_hdr->th_seq != tp->irs) {
1694 		return false;
1695 	}
1696 
1697 	/* We could have wrapped around, check that */
1698 	if (tp->t_inpcb->inp_mstat.ms_total.ts_rxbytes > INT32_MAX) {
1699 		return false;
1700 	}
1701 
1702 	return true;
1703 }
1704 
1705 /* Process IP-ECN codepoints on received packets and update receive side counters */
1706 static void
tcp_input_ip_ecn(struct tcpcb * tp,struct inpcb * inp,uint32_t tlen,uint32_t segment_count,uint8_t ip_ecn)1707 tcp_input_ip_ecn(struct tcpcb *tp, struct inpcb *inp, uint32_t tlen,
1708     uint32_t segment_count, uint8_t ip_ecn)
1709 {
1710 	switch (ip_ecn) {
1711 	case IPTOS_ECN_ECT1:
1712 		tp->ecn_flags |= TE_ACO_ECT1;
1713 		tp->t_aecn.t_rcv_ect1_bytes += tlen;
1714 		break;
1715 	case IPTOS_ECN_ECT0:
1716 		tp->ecn_flags |= TE_ACO_ECT0;
1717 		tp->t_aecn.t_rcv_ect0_bytes += tlen;
1718 		break;
1719 	case IPTOS_ECN_CE:
1720 		tp->t_aecn.t_rcv_ce_packets += segment_count;
1721 		tp->t_aecn.t_rcv_ce_bytes += tlen;
1722 		tp->t_ecn_recv_ce++;
1723 		tcpstat.tcps_ecn_recv_ce++;
1724 		INP_INC_IFNET_STAT(inp, ecn_recv_ce);
1725 		break;
1726 	default:
1727 		/* No counter for Not-ECT */
1728 		break;
1729 	}
1730 }
1731 
1732 /* Process SYN packet that wishes to negotiate Accurate ECN */
1733 static void
tcp_input_process_accecn_syn(struct tcpcb * tp,int ace_flags,uint8_t ip_ecn)1734 tcp_input_process_accecn_syn(struct tcpcb *tp, int ace_flags, uint8_t ip_ecn)
1735 {
1736 	switch (ace_flags) {
1737 	case (0 | 0 | 0):
1738 		/* No ECN */
1739 		tp->t_server_accecn_state = tcp_connection_server_no_ecn_requested;
1740 		break;
1741 	case (0 | TH_CWR | TH_ECE):
1742 		/* Legacy ECN-setup */
1743 		tp->ecn_flags |= (TE_SETUPRECEIVED | TE_SENDIPECT);
1744 		tp->t_server_accecn_state = tcp_connection_server_classic_ecn_requested;
1745 		break;
1746 	case (TH_ACE):
1747 		/* Accurate ECN */
1748 		if (tp->l4s_enabled) {
1749 			switch (ip_ecn) {
1750 			case IPTOS_ECN_NOTECT:
1751 				tp->ecn_flags |= TE_ACE_SETUP_NON_ECT;
1752 				break;
1753 			case IPTOS_ECN_ECT1:
1754 				tp->ecn_flags |= TE_ACE_SETUP_ECT1;
1755 				break;
1756 			case IPTOS_ECN_ECT0:
1757 				tp->ecn_flags |= TE_ACE_SETUP_ECT0;
1758 				break;
1759 			case IPTOS_ECN_CE:
1760 				tp->ecn_flags |= TE_ACE_SETUP_CE;
1761 				break;
1762 			}
1763 			/*
1764 			 * We set TE_SENDIPECT when handshake is complete
1765 			 * for Accurate ECN
1766 			 */
1767 			tp->ecn_flags |= (TE_ACE_SETUPRECEIVED);
1768 
1769 			/* Initialize ECT byte counter to 1 to distinguish zeroing of options */
1770 			tp->t_aecn.t_rcv_ect1_bytes = tp->t_aecn.t_rcv_ect0_bytes = 1;
1771 			tp->t_aecn.t_snd_ect1_bytes = tp->t_aecn.t_snd_ect0_bytes = 1;
1772 			tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_requested;
1773 		} else {
1774 			/*
1775 			 * If AccECN is not enabled, ignore
1776 			 * the TH_AE bit and do Legacy ECN-setup
1777 			 */
1778 			tp->ecn_flags |= (TE_SETUPRECEIVED | TE_SENDIPECT);
1779 		}
1780 	default:
1781 		/* Forward Compatibility */
1782 		/* Accurate ECN */
1783 		if (tp->l4s_enabled) {
1784 			switch (ip_ecn) {
1785 			case IPTOS_ECN_NOTECT:
1786 				tp->ecn_flags |= TE_ACE_SETUP_NON_ECT;
1787 				break;
1788 			case IPTOS_ECN_ECT1:
1789 				tp->ecn_flags |= TE_ACE_SETUP_ECT1;
1790 				break;
1791 			case IPTOS_ECN_ECT0:
1792 				tp->ecn_flags |= TE_ACE_SETUP_ECT0;
1793 				break;
1794 			case IPTOS_ECN_CE:
1795 				tp->ecn_flags |= TE_ACE_SETUP_CE;
1796 				break;
1797 			}
1798 			/*
1799 			 * We are not yet committing to send IP ECT packets when
1800 			 * Accurate ECN is enabled
1801 			 */
1802 			tp->ecn_flags |= (TE_ACE_SETUPRECEIVED);
1803 
1804 			/* Initialize ECT byte counter to 1 to distinguish zeroing of options */
1805 			tp->t_aecn.t_rcv_ect1_bytes = tp->t_aecn.t_rcv_ect0_bytes = 1;
1806 			tp->t_aecn.t_snd_ect1_bytes = tp->t_aecn.t_snd_ect0_bytes = 1;
1807 			tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_requested;
1808 		}
1809 		break;
1810 	}
1811 }
1812 
1813 /* Process SYN/ACK packet that wishes to negotiate Accurate ECN */
1814 static void
tcp_input_process_accecn_synack(struct tcpcb * tp,struct inpcb * inp,struct tcpopt * to,int thflags,int ace_flags,uint8_t ip_ecn,uint32_t tlen,uint32_t segment_count)1815 tcp_input_process_accecn_synack(struct tcpcb *tp, struct inpcb *inp, struct tcpopt *to,
1816     int thflags, int ace_flags, uint8_t ip_ecn, uint32_t tlen, uint32_t segment_count)
1817 {
1818 	if ((thflags & (TH_ECE | TH_CWR)) == (TH_ECE)) {
1819 		/* Receiving Any|0|1 is classic ECN-setup SYN-ACK */
1820 		tp->ecn_flags |= TE_SETUPRECEIVED;
1821 		if (TCP_ECN_ENABLED(tp)) {
1822 			tcp_heuristic_ecn_success(tp);
1823 			tcpstat.tcps_ecn_client_success++;
1824 		}
1825 
1826 		if (tp->ecn_flags & TE_ACE_SETUPSENT) {
1827 			/*
1828 			 * Sent AccECN SYN but received classic ECN SYN-ACK
1829 			 * Set classic ECN related flags
1830 			 */
1831 			tp->ecn_flags |= (TE_SETUPSENT | TE_SENDIPECT);
1832 			tp->ecn_flags &= ~TE_ACE_SETUPSENT;
1833 			if (tp->t_client_accecn_state == tcp_connection_client_accurate_ecn_feature_enabled) {
1834 				tp->t_client_accecn_state = tcp_connection_client_classic_ecn_available;
1835 			}
1836 		}
1837 	} else if (tp->l4s_enabled && ace_flags != 0 &&
1838 	    ace_flags != TH_ACE) {
1839 		/* Initialize sender side packet & byte counters */
1840 		tp->t_aecn.t_snd_ce_packets = 5;
1841 		tp->t_aecn.t_snd_ect1_bytes = tp->t_aecn.t_snd_ect0_bytes = 1;
1842 		tp->t_aecn.t_snd_ce_bytes = 0;
1843 		tp->ecn_flags |= TE_ACE_FINAL_ACK_3WHS;
1844 		/*
1845 		 * Client received AccECN SYN-ACK that reflects the state (ECN)
1846 		 * in which SYN packet was delivered. This helps to detect if
1847 		 * there was mangling of the SYN packet on the path. Currently, we
1848 		 * only send Not-ECT on SYN packets. So, we should set Not-ECT in
1849 		 * all packets if we receive any encoding other than 0|TH_CWR|0.
1850 		 * If 0|0|0 and 1|1|1 were received, fail Accurate ECN negotiation
1851 		 * by not setting TE_ACE_SETUPRECEIVED.
1852 		 */
1853 		uint32_t ecn_flags = TE_ACE_SETUPRECEIVED;
1854 		if (tp->l4s_enabled) {
1855 			ecn_flags |= TE_SENDIPECT;
1856 		}
1857 		switch (ace_flags) {
1858 		case (0 | TH_CWR | 0):
1859 			/* Non-ECT SYN was delivered */
1860 			tp->ecn_flags |= ecn_flags;
1861 			tcpstat.tcps_ecn_ace_syn_not_ect++;
1862 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_negotiation_success;
1863 			break;
1864 		case (0 | TH_CWR | TH_ECE):
1865 			/* ECT1 SYN was delivered */
1866 			tp->ecn_flags |= ecn_flags;
1867 			/* Mangling detected, set Non-ECT on outgoing packets */
1868 			tp->ecn_flags &= ~TE_SENDIPECT;
1869 			tcpstat.tcps_ecn_ace_syn_ect1++;
1870 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_negotiation_success_ect_mangling_detected;
1871 			break;
1872 		case (TH_AE | 0 | 0):
1873 			/* ECT0 SYN was delivered */
1874 			tp->ecn_flags |= ecn_flags;
1875 			/* Mangling detected, set Non-ECT on outgoing packets */
1876 			tp->ecn_flags &= ~TE_SENDIPECT;
1877 			tcpstat.tcps_ecn_ace_syn_ect0++;
1878 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_negotiation_success_ect_mangling_detected;
1879 			break;
1880 		case (TH_AE | TH_CWR | 0):
1881 			/* CE SYN was delivered */
1882 			tp->ecn_flags |= ecn_flags;
1883 			/* Mangling detected, set Non-ECT on outgoing packets */
1884 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_negotiation_success_ect_mangling_detected;
1885 			tp->ecn_flags &= ~TE_SENDIPECT;
1886 			/*
1887 			 * Although we don't send ECT SYN yet, it is possible that
1888 			 * a network element changed Not-ECT to ECT and later there
1889 			 * was congestion at another network element that set it to CE.
1890 			 * To keep it simple, we will consider this as a congestion event
1891 			 * for the congestion controller.
1892 			 * If a TCP client in AccECN mode receives CE feedback in the TCP
1893 			 * flags of a SYN/ACK, it MUST NOT increment s.cep.
1894 			 */
1895 			tp->snd_cwnd = 2 * tp->t_maxseg;
1896 			tcpstat.tcps_ecn_ace_syn_ce++;
1897 			break;
1898 		default:
1899 			break;
1900 		}
1901 		/* Set Accurate ECN state for client */
1902 		tcp_set_accurate_ecn(tp);
1903 
1904 		if (TCP_ECN_ENABLED(tp)) {
1905 			tcp_heuristic_ecn_success(tp);
1906 			tcpstat.tcps_ecn_client_success++;
1907 		}
1908 		/*
1909 		 * A TCP client in AccECN mode MUST feed back which of the 4
1910 		 * possible values of the IP-ECN field that was received in the
1911 		 * SYN/ACK. Set the setup flag for final ACK accordingly.
1912 		 * We will initialize r.cep, r.e1b, r.e0b first and then increment
1913 		 * if CE was set on the IP-ECN field of the SYN-ACK.
1914 		 */
1915 		tp->t_aecn.t_rcv_ce_packets = 5;
1916 		tp->t_aecn.t_rcv_ect0_bytes = tp->t_aecn.t_rcv_ect1_bytes = 1;
1917 		tp->t_aecn.t_rcv_ce_bytes = 0;
1918 
1919 		/* Increment packet & byte counters based on IP-ECN */
1920 		tcp_input_ip_ecn(tp, inp, (uint32_t)tlen, (uint32_t)segment_count, ip_ecn);
1921 		switch (ip_ecn) {
1922 		case IPTOS_ECN_NOTECT:
1923 			/* Not-ECT SYN-ACK was received */
1924 			tp->ecn_flags |= TE_ACE_SETUP_NON_ECT;
1925 			break;
1926 		case IPTOS_ECN_ECT1:
1927 			/* ECT1 SYN-ACK was received */
1928 			tp->ecn_flags |= TE_ACE_SETUP_ECT1;
1929 			break;
1930 		case IPTOS_ECN_ECT0:
1931 			/* ECT0 SYN-ACK was received */
1932 			tp->ecn_flags |= TE_ACE_SETUP_ECT0;
1933 			break;
1934 		case IPTOS_ECN_CE:
1935 			tp->ecn_flags |= TE_ACE_SETUP_CE;
1936 			break;
1937 		}
1938 		/* Update the time for this newly SYN-ACK packet */
1939 		if ((to->to_flags & TOF_TS) != 0 && (to->to_tsecr != 0) &&
1940 		    (tp->t_last_ack_tsecr == 0 || TSTMP_GEQ(to->to_tsecr, tp->t_last_ack_tsecr))) {
1941 			tp->t_last_ack_tsecr = to->to_tsecr;
1942 		}
1943 	} else {
1944 		if ((tp->ecn_flags & (TE_SETUPSENT | TE_ACE_SETUPSENT)) &&
1945 		    tp->t_rxtshift == 0) {
1946 			tcp_heuristic_ecn_success(tp);
1947 			tcpstat.tcps_ecn_not_supported++;
1948 		}
1949 		if (((tp->ecn_flags & TE_SETUPSENT) != 0 && tp->t_rxtshift == 1) ||
1950 		    ((tp->ecn_flags & TE_ACE_SETUPSENT) != 0 && tp->t_rxtshift == 2)) {
1951 			/*
1952 			 * We keep heuristics for when SYN ECN was likely dropped at the network by
1953 			 * checking that we received an ACK for the subsequent retransmission without ECN
1954 			 */
1955 			tcp_heuristic_ecn_loss(tp);
1956 		}
1957 
1958 		/* non-ECN-setup SYN-ACK */
1959 		tp->ecn_flags &= ~TE_SENDIPECT;
1960 		/*
1961 		 * If Accurate ECN SYN was retransmitted twice and non-ECN SYN-ACK
1962 		 * was received, then we consider it as Accurate ECN blackholing
1963 		 */
1964 		if ((tp->ecn_flags & TE_LOST_SYN) && tp->t_rxtshift <= 2 &&
1965 		    tp->t_client_accecn_state == tcp_connection_client_accurate_ecn_feature_enabled) {
1966 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_negotiation_blackholed;
1967 		}
1968 		/*
1969 		 * If SYN wasn't retransmitted twice yet, the server supports neither classic nor
1970 		 * accurate ECN SYN-ACK. Accurate ECN should already be disabled for both half connections
1971 		 * as TE_ACE_SETUPRECEIVED flag is not set.
1972 		 */
1973 		if (tp->t_client_accecn_state == tcp_connection_client_accurate_ecn_feature_enabled) {
1974 			tp->t_client_accecn_state = tcp_connection_client_ecn_not_available;
1975 		}
1976 	}
1977 }
1978 
1979 static void
tcp_input_process_accecn_last_ack(struct tcpcb * tp,struct tcpopt * to,uint32_t tlen,uint16_t ace_flags,bool syn_cookie_processed)1980 tcp_input_process_accecn_last_ack(struct tcpcb *tp, struct tcpopt *to,
1981     uint32_t tlen, uint16_t ace_flags, bool syn_cookie_processed)
1982 {
1983 	if (syn_cookie_processed) {
1984 		/* Set AccECN and L4S flags as if these were negotiated successfully. */
1985 		if (tp->l4s_enabled) {
1986 			tp->ecn_flags |= (TE_ACC_ECN_ON | TE_SENDIPECT);
1987 			tcp_set_accurate_ecn(tp);
1988 		}
1989 		tp->t_aecn.t_rcv_ce_packets = 5;
1990 		tp->t_aecn.t_snd_ce_packets = 5;
1991 		/* Initialize CE byte counter to 0 */
1992 		tp->t_aecn.t_rcv_ce_bytes = tp->t_aecn.t_snd_ce_bytes = 0;
1993 		/* Initialize ECT byte counter to 1 to distinguish zeroing of options */
1994 		tp->t_aecn.t_rcv_ect1_bytes = tp->t_aecn.t_rcv_ect0_bytes = 1;
1995 		tp->t_aecn.t_snd_ect1_bytes = tp->t_aecn.t_snd_ect0_bytes = 1;
1996 	}
1997 	if (tlen == 0 && to->to_nsacks == 0) {
1998 		/*
1999 		 * ACK for SYN-ACK reflects the state (ECN) in which SYN-ACK packet
2000 		 * was delivered. Use Table 4 of Accurate ECN draft to decode only
2001 		 * when a pure ACK with no SACK block is received.
2002 		 * 0|0|0 will fail Accurate ECN negotiation and disable ECN.
2003 		 */
2004 		switch (ace_flags) {
2005 		case (0 | TH_CWR | 0):
2006 			/* Non-ECT SYN-ACK was delivered */
2007 			tp->t_aecn.t_snd_ce_packets = 5;
2008 			if (tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_requested || syn_cookie_processed) {
2009 				tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_negotiation_success;
2010 			}
2011 			break;
2012 		case (0 | TH_CWR | TH_ECE):
2013 			/* ECT1 SYN-ACK was delivered, mangling detected */
2014 			OS_FALLTHROUGH;
2015 		case (TH_AE | 0 | 0):
2016 			/* ECT0 SYN-ACK was delivered, mangling detected */
2017 			tp->t_aecn.t_snd_ce_packets = 5;
2018 			if (tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_requested || syn_cookie_processed) {
2019 				tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_negotiation_success_ect_mangling_detected;
2020 			}
2021 			break;
2022 		case (TH_AE | TH_CWR | 0):
2023 			/*
2024 			 * CE SYN-ACK was delivered, even though mangling happened,
2025 			 * CE could indicate congestion at a node after mangling occured.
2026 			 * Set cwnd to 2 segments
2027 			 */
2028 			tp->t_aecn.t_snd_ce_packets = 6;
2029 			tp->snd_cwnd = 2 * tp->t_maxseg;
2030 			if (tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_requested || syn_cookie_processed) {
2031 				tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_negotiation_success_ect_mangling_detected;
2032 			}
2033 			break;
2034 		case (0 | 0 | 0):
2035 			/* Disable ECN, as ACE fields were zeroed */
2036 			tp->ecn_flags &= ~(TE_SETUPRECEIVED | TE_SENDIPECT |
2037 			    TE_SENDCWR | TE_ACE_SETUPRECEIVED);
2038 			tcp_set_accurate_ecn(tp);
2039 			/*
2040 			 * Since last ACK has no ECN flag set and TE_LOST_SYNACK is set, this is in response
2041 			 * to the second (non-ECN setup) SYN-ACK retransmission. In such a case, we assume
2042 			 * that AccECN SYN-ACK was blackholed.
2043 			 */
2044 			if ((tp->ecn_flags & TE_LOST_SYNACK) && tp->t_rxtshift <= 2 &&
2045 			    (tp->t_server_accecn_state == tcp_connection_server_classic_ecn_requested ||
2046 			    tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_requested ||
2047 			    syn_cookie_processed)) {
2048 				tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_negotiation_blackholed;
2049 			}
2050 			/*
2051 			 * SYN-ACK hasn't been retransmitted twice yet, so this could likely mean bleaching of ACE
2052 			 * on the path from client to server on last ACK.
2053 			 */
2054 			if (tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_requested) {
2055 				tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_ace_bleaching_detected;
2056 			}
2057 			break;
2058 		default:
2059 			/* Unused values for forward compatibility */
2060 			tp->t_aecn.t_snd_ce_packets = 5;
2061 			break;
2062 		}
2063 		/* Update the time for this newly received last ACK */
2064 		if ((to->to_flags & TOF_TS) != 0 && (to->to_tsecr != 0) &&
2065 		    (tp->t_last_ack_tsecr == 0 || TSTMP_GEQ(to->to_tsecr, tp->t_last_ack_tsecr))) {
2066 			tp->t_last_ack_tsecr = to->to_tsecr;
2067 		}
2068 	} else if (to->to_nsacks == 0) {
2069 		/*
2070 		 * If 3rd ACK is lost, we won't receive the last ACK
2071 		 * encoding. We will move the server to AccECN mode
2072 		 * regardless.
2073 		 */
2074 		tp->t_aecn.t_snd_ce_packets = 5;
2075 		if (tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_requested || syn_cookie_processed) {
2076 			tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_negotiation_success;
2077 		}
2078 	}
2079 }
2080 
2081 static uint32_t
tcp_process_ace_field(struct tcpcb * tp,uint32_t pkts_acked,uint64_t old_sceb,uint8_t ace)2082 tcp_process_ace_field(struct tcpcb *tp, uint32_t pkts_acked, uint64_t old_sceb, uint8_t ace)
2083 {
2084 	/* Congestion was experienced if delta_cep > 0 */
2085 	uint32_t delta = 0, safe_delta = 0;
2086 	delta = (ace + TCP_ACE_DIV -
2087 	    (tp->t_aecn.t_snd_ce_packets & TCP_ACE_MASK)) & TCP_ACE_MASK;
2088 	if (pkts_acked <= TCP_ACE_MASK) {
2089 		return delta;
2090 	}
2091 
2092 	uint64_t d_ceb = tp->t_aecn.t_snd_ce_bytes - old_sceb;
2093 	safe_delta = pkts_acked - ((pkts_acked - delta) & TCP_ACE_MASK);
2094 
2095 	if (d_ceb == 0 || d_ceb < safe_delta * tp->t_maxseg >> 1) {
2096 		return delta;
2097 	}
2098 
2099 	return safe_delta;
2100 }
2101 
2102 /* Returns the number of CE marked bytes */
2103 static uint32_t
tcp_process_accecn_options(struct tcpcb * tp,struct tcpopt * to)2104 tcp_process_accecn_options(struct tcpcb *tp, struct tcpopt *to)
2105 {
2106 	int delta = 0;
2107 	uint32_t ce_bytes = 0;
2108 
2109 	if (to->to_num_accecn >= 1) {
2110 		delta = ntoh24(to->to_accecn + 0);
2111 		if (to->to_accecn_order == 0) {
2112 			delta = (delta + TCP_ACO_DIV -
2113 			    (tp->t_aecn.t_snd_ect0_bytes & TCP_ACO_MASK)) & TCP_ACO_MASK;
2114 			if (delta < 0) {
2115 				os_log_error(OS_LOG_DEFAULT, "delta for AccECN0 options (ECT0 bytes) can't be zero");
2116 			}
2117 			tp->t_aecn.t_snd_ect0_bytes += delta;
2118 		} else {
2119 			delta = (delta + TCP_ACO_DIV -
2120 			    (tp->t_aecn.t_snd_ect1_bytes & TCP_ACO_MASK)) & TCP_ACO_MASK;
2121 			if (delta < 0) {
2122 				os_log_error(OS_LOG_DEFAULT, "delta for AccECN1 options (ECT1 bytes) can't be zero");
2123 			}
2124 			tp->t_aecn.t_snd_ect1_bytes += delta;
2125 		}
2126 	}
2127 	if (to->to_num_accecn >= 2) {
2128 		delta = ntoh24(to->to_accecn + 1 * TCPOLEN_ACCECN_COUNTER);
2129 		delta = (delta + TCP_ACO_DIV -
2130 		    (tp->t_aecn.t_snd_ce_bytes & TCP_ACO_MASK)) & TCP_ACO_MASK;
2131 		if (delta < 0) {
2132 			os_log_error(OS_LOG_DEFAULT, "delta for AccECN options (CE bytes) can't be zero");
2133 		}
2134 		tp->t_aecn.t_snd_ce_bytes += delta;
2135 		ce_bytes = delta;
2136 	}
2137 	if (to->to_num_accecn >= 3) {
2138 		delta = ntoh24(to->to_accecn + 2 * TCPOLEN_ACCECN_COUNTER);
2139 		if (to->to_accecn_order == 0) {
2140 			delta = (delta + TCP_ACO_DIV -
2141 			    (tp->t_aecn.t_snd_ect1_bytes & TCP_ACO_MASK)) & TCP_ACO_MASK;
2142 			if (delta < 0) {
2143 				os_log_error(OS_LOG_DEFAULT, "delta for AccECN0 options (ECT1 bytes) can't be zero");
2144 			}
2145 			tp->t_aecn.t_snd_ect1_bytes += delta;
2146 		} else {
2147 			delta = (delta + TCP_ACO_DIV -
2148 			    (tp->t_aecn.t_snd_ect0_bytes & TCP_ACO_MASK)) & TCP_ACO_MASK;
2149 			if (delta < 0) {
2150 				os_log_error(OS_LOG_DEFAULT, "delta for AccECN1 options (ECT0 bytes) can't be zero");
2151 			}
2152 			tp->t_aecn.t_snd_ect0_bytes += delta;
2153 		}
2154 	}
2155 
2156 	return ce_bytes;
2157 }
2158 
2159 static void
tcp_process_accecn(struct tcpcb * tp,struct tcpopt * to,struct tcphdr * th,uint32_t pkts_acked,uint8_t ace)2160 tcp_process_accecn(struct tcpcb *tp, struct tcpopt *to, struct tcphdr *th,
2161     uint32_t pkts_acked, uint8_t ace)
2162 {
2163 	if (tp->t_aecn.accecn_processed) {
2164 		os_log(OS_LOG_DEFAULT, "already processed AccECN field/options for this ACK");
2165 		return;
2166 	}
2167 
2168 	uint64_t old_sceb = tp->t_aecn.t_snd_ce_bytes;
2169 	uint32_t new_ce_bytes = tcp_process_accecn_options(tp, to);
2170 	uint32_t delta = tcp_process_ace_field(tp, pkts_acked, old_sceb, ace);
2171 	tp->t_aecn.t_snd_ce_packets += delta;
2172 	tp->t_aecn.t_delta_ce_packets = delta;
2173 
2174 	/* Update the time for this newly acked data or control packet */
2175 	if ((to->to_flags & TOF_TS) != 0 && (to->to_tsecr != 0) &&
2176 	    TSTMP_GEQ(to->to_tsecr, tp->t_last_ack_tsecr)) {
2177 		tp->t_last_ack_tsecr = to->to_tsecr;
2178 	}
2179 
2180 	if (delta > 0) {
2181 		tp->ecn_flags |= (TE_INRECOVERY);
2182 		tp->total_ect_packets_marked += delta;
2183 
2184 		/* update the stats */
2185 		tcpstat.tcps_ecn_ace_recv_ce += tp->t_aecn.t_delta_ce_packets;
2186 		/* CE packets counter start at 5 */
2187 		tp->t_ecn_capable_packets_marked = tp->t_aecn.t_snd_ce_packets - 5;
2188 		tcp_ccdbg_trace(tp, th, TCP_CC_ECN_RCVD);
2189 	}
2190 
2191 	if (CC_ALGO(tp)->process_ecn != NULL) {
2192 		CC_ALGO(tp)->process_ecn(tp, th, new_ce_bytes, tp->total_ect_packets_marked,
2193 		    tp->total_ect_packets_acked);
2194 	}
2195 
2196 	tp->t_aecn.accecn_processed = 1;
2197 }
2198 
2199 static void
tcp_ece_aggressive_heur(struct tcpcb * tp,uint32_t pkts_acked)2200 tcp_ece_aggressive_heur(struct tcpcb *tp, uint32_t pkts_acked)
2201 {
2202 	if (tp->ecn_flags & TE_ECEHEURI_SET) {
2203 		/* ECN heuristic already determined */
2204 		return;
2205 	}
2206 
2207 	tp->t_ecn_recv_ece_pkt += pkts_acked;
2208 
2209 	if (tp->t_ecn_capable_packets_acked < ECN_MIN_CE_PROBES) {
2210 		/* Still in learning phase - insufficient probe data */
2211 		return;
2212 	}
2213 
2214 	if (tp->t_ecn_recv_ece_pkt > ECN_MAX_CE_RATIO) {
2215 		/* Excessive congestion detected - disable ECN */
2216 		tcp_heuristic_ecn_aggressive(tp);
2217 		tp->ecn_flags |= TE_ECEHEURI_SET;
2218 		tp->ecn_flags &= ~TE_SENDIPECT; /* Disable ECT for future packets */
2219 	} else {
2220 		/* Path is suitable for ECN */
2221 		tp->ecn_flags |= TE_ECEHEURI_SET;
2222 	}
2223 }
2224 /*
2225  * Process SYN from clients and create a new connecting socket
2226  * from the listener socket. If the listen queue exceeds a certain
2227  * threshold, then generate a SYN cookie instead.
2228  *
2229  * When SYN cookie is used, this function is also called when
2230  * we receive last ACK from the client to create a new connecting
2231  * socket.
2232  */
2233 
2234 bool
tcp_create_server_socket(struct tcp_inp * tpi,struct socket ** so2,bool * syn_cookie_sent,int * dropsocket)2235 tcp_create_server_socket(struct tcp_inp *tpi, struct socket **so2,
2236     bool *syn_cookie_sent, int *dropsocket)
2237 {
2238 #define TCP_LOG_HDR (tpi->isipv6 ? (void *)tpi->ip6 : (void *)tpi->ip)
2239 
2240 	struct socket *so = tpi->so;
2241 	struct tcpcb *otp = *tpi->tp;
2242 	struct inpcb *oinp = sotoinpcb(so);
2243 	struct tcphdr *th = tpi->th;
2244 	struct sockaddr_storage from;
2245 	struct sockaddr_storage to2;
2246 	struct tcpcb *tp;
2247 	struct inpcb *inp;
2248 	struct ifnet *head_ifscope;
2249 	bool head_nocell, head_recvanyif,
2250 	    head_noexpensive, head_awdl_unrestricted,
2251 	    head_intcoproc_allowed, head_external_port,
2252 	    head_noconstrained, head_management_allowed,
2253 	    head_ultra_constrained_allowed;
2254 	boolean_t check_cfil = cfil_filter_present();
2255 
2256 	/* Get listener's bound-to-interface, if any */
2257 	// TODO check that oinp is same as inp set in tcp_input
2258 	head_ifscope = (oinp->inp_flags & INP_BOUND_IF) ?
2259 	    oinp->inp_boundifp : NULL;
2260 	/* Get listener's no-cellular information, if any */
2261 	head_nocell = INP_NO_CELLULAR(oinp);
2262 	/* Get listener's recv-any-interface, if any */
2263 	head_recvanyif = (oinp->inp_flags & INP_RECV_ANYIF);
2264 	/* Get listener's no-expensive information, if any */
2265 	head_noexpensive = INP_NO_EXPENSIVE(oinp);
2266 	head_noconstrained = INP_NO_CONSTRAINED(oinp);
2267 	head_awdl_unrestricted = INP_AWDL_UNRESTRICTED(oinp);
2268 	head_intcoproc_allowed = INP_INTCOPROC_ALLOWED(oinp);
2269 	head_external_port = (oinp->inp_flags2 & INP2_EXTERNAL_PORT);
2270 	head_management_allowed = INP_MANAGEMENT_ALLOWED(oinp);
2271 	head_ultra_constrained_allowed = INP_ULTRA_CONSTRAINED_ALLOWED(oinp);
2272 
2273 	if (so->so_filt || check_cfil || TCP_SYN_COOKIE_ENABLED(otp)) {
2274 		if (tpi->isipv6) {
2275 			struct sockaddr_in6 *sin6 = SIN6(&from);
2276 
2277 			sin6->sin6_len = sizeof(*sin6);
2278 			sin6->sin6_family = AF_INET6;
2279 			sin6->sin6_port = th->th_sport;
2280 			sin6->sin6_flowinfo = 0;
2281 			sin6->sin6_addr = tpi->ip6->ip6_src;
2282 			sin6->sin6_scope_id = 0;
2283 
2284 			sin6 = SIN6(&to2);
2285 
2286 			sin6->sin6_len = sizeof(struct sockaddr_in6);
2287 			sin6->sin6_family = AF_INET6;
2288 			sin6->sin6_port = th->th_dport;
2289 			sin6->sin6_flowinfo = 0;
2290 			sin6->sin6_addr = tpi->ip6->ip6_dst;
2291 			sin6->sin6_scope_id = 0;
2292 		} else {
2293 			struct sockaddr_in *sin = SIN(&from);
2294 
2295 			sin->sin_len = sizeof(*sin);
2296 			sin->sin_family = AF_INET;
2297 			sin->sin_port = th->th_sport;
2298 			sin->sin_addr = tpi->ip->ip_src;
2299 
2300 			sin = SIN(&to2);
2301 
2302 			sin->sin_len = sizeof(struct sockaddr_in);
2303 			sin->sin_family = AF_INET;
2304 			sin->sin_port = th->th_dport;
2305 			sin->sin_addr = tpi->ip->ip_dst;
2306 		}
2307 	}
2308 
2309 	if (so->so_filt) {
2310 		*so2 = sonewconn(so, 0, SA(&from));
2311 	} else {
2312 		if (tcp_can_send_syncookie(so, otp, th->th_flags)) {
2313 			ASSERT(tpi->to != NULL);
2314 
2315 			tcp_dooptions(otp, tpi->optp, tpi->optlen, th, tpi->to);
2316 			tcp_syncookie_syn(tpi, SA(&to2), SA(&from));
2317 			if (syn_cookie_sent) {
2318 				*syn_cookie_sent = true;
2319 			}
2320 			/* Release reference and unlock listener socket */
2321 			socket_unlock(so, 1);
2322 			/*
2323 			 * In case of SYN cookies, we don't allocate connected
2324 			 * socket yet, return success.
2325 			 */
2326 			return true;
2327 		} else {
2328 			*so2 = sonewconn(so, 0, NULL);
2329 		}
2330 	}
2331 	if (*so2 == 0) {
2332 		tcpstat.tcps_listendrop++;
2333 		if (tcp_dropdropablreq(so)) {
2334 			if (so->so_filt) {
2335 				*so2 = sonewconn(so, 0, SA(&from));
2336 			} else {
2337 				if (tcp_can_send_syncookie(so, otp, th->th_flags)) {
2338 					ASSERT(tpi->to != NULL);
2339 					tcp_dooptions(otp, tpi->optp, tpi->optlen, th, tpi->to);
2340 					tcp_syncookie_syn(tpi, SA(&to2), SA(&from));
2341 					if (syn_cookie_sent) {
2342 						*syn_cookie_sent = true;
2343 					}
2344 					/* Release reference and unlock listener socket */
2345 					socket_unlock(so, 1);
2346 
2347 					return true;
2348 				} else {
2349 					*so2 = sonewconn(so, 0, NULL);
2350 				}
2351 			}
2352 		}
2353 		if (*so2 == 0) {
2354 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, otp, false, " listen drop");
2355 			goto drop;
2356 		}
2357 	}
2358 
2359 	/* Point "inp" and "tp" in tandem to new socket */
2360 	*(tpi->inp) = inp = (struct inpcb *)(*so2)->so_pcb;
2361 	*(tpi->tp) = tp = intotcpcb(inp);
2362 
2363 	socket_unlock(so, 0); /* Unlock but keep a reference on listener for now */
2364 
2365 	socket_lock(*so2, 1);
2366 
2367 	/*
2368 	 * Mark socket as temporary until we're
2369 	 * committed to keeping it.  The code at
2370 	 * ``drop'' and ``dropwithreset'' check the
2371 	 * flag dropsocket to see if the temporary
2372 	 * socket created here should be discarded.
2373 	 * We mark the socket as discardable until
2374 	 * we're committed to it below in TCPS_LISTEN.
2375 	 * There are some error conditions in which we
2376 	 * have to drop the temporary socket.
2377 	 */
2378 	(*dropsocket)++;
2379 
2380 	/*
2381 	 * Inherit INP_BOUND_IF from listener; testing if
2382 	 * head_ifscope is non-NULL is sufficient, since it
2383 	 * can only be set to a non-zero value earlier if
2384 	 * the listener has such a flag set.
2385 	 */
2386 	if (head_ifscope != NULL) {
2387 		inp->inp_flags |= INP_BOUND_IF;
2388 		inp->inp_boundifp = head_ifscope;
2389 	} else {
2390 		inp->inp_flags &= ~INP_BOUND_IF;
2391 	}
2392 	/*
2393 	 * Inherit restrictions from listener.
2394 	 */
2395 	if (head_nocell) {
2396 		inp_set_nocellular(inp);
2397 	}
2398 	if (head_noexpensive) {
2399 		inp_set_noexpensive(inp);
2400 	}
2401 	if (head_noconstrained) {
2402 		inp_set_noconstrained(inp);
2403 	}
2404 	if (head_awdl_unrestricted) {
2405 		inp_set_awdl_unrestricted(inp);
2406 	}
2407 	if (head_intcoproc_allowed) {
2408 		inp_set_intcoproc_allowed(inp);
2409 	}
2410 	if (head_management_allowed) {
2411 		inp_set_management_allowed(inp);
2412 	}
2413 	if (head_ultra_constrained_allowed) {
2414 		inp_set_ultra_constrained_allowed(inp);
2415 	}
2416 	/*
2417 	 * Inherit {IN,IN6}_RECV_ANYIF from listener.
2418 	 */
2419 	if (head_recvanyif) {
2420 		inp->inp_flags |= INP_RECV_ANYIF;
2421 	} else {
2422 		inp->inp_flags &= ~INP_RECV_ANYIF;
2423 	}
2424 
2425 	if (head_external_port) {
2426 		inp->inp_flags2 |= INP2_EXTERNAL_PORT;
2427 	}
2428 	if (tpi->isipv6) {
2429 		inp->in6p_laddr = tpi->ip6->ip6_dst;
2430 		inp->inp_lifscope = in6_addr2scopeid(tpi->ifp, &inp->in6p_laddr);
2431 		in6_verify_ifscope(&tpi->ip6->ip6_dst, inp->inp_lifscope);
2432 	} else {
2433 		inp->inp_vflag &= ~INP_IPV6;
2434 		inp->inp_vflag |= INP_IPV4;
2435 		inp->inp_laddr = tpi->ip->ip_dst;
2436 	}
2437 	inp->inp_lport = th->th_dport;
2438 	if (in_pcbinshash(inp, SA(&from), 0) != 0) {
2439 		/*
2440 		 * Undo the assignments above if we failed to
2441 		 * put the PCB on the hash lists.
2442 		 */
2443 		if (tpi->isipv6) {
2444 			inp->in6p_laddr = in6addr_any;
2445 			inp->inp_lifscope = IFSCOPE_NONE;
2446 		} else {
2447 			inp->inp_laddr.s_addr = INADDR_ANY;
2448 		}
2449 #if SKYWALK
2450 		netns_release(&inp->inp_netns_token);
2451 #endif /* SKYWALK */
2452 		inp->inp_lport = 0;
2453 		socket_lock(so, 0);    /* release ref on parent */
2454 		socket_unlock(so, 1);
2455 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, " in_pcbinshash failed");
2456 		goto drop;
2457 	}
2458 	socket_lock(so, 0);
2459 	if (tpi->isipv6) {
2460 		/*
2461 		 * Inherit socket options from the listening
2462 		 * socket.
2463 		 * Note that in6p_inputopts are not (even
2464 		 * should not be) copied, since it stores
2465 		 * previously received options and is used to
2466 		 * detect if each new option is different than
2467 		 * the previous one and hence should be passed
2468 		 * to a user.
2469 		 * If we copied in6p_inputopts, a user would
2470 		 * not be able to receive options just after
2471 		 * calling the accept system call.
2472 		 */
2473 		inp->inp_flags |=
2474 		    oinp->inp_flags & INP_CONTROLOPTS;
2475 		if (oinp->in6p_outputopts) {
2476 			inp->in6p_outputopts =
2477 			    ip6_copypktopts(oinp->in6p_outputopts, Z_NOWAIT);
2478 		}
2479 	} else {
2480 		inp->inp_options = ip_srcroute();
2481 		inp->inp_ip_tos = oinp->inp_ip_tos;
2482 	}
2483 #if IPSEC
2484 	/* copy old policy into new socket's */
2485 	if (sotoinpcb(so)->inp_sp) {
2486 		int error = 0;
2487 		/* Is it a security hole here to silently fail to copy the policy? */
2488 		if (inp->inp_sp == NULL) {
2489 			error = ipsec_init_policy(*so2, &inp->inp_sp);
2490 		}
2491 		if (error != 0 || ipsec_copy_policy(sotoinpcb(so)->inp_sp, inp->inp_sp)) {
2492 			printf("tcp_input: could not copy policy\n");
2493 		}
2494 	}
2495 #endif
2496 	/* inherit states from the listener */
2497 	DTRACE_TCP4(state__change, void, NULL, struct inpcb *, inp,
2498 	    struct tcpcb *, tp, int32_t, TCPS_LISTEN);
2499 	TCP_LOG_STATE(tp, TCPS_LISTEN);
2500 	tp->t_state = TCPS_LISTEN;
2501 	tp->t_flags |= otp->t_flags & (TF_NOPUSH | TF_NOOPT | TF_NODELAY);
2502 	tp->t_flagsext |= (otp->t_flagsext & (TF_RXTFINDROP | TF_NOTIMEWAIT |
2503 	    TF_FASTOPEN | TF_L4S_ENABLED | TF_L4S_DISABLED));
2504 	tp->t_keepinit = otp->t_keepinit;
2505 	tp->t_keepcnt = otp->t_keepcnt;
2506 	tp->t_keepintvl = otp->t_keepintvl;
2507 	tp->t_adaptive_wtimo = otp->t_adaptive_wtimo;
2508 	tp->t_adaptive_rtimo = otp->t_adaptive_rtimo;
2509 	tp->t_inpcb->inp_ip_ttl = otp->t_inpcb->inp_ip_ttl;
2510 	if (((*so2)->so_flags & SOF_NOTSENT_LOWAT) != 0) {
2511 		tp->t_notsent_lowat = otp->t_notsent_lowat;
2512 	}
2513 	if (tp->t_flagsext & (TF_L4S_ENABLED | TF_L4S_DISABLED)) {
2514 		tcp_set_foreground_cc(*so2);
2515 	}
2516 	tp->t_inpcb->inp_flags2 |=
2517 	    otp->t_inpcb->inp_flags2 & INP2_KEEPALIVE_OFFLOAD;
2518 
2519 	/* now drop the reference on the listener */
2520 	socket_unlock(so, 1);
2521 
2522 	tp->request_r_scale = tcp_get_max_rwinscale(tp, *so2);
2523 
2524 #if CONTENT_FILTER
2525 	if (check_cfil) {
2526 		int error = cfil_sock_attach(*so2, SA(&to2), SA(&from), CFS_CONNECTION_DIR_IN);
2527 		if (error != 0) {
2528 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, " cfil_sock_attach failed");
2529 			goto drop;
2530 		}
2531 	}
2532 #endif /* CONTENT_FILTER */
2533 
2534 	KERNEL_DEBUG(DBG_FNC_TCP_NEWCONN | DBG_FUNC_END, 0, 0, 0, 0, 0);
2535 
2536 	return true;
2537 drop:
2538 	return false;
2539 #undef TCP_LOG_HDR
2540 }
2541 
2542 /*
2543  * This function is used to setup TCP server socket in either of below cases,
2544  * 1. SYN cookie is disabled and SYN is received.
2545  * 2. SYN cookie is enabled and SYN cookie is received with last ACK
2546  * Socket MUST already be created before this function is called.
2547  * It returns true for success and false for failure.
2548  */
2549 bool
tcp_setup_server_socket(struct tcp_inp * tpi,struct socket * so,bool syn_cookie_used)2550 tcp_setup_server_socket(struct tcp_inp *tpi, struct socket *so, bool syn_cookie_used)
2551 {
2552 #define TCP_LOG_HDR (tpi->isipv6 ? (void *)tpi->ip6 : (void *)tpi->ip)
2553 
2554 	struct inpcb *inp = *tpi->inp;
2555 	struct tcpcb *tp = *tpi->tp;
2556 	struct sockaddr_in *sin;
2557 	struct sockaddr_in6 *sin6;
2558 	int error = 0;
2559 	struct in_addr laddr;
2560 	struct in6_addr laddr6;
2561 
2562 	socket_lock_assert_owned(so);
2563 
2564 	/* Clear the logging flags inherited from the listening socket */
2565 	inp->inp_log_flags = 0;
2566 	inp->inp_flags2 &= ~INP2_LOGGING_ENABLED;
2567 
2568 	if (__improbable(inp->inp_flags2 & INP2_BIND_IN_PROGRESS)) {
2569 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, tpi->th, tp, false, "LISTEN bind in progress");
2570 
2571 		return false;
2572 	}
2573 	inp_enter_bind_in_progress(so);
2574 
2575 	if (tpi->isipv6) {
2576 		sin6 = kalloc_type(struct sockaddr_in6, Z_NOWAIT | Z_ZERO);
2577 		if (sin6 == NULL) {
2578 			error = ENOMEM;
2579 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, tpi->th, tp, false, "LISTEN kalloc_type failed");
2580 			goto pcbconnect_done;
2581 		}
2582 		sin6->sin6_family = AF_INET6;
2583 		sin6->sin6_len = sizeof(*sin6);
2584 		sin6->sin6_addr = tpi->ip6->ip6_src;
2585 		sin6->sin6_port = tpi->th->th_sport;
2586 		if (!in6_embedded_scope && IN6_IS_SCOPE_EMBED(&tpi->ip6->ip6_src)) {
2587 			sin6->sin6_scope_id = ip6_input_getsrcifscope(tpi->m);
2588 		}
2589 		laddr6 = inp->in6p_laddr;
2590 		uint32_t lifscope = inp->inp_lifscope;
2591 		if (IN6_IS_ADDR_UNSPECIFIED(&inp->in6p_laddr)) {
2592 			inp->in6p_laddr = tpi->ip6->ip6_dst;
2593 			inp->inp_lifscope = in6_addr2scopeid(tpi->ifp, &inp->in6p_laddr);
2594 			in6_verify_ifscope(&inp->in6p_laddr, inp->inp_lifscope);
2595 		}
2596 		if ((error = in6_pcbconnect(inp, SA(sin6), tpi->kernel_proc)) != 0) {
2597 			inp->in6p_laddr = laddr6;
2598 			kfree_type(struct sockaddr_in6, sin6);
2599 			inp->inp_lifscope = lifscope;
2600 			in6_verify_ifscope(&inp->in6p_laddr, inp->inp_lifscope);
2601 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, tpi->th, tp, false, " LISTEN in6_pcbconnect failed");
2602 			goto pcbconnect_done;
2603 		}
2604 		kfree_type(struct sockaddr_in6, sin6);
2605 	} else {
2606 		socket_lock_assert_owned(so);
2607 		sin = kalloc_type(struct sockaddr_in, Z_NOWAIT);
2608 		if (sin == NULL) {
2609 			error = ENOMEM;
2610 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, tpi->th, tp, false, "LISTEN kalloc_type failed");
2611 			goto pcbconnect_done;
2612 		}
2613 		sin->sin_family = AF_INET;
2614 		sin->sin_len = sizeof(*sin);
2615 		sin->sin_addr = tpi->ip->ip_src;
2616 		sin->sin_port = tpi->th->th_sport;
2617 		bzero((caddr_t)sin->sin_zero, sizeof(sin->sin_zero));
2618 		laddr = inp->inp_laddr;
2619 		if (inp->inp_laddr.s_addr == INADDR_ANY) {
2620 			inp->inp_laddr = tpi->ip->ip_dst;
2621 		}
2622 		if ((error = in_pcbconnect(inp, SA(sin), tpi->kernel_proc, IFSCOPE_NONE, NULL)) != 0) {
2623 			inp->inp_laddr = laddr;
2624 			kfree_type(struct sockaddr_in, sin);
2625 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, tpi->th, tp, false, " LISTEN in_pcbconnect failed");
2626 			goto pcbconnect_done;
2627 		}
2628 		kfree_type(struct sockaddr_in, sin);
2629 	}
2630 pcbconnect_done:
2631 	inp_exit_bind_in_progress(so);
2632 	if (error != 0) {
2633 		return false;
2634 	}
2635 	/*
2636 	 * We already processed the options just before calling
2637 	 * tcp_syncookie_ack. If timestamp option is present in
2638 	 * last ACK, then we assume that it was already negotiated
2639 	 * during SYN/ACK. For other options, we derive the state
2640 	 * from the cookie.
2641 	 */
2642 	if (syn_cookie_used) {
2643 		tpi->to->to_flags |= TOF_SCALE;
2644 		tpi->to->to_wscale = MIN(tpi->peer_wscale, TCP_MAX_WINSHIFT);
2645 		tpi->to->to_mss = tpi->peer_mss;
2646 		tpi->to->to_flags |= TOF_MSS;
2647 
2648 		if (tpi->sackok == 1) {
2649 			tpi->to->to_flags |= TOF_SACKPERM;
2650 		}
2651 		if (tpi->ecnok == 1) {
2652 			tp->ecn_flags |= (TE_ECN_ON | TE_SENDIPECT);
2653 		}
2654 	}
2655 	/* Get timestamp and other options that are in either:
2656 	 * SYN, when SYN cookies are disabled
2657 	 * OR last ACK, when SYN cookies are enabled
2658 	 */
2659 	if (tpi->optp != NULL) {
2660 		tcp_dooptions(tp, tpi->optp, tpi->optlen, tpi->th, tpi->to);
2661 	}
2662 	tcp_finalize_options(tp, tpi->to, tpi->ifscope);
2663 
2664 	if (tpi->iss) {
2665 		tp->iss = tpi->iss;
2666 	} else {
2667 		tp->iss = tcp_new_isn(tp);
2668 	}
2669 	if (syn_cookie_used) {
2670 		tp->irs = tpi->irs;
2671 	} else {
2672 		tp->irs = tpi->th->th_seq;
2673 	}
2674 	if (tpi->ts_offset) {
2675 		tp->t_ts_offset = tpi->ts_offset;
2676 		/* Adjust received tsecr when SYN cookie is used */
2677 		tpi->to->to_tsecr -= tpi->ts_offset;
2678 	}
2679 	tcp_sendseqinit(tp);
2680 	tcp_rcvseqinit(tp);
2681 	tp->snd_recover = tp->snd_una;
2682 	/*
2683 	 * Initialization of the tcpcb for transaction;
2684 	 *   set SND.WND = SEG.WND,
2685 	 *   initialize CCsend and CCrecv.
2686 	 */
2687 	tp->snd_wnd = tpi->tiwin;    /* initial send-window */
2688 	tp->max_sndwnd = tp->snd_wnd;
2689 	tp->t_flags |= TF_ACKNOW;
2690 	tp->t_unacksegs = 0;
2691 	tp->t_unacksegs_ce = 0;
2692 	DTRACE_TCP4(state__change, void, NULL, struct inpcb *, inp,
2693 	    struct tcpcb *, tp, int32_t, TCPS_SYN_RECEIVED);
2694 	TCP_LOG_STATE(tp, TCPS_SYN_RECEIVED);
2695 
2696 	tp->t_state = TCPS_SYN_RECEIVED;
2697 	tp->t_timer[TCPT_KEEP] = tcp_offset_from_start(tp,
2698 	    TCP_CONN_KEEPINIT(tp));
2699 	tp->t_connect_time = tcp_now;
2700 
2701 	if (inp->inp_flowhash == 0) {
2702 		inp_calc_flowhash(inp);
2703 		ASSERT(inp->inp_flowhash != 0);
2704 	}
2705 	/* update flowinfo - RFC 6437 */
2706 	if (inp->inp_flow == 0 &&
2707 	    inp->in6p_flags & IN6P_AUTOFLOWLABEL) {
2708 		inp->inp_flow &= ~IPV6_FLOWLABEL_MASK;
2709 		inp->inp_flow |=
2710 		    (htonl(ip6_randomflowlabel()) & IPV6_FLOWLABEL_MASK);
2711 	}
2712 
2713 	/* reset the incomp processing flag */
2714 	so->so_flags &= ~(SOF_INCOMP_INPROGRESS);
2715 	tcpstat.tcps_accepts++;
2716 
2717 	if (!syn_cookie_used) {
2718 		int ace_flags = ((tpi->th->th_x2 << 8) | tpi->th->th_flags) & TH_ACE;
2719 		tcp_input_process_accecn_syn(tp, ace_flags, tpi->ip_ecn);
2720 	}
2721 	/*
2722 	 * The address and connection state are finalized
2723 	 */
2724 	TCP_LOG_CONNECT(tp, false, 0);
2725 
2726 	tcp_add_fsw_flow(tp, tpi->ifp);
2727 
2728 	return true;
2729 #undef TCP_LOG_HDR
2730 }
2731 
2732 static void
tcp_input_process_wake_packet(__unused struct mbuf * m,__unused protocol_family_t protocol_family,struct inpcb * inp)2733 tcp_input_process_wake_packet(__unused struct mbuf *m, __unused protocol_family_t protocol_family, struct inpcb *inp)
2734 {
2735 	struct ifnet *ifp = m->m_pkthdr.rcvif;
2736 
2737 	/*
2738 	 * Note: we will stay in LPW if the TCP packet is invalid or have not found a PCB
2739 	 */
2740 	if (__improbable(if_is_lpw_enabled(ifp))) {
2741 		if (inp->inp_flags2 & INP2_CONNECTION_IDLE) {
2742 			struct tcpcb *tp = intotcpcb(inp);
2743 			TCP_LOG(tp, "LPW drop TCP connection idle");
2744 			tcp_drop(tp, 0);
2745 		} else {
2746 			if_exit_lpw(ifp, "TCP connection not idle ");
2747 		}
2748 	}
2749 }
2750 
2751 void
tcp_input(struct mbuf * m,int off0)2752 tcp_input(struct mbuf *m, int off0)
2753 {
2754 	int exiting_fr = 0;
2755 	struct tcphdr *th;
2756 	struct ip *ip = NULL;
2757 	struct inpcb *__single inp;
2758 	u_char *optp = NULL;
2759 	int optlen = 0;
2760 	int tlen, off;
2761 	int drop_hdrlen;
2762 	struct tcpcb *__single tp = 0;
2763 	int thflags;
2764 	struct socket *so = 0;
2765 	int todrop, acked = 0, ourfinisacked, needoutput = 0;
2766 	int read_wakeup = 0;
2767 	int write_wakeup = 0;
2768 	int dropsocket = 0;
2769 	int iss = 0, nosock = 0;
2770 	uint32_t tiwin, sack_bytes_acked = 0;
2771 	uint32_t highest_sacked_seq = 0;
2772 	struct tcpopt to;               /* options in this segment */
2773 	u_char ip_ecn = IPTOS_ECN_NOTECT;
2774 	unsigned int ifscope;
2775 	uint8_t isconnected, isdisconnected;
2776 	struct ifnet *ifp = m->m_pkthdr.rcvif;
2777 	int segment_count = m->m_pkthdr.rx_seg_cnt ? : 1;
2778 	int win;
2779 	u_int16_t pf_tag = 0;
2780 #if MPTCP
2781 	struct mptcb *mp_tp = NULL;
2782 #endif /* MPTCP */
2783 	stats_functional_type ifnet_count_type = IFNET_COUNT_TYPE(ifp);
2784 	boolean_t recvd_dsack = FALSE;
2785 	boolean_t dsack_tlp = false;
2786 	struct tcp_respond_args tra;
2787 	int prev_t_state;
2788 	bool findpcb_iterated = false;
2789 	bool rack_loss_detected = false;
2790 	bool is_th_swapped = false;
2791 	bool syn_cookie_processed = false;
2792 	bool ret = false;
2793 	/*
2794 	 * The mbuf may be freed after it has been added to the receive socket
2795 	 * buffer or the reassembly queue, so we reinitialize th to point to a
2796 	 * safe copy of the TCP header
2797 	 */
2798 	struct tcphdr saved_tcphdr = {};
2799 	/*
2800 	 * Save copy of the IPv4/IPv6 header.
2801 	 * Note: use array of uint32_t to silence compiler warning when casting
2802 	 * to a struct ip6_hdr pointer.
2803 	 */
2804 #define MAX_IPWORDS ((sizeof(struct ip) + MAX_IPOPTLEN) / sizeof(uint32_t))
2805 	uint32_t saved_hdr[MAX_IPWORDS];
2806 
2807 #define TCP_INC_VAR(stat, npkts) do {                   \
2808 	        stat += npkts;                          \
2809 } while (0)
2810 	drop_reason_t drop_reason = DROP_REASON_UNSPECIFIED;
2811 
2812 	TCP_INC_VAR(tcpstat.tcps_rcvtotal, segment_count);
2813 
2814 	struct ip6_hdr *ip6 = NULL;
2815 	int isipv6;
2816 	struct proc *kernel_proc = current_proc();
2817 
2818 	KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_START, 0, 0, 0, 0, 0);
2819 
2820 	isipv6 = (mtod(m, struct ip *)->ip_v == 6) ? 1 : 0;
2821 	bzero((char *)&to, sizeof(to));
2822 
2823 	m_add_crumb(m, PKT_CRUMB_TCP_INPUT);
2824 
2825 	if (m->m_flags & M_PKTHDR) {
2826 		pf_tag = m_pftag(m)->pftag_tag;
2827 	}
2828 
2829 	if (isipv6) {
2830 		/*
2831 		 * Expect 32-bit aligned data pointer on
2832 		 * strict-align platforms
2833 		 */
2834 		MBUF_STRICT_DATA_ALIGNMENT_CHECK_32(m);
2835 
2836 		/* IP6_EXTHDR_CHECK() is already done at tcp6_input() */
2837 		ip6 = mtod(m, struct ip6_hdr *);
2838 		tlen = sizeof(*ip6) + ntohs(ip6->ip6_plen) - off0;
2839 		th = (struct tcphdr *)(void *)((caddr_t)ip6 + off0);
2840 
2841 		if (tcp_input_checksum(AF_INET6, m, th, off0, tlen)) {
2842 			TCP_LOG_DROP_PKT(ip6, th, ifp, "IPv6 bad tcp checksum");
2843 			drop_reason = DROP_REASON_TCP_CHECKSUM_INCORRECT;
2844 			goto dropnosock;
2845 		}
2846 
2847 		KERNEL_DEBUG(DBG_LAYER_BEG, ((th->th_dport << 16) | th->th_sport),
2848 		    (((ip6->ip6_src.s6_addr16[0]) << 16) | (ip6->ip6_dst.s6_addr16[0])),
2849 		    th->th_seq, th->th_ack, th->th_win);
2850 		/*
2851 		 * Be proactive about unspecified IPv6 address in source.
2852 		 * As we use all-zero to indicate unbounded/unconnected pcb,
2853 		 * unspecified IPv6 address can be used to confuse us.
2854 		 *
2855 		 * Note that packets with unspecified IPv6 destination is
2856 		 * already dropped in ip6_input.
2857 		 */
2858 		if (IN6_IS_ADDR_UNSPECIFIED(&ip6->ip6_src)) {
2859 			/* XXX stat */
2860 			IF_TCP_STATINC(ifp, unspecv6);
2861 			TCP_LOG_DROP_PKT(ip6, th, ifp, "src IPv6 address unspecified");
2862 			drop_reason = DROP_REASON_TCP_SRC_ADDR_UNSPECIFIED;
2863 			goto dropnosock;
2864 		}
2865 		DTRACE_TCP5(receive, struct mbuf *, m, struct inpcb *, NULL,
2866 		    struct ip6_hdr *, ip6, struct tcpcb *, NULL,
2867 		    struct tcphdr *, th);
2868 
2869 		ip_ecn = (ntohl(ip6->ip6_flow) >> 20) & IPTOS_ECN_MASK;
2870 	} else {
2871 		/*
2872 		 * Get IP and TCP header together in first mbuf.
2873 		 * Note: IP leaves IP header in first mbuf.
2874 		 */
2875 		if (off0 > sizeof(struct ip)) {
2876 			ip_stripoptions(m);
2877 			off0 = sizeof(struct ip);
2878 		}
2879 		if (m->m_len < sizeof(struct tcpiphdr)) {
2880 			if ((m = m_pullup(m, sizeof(struct tcpiphdr))) == 0) {
2881 				tcpstat.tcps_rcvshort++;
2882 				return;
2883 			}
2884 		}
2885 
2886 		/* Expect 32-bit aligned data pointer on strict-align platforms */
2887 		MBUF_STRICT_DATA_ALIGNMENT_CHECK_32(m);
2888 
2889 		ip = mtod(m, struct ip *);
2890 		th = (struct tcphdr *)(void *)((caddr_t)ip + off0);
2891 		tlen = ip->ip_len;
2892 
2893 		if (tcp_input_checksum(AF_INET, m, th, off0, tlen)) {
2894 			TCP_LOG_DROP_PKT(ip, th, ifp, "IPv4 bad tcp checksum");
2895 			drop_reason = DROP_REASON_TCP_CHECKSUM_INCORRECT;
2896 			goto dropnosock;
2897 		}
2898 
2899 		/* Re-initialization for later version check */
2900 		ip->ip_v = IPVERSION;
2901 		ip_ecn = (ip->ip_tos & IPTOS_ECN_MASK);
2902 
2903 		DTRACE_TCP5(receive, struct mbuf *, m, struct inpcb *, NULL,
2904 		    struct ip *, ip, struct tcpcb *, NULL, struct tcphdr *, th);
2905 
2906 		KERNEL_DEBUG(DBG_LAYER_BEG, ((th->th_dport << 16) | th->th_sport),
2907 		    (((ip->ip_src.s_addr & 0xffff) << 16) | (ip->ip_dst.s_addr & 0xffff)),
2908 		    th->th_seq, th->th_ack, th->th_win);
2909 	}
2910 
2911 #define TCP_LOG_HDR (isipv6 ? (void *)ip6 : (void *)ip)
2912 
2913 	/*
2914 	 * Check that TCP offset makes sense,
2915 	 * pull out TCP options and adjust length.
2916 	 */
2917 	off = th->th_off << 2;
2918 	if (off < sizeof(struct tcphdr) || off > tlen) {
2919 		tcpstat.tcps_rcvbadoff++;
2920 		IF_TCP_STATINC(ifp, badformat);
2921 		TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "bad tcp offset");
2922 		drop_reason = DROP_REASON_TCP_OFFSET_INCORRECT;
2923 		goto dropnosock;
2924 	}
2925 	tlen -= off;    /* tlen is used instead of ti->ti_len */
2926 	if (off > sizeof(struct tcphdr)) {
2927 		if (isipv6) {
2928 			IP6_EXTHDR_CHECK(m, off0, off, return );
2929 			ip6 = mtod(m, struct ip6_hdr *);
2930 			th = (struct tcphdr *)(void *)((caddr_t)ip6 + off0);
2931 		} else {
2932 			if (m->m_len < sizeof(struct ip) + off) {
2933 				if ((m = m_pullup(m, sizeof(struct ip) + off)) == 0) {
2934 					tcpstat.tcps_rcvshort++;
2935 					return;
2936 				}
2937 				ip = mtod(m, struct ip *);
2938 				th = (struct tcphdr *)(void *)((caddr_t)ip + off0);
2939 			}
2940 		}
2941 		optlen = off - sizeof(struct tcphdr);
2942 		optp = (u_char *)(th + 1);
2943 		/*
2944 		 * Do quick retrieval of timestamp options ("options
2945 		 * prediction?").  If timestamp is the only option and it's
2946 		 * formatted as recommended in RFC 1323 appendix A, we
2947 		 * quickly get the values now and not bother calling
2948 		 * tcp_dooptions(), etc.
2949 		 */
2950 		if ((optlen == TCPOLEN_TSTAMP_APPA ||
2951 		    (optlen > TCPOLEN_TSTAMP_APPA &&
2952 		    optp[TCPOLEN_TSTAMP_APPA] == TCPOPT_EOL)) &&
2953 		    *(u_int32_t *)(void *)optp == htonl(TCPOPT_TSTAMP_HDR) &&
2954 		    (th->th_flags & TH_SYN) == 0) {
2955 			to.to_flags |= TOF_TS;
2956 			to.to_tsval = ntohl(*(u_int32_t *)(void *)(optp + 4));
2957 			to.to_tsecr = ntohl(*(u_int32_t *)(void *)(optp + 8));
2958 			optp = NULL;    /* we've parsed the options */
2959 			optlen = 0;
2960 		}
2961 	}
2962 	thflags = th->th_flags;
2963 
2964 	/*
2965 	 * Drop all packets with both the SYN and FIN bits set.
2966 	 * This prevents e.g. nmap from identifying the TCP/IP stack.
2967 	 *
2968 	 * This is a violation of the TCP specification.
2969 	 */
2970 	if ((thflags & (TH_SYN | TH_FIN)) == (TH_SYN | TH_FIN)) {
2971 		IF_TCP_STATINC(ifp, synfin);
2972 		TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "drop SYN FIN");
2973 		drop_reason = DROP_REASON_TCP_SYN_FIN;
2974 		goto dropnosock;
2975 	}
2976 
2977 	/*
2978 	 * Delay dropping TCP, IP headers, IPv6 ext headers, and TCP options,
2979 	 * until after ip6_savecontrol() is called and before other functions
2980 	 * which don't want those proto headers.
2981 	 * Because ip6_savecontrol() is going to parse the mbuf to
2982 	 * search for data to be passed up to user-land, it wants mbuf
2983 	 * parameters to be unchanged.
2984 	 */
2985 	drop_hdrlen = off0 + off;
2986 
2987 	/* Since this is an entry point for input processing of tcp packets, we
2988 	 * can update the tcp clock here.
2989 	 */
2990 	calculate_tcp_clock();
2991 
2992 	/*
2993 	 * Record the interface where this segment arrived on; this does not
2994 	 * affect normal data output (for non-detached TCP) as it provides a
2995 	 * hint about which route and interface to use for sending in the
2996 	 * absence of a PCB, when scoped routing (and thus source interface
2997 	 * selection) are enabled.
2998 	 */
2999 	if ((m->m_pkthdr.pkt_flags & PKTF_LOOP) || m->m_pkthdr.rcvif == NULL) {
3000 		ifscope = IFSCOPE_NONE;
3001 	} else {
3002 		ifscope = m->m_pkthdr.rcvif->if_index;
3003 	}
3004 
3005 	/*
3006 	 * Convert TCP protocol specific fields to host format.
3007 	 */
3008 
3009 #if BYTE_ORDER != BIG_ENDIAN
3010 	NTOHL(th->th_seq);
3011 	NTOHL(th->th_ack);
3012 	NTOHS(th->th_win);
3013 	NTOHS(th->th_urp);
3014 	is_th_swapped = true;
3015 #endif
3016 
3017 	/*
3018 	 * Locate pcb for segment.
3019 	 */
3020 findpcb:
3021 
3022 	isconnected = FALSE;
3023 	isdisconnected = FALSE;
3024 
3025 	if (isipv6) {
3026 		inp = in6_pcblookup_hash(&tcbinfo, &ip6->ip6_src, th->th_sport, ip6_input_getsrcifscope(m),
3027 		    &ip6->ip6_dst, th->th_dport, ip6_input_getdstifscope(m), 1,
3028 		    m->m_pkthdr.rcvif);
3029 	} else {
3030 		inp = in_pcblookup_hash(&tcbinfo, ip->ip_src, th->th_sport,
3031 		    ip->ip_dst, th->th_dport, 1, m->m_pkthdr.rcvif);
3032 	}
3033 
3034 	/*
3035 	 * Use the interface scope information from the PCB for outbound
3036 	 * segments.  If the PCB isn't present and if scoped routing is
3037 	 * enabled, tcp_respond will use the scope of the interface where
3038 	 * the segment arrived on.
3039 	 */
3040 	if (inp != NULL && (inp->inp_flags & INP_BOUND_IF)) {
3041 		ifscope = inp->inp_boundifp->if_index;
3042 	}
3043 
3044 	/*
3045 	 * If the state is CLOSED (i.e., TCB does not exist) then
3046 	 * all data in the incoming segment is discarded.
3047 	 * If the TCB exists but is in CLOSED state, it is embryonic,
3048 	 * but should either do a listen or a connect soon.
3049 	 */
3050 	if (inp == NULL) {
3051 		if (log_in_vain) {
3052 			char dbuf[MAX_IPv6_STR_LEN], sbuf[MAX_IPv6_STR_LEN];
3053 
3054 			if (isipv6) {
3055 				inet_ntop(AF_INET6, &ip6->ip6_dst, dbuf, sizeof(dbuf));
3056 				inet_ntop(AF_INET6, &ip6->ip6_src, sbuf, sizeof(sbuf));
3057 			} else {
3058 				inet_ntop(AF_INET, &ip->ip_dst, dbuf, sizeof(dbuf));
3059 				inet_ntop(AF_INET, &ip->ip_src, sbuf, sizeof(sbuf));
3060 			}
3061 			switch (log_in_vain) {
3062 			case 1:
3063 				if (thflags & TH_SYN) {
3064 					log(LOG_INFO,
3065 					    "Connection attempt to TCP %s:%d from %s:%d\n",
3066 					    dbuf, ntohs(th->th_dport),
3067 					    sbuf,
3068 					    ntohs(th->th_sport));
3069 				}
3070 				break;
3071 			case 2:
3072 				log(LOG_INFO,
3073 				    "Connection attempt to TCP %s:%d from %s:%d flags:0x%x\n",
3074 				    dbuf, ntohs(th->th_dport), sbuf,
3075 				    ntohs(th->th_sport), thflags);
3076 				break;
3077 			case 3:
3078 			case 4:
3079 				if ((thflags & TH_SYN) && !(thflags & TH_ACK) &&
3080 				    !(m->m_flags & (M_BCAST | M_MCAST)) &&
3081 				    ((isipv6 && !in6_are_addr_equal_scoped(&ip6->ip6_dst, &ip6->ip6_src, ip6_input_getdstifscope(m), ip6_input_getsrcifscope(m))) ||
3082 				    (!isipv6 && ip->ip_dst.s_addr != ip->ip_src.s_addr))) {
3083 					log_in_vain_log((LOG_INFO,
3084 					    "Stealth Mode connection attempt to TCP %s:%d from %s:%d\n",
3085 					    dbuf, ntohs(th->th_dport),
3086 					    sbuf,
3087 					    ntohs(th->th_sport)));
3088 				}
3089 				break;
3090 			default:
3091 				break;
3092 			}
3093 		}
3094 		if (blackhole) {
3095 			if (m->m_pkthdr.rcvif && m->m_pkthdr.rcvif->if_type != IFT_LOOP) {
3096 				switch (blackhole) {
3097 				case 1:
3098 					if (thflags & TH_SYN) {
3099 						TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "blackhole 1 syn for closed port");
3100 						goto dropnosock;
3101 					}
3102 					break;
3103 				case 2:
3104 					TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "blackhole 2 closed port");
3105 					goto dropnosock;
3106 				default:
3107 					TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "blackhole closed port");
3108 					goto dropnosock;
3109 				}
3110 			}
3111 		}
3112 		if ((tcp_link_heuristics_flags & TCP_LINK_HEUR_STEALTH) != 0 &&
3113 		    if_link_heuristics_enabled(ifp)) {
3114 			TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "link heuristics");
3115 			IF_TCP_STATINC(ifp, linkheur_stealthdrop);
3116 			goto dropnosock;
3117 		}
3118 		IF_TCP_STATINC(ifp, noconnnolist);
3119 		TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "closed port");
3120 		goto dropwithresetnosock;
3121 	}
3122 	so = inp->inp_socket;
3123 	if (so == NULL) {
3124 		/* This case shouldn't happen  as the socket shouldn't be null
3125 		 * if inp_state isn't set to INPCB_STATE_DEAD
3126 		 * But just in case, we pretend we didn't find the socket if we hit this case
3127 		 * as this isn't cause for a panic (the socket might be leaked however)...
3128 		 */
3129 		inp = NULL;
3130 		TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "inp_socket NULL");
3131 		drop_reason = DROP_REASON_TCP_NO_SOCK;
3132 		goto dropnosock;
3133 	}
3134 
3135 	socket_lock(so, 1);
3136 	if (in_pcb_checkstate(inp, WNT_RELEASE, 1) == WNT_STOPUSING) {
3137 		socket_unlock(so, 1);
3138 		inp = NULL;     // pretend we didn't find it
3139 		TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "inp state WNT_STOPUSING");
3140 		drop_reason = DROP_REASON_TCP_NO_SOCK;
3141 		goto dropnosock;
3142 	}
3143 
3144 	if (!isipv6 && inp->inp_faddr.s_addr != INADDR_ANY) {
3145 		if (inp->inp_faddr.s_addr != ip->ip_src.s_addr ||
3146 		    inp->inp_laddr.s_addr != ip->ip_dst.s_addr ||
3147 		    inp->inp_fport != th->th_sport ||
3148 		    inp->inp_lport != th->th_dport) {
3149 			os_log_error(OS_LOG_DEFAULT, "%s 5-tuple does not match: %u:%u %u:%u\n",
3150 			    __func__,
3151 			    ntohs(inp->inp_fport), ntohs(th->th_sport),
3152 			    ntohs(inp->inp_lport), ntohs(th->th_dport));
3153 			if (findpcb_iterated) {
3154 				drop_reason = DROP_REASON_TCP_PCB_MISMATCH;
3155 				goto drop;
3156 			}
3157 			findpcb_iterated = true;
3158 			socket_unlock(so, 1);
3159 			inp = NULL;
3160 			goto findpcb;
3161 		}
3162 	} else if (isipv6 && !IN6_IS_ADDR_UNSPECIFIED(&inp->in6p_faddr)) {
3163 		if (!in6_are_addr_equal_scoped(&inp->in6p_faddr, &ip6->ip6_src, inp->inp_fifscope, ip6_input_getsrcifscope(m)) ||
3164 		    !in6_are_addr_equal_scoped(&inp->in6p_laddr, &ip6->ip6_dst, inp->inp_lifscope, ip6_input_getdstifscope(m)) ||
3165 		    inp->inp_fport != th->th_sport ||
3166 		    inp->inp_lport != th->th_dport) {
3167 			os_log_error(OS_LOG_DEFAULT, "%s 5-tuple does not match: %u:%u %u:%u\n",
3168 			    __func__,
3169 			    ntohs(inp->inp_fport), ntohs(th->th_sport),
3170 			    ntohs(inp->inp_lport), ntohs(th->th_dport));
3171 			if (findpcb_iterated) {
3172 				drop_reason = DROP_REASON_TCP_PCB_MISMATCH;
3173 				goto drop;
3174 			}
3175 			findpcb_iterated = true;
3176 			socket_unlock(so, 1);
3177 			inp = NULL;
3178 			goto findpcb;
3179 		}
3180 	}
3181 
3182 	tp = intotcpcb(inp);
3183 	if (tp == NULL) {
3184 		IF_TCP_STATINC(ifp, noconnlist);
3185 		TCP_LOG_DROP_PKT(TCP_LOG_HDR, th, ifp, "tp is NULL");
3186 		drop_reason = DROP_REASON_TCP_NO_PCB;
3187 		goto dropwithreset;
3188 	}
3189 
3190 	/* Now that we found the tcpcb, we can adjust the TCP timestamp */
3191 	if (to.to_flags & TOF_TS) {
3192 		to.to_tsecr -= tp->t_ts_offset;
3193 	}
3194 
3195 	if (tp->t_state == TCPS_CLOSED) {
3196 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "tp state TCPS_CLOSED");
3197 		drop_reason = DROP_REASON_TCP_CLOSED;
3198 		goto drop;
3199 	}
3200 
3201 	/*
3202 	 * Note: we will stay in LPW if the TCP packet is invalid or have not found a PCB
3203 	 */
3204 	if (__improbable((m->m_pkthdr.pkt_flags & PKTF_WAKE_PKT) != 0)) {
3205 		tcp_input_process_wake_packet(m, isipv6 ? PF_INET6 : PF_INET, inp);
3206 	}
3207 
3208 #if NECP
3209 	if (so->so_state & SS_ISCONNECTED) {
3210 		// Connected TCP sockets have a fully-bound local and remote,
3211 		// so the policy check doesn't need to override addresses
3212 		if (!necp_socket_is_allowed_to_send_recv(inp, ifp, pf_tag, NULL, NULL, NULL, NULL)) {
3213 			TCP_LOG_DROP_NECP(TCP_LOG_HDR, th, intotcpcb(inp), false);
3214 			IF_TCP_STATINC(ifp, badformat);
3215 			drop_reason = DROP_REASON_TCP_NECP;
3216 			goto drop;
3217 		}
3218 	} else {
3219 		/*
3220 		 * If the proc_uuid_policy table has been updated since the last use
3221 		 * of the listening socket (i.e., the proc_uuid_policy_table_gencount
3222 		 * has been updated), the flags in the socket may be out of date.
3223 		 * If INP2_WANT_APP_POLICY is stale, inbound packets may
3224 		 * be dropped by NECP if the socket should now match a per-app
3225 		 * exception policy.
3226 		 * In order to avoid this refresh the proc_uuid_policy state to
3227 		 * potentially recalculate the socket's flags before checking
3228 		 * with NECP.
3229 		 */
3230 		(void) inp_update_policy(inp);
3231 
3232 		if (isipv6) {
3233 			if (!necp_socket_is_allowed_to_send_recv_v6(inp,
3234 			    th->th_dport, th->th_sport, &ip6->ip6_dst,
3235 			    &ip6->ip6_src, ifp, pf_tag, NULL, NULL, NULL, NULL)) {
3236 				TCP_LOG_DROP_NECP(TCP_LOG_HDR, th, intotcpcb(inp), false);
3237 				IF_TCP_STATINC(ifp, badformat);
3238 				drop_reason = DROP_REASON_TCP_NECP;
3239 				goto drop;
3240 			}
3241 		} else {
3242 			if (!necp_socket_is_allowed_to_send_recv_v4(inp,
3243 			    th->th_dport, th->th_sport, &ip->ip_dst, &ip->ip_src,
3244 			    ifp, pf_tag, NULL, NULL, NULL, NULL)) {
3245 				TCP_LOG_DROP_NECP(TCP_LOG_HDR, th, intotcpcb(inp), false);
3246 				IF_TCP_STATINC(ifp, badformat);
3247 				drop_reason = DROP_REASON_TCP_NECP;
3248 				goto drop;
3249 			}
3250 		}
3251 	}
3252 #endif /* NECP */
3253 
3254 	prev_t_state = tp->t_state;
3255 
3256 	/* If none of the FIN|SYN|RST|ACK flag is set, drop */
3257 	if ((thflags & TH_ACCEPT) == 0) {
3258 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "rfc5961 TH_ACCEPT == 0");
3259 		drop_reason = DROP_REASON_TCP_FLAGS_INCORRECT;
3260 		goto drop;
3261 	}
3262 
3263 	/* Initialize highest sacked seq to avoid using 0 as initial value */
3264 	highest_sacked_seq = th->th_ack;
3265 
3266 	/* Unscale the window into a 32-bit value. */
3267 	if ((thflags & TH_SYN) == 0) {
3268 		tiwin = th->th_win << tp->snd_scale;
3269 	} else {
3270 		tiwin = th->th_win;
3271 	}
3272 
3273 	/* Avoid processing packets while closing a listen socket */
3274 	if (tp->t_state == TCPS_LISTEN &&
3275 	    (so->so_options & SO_ACCEPTCONN) == 0) {
3276 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "closing a listening socket");
3277 		drop_reason = DROP_REASON_TCP_LISTENER_CLOSING;
3278 		goto drop;
3279 	}
3280 
3281 	if ((m->m_flags & M_PKTHDR) && (m->m_pkthdr.pkt_flags & PKTF_WAKE_PKT)) {
3282 		soevent(so, SO_FILT_HINT_LOCKED | SO_FILT_HINT_WAKE_PKT);
3283 	}
3284 
3285 	if (so->so_options & SO_ACCEPTCONN) {
3286 		struct socket *__single so2;
3287 		/*
3288 		 * Initialize with fields common to both case:
3289 		 * 1. SYN is received
3290 		 * 2. Last ACK is received for listening socket (when SYN cookie is enabled)
3291 		 */
3292 		struct tcp_inp tpi = {.so = so, .inp = &inp, .tp = &tp, .m = m, .th = th,
3293 			              .to = &to, .optp = optp, .optlen = optlen, .ip6 = ip6, .ip = ip,
3294 			              .isipv6 = isipv6, .ifp = ifp, .ifscope = ifscope, .kernel_proc = kernel_proc};
3295 		/*
3296 		 * When SYN cookie is enabled, check for an existing connection
3297 		 * attempt if the flag is only ACK.  A successful lookup creates a new
3298 		 * socket appended to the listen queue in SYN_RECEIVED state.
3299 		 */
3300 		if (TCP_SYN_COOKIE_ENABLED(tp) && (thflags & (TH_RST | TH_ACK | TH_SYN)) == TH_ACK) {
3301 			/*
3302 			 * Pull initial sequence numbers out of last ACK and
3303 			 * revert sequence number advances. Populate other fields
3304 			 * needed to create and setup the server socket.
3305 			 */
3306 			tpi.iss = th->th_ack - 1;
3307 			tpi.irs = th->th_seq - 1;
3308 			tpi.tiwin = tiwin;
3309 			tpi.ip_ecn = ip_ecn;
3310 			ret = tcp_syncookie_ack(&tpi, &so2, &dropsocket);
3311 			if (so2 == NULL) {
3312 				/* Either ACK was sent to listener after connection was closed or cookie validation failed or we could not allocate a socket */
3313 				tcpstat.tcps_listendrop++;
3314 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, " listener dropped ACK while SYN cookies were enabled");
3315 				drop_reason = DROP_REASON_TCP_LISTENER_DROP;
3316 				goto dropwithreset;
3317 			}
3318 			/* Set so to newly connected socket */
3319 			so = so2;
3320 			if (ret == false) {
3321 				/*
3322 				 * There are multiple reasons for tcp_syncookie_ack() to return
3323 				 * failure even if server socket was created successfully
3324 				 * 1. During server socket creation, if we failed to put the
3325 				 *    PCB on the hash lists or cfil_sock_attach failed.
3326 				 * 2. During server socket setup, if in_pcbconnect failed.
3327 				 * Need to check th behavior when ACK was not for our
3328 				 * SYN/ACK. Do our protection against double ACK. If peer
3329 				 * sent us 2 ACKs, then for the first one tcp_syncookie_ack()
3330 				 * successfully creates a connected socket, while we were
3331 				 * waiting on the inpcb lock.
3332 				 */
3333 				drop_reason = DROP_REASON_TCP_LISTENER_DROP;
3334 				goto drop;
3335 			}
3336 
3337 			/* Point "inp" and "tp" in tandem to new socket */
3338 			inp = (struct inpcb *)so->so_pcb;
3339 			tp = intotcpcb(inp);
3340 			syn_cookie_processed = true;
3341 			/*
3342 			 * New connection inpcb is already locked by
3343 			 * tcp_syncookie_ack() when it calls tcp_create_server_socket.
3344 			 */
3345 			ASSERT(tp->t_state == TCPS_SYN_RECEIVED);
3346 			/*
3347 			 * Process the segment and the data it
3348 			 * contains.
3349 			 */
3350 			goto syn_cookie_valid;
3351 		}
3352 
3353 		/*
3354 		 * If the state is LISTEN then ignore segment if it contains an RST.
3355 		 * If the segment contains an ACK then it is bad and send a RST.
3356 		 * If it does not contain a SYN then it is not interesting; drop it.
3357 		 * If it is from this socket, drop it, it must be forged.
3358 		 */
3359 		if ((thflags & (TH_RST | TH_ACK | TH_SYN)) != TH_SYN) {
3360 			IF_TCP_STATINC(ifp, listbadsyn);
3361 
3362 			if (thflags & TH_RST) {
3363 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false,
3364 				    thflags & TH_SYN ? "ignore SYN with RST" : "ignore RST");
3365 				drop_reason = DROP_REASON_TCP_SYN_RST;
3366 				goto drop;
3367 			}
3368 			if (thflags & TH_ACK) {
3369 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false,
3370 				    thflags & TH_SYN ? "bad SYN with ACK" : "bad ACK");
3371 				tp = NULL;
3372 				tcpstat.tcps_badsyn++;
3373 				drop_reason = DROP_REASON_TCP_SYN_ACK_LISTENER;
3374 				goto dropwithreset;
3375 			}
3376 
3377 			/* We come here if there is no SYN set */
3378 			tcpstat.tcps_badsyn++;
3379 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad SYN");
3380 			drop_reason = DROP_REASON_TCP_LISTENER_NO_SYN;
3381 			goto drop;
3382 		}
3383 		KERNEL_DEBUG(DBG_FNC_TCP_NEWCONN | DBG_FUNC_START, 0, 0, 0, 0, 0);
3384 		if (th->th_dport == th->th_sport) {
3385 			if (isipv6) {
3386 				if (in6_are_addr_equal_scoped(&ip6->ip6_dst, &ip6->ip6_src, ip6_input_getdstifscope(m), ip6_input_getsrcifscope(m))) {
3387 					TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad tuple same port");
3388 					drop_reason = DROP_REASON_TCP_SAME_PORT;
3389 					goto drop;
3390 				}
3391 			} else if (ip->ip_dst.s_addr == ip->ip_src.s_addr) {
3392 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad tuple same IPv4 address");
3393 				drop_reason = DROP_REASON_TCP_SAME_PORT;
3394 				goto drop;
3395 			}
3396 		}
3397 		/*
3398 		 * RFC1122 4.2.3.10, p. 104: discard bcast/mcast SYN
3399 		 * in_broadcast() should never return true on a received
3400 		 * packet with M_BCAST not set.
3401 		 *
3402 		 * Packets with a multicast source address should also
3403 		 * be discarded.
3404 		 */
3405 		if (m->m_flags & (M_BCAST | M_MCAST)) {
3406 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "mbuf M_BCAST | M_MCAST");
3407 			drop_reason = DROP_REASON_TCP_BCAST_MCAST;
3408 			goto drop;
3409 		}
3410 		if (isipv6) {
3411 			if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst) ||
3412 			    IN6_IS_ADDR_MULTICAST(&ip6->ip6_src)) {
3413 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "IN6_IS_ADDR_MULTICAST");
3414 				drop_reason = DROP_REASON_TCP_BCAST_MCAST;
3415 				goto drop;
3416 			}
3417 		} else if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr)) ||
3418 		    IN_MULTICAST(ntohl(ip->ip_src.s_addr)) ||
3419 		    ip->ip_src.s_addr == htonl(INADDR_BROADCAST) ||
3420 		    in_broadcast(ip->ip_dst, m->m_pkthdr.rcvif)) {
3421 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "multicast or broadcast address");
3422 			drop_reason = DROP_REASON_TCP_BCAST_MCAST;
3423 			goto drop;
3424 		}
3425 
3426 		/*
3427 		 * If deprecated address is forbidden,
3428 		 * we do not accept SYN to deprecated interface
3429 		 * address to prevent any new inbound connection from
3430 		 * getting established.
3431 		 * When we do not accept SYN, we send a TCP RST,
3432 		 * with deprecated source address (instead of dropping
3433 		 * it).  We compromise it as it is much better for peer
3434 		 * to send a RST, and RST will be the final packet
3435 		 * for the exchange.
3436 		 *
3437 		 * If we do not forbid deprecated addresses, we accept
3438 		 * the SYN packet.  RFC 4862 forbids dropping SYN in
3439 		 * this case.
3440 		 */
3441 		if (isipv6 && !ip6_use_deprecated) {
3442 			uint32_t ia6_flags;
3443 
3444 			if (ip6_getdstifaddr_info(m, NULL,
3445 			    &ia6_flags) == 0) {
3446 				if (ia6_flags & IN6_IFF_DEPRECATED) {
3447 					tp = NULL;
3448 					IF_TCP_STATINC(ifp, deprecate6);
3449 					TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "deprecated IPv6 address");
3450 					drop_reason = DROP_REASON_TCP_DEPRECATED_ADDR;
3451 					goto dropwithreset;
3452 				}
3453 			}
3454 		}
3455 
3456 		bool syn_cookie_sent = false;
3457 		ret = tcp_create_server_socket(&tpi, &so2, &syn_cookie_sent, &dropsocket);
3458 
3459 		if (syn_cookie_sent) {
3460 			/*
3461 			 * SYN cookie sent and mbuf consumed.
3462 			 * Only the listen socket is unlocked by tcp_syncookie_syn().
3463 			 */
3464 			KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
3465 			return;
3466 		}
3467 		if (!so2) {
3468 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, " listen drop");
3469 			drop_reason = DROP_REASON_TCP_LISTENER_DROP;
3470 			goto drop;
3471 		}
3472 		/* Set so to newly connected socket */
3473 		so = so2;
3474 
3475 		if (ret == false) {
3476 			drop_reason = DROP_REASON_TCP_CREATE_SERVER_SOCKET;
3477 			goto drop;
3478 		}
3479 	}
3480 syn_cookie_valid:
3481 	socket_lock_assert_owned(so);
3482 	/*
3483 	 * Packet accounting should not be done on listening socket
3484 	 */
3485 	if (th->th_flags & TH_SYN) {
3486 		(void) os_add_overflow(1, tp->t_syn_rcvd, &tp->t_syn_rcvd);
3487 	}
3488 	if (th->th_flags & TH_FIN) {
3489 		(void) os_add_overflow(1, tp->t_fin_rcvd, &tp->t_fin_rcvd);
3490 	}
3491 	if (th->th_flags & TH_RST) {
3492 		(void) os_add_overflow(1, tp->t_rst_rcvd, &tp->t_rst_rcvd);
3493 	}
3494 	TCP_LOG_TH_FLAGS(TCP_LOG_HDR, th, tp, false, ifp);
3495 
3496 	if (net_mpklog_enabled && (m->m_pkthdr.rcvif->if_xflags & IFXF_MPK_LOG)) {
3497 		MPKL_TCP_INPUT(tcp_mpkl_log_object,
3498 		    ntohs(tp->t_inpcb->inp_lport), ntohs(tp->t_inpcb->inp_fport),
3499 		    th->th_seq, th->th_ack, tlen, thflags,
3500 		    so->last_pid, so->so_log_seqn++);
3501 	}
3502 
3503 	if (tp->accurate_ecn_on) {
3504 		/* Reset the state used for AccECN processing */
3505 		tp->t_aecn.accecn_processed = 0;
3506 	}
3507 
3508 	if (tp->t_state == TCPS_ESTABLISHED && BYTES_ACKED(th, tp) > 0) {
3509 		if (CC_ALGO(tp)->set_bytes_acked != NULL) {
3510 			CC_ALGO(tp)->set_bytes_acked(tp, BYTES_ACKED(th, tp));
3511 		}
3512 		if (tp->ecn_flags & TE_SENDIPECT) {
3513 			/*
3514 			 * Data sent with ECT has been acknowledged, calculate
3515 			 * packets approx. by dividing by MSS. This is done to
3516 			 * count MSS sized packets in case packets are aggregated
3517 			 * by GRO/LRO.
3518 			 */
3519 			uint32_t bytes_acked = tcp_round_to(BYTES_ACKED(th, tp), tp->t_maxseg);
3520 			tp->t_ecn_capable_packets_acked += max(1, (bytes_acked / tp->t_maxseg));
3521 		}
3522 	}
3523 
3524 	/* Accurate ECN has different semantics for TH_CWR. */
3525 	if (!tp->accurate_ecn_on) {
3526 		/*
3527 		 * Clear TE_SENDECE if TH_CWR is set. This is harmless, so we don't
3528 		 * bother doing extensive checks for state and whatnot.
3529 		 */
3530 		if (thflags & TH_CWR) {
3531 			tp->ecn_flags &= ~TE_SENDECE;
3532 			tp->t_ecn_recv_cwr++;
3533 		}
3534 	}
3535 
3536 	/*
3537 	 * Accurate ECN feedback for Data Receiver,
3538 	 * Process IP ECN bits and update r.cep for CE marked pure ACKs
3539 	 * or valid data packets
3540 	 */
3541 	uint8_t ace = tcp_get_ace(th);
3542 	if (tp->accurate_ecn_on && tp->t_state == TCPS_ESTABLISHED) {
3543 		/* Update receive side counters */
3544 		if (tlen == 0 || (tlen > 0 &&
3545 		    SEQ_GEQ(th->th_seq, tp->last_ack_sent) &&
3546 		    SEQ_LT(th->th_seq, tp->last_ack_sent + tp->rcv_wnd))) {
3547 			tcp_input_ip_ecn(tp, inp, (uint32_t)tlen, (uint32_t)segment_count, ip_ecn);
3548 		}
3549 
3550 		/* Test for ACE bleaching, initial value of ace should be non-zero */
3551 		if (th->th_seq == tp->iss + 1 && ace == 0) {
3552 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_ace_bleaching_detected;
3553 		}
3554 	} else {
3555 		/*
3556 		 * Explicit Congestion Notification - Flag that we need to send ECE if
3557 		 *	+ The IP Congestion experienced flag was set.
3558 		 *	+ Socket is in established state
3559 		 *	+ We negotiated ECN in the TCP setup
3560 		 *	+ This isn't a pure ack (tlen > 0)
3561 		 *	+ The data is in the valid window
3562 		 *
3563 		 *	TE_SENDECE will be cleared when we receive a packet with TH_CWR set.
3564 		 */
3565 		if (ip_ecn == IPTOS_ECN_CE && tp->t_state == TCPS_ESTABLISHED &&
3566 		    TCP_ECN_ENABLED(tp) && tlen > 0 &&
3567 		    SEQ_GEQ(th->th_seq, tp->last_ack_sent) &&
3568 		    SEQ_LT(th->th_seq, tp->last_ack_sent + tp->rcv_wnd)) {
3569 			tp->t_ecn_recv_ce++;
3570 			tcpstat.tcps_ecn_recv_ce++;
3571 			INP_INC_IFNET_STAT(inp, ecn_recv_ce);
3572 			/* Mark this connection as it received CE from network */
3573 			tp->ecn_flags |= TE_RECV_ECN_CE;
3574 			tp->ecn_flags |= TE_SENDECE;
3575 		}
3576 	}
3577 
3578 	/*
3579 	 * If we received an explicit notification of congestion in
3580 	 * ip tos ecn bits or by the CWR bit in TCP header flags, reset
3581 	 * the force-ACK counter. We need to handle ECN notification if
3582 	 * an ECN setup SYN was sent even once.
3583 	 */
3584 	if (tp->t_state == TCPS_ESTABLISHED &&
3585 	    (tp->ecn_flags & TE_SETUPSENT) &&
3586 	    (ip_ecn == IPTOS_ECN_CE || (thflags & TH_CWR))) {
3587 		tp->t_forced_acks = TCP_FORCED_ACKS_COUNT;
3588 		CLEAR_IAJ_STATE(tp);
3589 	}
3590 
3591 
3592 	if (ip_ecn == IPTOS_ECN_CE && tp->t_state == TCPS_ESTABLISHED) {
3593 		/* Received CE on a non-ECN enabled connection */
3594 		if (!TCP_ECN_ENABLED(tp)) {
3595 			tcpstat.tcps_ecn_fallback_ce++;
3596 			INP_INC_IFNET_STAT(inp, ecn_fallback_ce);
3597 		} else if (!(tp->ecn_flags & TE_ECEHEURI_SET)) {
3598 			if (inp->inp_mstat.ms_total.ts_rxpackets < ECN_MIN_CE_PROBES) {
3599 				tp->t_ecn_recv_ce_pkt++;
3600 			} else if (tp->t_ecn_recv_ce_pkt > ECN_MAX_CE_RATIO) {
3601 				tcp_heuristic_ecn_aggressive(tp);
3602 				tp->ecn_flags |= TE_ECEHEURI_SET;
3603 			} else {
3604 				/* We tracked the first ECN_MIN_CE_PROBES segments, we
3605 				 * now know that the path is good.
3606 				 */
3607 				tp->ecn_flags |= TE_ECEHEURI_SET;
3608 			}
3609 		}
3610 	}
3611 
3612 	/* Update rcvtime as a new segment was received on the connection */
3613 	tp->t_rcvtime = tcp_now;
3614 
3615 	/*
3616 	 * Segment received on connection.
3617 	 * Reset idle time and keep-alive timer.
3618 	 */
3619 	if (TCPS_HAVEESTABLISHED(tp->t_state)) {
3620 		tcp_keepalive_reset(tp);
3621 
3622 		if (tp->t_mpsub) {
3623 			mptcp_reset_keepalive(tp);
3624 		}
3625 	}
3626 
3627 	/*
3628 	 * Process options if not in LISTEN state,
3629 	 * else do it below (after getting remote address).
3630 	 */
3631 	if (tp->t_state != TCPS_LISTEN && optp) {
3632 		tcp_dooptions(tp, optp, optlen, th, &to);
3633 	}
3634 #if MPTCP
3635 	if (tp->t_state != TCPS_LISTEN && (so->so_flags & SOF_MP_SUBFLOW)) {
3636 		mptcp_insert_rmap(tp, m, th);
3637 	}
3638 #endif /* MPTCP */
3639 	if (tp->t_state == TCPS_SYN_SENT && (thflags & TH_SYN)) {
3640 		if (!(thflags & TH_ACK) ||
3641 		    (SEQ_GT(th->th_ack, tp->iss) &&
3642 		    SEQ_LEQ(th->th_ack, tp->snd_max))) {
3643 			tcp_finalize_options(tp, &to, ifscope);
3644 		}
3645 	}
3646 
3647 #if TRAFFIC_MGT
3648 	/*
3649 	 * Compute inter-packet arrival jitter. According to RFC 3550,
3650 	 * inter-packet arrival jitter is defined as the difference in
3651 	 * packet spacing at the receiver compared to the sender for a
3652 	 * pair of packets. When two packets of maximum segment size come
3653 	 * one after the other with consecutive sequence numbers, we
3654 	 * consider them as packets sent together at the sender and use
3655 	 * them as a pair to compute inter-packet arrival jitter. This
3656 	 * metric indicates the delay induced by the network components due
3657 	 * to queuing in edge/access routers.
3658 	 */
3659 	if (tp->t_state == TCPS_ESTABLISHED &&
3660 	    (thflags & (TH_SYN | TH_FIN | TH_RST | TH_URG | TH_ACK | TH_ECE | TH_PUSH)) == TH_ACK &&
3661 	    ((tp->t_flags & TF_NEEDFIN) == 0) &&
3662 	    ((to.to_flags & TOF_TS) == 0 ||
3663 	    TSTMP_GEQ(to.to_tsval, tp->ts_recent)) &&
3664 	    th->th_seq == tp->rcv_nxt && LIST_EMPTY(&tp->t_segq)) {
3665 		int seg_size = tlen;
3666 		if (tp->iaj_pktcnt <= IAJ_IGNORE_PKTCNT) {
3667 			TCP_INC_VAR(tp->iaj_pktcnt, segment_count);
3668 		}
3669 
3670 		if (tp->iaj_size == 0 || seg_size > tp->iaj_size ||
3671 		    (seg_size == tp->iaj_size && tp->iaj_rcv_ts == 0)) {
3672 			/*
3673 			 * State related to inter-arrival jitter is
3674 			 * uninitialized or we are trying to find a good
3675 			 * first packet to start computing the metric
3676 			 */
3677 			update_iaj_state(tp, seg_size, 0);
3678 		} else {
3679 			if (seg_size == tp->iaj_size) {
3680 				/*
3681 				 * Compute inter-arrival jitter taking
3682 				 * this packet as the second packet
3683 				 */
3684 				compute_iaj(tp);
3685 			}
3686 			if (seg_size < tp->iaj_size) {
3687 				/*
3688 				 * There is a smaller packet in the stream.
3689 				 * Some times the maximum size supported
3690 				 * on a path can change if there is a new
3691 				 * link with smaller MTU. The receiver will
3692 				 * not know about this change. If there
3693 				 * are too many packets smaller than
3694 				 * iaj_size, we try to learn the iaj_size
3695 				 * again.
3696 				 */
3697 				TCP_INC_VAR(tp->iaj_small_pkt, segment_count);
3698 				if (tp->iaj_small_pkt > RESET_IAJ_SIZE_THRESH) {
3699 					update_iaj_state(tp, seg_size, 1);
3700 				} else {
3701 					CLEAR_IAJ_STATE(tp);
3702 				}
3703 			} else {
3704 				update_iaj_state(tp, seg_size, 0);
3705 			}
3706 		}
3707 	} else {
3708 		CLEAR_IAJ_STATE(tp);
3709 	}
3710 #endif /* TRAFFIC_MGT */
3711 
3712 	/*
3713 	 * Header prediction: check for the two common cases
3714 	 * of a uni-directional data xfer.  If the packet has
3715 	 * no control flags, is in-sequence, the window didn't
3716 	 * change and we're not retransmitting, it's a
3717 	 * candidate.  If the length is zero and the ack moved
3718 	 * forward, we're the sender side of the xfer.  Just
3719 	 * free the data acked & wake any higher level process
3720 	 * that was blocked waiting for space.  If the length
3721 	 * is non-zero and the ack didn't move, we're the
3722 	 * receiver side.  If we're getting packets in-order
3723 	 * (the reassembly queue is empty), add the data to
3724 	 * the socket buffer and note that we need a delayed ack.
3725 	 * Make sure that the hidden state-flags are also off.
3726 	 * Since we check for TCPS_ESTABLISHED above, it can only
3727 	 * be TH_NEEDSYN.
3728 	 */
3729 	if (tp->t_state == TCPS_ESTABLISHED &&
3730 	    !(so->so_state & SS_CANTRCVMORE) &&
3731 	    (thflags & TH_FLAGS) == TH_ACK &&
3732 	    ((tp->t_flags & TF_NEEDFIN) == 0) &&
3733 	    ((to.to_flags & TOF_TS) == 0 ||
3734 	    TSTMP_GEQ(to.to_tsval, tp->ts_recent)) &&
3735 	    th->th_seq == tp->rcv_nxt &&
3736 	    tiwin && tiwin == tp->snd_wnd &&
3737 	    tp->snd_nxt == tp->snd_max) {
3738 		/*
3739 		 * If last ACK falls within this segment's sequence numbers,
3740 		 * record the timestamp.
3741 		 * NOTE that the test is modified according to the latest
3742 		 * proposal of the [email protected] list (Braden 1993/04/26).
3743 		 */
3744 		if ((to.to_flags & TOF_TS) != 0 &&
3745 		    SEQ_LEQ(th->th_seq, tp->last_ack_sent)) {
3746 			tp->ts_recent_age = tcp_now;
3747 			tp->ts_recent = to.to_tsval;
3748 		}
3749 
3750 		/*
3751 		 * We increment t_unacksegs_ce for both data segments
3752 		 * and pure ACKs for Accurate ECN
3753 		 */
3754 		if (tp->accurate_ecn_on && ip_ecn == IPTOS_ECN_CE) {
3755 			TCP_INC_VAR(tp->t_unacksegs_ce, segment_count);
3756 		}
3757 
3758 		if (tlen == 0) {
3759 			if (SEQ_GT(th->th_ack, tp->snd_una) &&
3760 			    SEQ_LEQ(th->th_ack, tp->snd_max) &&
3761 			    tp->snd_cwnd >= tp->snd_ssthresh &&
3762 			    (!IN_FASTRECOVERY(tp) &&
3763 			    ((!(SACK_ENABLED(tp)) &&
3764 			    tp->t_dupacks < tp->t_rexmtthresh) ||
3765 			    (SACK_ENABLED(tp) && to.to_nsacks == 0 &&
3766 			    TAILQ_EMPTY(&tp->snd_holes))))) {
3767 				/*
3768 				 * this is a pure ack for outstanding data.
3769 				 */
3770 				++tcpstat.tcps_predack;
3771 
3772 				tcp_bad_rexmt_check(tp, th, &to);
3773 
3774 				/* Recalculate the RTT */
3775 				tcp_compute_rtt(tp, &to, th);
3776 
3777 				VERIFY(SEQ_GEQ(th->th_ack, tp->snd_una));
3778 				acked = BYTES_ACKED(th, tp);
3779 				tcpstat.tcps_rcvackpack++;
3780 				tcpstat.tcps_rcvackbyte += acked;
3781 
3782 				/* TE_SENDIPECT is only set when L4S sysctl is enabled */
3783 				if (tp->accurate_ecn_on && (tp->ecn_flags & TE_SENDIPECT)) {
3784 					uint32_t pkts_acked = tcp_packets_this_ack(tp, acked);
3785 					tp->total_ect_packets_acked += pkts_acked;
3786 
3787 					bool newly_acked_time = false;
3788 					if (acked == 0 && (to.to_flags & TOF_TS) != 0 && to.to_tsecr != 0 &&
3789 					    TSTMP_GT(to.to_tsecr, tp->t_last_ack_tsecr)) {
3790 						newly_acked_time = true;
3791 					}
3792 					if (acked > 0 || newly_acked_time) {
3793 						tcp_process_accecn(tp, &to, th, pkts_acked, ace);
3794 					}
3795 				}
3796 
3797 				/*
3798 				 * Process sent segments used for RACK, called after RTT is computed
3799 				 * RACK reordering window doesn't need to be updated until we process
3800 				 * DSACK.
3801 				 */
3802 				if (TCP_RACK_ENABLED(tp)) {
3803 					tcp_segs_doack(tp, th->th_ack, &to);
3804 					if (SEQ_LT(tp->snd_fack, th->th_ack)) {
3805 						/*
3806 						 * We update snd_fack here for RACK only as it is updated
3807 						 * and used differently for SACK. This should be done after
3808 						 * ACK processing of segments which checks for reordering.
3809 						 * Also, we don't compare with highest_sacked_seq here as this
3810 						 * is the fast path with no SACK blocks.
3811 						 */
3812 						tp->snd_fack = th->th_ack;
3813 					}
3814 				}
3815 
3816 				/*
3817 				 * Handle an ack that is in sequence during
3818 				 * congestion avoidance phase. The
3819 				 * calculations in this function
3820 				 * assume that snd_una is not updated yet.
3821 				 */
3822 				if (CC_ALGO(tp)->congestion_avd != NULL) {
3823 					CC_ALGO(tp)->congestion_avd(tp, th);
3824 				}
3825 				tcp_ccdbg_trace(tp, th, TCP_CC_INSEQ_ACK_RCVD);
3826 				sbdrop(&so->so_snd, acked);
3827 				tcp_sbsnd_trim(&so->so_snd);
3828 
3829 				if (SEQ_GT(tp->snd_una, tp->snd_recover) &&
3830 				    SEQ_LEQ(th->th_ack, tp->snd_recover)) {
3831 					tp->snd_recover = th->th_ack - 1;
3832 				}
3833 
3834 				tcp_update_snd_una(tp, th->th_ack);
3835 
3836 				TCP_RESET_REXMT_STATE(tp);
3837 
3838 				/*
3839 				 * pull snd_wl2 up to prevent seq wrap relative
3840 				 * to th_ack.
3841 				 */
3842 				tp->snd_wl2 = th->th_ack;
3843 
3844 				if (tp->t_dupacks > 0) {
3845 					tp->t_dupacks = 0;
3846 					tp->t_rexmtthresh = tcprexmtthresh;
3847 				}
3848 
3849 				tp->sackhint.sack_bytes_acked = 0;
3850 
3851 				/*
3852 				 * If all outstanding data are acked, stop
3853 				 * retransmit timer, otherwise restart timer
3854 				 * using current (possibly backed-off) value.
3855 				 * If process is waiting for space,
3856 				 * wakeup/selwakeup/signal.  If data
3857 				 * are ready to send, let tcp_output
3858 				 * decide between more output or persist.
3859 				 */
3860 				if (tp->snd_una == tp->snd_max) {
3861 					tp->t_timer[TCPT_REXMT] = 0;
3862 					tp->t_timer[TCPT_PTO] = 0;
3863 					tp->t_timer[TCPT_REORDER] = 0;
3864 					tcp_rack_reset_segs_retransmitted(tp);
3865 				} else if (tp->t_timer[TCPT_PERSIST] == 0) {
3866 					tcp_set_rto(tp);
3867 				}
3868 				if (!SLIST_EMPTY(&tp->t_rxt_segments) &&
3869 				    !TCP_DSACK_SEQ_IN_WINDOW(tp,
3870 				    tp->t_dsack_lastuna, tp->snd_una)) {
3871 					tcp_rxtseg_clean(tp);
3872 				}
3873 
3874 				if ((tp->t_flagsext & TF_MEASURESNDBW) != 0 &&
3875 				    tp->t_bwmeas != NULL) {
3876 					tcp_bwmeas_check(tp);
3877 				}
3878 
3879 				write_wakeup = 1;
3880 				if (!SLIST_EMPTY(&tp->t_notify_ack)) {
3881 					tcp_notify_acknowledgement(tp, so);
3882 				}
3883 
3884 				if ((so->so_snd.sb_cc) || (tp->t_flags & TF_ACKNOW)) {
3885 					(void) tcp_output(tp);
3886 				}
3887 
3888 				tcp_tfo_rcv_ack(tp, th);
3889 
3890 				m_freem(m);
3891 
3892 				tcp_check_timer_state(tp);
3893 
3894 				tcp_handle_wakeup(so, read_wakeup, write_wakeup);
3895 
3896 				socket_unlock(so, 1);
3897 				KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
3898 				return;
3899 			}
3900 		} else if (th->th_ack == tp->snd_una && LIST_EMPTY(&tp->t_segq) &&
3901 		    tlen <= tcp_sbspace(tp)) {
3902 			int mem = tcp_memacct_limited();
3903 			if (mem == MEMACCT_HARDLIMIT ||
3904 			    (mem == MEMACCT_SOFTLIMIT && so->so_rcv.sb_cc > 0)) {
3905 				/*
3906 				 * If we are at the hard limit, just drop.
3907 				 * If we are at the softlimit, only accept one
3908 				 * packet into the receive-queue.
3909 				 */
3910 				drop_reason = DROP_REASON_TCP_INSEQ_MEMORY_PRESSURE;
3911 				tcpstat.tcps_rcvmemdrop++;
3912 				goto drop;
3913 			}
3914 			/*
3915 			 * this is a pure, in-sequence data packet
3916 			 * with nothing on the reassembly queue and
3917 			 * we have enough buffer space to take it.
3918 			 */
3919 
3920 			/* Clean receiver SACK report if present */
3921 			if (SACK_ENABLED(tp) && tp->rcv_numsacks) {
3922 				tcp_clean_sackreport(tp);
3923 			}
3924 			++tcpstat.tcps_preddat;
3925 			tp->rcv_nxt += tlen;
3926 			/* Update highest received sequence and its timestamp */
3927 			if (SEQ_LT(tp->rcv_high, tp->rcv_nxt)) {
3928 				tp->rcv_high = tp->rcv_nxt;
3929 				if (to.to_flags & TOF_TS) {
3930 					tp->tsv_high = to.to_tsval;
3931 				}
3932 			}
3933 
3934 			/*
3935 			 * Pull snd_wl1 up to prevent seq wrap relative to
3936 			 * th_seq.
3937 			 */
3938 			tp->snd_wl1 = th->th_seq;
3939 			/*
3940 			 * Pull rcv_up up to prevent seq wrap relative to
3941 			 * rcv_nxt.
3942 			 */
3943 			tp->rcv_up = tp->rcv_nxt;
3944 			TCP_INC_VAR(tcpstat.tcps_rcvpack, segment_count);
3945 			tcpstat.tcps_rcvbyte += tlen;
3946 			if (nstat_collect) {
3947 				INP_ADD_RXSTAT(inp, ifnet_count_type, 1, tlen);
3948 			}
3949 
3950 			/* Calculate the RTT on the receiver */
3951 			tcp_compute_rcv_rtt(tp, &to, th);
3952 
3953 			tcp_sbrcv_grow(tp, &so->so_rcv, &to, tlen);
3954 			if (TCP_USE_RLEDBAT(tp, so) && tcp_cc_rledbat.data_rcvd != NULL) {
3955 				tcp_cc_rledbat.data_rcvd(tp, th, &to, tlen);
3956 			}
3957 
3958 			/*
3959 			 * Add data to socket buffer.
3960 			 */
3961 			so_recv_data_stat(so, m, 0);
3962 			m_adj(m, drop_hdrlen);  /* delayed header drop */
3963 
3964 			if (isipv6) {
3965 				memcpy(&saved_hdr, ip6, sizeof(struct ip6_hdr));
3966 				ip6 = (struct ip6_hdr *)&saved_hdr[0];
3967 			} else {
3968 				memcpy(&saved_hdr, ip, ip->ip_hl << 2);
3969 				ip = (struct ip *)&saved_hdr[0];
3970 			}
3971 			memcpy(&saved_tcphdr, th, sizeof(struct tcphdr));
3972 
3973 			if (th->th_flags & TH_PUSH) {
3974 				tp->t_flagsext |= TF_LAST_IS_PSH;
3975 			} else {
3976 				tp->t_flagsext &= ~TF_LAST_IS_PSH;
3977 			}
3978 
3979 			if (sbappendstream_rcvdemux(so, m)) {
3980 				mptcp_handle_input(so);
3981 				read_wakeup = 1;
3982 			}
3983 			th = &saved_tcphdr;
3984 
3985 			if (isipv6) {
3986 				KERNEL_DEBUG(DBG_LAYER_END, ((th->th_dport << 16) | th->th_sport),
3987 				    (((ip6->ip6_src.s6_addr16[0]) << 16) | (ip6->ip6_dst.s6_addr16[0])),
3988 				    th->th_seq, th->th_ack, th->th_win);
3989 			} else {
3990 				KERNEL_DEBUG(DBG_LAYER_END, ((th->th_dport << 16) | th->th_sport),
3991 				    (((ip->ip_src.s_addr & 0xffff) << 16) | (ip->ip_dst.s_addr & 0xffff)),
3992 				    th->th_seq, th->th_ack, th->th_win);
3993 			}
3994 			TCP_INC_VAR(tp->t_unacksegs, segment_count);
3995 			if (DELAY_ACK(tp, th)) {
3996 				if ((tp->t_flags & TF_DELACK) == 0) {
3997 					tp->t_flags |= TF_DELACK;
3998 					tp->t_timer[TCPT_DELACK] = tcp_offset_from_start(tp, tcp_delack);
3999 				}
4000 			} else {
4001 				tp->t_flags |= TF_ACKNOW;
4002 				tcp_output(tp);
4003 			}
4004 
4005 			tcp_adaptive_rwtimo_check(tp, tlen);
4006 
4007 			if (tlen > 0) {
4008 				tcp_tfo_rcv_data(tp);
4009 			}
4010 
4011 			tcp_check_timer_state(tp);
4012 
4013 			tcp_handle_wakeup(so, read_wakeup, write_wakeup);
4014 
4015 			socket_unlock(so, 1);
4016 			KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
4017 			return;
4018 		}
4019 	}
4020 
4021 	/*
4022 	 * Calculate amount of space in receive window,
4023 	 * and then do TCP input processing.
4024 	 * Receive window is amount of space in rcv queue,
4025 	 * but not less than advertised window.
4026 	 */
4027 	socket_lock_assert_owned(so);
4028 	win = tcp_sbspace(tp);
4029 	if (win < 0) {
4030 		win = 0;
4031 	} else { /* clip rcv window to 4K for modems */
4032 		if (tp->t_flags & TF_SLOWLINK && slowlink_wsize > 0) {
4033 			win = min(win, slowlink_wsize);
4034 		}
4035 	}
4036 	tp->rcv_wnd = imax(win, (int)(tp->rcv_adv - tp->rcv_nxt));
4037 #if MPTCP
4038 	/*
4039 	 * Ensure that the subflow receive window isn't greater
4040 	 * than the connection level receive window.
4041 	 */
4042 	if ((tp->t_mpflags & TMPF_MPTCP_TRUE) && (mp_tp = tptomptp(tp))) {
4043 		socket_lock_assert_owned(mptetoso(mp_tp->mpt_mpte));
4044 		int64_t recwin_conn = (int64_t)(mp_tp->mpt_rcvadv - mp_tp->mpt_rcvnxt);
4045 
4046 		VERIFY(recwin_conn < INT32_MAX && recwin_conn > INT32_MIN);
4047 		if (recwin_conn > 0 && tp->rcv_wnd > (uint32_t)recwin_conn) {
4048 			tp->rcv_wnd = (uint32_t)recwin_conn;
4049 			tcpstat.tcps_mp_reducedwin++;
4050 		}
4051 	}
4052 #endif /* MPTCP */
4053 
4054 	switch (tp->t_state) {
4055 	/*
4056 	 * Initialize tp->rcv_nxt, and tp->irs, select an initial
4057 	 * tp->iss, and send a segment:
4058 	 *		<SEQ=ISS><ACK=RCV_NXT><CTL=SYN,ACK>
4059 	 * Also initialize tp->snd_nxt to tp->iss+1 and tp->snd_una to tp->iss.
4060 	 * Fill in remote peer address fields if not previously specified.
4061 	 * Enter SYN_RECEIVED state, and process any other fields of this
4062 	 * segment in this state.
4063 	 */
4064 	case TCPS_LISTEN: {
4065 		struct tcp_inp tpi = {.inp = &inp, .tp = &tp, .m = m, .th = th,
4066 			              .iss = iss, .tiwin = tiwin, .to = &to, .optp = optp, .optlen = optlen,
4067 			              .ip6 = ip6, .ip = ip, .ip_ecn = ip_ecn, .isipv6 = isipv6, .ifp = ifp,
4068 			              .ifscope = ifscope, .kernel_proc = kernel_proc};
4069 		ret = tcp_setup_server_socket(&tpi, so, false);
4070 
4071 		if (ret == false) {
4072 			drop_reason = DROP_REASON_TCP_CREATE_SERVER_SOCKET;
4073 			goto drop;
4074 		}
4075 		if (TFO_ENABLED(tp) && tcp_tfo_syn(tp, &to)) {
4076 			isconnected = TRUE;
4077 		}
4078 		dropsocket = 0;         /* committed to socket */
4079 
4080 		goto trimthenstep6;
4081 	}
4082 
4083 	/*
4084 	 * If the state is SYN_RECEIVED and the seg contains an ACK,
4085 	 * but not for our SYN/ACK, send a RST.
4086 	 */
4087 	case TCPS_SYN_RECEIVED:
4088 		if ((thflags & TH_ACK) &&
4089 		    (SEQ_LEQ(th->th_ack, tp->snd_una) ||
4090 		    SEQ_GT(th->th_ack, tp->snd_max))) {
4091 			IF_TCP_STATINC(ifp, ooopacket);
4092 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN_RECEIVED bad ACK");
4093 			drop_reason = DROP_REASON_TCP_SYN_RECEIVED_BAD_ACK;
4094 			goto dropwithreset;
4095 		}
4096 
4097 		/*
4098 		 * In SYN_RECEIVED state, if we recv some SYNS with
4099 		 * window scale and others without, window scaling should
4100 		 * be disabled. Otherwise the window advertised will be
4101 		 * lower if we assume scaling and the other end does not.
4102 		 */
4103 		if ((thflags & TH_SYN) &&
4104 		    (tp->irs == th->th_seq) &&
4105 		    !(to.to_flags & TOF_SCALE)) {
4106 			tp->t_flags &= ~TF_RCVD_SCALE;
4107 		}
4108 		break;
4109 
4110 	/*
4111 	 * If the state is SYN_SENT:
4112 	 *	if seg contains an ACK, but not for our SYN, drop the input.
4113 	 *	if seg contains a RST, then drop the connection.
4114 	 *	if seg does not contain SYN, then drop it.
4115 	 * Otherwise this is an acceptable SYN segment
4116 	 *	initialize tp->rcv_nxt and tp->irs
4117 	 *	if seg contains ack then advance tp->snd_una
4118 	 *	if SYN has been acked change to ESTABLISHED else SYN_RCVD state
4119 	 *	arrange for segment to be acked (eventually)
4120 	 *	continue processing rest of data/controls, beginning with URG
4121 	 */
4122 	case TCPS_SYN_SENT:
4123 		if ((thflags & TH_ACK) &&
4124 		    (SEQ_LEQ(th->th_ack, tp->iss) ||
4125 		    SEQ_GT(th->th_ack, tp->snd_max))) {
4126 			IF_TCP_STATINC(ifp, ooopacket);
4127 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN_SENT bad ACK");
4128 			drop_reason = DROP_REASON_TCP_SYN_SENT_BAD_ACK;
4129 			goto dropwithreset;
4130 		}
4131 		if (thflags & TH_RST) {
4132 			if ((thflags & TH_ACK) != 0) {
4133 				if (TFO_ENABLED(tp) &&
4134 				    !(tp->t_flagsext & TF_FASTOPEN_FORCE_ENABLE)) {
4135 					tcp_heuristic_tfo_rst(tp);
4136 				}
4137 				if ((tp->ecn_flags & (TE_SETUPSENT | TE_RCVD_SYN_RST)) == TE_SETUPSENT ||
4138 				    (tp->ecn_flags & (TE_ACE_SETUPSENT | TE_RCVD_SYN_RST)) == TE_ACE_SETUPSENT) {
4139 					/*
4140 					 * On local connections, send
4141 					 * non-ECN syn one time before
4142 					 * dropping the connection
4143 					 */
4144 					if (tp->t_flags & TF_LOCAL) {
4145 						tp->ecn_flags |= TE_RCVD_SYN_RST;
4146 						drop_reason = DROP_REASON_TCP_RST;
4147 						goto drop;
4148 					} else {
4149 						tcp_heuristic_ecn_synrst(tp);
4150 					}
4151 				}
4152 				soevent(so,
4153 				    (SO_FILT_HINT_LOCKED |
4154 				    SO_FILT_HINT_CONNRESET));
4155 				tp = tcp_drop(tp, ECONNREFUSED);
4156 			}
4157 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN_SENT got RST");
4158 			drop_reason = DROP_REASON_TCP_RST;
4159 			goto drop;
4160 		}
4161 		if ((thflags & TH_SYN) == 0) {
4162 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN_SENT no SYN");
4163 			drop_reason = DROP_REASON_TCP_SYN_SENT_NO_SYN;
4164 			goto drop;
4165 		}
4166 		tp->snd_wnd = th->th_win;       /* initial send window */
4167 		tp->max_sndwnd = tp->snd_wnd;
4168 
4169 		tp->irs = th->th_seq;
4170 		tcp_rcvseqinit(tp);
4171 		if (thflags & TH_ACK) {
4172 			/* Client processes SYN-ACK */
4173 			tcpstat.tcps_connects++;
4174 
4175 			const uint32_t ace_flags = ((th->th_x2 << 8) | thflags) & TH_ACE;
4176 			tcp_input_process_accecn_synack(tp, inp, &to, thflags, ace_flags, ip_ecn,
4177 			    (uint32_t)tlen, (uint32_t)segment_count);
4178 
4179 			/* Do window scaling on this connection? */
4180 			if (TCP_WINDOW_SCALE_ENABLED(tp)) {
4181 				tp->snd_scale = tp->requested_s_scale;
4182 				tp->rcv_scale = tp->request_r_scale;
4183 			}
4184 
4185 			uint32_t recwin = min(tp->rcv_wnd, TCP_MAXWIN << tp->rcv_scale);
4186 			if (TCP_USE_RLEDBAT(tp, so) && tcp_cc_rledbat.get_rlwin != NULL) {
4187 				/* For a LBE receiver, also use rledbat_win */
4188 				uint32_t rledbat_win = tcp_cc_rledbat.get_rlwin(tp);
4189 				if (rledbat_win > 0) {
4190 					recwin = min(recwin, rledbat_win);
4191 				}
4192 			}
4193 			tp->rcv_adv += recwin;
4194 
4195 			tp->snd_una++;          /* SYN is acked */
4196 			if (SEQ_LT(tp->snd_nxt, tp->snd_una)) {
4197 				tp->snd_nxt = tp->snd_una;
4198 			}
4199 
4200 			/*
4201 			 * We have sent more in the SYN than what is being
4202 			 * acked. (e.g., TFO)
4203 			 * We should restart the sending from what the receiver
4204 			 * has acknowledged immediately.
4205 			 */
4206 			if (SEQ_GT(tp->snd_nxt, th->th_ack)) {
4207 				/*
4208 				 * rdar://problem/33214601
4209 				 * There is a middlebox that acks all but one
4210 				 * byte and still drops the data.
4211 				 */
4212 				if (!(tp->t_flagsext & TF_FASTOPEN_FORCE_ENABLE) &&
4213 				    (tp->t_tfo_stats & TFO_S_SYN_DATA_SENT) &&
4214 				    tp->snd_max == th->th_ack + 1 &&
4215 				    tp->snd_max > tp->snd_una + 1) {
4216 					tcp_heuristic_tfo_middlebox(tp);
4217 
4218 					so->so_error = ENODATA;
4219 					soevent(so,
4220 					    (SO_FILT_HINT_LOCKED | SO_FILT_HINT_MP_SUB_ERROR));
4221 
4222 					tp->t_tfo_stats |= TFO_S_ONE_BYTE_PROXY;
4223 				}
4224 
4225 				tp->snd_max = tp->snd_nxt = th->th_ack;
4226 			}
4227 
4228 			/*
4229 			 * If there's data, delay ACK; if there's also a FIN
4230 			 * ACKNOW will be turned on later.
4231 			 */
4232 			TCP_INC_VAR(tp->t_unacksegs, segment_count);
4233 			if (tp->accurate_ecn_on && ip_ecn == IPTOS_ECN_CE) {
4234 				TCP_INC_VAR(tp->t_unacksegs_ce, segment_count);
4235 			}
4236 			if (DELAY_ACK(tp, th) && tlen != 0) {
4237 				if ((tp->t_flags & TF_DELACK) == 0) {
4238 					tp->t_flags |= TF_DELACK;
4239 					tp->t_timer[TCPT_DELACK] = tcp_offset_from_start(tp, tcp_delack);
4240 				}
4241 			} else {
4242 				tp->t_flags |= TF_ACKNOW;
4243 			}
4244 			/*
4245 			 * Received <SYN,ACK> in SYN_SENT[*] state.
4246 			 * Transitions:
4247 			 *	SYN_SENT  --> ESTABLISHED
4248 			 *	SYN_SENT* --> FIN_WAIT_1
4249 			 */
4250 			tp->t_starttime = tcp_now;
4251 			tcp_sbrcv_tstmp_check(tp);
4252 			if (tp->t_flags & TF_NEEDFIN) {
4253 				DTRACE_TCP4(state__change, void, NULL,
4254 				    struct inpcb *, inp,
4255 				    struct tcpcb *, tp, int32_t,
4256 				    TCPS_FIN_WAIT_1);
4257 				TCP_LOG_STATE(tp, TCPS_FIN_WAIT_1);
4258 				tp->t_state = TCPS_FIN_WAIT_1;
4259 				tp->t_flags &= ~TF_NEEDFIN;
4260 				thflags &= ~TH_SYN;
4261 
4262 				TCP_LOG_CONNECTION_SUMMARY(tp);
4263 			} else {
4264 				DTRACE_TCP4(state__change, void, NULL,
4265 				    struct inpcb *, inp, struct tcpcb *,
4266 				    tp, int32_t, TCPS_ESTABLISHED);
4267 				TCP_LOG_STATE(tp, TCPS_ESTABLISHED);
4268 				tp->t_state = TCPS_ESTABLISHED;
4269 				tp->t_timer[TCPT_KEEP] =
4270 				    tcp_offset_from_start(tp,
4271 				    TCP_CONN_KEEPIDLE(tp));
4272 				if (nstat_collect) {
4273 					nstat_route_connect_success(
4274 						inp->inp_route.ro_rt);
4275 				}
4276 				TCP_LOG_CONNECTED(tp, 0);
4277 				/*
4278 				 * The SYN is acknowledged but una is not
4279 				 * updated yet. So pass the value of
4280 				 * ack to compute sndbytes correctly
4281 				 */
4282 				inp_count_sndbytes(inp, th->th_ack);
4283 			}
4284 			tp->t_forced_acks = TCP_FORCED_ACKS_COUNT;
4285 #if MPTCP
4286 			/*
4287 			 * Do not send the connect notification for additional
4288 			 * subflows until ACK for 3-way handshake arrives.
4289 			 */
4290 			if ((!(tp->t_mpflags & TMPF_MPTCP_TRUE)) &&
4291 			    (tp->t_mpflags & TMPF_SENT_JOIN)) {
4292 				isconnected = FALSE;
4293 			} else
4294 #endif /* MPTCP */
4295 			isconnected = TRUE;
4296 
4297 			if ((tp->t_tfo_flags & (TFO_F_COOKIE_REQ | TFO_F_COOKIE_SENT)) ||
4298 			    (tp->t_tfo_stats & TFO_S_SYN_DATA_SENT)) {
4299 				tcp_tfo_synack(tp, &to);
4300 
4301 				if ((tp->t_tfo_stats & TFO_S_SYN_DATA_SENT) &&
4302 				    SEQ_LT(tp->snd_una, th->th_ack)) {
4303 					tp->t_tfo_stats |= TFO_S_SYN_DATA_ACKED;
4304 					tcpstat.tcps_tfo_syn_data_acked++;
4305 #if MPTCP
4306 					if (so->so_flags & SOF_MP_SUBFLOW) {
4307 						so->so_flags1 |= SOF1_TFO_REWIND;
4308 					}
4309 #endif
4310 					tcp_tfo_rcv_probe(tp, tlen);
4311 				}
4312 			}
4313 		} else {
4314 			/*
4315 			 *  Received initial SYN in SYN-SENT[*] state => simul-
4316 			 *  taneous open.
4317 			 *  Do 3-way handshake:
4318 			 *        SYN-SENT -> SYN-RECEIVED
4319 			 *        SYN-SENT* -> SYN-RECEIVED*
4320 			 */
4321 			tp->t_flags |= TF_ACKNOW;
4322 			tp->t_timer[TCPT_REXMT] = 0;
4323 			DTRACE_TCP4(state__change, void, NULL, struct inpcb *, inp,
4324 			    struct tcpcb *, tp, int32_t, TCPS_SYN_RECEIVED);
4325 			TCP_LOG_STATE(tp, TCPS_SYN_RECEIVED);
4326 			tp->t_state = TCPS_SYN_RECEIVED;
4327 
4328 			/*
4329 			 * During simultaneous open, TFO should not be used.
4330 			 * So, we disable it here, to prevent that data gets
4331 			 * sent on the SYN/ACK.
4332 			 */
4333 			tcp_disable_tfo(tp);
4334 		}
4335 
4336 trimthenstep6:
4337 		/*
4338 		 * Advance th->th_seq to correspond to first data byte.
4339 		 * If data, trim to stay within window,
4340 		 * dropping FIN if necessary.
4341 		 */
4342 		th->th_seq++;
4343 		if (tlen > tp->rcv_wnd) {
4344 			todrop = tlen - tp->rcv_wnd;
4345 			m_adj(m, -todrop);
4346 			tlen = tp->rcv_wnd;
4347 			thflags &= ~TH_FIN;
4348 			tcpstat.tcps_rcvpackafterwin++;
4349 			tcpstat.tcps_rcvbyteafterwin += todrop;
4350 		}
4351 		tp->snd_wl1 = th->th_seq - 1;
4352 		tp->rcv_up = th->th_seq;
4353 		/*
4354 		 *  Client side of transaction: already sent SYN and data.
4355 		 *  If the remote host used T/TCP to validate the SYN,
4356 		 *  our data will be ACK'd; if so, enter normal data segment
4357 		 *  processing in the middle of step 5, ack processing.
4358 		 *  Otherwise, goto step 6.
4359 		 */
4360 		if (thflags & TH_ACK) {
4361 			goto process_ACK;
4362 		}
4363 		goto step6;
4364 	/*
4365 	 * If the state is LAST_ACK or CLOSING or TIME_WAIT:
4366 	 *      do normal processing.
4367 	 *
4368 	 * NB: Leftover from RFC1644 T/TCP.  Cases to be reused later.
4369 	 */
4370 	case TCPS_LAST_ACK:
4371 	case TCPS_CLOSING:
4372 	case TCPS_TIME_WAIT:
4373 		break;  /* continue normal processing */
4374 
4375 	/* Received a SYN while connection is already established.
4376 	 * This is a "half open connection and other anomalies" described
4377 	 * in RFC793 page 34, send an ACK so the remote reset the connection
4378 	 * or recovers by adjusting its sequence numbering. Sending an ACK is
4379 	 * in accordance with RFC 5961 Section 4.2
4380 	 *
4381 	 * For Accurate ECN, if we receive a packet with SYN in ESTABLISHED
4382 	 * state, we don't send the handshake encoding.
4383 	 */
4384 	case TCPS_ESTABLISHED:
4385 		if (thflags & TH_SYN && tlen <= 0) {
4386 			/* Drop the packet silently if we have reached the limit */
4387 			if (tcp_is_ack_ratelimited(tp)) {
4388 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN in ESTABLISHED state");
4389 				goto drop;
4390 			} else {
4391 				/* Send challenge ACK */
4392 				tcpstat.tcps_synchallenge++;
4393 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN in ESTABLISHED state");
4394 				goto dropafterack;
4395 			}
4396 		}
4397 		break;
4398 	}
4399 
4400 	/*
4401 	 * States other than LISTEN or SYN_SENT.
4402 	 * First check the RST flag and sequence number since reset segments
4403 	 * are exempt from the timestamp and connection count tests.  This
4404 	 * fixes a bug introduced by the Stevens, vol. 2, p. 960 bugfix
4405 	 * below which allowed reset segments in half the sequence space
4406 	 * to fall though and be processed (which gives forged reset
4407 	 * segments with a random sequence number a 50 percent chance of
4408 	 * killing a connection).
4409 	 * Then check timestamp, if present.
4410 	 * Then check the connection count, if present.
4411 	 * Then check that at least some bytes of segment are within
4412 	 * receive window.  If segment begins before rcv_nxt,
4413 	 * drop leading data (and SYN); if nothing left, just ack.
4414 	 *
4415 	 *
4416 	 * If the RST bit is set, check the sequence number to see
4417 	 * if this is a valid reset segment.
4418 	 * RFC 793 page 37:
4419 	 *   In all states except SYN-SENT, all reset (RST) segments
4420 	 *   are validated by checking their SEQ-fields.  A reset is
4421 	 *   valid if its sequence number is in the window.
4422 	 * Note: this does not take into account delayed ACKs, so
4423 	 *   we should test against last_ack_sent instead of rcv_nxt.
4424 	 *   The sequence number in the reset segment is normally an
4425 	 *   echo of our outgoing acknowlegement numbers, but some hosts
4426 	 *   send a reset with the sequence number at the rightmost edge
4427 	 *   of our receive window, and we have to handle this case.
4428 	 * Note 2: Paul Watson's paper "Slipping in the Window" has shown
4429 	 *   that brute force RST attacks are possible.  To combat this,
4430 	 *   we use a much stricter check while in the ESTABLISHED state,
4431 	 *   only accepting RSTs where the sequence number is equal to
4432 	 *   last_ack_sent.  In all other states (the states in which a
4433 	 *   RST is more likely), the more permissive check is used.
4434 	 * RFC 5961 Section 3.2: if the RST bit is set, sequence # is
4435 	 *    within the receive window and last_ack_sent == seq,
4436 	 *    then reset the connection. Otherwise if the seq doesn't
4437 	 *    match last_ack_sent, TCP must send challenge ACK. Perform
4438 	 *    rate limitation when sending the challenge ACK.
4439 	 * If we have multiple segments in flight, the intial reset
4440 	 * segment sequence numbers will be to the left of last_ack_sent,
4441 	 * but they will eventually catch up.
4442 	 * In any case, it never made sense to trim reset segments to
4443 	 * fit the receive window since RFC 1122 says:
4444 	 *   4.2.2.12  RST Segment: RFC-793 Section 3.4
4445 	 *
4446 	 *    A TCP SHOULD allow a received RST segment to include data.
4447 	 *
4448 	 *    DISCUSSION
4449 	 *         It has been suggested that a RST segment could contain
4450 	 *         ASCII text that encoded and explained the cause of the
4451 	 *         RST.  No standard has yet been established for such
4452 	 *         data.
4453 	 *
4454 	 * If the reset segment passes the sequence number test examine
4455 	 * the state:
4456 	 *    SYN_RECEIVED STATE:
4457 	 *	If passive open, return to LISTEN state.
4458 	 *	If active open, inform user that connection was refused.
4459 	 *    ESTABLISHED, FIN_WAIT_1, FIN_WAIT_2, CLOSE_WAIT STATES:
4460 	 *	Inform user that connection was reset, and close tcb.
4461 	 *    CLOSING, LAST_ACK STATES:
4462 	 *	Close the tcb.
4463 	 *    TIME_WAIT STATE:
4464 	 *	Drop the segment - see Stevens, vol. 2, p. 964 and
4465 	 *      RFC 1337.
4466 	 *
4467 	 *      Radar 4803931: Allows for the case where we ACKed the FIN but
4468 	 *                     there is already a RST in flight from the peer.
4469 	 *                     In that case, accept the RST for non-established
4470 	 *                     state if it's one off from last_ack_sent.
4471 	 *
4472 	 * Also be lenient in closing states to allow last_ack_sent and also
4473 	 * last_ack_sent - 1 in case there is a lot of delay upstream
4474 	 * and it is an older segment that is triggering the RST
4475 	 */
4476 	if (thflags & TH_RST) {
4477 		if ((SEQ_GEQ(th->th_seq, tp->last_ack_sent) &&
4478 		    SEQ_LT(th->th_seq, tp->last_ack_sent + tp->rcv_wnd)) ||
4479 		    ((tp->rcv_wnd == 0 || tp->t_state >= TCPS_CLOSE_WAIT) &&
4480 		    ((tp->last_ack_sent == th->th_seq) ||
4481 		    (tp->last_ack_sent - 1 == th->th_seq)))) {
4482 			if (tp->last_ack_sent == th->th_seq || tp->last_ack_sent - 1 == th->th_seq) {
4483 				switch (tp->t_state) {
4484 				case TCPS_SYN_RECEIVED:
4485 					IF_TCP_STATINC(ifp, rstinsynrcv);
4486 					so->so_error = ECONNREFUSED;
4487 					goto close;
4488 
4489 				case TCPS_ESTABLISHED:
4490 					if ((TCP_ECN_ENABLED(tp) || tp->accurate_ecn_on) &&
4491 					    tp->snd_una == tp->iss + 1 &&
4492 					    SEQ_GT(tp->snd_max, tp->snd_una)) {
4493 						/*
4494 						 * If the first data packet on an
4495 						 * ECN connection receives a RST
4496 						 * increment the heuristic
4497 						 */
4498 						tcp_heuristic_ecn_droprst(tp);
4499 					}
4500 					OS_FALLTHROUGH;
4501 				case TCPS_FIN_WAIT_1:
4502 				case TCPS_CLOSE_WAIT:
4503 				case TCPS_FIN_WAIT_2:
4504 					so->so_error = ECONNRESET;
4505 close:
4506 					soevent(so,
4507 					    (SO_FILT_HINT_LOCKED |
4508 					    SO_FILT_HINT_CONNRESET));
4509 
4510 					tcpstat.tcps_drops++;
4511 					tp = tcp_close(tp);
4512 					break;
4513 
4514 				case TCPS_CLOSING:
4515 				case TCPS_LAST_ACK:
4516 					tp = tcp_close(tp);
4517 					break;
4518 
4519 				case TCPS_TIME_WAIT:
4520 					break;
4521 				}
4522 			} else {
4523 				tcpstat.tcps_badrst++;
4524 				/* Drop if we have reached the ACK limit */
4525 				if (tcp_is_ack_ratelimited(tp)) {
4526 					TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad RST in ESTABLISHED state");
4527 					goto drop;
4528 				} else {
4529 					/* Send challenge ACK */
4530 					tcpstat.tcps_rstchallenge++;
4531 					TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad RST in ESTABLISHED state");
4532 					goto dropafterack;
4533 				}
4534 			}
4535 		}
4536 		drop_reason = DROP_REASON_TCP_BAD_RST;
4537 		goto drop;
4538 	}
4539 
4540 	/*
4541 	 * RFC 1323 PAWS: If we have a timestamp reply on this segment
4542 	 * and it's less than ts_recent, drop it.
4543 	 */
4544 	if ((to.to_flags & TOF_TS) != 0 && tp->ts_recent &&
4545 	    TSTMP_LT(to.to_tsval, tp->ts_recent)) {
4546 		/* Check to see if ts_recent is over 24 days old.  */
4547 		if ((int)(tcp_now - tp->ts_recent_age) > TCP_PAWS_IDLE) {
4548 			/*
4549 			 * Invalidate ts_recent.  If this segment updates
4550 			 * ts_recent, the age will be reset later and ts_recent
4551 			 * will get a valid value.  If it does not, setting
4552 			 * ts_recent to zero will at least satisfy the
4553 			 * requirement that zero be placed in the timestamp
4554 			 * echo reply when ts_recent isn't valid.  The
4555 			 * age isn't reset until we get a valid ts_recent
4556 			 * because we don't want out-of-order segments to be
4557 			 * dropped when ts_recent is old.
4558 			 */
4559 			tp->ts_recent = 0;
4560 		} else {
4561 			tcpstat.tcps_rcvduppack++;
4562 			tcpstat.tcps_rcvdupbyte += tlen;
4563 			tp->t_pawsdrop++;
4564 			tcpstat.tcps_pawsdrop++;
4565 
4566 			if (nstat_collect) {
4567 				nstat_route_rx(tp->t_inpcb->inp_route.ro_rt,
4568 				    1, tlen, NSTAT_RX_FLAG_DUPLICATE);
4569 				INP_ADD_RXSTAT(inp, ifnet_count_type, 1, tlen);
4570 				tp->t_stat.rxduplicatebytes += tlen;
4571 			}
4572 			if (tlen > 0) {
4573 				goto dropafterack;
4574 			}
4575 			drop_reason = DROP_REASON_TCP_PAWS;
4576 			goto drop;
4577 		}
4578 	}
4579 
4580 	/*
4581 	 * In the SYN-RECEIVED state, validate that the packet belongs to
4582 	 * this connection before trimming the data to fit the receive
4583 	 * window.  Check the sequence number versus IRS since we know
4584 	 * the sequence numbers haven't wrapped.  This is a partial fix
4585 	 * for the "LAND" DoS attack.
4586 	 */
4587 	if (tp->t_state == TCPS_SYN_RECEIVED && SEQ_LT(th->th_seq, tp->irs)) {
4588 		IF_TCP_STATINC(ifp, dospacket);
4589 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN_RECEIVED bad SEQ");
4590 		drop_reason = DROP_REASON_TCP_SYN_RECEIVED_BAD_SEQ;
4591 		goto dropwithreset;
4592 	}
4593 
4594 	/*
4595 	 * For SYN received in TIME_WAIT state:
4596 	 * A valid SYN with the intention to create a new connection
4597 	 * should have a higher timestamp than seen for the current
4598 	 * connection, if timestamp is supported. OR if timestamp
4599 	 * is either equal or not supported, sequence number of the
4600 	 * incoming SYN should be greater than the last sequence
4601 	 * number seen on the current connection.
4602 	 */
4603 	if (tp->t_state == TCPS_TIME_WAIT && tlen == 0 &&
4604 	    (thflags & (TH_SYN | TH_ACK | TH_RST)) == TH_SYN) {
4605 		bool higher_seq = SEQ_GT(th->th_seq, tp->rcv_nxt);
4606 		bool newer_time = TSTMP_GT(to.to_tsval, tp->ts_recent) ||
4607 		    (to.to_tsval == tp->ts_recent && higher_seq);
4608 		bool tstmp_received = to.to_flags & TOF_TS;
4609 
4610 		if ((tstmp_received && newer_time) || (!tstmp_received && higher_seq)) {
4611 			iss = tcp_new_isn(tp);
4612 			tp = tcp_close(tp);
4613 			socket_unlock(so, 1);
4614 			goto findpcb;
4615 		}
4616 	}
4617 
4618 	/*
4619 	 * Check if there is old data at the beginning of the window
4620 	 * i.e. the sequence number is before rcv_nxt
4621 	 */
4622 	todrop = tp->rcv_nxt - th->th_seq;
4623 	if (todrop > 0) {
4624 		boolean_t is_syn_set = FALSE;
4625 
4626 		if (thflags & TH_SYN) {
4627 			is_syn_set = TRUE;
4628 			thflags &= ~TH_SYN;
4629 			th->th_seq++;
4630 			if (th->th_urp > 1) {
4631 				th->th_urp--;
4632 			} else {
4633 				thflags &= ~TH_URG;
4634 			}
4635 			todrop--;
4636 		}
4637 		/*
4638 		 * Following if statement from Stevens, vol. 2, p. 960.
4639 		 * The amount of duplicate data is greater than or equal
4640 		 * to the size of the segment - entire segment is duplicate
4641 		 */
4642 		if (todrop > tlen
4643 		    || (todrop == tlen && (thflags & TH_FIN) == 0)) {
4644 			/*
4645 			 * Any valid FIN must be to the left of the window.
4646 			 * At this point the FIN must be a duplicate or out
4647 			 * of sequence; drop it.
4648 			 */
4649 			thflags &= ~TH_FIN;
4650 
4651 			/*
4652 			 * Send an ACK to resynchronize and drop any data.
4653 			 * But keep on processing for RST or ACK.
4654 			 *
4655 			 * If the SYN bit was originally set, then only send
4656 			 * an ACK if we are not rate-limiting this connection.
4657 			 */
4658 			if (is_syn_set) {
4659 				if (!tcp_is_ack_ratelimited(tp)) {
4660 					tcpstat.tcps_synchallenge++;
4661 					tp->t_flags |= TF_ACKNOW;
4662 				}
4663 			} else {
4664 				tp->t_flags |= TF_ACKNOW;
4665 			}
4666 
4667 			if (todrop == 1) {
4668 				/* This could be a keepalive */
4669 				soevent(so, SO_FILT_HINT_LOCKED |
4670 				    SO_FILT_HINT_KEEPALIVE);
4671 			}
4672 			todrop = tlen;
4673 			tcpstat.tcps_rcvduppack++;
4674 			tcpstat.tcps_rcvdupbyte += todrop;
4675 		} else {
4676 			tcpstat.tcps_rcvpartduppack++;
4677 			tcpstat.tcps_rcvpartdupbyte += todrop;
4678 		}
4679 
4680 		if (todrop > 1) {
4681 			/*
4682 			 * Note the duplicate data sequence space so that
4683 			 * it can be reported in DSACK option.
4684 			 */
4685 			tp->t_dsack_lseq = th->th_seq;
4686 			tp->t_dsack_rseq = th->th_seq + todrop;
4687 			tp->t_flags |= TF_ACKNOW;
4688 		}
4689 		if (nstat_collect) {
4690 			nstat_route_rx(tp->t_inpcb->inp_route.ro_rt, 1,
4691 			    todrop, NSTAT_RX_FLAG_DUPLICATE);
4692 			INP_ADD_RXSTAT(inp, ifnet_count_type, 1, todrop);
4693 			tp->t_stat.rxduplicatebytes += todrop;
4694 		}
4695 		drop_hdrlen += todrop;  /* drop from the top afterwards */
4696 		th->th_seq += todrop;
4697 		tlen -= todrop;
4698 		if (th->th_urp > todrop) {
4699 			th->th_urp -= todrop;
4700 		} else {
4701 			thflags &= ~TH_URG;
4702 			th->th_urp = 0;
4703 		}
4704 	}
4705 
4706 	/*
4707 	 * If new data are received on a connection after the user
4708 	 * processes are gone, then RST the other end.
4709 	 * Send also a RST when we received a data segment after we've
4710 	 * sent our FIN when the socket is defunct.
4711 	 * Note that an MPTCP subflow socket would have SS_NOFDREF set
4712 	 * by default. So, if it's an MPTCP-subflow we rather check the
4713 	 * MPTCP-level's socket state for SS_NOFDREF.
4714 	 */
4715 	if (tlen) {
4716 		boolean_t close_it = FALSE;
4717 
4718 		if (!(so->so_flags & SOF_MP_SUBFLOW) && (so->so_state & SS_NOFDREF) &&
4719 		    tp->t_state > TCPS_CLOSE_WAIT) {
4720 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SS_NOFDREF");
4721 			close_it = TRUE;
4722 		}
4723 
4724 		if ((so->so_flags & SOF_MP_SUBFLOW) && (mptetoso(tptomptp(tp)->mpt_mpte)->so_state & SS_NOFDREF) &&
4725 		    tp->t_state > TCPS_CLOSE_WAIT) {
4726 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SOF_MP_SUBFLOW SS_NOFDREF");
4727 			close_it = TRUE;
4728 		}
4729 
4730 		if ((so->so_flags & SOF_DEFUNCT) && tp->t_state > TCPS_FIN_WAIT_1) {
4731 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SOF_DEFUNCT");
4732 			close_it = TRUE;
4733 		}
4734 
4735 		if (so->so_state & SS_CANTRCVMORE) {
4736 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SS_CANTRCVMORE");
4737 			close_it = TRUE;
4738 		}
4739 
4740 		if (close_it) {
4741 			tp = tcp_close(tp);
4742 			tcpstat.tcps_rcvafterclose++;
4743 			IF_TCP_STATINC(ifp, cleanup);
4744 			drop_reason = DROP_REASON_TCP_RECV_AFTER_CLOSE;
4745 			goto dropwithreset;
4746 		}
4747 	}
4748 
4749 	/*
4750 	 * If segment ends after window, drop trailing data
4751 	 * (and PUSH and FIN); if nothing left, just ACK.
4752 	 */
4753 	todrop = (th->th_seq + tlen) - (tp->rcv_nxt + tp->rcv_wnd);
4754 	if (todrop > 0) {
4755 		tcpstat.tcps_rcvpackafterwin++;
4756 		if (todrop >= tlen) {
4757 			tcpstat.tcps_rcvbyteafterwin += tlen;
4758 			/*
4759 			 * If window is closed can only take segments at
4760 			 * window edge, and have to drop data and PUSH from
4761 			 * incoming segments.  Continue processing, but
4762 			 * remember to ack.  Otherwise, drop segment
4763 			 * and ack.
4764 			 */
4765 			if (tp->rcv_wnd == 0 && th->th_seq == tp->rcv_nxt) {
4766 				tp->t_flags |= TF_ACKNOW;
4767 				tcpstat.tcps_rcvwinprobe++;
4768 			} else {
4769 				goto dropafterack;
4770 			}
4771 		} else {
4772 			tcpstat.tcps_rcvbyteafterwin += todrop;
4773 		}
4774 		m_adj(m, -todrop);
4775 		tlen -= todrop;
4776 		thflags &= ~(TH_PUSH | TH_FIN);
4777 	}
4778 
4779 	/*
4780 	 * If last ACK falls within this segment's sequence numbers,
4781 	 * record its timestamp.
4782 	 * NOTE:
4783 	 * 1) That the test incorporates suggestions from the latest
4784 	 *    proposal of the [email protected] list (Braden 1993/04/26).
4785 	 * 2) That updating only on newer timestamps interferes with
4786 	 *    our earlier PAWS tests, so this check should be solely
4787 	 *    predicated on the sequence space of this segment.
4788 	 * 3) That we modify the segment boundary check to be
4789 	 *        Last.ACK.Sent <= SEG.SEQ + SEG.Len
4790 	 *    instead of RFC1323's
4791 	 *        Last.ACK.Sent < SEG.SEQ + SEG.Len,
4792 	 *    This modified check allows us to overcome RFC1323's
4793 	 *    limitations as described in Stevens TCP/IP Illustrated
4794 	 *    Vol. 2 p.869. In such cases, we can still calculate the
4795 	 *    RTT correctly when RCV.NXT == Last.ACK.Sent.
4796 	 */
4797 	if ((to.to_flags & TOF_TS) != 0 &&
4798 	    SEQ_LEQ(th->th_seq, tp->last_ack_sent) &&
4799 	    SEQ_LEQ(tp->last_ack_sent, th->th_seq + tlen +
4800 	    ((thflags & (TH_SYN | TH_FIN)) != 0))) {
4801 		tp->ts_recent_age = tcp_now;
4802 		tp->ts_recent = to.to_tsval;
4803 	}
4804 
4805 	/*
4806 	 * Stevens: If a SYN is in the window, then this is an
4807 	 * error and we send an RST and drop the connection.
4808 	 *
4809 	 * RFC 5961 Section 4.2
4810 	 * Send challenge ACK for any SYN in synchronized state
4811 	 * Perform rate limitation in doing so.
4812 	 */
4813 	if (thflags & TH_SYN) {
4814 		if (!tcp_syn_data_valid(tp, th, tlen)) {
4815 			tcpstat.tcps_badsyn++;
4816 			/* Drop if we have reached ACK limit */
4817 			if (tcp_is_ack_ratelimited(tp)) {
4818 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN data invalid");
4819 				drop_reason = DROP_REASON_TCP_SYN_DATA_INVALID;
4820 				goto drop;
4821 			} else {
4822 				/* Send challenge ACK */
4823 				tcpstat.tcps_synchallenge++;
4824 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "SYN data invalid");
4825 				drop_reason = DROP_REASON_TCP_SYN_DATA_INVALID;
4826 				goto dropafterack;
4827 			}
4828 		} else {
4829 			/*
4830 			 * Received SYN (/ACK) with data.
4831 			 * Move sequence number along to process the data.
4832 			 */
4833 			th->th_seq++;
4834 			thflags &= ~TH_SYN;
4835 		}
4836 	}
4837 
4838 	/*
4839 	 * If the ACK bit is off:  if in SYN-RECEIVED state or SENDSYN
4840 	 * flag is on (half-synchronized state), then queue data for
4841 	 * later processing; else drop segment and return.
4842 	 */
4843 	if ((thflags & TH_ACK) == 0) {
4844 		if (tp->t_state == TCPS_SYN_RECEIVED) {
4845 			if ((TFO_ENABLED(tp))) {
4846 				/*
4847 				 * So, we received a valid segment while in
4848 				 * SYN-RECEIVED.
4849 				 * As this cannot be an RST (see that if a bit
4850 				 * higher), and it does not have the ACK-flag
4851 				 * set, we want to retransmit the SYN/ACK.
4852 				 * Thus, we have to reset snd_nxt to snd_una to
4853 				 * trigger the going back to sending of the
4854 				 * SYN/ACK. This is more consistent with the
4855 				 * behavior of tcp_output(), which expects
4856 				 * to send the segment that is pointed to by
4857 				 * snd_nxt.
4858 				 */
4859 				tp->snd_nxt = tp->snd_una;
4860 
4861 				/*
4862 				 * We need to make absolutely sure that we are
4863 				 * going to reply upon a duplicate SYN-segment.
4864 				 */
4865 				if (th->th_flags & TH_SYN) {
4866 					needoutput = 1;
4867 				}
4868 			}
4869 			/* Process this same as newly received Accurate ECN SYN */
4870 			int ace_flags = ((th->th_x2 << 8) | thflags) & TH_ACE;
4871 			tcp_input_process_accecn_syn(tp, ace_flags, ip_ecn);
4872 
4873 			goto step6;
4874 		} else if (tp->t_flags & TF_ACKNOW) {
4875 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad ACK");
4876 			drop_reason = DROP_REASON_TCP_BAD_ACK;
4877 			goto dropafterack;
4878 		} else {
4879 			TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "bad ACK");
4880 			drop_reason = DROP_REASON_TCP_BAD_ACK;
4881 			goto drop;
4882 		}
4883 	}
4884 
4885 	/*
4886 	 * Ack processing.
4887 	 */
4888 
4889 	switch (tp->t_state) {
4890 	/*
4891 	 * In SYN_RECEIVED state, the ack ACKs our SYN, so enter
4892 	 * ESTABLISHED state and continue processing.
4893 	 * The ACK was checked above.
4894 	 */
4895 	case TCPS_SYN_RECEIVED:
4896 
4897 		tcpstat.tcps_connects++;
4898 
4899 		/* Do window scaling? */
4900 		if (TCP_WINDOW_SCALE_ENABLED(tp)) {
4901 			tp->snd_scale = tp->requested_s_scale;
4902 			tp->rcv_scale = tp->request_r_scale;
4903 			tp->snd_wnd = th->th_win << tp->snd_scale;
4904 			tp->max_sndwnd = tp->snd_wnd;
4905 			tiwin = tp->snd_wnd;
4906 		}
4907 		/*
4908 		 * Make transitions:
4909 		 *      SYN-RECEIVED  -> ESTABLISHED
4910 		 *      SYN-RECEIVED* -> FIN-WAIT-1
4911 		 */
4912 		tp->t_starttime = tcp_now;
4913 		tcp_sbrcv_tstmp_check(tp);
4914 		if (tp->t_flags & TF_NEEDFIN) {
4915 			DTRACE_TCP4(state__change, void, NULL,
4916 			    struct inpcb *, inp,
4917 			    struct tcpcb *, tp, int32_t, TCPS_FIN_WAIT_1);
4918 			TCP_LOG_STATE(tp, TCPS_FIN_WAIT_1);
4919 			tp->t_state = TCPS_FIN_WAIT_1;
4920 			tp->t_flags &= ~TF_NEEDFIN;
4921 
4922 			TCP_LOG_CONNECTION_SUMMARY(tp);
4923 		} else {
4924 			DTRACE_TCP4(state__change, void, NULL,
4925 			    struct inpcb *, inp,
4926 			    struct tcpcb *, tp, int32_t, TCPS_ESTABLISHED);
4927 			TCP_LOG_STATE(tp, TCPS_ESTABLISHED);
4928 			tp->t_state = TCPS_ESTABLISHED;
4929 			tp->t_timer[TCPT_KEEP] = tcp_offset_from_start(tp,
4930 			    TCP_CONN_KEEPIDLE(tp));
4931 			if (nstat_collect) {
4932 				nstat_route_connect_success(
4933 					tp->t_inpcb->inp_route.ro_rt);
4934 			}
4935 			TCP_LOG_CONNECTED(tp, 0);
4936 			/*
4937 			 * The SYN is acknowledged but una is not updated
4938 			 * yet. So pass the value of ack to compute
4939 			 * sndbytes correctly
4940 			 */
4941 			inp_count_sndbytes(inp, th->th_ack);
4942 		}
4943 		tp->t_forced_acks = TCP_FORCED_ACKS_COUNT;
4944 
4945 		VERIFY(LIST_EMPTY(&tp->t_segq));
4946 		tp->snd_wl1 = th->th_seq - 1;
4947 
4948 		/*
4949 		 * AccECN server in SYN-RCVD state received an ACK with
4950 		 * SYN=0, process handshake encoding present in the ACK for SYN-ACK
4951 		 * and update receive side counters.
4952 		 *
4953 		 * When SYN cookies are used, process last ACK only if classic ECN
4954 		 * wasn't negotiated.
4955 		 */
4956 		if ((tp->accurate_ecn_on || (tp->l4s_enabled && !TCP_ECN_ENABLED(tp) && syn_cookie_processed))
4957 		    && (thflags & (TH_SYN | TH_ACK)) == TH_ACK) {
4958 			uint16_t aceflags = tcp_get_flags(th);
4959 			aceflags &= TH_ACE;
4960 			tcp_input_process_accecn_last_ack(tp, &to, (uint32_t)tlen, aceflags, syn_cookie_processed);
4961 			/* Increment receive side counters based on IP-ECN */
4962 			tcp_input_ip_ecn(tp, inp, (uint32_t)tlen, (uint32_t)segment_count, ip_ecn);
4963 		}
4964 
4965 #if MPTCP
4966 		/*
4967 		 * Do not send the connect notification for additional subflows
4968 		 * until ACK for 3-way handshake arrives.
4969 		 */
4970 		if ((!(tp->t_mpflags & TMPF_MPTCP_TRUE)) &&
4971 		    (tp->t_mpflags & TMPF_SENT_JOIN)) {
4972 			isconnected = FALSE;
4973 		} else
4974 #endif /* MPTCP */
4975 		isconnected = TRUE;
4976 		if ((tp->t_tfo_flags & TFO_F_COOKIE_VALID)) {
4977 			/* Done this when receiving the SYN */
4978 			isconnected = FALSE;
4979 
4980 			OSDecrementAtomic(&tcp_tfo_halfcnt);
4981 
4982 			/* Panic if something has gone terribly wrong. */
4983 			VERIFY(tcp_tfo_halfcnt >= 0);
4984 
4985 			tp->t_tfo_flags &= ~TFO_F_COOKIE_VALID;
4986 		}
4987 
4988 		/*
4989 		 * In case there is data in the send-queue (e.g., TFO is being
4990 		 * used, or connectx+data has been done), then if we would
4991 		 * "FALLTHROUGH", we would handle this ACK as if data has been
4992 		 * acknowledged. But, we have to prevent this. And this
4993 		 * can be prevented by increasing snd_una by 1, so that the
4994 		 * SYN is not considered as data (snd_una++ is actually also
4995 		 * done in SYN_SENT-state as part of the regular TCP stack).
4996 		 *
4997 		 * In case there is data on this ack as well, the data will be
4998 		 * handled by the label "dodata" right after step6.
4999 		 */
5000 		if (so->so_snd.sb_cc) {
5001 			tp->snd_una++;  /* SYN is acked */
5002 			if (SEQ_LT(tp->snd_nxt, tp->snd_una)) {
5003 				tp->snd_nxt = tp->snd_una;
5004 			}
5005 
5006 			/*
5007 			 * No duplicate-ACK handling is needed. So, we
5008 			 * directly advance to processing the ACK (aka,
5009 			 * updating the RTT estimation,...)
5010 			 *
5011 			 * But, we first need to handle eventual SACKs,
5012 			 * because TFO will start sending data with the
5013 			 * SYN/ACK, so it might be that the client
5014 			 * includes a SACK with its ACK.
5015 			 */
5016 			if (SACK_ENABLED(tp) &&
5017 			    (to.to_nsacks > 0 || !TAILQ_EMPTY(&tp->snd_holes))) {
5018 				tcp_sack_doack(tp, &to, th, &sack_bytes_acked, &highest_sacked_seq);
5019 			}
5020 
5021 			goto process_ACK;
5022 		}
5023 
5024 		OS_FALLTHROUGH;
5025 
5026 	/*
5027 	 * In ESTABLISHED state: drop duplicate ACKs; ACK out of range
5028 	 * ACKs.  If the ack is in the range
5029 	 *	tp->snd_una < th->th_ack <= tp->snd_max
5030 	 * then advance tp->snd_una to th->th_ack and drop
5031 	 * data from the retransmission queue.  If this ACK reflects
5032 	 * more up to date window information we update our window information.
5033 	 */
5034 	case TCPS_ESTABLISHED:
5035 	case TCPS_FIN_WAIT_1:
5036 	case TCPS_FIN_WAIT_2:
5037 	case TCPS_CLOSE_WAIT:
5038 	case TCPS_CLOSING:
5039 	case TCPS_LAST_ACK:
5040 	case TCPS_TIME_WAIT:
5041 	{
5042 		/*
5043 		 * TODO: The MAX(..., 100) is a temporary workaround for redirection issues with certain captive portals
5044 		 * in the wild.
5045 		 * After a successful TCP handshake, these portals send an incorrect ACK number in the data packet containing
5046 		 * the HTTP redirect response, that is 19 bytes behind the ISS. The security mitigation below caused these
5047 		 * packets to be dropped. Making the minimum byte_limit 100 works around this issue.
5048 		 * This workaround will be removed once the operators of these portals patch the issue on their end.
5049 		 */
5050 		const uint64_t byte_limit = MAX(MIN(tp->t_stat.bytes_acked, tp->max_sndwnd), 100);
5051 
5052 		if (SEQ_GT(th->th_ack, tp->snd_max)) {
5053 			tcpstat.tcps_rcvacktoomuch++;
5054 			if (tcp_is_ack_ratelimited(tp)) {
5055 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "rfc5961 rcvacktoomuch");
5056 				drop_reason = DROP_REASON_TCP_ACK_TOOMUCH;
5057 				goto drop;
5058 			} else {
5059 				drop_reason = DROP_REASON_TCP_ACK_TOOMUCH;
5060 				goto dropafterack;
5061 			}
5062 		}
5063 		if (SEQ_LT(th->th_ack, tp->snd_una - byte_limit)) {
5064 			if (tcp_is_ack_ratelimited(tp)) {
5065 				TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "rfc5961 bad ACK");
5066 				drop_reason = DROP_REASON_TCP_OLD_ACK;
5067 				goto drop;
5068 			} else {
5069 				drop_reason = DROP_REASON_TCP_OLD_ACK;
5070 				goto dropafterack;
5071 			}
5072 		}
5073 		if (SACK_ENABLED(tp) && to.to_nsacks > 0) {
5074 			recvd_dsack = tcp_sack_process_dsack(tp, &to, th, &dsack_tlp);
5075 			if (TCP_RACK_ENABLED(tp)) {
5076 				/* If DSACK was received (not due to TLP), then increase the reordering window */
5077 				if (recvd_dsack && !dsack_tlp) {
5078 					tp->rack.dsack_round_seen = 1;
5079 				}
5080 				tcp_rack_update_reordering_window(tp, highest_sacked_seq);
5081 			}
5082 			/*
5083 			 * If DSACK is received and this packet has no
5084 			 * other SACK information, it can be dropped.
5085 			 * We do not want to treat it as a duplicate ack.
5086 			 */
5087 			if (recvd_dsack &&
5088 			    SEQ_LEQ(th->th_ack, tp->snd_una) &&
5089 			    to.to_nsacks == 0) {
5090 				tcp_bad_rexmt_check(tp, th, &to);
5091 				goto drop;
5092 			}
5093 		}
5094 
5095 		if (SACK_ENABLED(tp) &&
5096 		    (to.to_nsacks > 0 || !TAILQ_EMPTY(&tp->snd_holes))) {
5097 			tcp_sack_doack(tp, &to, th, &sack_bytes_acked, &highest_sacked_seq);
5098 		}
5099 
5100 #if MPTCP
5101 		if (tp->t_mpuna && SEQ_GEQ(th->th_ack, tp->t_mpuna)) {
5102 			if (tp->t_mpflags & TMPF_PREESTABLISHED) {
5103 				/* MP TCP establishment succeeded */
5104 				tp->t_mpuna = 0;
5105 				if (tp->t_mpflags & TMPF_JOINED_FLOW) {
5106 					if (tp->t_mpflags & TMPF_SENT_JOIN) {
5107 						tp->t_mpflags &=
5108 						    ~TMPF_PREESTABLISHED;
5109 						tp->t_mpflags |=
5110 						    TMPF_MPTCP_TRUE;
5111 
5112 						tp->t_timer[TCPT_JACK_RXMT] = 0;
5113 						tp->t_mprxtshift = 0;
5114 						isconnected = TRUE;
5115 					} else {
5116 						isconnected = FALSE;
5117 					}
5118 				} else {
5119 					isconnected = TRUE;
5120 				}
5121 			}
5122 		}
5123 #endif /* MPTCP */
5124 
5125 		tcp_tfo_rcv_ack(tp, th);
5126 
5127 		/*
5128 		 * If we have outstanding data (other than
5129 		 * a window probe), this is a completely
5130 		 * duplicate ack and the ack is the biggest we've seen.
5131 		 *
5132 		 * Need to accommodate a change in window on duplicate acks
5133 		 * to allow operating systems that update window during
5134 		 * recovery with SACK
5135 		 */
5136 		if (SEQ_LEQ(th->th_ack, tp->snd_una)) {
5137 			/*
5138 			 * Update snd_fack when new SACK blocks are received
5139 			 * without advancing the ACK
5140 			 */
5141 			if (TCP_RACK_ENABLED(tp) && sack_bytes_acked > 0 &&
5142 			    SEQ_LT(tp->snd_fack, highest_sacked_seq)) {
5143 				tp->snd_fack = highest_sacked_seq;
5144 			}
5145 
5146 			/*
5147 			 * Process AccECN feedback here for control packets
5148 			 * that don't have s/acked bytes
5149 			 */
5150 			if (tp->accurate_ecn_on && (tp->ecn_flags & TE_SENDIPECT) &&
5151 			    (sack_bytes_acked == 0)) {
5152 				tp->total_ect_packets_acked += 1;
5153 
5154 				bool newly_acked_time = false;
5155 				if (acked == 0 && (to.to_flags & TOF_TS) != 0 && to.to_tsecr != 0 &&
5156 				    TSTMP_GT(to.to_tsecr, tp->t_last_ack_tsecr)) {
5157 					newly_acked_time = true;
5158 				}
5159 				if (newly_acked_time) {
5160 					tcp_process_accecn(tp, &to, th, 1, ace);
5161 				}
5162 			}
5163 
5164 			if (tlen == 0 && (tiwin == tp->snd_wnd ||
5165 			    (to.to_nsacks > 0 && sack_bytes_acked > 0))) {
5166 				uint32_t old_dupacks = 0;
5167 				/*
5168 				 * If both ends send FIN at the same time,
5169 				 * then the ack will be a duplicate ack
5170 				 * but we have to process the FIN. Check
5171 				 * for this condition and process the FIN
5172 				 * instead of the dupack
5173 				 */
5174 				if ((thflags & TH_FIN) &&
5175 				    !TCPS_HAVERCVDFIN(tp->t_state)) {
5176 					break;
5177 				}
5178 process_dupack:
5179 				old_dupacks = tp->t_dupacks;
5180 #if MPTCP
5181 				/*
5182 				 * MPTCP options that are ignored must
5183 				 * not be treated as duplicate ACKs.
5184 				 */
5185 				if (to.to_flags & TOF_MPTCP) {
5186 					goto drop;
5187 				}
5188 
5189 				if ((isconnected) && (tp->t_mpflags & TMPF_JOINED_FLOW)) {
5190 					break;
5191 				}
5192 #endif /* MPTCP */
5193 				/*
5194 				 * If a duplicate acknowledgement was seen
5195 				 * after ECN, it indicates packet loss in
5196 				 * addition to ECN. Reset INRECOVERY flag
5197 				 * so that we can process partial acks
5198 				 * correctly
5199 				 */
5200 				if (tp->ecn_flags & TE_INRECOVERY) {
5201 					tp->ecn_flags &= ~TE_INRECOVERY;
5202 				}
5203 
5204 				tcpstat.tcps_rcvdupack++;
5205 				if (SACK_ENABLED(tp)) {
5206 					tp->t_dupacks += max(1, sack_bytes_acked / tp->t_maxseg);
5207 				} else {
5208 					++tp->t_dupacks;
5209 				}
5210 
5211 				if (!TCP_RACK_ENABLED(tp)) {
5212 					tp->sackhint.sack_bytes_acked += sack_bytes_acked;
5213 				}
5214 
5215 				if (sack_bytes_acked > 0 && tp->accurate_ecn_on &&
5216 				    (tp->ecn_flags & TE_SENDIPECT) && tp->t_state == TCPS_ESTABLISHED) {
5217 					uint32_t pkts_sacked = tcp_packets_this_ack(tp, sack_bytes_acked);
5218 					tp->total_ect_packets_acked += pkts_sacked;
5219 					tcp_process_accecn(tp, &to, th, pkts_sacked, ace);
5220 				}
5221 				/*
5222 				 * Check if we need to reset the limit on
5223 				 * early retransmit
5224 				 */
5225 				if (tp->t_early_rexmt_count > 0 &&
5226 				    TSTMP_GEQ(tcp_now,
5227 				    (tp->t_early_rexmt_win +
5228 				    TCP_EARLY_REXMT_WIN))) {
5229 					tp->t_early_rexmt_count = 0;
5230 				}
5231 
5232 				/*
5233 				 * Is early retransmit needed? We check for
5234 				 * this when the connection is waiting for
5235 				 * duplicate acks to enter fast recovery.
5236 				 */
5237 				if (!IN_FASTRECOVERY(tp)) {
5238 					tcp_early_rexmt_check(tp, th);
5239 				}
5240 
5241 				/*
5242 				 * Detect loss based on RACK during dupACK processing to mark lost
5243 				 * segments before tcp_output is called for retransmission
5244 				 */
5245 				if (TCP_RACK_ENABLED(tp) && tcp_rack_detect_loss_and_arm_timer(tp, tp->t_dupacks)) {
5246 					rack_loss_detected = true;
5247 				}
5248 				/*
5249 				 * Below are four different processing of (dup) ACKs,
5250 				 * 1. Not a valid dup ACK
5251 				 * 2. More than 3 dup ACKs but already in Fast Recovery
5252 				 * 3. Entered Fast Recovery for the first time
5253 				 * 4. Received less than 3 dup ACKs, evaluate if we can do Limited Transmit
5254 				 */
5255 				if (tp->t_timer[TCPT_REXMT] == 0 ||
5256 				    (th->th_ack != tp->snd_una && sack_bytes_acked == 0)) {
5257 					/*
5258 					 * No outstanding data and ACK is not a duplicate as it is
5259 					 * less than snd_una but not equal to it.
5260 					 */
5261 					tp->t_dupacks = 0;
5262 					tp->t_rexmtthresh = tcprexmtthresh;
5263 				} else if ((!TCP_RACK_ENABLED(tp) && tp->t_dupacks > tp->t_rexmtthresh && old_dupacks >= tp->t_rexmtthresh) ||
5264 				    IN_FASTRECOVERY(tp)) {
5265 					/*
5266 					 * We are already in Fast Recovery and t_dupacks is greater than retransmit threshold.
5267 					 * Increase the cwnd by 1MSS if allowed
5268 					 */
5269 
5270 					/*
5271 					 * If this connection was seeing packet
5272 					 * reordering, then recovery might be
5273 					 * delayed to disambiguate between
5274 					 * reordering and loss
5275 					 */
5276 					if (SACK_ENABLED(tp) && !IN_FASTRECOVERY(tp) &&
5277 					    (tp->t_flagsext &
5278 					    (TF_PKTS_REORDERED | TF_DELAY_RECOVERY)) ==
5279 					    (TF_PKTS_REORDERED | TF_DELAY_RECOVERY)) {
5280 						/*
5281 						 * Since the SACK information is already
5282 						 * updated, this ACK will be dropped
5283 						 */
5284 						break;
5285 					}
5286 
5287 					/*
5288 					 * Dup acks mean that packets have left the
5289 					 * network (they're now cached at the receiver)
5290 					 * so bump cwnd by the amount in the receiver
5291 					 * to keep a constant cwnd packets in the
5292 					 * network.
5293 					 */
5294 					if (SACK_ENABLED(tp) && IN_FASTRECOVERY(tp)) {
5295 						int awnd;
5296 
5297 						/*
5298 						 * Compute the amount of data in flight first.
5299 						 * We can inject new data into the pipe iff
5300 						 * we have less than snd_ssthres worth of data in
5301 						 * flight.
5302 						 */
5303 						awnd = (tp->snd_nxt - tp->snd_fack) + tp->sackhint.sack_bytes_rexmit;
5304 						if (awnd < tp->snd_ssthresh) {
5305 							tp->snd_cwnd += tp->t_maxseg;
5306 							if (tp->snd_cwnd > tp->snd_ssthresh) {
5307 								tp->snd_cwnd = tp->snd_ssthresh;
5308 							}
5309 						}
5310 					} else {
5311 						tp->snd_cwnd += tp->t_maxseg;
5312 					}
5313 
5314 					/* Process any window updates */
5315 					if (tiwin > tp->snd_wnd) {
5316 						tcp_update_window(tp, thflags,
5317 						    th, tiwin, tlen);
5318 					}
5319 					tcp_ccdbg_trace(tp, th,
5320 					    TCP_CC_IN_FASTRECOVERY);
5321 
5322 					(void) tcp_output(tp);
5323 
5324 					goto drop;
5325 				} else if (rack_loss_detected || (!TCP_RACK_ENABLED(tp) && tp->t_dupacks >= tp->t_rexmtthresh)) {
5326 					/*
5327 					 * Currently not in Fast Recovery and received 3 or more dupacks.
5328 					 * Enter Fast Recovery, retransmit segment and set
5329 					 * cwnd to sshthresh if SACK is enabled.
5330 					 */
5331 					tcp_seq onxt = tp->snd_nxt;
5332 
5333 					/*
5334 					 * If we're doing sack, check to
5335 					 * see if we're already in sack
5336 					 * recovery. If we're not doing sack,
5337 					 * check to see if we're in newreno
5338 					 * recovery.
5339 					 */
5340 					if (SACK_ENABLED(tp)) {
5341 						if (IN_FASTRECOVERY(tp)) {
5342 							tp->t_dupacks = 0;
5343 							break;
5344 						} else if (tp->t_flagsext & TF_DELAY_RECOVERY) {
5345 							break;
5346 						}
5347 					} else {
5348 						if (SEQ_LEQ(th->th_ack, tp->snd_recover)) {
5349 							tp->t_dupacks = 0;
5350 							break;
5351 						}
5352 					}
5353 					if (tp->t_flags & TF_SENTFIN) {
5354 						tp->snd_recover = tp->snd_max - 1;
5355 					} else {
5356 						tp->snd_recover = tp->snd_max;
5357 					}
5358 					tp->t_timer[TCPT_PTO] = 0;
5359 					tp->t_rtttime = 0;
5360 
5361 					/*
5362 					 * If the connection has seen pkt
5363 					 * reordering, delay recovery until
5364 					 * it is clear that the packet
5365 					 * was lost.
5366 					 */
5367 					if (SACK_ENABLED(tp) &&
5368 					    (tp->t_flagsext &
5369 					    (TF_PKTS_REORDERED | TF_DELAY_RECOVERY))
5370 					    == TF_PKTS_REORDERED &&
5371 					    !IN_FASTRECOVERY(tp) &&
5372 					    tp->t_reorderwin > 0 &&
5373 					    (tp->t_state == TCPS_ESTABLISHED ||
5374 					    tp->t_state == TCPS_FIN_WAIT_1)) {
5375 						tp->t_timer[TCPT_DELAYFR] =
5376 						    tcp_offset_from_start(tp,
5377 						    tp->t_reorderwin);
5378 						tp->t_flagsext |= TF_DELAY_RECOVERY;
5379 						tcpstat.tcps_delay_recovery++;
5380 						tcp_ccdbg_trace(tp, th,
5381 						    TCP_CC_DELAY_FASTRECOVERY);
5382 						break;
5383 					}
5384 
5385 					tcp_rexmt_save_state(tp);
5386 					/*
5387 					 * If the current tcp cc module has
5388 					 * defined a hook for tasks to run
5389 					 * before entering FR, call it
5390 					 */
5391 					if (CC_ALGO(tp)->pre_fr != NULL) {
5392 						CC_ALGO(tp)->pre_fr(tp);
5393 					}
5394 					ENTER_FASTRECOVERY(tp);
5395 					tp->t_timer[TCPT_REXMT] = 0;
5396 					if (!tp->accurate_ecn_on && TCP_ECN_ENABLED(tp)) {
5397 						tp->ecn_flags |= TE_SENDCWR;
5398 					}
5399 
5400 					if (SACK_ENABLED(tp)) {
5401 						if (TCP_RACK_ENABLED(tp)) {
5402 							tcpstat.tcps_rack_recovery_episode++;
5403 							tp->t_rack_recovery_episode++;
5404 						} else {
5405 							tcpstat.tcps_sack_recovery_episode++;
5406 							tp->t_sack_recovery_episode++;
5407 						}
5408 
5409 						tp->snd_cwnd = tp->snd_ssthresh;
5410 						tp->t_flagsext &= ~TF_CWND_NONVALIDATED;
5411 
5412 						/* Process any window updates */
5413 						if (tiwin > tp->snd_wnd) {
5414 							tcp_update_window(tp, thflags, th, tiwin, tlen);
5415 						}
5416 
5417 						tcp_ccdbg_trace(tp, th, TCP_CC_ENTER_FASTRECOVERY);
5418 						(void) tcp_output(tp);
5419 						goto drop;
5420 					}
5421 					tp->snd_nxt = th->th_ack;
5422 					tp->snd_cwnd = tp->t_maxseg;
5423 
5424 					/* cwnd is validated after pre_fr() */
5425 					tp->t_flagsext &= ~TF_CWND_NONVALIDATED;
5426 
5427 					/* Process any window updates */
5428 					if (tiwin > tp->snd_wnd) {
5429 						tcp_update_window(tp, thflags, th, tiwin, tlen);
5430 					}
5431 
5432 					(void) tcp_output(tp);
5433 					if (tp->t_flagsext & TF_CWND_NONVALIDATED) {
5434 						tcp_cc_adjust_nonvalidated_cwnd(tp);
5435 					} else {
5436 						tp->snd_cwnd = tp->snd_ssthresh + tp->t_maxseg * tp->t_dupacks;
5437 					}
5438 					if (SEQ_GT(onxt, tp->snd_nxt)) {
5439 						tp->snd_nxt = onxt;
5440 					}
5441 
5442 					tcp_ccdbg_trace(tp, th, TCP_CC_ENTER_FASTRECOVERY);
5443 					goto drop;
5444 				} else if (ALLOW_LIMITED_TRANSMIT(tp) &&
5445 				    (!(SACK_ENABLED(tp)) || sack_bytes_acked > 0) &&
5446 				    (so->so_snd.sb_cc - (tp->snd_max - tp->snd_una)) > 0) {
5447 					u_int32_t incr = (tp->t_maxseg * tp->t_dupacks);
5448 
5449 					/* Use Limited Transmit algorithm on the first two
5450 					 * duplicate acks when there is new data to transmit
5451 					 */
5452 					tp->snd_cwnd += incr;
5453 					tcpstat.tcps_limited_txt++;
5454 					(void) tcp_output(tp);
5455 
5456 					tcp_ccdbg_trace(tp, th, TCP_CC_LIMITED_TRANSMIT);
5457 
5458 					/* Reset snd_cwnd back to normal */
5459 					tp->snd_cwnd -= incr;
5460 				}
5461 			}
5462 			break;
5463 		}
5464 		/*
5465 		 * If the congestion window was inflated to account
5466 		 * for the other side's cached packets, retract it.
5467 		 */
5468 		if (IN_FASTRECOVERY(tp)) {
5469 			if (SEQ_LT(th->th_ack, tp->snd_recover)) {
5470 				/*
5471 				 * If we received an ECE and entered
5472 				 * recovery, the subsequent ACKs should
5473 				 * not be treated as partial acks.
5474 				 */
5475 				if (tp->ecn_flags & TE_INRECOVERY) {
5476 					goto process_ACK;
5477 				}
5478 				/* RACK doesn't require inflating cwnd */
5479 				if (!TCP_RACK_ENABLED(tp)) {
5480 					if (SACK_ENABLED(tp)) {
5481 						tcp_sack_partialack(tp, th);
5482 					} else {
5483 						tcp_newreno_partial_ack(tp, th);
5484 					}
5485 					tcp_ccdbg_trace(tp, th, TCP_CC_PARTIAL_ACK);
5486 				}
5487 			} else {
5488 				exiting_fr = 1;
5489 				EXIT_FASTRECOVERY(tp);
5490 				if (CC_ALGO(tp)->post_fr != NULL) {
5491 					CC_ALGO(tp)->post_fr(tp, th);
5492 				}
5493 
5494 				if (TCP_RACK_ENABLED(tp)) {
5495 					tcp_rack_update_reordering_win_persist(tp);
5496 				}
5497 
5498 				tp->t_pipeack = 0;
5499 				tcp_clear_pipeack_state(tp);
5500 				tcp_ccdbg_trace(tp, th,
5501 				    TCP_CC_EXIT_FASTRECOVERY);
5502 			}
5503 		} else if ((tp->t_flagsext &
5504 		    (TF_PKTS_REORDERED | TF_DELAY_RECOVERY))
5505 		    == (TF_PKTS_REORDERED | TF_DELAY_RECOVERY)) {
5506 			/*
5507 			 * If the ack acknowledges upto snd_recover or if
5508 			 * it acknowledges all the snd holes, exit
5509 			 * recovery and cancel the timer. Otherwise,
5510 			 * this is a partial ack. Wait for recovery timer
5511 			 * to enter recovery. The snd_holes have already
5512 			 * been updated.
5513 			 */
5514 			if (SEQ_GEQ(th->th_ack, tp->snd_recover) ||
5515 			    TAILQ_EMPTY(&tp->snd_holes)) {
5516 				tp->t_timer[TCPT_DELAYFR] = 0;
5517 				tp->t_flagsext &= ~TF_DELAY_RECOVERY;
5518 				EXIT_FASTRECOVERY(tp);
5519 				tcp_ccdbg_trace(tp, th,
5520 				    TCP_CC_EXIT_FASTRECOVERY);
5521 			}
5522 		} else {
5523 			/*
5524 			 * We were not in fast recovery. Reset the
5525 			 * duplicate ack counter.
5526 			 */
5527 			tp->t_dupacks = 0;
5528 			tp->t_rexmtthresh = tcprexmtthresh;
5529 		}
5530 
5531 process_ACK:
5532 		VERIFY(SEQ_GEQ(th->th_ack, tp->snd_una));
5533 		acked = BYTES_ACKED(th, tp);
5534 		tcpstat.tcps_rcvackpack++;
5535 		tcpstat.tcps_rcvackbyte += acked;
5536 
5537 		/*
5538 		 * If the last packet was a retransmit, make sure
5539 		 * it was not spurious.
5540 		 *
5541 		 * This will also take care of congestion window
5542 		 * adjustment if a last packet was recovered due to a
5543 		 * tail loss probe.
5544 		 */
5545 		tcp_bad_rexmt_check(tp, th, &to);
5546 
5547 		/* Recalculate the RTT */
5548 		tcp_compute_rtt(tp, &to, th);
5549 
5550 		/*
5551 		 * If all outstanding data is acked, stop retransmit
5552 		 * timer and remember to restart (more output or persist).
5553 		 * If there is more data to be acked, restart retransmit
5554 		 * timer, using current (possibly backed-off) value.
5555 		 */
5556 		TCP_RESET_REXMT_STATE(tp);
5557 		TCPT_RANGESET(tp->t_rxtcur, TCP_REXMTVAL(tp),
5558 		    tp->t_rttmin, TCPTV_REXMTMAX,
5559 		    TCP_ADD_REXMTSLOP(tp));
5560 		if (th->th_ack == tp->snd_max) {
5561 			tp->t_timer[TCPT_REXMT] = 0;
5562 			tp->t_timer[TCPT_PTO] = 0;
5563 			tp->t_timer[TCPT_REORDER] = 0;
5564 			tcp_rack_reset_segs_retransmitted(tp);
5565 			needoutput = 1;
5566 		} else if (tp->t_timer[TCPT_PERSIST] == 0) {
5567 			tcp_set_rto(tp);
5568 		}
5569 
5570 		if ((prev_t_state == TCPS_SYN_SENT ||
5571 		    prev_t_state == TCPS_SYN_RECEIVED) &&
5572 		    tp->t_state == TCPS_ESTABLISHED) {
5573 			TCP_LOG_RTT_INFO(tp);
5574 		}
5575 
5576 		/*
5577 		 * If no data (only SYN) was ACK'd, skip rest of ACK
5578 		 * processing.
5579 		 */
5580 		if (acked == 0) {
5581 			goto step6;
5582 		}
5583 
5584 		/*
5585 		 * Process sent segments used for RACK as we need to update
5586 		 * RACK state before loss detection. Update snd_fack only
5587 		 * after ACK processing which performs reordering detection.
5588 		 */
5589 		if (TCP_RACK_ENABLED(tp)) {
5590 			tcp_segs_doack(tp, th->th_ack, &to);
5591 			if (SEQ_LT(tp->snd_fack, highest_sacked_seq)) {
5592 				tp->snd_fack = highest_sacked_seq;
5593 			}
5594 			if (SEQ_LT(tp->snd_fack, th->th_ack)) {
5595 				tp->snd_fack = th->th_ack;
5596 			}
5597 		}
5598 		/*
5599 		 * When outgoing data has been acked (except the SYN+data), we
5600 		 * mark this connection as "sending good" for TFO.
5601 		 */
5602 		if ((tp->t_tfo_stats & TFO_S_SYN_DATA_SENT) &&
5603 		    !(tp->t_tfo_flags & TFO_F_NO_SNDPROBING) &&
5604 		    !(th->th_flags & TH_SYN)) {
5605 			tp->t_tfo_flags |= TFO_F_NO_SNDPROBING;
5606 		}
5607 
5608 		if ((tp->ecn_flags & TE_SENDIPECT)) {
5609 			/*
5610 			 * draft-ietf-tcpm-accurate-ecn-28
5611 			 * Accurate ECN feedback processing for data sender,
5612 			 * Process peer's feedback in received TCP thflags and update s.cep
5613 			 * Since SYN-ACK has a special encoding, exclude it from below.
5614 			 * Only perform it before CC is called and snd_una is updated.
5615 			 */
5616 			if (tp->accurate_ecn_on && !(thflags & TH_SYN)) {
5617 				/*
5618 				 * For a server in SYN_RECEIVED state (that switched to
5619 				 * ESTABLISHED in this ACK, exclude processing the last ACK
5620 				 */
5621 				if (th->th_ack == tp->iss + 1) {
5622 					acked = 0;
5623 				}
5624 				uint32_t pkts_acked = tcp_packets_this_ack(tp, acked);
5625 				tp->total_ect_packets_acked += pkts_acked;
5626 				/*
5627 				 * Calculate newly_acked_time used for AccECN feedback parsing
5628 				 * for data sender if ACK acknowledges packets without data
5629 				 * if reordering happens and certain packets have same TS.
5630 				 * Right now, we consider that new time was ACKed if the TS
5631 				 * was GT previous value, but we need to think about how to
5632 				 * differentiate between reordering and wrapping when TS is same
5633 				 * as previous value.
5634 				 */
5635 				bool newly_acked_time = false;
5636 				if (acked == 0 && sack_bytes_acked == 0 &&
5637 				    (to.to_flags & TOF_TS) != 0 && to.to_tsecr != 0 &&
5638 				    (tp->t_last_ack_tsecr == 0 || TSTMP_GT(to.to_tsecr, tp->t_last_ack_tsecr))) {
5639 					newly_acked_time = true;
5640 				}
5641 				/*
5642 				 * Update s.cep if bytes have been newly S/ACKed
5643 				 * otherwise, this ACK has already been superseded.
5644 				 */
5645 				if (acked > 0 || sack_bytes_acked > 0 || newly_acked_time) {
5646 					tcp_process_accecn(tp, &to, th, pkts_acked, ace);
5647 				}
5648 			} else if (TCP_ECN_ENABLED(tp) && (thflags & TH_ECE)) {
5649 				uint32_t pkts_acked = tcp_packets_this_ack(tp, acked);
5650 				/*
5651 				 * For classic ECN, congestion event is receiving TH_ECE.
5652 				 * Disable ECN if > 90% marking is observed in ACK packets
5653 				 */
5654 				tcp_ece_aggressive_heur(tp, pkts_acked);
5655 				/*
5656 				 * Reduce the congestion window if we haven't
5657 				 * done so.
5658 				 */
5659 				if (!IN_FASTRECOVERY(tp)) {
5660 					/*
5661 					 * Although we enter Fast Recovery in the below function
5662 					 * we exit it immediately below as th_ack >= snd_recover
5663 					 */
5664 					tcp_enter_fast_recovery(tp);
5665 					tp->ecn_flags |= (TE_INRECOVERY | TE_SENDCWR);
5666 					/*
5667 					 * Also note that the connection received
5668 					 * ECE atleast once. We increment
5669 					 * t_ecn_capable_packets_marked when we first
5670 					 * enter fast recovery.
5671 					 */
5672 					tp->ecn_flags |= TE_RECV_ECN_ECE;
5673 					INP_INC_IFNET_STAT(inp, ecn_recv_ece);
5674 					tcpstat.tcps_ecn_recv_ece++;
5675 					tp->t_ecn_capable_packets_marked += pkts_acked;
5676 					tcp_ccdbg_trace(tp, th, TCP_CC_ECN_RCVD);
5677 				}
5678 			}
5679 		}
5680 
5681 		/*
5682 		 * When new data is acked, open the congestion window.
5683 		 * The specifics of how this is achieved are up to the
5684 		 * congestion control algorithm in use for this connection.
5685 		 *
5686 		 * The calculations in this function assume that snd_una is
5687 		 * not updated yet.
5688 		 */
5689 		if (!IN_FASTRECOVERY(tp) && !exiting_fr) {
5690 			if (CC_ALGO(tp)->ack_rcvd != NULL) {
5691 				CC_ALGO(tp)->ack_rcvd(tp, th);
5692 			}
5693 			tcp_ccdbg_trace(tp, th, TCP_CC_ACK_RCVD);
5694 		}
5695 		if (acked > so->so_snd.sb_cc) {
5696 			tp->snd_wnd -= so->so_snd.sb_cc;
5697 			sbdrop(&so->so_snd, (int)so->so_snd.sb_cc);
5698 			ourfinisacked = 1;
5699 		} else {
5700 			sbdrop(&so->so_snd, acked);
5701 			tcp_sbsnd_trim(&so->so_snd);
5702 			tp->snd_wnd -= acked;
5703 			ourfinisacked = 0;
5704 		}
5705 		/* detect una wraparound */
5706 		if (!IN_FASTRECOVERY(tp) &&
5707 		    SEQ_GT(tp->snd_una, tp->snd_recover) &&
5708 		    SEQ_LEQ(th->th_ack, tp->snd_recover)) {
5709 			tp->snd_recover = th->th_ack - 1;
5710 		}
5711 
5712 		if (IN_FASTRECOVERY(tp) &&
5713 		    SEQ_GEQ(th->th_ack, tp->snd_recover)) {
5714 			EXIT_FASTRECOVERY(tp);
5715 			if (TCP_RACK_ENABLED(tp)) {
5716 				tcp_rack_update_reordering_win_persist(tp);
5717 			}
5718 		}
5719 
5720 		tcp_update_snd_una(tp, th->th_ack);
5721 
5722 		if (SACK_ENABLED(tp)) {
5723 			if (SEQ_GT(tp->snd_una, tp->snd_recover)) {
5724 				tp->snd_recover = tp->snd_una;
5725 			}
5726 		}
5727 		if (SEQ_LT(tp->snd_nxt, tp->snd_una)) {
5728 			tp->snd_nxt = tp->snd_una;
5729 		}
5730 
5731 		/*
5732 		 * Detect loss based on RACK during ACK processing to mark lost
5733 		 * segments and call tcp_output. Rest of the ACK processing can
5734 		 * continue after that.
5735 		 */
5736 		if (TCP_RACK_ENABLED(tp) && tcp_rack_detect_loss_and_arm_timer(tp, 0)) {
5737 			if (!IN_FASTRECOVERY(tp)) {
5738 				tcp_enter_fast_recovery(tp);
5739 				tcpstat.tcps_rack_recovery_episode++;
5740 				tp->t_rack_recovery_episode++;
5741 			}
5742 			tcp_output(tp);
5743 		}
5744 
5745 		if (!SLIST_EMPTY(&tp->t_rxt_segments) &&
5746 		    !TCP_DSACK_SEQ_IN_WINDOW(tp, tp->t_dsack_lastuna,
5747 		    tp->snd_una)) {
5748 			tcp_rxtseg_clean(tp);
5749 		}
5750 		if ((tp->t_flagsext & TF_MEASURESNDBW) != 0 &&
5751 		    tp->t_bwmeas != NULL) {
5752 			tcp_bwmeas_check(tp);
5753 		}
5754 
5755 		write_wakeup = 1;
5756 
5757 		if (!SLIST_EMPTY(&tp->t_notify_ack)) {
5758 			tcp_notify_acknowledgement(tp, so);
5759 		}
5760 
5761 		switch (tp->t_state) {
5762 		/*
5763 		 * In FIN_WAIT_1 STATE in addition to the processing
5764 		 * for the ESTABLISHED state if our FIN is now acknowledged
5765 		 * then enter FIN_WAIT_2.
5766 		 */
5767 		case TCPS_FIN_WAIT_1:
5768 			if (ourfinisacked) {
5769 				/*
5770 				 * If we can't receive any more
5771 				 * data, then closing user can proceed.
5772 				 * Starting the TCPT_2MSL timer is contrary to the
5773 				 * specification, but if we don't get a FIN
5774 				 * we'll hang forever.
5775 				 */
5776 				DTRACE_TCP4(state__change, void, NULL,
5777 				    struct inpcb *, inp,
5778 				    struct tcpcb *, tp,
5779 				    int32_t, TCPS_FIN_WAIT_2);
5780 				TCP_LOG_STATE(tp, TCPS_FIN_WAIT_2);
5781 				tp->t_state = TCPS_FIN_WAIT_2;
5782 				if (so->so_state & SS_CANTRCVMORE) {
5783 					isconnected = FALSE;
5784 					isdisconnected = TRUE;
5785 					tcp_set_finwait_timeout(tp);
5786 				}
5787 				/*
5788 				 * fall through and make sure we also recognize
5789 				 * data ACKed with the FIN
5790 				 */
5791 			}
5792 			break;
5793 
5794 		/*
5795 		 * In CLOSING STATE in addition to the processing for
5796 		 * the ESTABLISHED state if the ACK acknowledges our FIN
5797 		 * then enter the TIME-WAIT state, otherwise ignore
5798 		 * the segment.
5799 		 */
5800 		case TCPS_CLOSING:
5801 			if (ourfinisacked) {
5802 				DTRACE_TCP4(state__change, void, NULL,
5803 				    struct inpcb *, inp,
5804 				    struct tcpcb *, tp,
5805 				    int32_t, TCPS_TIME_WAIT);
5806 				TCP_LOG_STATE(tp, TCPS_TIME_WAIT);
5807 				tp->t_state = TCPS_TIME_WAIT;
5808 				tcp_canceltimers(tp);
5809 				if (tp->t_flagsext & TF_NOTIMEWAIT) {
5810 					tp->t_flags |= TF_CLOSING;
5811 				} else {
5812 					add_to_time_wait(tp, 2 * tcp_msl);
5813 				}
5814 				isconnected = FALSE;
5815 				isdisconnected = TRUE;
5816 			}
5817 			break;
5818 
5819 		/*
5820 		 * In LAST_ACK, we may still be waiting for data to drain
5821 		 * and/or to be acked, as well as for the ack of our FIN.
5822 		 * If our FIN is now acknowledged, delete the TCB,
5823 		 * enter the closed state and return.
5824 		 */
5825 		case TCPS_LAST_ACK:
5826 			if (ourfinisacked) {
5827 				tp = tcp_close(tp);
5828 				goto drop;
5829 			}
5830 			break;
5831 
5832 		/*
5833 		 * In TIME_WAIT state the only thing that should arrive
5834 		 * is a retransmission of the remote FIN.  Acknowledge
5835 		 * it and restart the finack timer.
5836 		 */
5837 		case TCPS_TIME_WAIT:
5838 			add_to_time_wait(tp, 2 * tcp_msl);
5839 			goto dropafterack;
5840 		}
5841 
5842 		/*
5843 		 * If there is a SACK option on the ACK and we
5844 		 * haven't seen any duplicate acks before, count
5845 		 * it as a duplicate ack even if the cumulative
5846 		 * ack is advanced. If the receiver delayed an
5847 		 * ack and detected loss afterwards, then the ack
5848 		 * will advance cumulative ack and will also have
5849 		 * a SACK option. So counting it as one duplicate
5850 		 * ack is ok.
5851 		 */
5852 		if (tp->t_state == TCPS_ESTABLISHED &&
5853 		    SACK_ENABLED(tp) && sack_bytes_acked > 0 &&
5854 		    to.to_nsacks > 0 && tp->t_dupacks == 0 &&
5855 		    SEQ_LEQ(th->th_ack, tp->snd_una) && tlen == 0 &&
5856 		    !(tp->t_flagsext & TF_PKTS_REORDERED)) {
5857 			tcpstat.tcps_sack_ackadv++;
5858 			goto process_dupack;
5859 		}
5860 	}
5861 	}
5862 
5863 step6:
5864 	/*
5865 	 * Update window information.
5866 	 */
5867 	if (tcp_update_window(tp, thflags, th, tiwin, tlen)) {
5868 		needoutput = 1;
5869 	}
5870 
5871 	/*
5872 	 * Process segments with URG.
5873 	 */
5874 	if ((thflags & TH_URG) && th->th_urp &&
5875 	    TCPS_HAVERCVDFIN(tp->t_state) == 0) {
5876 		/*
5877 		 * This is a kludge, but if we receive and accept
5878 		 * random urgent pointers, we'll crash in
5879 		 * soreceive.  It's hard to imagine someone
5880 		 * actually wanting to send this much urgent data.
5881 		 */
5882 		if (th->th_urp + so->so_rcv.sb_cc > sb_max) {
5883 			th->th_urp = 0;                 /* XXX */
5884 			thflags &= ~TH_URG;             /* XXX */
5885 			goto dodata;                    /* XXX */
5886 		}
5887 		/*
5888 		 * If this segment advances the known urgent pointer,
5889 		 * then mark the data stream.  This should not happen
5890 		 * in CLOSE_WAIT, CLOSING, LAST_ACK or TIME_WAIT STATES since
5891 		 * a FIN has been received from the remote side.
5892 		 * In these states we ignore the URG.
5893 		 *
5894 		 * According to RFC961 (Assigned Protocols),
5895 		 * the urgent pointer points to the last octet
5896 		 * of urgent data.  We continue, however,
5897 		 * to consider it to indicate the first octet
5898 		 * of data past the urgent section as the original
5899 		 * spec states (in one of two places).
5900 		 */
5901 		if (SEQ_GT(th->th_seq + th->th_urp, tp->rcv_up)) {
5902 			tp->rcv_up = th->th_seq + th->th_urp;
5903 			so->so_oobmark = so->so_rcv.sb_cc +
5904 			    (tp->rcv_up - tp->rcv_nxt) - 1;
5905 			if (so->so_oobmark == 0) {
5906 				so->so_state |= SS_RCVATMARK;
5907 			}
5908 			sohasoutofband(so);
5909 			tp->t_oobflags &= ~(TCPOOB_HAVEDATA | TCPOOB_HADDATA);
5910 		}
5911 		/*
5912 		 * Remove out of band data so doesn't get presented to user.
5913 		 * This can happen independent of advancing the URG pointer,
5914 		 * but if two URG's are pending at once, some out-of-band
5915 		 * data may creep in... ick.
5916 		 */
5917 		if (th->th_urp <= (u_int32_t)tlen
5918 #if SO_OOBINLINE
5919 		    && (so->so_options & SO_OOBINLINE) == 0
5920 #endif
5921 		    ) {
5922 			tcp_pulloutofband(so, th, m,
5923 			    drop_hdrlen);       /* hdr drop is delayed */
5924 		}
5925 	} else {
5926 		/*
5927 		 * If no out of band data is expected,
5928 		 * pull receive urgent pointer along
5929 		 * with the receive window.
5930 		 */
5931 		if (SEQ_GT(tp->rcv_nxt, tp->rcv_up)) {
5932 			tp->rcv_up = tp->rcv_nxt;
5933 		}
5934 	}
5935 dodata:
5936 
5937 	/* Set socket's connect or disconnect state correcly before doing data.
5938 	 * The following might unlock the socket if there is an upcall or a socket
5939 	 * filter.
5940 	 */
5941 	if (isconnected) {
5942 		soisconnected(so);
5943 	} else if (isdisconnected) {
5944 		soisdisconnected(so);
5945 	}
5946 
5947 	/* Let's check the state of pcb just to make sure that it did not get closed
5948 	 * when we unlocked above
5949 	 */
5950 	if (inp->inp_state == INPCB_STATE_DEAD) {
5951 		/* Just drop the packet that we are processing and return */
5952 		TCP_LOG_DROP_PCB(TCP_LOG_HDR, th, tp, false, "INPCB_STATE_DEAD");
5953 		drop_reason = DROP_REASON_TCP_NO_SOCK;
5954 		goto drop;
5955 	}
5956 
5957 	/*
5958 	 * Process the segment text, merging it into the TCP sequencing queue,
5959 	 * and arranging for acknowledgment of receipt if necessary.
5960 	 * This process logically involves adjusting tp->rcv_wnd as data
5961 	 * is presented to the user (this happens in tcp_usrreq.c,
5962 	 * case PRU_RCVD).  If a FIN has already been received on this
5963 	 * connection then we just ignore the text.
5964 	 *
5965 	 * If we are in SYN-received state and got a valid TFO cookie, we want
5966 	 * to process the data.
5967 	 */
5968 	if ((tlen || (thflags & TH_FIN)) &&
5969 	    TCPS_HAVERCVDFIN(tp->t_state) == 0 &&
5970 	    (TCPS_HAVEESTABLISHED(tp->t_state) ||
5971 	    (tp->t_state == TCPS_SYN_RECEIVED &&
5972 	    (tp->t_tfo_flags & TFO_F_COOKIE_VALID)))) {
5973 		tcp_seq save_start = th->th_seq;
5974 		tcp_seq save_end = th->th_seq + tlen;
5975 		m_adj(m, drop_hdrlen);  /* delayed header drop */
5976 
5977 		if (th->th_seq == tp->rcv_nxt) {
5978 			int mem = tcp_memacct_limited();
5979 			if (mem == MEMACCT_HARDLIMIT ||
5980 			    (mem == MEMACCT_SOFTLIMIT && so->so_rcv.sb_cc > 0)) {
5981 				/*
5982 				 * If we are at the hard limit, just drop.
5983 				 * If we are at the softlimit, only accept one
5984 				 * packet into the receive-queue.
5985 				 */
5986 				drop_reason = DROP_REASON_TCP_INSEQ_MEMORY_PRESSURE;
5987 				tcpstat.tcps_rcvmemdrop++;
5988 				goto drop;
5989 			}
5990 		}
5991 		/*
5992 		 * Insert segment which includes th into TCP reassembly queue
5993 		 * with control block tp.  Set thflags to whether reassembly now
5994 		 * includes a segment with FIN.  This handles the common case
5995 		 * inline (segment is the next to be received on an established
5996 		 * connection, and the queue is empty), avoiding linkage into
5997 		 * and removal from the queue and repetition of various
5998 		 * conversions.
5999 		 * Set DELACK for segments received in order, but ack
6000 		 * immediately when segments are out of order (so
6001 		 * fast retransmit can work).
6002 		 */
6003 		if (th->th_seq == tp->rcv_nxt && LIST_EMPTY(&tp->t_segq)) {
6004 			TCP_INC_VAR(tp->t_unacksegs, segment_count);
6005 
6006 			/* Calculate the RTT on the receiver */
6007 			tcp_compute_rcv_rtt(tp, &to, th);
6008 
6009 			if (DELAY_ACK(tp, th) &&
6010 			    ((tp->t_flags & TF_ACKNOW) == 0)) {
6011 				if ((tp->t_flags & TF_DELACK) == 0) {
6012 					tp->t_flags |= TF_DELACK;
6013 					tp->t_timer[TCPT_DELACK] =
6014 					    tcp_offset_from_start(tp, tcp_delack);
6015 				}
6016 			} else {
6017 				tp->t_flags |= TF_ACKNOW;
6018 			}
6019 			tp->rcv_nxt += tlen;
6020 			/* Update highest received sequence and its timestamp */
6021 			if (SEQ_LT(tp->rcv_high, tp->rcv_nxt)) {
6022 				tp->rcv_high = tp->rcv_nxt;
6023 				if (to.to_flags & TOF_TS) {
6024 					tp->tsv_high = to.to_tsval;
6025 				}
6026 			}
6027 
6028 			thflags = th->th_flags & TH_FIN;
6029 			TCP_INC_VAR(tcpstat.tcps_rcvpack, segment_count);
6030 			tcpstat.tcps_rcvbyte += tlen;
6031 			if (nstat_collect) {
6032 				INP_ADD_RXSTAT(inp, ifnet_count_type, 1, tlen);
6033 			}
6034 			tcp_sbrcv_grow(tp, &so->so_rcv, &to, tlen);
6035 			if (TCP_USE_RLEDBAT(tp, so) &&
6036 			    tcp_cc_rledbat.data_rcvd != NULL) {
6037 				tcp_cc_rledbat.data_rcvd(tp, th, &to, tlen);
6038 			}
6039 
6040 			so_recv_data_stat(so, m, drop_hdrlen);
6041 
6042 			if (isipv6) {
6043 				memcpy(&saved_hdr, ip6, sizeof(struct ip6_hdr));
6044 				ip6 = (struct ip6_hdr *)&saved_hdr[0];
6045 			} else {
6046 				memcpy(&saved_hdr, ip, ip->ip_hl << 2);
6047 				ip = (struct ip *)&saved_hdr[0];
6048 			}
6049 			memcpy(&saved_tcphdr, th, sizeof(struct tcphdr));
6050 
6051 			if (th->th_flags & TH_PUSH) {
6052 				tp->t_flagsext |= TF_LAST_IS_PSH;
6053 			} else {
6054 				tp->t_flagsext &= ~TF_LAST_IS_PSH;
6055 			}
6056 
6057 			if (sbappendstream_rcvdemux(so, m)) {
6058 				read_wakeup = 1;
6059 			}
6060 			th = &saved_tcphdr;
6061 		} else {
6062 			if (isipv6) {
6063 				memcpy(&saved_hdr, ip6, sizeof(struct ip6_hdr));
6064 				ip6 = (struct ip6_hdr *)&saved_hdr[0];
6065 			} else {
6066 				memcpy(&saved_hdr, ip, ip->ip_hl << 2);
6067 				ip = (struct ip *)&saved_hdr[0];
6068 			}
6069 
6070 			/* Update highest received sequence and its timestamp */
6071 			if (SEQ_LT(tp->rcv_high, th->th_seq + tlen)) {
6072 				tp->rcv_high = th->th_seq + tlen;
6073 				if (to.to_flags & TOF_TS) {
6074 					tp->tsv_high = to.to_tsval;
6075 				}
6076 			}
6077 
6078 			/*
6079 			 * Calculate the RTT on the receiver,
6080 			 * even if OOO segment is received.
6081 			 */
6082 			tcp_compute_rcv_rtt(tp, &to, th);
6083 
6084 			tcp_sbrcv_grow(tp, &so->so_rcv, &to, tlen);
6085 			if (TCP_USE_RLEDBAT(tp, so) &&
6086 			    tcp_cc_rledbat.data_rcvd != NULL) {
6087 				tcp_cc_rledbat.data_rcvd(tp, th, &to, tlen);
6088 			}
6089 
6090 			memcpy(&saved_tcphdr, th, sizeof(struct tcphdr));
6091 			thflags = tcp_reass(tp, th, &tlen, m, ifp, &read_wakeup);
6092 			th = &saved_tcphdr;
6093 			tp->t_flags |= TF_ACKNOW;
6094 		}
6095 
6096 		if ((tlen > 0 || (th->th_flags & TH_FIN)) && SACK_ENABLED(tp)) {
6097 			if (th->th_flags & TH_FIN) {
6098 				save_end++;
6099 			}
6100 			tcp_update_sack_list(tp, save_start, save_end);
6101 		}
6102 
6103 		tcp_adaptive_rwtimo_check(tp, tlen);
6104 
6105 		if (tlen > 0) {
6106 			tcp_tfo_rcv_data(tp);
6107 		}
6108 
6109 		if (tp->t_flags & TF_DELACK) {
6110 			if (isipv6) {
6111 				KERNEL_DEBUG(DBG_LAYER_END, ((th->th_dport << 16) | th->th_sport),
6112 				    (((ip6->ip6_src.s6_addr16[0]) << 16) | (ip6->ip6_dst.s6_addr16[0])),
6113 				    th->th_seq, th->th_ack, th->th_win);
6114 			} else {
6115 				KERNEL_DEBUG(DBG_LAYER_END, ((th->th_dport << 16) | th->th_sport),
6116 				    (((ip->ip_src.s_addr & 0xffff) << 16) | (ip->ip_dst.s_addr & 0xffff)),
6117 				    th->th_seq, th->th_ack, th->th_win);
6118 			}
6119 		}
6120 	} else {
6121 		if ((so->so_flags & SOF_MP_SUBFLOW) && tlen == 0 &&
6122 		    (m->m_pkthdr.pkt_flags & PKTF_MPTCP_DFIN) &&
6123 		    (m->m_pkthdr.pkt_flags & PKTF_MPTCP)) {
6124 			m_adj(m, drop_hdrlen);  /* delayed header drop */
6125 			/*
6126 			 * 0-length DATA_FIN. The rlen is actually 0. We special-case the
6127 			 * byte consumed by the dfin in mptcp_input and mptcp_reass_present
6128 			 */
6129 			m->m_pkthdr.mp_rlen = 0;
6130 			mptcp_input(tptomptp(tp)->mpt_mpte, m);
6131 			tp->t_flags |= TF_ACKNOW;
6132 		} else {
6133 			m_freem(m);
6134 		}
6135 		thflags &= ~TH_FIN;
6136 	}
6137 	/*
6138 	 * We increment t_unacksegs_ce for both data segments and pure ACKs
6139 	 * No need to increment if a FIN has already been received.
6140 	 */
6141 	if (tp->accurate_ecn_on && TCPS_HAVEESTABLISHED(tp->t_state) &&
6142 	    TCPS_HAVERCVDFIN(tp->t_state) == 0) {
6143 		if (ip_ecn == IPTOS_ECN_CE) {
6144 			TCP_INC_VAR(tp->t_unacksegs_ce, segment_count);
6145 		}
6146 		/*
6147 		 * Send an ACK immediately if there is a change in IP ECN
6148 		 * from non-CE to CE.
6149 		 * If new data is delivered, then ACK for every 2 CE marks,
6150 		 * otherwise ACK for every 3 CE marks
6151 		 */
6152 		if ((ip_ecn == IPTOS_ECN_CE && ip_ecn != tp->t_prev_ip_ecn) ||
6153 		    (tp->t_unacksegs_ce >= 2 && tp->last_ack_sent != tp->rcv_nxt) ||
6154 		    tp->t_unacksegs_ce >= 3) {
6155 			tp->t_flags |= TF_ACKNOW;
6156 		}
6157 		tp->t_prev_ip_ecn = ip_ecn;
6158 	}
6159 	/*
6160 	 * If FIN is received ACK the FIN and let the user know
6161 	 * that the connection is closing.
6162 	 */
6163 	if (thflags & TH_FIN) {
6164 		if (TCPS_HAVERCVDFIN(tp->t_state) == 0) {
6165 			socantrcvmore(so);
6166 			/*
6167 			 * If connection is half-synchronized
6168 			 * (ie NEEDSYN flag on) then delay ACK,
6169 			 * so it may be piggybacked when SYN is sent.
6170 			 * Otherwise, since we received a FIN then no
6171 			 * more input can be expected, send ACK now.
6172 			 */
6173 			TCP_INC_VAR(tp->t_unacksegs, segment_count);
6174 			tp->t_flags |= TF_ACKNOW;
6175 			tp->rcv_nxt++;
6176 		}
6177 		switch (tp->t_state) {
6178 		/*
6179 		 * In SYN_RECEIVED and ESTABLISHED STATES
6180 		 * enter the CLOSE_WAIT state.
6181 		 */
6182 		case TCPS_SYN_RECEIVED:
6183 			tp->t_starttime = tcp_now;
6184 			OS_FALLTHROUGH;
6185 		case TCPS_ESTABLISHED:
6186 			DTRACE_TCP4(state__change, void, NULL, struct inpcb *, inp,
6187 			    struct tcpcb *, tp, int32_t, TCPS_CLOSE_WAIT);
6188 			TCP_LOG_STATE(tp, TCPS_CLOSE_WAIT);
6189 			tp->t_state = TCPS_CLOSE_WAIT;
6190 			break;
6191 
6192 		/*
6193 		 * If still in FIN_WAIT_1 STATE FIN has not been acked so
6194 		 * enter the CLOSING state.
6195 		 */
6196 		case TCPS_FIN_WAIT_1:
6197 			DTRACE_TCP4(state__change, void, NULL, struct inpcb *, inp,
6198 			    struct tcpcb *, tp, int32_t, TCPS_CLOSING);
6199 			TCP_LOG_STATE(tp, TCPS_CLOSING);
6200 			tp->t_state = TCPS_CLOSING;
6201 			break;
6202 
6203 		/*
6204 		 * In FIN_WAIT_2 state enter the TIME_WAIT state,
6205 		 * starting the time-wait timer, turning off the other
6206 		 * standard timers.
6207 		 */
6208 		case TCPS_FIN_WAIT_2:
6209 			DTRACE_TCP4(state__change, void, NULL,
6210 			    struct inpcb *, inp,
6211 			    struct tcpcb *, tp,
6212 			    int32_t, TCPS_TIME_WAIT);
6213 			TCP_LOG_STATE(tp, TCPS_TIME_WAIT);
6214 			tp->t_state = TCPS_TIME_WAIT;
6215 			tcp_canceltimers(tp);
6216 			tp->t_flags |= TF_ACKNOW;
6217 			if (tp->t_flagsext & TF_NOTIMEWAIT) {
6218 				tp->t_flags |= TF_CLOSING;
6219 			} else {
6220 				add_to_time_wait(tp, 2 * tcp_msl);
6221 			}
6222 			soisdisconnected(so);
6223 			break;
6224 
6225 		/*
6226 		 * In TIME_WAIT state restart the 2 MSL time_wait timer.
6227 		 */
6228 		case TCPS_TIME_WAIT:
6229 			add_to_time_wait(tp, 2 * tcp_msl);
6230 			break;
6231 		}
6232 	}
6233 	if (read_wakeup) {
6234 		mptcp_handle_input(so);
6235 	}
6236 
6237 	/*
6238 	 * Return any desired output.
6239 	 */
6240 	if (needoutput || (tp->t_flags & TF_ACKNOW)) {
6241 		(void) tcp_output(tp);
6242 	}
6243 
6244 	tcp_check_timer_state(tp);
6245 
6246 	tcp_handle_wakeup(so, read_wakeup, write_wakeup);
6247 
6248 	socket_unlock(so, 1);
6249 	KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
6250 	return;
6251 
6252 dropafterack:
6253 	/*
6254 	 * Generate an ACK dropping incoming segment if it occupies
6255 	 * sequence space, where the ACK reflects our state.
6256 	 *
6257 	 * We can now skip the test for the RST flag since all
6258 	 * paths to this code happen after packets containing
6259 	 * RST have been dropped.
6260 	 *
6261 	 * In the SYN-RECEIVED state, don't send an ACK unless the
6262 	 * segment we received passes the SYN-RECEIVED ACK test.
6263 	 * If it fails send a RST.  This breaks the loop in the
6264 	 * "LAND" DoS attack, and also prevents an ACK storm
6265 	 * between two listening ports that have been sent forged
6266 	 * SYN segments, each with the source address of the other.
6267 	 */
6268 	if (tp->t_state == TCPS_SYN_RECEIVED && (thflags & TH_ACK) &&
6269 	    (SEQ_GT(tp->snd_una, th->th_ack) ||
6270 	    SEQ_GT(th->th_ack, tp->snd_max))) {
6271 		IF_TCP_STATINC(ifp, dospacket);
6272 		goto dropwithreset;
6273 	}
6274 	m_freem(m);
6275 	tp->t_flags |= TF_ACKNOW;
6276 
6277 	(void) tcp_output(tp);
6278 
6279 	tcp_handle_wakeup(so, read_wakeup, write_wakeup);
6280 
6281 	/* Don't need to check timer state as we should have done it during tcp_output */
6282 	socket_unlock(so, 1);
6283 	KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
6284 	return;
6285 dropwithresetnosock:
6286 	nosock = 1;
6287 dropwithreset:
6288 	/*
6289 	 * Generate a RST, dropping incoming segment.
6290 	 * Make ACK acceptable to originator of segment.
6291 	 * Don't bother to respond if destination was broadcast/multicast.
6292 	 */
6293 	if ((thflags & TH_RST) || m->m_flags & (M_BCAST | M_MCAST)) {
6294 		goto drop;
6295 	}
6296 	if (isipv6) {
6297 		if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst) ||
6298 		    IN6_IS_ADDR_MULTICAST(&ip6->ip6_src)) {
6299 			goto drop;
6300 		}
6301 	} else if (IN_MULTICAST(ntohl(ip->ip_dst.s_addr)) ||
6302 	    IN_MULTICAST(ntohl(ip->ip_src.s_addr)) ||
6303 	    ip->ip_src.s_addr == htonl(INADDR_BROADCAST) ||
6304 	    in_broadcast(ip->ip_dst, m->m_pkthdr.rcvif)) {
6305 		goto drop;
6306 	}
6307 	/* IPv6 anycast check is done at tcp6_input() */
6308 
6309 	bzero(&tra, sizeof(tra));
6310 	tra.ifscope = ifscope;
6311 	tra.awdl_unrestricted = 1;
6312 	tra.intcoproc_allowed = 1;
6313 	tra.management_allowed = 1;
6314 	if (thflags & TH_ACK) {
6315 		/* mtod() below is safe as long as hdr dropping is delayed */
6316 		tcp_respond(tp, mtod(m, void *), m->m_len, th, m, (tcp_seq)0, th->th_ack,
6317 		    0, TH_RST, NULL, 0, 0, 0, &tra, false);
6318 	} else {
6319 		if (thflags & TH_SYN) {
6320 			tlen++;
6321 		}
6322 		/* mtod() below is safe as long as hdr dropping is delayed */
6323 		tcp_respond(tp, mtod(m, void *), m->m_len, th, m, th->th_seq + tlen,
6324 		    (tcp_seq)0, 0, TH_RST | TH_ACK, NULL, 0, 0, 0, &tra, false);
6325 	}
6326 	/* destroy temporarily created socket */
6327 	if (dropsocket) {
6328 		(void) soabort(so);
6329 		socket_unlock(so, 1);
6330 	} else if ((inp != NULL) && (nosock == 0)) {
6331 		tcp_handle_wakeup(so, read_wakeup, write_wakeup);
6332 
6333 		socket_unlock(so, 1);
6334 	}
6335 	KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
6336 	return;
6337 dropnosock:
6338 	nosock = 1;
6339 drop:
6340 	/*
6341 	 * Drop space held by incoming segment and return.
6342 	 */
6343 	if (isipv6 == 0) {
6344 		if (ip == NULL) {
6345 			ip = mtod(m, struct ip *);
6346 		}
6347 		/* add back the header length */
6348 		ip->ip_len += (ip->ip_hl << 2);
6349 		HTONS(ip->ip_len);
6350 		HTONS(ip->ip_off);
6351 
6352 		th = (struct tcphdr *)(void *)((caddr_t)ip + off0);
6353 	} else if (ip6 == NULL) {
6354 		ip6 = mtod(m, struct ip6_hdr *);
6355 
6356 		th = (struct tcphdr *)(void *)((caddr_t)ip6 + off0);
6357 	}
6358 	if (is_th_swapped) {
6359 		HTONL(th->th_seq);
6360 		HTONL(th->th_ack);
6361 		HTONS(th->th_win);
6362 		HTONS(th->th_urp);
6363 	}
6364 	if (drop_reason != DROP_REASON_UNSPECIFIED || droptap_verbose > 0) {
6365 		m_drop(m, DROPTAP_FLAG_DIR_IN | DROPTAP_FLAG_L2_MISSING, drop_reason, NULL, 0);
6366 	} else {
6367 		m_freem(m);
6368 	}
6369 	/* destroy temporarily created socket */
6370 	if (dropsocket) {
6371 		(void) soabort(so);
6372 		socket_unlock(so, 1);
6373 	} else if (nosock == 0) {
6374 		tcp_handle_wakeup(so, read_wakeup, write_wakeup);
6375 
6376 		socket_unlock(so, 1);
6377 	}
6378 	KERNEL_DEBUG(DBG_FNC_TCP_INPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
6379 	return;
6380 }
6381 
6382 /*
6383  * Parse TCP options and place in tcpopt.
6384  */
6385 static void
tcp_dooptions(struct tcpcb * tp,u_char * cp0 __counted_by (cnt0),int cnt0,struct tcphdr * th,struct tcpopt * to)6386 tcp_dooptions(struct tcpcb *tp, u_char *cp0 __counted_by(cnt0), int cnt0, struct tcphdr *th,
6387     struct tcpopt *to)
6388 {
6389 	u_short mss = 0;
6390 	uint8_t opt, optlen;
6391 	u_char *cp = cp0;
6392 	u_char * const cpend = cp0 + cnt0;
6393 	int cnt = cnt0;
6394 
6395 	for (; cnt > 0; cnt -= optlen, cp += optlen) {
6396 		opt = cp[0];
6397 		if (opt == TCPOPT_EOL) {
6398 			break;
6399 		}
6400 		if (opt == TCPOPT_NOP) {
6401 			optlen = 1;
6402 		} else {
6403 			if (cnt < 2) {
6404 				break;
6405 			}
6406 			optlen = cp[1];
6407 			if (optlen < 2 || optlen > cnt) {
6408 				break;
6409 			}
6410 		}
6411 		switch (opt) {
6412 		default:
6413 			continue;
6414 
6415 		case TCPOPT_MAXSEG:
6416 			if (optlen != TCPOLEN_MAXSEG) {
6417 				continue;
6418 			}
6419 			if (!(th->th_flags & TH_SYN)) {
6420 				continue;
6421 			}
6422 			bcopy((char *) cp + 2, (char *) &mss, sizeof(mss));
6423 			NTOHS(mss);
6424 			to->to_mss = mss;
6425 			to->to_flags |= TOF_MSS;
6426 			break;
6427 
6428 		case TCPOPT_WINDOW:
6429 			if (optlen != TCPOLEN_WINDOW) {
6430 				continue;
6431 			}
6432 			if (!(th->th_flags & TH_SYN)) {
6433 				continue;
6434 			}
6435 			to->to_flags |= TOF_SCALE;
6436 			to->to_wscale = MIN(cp[2], TCP_MAX_WINSHIFT);
6437 			break;
6438 
6439 		case TCPOPT_TIMESTAMP:
6440 			if (optlen != TCPOLEN_TIMESTAMP) {
6441 				continue;
6442 			}
6443 			to->to_flags |= TOF_TS;
6444 			bcopy((char *)cp + 2,
6445 			    (char *)&to->to_tsval, sizeof(to->to_tsval));
6446 			NTOHL(to->to_tsval);
6447 			bcopy((char *)cp + 6,
6448 			    (char *)&to->to_tsecr, sizeof(to->to_tsecr));
6449 			NTOHL(to->to_tsecr);
6450 			to->to_tsecr -= tp->t_ts_offset;
6451 			/* Re-enable sending Timestamps if we received them */
6452 			if (!(tp->t_flags & TF_REQ_TSTMP) && tcp_do_timestamps) {
6453 				tp->t_flags |= TF_REQ_TSTMP;
6454 			}
6455 			break;
6456 		case TCPOPT_SACK_PERMITTED:
6457 			if (optlen != TCPOLEN_SACK_PERMITTED) {
6458 				continue;
6459 			}
6460 			if (th->th_flags & TH_SYN) {
6461 				to->to_flags |= TOF_SACKPERM;
6462 			}
6463 			break;
6464 		case TCPOPT_SACK:
6465 			if (optlen <= 2 || (optlen - 2) % TCPOLEN_SACK != 0) {
6466 				continue;
6467 			}
6468 			to->to_flags |= TOF_SACK;
6469 			to->to_nsacks = (optlen - 2) / TCPOLEN_SACK;
6470 			to->to_sacks_size = optlen - 2;
6471 			to->to_sacks = cp + 2;
6472 			tcpstat.tcps_sack_rcv_blocks++;
6473 
6474 			break;
6475 		case TCPOPT_FASTOPEN:
6476 			if (optlen == TCPOLEN_FASTOPEN_REQ) {
6477 				if (tp->t_state != TCPS_LISTEN) {
6478 					continue;
6479 				}
6480 
6481 				to->to_flags |= TOF_TFOREQ;
6482 			} else {
6483 				if (optlen < TCPOLEN_FASTOPEN_REQ ||
6484 				    (optlen - TCPOLEN_FASTOPEN_REQ) > TFO_COOKIE_LEN_MAX ||
6485 				    (optlen - TCPOLEN_FASTOPEN_REQ) < TFO_COOKIE_LEN_MIN) {
6486 					continue;
6487 				}
6488 				if (tp->t_state != TCPS_LISTEN &&
6489 				    tp->t_state != TCPS_SYN_SENT) {
6490 					continue;
6491 				}
6492 
6493 				to->to_flags |= TOF_TFO;
6494 				to->to_tfo = cp + 1;
6495 				to->to_tfo_size = optlen - 1;
6496 			}
6497 
6498 			break;
6499 		case TCPOPT_ACCECN0:
6500 		case TCPOPT_ACCECN1:
6501 			if (optlen < (TCPOLEN_ACCECN_EMPTY + 1 * TCPOLEN_ACCECN_COUNTER) ||
6502 			    (optlen - 2) % TCPOLEN_ACCECN_COUNTER != 0) {
6503 				continue;
6504 			}
6505 			to->to_num_accecn = (optlen - 2) / TCPOLEN_ACCECN_COUNTER;
6506 			to->to_accecn = cp + 2;
6507 			to->to_accecn_size = optlen - 2;
6508 			if (opt == TCPOPT_ACCECN0) {
6509 				to->to_accecn_order = 0;
6510 			} else if (opt == TCPOPT_ACCECN1) {
6511 				to->to_accecn_order = 1;
6512 			}
6513 			break;
6514 
6515 #if MPTCP
6516 		case TCPOPT_MULTIPATH:
6517 			tcp_do_mptcp_options(tp, cp, cpend, th, to, optlen);
6518 			break;
6519 #endif /* MPTCP */
6520 		}
6521 	}
6522 }
6523 
6524 static void
tcp_finalize_options(struct tcpcb * tp,struct tcpopt * to,unsigned int ifscope)6525 tcp_finalize_options(struct tcpcb *tp, struct tcpopt *to, unsigned int ifscope)
6526 {
6527 	if (to->to_flags & TOF_TS) {
6528 		tp->t_flags |= TF_RCVD_TSTMP;
6529 		tp->ts_recent = to->to_tsval;
6530 		tp->ts_recent_age = tcp_now;
6531 	}
6532 	if (to->to_flags & TOF_MSS) {
6533 		tcp_mss(tp, to->to_mss, ifscope);
6534 	}
6535 	if (SACK_ENABLED(tp)) {
6536 		if (!(to->to_flags & TOF_SACKPERM)) {
6537 			tp->t_flagsext &= ~(TF_SACK_ENABLE);
6538 		} else {
6539 			tp->t_flags |= TF_SACK_PERMIT;
6540 		}
6541 	}
6542 	if (to->to_flags & TOF_SCALE) {
6543 		tp->t_flags |= TF_RCVD_SCALE;
6544 		tp->requested_s_scale = to->to_wscale;
6545 
6546 		/* Re-enable window scaling, if the option is received */
6547 		if (tp->request_r_scale > 0) {
6548 			tp->t_flags |= TF_REQ_SCALE;
6549 		}
6550 	}
6551 }
6552 
6553 /*
6554  * Pull out of band byte out of a segment so
6555  * it doesn't appear in the user's data queue.
6556  * It is still reflected in the segment length for
6557  * sequencing purposes.
6558  *
6559  * @param off delayed to be droped hdrlen
6560  */
6561 static void
tcp_pulloutofband(struct socket * so,struct tcphdr * th,struct mbuf * m,int off)6562 tcp_pulloutofband(struct socket *so, struct tcphdr *th, struct mbuf *m, int off)
6563 {
6564 	int cnt = off + th->th_urp - 1;
6565 
6566 	while (cnt >= 0) {
6567 		if (m->m_len > cnt) {
6568 			char *cp = mtod(m, caddr_t) + cnt;
6569 			struct tcpcb *tp = sototcpcb(so);
6570 
6571 			tp->t_iobc = *cp;
6572 			tp->t_oobflags |= TCPOOB_HAVEDATA;
6573 			bcopy(cp + 1, cp, (unsigned)(m->m_len - cnt - 1));
6574 			m->m_len--;
6575 			if (m->m_flags & M_PKTHDR) {
6576 				m->m_pkthdr.len--;
6577 			}
6578 			return;
6579 		}
6580 		cnt -= m->m_len;
6581 		m = m->m_next;
6582 		if (m == 0) {
6583 			break;
6584 		}
6585 	}
6586 	panic("tcp_pulloutofband");
6587 }
6588 
6589 uint32_t
get_base_rtt(struct tcpcb * tp)6590 get_base_rtt(struct tcpcb *tp)
6591 {
6592 	struct rtentry *rt = tp->t_inpcb->inp_route.ro_rt;
6593 	return (rt == NULL) ? 0 : rt->rtt_min;
6594 }
6595 
6596 static void
update_curr_rtt(struct tcpcb * tp,uint32_t rtt)6597 update_curr_rtt(struct tcpcb * tp, uint32_t rtt)
6598 {
6599 	tp->curr_rtt_index = (tp->curr_rtt_index + 1) % NCURR_RTT_HIST;
6600 	tp->curr_rtt_hist[tp->curr_rtt_index] = rtt;
6601 
6602 	/* forget the old value and update minimum */
6603 	tp->curr_rtt_min = 0;
6604 	for (int i = 0; i < NCURR_RTT_HIST; ++i) {
6605 		if (tp->curr_rtt_hist[i] != 0 && (tp->curr_rtt_min == 0 ||
6606 		    tp->curr_rtt_hist[i] < tp->curr_rtt_min)) {
6607 			tp->curr_rtt_min = tp->curr_rtt_hist[i];
6608 		}
6609 	}
6610 }
6611 
6612 /* Each value of RTT base represents the minimum RTT seen in a minute.
6613  * We keep upto N_RTT_BASE minutes worth of history.
6614  */
6615 void
update_base_rtt(struct tcpcb * tp,uint32_t rtt)6616 update_base_rtt(struct tcpcb *tp, uint32_t rtt)
6617 {
6618 	u_int32_t base_rtt, i;
6619 	struct rtentry *rt;
6620 
6621 	if ((rt = tp->t_inpcb->inp_route.ro_rt) == NULL) {
6622 		return;
6623 	}
6624 	if (rt->rtt_expire_ts == 0) {
6625 		RT_LOCK_SPIN(rt);
6626 		if (rt->rtt_expire_ts != 0) {
6627 			RT_UNLOCK(rt);
6628 			goto update;
6629 		}
6630 		rt->rtt_expire_ts = tcp_now;
6631 		rt->rtt_index = 0;
6632 		rt->rtt_hist[0] = rtt;
6633 		rt->rtt_min = rtt;
6634 		RT_UNLOCK(rt);
6635 
6636 		tp->curr_rtt_index = 0;
6637 		tp->curr_rtt_hist[0] = rtt;
6638 		tp->curr_rtt_min = rtt;
6639 		return;
6640 	}
6641 update:
6642 #if TRAFFIC_MGT
6643 	/*
6644 	 * If the recv side is being throttled, check if the
6645 	 * current RTT is closer to the base RTT seen in
6646 	 * first (recent) two slots. If so, unthrottle the stream.
6647 	 */
6648 	if ((tp->t_flagsext & TF_RECV_THROTTLE) &&
6649 	    (int)(tcp_now - tp->t_recv_throttle_ts) >= TCP_RECV_THROTTLE_WIN) {
6650 		base_rtt = rt->rtt_min;
6651 		if (tp->t_rttcur <= (base_rtt + target_qdelay)) {
6652 			tp->t_flagsext &= ~TF_RECV_THROTTLE;
6653 			tp->t_recv_throttle_ts = 0;
6654 		}
6655 	}
6656 #endif /* TRAFFIC_MGT */
6657 
6658 	/* Update the next current RTT sample */
6659 	update_curr_rtt(tp, rtt);
6660 
6661 	if ((int)(tcp_now - rt->rtt_expire_ts) >=
6662 	    TCP_RTT_HISTORY_EXPIRE_TIME) {
6663 		RT_LOCK_SPIN(rt);
6664 		/* check the condition again to avoid race */
6665 		if ((int)(tcp_now - rt->rtt_expire_ts) >=
6666 		    TCP_RTT_HISTORY_EXPIRE_TIME) {
6667 			/* Set the base rtt to 0 for idle periods */
6668 			uint32_t times = MIN((tcp_now - rt->rtt_expire_ts) /
6669 			    TCP_RTT_HISTORY_EXPIRE_TIME, NRTT_HIST + 1);
6670 
6671 			for (i = rt->rtt_index + 1; i < rt->rtt_index + times; i++) {
6672 				rt->rtt_hist[i % NRTT_HIST] = 0;
6673 			}
6674 
6675 			rt->rtt_index = i % NRTT_HIST;
6676 			rt->rtt_hist[rt->rtt_index] = rtt;
6677 			rt->rtt_expire_ts = tcp_now;
6678 		} else {
6679 			rt->rtt_hist[rt->rtt_index] =
6680 			    min(rt->rtt_hist[rt->rtt_index], rtt);
6681 		}
6682 		/* forget the old value and update minimum */
6683 		rt->rtt_min = 0;
6684 		for (i = 0; i < NRTT_HIST; ++i) {
6685 			if (rt->rtt_hist[i] != 0 &&
6686 			    (rt->rtt_min == 0 ||
6687 			    rt->rtt_hist[i] < rt->rtt_min)) {
6688 				rt->rtt_min = rt->rtt_hist[i];
6689 			}
6690 		}
6691 		RT_UNLOCK(rt);
6692 	} else {
6693 		rt->rtt_hist[rt->rtt_index] =
6694 		    min(rt->rtt_hist[rt->rtt_index], rtt);
6695 		if (rt->rtt_min == 0) {
6696 			rt->rtt_min = rtt;
6697 		} else {
6698 			rt->rtt_min = min(rt->rtt_min, rtt);
6699 		}
6700 	}
6701 }
6702 
6703 /*
6704  * If we have a timestamp reply, update smoothed RTT. If no timestamp is
6705  * present but transmit timer is running and timed sequence number was
6706  * acked, update smoothed RTT.
6707  *
6708  * If timestamps are supported, a receiver can update RTT even if
6709  * there is no outstanding data.
6710  *
6711  * Some boxes send broken timestamp replies during the SYN+ACK phase,
6712  * ignore timestamps of 0or we could calculate a huge RTT and blow up
6713  * the retransmit timer.
6714  */
6715 static void
tcp_compute_rtt(struct tcpcb * tp,struct tcpopt * to,struct tcphdr * th)6716 tcp_compute_rtt(struct tcpcb *tp, struct tcpopt *to, struct tcphdr *th)
6717 {
6718 	int rtt = 0;
6719 	VERIFY(to != NULL && th != NULL);
6720 	if (tp->t_rtttime != 0 && SEQ_GT(th->th_ack, tp->t_rtseq)) {
6721 		u_int32_t pipe_ack_val;
6722 		rtt = tcp_now - tp->t_rtttime;
6723 		if (rtt == 0) {
6724 			/*
6725 			 * Make adjustment for sub ms RTT when
6726 			 * timestamps are not used.
6727 			 */
6728 			rtt = 1;
6729 		}
6730 		/*
6731 		 * Compute pipe ack -- the amount of data acknowledged
6732 		 * in the last RTT -- only works for sender
6733 		 */
6734 		if (SEQ_GT(th->th_ack, tp->t_pipeack_lastuna)) {
6735 			pipe_ack_val = th->th_ack - tp->t_pipeack_lastuna;
6736 			/* Update the sample */
6737 			tp->t_pipeack_sample[tp->t_pipeack_ind++] =
6738 			    pipe_ack_val;
6739 			tp->t_pipeack_ind %= TCP_PIPEACK_SAMPLE_COUNT;
6740 
6741 			/* Compute the max of the pipeack samples */
6742 			pipe_ack_val = tcp_get_max_pipeack(tp);
6743 			tp->t_pipeack = (pipe_ack_val >
6744 			    tcp_initial_cwnd(tp)) ?
6745 			    pipe_ack_val : 0;
6746 		}
6747 		/* start another measurement */
6748 		tp->t_rtttime = 0;
6749 	}
6750 	if (((to->to_flags & TOF_TS) != 0) &&
6751 	    (to->to_tsecr != 0) &&
6752 	    TSTMP_GEQ(tcp_now, to->to_tsecr)) {
6753 		tcp_xmit_timer(tp, (tcp_now - to->to_tsecr),
6754 		    to->to_tsecr, th->th_ack);
6755 	} else if (rtt > 0) {
6756 		tcp_xmit_timer(tp, rtt, 0, th->th_ack);
6757 	}
6758 }
6759 
6760 static void
tcp_compute_rcv_rtt(struct tcpcb * tp,struct tcpopt * to,struct tcphdr * th)6761 tcp_compute_rcv_rtt(struct tcpcb *tp, struct tcpopt *to, struct tcphdr *th)
6762 {
6763 	uint32_t rtt = 0, delta = 0;
6764 	VERIFY(to != NULL && th != NULL);
6765 
6766 	/* Calculate RTT */
6767 	if (((to->to_flags & TOF_TS) != 0) && (to->to_tsecr != 0) &&
6768 	    TSTMP_GEQ(tcp_now, to->to_tsecr)) {
6769 		/* Timestamp is supported */
6770 		rtt = tcp_now - to->to_tsecr;
6771 		if (rtt == 0) {
6772 			/* Make adjustment for sub ms RTT */
6773 			rtt = 1;
6774 		}
6775 	} else if ((to->to_flags & TOF_TS) == 0) {
6776 		/*
6777 		 * Timestamp is not supported, 1RTT is roughly
6778 		 * the time to receive one full window of data
6779 		 * Currently, RTT calculated this way is only used
6780 		 * for auto-tuning.
6781 		 */
6782 		if (tp->rcv_rtt_est_ts != 0) {
6783 			if (SEQ_LT(tp->rcv_nxt, tp->rcv_rtt_est_seq)) {
6784 				/* Haven't received a full window yet */
6785 				return;
6786 			} else {
6787 				rtt = tcp_now - tp->rcv_rtt_est_ts;
6788 				if (rtt == 0) {
6789 					/* Make adjustment for sub ms RTT */
6790 					rtt = 1;
6791 				}
6792 			}
6793 		} else {
6794 			/* Use default value when no RTT measurement */
6795 			rtt = TCPTV_RCVNOTS_QUANTUM;
6796 		}
6797 		/* Restart the measurement */
6798 		tp->rcv_rtt_est_ts = tcp_now;
6799 		tp->rcv_rtt_est_seq = tp->rcv_nxt + tp->rcv_wnd;
6800 	}
6801 
6802 	/* Update receiver's SRTT */
6803 	if (tp->rcv_srtt != 0) {
6804 		/*
6805 		 * Use the smoothed rtt formula,
6806 		 * (srtt = rtt/8 + srtt*7/8) in fixed point
6807 		 */
6808 		delta = (rtt << TCP_DELTA_SHIFT)
6809 		    - (tp->rcv_srtt >> (TCP_RTT_SHIFT - TCP_DELTA_SHIFT));
6810 
6811 		if ((tp->rcv_srtt += delta) <= 0) {
6812 			tp->rcv_srtt = 1;
6813 		}
6814 	} else {
6815 		/* No previous measurement */
6816 		tp->rcv_srtt = rtt << TCP_RTT_SHIFT;
6817 	}
6818 
6819 	/*
6820 	 * For current RTT, base RTT and current RTT over k samples,
6821 	 * we are using the same state for both sender and receiver
6822 	 * as the most recent sample is always updated before any
6823 	 * other processing, i.e. the sender will not end up with
6824 	 * a high RTT due to the receiver.
6825 	 */
6826 	tp->t_rttcur = rtt;
6827 	update_base_rtt(tp, rtt);
6828 }
6829 
6830 /*
6831  * Collect new round-trip time estimate and update averages and
6832  * current timeout.
6833  */
6834 static void
tcp_xmit_timer(struct tcpcb * tp,int rtt,u_int32_t tsecr,tcp_seq th_ack)6835 tcp_xmit_timer(struct tcpcb *tp, int rtt,
6836     u_int32_t tsecr, tcp_seq th_ack)
6837 {
6838 	VERIFY(rtt >= 0);
6839 	int delta;
6840 	int old_srtt = tp->t_srtt;
6841 	int old_rttvar = tp->t_rttvar;
6842 	bool log_rtt = false;
6843 
6844 	if (rtt == 0) {
6845 		/*
6846 		 * As rtt has millisecond precision,
6847 		 * make adjustment for sub ms RTT
6848 		 */
6849 		rtt = 1;
6850 	}
6851 
6852 	if (rtt > 4 * TCPTV_MSL) {
6853 		TCP_LOG(tp, "%s: rtt is %d - maxing it at 4 x MSL\n", __func__, rtt);
6854 		/*
6855 		 * We compute RTT either based on the time-to-ACK a packet,
6856 		 * if TSval is disabled or based on the TSecr value.
6857 		 * If there is a middlebox messing up the TSecr value, we can
6858 		 * end up having HUGE rtt values, causing all kinds of problems.
6859 		 * Let's protect against this by capping RTT to 4*MSL
6860 		 * (60seconds).
6861 		 */
6862 		rtt = 4 * TCPTV_MSL;
6863 	}
6864 
6865 	/*
6866 	 * On AWDL interface, the initial RTT measurement on SYN
6867 	 * can be wrong due to peer caching. Avoid the first RTT
6868 	 * measurement as it might skew up the RTO.
6869 	 * <rdar://problem/28739046>
6870 	 */
6871 	if (tp->t_inpcb->inp_last_outifp != NULL &&
6872 	    (tp->t_inpcb->inp_last_outifp->if_eflags & IFEF_AWDL) &&
6873 	    th_ack == tp->iss + 1) {
6874 		return;
6875 	}
6876 
6877 	if (tp->t_flagsext & TF_RECOMPUTE_RTT) {
6878 		if (SEQ_GT(th_ack, tp->snd_una) &&
6879 		    SEQ_LEQ(th_ack, tp->snd_max) &&
6880 		    (tsecr == 0 ||
6881 		    TSTMP_GEQ(tsecr, tp->t_badrexmt_time))) {
6882 			/*
6883 			 * We received a new ACK after a
6884 			 * spurious timeout. Adapt retransmission
6885 			 * timer as described in rfc 4015.
6886 			 */
6887 			tp->t_flagsext &= ~(TF_RECOMPUTE_RTT);
6888 			tp->t_badrexmt_time = 0;
6889 			tp->t_srtt = max(tp->t_srtt_prev, rtt);
6890 			tp->t_srtt = tp->t_srtt << TCP_RTT_SHIFT;
6891 			tp->t_rttvar = max(tp->t_rttvar_prev, (rtt >> 1));
6892 			tp->t_rttvar = tp->t_rttvar << TCP_RTTVAR_SHIFT;
6893 
6894 			if (tp->t_rttbest > (tp->t_srtt + tp->t_rttvar)) {
6895 				tp->t_rttbest = tp->t_srtt + tp->t_rttvar;
6896 			}
6897 
6898 			goto compute_rto;
6899 		} else {
6900 			return;
6901 		}
6902 	}
6903 
6904 	tcpstat.tcps_rttupdated++;
6905 	tp->t_rttupdated++;
6906 
6907 	tp->t_rttcur = rtt;
6908 	update_base_rtt(tp, rtt);
6909 
6910 	if (tp->t_srtt != 0) {
6911 		/*
6912 		 * srtt is stored as fixed point with 5 bits after the
6913 		 * binary point (i.e., scaled by 32).  The following magic
6914 		 * is equivalent to the smoothing algorithm in rfc793 with
6915 		 * an alpha of .875 (srtt = rtt/8 + srtt*7/8 in fixed
6916 		 * point).
6917 		 *
6918 		 * Freebsd adjusts rtt to origin 0 by subtracting 1
6919 		 * from the provided rtt value. This was required because
6920 		 * of the way t_rtttime was initiailised to 1 before.
6921 		 * Since we changed t_rtttime to be based on
6922 		 * tcp_now, this extra adjustment is not needed.
6923 		 */
6924 		delta = (rtt << TCP_DELTA_SHIFT)
6925 		    - (tp->t_srtt >> (TCP_RTT_SHIFT - TCP_DELTA_SHIFT));
6926 
6927 		if ((tp->t_srtt += delta) <= 0) {
6928 			tp->t_srtt = 1;
6929 		}
6930 
6931 		/*
6932 		 * We accumulate a smoothed rtt variance (actually, a
6933 		 * smoothed mean difference), then set the retransmit
6934 		 * timer to smoothed rtt + 4 times the smoothed variance.
6935 		 * rttvar is stored as fixed point with 4 bits after the
6936 		 * binary point (scaled by 16).  The following is
6937 		 * equivalent to rfc793 smoothing with an alpha of .75
6938 		 * (rttvar = rttvar*3/4 + |delta| / 4).  This replaces
6939 		 * rfc793's wired-in beta.
6940 		 */
6941 		if (delta < 0) {
6942 			delta = -delta;
6943 		}
6944 		delta -= tp->t_rttvar >> (TCP_RTTVAR_SHIFT - TCP_DELTA_SHIFT);
6945 		if ((tp->t_rttvar += delta) <= 0) {
6946 			tp->t_rttvar = 1;
6947 		}
6948 		if (tp->t_rttbest == 0 ||
6949 		    tp->t_rttbest > (tp->t_srtt + tp->t_rttvar)) {
6950 			tp->t_rttbest = tp->t_srtt + tp->t_rttvar;
6951 		}
6952 	} else {
6953 		/*
6954 		 * No rtt measurement yet - use the unsmoothed rtt.
6955 		 * Set the variance to half the rtt (so our first
6956 		 * retransmit happens at 3*rtt).
6957 		 */
6958 		tp->t_srtt = rtt << TCP_RTT_SHIFT;
6959 		tp->t_rttvar = rtt << (TCP_RTTVAR_SHIFT - 1);
6960 		tp->t_rttbest = tp->t_srtt + tp->t_rttvar;
6961 
6962 		/* Initialize the receive SRTT */
6963 		if (tp->rcv_srtt == 0) {
6964 			tp->rcv_srtt = tp->t_srtt;
6965 		}
6966 	}
6967 
6968 compute_rto:
6969 	nstat_route_rtt(tp->t_inpcb->inp_route.ro_rt, tp->t_srtt,
6970 	    tp->t_rttvar);
6971 
6972 	/*
6973 	 * the retransmit should happen at rtt + 4 * rttvar.
6974 	 * Because of the way we do the smoothing, srtt and rttvar
6975 	 * will each average +1/2 tick of bias.  When we compute
6976 	 * the retransmit timer, we want 1/2 tick of rounding and
6977 	 * 1 extra tick because of +-1/2 tick uncertainty in the
6978 	 * firing of the timer.  The bias will give us exactly the
6979 	 * 1.5 tick we need.  But, because the bias is
6980 	 * statistical, we have to test that we don't drop below
6981 	 * the minimum feasible timer (which is 2 ticks).
6982 	 */
6983 	TCPT_RANGESET(tp->t_rxtcur, TCP_REXMTVAL(tp),
6984 	    max(tp->t_rttmin, rtt + 2), TCPTV_REXMTMAX,
6985 	    TCP_ADD_REXMTSLOP(tp));
6986 
6987 	/*
6988 	 * We received an ack for a packet that wasn't retransmitted;
6989 	 * it is probably safe to discard any error indications we've
6990 	 * received recently.  This isn't quite right, but close enough
6991 	 * for now (a route might have failed after we sent a segment,
6992 	 * and the return path might not be symmetrical).
6993 	 */
6994 	tp->t_softerror = 0;
6995 
6996 	if (log_rtt) {
6997 		TCP_LOG_RTT_INFO(tp);
6998 	}
6999 
7000 	tcp_update_pacer_state(tp);
7001 
7002 	TCP_LOG_RTT_CHANGE(tp, old_srtt, old_rttvar);
7003 }
7004 
7005 static inline unsigned int
tcp_maxmtu(struct rtentry * rt)7006 tcp_maxmtu(struct rtentry *rt)
7007 {
7008 	unsigned int maxmtu;
7009 	int interface_mtu = 0;
7010 
7011 	RT_LOCK_ASSERT_HELD(rt);
7012 	interface_mtu = rt->rt_ifp->if_mtu;
7013 
7014 	if (rt_key(rt)->sa_family == AF_INET &&
7015 	    INTF_ADJUST_MTU_FOR_CLAT46(rt->rt_ifp)) {
7016 		interface_mtu = IN6_LINKMTU(rt->rt_ifp);
7017 		/* Further adjust the size for CLAT46 expansion */
7018 		interface_mtu -= CLAT46_HDR_EXPANSION_OVERHD;
7019 	}
7020 
7021 	if (rt->rt_rmx.rmx_mtu == 0) {
7022 		maxmtu = interface_mtu;
7023 	} else {
7024 		maxmtu = MIN(rt->rt_rmx.rmx_mtu, interface_mtu);
7025 	}
7026 
7027 	return maxmtu;
7028 }
7029 
7030 static inline unsigned int
tcp_maxmtu6(struct rtentry * rt)7031 tcp_maxmtu6(struct rtentry *rt)
7032 {
7033 	unsigned int maxmtu;
7034 	struct nd_ifinfo *ndi = NULL;
7035 
7036 	RT_LOCK_ASSERT_HELD(rt);
7037 	if ((ndi = ND_IFINFO(rt->rt_ifp)) != NULL && !ndi->initialized) {
7038 		ndi = NULL;
7039 	}
7040 	if (ndi != NULL) {
7041 		lck_mtx_lock(&ndi->lock);
7042 	}
7043 	if (rt->rt_rmx.rmx_mtu == 0) {
7044 		maxmtu = IN6_LINKMTU(rt->rt_ifp);
7045 	} else {
7046 		maxmtu = MIN(rt->rt_rmx.rmx_mtu, IN6_LINKMTU(rt->rt_ifp));
7047 	}
7048 	if (ndi != NULL) {
7049 		lck_mtx_unlock(&ndi->lock);
7050 	}
7051 
7052 	return maxmtu;
7053 }
7054 
7055 unsigned int
get_maxmtu(struct rtentry * rt)7056 get_maxmtu(struct rtentry *rt)
7057 {
7058 	unsigned int maxmtu = 0;
7059 
7060 	RT_LOCK_ASSERT_NOTHELD(rt);
7061 
7062 	RT_LOCK(rt);
7063 
7064 	if (rt_key(rt)->sa_family == AF_INET6) {
7065 		maxmtu = tcp_maxmtu6(rt);
7066 	} else {
7067 		maxmtu = tcp_maxmtu(rt);
7068 	}
7069 
7070 	RT_UNLOCK(rt);
7071 
7072 	return maxmtu;
7073 }
7074 
7075 /*
7076  * Determine a reasonable value for maxseg size.
7077  * If the route is known, check route for mtu.
7078  * If none, use an mss that can be handled on the outgoing
7079  * interface without forcing IP to fragment; if bigger than
7080  * an mbuf cluster (MCLBYTES), round down to nearest multiple of MCLBYTES
7081  * to utilize large mbufs.  If no route is found, route has no mtu,
7082  * or the destination isn't local, use a default, hopefully conservative
7083  * size (usually 512 or the default IP max size, but no more than the mtu
7084  * of the interface), as we can't discover anything about intervening
7085  * gateways or networks.  We also initialize the congestion/slow start
7086  * window. While looking at the routing entry, we also initialize
7087  * other path-dependent parameters from pre-set or cached values
7088  * in the routing entry.
7089  *
7090  * Also take into account the space needed for options that we
7091  * send regularly.  Make maxseg shorter by that amount to assure
7092  * that we can send maxseg amount of data even when the options
7093  * are present.  Store the upper limit of the length of options plus
7094  * data in maxopd.
7095  *
7096  * NOTE that this routine is only called when we process an incoming
7097  * segment, for outgoing segments only tcp_mssopt is called.
7098  *
7099  */
7100 void
tcp_mss(struct tcpcb * tp,int offer,unsigned int input_ifscope)7101 tcp_mss(struct tcpcb *tp, int offer, unsigned int input_ifscope)
7102 {
7103 	struct rtentry *rt;
7104 	struct ifnet *ifp;
7105 	int mss;
7106 	uint32_t bufsize;
7107 	struct inpcb *inp;
7108 	struct socket *so;
7109 	int origoffer = offer;
7110 	int isipv6;
7111 	int min_protoh;
7112 
7113 	inp = tp->t_inpcb;
7114 
7115 	so = inp->inp_socket;
7116 	/*
7117 	 * Nothing left to send after the socket is defunct or TCP is in the closed state
7118 	 */
7119 	if ((so->so_state & SS_DEFUNCT) || tp->t_state == TCPS_CLOSED) {
7120 		return;
7121 	}
7122 
7123 	isipv6 = ((inp->inp_vflag & INP_IPV6) != 0) ? 1 : 0;
7124 	min_protoh = isipv6 ? sizeof(struct ip6_hdr) + sizeof(struct tcphdr)
7125 	    : sizeof(struct tcpiphdr);
7126 
7127 	if (isipv6) {
7128 		rt = tcp_rtlookup6(inp, input_ifscope);
7129 	} else {
7130 		rt = tcp_rtlookup(inp, input_ifscope);
7131 	}
7132 
7133 	if (rt == NULL) {
7134 		tp->t_maxopd = tp->t_maxseg = isipv6 ? tcp_v6mssdflt : tcp_mssdflt;
7135 		return;
7136 	}
7137 	ifp = rt->rt_ifp;
7138 	/*
7139 	 * Slower link window correction:
7140 	 * If a value is specificied for slowlink_wsize use it for
7141 	 * PPP links believed to be on a serial modem (speed <128Kbps).
7142 	 * Excludes 9600bps as it is the default value adversized
7143 	 * by pseudo-devices over ppp.
7144 	 */
7145 	if (ifp->if_type == IFT_PPP && slowlink_wsize > 0 &&
7146 	    ifp->if_baudrate > 9600 && ifp->if_baudrate <= 128000) {
7147 		tp->t_flags |= TF_SLOWLINK;
7148 	}
7149 
7150 	/*
7151 	 * Offer == -1 means that we didn't receive SYN yet. Use 0 then.
7152 	 */
7153 	if (offer == -1) {
7154 		offer = rt->rt_rmx.rmx_filler[0];
7155 	}
7156 	/*
7157 	 * Offer == 0 means that there was no MSS on the SYN segment,
7158 	 * in this case we use tcp_mssdflt.
7159 	 */
7160 	if (offer == 0) {
7161 		offer = isipv6 ? tcp_v6mssdflt : tcp_mssdflt;
7162 	} else {
7163 		/*
7164 		 * Prevent DoS attack with too small MSS. Round up
7165 		 * to at least minmss.
7166 		 */
7167 		offer = max(offer, tcp_minmss);
7168 		/*
7169 		 * Sanity check: make sure that maxopd will be large
7170 		 * enough to allow some data on segments even is the
7171 		 * all the option space is used (40bytes).  Otherwise
7172 		 * funny things may happen in tcp_output.
7173 		 */
7174 		offer = max(offer, 64);
7175 	}
7176 	rt->rt_rmx.rmx_filler[0] = offer;
7177 
7178 	/*
7179 	 * While we're here, check if there's an initial rtt
7180 	 * or rttvar.  Convert from the route-table units
7181 	 * to scaled multiples of the slow timeout timer.
7182 	 */
7183 	if (tp->t_srtt == 0 && rt->rt_rmx.rmx_rtt != 0) {
7184 		tcp_getrt_rtt(tp, rt);
7185 	} else {
7186 		tp->t_rttmin = TCPTV_REXMTMIN;
7187 	}
7188 
7189 	mss = (isipv6 ? tcp_maxmtu6(rt) : tcp_maxmtu(rt));
7190 
7191 	mss = tcp_get_effective_mtu(rt, mss);
7192 #if NECP
7193 	// At this point, the mss is just the MTU. Adjust if necessary.
7194 	mss = necp_socket_get_effective_mtu(inp, mss);
7195 #endif /* NECP */
7196 
7197 	mss -= min_protoh;
7198 
7199 	if (rt->rt_rmx.rmx_mtu == 0) {
7200 		if (isipv6) {
7201 			mss = min(mss, tcp_v6mssdflt);
7202 		} else {
7203 			mss = min(mss, tcp_mssdflt);
7204 		}
7205 	}
7206 
7207 	mss = min(mss, offer);
7208 	/*
7209 	 * maxopd stores the maximum length of data AND options
7210 	 * in a segment; maxseg is the amount of data in a normal
7211 	 * segment.  We need to store this value (maxopd) apart
7212 	 * from maxseg, because now every segment carries options
7213 	 * and thus we normally have somewhat less data in segments.
7214 	 */
7215 	tp->t_maxopd = mss;
7216 
7217 	/*
7218 	 * origoffer==-1 indicates, that no segments were received yet.
7219 	 * In this case we just guess.
7220 	 */
7221 	if ((tp->t_flags & (TF_REQ_TSTMP | TF_NOOPT)) == TF_REQ_TSTMP &&
7222 	    (origoffer == -1 ||
7223 	    (tp->t_flags & TF_RCVD_TSTMP) == TF_RCVD_TSTMP)) {
7224 		mss -= TCPOLEN_TSTAMP_APPA;
7225 	}
7226 
7227 #if MPTCP
7228 	mss -= mptcp_adj_mss(tp, FALSE);
7229 #endif /* MPTCP */
7230 	tp->t_maxseg = mss;
7231 
7232 	/*
7233 	 * If there's a pipesize (ie loopback), change the socket
7234 	 * buffer to that size only if it's bigger than the current
7235 	 * sockbuf size.  Make the socket buffers an integral
7236 	 * number of mss units; if the mss is larger than
7237 	 * the socket buffer, decrease the mss.
7238 	 */
7239 #if RTV_SPIPE
7240 	bufsize = rt->rt_rmx.rmx_sendpipe;
7241 	if (bufsize < so->so_snd.sb_hiwat)
7242 #endif
7243 	bufsize = so->so_snd.sb_hiwat;
7244 	if (bufsize < mss) {
7245 		mss = bufsize;
7246 	} else {
7247 		bufsize = (((bufsize + mss - 1) / mss) * mss);
7248 		(void)sbreserve(&so->so_snd, bufsize);
7249 	}
7250 	tp->t_maxseg = mss;
7251 
7252 	ASSERT(tp->t_maxseg);
7253 
7254 	/*
7255 	 * Update MSS using recommendation from link status report. This is
7256 	 * temporary
7257 	 */
7258 	tcp_update_mss_locked(so, ifp);
7259 
7260 #if RTV_RPIPE
7261 	bufsize = rt->rt_rmx.rmx_recvpipe;
7262 	if (bufsize < so->so_rcv.sb_hiwat)
7263 #endif
7264 	bufsize = so->so_rcv.sb_hiwat;
7265 	if (bufsize > mss) {
7266 		bufsize = (((bufsize + mss - 1) / mss) * mss);
7267 		(void)sbreserve(&so->so_rcv, bufsize);
7268 	}
7269 
7270 	set_tcp_stream_priority(so);
7271 
7272 	if (rt->rt_rmx.rmx_ssthresh) {
7273 		/*
7274 		 * There's some sort of gateway or interface
7275 		 * buffer limit on the path.  Use this to set
7276 		 * slow-start threshold, but set the threshold to
7277 		 * no less than 2*mss.
7278 		 */
7279 		tp->snd_ssthresh = max(2 * mss, rt->rt_rmx.rmx_ssthresh);
7280 		tcpstat.tcps_usedssthresh++;
7281 	} else {
7282 		tp->snd_ssthresh = TCP_MAXWIN << TCP_MAX_WINSHIFT;
7283 	}
7284 
7285 	/*
7286 	 * Set the slow-start flight size depending on whether this
7287 	 * is a local network or not.
7288 	 */
7289 	if (CC_ALGO(tp)->cwnd_init != NULL) {
7290 		CC_ALGO(tp)->cwnd_init(tp);
7291 	}
7292 
7293 	tcp_ccdbg_trace(tp, NULL, TCP_CC_CWND_INIT);
7294 
7295 	if (TCP_USE_RLEDBAT(tp, so) && tcp_cc_rledbat.rwnd_init != NULL) {
7296 		tcp_cc_rledbat.rwnd_init(tp);
7297 	}
7298 
7299 	/* Route locked during lookup above */
7300 	RT_UNLOCK(rt);
7301 }
7302 
7303 /*
7304  * Determine the MSS option to send on an outgoing SYN.
7305  */
7306 int
tcp_mssopt(struct tcpcb * tp)7307 tcp_mssopt(struct tcpcb *tp)
7308 {
7309 	struct rtentry *rt;
7310 	int mss;
7311 	int isipv6;
7312 	int min_protoh;
7313 
7314 	isipv6 = ((tp->t_inpcb->inp_vflag & INP_IPV6) != 0) ? 1 : 0;
7315 	min_protoh = isipv6 ? sizeof(struct ip6_hdr) + sizeof(struct tcphdr)
7316 	    : sizeof(struct tcpiphdr);
7317 
7318 	if (isipv6) {
7319 		rt = tcp_rtlookup6(tp->t_inpcb, IFSCOPE_NONE);
7320 	} else {
7321 		rt = tcp_rtlookup(tp->t_inpcb, IFSCOPE_NONE);
7322 	}
7323 	if (rt == NULL) {
7324 		return isipv6 ? tcp_v6mssdflt : tcp_mssdflt;
7325 	}
7326 	/*
7327 	 * Slower link window correction:
7328 	 * If a value is specificied for slowlink_wsize use it for PPP links
7329 	 * believed to be on a serial modem (speed <128Kbps). Excludes 9600bps as
7330 	 * it is the default value adversized by pseudo-devices over ppp.
7331 	 */
7332 	if (rt->rt_ifp->if_type == IFT_PPP && slowlink_wsize > 0 &&
7333 	    rt->rt_ifp->if_baudrate > 9600 && rt->rt_ifp->if_baudrate <= 128000) {
7334 		tp->t_flags |= TF_SLOWLINK;
7335 	}
7336 
7337 	mss = (isipv6 ? tcp_maxmtu6(rt) : tcp_maxmtu(rt));
7338 
7339 	mss = tcp_get_effective_mtu(rt, mss);
7340 
7341 	/* Route locked during lookup above */
7342 	RT_UNLOCK(rt);
7343 
7344 #if NECP
7345 	// At this point, the mss is just the MTU. Adjust if necessary.
7346 	mss = necp_socket_get_effective_mtu(tp->t_inpcb, mss);
7347 #endif /* NECP */
7348 
7349 	return mss - min_protoh;
7350 }
7351 
7352 /*
7353  * On a partial ack arrives, force the retransmission of the
7354  * next unacknowledged segment.  Do not clear tp->t_dupacks.
7355  * By setting snd_nxt to th_ack, this forces retransmission timer to
7356  * be started again.
7357  */
7358 static void
tcp_newreno_partial_ack(struct tcpcb * tp,struct tcphdr * th)7359 tcp_newreno_partial_ack(struct tcpcb *tp, struct tcphdr *th)
7360 {
7361 	tcp_seq onxt = tp->snd_nxt;
7362 	u_int32_t  ocwnd = tp->snd_cwnd;
7363 	tp->t_timer[TCPT_REXMT] = 0;
7364 	tp->t_timer[TCPT_PTO] = 0;
7365 	tp->t_rtttime = 0;
7366 	tp->snd_nxt = th->th_ack;
7367 	/*
7368 	 * Set snd_cwnd to one segment beyond acknowledged offset
7369 	 * (tp->snd_una has not yet been updated when this function
7370 	 *  is called)
7371 	 */
7372 	tp->snd_cwnd = tp->t_maxseg + BYTES_ACKED(th, tp);
7373 	(void) tcp_output(tp);
7374 	tp->snd_cwnd = ocwnd;
7375 	if (SEQ_GT(onxt, tp->snd_nxt)) {
7376 		tp->snd_nxt = onxt;
7377 	}
7378 	/*
7379 	 * Partial window deflation.  Relies on fact that tp->snd_una
7380 	 * not updated yet.
7381 	 */
7382 	if (tp->snd_cwnd > BYTES_ACKED(th, tp)) {
7383 		tp->snd_cwnd -= BYTES_ACKED(th, tp);
7384 	} else {
7385 		tp->snd_cwnd = 0;
7386 	}
7387 	tp->snd_cwnd += tp->t_maxseg;
7388 }
7389 
7390 /*
7391  * Drop a random TCP connection that hasn't been serviced yet and
7392  * is eligible for discard.  There is a one in qlen chance that
7393  * we will return a null, saying that there are no dropable
7394  * requests.  In this case, the protocol specific code should drop
7395  * the new request.  This insures fairness.
7396  *
7397  * The listening TCP socket "head" must be locked
7398  */
7399 static int
tcp_dropdropablreq(struct socket * head)7400 tcp_dropdropablreq(struct socket *head)
7401 {
7402 	struct socket *so, *sonext;
7403 	unsigned int j, qlen;
7404 	static uint32_t rnd = 0;
7405 	static uint64_t old_runtime;
7406 	static unsigned int cur_cnt, old_cnt;
7407 	uint64_t now_sec, i;
7408 	struct inpcb *inp = NULL;
7409 	struct tcpcb *tp;
7410 
7411 	if ((head->so_options & SO_ACCEPTCONN) == 0) {
7412 		return 0;
7413 	}
7414 
7415 	if (TAILQ_EMPTY(&head->so_incomp)) {
7416 		return 0;
7417 	}
7418 
7419 	so_acquire_accept_list(head, NULL);
7420 	socket_unlock(head, 0);
7421 
7422 	/*
7423 	 * Check if there is any socket in the incomp queue
7424 	 * that is closed because of a reset from the peer and is
7425 	 * waiting to be garbage collected. If so, pick that as
7426 	 * the victim
7427 	 */
7428 	TAILQ_FOREACH_SAFE(so, &head->so_incomp, so_list, sonext) {
7429 		inp = sotoinpcb(so);
7430 		tp = intotcpcb(inp);
7431 		if (tp != NULL && tp->t_state == TCPS_CLOSED &&
7432 		    so->so_head != NULL &&
7433 		    (so->so_state & (SS_INCOMP | SS_CANTSENDMORE | SS_CANTRCVMORE)) ==
7434 		    (SS_INCOMP | SS_CANTSENDMORE | SS_CANTRCVMORE)) {
7435 			/*
7436 			 * The listen socket is already locked but we
7437 			 * can lock this socket here without lock ordering
7438 			 * issues because it is in the incomp queue and
7439 			 * is not visible to others.
7440 			 */
7441 			if (socket_try_lock(so)) {
7442 				so->so_usecount++;
7443 				goto found_victim;
7444 			} else {
7445 				continue;
7446 			}
7447 		}
7448 	}
7449 
7450 	so = TAILQ_FIRST(&head->so_incomp);
7451 
7452 	now_sec = net_uptime();
7453 	if ((i = (now_sec - old_runtime)) != 0) {
7454 		old_runtime = now_sec;
7455 		old_cnt = cur_cnt / i;
7456 		cur_cnt = 0;
7457 	}
7458 
7459 	qlen = head->so_incqlen;
7460 	if (rnd == 0) {
7461 		rnd = RandomULong();
7462 	}
7463 
7464 	if (++cur_cnt > qlen || old_cnt > qlen) {
7465 		rnd = (314159 * rnd + 66329) & 0xffff;
7466 		j = ((qlen + 1) * rnd) >> 16;
7467 
7468 		while (j-- && so) {
7469 			so = TAILQ_NEXT(so, so_list);
7470 		}
7471 	}
7472 	/* Find a connection that is not already closing (or being served) */
7473 	while (so) {
7474 		inp = (struct inpcb *)so->so_pcb;
7475 
7476 		sonext = TAILQ_NEXT(so, so_list);
7477 
7478 		if (in_pcb_checkstate(inp, WNT_ACQUIRE, 0) != WNT_STOPUSING) {
7479 			/*
7480 			 * Avoid the issue of a socket being accepted
7481 			 * by one input thread and being dropped by
7482 			 * another input thread. If we can't get a hold
7483 			 * on this mutex, then grab the next socket in
7484 			 * line.
7485 			 */
7486 			if (socket_try_lock(so)) {
7487 				so->so_usecount++;
7488 				if ((so->so_usecount == 2) &&
7489 				    (so->so_state & SS_INCOMP) &&
7490 				    !(so->so_flags & SOF_INCOMP_INPROGRESS)) {
7491 					break;
7492 				} else {
7493 					/*
7494 					 * don't use if being accepted or
7495 					 * used in any other way
7496 					 */
7497 					in_pcb_checkstate(inp, WNT_RELEASE, 1);
7498 					socket_unlock(so, 1);
7499 				}
7500 			} else {
7501 				/*
7502 				 * do not try to lock the inp in
7503 				 * in_pcb_checkstate because the lock
7504 				 * is already held in some other thread.
7505 				 * Only drop the inp_wntcnt reference.
7506 				 */
7507 				in_pcb_checkstate(inp, WNT_RELEASE, 1);
7508 			}
7509 		}
7510 		so = sonext;
7511 	}
7512 	if (so == NULL) {
7513 		socket_lock(head, 0);
7514 		so_release_accept_list(head);
7515 		return 0;
7516 	}
7517 
7518 	/* Makes sure socket is still in the right state to be discarded */
7519 
7520 	if (in_pcb_checkstate(inp, WNT_RELEASE, 1) == WNT_STOPUSING) {
7521 		socket_unlock(so, 1);
7522 		socket_lock(head, 0);
7523 		so_release_accept_list(head);
7524 		return 0;
7525 	}
7526 
7527 found_victim:
7528 	if (so->so_usecount != 2 || !(so->so_state & SS_INCOMP)) {
7529 		/* do not discard: that socket is being accepted */
7530 		socket_unlock(so, 1);
7531 		socket_lock(head, 0);
7532 		so_release_accept_list(head);
7533 		return 0;
7534 	}
7535 
7536 	socket_lock(head, 0);
7537 	TAILQ_REMOVE(&head->so_incomp, so, so_list);
7538 	head->so_incqlen--;
7539 	head->so_qlen--;
7540 	so->so_state &= ~SS_INCOMP;
7541 	so->so_flags |= SOF_OVERFLOW;
7542 	so->so_head = NULL;
7543 	so_release_accept_list(head);
7544 	socket_unlock(head, 0);
7545 
7546 	socket_lock_assert_owned(so);
7547 	tp = sototcpcb(so);
7548 
7549 	tcp_close(tp);
7550 	if (inp->inp_wantcnt > 0 && inp->inp_wantcnt != WNT_STOPUSING) {
7551 		/*
7552 		 * Some one has a wantcnt on this pcb. Since WNT_ACQUIRE
7553 		 * doesn't require a lock, it could have happened while
7554 		 * we are holding the lock. This pcb will have to
7555 		 * be garbage collected later.
7556 		 * Release the reference held for so_incomp queue
7557 		 */
7558 		VERIFY(so->so_usecount > 0);
7559 		so->so_usecount--;
7560 		socket_unlock(so, 1);
7561 	} else {
7562 		/*
7563 		 * Unlock this socket and leave the reference on.
7564 		 * We need to acquire the pcbinfo lock in order to
7565 		 * fully dispose it off
7566 		 */
7567 		socket_unlock(so, 0);
7568 
7569 		lck_rw_lock_exclusive(&tcbinfo.ipi_lock);
7570 
7571 		socket_lock(so, 0);
7572 		/* Release the reference held for so_incomp queue */
7573 		VERIFY(so->so_usecount > 0);
7574 		so->so_usecount--;
7575 
7576 		if (so->so_usecount != 1 ||
7577 		    (inp->inp_wantcnt > 0 &&
7578 		    inp->inp_wantcnt != WNT_STOPUSING)) {
7579 			/*
7580 			 * There is an extra wantcount or usecount
7581 			 * that must have been added when the socket
7582 			 * was unlocked. This socket will have to be
7583 			 * garbage collected later
7584 			 */
7585 			socket_unlock(so, 1);
7586 		} else {
7587 			/* Drop the reference held for this function */
7588 			VERIFY(so->so_usecount > 0);
7589 			so->so_usecount--;
7590 
7591 			in_pcbdispose(inp);
7592 		}
7593 		lck_rw_done(&tcbinfo.ipi_lock);
7594 	}
7595 	tcpstat.tcps_drops++;
7596 
7597 	socket_lock(head, 0);
7598 	return 1;
7599 }
7600 
7601 /* Set background congestion control on a socket */
7602 void
tcp_set_background_cc(struct socket * so)7603 tcp_set_background_cc(struct socket *so)
7604 {
7605 	tcp_set_new_cc(so, TCP_CC_ALGO_BACKGROUND_INDEX);
7606 }
7607 
7608 /* Set foreground congestion control on a socket */
7609 void
tcp_set_foreground_cc(struct socket * so)7610 tcp_set_foreground_cc(struct socket *so)
7611 {
7612 	if (tcp_use_newreno) {
7613 		tcp_set_new_cc(so, TCP_CC_ALGO_NEWRENO_INDEX);
7614 #if (DEVELOPMENT || DEBUG)
7615 	} else if (tcp_use_ledbat) {
7616 		/* Only used for testing */
7617 		tcp_set_new_cc(so, TCP_CC_ALGO_BACKGROUND_INDEX);
7618 #endif
7619 	} else {
7620 		struct inpcb *inp = sotoinpcb(so);
7621 		struct tcpcb *tp = intotcpcb(inp);
7622 		if (tp->l4s_enabled) {
7623 			tcp_set_new_cc(so, TCP_CC_ALGO_PRAGUE_INDEX);
7624 		} else {
7625 			tcp_set_new_cc(so, TCP_CC_ALGO_CUBIC_INDEX);
7626 		}
7627 	}
7628 }
7629 
7630 static void
tcp_set_new_cc(struct socket * so,uint8_t cc_index)7631 tcp_set_new_cc(struct socket *so, uint8_t cc_index)
7632 {
7633 	struct inpcb *inp = sotoinpcb(so);
7634 	struct tcpcb *tp = intotcpcb(inp);
7635 
7636 	if (tp->tcp_cc_index != cc_index) {
7637 		if (CC_ALGO(tp)->cleanup != NULL) {
7638 			CC_ALGO(tp)->cleanup(tp);
7639 		}
7640 		tp->tcp_cc_index = cc_index;
7641 
7642 		tcp_cc_allocate_state(tp);
7643 
7644 		if (CC_ALGO(tp)->switch_to != NULL) {
7645 			CC_ALGO(tp)->switch_to(tp);
7646 		}
7647 
7648 		tcp_ccdbg_trace(tp, NULL, TCP_CC_CHANGE_ALGO);
7649 	}
7650 }
7651 
7652 void
tcp_set_recv_bg(struct socket * so)7653 tcp_set_recv_bg(struct socket *so)
7654 {
7655 	if (!IS_TCP_RECV_BG(so)) {
7656 		so->so_flags1 |= SOF1_TRAFFIC_MGT_TCP_RECVBG;
7657 
7658 		struct inpcb *inp = sotoinpcb(so);
7659 		struct tcpcb *tp = intotcpcb(inp);
7660 
7661 		if (TCP_RLEDBAT_ENABLED(tp) && tcp_cc_rledbat.switch_to != NULL) {
7662 			tcp_cc_rledbat.switch_to(tp);
7663 		}
7664 	}
7665 }
7666 
7667 void
tcp_clear_recv_bg(struct socket * so)7668 tcp_clear_recv_bg(struct socket *so)
7669 {
7670 	if (IS_TCP_RECV_BG(so)) {
7671 		so->so_flags1 &= ~(SOF1_TRAFFIC_MGT_TCP_RECVBG);
7672 	}
7673 }
7674 
7675 void
inp_fc_throttle_tcp(struct inpcb * inp)7676 inp_fc_throttle_tcp(struct inpcb *inp)
7677 {
7678 	tcpcb_ref_t tp = inp->inp_ppcb;
7679 
7680 	/*
7681 	 * Back off the slow-start threshold and enter
7682 	 * congestion avoidance phase
7683 	 */
7684 	if (CC_ALGO(tp)->pre_fr != NULL) {
7685 		CC_ALGO(tp)->pre_fr(tp);
7686 	}
7687 }
7688 
7689 void
inp_fc_unthrottle_tcp(struct inpcb * inp)7690 inp_fc_unthrottle_tcp(struct inpcb *inp)
7691 {
7692 	tcpcb_ref_t tp = inp->inp_ppcb;
7693 	struct ifnet *outifp = inp->inp_last_outifp;
7694 
7695 	if (CC_ALGO(tp)->post_fr != NULL) {
7696 		CC_ALGO(tp)->post_fr(tp, NULL);
7697 	}
7698 
7699 	tp->t_bytes_acked = 0;
7700 
7701 	/*
7702 	 * Reset retransmit shift as we know that the reason
7703 	 * for delay in sending a packet is due to flow
7704 	 * control on the outgoing interface. There is no need
7705 	 * to backoff retransmit timer.
7706 	 */
7707 	if (tp->t_rxtshift != 0 && outifp != NULL &&
7708 	    IFNET_IS_CELLULAR(outifp)) {
7709 		TCP_LOG(tp, "inp_fc_unthrottle_tcp keep rxmit state t_rxtshift %d", tp->t_rxtshift);
7710 	} else {
7711 		TCP_RESET_REXMT_STATE(tp);
7712 	}
7713 
7714 	tp->t_flagsext &= ~TF_CWND_NONVALIDATED;
7715 
7716 	/*
7717 	 * Start the output stream again. Since we are
7718 	 * not retransmitting data, do not reset the
7719 	 * retransmit timer or rtt calculation.
7720 	 */
7721 	tcp_output(tp);
7722 }
7723 
7724 static int
7725 tcp_getstat SYSCTL_HANDLER_ARGS
7726 {
7727 #pragma unused(oidp, arg1, arg2)
7728 
7729 	int error;
7730 	struct tcpstat *stat;
7731 	stat = &tcpstat;
7732 
7733 #if XNU_TARGET_OS_OSX
7734 	struct tcpstat zero_stat;
7735 
7736 	if (tcp_disable_access_to_stats &&
7737 	    !kauth_cred_issuser(kauth_cred_get())) {
7738 		bzero(&zero_stat, sizeof(zero_stat));
7739 		stat = &zero_stat;
7740 	}
7741 
7742 #endif /* XNU_TARGET_OS_OSX */
7743 
7744 	if (req->oldptr == 0) {
7745 		req->oldlen = (size_t)sizeof(struct tcpstat);
7746 	}
7747 
7748 	error = SYSCTL_OUT(req, stat, MIN(sizeof(tcpstat), req->oldlen));
7749 
7750 	return error;
7751 }
7752 
7753 /*
7754  * Checksum extended TCP header and data.
7755  */
7756 int
tcp_input_checksum(int af,struct mbuf * m,struct tcphdr * th,int off,int tlen)7757 tcp_input_checksum(int af, struct mbuf *m, struct tcphdr *th, int off, int tlen)
7758 {
7759 	struct ifnet *ifp = m->m_pkthdr.rcvif;
7760 
7761 	switch (af) {
7762 	case AF_INET: {
7763 		struct ip *ip = mtod(m, struct ip *);
7764 		struct ipovly *ipov = (struct ipovly *)ip;
7765 
7766 		/* ip_stripoptions() must have been called before we get here */
7767 		ASSERT((ip->ip_hl << 2) == sizeof(*ip));
7768 
7769 		if ((hwcksum_rx || (ifp->if_flags & IFF_LOOPBACK) ||
7770 		    (m->m_pkthdr.pkt_flags & PKTF_LOOP)) &&
7771 		    (m->m_pkthdr.csum_flags & CSUM_DATA_VALID)) {
7772 			if (m->m_pkthdr.csum_flags & CSUM_PSEUDO_HDR) {
7773 				th->th_sum = m->m_pkthdr.csum_rx_val;
7774 			} else {
7775 				uint32_t sum = m->m_pkthdr.csum_rx_val;
7776 				uint32_t start = m->m_pkthdr.csum_rx_start;
7777 				int32_t trailer = (m_pktlen(m) - (off + tlen));
7778 
7779 				/*
7780 				 * Perform 1's complement adjustment of octets
7781 				 * that got included/excluded in the hardware-
7782 				 * calculated checksum value.  Ignore cases
7783 				 * where the value already includes the entire
7784 				 * IP header span, as the sum for those octets
7785 				 * would already be 0 by the time we get here;
7786 				 * IP has already performed its header checksum
7787 				 * checks.  If we do need to adjust, restore
7788 				 * the original fields in the IP header when
7789 				 * computing the adjustment value.  Also take
7790 				 * care of any trailing bytes and subtract out
7791 				 * their partial sum.
7792 				 */
7793 				ASSERT(trailer >= 0);
7794 				if ((m->m_pkthdr.csum_flags & CSUM_PARTIAL) &&
7795 				    ((start != 0 && start != off) || trailer)) {
7796 					uint32_t swbytes = (uint32_t)trailer;
7797 
7798 					if (start < off) {
7799 						ip->ip_len += sizeof(*ip);
7800 #if BYTE_ORDER != BIG_ENDIAN
7801 						HTONS(ip->ip_len);
7802 						HTONS(ip->ip_off);
7803 #endif /* BYTE_ORDER != BIG_ENDIAN */
7804 					}
7805 					/* callee folds in sum */
7806 					sum = m_adj_sum16(m, start, off,
7807 					    tlen, sum);
7808 					if (off > start) {
7809 						swbytes += (off - start);
7810 					} else {
7811 						swbytes += (start - off);
7812 					}
7813 
7814 					if (start < off) {
7815 #if BYTE_ORDER != BIG_ENDIAN
7816 						NTOHS(ip->ip_off);
7817 						NTOHS(ip->ip_len);
7818 #endif /* BYTE_ORDER != BIG_ENDIAN */
7819 						ip->ip_len -= sizeof(*ip);
7820 					}
7821 
7822 					if (swbytes != 0) {
7823 						tcp_in_cksum_stats(swbytes);
7824 					}
7825 					if (trailer != 0) {
7826 						m_adj(m, -trailer);
7827 					}
7828 				}
7829 
7830 				/* callee folds in sum */
7831 				th->th_sum = in_pseudo(ip->ip_src.s_addr,
7832 				    ip->ip_dst.s_addr,
7833 				    sum + htonl(tlen + IPPROTO_TCP));
7834 			}
7835 			th->th_sum ^= 0xffff;
7836 		} else {
7837 			uint16_t ip_sum;
7838 			int len;
7839 			char b[9];
7840 
7841 			bcopy(ipov->ih_x1, b, sizeof(ipov->ih_x1));
7842 			bzero(ipov->ih_x1, sizeof(ipov->ih_x1));
7843 			ip_sum = ipov->ih_len;
7844 			ipov->ih_len = (u_short)tlen;
7845 #if BYTE_ORDER != BIG_ENDIAN
7846 			HTONS(ipov->ih_len);
7847 #endif
7848 			len = sizeof(struct ip) + tlen;
7849 			th->th_sum = in_cksum(m, len);
7850 			bcopy(b, ipov->ih_x1, sizeof(ipov->ih_x1));
7851 			ipov->ih_len = ip_sum;
7852 
7853 			tcp_in_cksum_stats(len);
7854 		}
7855 		break;
7856 	}
7857 	case AF_INET6: {
7858 		struct ip6_hdr *ip6 = mtod(m, struct ip6_hdr *);
7859 
7860 		if ((hwcksum_rx || (ifp->if_flags & IFF_LOOPBACK) ||
7861 		    (m->m_pkthdr.pkt_flags & PKTF_LOOP)) &&
7862 		    (m->m_pkthdr.csum_flags & CSUM_DATA_VALID)) {
7863 			if (m->m_pkthdr.csum_flags & CSUM_PSEUDO_HDR) {
7864 				th->th_sum = m->m_pkthdr.csum_rx_val;
7865 			} else {
7866 				uint32_t sum = m->m_pkthdr.csum_rx_val;
7867 				uint32_t start = m->m_pkthdr.csum_rx_start;
7868 				int32_t trailer = (m_pktlen(m) - (off + tlen));
7869 
7870 				/*
7871 				 * Perform 1's complement adjustment of octets
7872 				 * that got included/excluded in the hardware-
7873 				 * calculated checksum value.  Also take care
7874 				 * of any trailing bytes and subtract out their
7875 				 * partial sum.
7876 				 */
7877 				ASSERT(trailer >= 0);
7878 				if ((m->m_pkthdr.csum_flags & CSUM_PARTIAL) &&
7879 				    (start != off || trailer != 0)) {
7880 					uint16_t s = 0, d = 0;
7881 					uint32_t swbytes = (uint32_t)trailer;
7882 
7883 					if (IN6_IS_SCOPE_EMBED(&ip6->ip6_src)) {
7884 						s = ip6->ip6_src.s6_addr16[1];
7885 						ip6->ip6_src.s6_addr16[1] = 0;
7886 					}
7887 					if (IN6_IS_SCOPE_EMBED(&ip6->ip6_dst)) {
7888 						d = ip6->ip6_dst.s6_addr16[1];
7889 						ip6->ip6_dst.s6_addr16[1] = 0;
7890 					}
7891 
7892 					/* callee folds in sum */
7893 					sum = m_adj_sum16(m, start, off,
7894 					    tlen, sum);
7895 					if (off > start) {
7896 						swbytes += (off - start);
7897 					} else {
7898 						swbytes += (start - off);
7899 					}
7900 
7901 					if (IN6_IS_SCOPE_EMBED(&ip6->ip6_src)) {
7902 						ip6->ip6_src.s6_addr16[1] = s;
7903 					}
7904 					if (IN6_IS_SCOPE_EMBED(&ip6->ip6_dst)) {
7905 						ip6->ip6_dst.s6_addr16[1] = d;
7906 					}
7907 
7908 					if (swbytes != 0) {
7909 						tcp_in6_cksum_stats(swbytes);
7910 					}
7911 					if (trailer != 0) {
7912 						m_adj(m, -trailer);
7913 					}
7914 				}
7915 
7916 				th->th_sum = in6_pseudo(
7917 					&ip6->ip6_src, &ip6->ip6_dst,
7918 					sum + htonl(tlen + IPPROTO_TCP));
7919 			}
7920 			th->th_sum ^= 0xffff;
7921 		} else {
7922 			tcp_in6_cksum_stats(tlen);
7923 			th->th_sum = in6_cksum(m, IPPROTO_TCP, off, tlen);
7924 		}
7925 		break;
7926 	}
7927 	default:
7928 		VERIFY(0);
7929 		/* NOTREACHED */
7930 	}
7931 
7932 	if (th->th_sum != 0) {
7933 		tcpstat.tcps_rcvbadsum++;
7934 		IF_TCP_STATINC(ifp, badformat);
7935 		return -1;
7936 	}
7937 
7938 	return 0;
7939 }
7940 
7941 uint32_t
tcp_reass_qlen_space(struct socket * so)7942 tcp_reass_qlen_space(struct socket *so)
7943 {
7944 	uint32_t space = 0;
7945 	struct inpcb *inp = sotoinpcb(so);
7946 
7947 	if (inp != NULL) {
7948 		struct tcpcb *tp = intotcpcb(inp);
7949 
7950 		if (tp != NULL) {
7951 			space = tp->t_reassq_mbcnt;
7952 		}
7953 	}
7954 	return space;
7955 }
7956 
7957 
7958 SYSCTL_PROC(_net_inet_tcp, TCPCTL_STATS, stats,
7959     CTLTYPE_STRUCT | CTLFLAG_RD | CTLFLAG_LOCKED, 0, 0, tcp_getstat,
7960     "S,tcpstat", "TCP statistics (struct tcpstat, netinet/tcp_var.h)");
7961 
7962 static int
7963 sysctl_rexmtthresh SYSCTL_HANDLER_ARGS
7964 {
7965 #pragma unused(arg1, arg2)
7966 
7967 	int error, val = tcprexmtthresh;
7968 
7969 	error = sysctl_handle_int(oidp, &val, 0, req);
7970 	if (error || !req->newptr) {
7971 		return error;
7972 	}
7973 
7974 	/*
7975 	 * Constrain the number of duplicate ACKs
7976 	 * to consider for TCP fast retransmit
7977 	 * to either 2 or 3
7978 	 */
7979 
7980 	if (val < 2 || val > 3) {
7981 		return EINVAL;
7982 	}
7983 
7984 	tcprexmtthresh = (uint8_t)val;
7985 
7986 	return 0;
7987 }
7988 
7989 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, rexmt_thresh, CTLTYPE_INT | CTLFLAG_RW |
7990     CTLFLAG_LOCKED, &tcprexmtthresh, 0, &sysctl_rexmtthresh, "I",
7991     "Duplicate ACK Threshold for Fast Retransmit");
7992