xref: /xnu-12377.81.4/bsd/netinet/tcp_output.c (revision 043036a2b3718f7f0be807e2870f8f47d3fa0796)
1 /*
2  * Copyright (c) 2000-2024 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, 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_output.c	8.4 (Berkeley) 5/24/95
61  * $FreeBSD: src/sys/netinet/tcp_output.c,v 1.39.2.10 2001/07/07 04:30:38 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 <stdint.h>
71 #define _IP_VHL
72 
73 #include "tcp_includes.h"
74 
75 #include <sys/param.h>
76 #include <sys/systm.h>
77 #include <sys/kernel.h>
78 #include <sys/sysctl.h>
79 #include <sys/mbuf.h>
80 #include <sys/domain.h>
81 #include <sys/protosw.h>
82 #include <sys/socket.h>
83 #include <sys/socketvar.h>
84 #include <os/ptrtools.h>
85 #include <kern/clock.h>
86 
87 #include <net/route.h>
88 #include <net/ntstat.h>
89 #include <net/if_var.h>
90 #include <net/if.h>
91 #include <net/if_types.h>
92 #include <net/dlil.h>
93 #include <net/droptap.h>
94 
95 #include <netinet/in.h>
96 #include <netinet/in_systm.h>
97 #include <netinet/in_var.h>
98 #include <netinet/in_tclass.h>
99 #include <netinet/ip.h>
100 #include <netinet/in_pcb.h>
101 #include <netinet/ip_var.h>
102 #include <mach/sdt.h>
103 #include <netinet6/in6_pcb.h>
104 #include <netinet/ip6.h>
105 #include <netinet6/ip6_var.h>
106 #include <netinet/tcp.h>
107 #include <netinet/tcp_cache.h>
108 #include <netinet/tcp_fsm.h>
109 #include <netinet/tcp_seq.h>
110 #include <netinet/tcp_timer.h>
111 #include <netinet/tcp_var.h>
112 #include <netinet/tcpip.h>
113 #include <netinet/tcp_cc.h>
114 #include <netinet/tcp_log.h>
115 #include <sys/kdebug.h>
116 #include <mach/sdt.h>
117 
118 #if IPSEC
119 #include <netinet6/ipsec.h>
120 #endif /*IPSEC*/
121 
122 #if MPTCP
123 #include <netinet/mptcp_var.h>
124 #include <netinet/mptcp.h>
125 #include <netinet/mptcp_opt.h>
126 #include <netinet/mptcp_seq.h>
127 #endif
128 
129 #include <corecrypto/ccaes.h>
130 
131 #define DBG_LAYER_BEG           NETDBG_CODE(DBG_NETTCP, 1)
132 #define DBG_LAYER_END           NETDBG_CODE(DBG_NETTCP, 3)
133 #define DBG_FNC_TCP_OUTPUT      NETDBG_CODE(DBG_NETTCP, (4 << 8) | 1)
134 
135 SYSCTL_SKMEM_TCP_INT(OID_AUTO, path_mtu_discovery,
136     CTLFLAG_RW | CTLFLAG_LOCKED, int, path_mtu_discovery, 1,
137     "Enable Path MTU Discovery");
138 
139 SYSCTL_SKMEM_TCP_INT(OID_AUTO, local_slowstart_flightsize,
140     CTLFLAG_RW | CTLFLAG_LOCKED, int, ss_fltsz_local, 8,
141     "Slow start flight size for local networks");
142 
143 SYSCTL_SKMEM_TCP_INT(OID_AUTO, tso, CTLFLAG_RW | CTLFLAG_LOCKED,
144     int, tcp_do_tso, 1, "Enable TCP Segmentation Offload");
145 
146 SYSCTL_SKMEM_TCP_INT(OID_AUTO, ecn_setup_percentage,
147     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_ecn_setup_percentage, 100,
148     "Max ECN setup percentage");
149 
150 SYSCTL_SKMEM_TCP_INT(OID_AUTO, accurate_ecn,
151     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_acc_ecn, 0,
152     "Accurate ECN mode (0: disable, 1: enable Accurate ECN feedback");
153 
154 int tcp_l4s_developer = 0;
155 SYSCTL_INT(_net_inet_tcp, OID_AUTO, l4s_developer,
156     CTLFLAG_RW | CTLFLAG_LOCKED, &tcp_l4s_developer, 0,
157     "Developer L4S mode (0: system, 1: force enable L4S, 2: force disable L4S");
158 
159 SYSCTL_SKMEM_TCP_INT(OID_AUTO, l4s,
160     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_l4s, 0,
161     "System L4S mode (0: disable, 1: enable L4S");
162 
163 SYSCTL_SKMEM_TCP_INT(OID_AUTO, link_heuristics_flags,
164     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_link_heuristics_flags, TCP_LINK_HEURISTICS_DEFAULT,
165     "TCP LQM heuristics flags (1:rxmtcomp 2:noackpro 4:synrxmt 8:stealth 0x10:rtomin 0x20:notlp)");
166 
167 SYSCTL_SKMEM_TCP_INT(OID_AUTO, link_heuristics_rto_min,
168     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_link_heuristics_rto_min, TCP_DEFAULT_LINK_HEUR_RTOMIN,
169     "");
170 
171 SYSCTL_SKMEM_TCP_INT(OID_AUTO, allow_syn_prio,
172     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_allow_syn_prio, 0,
173     "");
174 
175 
176 // TO BE REMOVED
177 SYSCTL_SKMEM_TCP_INT(OID_AUTO, do_ack_compression,
178     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_do_ack_compression, 1,
179     "Enable TCP ACK compression (on (cell only): 1, off: 0, on (all interfaces): 2)");
180 
181 SYSCTL_SKMEM_TCP_INT(OID_AUTO, ack_compression_rate,
182     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_ack_compression_rate, TCP_COMP_CHANGE_RATE,
183     "Rate at which we force sending new ACKs (in ms)");
184 
185 SYSCTL_SKMEM_TCP_INT(OID_AUTO, randomize_timestamps,
186     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_randomize_timestamps, 1,
187     "Randomize TCP timestamps to prevent tracking (on: 1, off: 0)");
188 
189 static int
190 sysctl_change_ecn_setting SYSCTL_HANDLER_ARGS
191 {
192 #pragma unused(oidp, arg1, arg2)
193 	int i, err = 0, changed = 0;
194 
195 	err = sysctl_io_number(req, tcp_ecn, sizeof(int32_t),
196 	    &i, &changed);
197 	if (err != 0 || req->newptr == USER_ADDR_NULL) {
198 		return err;
199 	}
200 
201 	if (changed) {
202 		tcp_ecn = i;
203 		SYSCTL_SKMEM_UPDATE_FIELD(tcp.ecn, tcp_ecn);
204 	}
205 	return err;
206 }
207 
208 /* TODO: remove ecn_initiate_out once libnetcore ECN cleanup changes land */
209 int     tcp_ecn_outbound = 2;
210 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, ecn_initiate_out,
211     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_LOCKED, &tcp_ecn_outbound, 0,
212     sysctl_change_ecn_setting, "IU",
213     "Initiate ECN for outbound connections");
214 
215 int     tcp_ecn = 1;
216 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, ecn,
217     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_LOCKED, &tcp_ecn, 0,
218     sysctl_change_ecn_setting, "IU",
219     "ECN system setting (0: disable, 1: enable)");
220 
221 SYSCTL_SKMEM_TCP_INT(OID_AUTO, packetchain,
222     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_packet_chaining, 50,
223     "Enable TCP output packet chaining");
224 
225 SYSCTL_SKMEM_TCP_INT(OID_AUTO, socket_unlocked_on_output,
226     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_output_unlocked, 1,
227     "Unlock TCP when sending packets down to IP");
228 
229 SYSCTL_SKMEM_TCP_INT(OID_AUTO, min_iaj_win,
230     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_min_iaj_win, MIN_IAJ_WIN,
231     "Minimum recv win based on inter-packet arrival jitter");
232 
233 SYSCTL_SKMEM_TCP_INT(OID_AUTO, acc_iaj_react_limit,
234     CTLFLAG_RW | CTLFLAG_LOCKED, int, tcp_acc_iaj_react_limit,
235     ACC_IAJ_REACT_LIMIT, "Accumulated IAJ when receiver starts to react");
236 
237 SYSCTL_SKMEM_TCP_INT(OID_AUTO, autosndbufinc,
238     CTLFLAG_RW | CTLFLAG_LOCKED, uint32_t, tcp_autosndbuf_inc,
239     8 * 1024, "Increment in send socket bufffer size");
240 
241 SYSCTL_SKMEM_TCP_INT(OID_AUTO, autosndbufmax,
242     CTLFLAG_RW | CTLFLAG_LOCKED | CTLFLAG_KERN, uint32_t, tcp_autosndbuf_max, 2 * 1024 * 1024,
243     "Maximum send socket buffer size");
244 
245 SYSCTL_SKMEM_TCP_INT(OID_AUTO, rtt_recvbg,
246     CTLFLAG_RW | CTLFLAG_LOCKED, uint32_t, tcp_use_rtt_recvbg, 1,
247     "Use RTT for bg recv algorithm");
248 
249 SYSCTL_SKMEM_TCP_INT(OID_AUTO, recv_throttle_minwin,
250     CTLFLAG_RW | CTLFLAG_LOCKED, uint32_t, tcp_recv_throttle_minwin, 16 * 1024,
251     "Minimum recv win for throttling");
252 
253 SYSCTL_SKMEM_TCP_INT(OID_AUTO, enable_tlp,
254     CTLFLAG_RW | CTLFLAG_LOCKED,
255     int32_t, tcp_enable_tlp, 1, "Enable Tail loss probe");
256 
257 static int32_t packchain_newlist = 0;
258 static int32_t packchain_looped = 0;
259 static int32_t packchain_sent = 0;
260 
261 /* temporary: for testing */
262 #if IPSEC
263 extern int ipsec_bypass;
264 #endif
265 
266 extern int slowlink_wsize;      /* window correction for slow links */
267 
268 extern u_int32_t kipf_count;
269 
270 static int tcp_ip_output(struct socket *, struct tcpcb *, struct mbuf *,
271     int, struct mbuf *, int, int, boolean_t);
272 static int tcp_recv_throttle(struct tcpcb *tp);
273 
274 __attribute__((noinline))
275 static int32_t
tcp_tfo_check(struct tcpcb * tp,int32_t len)276 tcp_tfo_check(struct tcpcb *tp, int32_t len)
277 {
278 	struct socket *__single so = tp->t_inpcb->inp_socket;
279 	unsigned int optlen = 0;
280 	unsigned int cookie_len;
281 
282 	if (tp->t_flags & TF_NOOPT) {
283 		goto fallback;
284 	}
285 
286 	if (!(tp->t_flagsext & TF_FASTOPEN_FORCE_ENABLE) &&
287 	    !tcp_heuristic_do_tfo(tp)) {
288 		tp->t_tfo_stats |= TFO_S_HEURISTICS_DISABLE;
289 		tcpstat.tcps_tfo_heuristics_disable++;
290 		goto fallback;
291 	}
292 
293 	if (so->so_flags1 & SOF1_DATA_AUTHENTICATED) {
294 		return len;
295 	}
296 
297 	optlen += TCPOLEN_MAXSEG;
298 
299 	if (tp->t_flags & TF_REQ_SCALE) {
300 		optlen += 4;
301 	}
302 
303 #if MPTCP
304 	if ((so->so_flags & SOF_MP_SUBFLOW) && mptcp_enable &&
305 	    (tp->t_rxtshift <= mptcp_mpcap_retries ||
306 	    (tptomptp(tp)->mpt_mpte->mpte_flags & MPTE_FORCE_ENABLE))) {
307 		optlen += sizeof(struct mptcp_mpcapable_opt_common) + sizeof(mptcp_key_t);
308 	}
309 #endif /* MPTCP */
310 
311 	if (tp->t_flags & TF_REQ_TSTMP) {
312 		optlen += TCPOLEN_TSTAMP_APPA;
313 	}
314 
315 	if (SACK_ENABLED(tp)) {
316 		optlen += TCPOLEN_SACK_PERMITTED;
317 	}
318 
319 	/* Now, decide whether to use TFO or not */
320 
321 	/* Don't even bother trying if there is no space at all... */
322 	if (MAX_TCPOPTLEN - optlen < TCPOLEN_FASTOPEN_REQ) {
323 		goto fallback;
324 	}
325 
326 	cookie_len = tcp_cache_get_cookie_len(tp);
327 	if (cookie_len == 0) {
328 		/* No cookie, so we request one */
329 		return 0;
330 	}
331 
332 	/* There is not enough space for the cookie, so we cannot do TFO */
333 	if (MAX_TCPOPTLEN - optlen < cookie_len) {
334 		goto fallback;
335 	}
336 
337 	/* Do not send SYN+data if there is more in the queue than MSS */
338 	if (so->so_snd.sb_cc > (tp->t_maxopd - MAX_TCPOPTLEN)) {
339 		goto fallback;
340 	}
341 
342 	/* Ok, everything looks good. We can go on and do TFO */
343 	return len;
344 
345 fallback:
346 	tcp_disable_tfo(tp);
347 	return 0;
348 }
349 
350 /* Returns the number of bytes written to the TCP option-space */
351 __attribute__((noinline))
352 static unsigned int
353 tcp_tfo_write_cookie_rep(struct tcpcb *tp, unsigned int optlen,
354     u_char *__counted_by(optlen + 2 + TFO_COOKIE_LEN_DEFAULT) opt)
355 {
356 	u_char out[CCAES_BLOCK_SIZE];
357 	unsigned ret = 0;
358 	u_char *bp;
359 
360 	if (MAX_TCPOPTLEN - optlen <
361 	    TCPOLEN_FASTOPEN_REQ + TFO_COOKIE_LEN_DEFAULT) {
362 		return ret;
363 	}
364 
365 	tcp_tfo_gen_cookie(tp->t_inpcb, out, sizeof(out));
366 
367 	bp = opt + optlen;
368 
369 	*bp++ = TCPOPT_FASTOPEN;
370 	*bp++ = 2 + TFO_COOKIE_LEN_DEFAULT;
371 	memcpy(bp, out, TFO_COOKIE_LEN_DEFAULT);
372 	ret += 2 + TFO_COOKIE_LEN_DEFAULT;
373 
374 	tp->t_tfo_stats |= TFO_S_COOKIE_SENT;
375 	tcpstat.tcps_tfo_cookie_sent++;
376 
377 	return ret;
378 }
379 
380 __attribute__((noinline))
381 static unsigned int
tcp_tfo_write_cookie(struct tcpcb * tp,unsigned int optlen,int32_t len,u_char * __counted_by (TCP_MAXOLEN)opt)382 tcp_tfo_write_cookie(struct tcpcb *tp, unsigned int optlen, int32_t len,
383     u_char *__counted_by(TCP_MAXOLEN) opt)
384 {
385 	uint8_t tfo_len;
386 	struct socket *__single so = tp->t_inpcb->inp_socket;
387 	unsigned ret = 0;
388 	int res;
389 	u_char *bp;
390 
391 	if (TCPOLEN_FASTOPEN_REQ > MAX_TCPOPTLEN - optlen) {
392 		return 0;
393 	}
394 	tfo_len = (uint8_t)(MAX_TCPOPTLEN - optlen - TCPOLEN_FASTOPEN_REQ);
395 
396 	if (so->so_flags1 & SOF1_DATA_AUTHENTICATED) {
397 		/* If there is some data, let's track it */
398 		if (len > 0) {
399 			tp->t_tfo_stats |= TFO_S_SYN_DATA_SENT;
400 			tcpstat.tcps_tfo_syn_data_sent++;
401 		}
402 
403 		return 0;
404 	}
405 
406 	bp = opt + optlen;
407 
408 	/*
409 	 * The cookie will be copied in the appropriate place within the
410 	 * TCP-option space. That way we avoid the need for an intermediate
411 	 * variable.
412 	 */
413 	res = tcp_cache_get_cookie(tp, bp + TCPOLEN_FASTOPEN_REQ, tfo_len, &tfo_len);
414 	if (res == 0) {
415 		*bp++ = TCPOPT_FASTOPEN;
416 		*bp++ = TCPOLEN_FASTOPEN_REQ;
417 		ret += TCPOLEN_FASTOPEN_REQ;
418 
419 		tp->t_tfo_flags |= TFO_F_COOKIE_REQ;
420 
421 		tp->t_tfo_stats |= TFO_S_COOKIE_REQ;
422 		tcpstat.tcps_tfo_cookie_req++;
423 	} else {
424 		*bp++ = TCPOPT_FASTOPEN;
425 		*bp++ = TCPOLEN_FASTOPEN_REQ + tfo_len;
426 
427 		ret += TCPOLEN_FASTOPEN_REQ + tfo_len;
428 
429 		tp->t_tfo_flags |= TFO_F_COOKIE_SENT;
430 
431 		/* If there is some data, let's track it */
432 		if (len > 0) {
433 			tp->t_tfo_stats |= TFO_S_SYN_DATA_SENT;
434 			tcpstat.tcps_tfo_syn_data_sent++;
435 		}
436 	}
437 
438 	return ret;
439 }
440 
441 static inline bool
tcp_send_ecn_flags_on_syn(struct tcpcb * tp)442 tcp_send_ecn_flags_on_syn(struct tcpcb *tp)
443 {
444 	/* We allow Accurate ECN negotiation on first retransmission as well */
445 	bool send_on_first_retrans = (tp->ecn_flags & TE_ACE_SETUPSENT) &&
446 	    (tp->t_rxtshift <= 1);
447 
448 	return !(tp->ecn_flags & (TE_SETUPSENT | TE_ACE_SETUPSENT)) || send_on_first_retrans;
449 }
450 
451 /*
452  * Returns the RTO deadline as future Mach time value
453  * based on the TCPT_REXMT timer, if set.
454  */
455 static uint64_t
tcp_calculate_rto_deadline(const struct tcpcb * tp,uint32_t local_tcp_now)456 tcp_calculate_rto_deadline(const struct tcpcb *tp, uint32_t local_tcp_now)
457 {
458 	uint64_t rto_val = tp->t_timer[TCPT_REXMT];
459 	uint64_t rto_deadline_hz;
460 	uint64_t rto_offset_hz;
461 	uint64_t rto_offset_nano;
462 	uint64_t rto_deadline_mach;
463 	int      sojourn_factor = tcp_rto_sojourn_factor;
464 
465 	/*
466 	 * Check whether the TCPT_REXMT timer is set.
467 	 */
468 	if (rto_val == 0) {
469 		DTRACE_TCP3(rto_deadline, struct tcpcb *, tp, uint32_t, local_tcp_now, uint64_t, 0);
470 		return 0;
471 	}
472 
473 	/*
474 	 * Check whether the TCPT_REXMT timer has already expired.
475 	 */
476 	rto_deadline_hz = tp->tentry.te_timer_start + rto_val;
477 	if (rto_deadline_hz < local_tcp_now) {
478 		DTRACE_TCP3(rto_deadline, struct tcpcb *, tp, uint32_t, local_tcp_now, uint64_t, 0);
479 		return 0;
480 	}
481 
482 	/*
483 	 * Sanity check the sojourn factor
484 	 */
485 	if (sojourn_factor < 25) {
486 		sojourn_factor = 25;
487 	} else if (125 <= sojourn_factor) {
488 		sojourn_factor = 125; /* For testing */
489 	}
490 
491 	/*
492 	 * Convert the retransmit timer to Mach deadline in the future.
493 	 * This is done in two steps:
494 	 * 1. Convert the timer value from the TCP RETRANSHZ units to
495 	 *    a wall-clock timestamp (in nanosecond resolution).
496 	 * 2. Convert the wall-clock timestamp to a Mach timestamp.
497 	 */
498 	rto_offset_hz = rto_deadline_hz - local_tcp_now;
499 	rto_offset_hz = (uint64_t)((rto_offset_hz * sojourn_factor) / 100);
500 	rto_offset_nano = rto_offset_hz * TCP_RETRANSHZ_TO_USEC * NSEC_PER_USEC;
501 	nanoseconds_to_deadline(rto_offset_nano, &rto_deadline_mach);
502 
503 	DTRACE_TCP3(rto_deadline, struct tcpcb *, tp, uint32_t, local_tcp_now, uint64_t, rto_deadline_mach);
504 
505 	return rto_deadline_mach;
506 }
507 
508 
509 void
tcp_set_l4s(struct tcpcb * tp,struct ifnet * ifp)510 tcp_set_l4s(struct tcpcb *tp, struct ifnet *ifp)
511 {
512 	if (tp->t_state >= TCPS_ESTABLISHED) {
513 		return;
514 	}
515 
516 	/*
517 	 * L4S is enabled if,
518 	 * 1. It is not disabled explicitly by developer or interface setting or tcp options
519 	 * 2. It is enabled either by developer or interface setting or A/B deployment or tcp_options,
520 	 * It implicitly enables Accurate ECN which supports ACE and AccECN option for ECN feedback
521 	 */
522 	bool l4s_disabled = (tcp_l4s_developer == tcp_l4s_developer_disable ||
523 	    (ifp != NULL && ifp->if_l4s_mode == IFRTYPE_L4S_DISABLE) ||
524 	    (tp->t_flagsext & TF_L4S_DISABLED) == 1);
525 
526 	tp->l4s_enabled = !l4s_disabled && (tcp_l4s_developer == tcp_l4s_developer_enable ||
527 	    (ifp != NULL && ifp->if_l4s_mode == IFRTYPE_L4S_ENABLE) || tcp_l4s == 1 ||
528 	    ((tp->t_flagsext & TF_L4S_ENABLED)));
529 }
530 
531 void
tcp_set_accurate_ecn(struct tcpcb * tp)532 tcp_set_accurate_ecn(struct tcpcb *tp)
533 {
534 	if ((tp->ecn_flags & TE_ACC_ECN_ON) == TE_ACC_ECN_ON) {
535 		tp->accurate_ecn_on = true;
536 	} else {
537 		tp->accurate_ecn_on = false;
538 	}
539 }
540 
541 void
tcp_set_ecn(struct tcpcb * tp)542 tcp_set_ecn(struct tcpcb *tp)
543 {
544 	bool ecn_enabled = tcp_ecn_enabled(tp->ecn_flags);
545 
546 	if (!ecn_enabled || !tcp_heuristic_do_ecn(tp)) {
547 		tp->ecn_flags &= ~TE_ENABLE_ECN;
548 		return;
549 	}
550 
551 	/* ECN is enabled based on system settings */
552 	tp->ecn_flags |= TE_ENABLE_ECN;
553 
554 	if (tp->l4s_enabled) {
555 		/* Set the accurate ECN state */
556 		if (tp->t_client_accecn_state == tcp_connection_client_accurate_ecn_feature_disabled) {
557 			tp->t_client_accecn_state = tcp_connection_client_accurate_ecn_feature_enabled;
558 		}
559 		if (tp->t_server_accecn_state == tcp_connection_server_accurate_ecn_feature_disabled) {
560 			tp->t_server_accecn_state = tcp_connection_server_accurate_ecn_feature_enabled;
561 		}
562 	}
563 }
564 
565 bool
tcp_ecn_enabled(uint32_t ecn_flags)566 tcp_ecn_enabled(uint32_t ecn_flags)
567 {
568 	/*
569 	 * Socket option has precedence
570 	 */
571 	if (ecn_flags & TE_ECN_MODE_ENABLE) {
572 		return true;
573 	}
574 	if (ecn_flags & TE_ECN_MODE_DISABLE) {
575 		return false;
576 	}
577 
578 	/*
579 	 * System wide settings come last
580 	 */
581 	if (tcp_ecn == 1) {
582 		return true;
583 	} else {
584 		return false;
585 	}
586 }
587 
588 uint32_t
tcp_flight_size(struct tcpcb * tp)589 tcp_flight_size(struct tcpcb *tp)
590 {
591 	int ret;
592 
593 	VERIFY(tp->sackhint.sack_bytes_acked >= 0);
594 	VERIFY(tp->sackhint.sack_bytes_rexmit >= 0);
595 
596 	/*
597 	 * RFC6675, SetPipe (), SACK'd bytes are discounted. All the rest is still in-flight.
598 	 */
599 	ret = tp->snd_nxt - tp->snd_una - tp->sackhint.sack_bytes_acked;
600 
601 	if (TCP_RACK_ENABLED(tp)) {
602 		/* In flight is bytes sent - bytes that left the network + bytes retransmitted */
603 		const uint32_t bytes_sent = SEQ_MAX(tp->snd_max, tp->snd_nxt) - tp->snd_una;
604 		const uint32_t bytes_not_in_flight = tp->bytes_sacked + tp->bytes_lost;
605 		ret = bytes_sent - bytes_not_in_flight + tp->bytes_retransmitted;
606 	}
607 
608 	if (ret < 0) {
609 		/* It shouldn't happen when RACK is enabled */
610 		if (TCP_RACK_ENABLED(tp)) {
611 			os_log_error(OS_LOG_DEFAULT, "flight_size (%d) can't be negative "
612 			    "(snd_nxt:%u snd_max:%u, snd_una:%u, sacked:%u lost:%u retransmitted:%u)",
613 			    ret, tp->snd_nxt, tp->snd_max, tp->snd_una,
614 			    tp->bytes_sacked, tp->bytes_lost, tp->bytes_retransmitted);
615 		}
616 		/*
617 		 * This happens when the RTO-timer fires because snd_nxt gets artificially
618 		 * decreased. If we then receive some SACK-blogs, sack_bytes_acked is
619 		 * going to be high.
620 		 */
621 		ret = 0;
622 	}
623 
624 	return ret;
625 }
626 
627 /*
628  * Either of ECT0 or ECT1 flag should be set
629  * when this function is called
630  */
631 static void
tcp_add_accecn_option(struct tcpcb * tp,uint16_t flags,uint32_t * __indexable lp,uint8_t * optlen)632 tcp_add_accecn_option(struct tcpcb *tp, uint16_t flags, uint32_t *__indexable lp, uint8_t *optlen)
633 {
634 	uint8_t max_len = TCP_MAXOLEN - *optlen;
635 	uint8_t len = TCPOLEN_ACCECN_EMPTY;
636 
637 	uint32_t e1b = (uint32_t)(tp->t_aecn.t_rcv_ect1_bytes & TCP_ACO_MASK);
638 	uint32_t e0b = (uint32_t)(tp->t_aecn.t_rcv_ect0_bytes & TCP_ACO_MASK);
639 	uint32_t ceb =  (uint32_t)(tp->t_aecn.t_rcv_ce_bytes & TCP_ACO_MASK);
640 
641 	if (max_len < TCPOLEN_ACCECN_EMPTY) {
642 		TCP_LOG(tp, "not enough space to add any AccECN option");
643 		return;
644 	}
645 
646 	if (!(flags & TH_SYN || (tp->ecn_flags & TE_ACE_FINAL_ACK_3WHS) ||
647 	    tp->snd_una == tp->iss + 1 ||
648 	    tp->ecn_flags & (TE_ACO_ECT1 | TE_ACO_ECT0))) {
649 		/*
650 		 * Since this is neither a SYN-ACK packet, nor the final ACK of
651 		 * the 3WHS (nor the first acked data segment) nor any of the ECT byte
652 		 * counter flags are set, no need to send the option.
653 		 */
654 		return;
655 	}
656 
657 	if ((flags & (TH_SYN | TH_ACK)) == (TH_SYN | TH_ACK) &&
658 	    tp->t_rxtshift >= 1) {
659 		/*
660 		 * If this is a SYN-ACK retransmission (first),
661 		 * retry without AccECN option and just with ACE fields.
662 		 * From second retransmission onwards, we don't send any
663 		 * Accurate ECN state.
664 		 */
665 		return;
666 	}
667 
668 	if (max_len < (TCPOLEN_ACCECN_EMPTY + 1 * TCPOLEN_ACCECN_COUNTER)) {
669 		/* Can carry EMPTY option (2 bytes) which can be used to test path in SYN-ACK packet */
670 		if (flags & TH_SYN) {
671 			*(uint16_t *)lp++ = htons((TCPOPT_ACCECN1 << 8) | len);
672 			*optlen += len;
673 		}
674 	} else if (max_len < (TCPOLEN_ACCECN_EMPTY + 2 * TCPOLEN_ACCECN_COUNTER)) {
675 		/* Can carry one option */
676 		len += 1 * TCPOLEN_ACCECN_COUNTER;
677 		if (tp->ecn_flags & TE_ACO_ECT1) {
678 			*lp++ = htonl((TCPOPT_ACCECN1 << 24) | (len << 16) | ((e1b >> 8) & 0xffff));
679 			*(uint16_t *)lp++ = htons((uint16_t)((e1b & 0xff) << 8) | TCPOPT_NOP);
680 		} else {
681 			*lp++ = htonl((TCPOPT_ACCECN0 << 24) | (len << 16) | ((e0b >> 8) & 0xffff));
682 			*(uint16_t *)lp++ = htons((uint16_t)((e0b & 0xff) << 8) | TCPOPT_NOP);
683 		}
684 		*optlen += len + 1; /* 1 NOPs */
685 	} else if (max_len < (TCPOLEN_ACCECN_EMPTY + 3 * TCPOLEN_ACCECN_COUNTER)) {
686 		/* Can carry two options */
687 		len += 2 * TCPOLEN_ACCECN_COUNTER;
688 		if (tp->ecn_flags & TE_ACO_ECT1) {
689 			*lp++ = htonl((TCPOPT_ACCECN1 << 24) | (len << 16) | ((e1b >> 8) & 0xffff));
690 			*lp++ = htonl(((e1b & 0xff) << 24) | (ceb & 0xffffff));
691 		} else {
692 			*lp++ = htonl((TCPOPT_ACCECN0 << 24) | (len << 16) | ((e0b >> 8) & 0xffff));
693 			*lp++ = htonl(((e0b & 0xff) << 24) | (ceb & 0xffffff));
694 		}
695 		*optlen += len; /* 0 NOPs */
696 	} else {
697 		/*
698 		 * TCP option sufficient to hold full AccECN option
699 		 * but send counter that changed during the entire connection.
700 		 */
701 		len += 3 * TCPOLEN_ACCECN_COUNTER;
702 		/* Can carry all three options */
703 		if (tp->ecn_flags & TE_ACO_ECT1) {
704 			*lp++ = htonl((TCPOPT_ACCECN1 << 24) | (len << 16) | ((e1b >> 8) & 0xffff));
705 			*lp++ = htonl(((e1b & 0xff) << 24) | (ceb & 0xffffff));
706 			*lp++ = htonl(((e0b & 0xffffff) << 8) | TCPOPT_NOP);
707 		} else {
708 			*lp++ = htonl((TCPOPT_ACCECN0 << 24) | (len << 16) | ((e0b >> 8) & 0xffff));
709 			*lp++ = htonl(((e0b & 0xff) << 24) | (ceb & 0xffffff));
710 			*lp++ = htonl(((e1b & 0xffffff) << 8) | TCPOPT_NOP);
711 		}
712 		*optlen += len + 1; /* 1 NOP */
713 	}
714 }
715 
716 /*
717  * Insert TCP options according to the supplied parameters to the place
718  * optp in a consistent way.  Can handle unaligned destinations.
719  *
720  * The order of the option processing is crucial for optimal packing and
721  * alignment for the scarce option space.
722  *
723  * The optimal order for a SYN/SYN-ACK segment is:
724  *   MSS (4) + NOP (1) + Window scale (3) + SACK permitted (2) +
725  *   Timestamp (10) + Signature (18) = 38 bytes out of a maximum of 40.
726  *
727  * The SACK options should be last.  SACK blocks consume 8*n+2 bytes.
728  * So a full size SACK blocks option is 34 bytes (with 4 SACK blocks).
729  * At minimum we need 10 bytes (to generate 1 SACK block).  If both
730  * TCP Timestamps (12 bytes) and TCP Signatures (18 bytes) are present,
731  * we only have 10 bytes for SACK options (40 - (12 + 18)).
732  */
733 uint8_t
tcp_addoptions(struct tcpopt * to,u_char * __ended_by (optend)optp,u_char * optend)734 tcp_addoptions(struct tcpopt *to, u_char * __ended_by(optend) optp, u_char * optend)
735 {
736 	uint32_t mask;
737 	uint8_t optlen = 0;
738 
739 	for (mask = 1; mask < TOF_MAXOPT; mask <<= 1) {
740 		if ((to->to_flags & mask) != mask) {
741 			continue;
742 		}
743 		if (optlen == TCP_MAXOLEN) {
744 			break;
745 		}
746 		switch (to->to_flags & mask) {
747 		case TOF_MSS:
748 			while (optlen % 4) {
749 				optlen += TCPOLEN_NOP;
750 				*optp++ = TCPOPT_NOP;
751 			}
752 			if (TCP_MAXOLEN - optlen < TCPOLEN_MAXSEG) {
753 				continue;
754 			}
755 			optlen += TCPOLEN_MAXSEG;
756 			*optp++ = TCPOPT_MAXSEG;
757 			*optp++ = TCPOLEN_MAXSEG;
758 			to->to_mss = htons(to->to_mss);
759 			bcopy((u_char *)&to->to_mss, optp, sizeof(to->to_mss));
760 			optp += sizeof(to->to_mss);
761 			optend = optend;
762 			break;
763 		case TOF_SCALE:
764 			while (!optlen || optlen % 2 != 1) {
765 				optlen += TCPOLEN_NOP;
766 				*optp++ = TCPOPT_NOP;
767 			}
768 			if (TCP_MAXOLEN - optlen < TCPOLEN_WINDOW) {
769 				continue;
770 			}
771 			optlen += TCPOLEN_WINDOW;
772 			*optp++ = TCPOPT_WINDOW;
773 			*optp++ = TCPOLEN_WINDOW;
774 			*optp++ = to->to_wscale;
775 			break;
776 		case TOF_SACKPERM:
777 			while (optlen % 2) {
778 				optlen += TCPOLEN_NOP;
779 				*optp++ = TCPOPT_NOP;
780 			}
781 			if (TCP_MAXOLEN - optlen < TCPOLEN_SACK_PERMITTED) {
782 				continue;
783 			}
784 			optlen += TCPOLEN_SACK_PERMITTED;
785 			*optp++ = TCPOPT_SACK_PERMITTED;
786 			*optp++ = TCPOLEN_SACK_PERMITTED;
787 			break;
788 		case TOF_TS:
789 			while (!optlen || optlen % 4 != 2) {
790 				optlen += TCPOLEN_NOP;
791 				*optp++ = TCPOPT_NOP;
792 			}
793 			if (TCP_MAXOLEN - optlen < TCPOLEN_TIMESTAMP) {
794 				continue;
795 			}
796 			optlen += TCPOLEN_TIMESTAMP;
797 			*optp++ = TCPOPT_TIMESTAMP;
798 			*optp++ = TCPOLEN_TIMESTAMP;
799 			to->to_tsval = htonl(to->to_tsval);
800 			to->to_tsecr = htonl(to->to_tsecr);
801 			bcopy((u_char *)&to->to_tsval, optp, sizeof(to->to_tsval));
802 			optp += sizeof(to->to_tsval);
803 			optend = optend;
804 			bcopy((u_char *)&to->to_tsecr, optp, sizeof(to->to_tsecr));
805 			optp += sizeof(to->to_tsecr);
806 			optend = optend;
807 			break;
808 		case TOF_SACK:
809 		{
810 			int sackblks = 0;
811 			struct sackblk *sack = (struct sackblk *)(void *)to->to_sacks;
812 			tcp_seq sack_seq;
813 
814 			while (!optlen || optlen % 4 != 2) {
815 				optlen += TCPOLEN_NOP;
816 				*optp++ = TCPOPT_NOP;
817 			}
818 			if (TCP_MAXOLEN - optlen < TCPOLEN_SACKHDR + TCPOLEN_SACK) {
819 				continue;
820 			}
821 			optlen += TCPOLEN_SACKHDR;
822 			*optp++ = TCPOPT_SACK;
823 			sackblks = min(to->to_nsacks,
824 			    (TCP_MAXOLEN - optlen) / TCPOLEN_SACK);
825 			*optp++ = TCPOLEN_SACKHDR + (uint8_t)sackblks * TCPOLEN_SACK;
826 			while (sackblks--) {
827 				sack_seq = htonl(sack->start);
828 				bcopy((u_char *)&sack_seq, optp, sizeof(sack_seq));
829 				optp += sizeof(sack_seq);
830 				optend = optend;
831 				sack_seq = htonl(sack->end);
832 				bcopy((u_char *)&sack_seq, optp, sizeof(sack_seq));
833 				optp += sizeof(sack_seq);
834 				optend = optend;
835 				optlen += TCPOLEN_SACK;
836 				sack++;
837 			}
838 			tcpstat.tcps_sack_send_blocks++;
839 			break;
840 		}
841 		default:
842 			/* SYN cookies are disabled when TFO is used */
843 			break;
844 		}
845 	}
846 
847 	/* Terminate and pad TCP options to a 4 byte boundary. */
848 	if (optlen % 4) {
849 		optlen += TCPOLEN_EOL;
850 		*optp++ = TCPOPT_EOL;
851 	}
852 	/*
853 	 * According to RFC 793 (STD0007):
854 	 *   "The content of the header beyond the End-of-Option option
855 	 *    must be header padding (i.e., zero)."
856 	 *   and later: "The padding is composed of zeros."
857 	 */
858 	while (optlen % 4) {
859 		optlen += TCPOLEN_EOL;
860 		*optp++ = TCPOPT_EOL;
861 	}
862 
863 	ASSERT(optlen <= TCP_MAXOLEN);
864 	return optlen;
865 }
866 /*
867  * Set up the ECN information for the <SYN,ACK> from
868  * client SYN information.
869  */
870 static uint16_t
tcp_accecn_synack_respond(struct tcpcb * tp,uint16_t thflags)871 tcp_accecn_synack_respond(struct tcpcb * tp, uint16_t thflags)
872 {
873 	/* Server received either legacy or Accurate ECN setup SYN */
874 	if (tp->ecn_flags & (TE_SETUPRECEIVED | TE_ACE_SETUPRECEIVED)) {
875 		if (tcp_send_ecn_flags_on_syn(tp)) {
876 			if (tp->l4s_enabled && (tp->ecn_flags & TE_ACE_SETUPRECEIVED)) {
877 				/*
878 				 * Accurate ECN mode is on. Initialize packet and byte counters
879 				 * for the server sending SYN-ACK. Although s_cep will be initialized
880 				 * during input processing of ACK of SYN-ACK, initialize here as well
881 				 * in case ACK gets lost.
882 				 *
883 				 * Non-zero initial values are used to
884 				 * support a stateless handshake (see
885 				 * Section 5.1 of AccECN draft) and to be
886 				 * distinct from cases where the fields
887 				 * are incorrectly zeroed.
888 				 */
889 				tp->t_aecn.t_rcv_ce_packets = 5;
890 				tp->t_aecn.t_snd_ce_packets = 5;
891 
892 				/* Initialize CE byte counter to 0 */
893 				tp->t_aecn.t_rcv_ce_bytes = tp->t_aecn.t_snd_ce_bytes = 0;
894 
895 				if (tp->ecn_flags & TE_ACE_SETUP_NON_ECT) {
896 					tp->t_prev_ace_flags = TH_CWR;
897 					thflags |= tp->t_prev_ace_flags;
898 					/* Remove the setup flag as it is also used for final ACK */
899 					tp->ecn_flags &= ~TE_ACE_SETUP_NON_ECT;
900 					tcpstat.tcps_ecn_ace_syn_not_ect++;
901 				} else if (tp->ecn_flags & TE_ACE_SETUP_ECT1) {
902 					tp->t_prev_ace_flags = (TH_CWR | TH_ECE);
903 					thflags |= tp->t_prev_ace_flags;
904 					tp->ecn_flags &= ~TE_ACE_SETUP_ECT1;
905 					tcpstat.tcps_ecn_ace_syn_ect1++;
906 				} else if (tp->ecn_flags & TE_ACE_SETUP_ECT0) {
907 					tp->t_prev_ace_flags = TH_AE;
908 					thflags |= tp->t_prev_ace_flags;
909 					tp->ecn_flags &= ~TE_ACE_SETUP_ECT0;
910 					tcpstat.tcps_ecn_ace_syn_ect0++;
911 				} else if (tp->ecn_flags & TE_ACE_SETUP_CE) {
912 					tp->t_prev_ace_flags = (TH_AE | TH_CWR);
913 					thflags |= tp->t_prev_ace_flags;
914 					tp->ecn_flags &= ~TE_ACE_SETUP_CE;
915 					/*
916 					 * Receive counter is updated on
917 					 * all acceptable packets except
918 					 * CE on SYN packets (SYN=1, ACK=0)
919 					 */
920 					tcpstat.tcps_ecn_ace_syn_ce++;
921 				} else {
922 					if (tp->t_prev_ace_flags != 0) {
923 						/* Set the flags for retransmitted SYN-ACK same as the previous one */
924 						thflags |= tp->t_prev_ace_flags;
925 					} else {
926 						/* We shouldn't come here */
927 						panic("ECN flags (0x%x) not set correctly", tp->ecn_flags);
928 					}
929 				}
930 				/*
931 				 * We now send ECT1 packets when
932 				 * L4S and Accurate ECN mode is on
933 				 */
934 				tp->ecn_flags |= TE_ACE_SETUPSENT;
935 				if (tp->l4s_enabled) {
936 					tp->ecn_flags |= TE_SENDIPECT;
937 					tcp_set_accurate_ecn(tp);
938 				}
939 			} else if (tp->ecn_flags & TE_SETUPRECEIVED) {
940 				/*
941 				 * Setting TH_ECE makes this an ECN-setup
942 				 * SYN-ACK
943 				 */
944 				thflags |= TH_ECE;
945 				/*
946 				 * Record that we sent the ECN-setup and
947 				 * default to setting IP ECT.
948 				 */
949 				tp->ecn_flags |= (TE_SETUPSENT | TE_SENDIPECT);
950 			}
951 			tcpstat.tcps_ecn_server_setup++;
952 			tcpstat.tcps_ecn_server_success++;
953 		} else {
954 			/*
955 			 * For classic ECN, we sent an ECN-setup SYN-ACK but it was
956 			 * dropped. Fallback to non-ECN-setup
957 			 * SYN-ACK and clear flag to indicate that
958 			 * we should not send data with IP ECT set
959 			 *
960 			 * Pretend we didn't receive an
961 			 * ECN-setup SYN.
962 			 *
963 			 * We already incremented the counter
964 			 * assuming that the ECN setup will
965 			 * succeed. Decrementing here
966 			 * tcps_ecn_server_success to correct it.
967 			 *
968 			 * For Accurate ECN, we don't yet remove TE_ACE_SETUPRECEIVED
969 			 * as the client might have received Accurate ECN SYN-ACK.
970 			 * We decide Accurate ECN's state on processing last ACK from the client.
971 			 */
972 			if (tp->ecn_flags & (TE_SETUPSENT | TE_ACE_SETUPSENT)) {
973 				tcpstat.tcps_ecn_lost_synack++;
974 				tcpstat.tcps_ecn_server_success--;
975 				tp->ecn_flags |= TE_LOST_SYNACK;
976 			}
977 			if (!tp->l4s_enabled) {
978 				/* Do this only for classic ECN. */
979 				tp->ecn_flags &=
980 				    ~(TE_SETUPRECEIVED | TE_SENDIPECT |
981 				    TE_SENDCWR);
982 			}
983 		}
984 	}
985 	return thflags;
986 }
987 
988 /*
989  * Tcp output routine: figure out what should be sent and send it.
990  *
991  * Returns:	0			Success
992  *		EADDRNOTAVAIL
993  *		ENOBUFS
994  *		EMSGSIZE
995  *		EHOSTUNREACH
996  *		ENETDOWN
997  *	ip_output_list:ENOMEM
998  *	ip_output_list:EADDRNOTAVAIL
999  *	ip_output_list:ENETUNREACH
1000  *	ip_output_list:EHOSTUNREACH
1001  *	ip_output_list:EACCES
1002  *	ip_output_list:EMSGSIZE
1003  *	ip_output_list:ENOBUFS
1004  *	ip_output_list:???		[ignorable: mostly IPSEC/firewall/DLIL]
1005  *	ip6_output_list:EINVAL
1006  *	ip6_output_list:EOPNOTSUPP
1007  *	ip6_output_list:EHOSTUNREACH
1008  *	ip6_output_list:EADDRNOTAVAIL
1009  *	ip6_output_list:ENETUNREACH
1010  *	ip6_output_list:EMSGSIZE
1011  *	ip6_output_list:ENOBUFS
1012  *	ip6_output_list:???		[ignorable: mostly IPSEC/firewall/DLIL]
1013  */
1014 int
tcp_output(struct tcpcb * tp)1015 tcp_output(struct tcpcb *tp)
1016 {
1017 	uint32_t tcp_now_local = os_access_once(tcp_now);
1018 	uint32_t *tsvalptr;
1019 	uint64_t pacing_tx_time;
1020 	struct inpcb *__single inp = tp->t_inpcb;
1021 	struct socket *__single so = inp->inp_socket;
1022 	int32_t len, recwin, sendwin, off;
1023 	uint32_t max_len = 0;
1024 	uint16_t flags;
1025 	int error;
1026 	mbuf_ref_t m;
1027 	struct ip *ip = NULL;
1028 	struct ip6_hdr *ip6 = NULL;
1029 	struct tcphdr *th;
1030 	u_char opt[TCP_MAXOLEN];
1031 	unsigned int ipoptlen, optlen, hdrlen;
1032 	int idle, sendalot, lost = 0;
1033 	int sendalot_cnt = 0;
1034 	int i, rack_sack_rxmit = 0;
1035 	int tso = 0;
1036 	int sack_bytes_rxmt;
1037 	tcp_seq old_snd_nxt = 0;
1038 	struct sackhole *p;
1039 	struct tcp_seg_sent *seg;
1040 #if IPSEC
1041 	size_t ipsec_optlen = 0;
1042 #endif /* IPSEC */
1043 	int    idle_time = 0;
1044 	struct mbuf *__single packetlist = NULL;
1045 	struct mbuf *__single tp_inp_options = inp->inp_depend4.inp4_options;
1046 	int isipv6 = inp->inp_vflag & INP_IPV6;
1047 	int packchain_listadd = 0;
1048 	int so_options = so->so_options;
1049 	rtentry_ref_t rt;
1050 	u_int32_t svc_flags = 0, allocated_len;
1051 #if MPTCP
1052 	boolean_t mptcp_acknow;
1053 #endif /* MPTCP */
1054 	stats_functional_type ifnet_count_type = stats_functional_type_unclassified;
1055 	int sotc = so->so_traffic_class;
1056 	boolean_t do_not_compress = FALSE;
1057 	bool sack_rescue_rxt = false;
1058 	bool sack_rxmted = false;
1059 	bool link_heuristics_enabled = false;
1060 
1061 	struct ifnet *outifp = inp != NULL ? inp->inp_last_outifp : NULL;
1062 
1063 	/*
1064 	 * Determine length of data that should be transmitted,
1065 	 * and flags that will be used.
1066 	 * If there is some data or critical controls (SYN, RST)
1067 	 * to send, then transmit; otherwise, investigate further.
1068 	 */
1069 	idle = (tp->t_flags & TF_LASTIDLE) || (tp->snd_max == tp->snd_una);
1070 
1071 	/* Since idle_time is signed integer, the following integer subtraction
1072 	 * will take care of wrap around of tcp_now
1073 	 */
1074 	idle_time = tcp_now_local - tp->t_rcvtime;
1075 	if (idle && idle_time >= TCP_IDLETIMEOUT(tp)) {
1076 		if (CC_ALGO(tp)->after_idle != NULL &&
1077 		    ((tp->tcp_cc_index != TCP_CC_ALGO_CUBIC_INDEX &&
1078 		    tp->tcp_cc_index != TCP_CC_ALGO_PRAGUE_INDEX) ||
1079 		    idle_time >= TCP_CC_CWND_NONVALIDATED_PERIOD)) {
1080 			CC_ALGO(tp)->after_idle(tp);
1081 			tcp_ccdbg_trace(tp, NULL, TCP_CC_IDLE_TIMEOUT);
1082 		}
1083 
1084 		/*
1085 		 * Do some other tasks that need to be done after
1086 		 * idle time
1087 		 */
1088 		if (!SLIST_EMPTY(&tp->t_rxt_segments)) {
1089 			tcp_rxtseg_clean(tp);
1090 		}
1091 
1092 		tp->t_forced_acks = TCP_FORCED_ACKS_COUNT;
1093 	}
1094 	tp->t_flags &= ~TF_LASTIDLE;
1095 	if (idle) {
1096 		if (tp->t_flags & TF_MORETOCOME) {
1097 			tp->t_flags |= TF_LASTIDLE;
1098 			idle = 0;
1099 		}
1100 	}
1101 #if MPTCP
1102 	if (tp->t_mpflags & TMPF_RESET) {
1103 		tcp_check_timer_state(tp);
1104 		/*
1105 		 * Once a RST has been sent for an MPTCP subflow,
1106 		 * the subflow socket stays around until deleted.
1107 		 * No packets such as FINs must be sent after RST.
1108 		 */
1109 		return 0;
1110 	}
1111 #endif /* MPTCP */
1112 
1113 	link_heuristics_enabled = if_link_heuristics_enabled(outifp);
1114 
1115 again:
1116 	tcp_now_local = os_access_once(tcp_now);
1117 	pacing_tx_time = 0;
1118 	tsvalptr = NULL;
1119 #if MPTCP
1120 	mptcp_acknow = FALSE;
1121 
1122 	if (so->so_flags & SOF_MP_SUBFLOW && SEQ_LT(tp->snd_nxt, tp->snd_una)) {
1123 		os_log_error(mptcp_log_handle, "%s - %lx: snd_nxt is %u and snd_una is %u, cnt %d\n",
1124 		    __func__, (unsigned long)VM_KERNEL_ADDRPERM(tp->t_mpsub->mpts_mpte),
1125 		    tp->snd_nxt, tp->snd_una, sendalot_cnt);
1126 	}
1127 #endif
1128 	do_not_compress = FALSE;
1129 	sendalot_cnt++;
1130 
1131 	KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_START, 0, 0, 0, 0, 0);
1132 
1133 	if (isipv6) {
1134 		KERNEL_DEBUG(DBG_LAYER_BEG,
1135 		    ((inp->inp_fport << 16) | inp->inp_lport),
1136 		    (((inp->in6p_laddr.s6_addr16[0] & 0xffff) << 16) |
1137 		    (inp->in6p_faddr.s6_addr16[0] & 0xffff)),
1138 		    sendalot, 0, 0);
1139 	} else {
1140 		KERNEL_DEBUG(DBG_LAYER_BEG,
1141 		    ((inp->inp_fport << 16) | inp->inp_lport),
1142 		    (((inp->inp_laddr.s_addr & 0xffff) << 16) |
1143 		    (inp->inp_faddr.s_addr & 0xffff)),
1144 		    sendalot, 0, 0);
1145 	}
1146 	/*
1147 	 * If the route generation id changed, we need to check that our
1148 	 * local (source) IP address is still valid. If it isn't either
1149 	 * return error or silently do nothing (assuming the address will
1150 	 * come back before the TCP connection times out).
1151 	 */
1152 	rt = inp->inp_route.ro_rt;
1153 	if (rt != NULL && ROUTE_UNUSABLE(&tp->t_inpcb->inp_route)) {
1154 		struct ifnet *ifp;
1155 		struct in_ifaddr *ia = NULL;
1156 		struct in6_ifaddr *ia6 = NULL;
1157 		int found_srcaddr = 0;
1158 
1159 		/* disable multipages at the socket */
1160 		somultipages(so, FALSE);
1161 
1162 		/* Disable TSO for the socket until we know more */
1163 		tp->t_flags &= ~TF_TSO;
1164 
1165 		soif2kcl(so, FALSE);
1166 
1167 		if (isipv6) {
1168 			ia6 = ifa_foraddr6(&inp->in6p_laddr);
1169 			if (ia6 != NULL) {
1170 				found_srcaddr = 1;
1171 			}
1172 		} else {
1173 			ia = ifa_foraddr(inp->inp_laddr.s_addr);
1174 			if (ia != NULL) {
1175 				found_srcaddr = 1;
1176 			}
1177 		}
1178 
1179 		/* check that the source address is still valid */
1180 		if (found_srcaddr == 0) {
1181 			soevent(so,
1182 			    (SO_FILT_HINT_LOCKED | SO_FILT_HINT_NOSRCADDR));
1183 
1184 			if (tp->t_state >= TCPS_CLOSE_WAIT) {
1185 				tcp_drop(tp, EADDRNOTAVAIL);
1186 				return EADDRNOTAVAIL;
1187 			}
1188 
1189 			/*
1190 			 * Set retransmit  timer if it wasn't set,
1191 			 * reset Persist timer and shift register as the
1192 			 * advertised peer window may not be valid anymore
1193 			 */
1194 			if (tp->t_timer[TCPT_REXMT] == 0) {
1195 				tcp_set_rto(tp);
1196 				if (tp->t_timer[TCPT_PERSIST] != 0) {
1197 					tp->t_timer[TCPT_PERSIST] = 0;
1198 					tp->t_persist_stop = 0;
1199 					TCP_RESET_REXMT_STATE(tp);
1200 				}
1201 			}
1202 
1203 			if (tp->t_pktlist_head != NULL) {
1204 				m_drop_list(tp->t_pktlist_head, NULL, DROPTAP_FLAG_DIR_OUT | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_SRC_ADDR_NOT_AVAIL, NULL, 0);
1205 			}
1206 			TCP_PKTLIST_CLEAR(tp);
1207 
1208 			/* drop connection if source address isn't available */
1209 			if (so->so_flags & SOF_NOADDRAVAIL) {
1210 				tcp_drop(tp, EADDRNOTAVAIL);
1211 				return EADDRNOTAVAIL;
1212 			} else {
1213 				TCP_LOG_OUTPUT(tp, "no source address silently ignored");
1214 				tcp_check_timer_state(tp);
1215 				return 0; /* silently ignore, keep data in socket: address may be back */
1216 			}
1217 		}
1218 		if (ia != NULL) {
1219 			ifa_remref(&ia->ia_ifa);
1220 		}
1221 
1222 		if (ia6 != NULL) {
1223 			ifa_remref(&ia6->ia_ifa);
1224 		}
1225 
1226 		/*
1227 		 * Address is still valid; check for multipages capability
1228 		 * again in case the outgoing interface has changed.
1229 		 */
1230 		RT_LOCK(rt);
1231 		if ((ifp = rt->rt_ifp) != NULL) {
1232 			somultipages(so, (ifp->if_hwassist & IFNET_MULTIPAGES));
1233 			tcp_set_tso(tp, ifp);
1234 			soif2kcl(so, (ifp->if_eflags & IFEF_2KCL));
1235 			/* Don't do ECN for Loopback & Cellular */
1236 			if ((rt->rt_ifp->if_flags & IFF_LOOPBACK) == 0 && !IFNET_IS_CELLULAR(ifp)) {
1237 				tcp_set_ecn(tp);
1238 			}
1239 
1240 			/*
1241 			 * If the route changes, we cannot use the link heuristics
1242 			 * based on the previous outgoing interface
1243 			 */
1244 			if (rt->rt_ifp != tp->t_inpcb->inp_last_outifp) {
1245 				link_heuristics_enabled = false;
1246 				tp->t_comp_rxmt_gencnt = 0;
1247 			}
1248 		}
1249 		if (rt->rt_flags & RTF_UP) {
1250 			RT_GENID_SYNC(rt);
1251 		}
1252 		/*
1253 		 * See if we should do MTU discovery. Don't do it if:
1254 		 *	1) it is disabled via the sysctl
1255 		 *	2) the route isn't up
1256 		 *	3) the MTU is locked (if it is, then discovery
1257 		 *         has been disabled)
1258 		 */
1259 
1260 		if (!path_mtu_discovery || ((rt != NULL) &&
1261 		    (!(rt->rt_flags & RTF_UP) ||
1262 		    (rt->rt_rmx.rmx_locks & RTV_MTU)))) {
1263 			tp->t_flags &= ~TF_PMTUD;
1264 		} else {
1265 			tp->t_flags |= TF_PMTUD;
1266 		}
1267 
1268 		RT_UNLOCK(rt);
1269 	}
1270 
1271 	if (rt != NULL) {
1272 		ifnet_count_type = IFNET_COUNT_TYPE(rt->rt_ifp);
1273 	}
1274 
1275 	/*
1276 	 * If we've recently taken a timeout, snd_max will be greater than
1277 	 * snd_nxt.  There may be SACK information that allows us to avoid
1278 	 * resending already delivered data.  Adjust snd_nxt accordingly.
1279 	 * It is ok to use this function with RACK as well as it is estimating
1280 	 * max_len based on a SACK hole.
1281 	 */
1282 	if (SACK_ENABLED(tp) && SEQ_LT(tp->snd_nxt, tp->snd_max)) {
1283 		if (TCP_RACK_ENABLED(tp)) {
1284 			/*
1285 			 * Calculated in the same manner as when rack_in_recovery
1286 			 * is set and new data is transmitted after retransmitted data
1287 			 */
1288 			int32_t cwin = tp->snd_cwnd - tcp_flight_size(tp);
1289 			if (cwin > 0) {
1290 				max_len = tcp_rack_adjust(tp, (uint32_t)cwin);
1291 			}
1292 		} else {
1293 			max_len = tcp_sack_adjust(tp);
1294 		}
1295 	}
1296 	sendalot = 0;
1297 	off = tp->snd_nxt - tp->snd_una;
1298 	sendwin = min(tp->snd_wnd, tp->snd_cwnd);
1299 
1300 	if (tp->t_flags & TF_SLOWLINK && slowlink_wsize > 0) {
1301 		sendwin = min(sendwin, slowlink_wsize);
1302 	}
1303 
1304 	flags = tcp_outflags[tp->t_state];
1305 	/*
1306 	 * Send any SACK-generated retransmissions.  If we're explicitly
1307 	 * trying to send out new data (when sendalot is 1), bypass this
1308 	 * function. If we retransmit in fast recovery mode, decrement
1309 	 * snd_cwnd, since we're replacing a (future) new transmission
1310 	 * with a retransmission now, and we previously incremented
1311 	 * snd_cwnd in tcp_input().
1312 	 */
1313 	/*
1314 	 * Still in sack recovery, reset rxmit flag to zero.
1315 	 */
1316 	rack_sack_rxmit = 0;
1317 	sack_bytes_rxmt = 0;
1318 	len = 0;
1319 	p = NULL;
1320 	seg = NULL;
1321 
1322 	if (SACK_ENABLED(tp) && IN_FASTRECOVERY(tp)) {
1323 		int32_t cwin = min(tp->snd_wnd, tp->snd_cwnd) - tcp_flight_size(tp);
1324 		if (cwin <= 0 && sack_rxmted == false) {
1325 			/* Allow to clock out at least on per period */
1326 			cwin = tp->t_maxseg;
1327 		}
1328 
1329 		sack_rxmted = true;
1330 		if (cwin < 0) {
1331 			cwin = 0;
1332 		}
1333 
1334 		if (TCP_RACK_ENABLED(tp)) {
1335 			uint16_t rack_seg_len = 0;
1336 			if ((seg = tcp_rack_output(tp, cwin, &rack_seg_len)) != NULL) {
1337 				len = min(cwin, rack_seg_len);
1338 
1339 				if (len > 0) {
1340 					off = seg->start_seq - tp->snd_una;
1341 					rack_sack_rxmit = 1;
1342 					sendalot = 1;
1343 					tcpstat.tcps_rack_rexmits++;
1344 				} else {
1345 					seg = NULL;
1346 				}
1347 			}
1348 		} else if ((p = tcp_sack_output(tp, &sack_bytes_rxmt)) != NULL) {
1349 			/* Do not retransmit SACK segments beyond snd_recover */
1350 			if (SEQ_GT(p->end, tp->snd_recover)) {
1351 				/*
1352 				 * (At least) part of sack hole extends beyond
1353 				 * snd_recover. Check to see if we can rexmit data
1354 				 * for this hole.
1355 				 */
1356 				if (SEQ_GEQ(p->rxmit, tp->snd_recover)) {
1357 					/*
1358 					 * Can't rexmit any more data for this hole.
1359 					 * That data will be rexmitted in the next
1360 					 * sack recovery episode, when snd_recover
1361 					 * moves past p->rxmit.
1362 					 */
1363 					p = NULL;
1364 					goto after_sack_rexmit;
1365 				} else {
1366 					/* Can rexmit part of the current hole */
1367 					len = ((int32_t)min(cwin,
1368 					    tp->snd_recover - p->rxmit));
1369 				}
1370 			} else {
1371 				len = ((int32_t)min(cwin, p->end - p->rxmit));
1372 			}
1373 			if (len > 0) {
1374 				off = p->rxmit - tp->snd_una;
1375 				rack_sack_rxmit = 1;
1376 				sendalot = 1;
1377 				/*
1378 				 * Optimization to avoid double retransmission due to SACK recovery
1379 				 * and when tp->snd_nxt points to already retransmitted segments
1380 				 */
1381 				if (SEQ_LT(tp->snd_nxt, tp->snd_max) && SEQ_LEQ(tp->snd_nxt, p->rxmit) &&
1382 				    (uint32_t)len <= max_len) {
1383 					sendalot = 0;
1384 				}
1385 
1386 				tcpstat.tcps_sack_rexmits++;
1387 				tcpstat.tcps_sack_rexmit_bytes +=
1388 				    min(len, tp->t_maxseg);
1389 			} else {
1390 				len = 0;
1391 			}
1392 		}
1393 	}
1394 after_sack_rexmit:
1395 	/*
1396 	 * Get standard flags, and add SYN or FIN if requested by 'hidden'
1397 	 * state flags.
1398 	 */
1399 	if (tp->t_flags & TF_NEEDFIN) {
1400 		flags |= TH_FIN;
1401 	}
1402 
1403 	/*
1404 	 * If in persist timeout with window of 0, send 1 byte.
1405 	 * Otherwise, if window is small but nonzero
1406 	 * and timer expired, we will send what we can
1407 	 * and go to transmit state.
1408 	 */
1409 	if (tp->t_flagsext & TF_FORCE) {
1410 		if (sendwin == 0) {
1411 			/*
1412 			 * If we still have some data to send, then
1413 			 * clear the FIN bit.  Usually this would
1414 			 * happen below when it realizes that we
1415 			 * aren't sending all the data.  However,
1416 			 * if we have exactly 1 byte of unsent data,
1417 			 * then it won't clear the FIN bit below,
1418 			 * and if we are in persist state, we wind
1419 			 * up sending the packet without recording
1420 			 * that we sent the FIN bit.
1421 			 *
1422 			 * We can't just blindly clear the FIN bit,
1423 			 * because if we don't have any more data
1424 			 * to send then the probe will be the FIN
1425 			 * itself.
1426 			 */
1427 			if (off < so->so_snd.sb_cc) {
1428 				flags &= ~TH_FIN;
1429 			}
1430 			sendwin = 1;
1431 		} else {
1432 			tp->t_timer[TCPT_PERSIST] = 0;
1433 			tp->t_persist_stop = 0;
1434 			TCP_RESET_REXMT_STATE(tp);
1435 		}
1436 	}
1437 
1438 	/*
1439 	 * If snd_nxt == snd_max and we have transmitted a FIN, the
1440 	 * offset will be > 0 even if so_snd.sb_cc is 0, resulting in
1441 	 * a negative length.  This can also occur when TCP opens up
1442 	 * its congestion window while receiving additional duplicate
1443 	 * acks after fast-retransmit because TCP will reset snd_nxt
1444 	 * to snd_max after the fast-retransmit.
1445 	 *
1446 	 * In the normal retransmit-FIN-only case, however, snd_nxt will
1447 	 * be set to snd_una, the offset will be 0, and the length may
1448 	 * wind up 0.
1449 	 *
1450 	 * If sack_rxmit or rack_rxmit is true we are retransmitting from
1451 	 * the scoreboard in which case len is already set.
1452 	 */
1453 	bool rack_in_recovery = TCP_RACK_ENABLED(tp) && IN_FASTRECOVERY(tp);
1454 	if (rack_sack_rxmit == 0) {
1455 		if (sack_bytes_rxmt == 0 && !rack_in_recovery) {
1456 			len = min(so->so_snd.sb_cc, sendwin) - off;
1457 		} else {
1458 			int32_t cwin = tp->snd_cwnd - tcp_flight_size(tp);
1459 			if (cwin < 0) {
1460 				cwin = 0;
1461 			}
1462 			/*
1463 			 * We are inside of a SACK recovery episode and are
1464 			 * sending new data, having retransmitted all the
1465 			 * data possible in the scoreboard.
1466 			 */
1467 			len = min(so->so_snd.sb_cc, tp->snd_wnd) - off;
1468 			/*
1469 			 * Don't remove this (len > 0) check !
1470 			 * We explicitly check for len > 0 here (although it
1471 			 * isn't really necessary), to work around a gcc
1472 			 * optimization issue - to force gcc to compute
1473 			 * len above. Without this check, the computation
1474 			 * of len is bungled by the optimizer.
1475 			 */
1476 			if (len > 0) {
1477 				len = imin(len, cwin);
1478 			} else {
1479 				len = 0;
1480 			}
1481 			/*
1482 			 * At this point SACK recovery can not send any
1483 			 * data from scoreboard or any new data. Check
1484 			 * if we can do a rescue retransmit towards the
1485 			 * tail end of recovery window.
1486 			 * We don't do rescue retransmit for RACK.
1487 			 */
1488 			if (len == 0 && cwin > 0 &&
1489 			    SEQ_LT(tp->snd_fack, tp->snd_recover) &&
1490 			    !(tp->t_flagsext & TF_RESCUE_RXT) && !TCP_RACK_ENABLED(tp)) {
1491 				len = min((tp->snd_recover - tp->snd_fack),
1492 				    tp->t_maxseg);
1493 				len = imin(len, cwin);
1494 				old_snd_nxt = tp->snd_nxt;
1495 				sack_rescue_rxt = true;
1496 				tp->snd_nxt = tp->snd_recover - len;
1497 				/*
1498 				 * If FIN has been sent, snd_max
1499 				 * must have been advanced to cover it.
1500 				 */
1501 				if ((tp->t_flags & TF_SENTFIN) &&
1502 				    tp->snd_max == tp->snd_recover) {
1503 					tp->snd_nxt--;
1504 				}
1505 
1506 				off = tp->snd_nxt - tp->snd_una;
1507 				sendalot = 0;
1508 				tp->t_flagsext |= TF_RESCUE_RXT;
1509 			}
1510 		}
1511 	}
1512 
1513 	if (max_len != 0 && len > 0) {
1514 		len = min(len, max_len);
1515 	}
1516 
1517 	/*
1518 	 * Lop off SYN bit if it has already been sent.  However, if this
1519 	 * is SYN-SENT state and if segment contains data and if we don't
1520 	 * know that foreign host supports TAO, suppress sending segment.
1521 	 */
1522 	if ((flags & TH_SYN) && SEQ_GT(tp->snd_nxt, tp->snd_una)) {
1523 		if (tp->t_state == TCPS_SYN_RECEIVED && TFO_ENABLED(tp) && tp->snd_nxt == tp->snd_una + 1) {
1524 			/* We are sending the SYN again! */
1525 			off--;
1526 			len++;
1527 		} else {
1528 			if (tp->t_state != TCPS_SYN_RECEIVED || TFO_ENABLED(tp)) {
1529 				flags &= ~TH_SYN;
1530 			}
1531 
1532 			off--;
1533 			len++;
1534 			if (len > 0 && tp->t_state == TCPS_SYN_SENT) {
1535 				while (inp->inp_sndinprog_cnt == 0 &&
1536 				    tp->t_pktlist_head != NULL) {
1537 					packetlist = tp->t_pktlist_head;
1538 					packchain_listadd = tp->t_lastchain;
1539 					packchain_sent++;
1540 					TCP_PKTLIST_CLEAR(tp);
1541 
1542 					error = tcp_ip_output(so, tp, packetlist,
1543 					    packchain_listadd, tp_inp_options,
1544 					    (so_options & SO_DONTROUTE),
1545 					    (rack_sack_rxmit || (sack_bytes_rxmt != 0)),
1546 					    isipv6);
1547 				}
1548 
1549 				/*
1550 				 * tcp was closed while we were in ip,
1551 				 * resume close
1552 				 */
1553 				if (inp->inp_sndinprog_cnt == 0 &&
1554 				    (tp->t_flags & TF_CLOSING)) {
1555 					tp->t_flags &= ~TF_CLOSING;
1556 					(void) tcp_close(tp);
1557 				} else {
1558 					tcp_check_timer_state(tp);
1559 				}
1560 				KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_END,
1561 				    0, 0, 0, 0, 0);
1562 				return 0;
1563 			}
1564 		}
1565 	}
1566 
1567 	/*
1568 	 * Be careful not to send data and/or FIN on SYN segments.
1569 	 * This measure is needed to prevent interoperability problems
1570 	 * with not fully conformant TCP implementations.
1571 	 *
1572 	 * In case of TFO, we handle the setting of the len in
1573 	 * tcp_tfo_check. In case TFO is not enabled, never ever send
1574 	 * SYN+data.
1575 	 */
1576 	if ((flags & TH_SYN) && !TFO_ENABLED(tp)) {
1577 		len = 0;
1578 		flags &= ~TH_FIN;
1579 	}
1580 
1581 	/*
1582 	 * Don't send a RST with data.
1583 	 */
1584 	if (flags & TH_RST) {
1585 		len = 0;
1586 	}
1587 
1588 	if ((flags & TH_SYN) && tp->t_state <= TCPS_SYN_SENT && TFO_ENABLED(tp)) {
1589 		len = tcp_tfo_check(tp, len);
1590 	}
1591 
1592 	if ((tp->tcp_cc_index == TCP_CC_ALGO_PRAGUE_INDEX || inp->inp_max_pacing_rate != UINT64_MAX) &&
1593 	    tp->t_pacer.tso_burst_size != 0 && len > 0 &&
1594 	    (uint32_t)len > tp->t_pacer.tso_burst_size) {
1595 		len = tp->t_pacer.tso_burst_size;
1596 		sendalot = 1;
1597 	}
1598 
1599 	/*
1600 	 * The check here used to be (len < 0). Some times len is zero
1601 	 * when the congestion window is closed and we need to check
1602 	 * if persist timer has to be set in that case. But don't set
1603 	 * persist until connection is established.
1604 	 */
1605 	if (len <= 0 && !(flags & TH_SYN)) {
1606 		/*
1607 		 * If FIN has been sent but not acked,
1608 		 * but we haven't been called to retransmit,
1609 		 * len will be < 0.  Otherwise, window shrank
1610 		 * after we sent into it.  If window shrank to 0,
1611 		 * cancel pending retransmit, pull snd_nxt back
1612 		 * to (closed) window, and set the persist timer
1613 		 * if it isn't already going.  If the window didn't
1614 		 * close completely, just wait for an ACK.
1615 		 */
1616 		len = 0;
1617 		if (sendwin == 0) {
1618 			tp->t_timer[TCPT_REXMT] = 0;
1619 			tp->t_timer[TCPT_PTO] = 0;
1620 			TCP_RESET_REXMT_STATE(tp);
1621 			tp->snd_nxt = tp->snd_una;
1622 			off = 0;
1623 			if (tp->t_timer[TCPT_PERSIST] == 0) {
1624 				tcp_setpersist(tp);
1625 			}
1626 		}
1627 	}
1628 
1629 	/*
1630 	 * Automatic sizing of send socket buffer. Increase the send
1631 	 * socket buffer size if all of the following criteria are met
1632 	 *	1. the receiver has enough buffer space for this data
1633 	 *	2. send buffer is filled to 7/8th with data (so we actually
1634 	 *	   have data to make use of it);
1635 	 *	3. our send window (slow start and congestion controlled) is
1636 	 *	   larger than sent but unacknowledged data in send buffer.
1637 	 */
1638 	if (!INP_WAIT_FOR_IF_FEEDBACK(inp) && !IN_FASTRECOVERY(tp) &&
1639 	    (so->so_snd.sb_flags & (SB_AUTOSIZE | SB_TRIM)) == SB_AUTOSIZE) {
1640 		if ((tp->snd_wnd / 4 * 5) >= so->so_snd.sb_hiwat &&
1641 		    so->so_snd.sb_cc >= (so->so_snd.sb_hiwat / 8 * 7) &&
1642 		    sendwin >= (so->so_snd.sb_cc - (tp->snd_nxt - tp->snd_una))) {
1643 			if (sbreserve(&so->so_snd,
1644 			    min(so->so_snd.sb_hiwat + tcp_autosndbuf_inc,
1645 			    tcp_autosndbuf_max)) == 1) {
1646 				so->so_snd.sb_idealsize = so->so_snd.sb_hiwat;
1647 			}
1648 		}
1649 	}
1650 
1651 	/*
1652 	 * Truncate to the maximum segment length or enable TCP Segmentation
1653 	 * Offloading (if supported by hardware) and ensure that FIN is removed
1654 	 * if the length no longer contains the last data byte.
1655 	 *
1656 	 * TSO may only be used if we are in a pure bulk sending state.
1657 	 * The presence of TCP-MD5, SACK retransmits, SACK advertizements,
1658 	 * filters and IP options, as well as disabling hardware checksum
1659 	 * offload prevent using TSO.  With TSO the TCP header is the same
1660 	 * (except for the sequence number) for all generated packets.  This
1661 	 * makes it impossible to transmit any options which vary per generated
1662 	 * segment or packet.
1663 	 *
1664 	 * The length of TSO bursts is limited to TCP_MAXWIN.  That limit and
1665 	 * removal of FIN (if not already catched here) are handled later after
1666 	 * the exact length of the TCP options are known.
1667 	 */
1668 #if IPSEC
1669 	/*
1670 	 * Pre-calculate here as we save another lookup into the darknesses
1671 	 * of IPsec that way and can actually decide if TSO is ok.
1672 	 */
1673 	if (ipsec_bypass == 0) {
1674 		ipsec_optlen = ipsec_hdrsiz_tcp(tp);
1675 	}
1676 #endif
1677 	if (len > tp->t_maxseg) {
1678 		if ((tp->t_flags & TF_TSO) && tcp_do_tso && hwcksum_tx &&
1679 		    kipf_count == 0 &&
1680 		    tp->rcv_numsacks == 0 && rack_sack_rxmit == 0 &&
1681 		    sack_bytes_rxmt == 0 &&
1682 		    inp->inp_options == NULL &&
1683 		    inp->in6p_options == NULL
1684 #if IPSEC
1685 		    && ipsec_optlen == 0
1686 #endif
1687 		    ) {
1688 			tso = 1;
1689 			sendalot = 0;
1690 		} else {
1691 			len = tp->t_maxseg;
1692 			sendalot = 1;
1693 			tso = 0;
1694 		}
1695 	} else {
1696 		tso = 0;
1697 	}
1698 
1699 	/* Send one segment or less as a tail loss probe */
1700 	if (tp->t_flagsext & TF_SENT_TLPROBE) {
1701 		len = min(len, tp->t_maxseg);
1702 		sendalot = 0;
1703 		tso = 0;
1704 	}
1705 
1706 #if MPTCP
1707 	if (so->so_flags & SOF_MP_SUBFLOW && off < 0) {
1708 		os_log_error(mptcp_log_handle, "%s - %lx: offset is negative! len %d off %d\n",
1709 		    __func__, (unsigned long)VM_KERNEL_ADDRPERM(tp->t_mpsub->mpts_mpte),
1710 		    len, off);
1711 	}
1712 
1713 	if ((so->so_flags & SOF_MP_SUBFLOW) &&
1714 	    !(tp->t_mpflags & TMPF_TCP_FALLBACK)) {
1715 		int newlen = len;
1716 		struct mptcb *mp_tp = tptomptp(tp);
1717 		if (tp->t_state >= TCPS_ESTABLISHED &&
1718 		    (tp->t_mpflags & TMPF_SND_MPPRIO ||
1719 		    tp->t_mpflags & TMPF_SND_REM_ADDR ||
1720 		    tp->t_mpflags & TMPF_SND_MPFAIL ||
1721 		    (tp->t_mpflags & TMPF_SND_KEYS &&
1722 		    mp_tp->mpt_version == MPTCP_VERSION_0) ||
1723 		    tp->t_mpflags & TMPF_SND_JACK ||
1724 		    tp->t_mpflags & TMPF_MPTCP_ECHO_ADDR)) {
1725 			if (len > 0) {
1726 				len = 0;
1727 				tso = 0;
1728 			}
1729 			/*
1730 			 * On a new subflow, don't try to send again, because
1731 			 * we are still waiting for the fourth ack.
1732 			 */
1733 			if (!(tp->t_mpflags & TMPF_PREESTABLISHED)) {
1734 				sendalot = 1;
1735 			}
1736 			mptcp_acknow = TRUE;
1737 		} else {
1738 			mptcp_acknow = FALSE;
1739 		}
1740 		/*
1741 		 * The contiguous bytes in the subflow socket buffer can be
1742 		 * discontiguous at the MPTCP level. Since only one DSS
1743 		 * option can be sent in one packet, reduce length to match
1744 		 * the contiguous MPTCP level. Set sendalot to send remainder.
1745 		 */
1746 		if (len > 0 && off >= 0) {
1747 			newlen = mptcp_adj_sendlen(so, off);
1748 		}
1749 
1750 		if (newlen < len) {
1751 			len = newlen;
1752 			if (len <= tp->t_maxseg) {
1753 				tso = 0;
1754 			}
1755 		}
1756 	}
1757 #endif /* MPTCP */
1758 
1759 	if (rack_sack_rxmit) {
1760 		if (TCP_RACK_ENABLED(tp)) {
1761 			if (SEQ_LT(seg->start_seq + len, tp->snd_una + so->so_snd.sb_cc)) {
1762 				flags &= ~TH_FIN;
1763 			}
1764 		} else {
1765 			if (SEQ_LT(p->rxmit + len, tp->snd_una + so->so_snd.sb_cc)) {
1766 				flags &= ~TH_FIN;
1767 			}
1768 		}
1769 	} else {
1770 		if (SEQ_LT(tp->snd_nxt + len, tp->snd_una + so->so_snd.sb_cc)) {
1771 			flags &= ~TH_FIN;
1772 		}
1773 	}
1774 	/*
1775 	 * Compare available window to amount of window
1776 	 * known to peer (as advertised window less
1777 	 * next expected input).  If the difference is at least two
1778 	 * max size segments, or at least 25% of the maximum possible
1779 	 * window, then want to send a window update to peer.
1780 	 */
1781 	recwin = tcp_sbspace(tp);
1782 
1783 	if (!(so->so_flags & SOF_MP_SUBFLOW)) {
1784 		if (recwin < (int32_t)(so->so_rcv.sb_hiwat / 4) &&
1785 		    recwin < (int)tp->t_maxseg) {
1786 			recwin = 0;
1787 		}
1788 	} else {
1789 		struct mptcb *mp_tp = tptomptp(tp);
1790 		struct socket *mp_so = mptetoso(mp_tp->mpt_mpte);
1791 
1792 		if (recwin < (int32_t)(mp_so->so_rcv.sb_hiwat / 4) &&
1793 		    recwin < (int)tp->t_maxseg) {
1794 			recwin = 0;
1795 		}
1796 	}
1797 
1798 #if TRAFFIC_MGT
1799 	if (tcp_recv_bg == 1 || IS_TCP_RECV_BG(so)) {
1800 		/*
1801 		 * Timestamp MUST be supported to use rledbat unless we haven't
1802 		 * yet negotiated it.
1803 		 */
1804 		if (TCP_RLEDBAT_ENABLED(tp) || (tcp_rledbat && tp->t_state <
1805 		    TCPS_ESTABLISHED)) {
1806 			if (recwin > 0 && tcp_cc_rledbat.get_rlwin != NULL) {
1807 				/* Min of flow control window and rledbat window */
1808 				recwin = imin(recwin, tcp_cc_rledbat.get_rlwin(tp));
1809 			}
1810 		} else if (recwin > 0 && tcp_recv_throttle(tp)) {
1811 			uint32_t min_iaj_win = tcp_min_iaj_win * tp->t_maxseg;
1812 			uint32_t bg_rwintop = tp->rcv_adv;
1813 			if (SEQ_LT(bg_rwintop, tp->rcv_nxt + min_iaj_win)) {
1814 				bg_rwintop =  tp->rcv_nxt + min_iaj_win;
1815 			}
1816 			recwin = imin((int32_t)(bg_rwintop - tp->rcv_nxt),
1817 			    recwin);
1818 			if (recwin < 0) {
1819 				recwin = 0;
1820 			}
1821 		}
1822 	}
1823 #endif /* TRAFFIC_MGT */
1824 
1825 	if (recwin > (int32_t)(TCP_MAXWIN << tp->rcv_scale)) {
1826 		recwin = (int32_t)(TCP_MAXWIN << tp->rcv_scale);
1827 	}
1828 
1829 	if (!(so->so_flags & SOF_MP_SUBFLOW)) {
1830 		if (recwin < (int32_t)(tp->rcv_adv - tp->rcv_nxt)) {
1831 			recwin = (int32_t)(tp->rcv_adv - tp->rcv_nxt);
1832 		}
1833 	} else {
1834 		struct mptcb *mp_tp = tptomptp(tp);
1835 		int64_t recwin_announced = (int64_t)(mp_tp->mpt_rcvadv - mp_tp->mpt_rcvnxt);
1836 
1837 		/* Don't remove what we announced at the MPTCP-layer */
1838 		VERIFY(recwin_announced < INT32_MAX && recwin_announced > INT32_MIN);
1839 		if (recwin < (int32_t)recwin_announced) {
1840 			recwin = (int32_t)recwin_announced;
1841 		}
1842 
1843 		if (mp_tp->mpt_flags & MPTCPF_FALLBACK_TO_TCP) {
1844 			if (recwin < (int32_t)(tp->rcv_adv - tp->rcv_nxt)) {
1845 				recwin = (int32_t)(tp->rcv_adv - tp->rcv_nxt);
1846 			}
1847 		}
1848 	}
1849 
1850 	/* One day we should have a single ROUNDUP macro across xnu... */
1851 #ifndef ROUNDUP
1852 #define ROUNDUP(a, b) (((a) + ((b) - 1)) & (~((b) - 1)))
1853 #endif
1854 	recwin = ROUNDUP(recwin, (1 << tp->rcv_scale));
1855 #undef ROUNDUP
1856 
1857 	/*
1858 	 * Sender silly window avoidance.   We transmit under the following
1859 	 * conditions when len is non-zero:
1860 	 *
1861 	 *	- we've timed out (e.g. persist timer)
1862 	 *	- we need to retransmit
1863 	 *	- We have a full segment (or more with TSO)
1864 	 *	- This is the last buffer in a write()/send() and we are
1865 	 *	  either idle or running NODELAY
1866 	 *	- we have more then 1/2 the maximum send window's worth of
1867 	 *	  data (receiver may be limited the window size)
1868 	 */
1869 	if (len) {
1870 		if (tp->t_flagsext & TF_FORCE) {
1871 			goto send;
1872 		}
1873 		if (SEQ_LT(tp->snd_nxt, tp->snd_max)) {
1874 			if (TCP_RACK_ENABLED(tp) && rack_sack_rxmit == 0) {
1875 				len = min(len, tp->snd_max - tp->snd_nxt);
1876 			}
1877 			goto send;
1878 		}
1879 		if (rack_sack_rxmit) {
1880 			goto send;
1881 		}
1882 
1883 		/*
1884 		 * If this here is the first segment after SYN/ACK and TFO
1885 		 * is being used, then we always send it, regardless of Nagle,...
1886 		 */
1887 		if (tp->t_state == TCPS_SYN_RECEIVED &&
1888 		    TFO_ENABLED(tp) &&
1889 		    (tp->t_tfo_flags & TFO_F_COOKIE_VALID) &&
1890 		    tp->snd_nxt == tp->iss + 1) {
1891 			goto send;
1892 		}
1893 
1894 		/*
1895 		 * Send new data on the connection only if it is
1896 		 * not flow controlled
1897 		 */
1898 		if (!INP_WAIT_FOR_IF_FEEDBACK(inp) ||
1899 		    tp->t_state != TCPS_ESTABLISHED) {
1900 			if (off + len == tp->snd_wnd) {
1901 				/* We are limited by the receiver's window... */
1902 				if (tp->t_rcvwnd_limited_start_time == 0) {
1903 					tp->t_rcvwnd_limited_start_time = net_uptime_us();
1904 				}
1905 			} else {
1906 				/* We are no more limited by the receiver's window... */
1907 				if (tp->t_rcvwnd_limited_start_time != 0) {
1908 					uint64_t now = net_uptime_us();
1909 
1910 					ASSERT(now >= tp->t_rcvwnd_limited_start_time);
1911 
1912 					tp->t_rcvwnd_limited_total_time += (now - tp->t_rcvwnd_limited_start_time);
1913 
1914 					tp->t_rcvwnd_limited_start_time = 0;
1915 				}
1916 			}
1917 
1918 			if (len >= tp->t_maxseg) {
1919 				goto send;
1920 			}
1921 
1922 			if (!(tp->t_flags & TF_MORETOCOME) &&
1923 			    (idle || tp->t_flags & TF_NODELAY ||
1924 			    (tp->t_flags & TF_MAXSEGSNT) ||
1925 			    ALLOW_LIMITED_TRANSMIT(tp)) &&
1926 			    (tp->t_flags & TF_NOPUSH) == 0 &&
1927 			    (len + off >= so->so_snd.sb_cc ||
1928 			    /*
1929 			     * MPTCP needs to respect the DSS-mappings. So, it
1930 			     * may be sending data that *could* have been
1931 			     * coalesced, but cannot because of
1932 			     * mptcp_adj_sendlen().
1933 			     */
1934 			    so->so_flags & SOF_MP_SUBFLOW)) {
1935 				goto send;
1936 			}
1937 			if (len >= tp->max_sndwnd / 2 && tp->max_sndwnd > 0) {
1938 				goto send;
1939 			}
1940 		} else {
1941 			tcpstat.tcps_fcholdpacket++;
1942 		}
1943 	}
1944 
1945 	if (recwin > 0) {
1946 		/*
1947 		 * "adv" is the amount we can increase the window,
1948 		 * taking into account that we are limited by
1949 		 * TCP_MAXWIN << tp->rcv_scale.
1950 		 */
1951 		int32_t adv, oldwin = 0;
1952 		adv = imin(recwin, (int)TCP_MAXWIN << tp->rcv_scale) -
1953 		    (tp->rcv_adv - tp->rcv_nxt);
1954 
1955 		if (SEQ_GT(tp->rcv_adv, tp->rcv_nxt)) {
1956 			oldwin = tp->rcv_adv - tp->rcv_nxt;
1957 		}
1958 
1959 		if (adv >= (int32_t) (2 * tp->t_maxseg)) {
1960 			/*
1961 			 * ACK every second full-sized segment, if the
1962 			 * ACK is advancing or the window becomes bigger
1963 			 */
1964 			if (so->so_rcv.sb_cc < so->so_rcv.sb_lowat &&
1965 			    (tp->last_ack_sent != tp->rcv_nxt ||
1966 			    ((oldwin + adv) >> tp->rcv_scale) >
1967 			    (oldwin >> tp->rcv_scale))) {
1968 				goto send;
1969 			}
1970 		} else if (tp->t_flags & TF_DELACK) {
1971 			/*
1972 			 * If we delayed the ACK and the window
1973 			 * is not advancing by a lot (< 2MSS), ACK
1974 			 * immediately if the last incoming packet had
1975 			 * the push flag set and we emptied the buffer.
1976 			 *
1977 			 * This takes care of a sender doing small
1978 			 * repeated writes with Nagle enabled.
1979 			 */
1980 			if (so->so_rcv.sb_cc == 0 &&
1981 			    tp->last_ack_sent != tp->rcv_nxt &&
1982 			    (tp->t_flagsext & TF_LAST_IS_PSH)) {
1983 				goto send;
1984 			}
1985 		}
1986 
1987 		if (4 * adv >= (int32_t) so->so_rcv.sb_hiwat) {
1988 			goto send;
1989 		}
1990 	}
1991 
1992 	/*
1993 	 * Send if we owe the peer an ACK, RST, SYN, or urgent data. ACKNOW
1994 	 * is also a catch-all for the retransmit timer timeout case.
1995 	 */
1996 	if (tp->t_flags & TF_ACKNOW) {
1997 		if (tp->t_forced_acks > 0) {
1998 			tp->t_forced_acks--;
1999 		}
2000 		goto send;
2001 	}
2002 	if ((flags & TH_RST) || (flags & TH_SYN)) {
2003 		goto send;
2004 	}
2005 	if (SEQ_GT(tp->snd_up, tp->snd_una)) {
2006 		goto send;
2007 	}
2008 #if MPTCP
2009 	if (mptcp_acknow) {
2010 		goto send;
2011 	}
2012 #endif /* MPTCP */
2013 	/*
2014 	 * If our state indicates that FIN should be sent
2015 	 * and we have not yet done so, then we need to send.
2016 	 */
2017 	if ((flags & TH_FIN) &&
2018 	    (!(tp->t_flags & TF_SENTFIN) || tp->snd_nxt == tp->snd_una)) {
2019 		goto send;
2020 	}
2021 	/*
2022 	 * In SACK, it is possible for tcp_output to fail to send a segment
2023 	 * after the retransmission timer has been turned off.  Make sure
2024 	 * that the retransmission timer is set.
2025 	 */
2026 	if (SACK_ENABLED(tp) && (tp->t_state >= TCPS_ESTABLISHED) &&
2027 	    SEQ_GT(tp->snd_max, tp->snd_una) &&
2028 	    tp->t_timer[TCPT_REXMT] == 0 &&
2029 	    tp->t_timer[TCPT_PERSIST] == 0) {
2030 		tcp_set_rto(tp);
2031 		goto just_return;
2032 	}
2033 	/*
2034 	 * TCP window updates are not reliable, rather a polling protocol
2035 	 * using ``persist'' packets is used to insure receipt of window
2036 	 * updates.  The three ``states'' for the output side are:
2037 	 *	idle			not doing retransmits or persists
2038 	 *	persisting		to move a small or zero window
2039 	 *	(re)transmitting	and thereby not persisting
2040 	 *
2041 	 * tp->t_timer[TCPT_PERSIST]
2042 	 *	is set when we are in persist state.
2043 	 * tp->t_force
2044 	 *	is set when we are called to send a persist packet.
2045 	 * tp->t_timer[TCPT_REXMT]
2046 	 *	is set when we are retransmitting
2047 	 * The output side is idle when both timers are zero.
2048 	 *
2049 	 * If send window is too small, there is data to transmit, and no
2050 	 * retransmit or persist is pending, then go to persist state.
2051 	 * If nothing happens soon, send when timer expires:
2052 	 * if window is nonzero, transmit what we can,
2053 	 * otherwise force out a byte.
2054 	 */
2055 	if (so->so_snd.sb_cc && tp->t_timer[TCPT_REXMT] == 0 &&
2056 	    tp->t_timer[TCPT_PERSIST] == 0) {
2057 		TCP_RESET_REXMT_STATE(tp);
2058 		tcp_setpersist(tp);
2059 	}
2060 just_return:
2061 	/*
2062 	 * If there is no reason to send a segment, just return.
2063 	 * but if there is some packets left in the packet list, send them now.
2064 	 */
2065 	while (inp->inp_sndinprog_cnt == 0 &&
2066 	    tp->t_pktlist_head != NULL) {
2067 		packetlist = tp->t_pktlist_head;
2068 		packchain_listadd = tp->t_lastchain;
2069 		packchain_sent++;
2070 		TCP_PKTLIST_CLEAR(tp);
2071 
2072 		error = tcp_ip_output(so, tp, packetlist,
2073 		    packchain_listadd,
2074 		    tp_inp_options, (so_options & SO_DONTROUTE),
2075 		    (rack_sack_rxmit || (sack_bytes_rxmt != 0)), isipv6);
2076 	}
2077 	/* tcp was closed while we were in ip; resume close */
2078 	if (inp->inp_sndinprog_cnt == 0 &&
2079 	    (tp->t_flags & TF_CLOSING)) {
2080 		tp->t_flags &= ~TF_CLOSING;
2081 		(void) tcp_close(tp);
2082 	} else {
2083 		tcp_check_timer_state(tp);
2084 	}
2085 	KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
2086 	return 0;
2087 
2088 send:
2089 	/*
2090 	 * Set TF_MAXSEGSNT flag if the segment size is greater than
2091 	 * the max segment size.
2092 	 */
2093 	if (len > 0) {
2094 		do_not_compress = TRUE;
2095 
2096 		if (len >= tp->t_maxseg) {
2097 			tp->t_flags |= TF_MAXSEGSNT;
2098 		} else {
2099 			tp->t_flags &= ~TF_MAXSEGSNT;
2100 		}
2101 	}
2102 	/*
2103 	 * If we are connected and no segment has been ACKed or SACKed yet and we
2104 	 * hit a retransmission timeout, then we should disable AccECN option
2105 	 * for the rest of the connection.
2106 	 */
2107 	if (tp->accurate_ecn_on && tp->t_state == TCPS_ESTABLISHED &&
2108 	    tp->snd_una == tp->iss + 1 && (tp->snd_fack == tp->iss)
2109 	    && tp->t_rxtshift > 0) {
2110 		if ((tp->ecn_flags & TE_RETRY_WITHOUT_ACO) == 0) {
2111 			tp->ecn_flags |= TE_RETRY_WITHOUT_ACO;
2112 		}
2113 	}
2114 
2115 	/*
2116 	 * Before ESTABLISHED, force sending of initial options
2117 	 * unless TCP set not to do any options.
2118 	 * NOTE: we assume that the IP/TCP header plus TCP options
2119 	 * always fit in a single mbuf, leaving room for a maximum
2120 	 * link header, i.e.
2121 	 *	max_linkhdr + sizeof (struct tcpiphdr) + optlen <= MCLBYTES
2122 	 */
2123 	optlen = 0;
2124 	if (isipv6) {
2125 		hdrlen = sizeof(struct ip6_hdr) + sizeof(struct tcphdr);
2126 	} else {
2127 		hdrlen = sizeof(struct tcpiphdr);
2128 	}
2129 	if (flags & TH_SYN) {
2130 		tp->snd_nxt = tp->iss;
2131 		tp->snd_fack = tp->iss;
2132 		if ((tp->t_flags & TF_NOOPT) == 0) {
2133 			u_short mss;
2134 
2135 			opt[0] = TCPOPT_MAXSEG;
2136 			opt[1] = TCPOLEN_MAXSEG;
2137 			mss = htons((u_short) tcp_mssopt(tp));
2138 			(void)memcpy(opt + 2, &mss, sizeof(mss));
2139 			optlen = TCPOLEN_MAXSEG;
2140 
2141 			if ((tp->t_flags & TF_REQ_SCALE) &&
2142 			    ((flags & TH_ACK) == 0 ||
2143 			    (tp->t_flags & TF_RCVD_SCALE))) {
2144 				*((u_int32_t *)(void *)(opt + optlen)) = htonl(
2145 					TCPOPT_NOP << 24 |
2146 					        TCPOPT_WINDOW << 16 |
2147 					        TCPOLEN_WINDOW << 8 |
2148 					        tp->request_r_scale);
2149 				optlen += 4;
2150 			}
2151 			/* Check if L4S is enabled after outifp has been set and update the CC */
2152 			if (tp->l4s_enabled && tp->tcp_cc_index == TCP_CC_ALGO_CUBIC_INDEX) {
2153 				tcp_set_foreground_cc(so);
2154 			}
2155 #if MPTCP
2156 			if (mptcp_enable && (so->so_flags & SOF_MP_SUBFLOW)) {
2157 				optlen = mptcp_setup_syn_opts(so, opt, opt + sizeof(opt), optlen);
2158 			}
2159 #endif /* MPTCP */
2160 		}
2161 	}
2162 
2163 	/*
2164 	 * Send a timestamp and echo-reply if this is a SYN and our side
2165 	 * wants to use timestamps (TF_REQ_TSTMP is set) or both our side
2166 	 * and our peer have sent timestamps in our SYN's.
2167 	 */
2168 	if ((tp->t_flags & (TF_REQ_TSTMP | TF_NOOPT)) == TF_REQ_TSTMP &&
2169 	    (flags & TH_RST) == 0 &&
2170 	    ((flags & TH_ACK) == 0 ||
2171 	    (tp->t_flags & TF_RCVD_TSTMP))) {
2172 		uint32_t *lp = (u_int32_t *)(void *)(opt + optlen);
2173 
2174 		/* Form timestamp option as shown in appendix A of RFC 1323. */
2175 		*lp++ = htonl(TCPOPT_TSTAMP_HDR);
2176 
2177 		tsvalptr = lp;
2178 		lp++; /* tsval will be set later (see access to tsvalptr) */
2179 		*lp   = htonl(tp->ts_recent);
2180 		optlen += TCPOLEN_TSTAMP_APPA;
2181 	}
2182 
2183 	if (SACK_ENABLED(tp) && ((tp->t_flags & TF_NOOPT) == 0)) {
2184 		/*
2185 		 * Tack on the SACK permitted option *last*.
2186 		 * And do padding of options after tacking this on.
2187 		 * This is because of MSS, TS, WinScale and Signatures are
2188 		 * all present, we have just 2 bytes left for the SACK
2189 		 * permitted option, which is just enough.
2190 		 */
2191 		/*
2192 		 * If this is the first SYN of connection (not a SYN
2193 		 * ACK), include SACK permitted option.  If this is a
2194 		 * SYN ACK, include SACK permitted option if peer has
2195 		 * already done so. This is only for active connect,
2196 		 * since the syncookie takes care of the passive connect.
2197 		 */
2198 		if ((flags & TH_SYN) &&
2199 		    (!(flags & TH_ACK) || (tp->t_flags & TF_SACK_PERMIT))) {
2200 			u_char *bp;
2201 			bp = (u_char *)opt + optlen;
2202 
2203 			*bp++ = TCPOPT_SACK_PERMITTED;
2204 			*bp++ = TCPOLEN_SACK_PERMITTED;
2205 			optlen += TCPOLEN_SACK_PERMITTED;
2206 		}
2207 	}
2208 #if MPTCP
2209 	if (so->so_flags & SOF_MP_SUBFLOW) {
2210 		/*
2211 		 * Its important to piggyback acks with data as ack only packets
2212 		 * may get lost and data packets that don't send Data ACKs
2213 		 * still advance the subflow level ACK and therefore make it
2214 		 * hard for the remote end to recover in low cwnd situations.
2215 		 */
2216 		if (len != 0) {
2217 			tp->t_mpflags |= (TMPF_SEND_DSN |
2218 			    TMPF_MPTCP_ACKNOW);
2219 		} else {
2220 			tp->t_mpflags |= TMPF_MPTCP_ACKNOW;
2221 		}
2222 		optlen = mptcp_setup_opts(tp, off, opt, opt + TCP_MAXOLEN, optlen, flags,
2223 		    len, &mptcp_acknow, &do_not_compress);
2224 		tp->t_mpflags &= ~TMPF_SEND_DSN;
2225 	}
2226 #endif /* MPTCP */
2227 
2228 	if (TFO_ENABLED(tp) && !(tp->t_flags & TF_NOOPT) &&
2229 	    (flags & (TH_SYN | TH_ACK)) == TH_SYN) {
2230 		optlen += tcp_tfo_write_cookie(tp, optlen, len, opt);
2231 	}
2232 
2233 	if (TFO_ENABLED(tp) &&
2234 	    (flags & (TH_SYN | TH_ACK)) == (TH_SYN | TH_ACK) &&
2235 	    (tp->t_tfo_flags & TFO_F_OFFER_COOKIE)) {
2236 		optlen += tcp_tfo_write_cookie_rep(tp, optlen, opt);
2237 	}
2238 
2239 	if (SACK_ENABLED(tp) && ((tp->t_flags & TF_NOOPT) == 0)) {
2240 		/*
2241 		 * Send SACKs if necessary.  This should be the last
2242 		 * option processed.  Only as many SACKs are sent as
2243 		 * are permitted by the maximum options size.
2244 		 *
2245 		 * In general, SACK blocks consume 8*n+2 bytes.
2246 		 * So a full size SACK blocks option is 34 bytes
2247 		 * (to generate 4 SACK blocks).  At a minimum,
2248 		 * we need 10 bytes (to generate 1 SACK block).
2249 		 * If TCP Timestamps (12 bytes) and TCP Signatures
2250 		 * (18 bytes) are both present, we'll just have
2251 		 * 10 bytes for SACK options 40 - (12 + 18).
2252 		 */
2253 		if (TCPS_HAVEESTABLISHED(tp->t_state) &&
2254 		    (tp->t_flags & TF_SACK_PERMIT) &&
2255 		    (tp->rcv_numsacks > 0 || TCP_SEND_DSACK_OPT(tp)) &&
2256 		    MAX_TCPOPTLEN - optlen >= TCPOLEN_SACK + 2) {
2257 			unsigned int sackoptlen = 0;
2258 			int nsack, padlen;
2259 			u_char *bp = (u_char *)opt + optlen;
2260 			u_int32_t *lp;
2261 
2262 			nsack = (MAX_TCPOPTLEN - optlen - 2) / TCPOLEN_SACK;
2263 			/*
2264 			 * Send lesser SACK blocks when we want
2265 			 * to send the smallest recommended AccECN Option
2266 			 * if the space wouldn't permit sending all blocks.
2267 			 */
2268 			if (nsack > 2 && tp->accurate_ecn_on &&
2269 			    (tp->ecn_flags & TE_RETRY_WITHOUT_ACO) == 0 &&
2270 			    tp->ecn_flags & (TE_ACO_ECT1 | TE_ACO_ECT0)) {
2271 				nsack--;
2272 			}
2273 			nsack = min(nsack, (tp->rcv_numsacks +
2274 			    (TCP_SEND_DSACK_OPT(tp) ? 1 : 0)));
2275 			sackoptlen = (2 + nsack * TCPOLEN_SACK);
2276 			VERIFY(sackoptlen < UINT8_MAX);
2277 
2278 			/*
2279 			 * First we need to pad options so that the
2280 			 * SACK blocks can start at a 4-byte boundary
2281 			 * (sack option and length are at a 2 byte offset).
2282 			 */
2283 			padlen = (MAX_TCPOPTLEN - optlen - sackoptlen) % 4;
2284 			optlen += padlen;
2285 			while (padlen-- > 0) {
2286 				*bp++ = TCPOPT_NOP;
2287 			}
2288 
2289 			tcpstat.tcps_sack_send_blocks++;
2290 			*bp++ = TCPOPT_SACK;
2291 			*bp++ = (uint8_t)sackoptlen;
2292 			lp = (u_int32_t *)(void *)bp;
2293 
2294 			/*
2295 			 * First block of SACK option should represent
2296 			 * DSACK. Prefer to send SACK information if there
2297 			 * is space for only one SACK block. This will
2298 			 * allow for faster recovery.
2299 			 */
2300 			if (TCP_SEND_DSACK_OPT(tp) && nsack > 0 &&
2301 			    (tp->rcv_numsacks == 0 || nsack > 1)) {
2302 				*lp++ = htonl(tp->t_dsack_lseq);
2303 				*lp++ = htonl(tp->t_dsack_rseq);
2304 				tcpstat.tcps_dsack_sent++;
2305 				tp->t_dsack_sent++;
2306 				nsack--;
2307 			}
2308 			VERIFY(nsack == 0 || tp->rcv_numsacks >= nsack);
2309 			for (i = 0; i < nsack; i++) {
2310 				struct sackblk sack = tp->sackblks[i];
2311 				*lp++ = htonl(sack.start);
2312 				*lp++ = htonl(sack.end);
2313 			}
2314 			optlen += sackoptlen;
2315 
2316 			/* Make sure we didn't write too much */
2317 			VERIFY((u_char *)lp - opt <= MAX_TCPOPTLEN);
2318 		}
2319 	}
2320 
2321 	/*
2322 	 * AccECN option - after SACK
2323 	 * Don't send on <SYN>,
2324 	 * send only on <SYN,ACK> before ACCECN is negotiated when
2325 	 * the client requests it or
2326 	 * when doing an AccECN session. Don't send AccECN option
2327 	 * if retransmitting a SYN-ACK or a data segment
2328 	 */
2329 	if ((tp->accurate_ecn_on ||
2330 	    (tp->l4s_enabled && (flags & (TH_SYN | TH_ACK)) == (TH_SYN | TH_ACK) &&
2331 	    (tp->ecn_flags & TE_ACE_SETUPRECEIVED))) &&
2332 	    (tp->ecn_flags & TE_RETRY_WITHOUT_ACO) == 0) {
2333 		uint32_t *lp = (uint32_t *)(void *)(opt + optlen);
2334 		/* lp will become outdated after options are added */
2335 		tcp_add_accecn_option(tp, flags, lp, (uint8_t *)&optlen);
2336 		/* Make sure we didn't write more than 40 bytes */
2337 		ASSERT((u_char *)lp - opt <= MAX_TCPOPTLEN);
2338 	}
2339 	/* Pad TCP options to a 4 byte boundary */
2340 	if (optlen < MAX_TCPOPTLEN && (optlen % sizeof(u_int32_t))) {
2341 		int pad = sizeof(u_int32_t) - (optlen % sizeof(u_int32_t));
2342 		u_char *bp = (u_char *)opt + optlen;
2343 
2344 		optlen += pad;
2345 		while (pad) {
2346 			*bp++ = TCPOPT_EOL;
2347 			pad--;
2348 		}
2349 	}
2350 
2351 	/*
2352 	 * For Accurate ECN, send ACE flag based on r.cep, if
2353 	 * We have completed handshake and are in ESTABLISHED state, and
2354 	 * This is not the final ACK of 3WHS.
2355 	 */
2356 	if (tp->accurate_ecn_on && TCPS_HAVEESTABLISHED(tp->t_state) &&
2357 	    (tp->ecn_flags & TE_ACE_FINAL_ACK_3WHS) == 0) {
2358 		uint8_t ace = tp->t_aecn.t_rcv_ce_packets & TCP_ACE_MASK;
2359 		if (ace & 0x01) {
2360 			flags |= TH_ECE;
2361 		} else {
2362 			flags &= ~TH_ECE;
2363 		}
2364 		if (ace & 0x02) {
2365 			flags |= TH_CWR;
2366 		} else {
2367 			flags &= ~TH_CWR;
2368 		}
2369 		if (ace & 0x04) {
2370 			flags |= TH_AE;
2371 		} else {
2372 			flags &= ~TH_AE;
2373 		}
2374 	}
2375 
2376 	/*
2377 	 * RFC 3168 states that:
2378 	 * - If you ever sent an ECN-setup SYN/SYN-ACK you must be prepared
2379 	 * to handle the TCP ECE flag, even if you also later send a
2380 	 * non-ECN-setup SYN/SYN-ACK.
2381 	 * - If you ever send a non-ECN-setup SYN/SYN-ACK, you must not set
2382 	 * the ip ECT flag.
2383 	 *
2384 	 * It is not clear how the ECE flag would ever be set if you never
2385 	 * set the IP ECT flag on outbound packets. All the same, we use
2386 	 * the TE_SETUPSENT to indicate that we have committed to handling
2387 	 * the TCP ECE flag correctly. We use the TE_SENDIPECT to indicate
2388 	 * whether or not we should set the IP ECT flag on outbound packet
2389 	 *
2390 	 * For a SYN-ACK, send an ECN setup SYN-ACK
2391 	 *
2392 	 * Below we send ECN for three different handhshake states:
2393 	 * 1. Server received SYN and is sending a SYN-ACK (state->TCPS_SYN_RECEIVED)
2394 	 *    - both classic and Accurate ECN have special encoding
2395 	 * 2. Client is sending SYN packet (state->SYN_SENT)
2396 	 *    - both classic and Accurate ECN have special encoding
2397 	 * 3. Client is sending final ACK of 3WHS (state->ESTABLISHED)
2398 	 *    - Only Accurate ECN has special encoding
2399 	 */
2400 	if ((flags & (TH_SYN | TH_ACK)) == (TH_SYN | TH_ACK) &&
2401 	    (tp->ecn_flags & TE_ENABLE_ECN)) {
2402 		flags = tcp_accecn_synack_respond(tp, flags);
2403 	} else if ((flags & (TH_SYN | TH_ACK)) == TH_SYN &&
2404 	    (tp->ecn_flags & TE_ENABLE_ECN)) {
2405 		if (tcp_send_ecn_flags_on_syn(tp)) {
2406 			if (tp->l4s_enabled) {
2407 				/*
2408 				 * We are negotiating AccECN in SYN.
2409 				 * We only set TE_SENDIPECT after the handshake
2410 				 * is complete.
2411 				 */
2412 				flags |= TH_ACE;
2413 				tp->ecn_flags |= (TE_ACE_SETUPSENT);
2414 			} else {
2415 				/*
2416 				 * Setting TH_ECE and TH_CWR makes this an
2417 				 * ECN-setup SYN
2418 				 */
2419 				flags |= (TH_ECE | TH_CWR);
2420 				/*
2421 				 * Record that we sent the ECN-setup and default to
2422 				 * setting IP ECT.
2423 				 */
2424 				tp->ecn_flags |= (TE_SETUPSENT | TE_SENDIPECT);
2425 			}
2426 			tcpstat.tcps_ecn_client_setup++;
2427 			tp->ecn_flags |= TE_CLIENT_SETUP;
2428 		} else {
2429 			/*
2430 			 * We sent an ECN-setup SYN but it was dropped.
2431 			 * Fall back to non-ECN and clear flag indicating
2432 			 * we should send data with IP ECT set.
2433 			 */
2434 			if (tp->ecn_flags & (TE_SETUPSENT | TE_ACE_SETUPSENT)) {
2435 				tcpstat.tcps_ecn_lost_syn++;
2436 				tp->ecn_flags |= TE_LOST_SYN;
2437 			}
2438 			tp->ecn_flags &= ~TE_SENDIPECT;
2439 		}
2440 	} else if (tp->accurate_ecn_on && (tp->ecn_flags & TE_ACE_FINAL_ACK_3WHS) &&
2441 	    len == 0 && (flags & (TH_FLAGS_ALL)) == TH_ACK) {
2442 		/*
2443 		 * Client has processed SYN-ACK and moved to ESTABLISHED.
2444 		 * This is the final ACK of 3WHS. If ACC_ECN has been negotiated,
2445 		 * then send the handshake encoding as per Table 3 of Accurate ECN draft.
2446 		 * We are clearing the ACE flags just in case if they were set before.
2447 		 * TODO: if client has to carry data in the 3WHS ACK, then we need to send a pure ACK first
2448 		 */
2449 		flags &= ~(TH_AE | TH_CWR | TH_ECE);
2450 		if (tp->ecn_flags & TE_ACE_SETUP_NON_ECT) {
2451 			flags |= TH_CWR;
2452 			tp->ecn_flags &= ~TE_ACE_SETUP_NON_ECT;
2453 		} else if (tp->ecn_flags & TE_ACE_SETUP_ECT1) {
2454 			flags |= (TH_CWR | TH_ECE);
2455 			tp->ecn_flags &= ~TE_ACE_SETUP_ECT1;
2456 		} else if (tp->ecn_flags & TE_ACE_SETUP_ECT0) {
2457 			flags |= TH_AE;
2458 			tp->ecn_flags &= ~TE_ACE_SETUP_ECT0;
2459 		} else if (tp->ecn_flags & TE_ACE_SETUP_CE) {
2460 			flags |= (TH_AE | TH_CWR);
2461 			tp->ecn_flags &= ~TE_ACE_SETUP_CE;
2462 		}
2463 		tp->ecn_flags &= ~(TE_ACE_FINAL_ACK_3WHS);
2464 	}
2465 
2466 	/*
2467 	 * Check if we should set the TCP CWR flag.
2468 	 * CWR flag is sent when we reduced the congestion window because
2469 	 * we received a TCP ECE or we performed a fast retransmit. We
2470 	 * never set the CWR flag on retransmitted packets. We only set
2471 	 * the CWR flag on data packets. Pure acks don't have this set.
2472 	 */
2473 	if ((tp->ecn_flags & TE_SENDCWR) != 0 && len != 0 &&
2474 	    !SEQ_LT(tp->snd_nxt, tp->snd_max) && !rack_sack_rxmit) {
2475 		flags |= TH_CWR;
2476 		tp->ecn_flags &= ~TE_SENDCWR;
2477 	}
2478 
2479 	/*
2480 	 * Check if we should set the TCP ECE flag.
2481 	 */
2482 	if ((tp->ecn_flags & TE_SENDECE) != 0 && len == 0) {
2483 		flags |= TH_ECE;
2484 		tcpstat.tcps_ecn_sent_ece++;
2485 	}
2486 
2487 	hdrlen += optlen;
2488 
2489 	/* Reset DSACK sequence numbers */
2490 	tp->t_dsack_lseq = 0;
2491 	tp->t_dsack_rseq = 0;
2492 
2493 	if (isipv6) {
2494 		ipoptlen = ip6_optlen(inp);
2495 	} else {
2496 		if (tp_inp_options) {
2497 			ipoptlen = tp_inp_options->m_len -
2498 			    offsetof(struct ipoption, ipopt_list);
2499 		} else {
2500 			ipoptlen = 0;
2501 		}
2502 	}
2503 #if IPSEC
2504 	ipoptlen += ipsec_optlen;
2505 #endif
2506 
2507 	/*
2508 	 * Adjust data length if insertion of options will
2509 	 * bump the packet length beyond the t_maxopd length.
2510 	 * Clear the FIN bit because we cut off the tail of
2511 	 * the segment.
2512 	 *
2513 	 * When doing TSO limit a burst to TCP_MAXWIN minus the
2514 	 * IP, TCP and Options length to keep ip->ip_len from
2515 	 * overflowing.  Prevent the last segment from being
2516 	 * fractional thus making them all equal sized and set
2517 	 * the flag to continue sending.  TSO is disabled when
2518 	 * IP options or IPSEC are present.
2519 	 */
2520 	if (len + optlen + ipoptlen > tp->t_maxopd) {
2521 		/*
2522 		 * If there is still more to send,
2523 		 * don't close the connection.
2524 		 */
2525 		flags &= ~TH_FIN;
2526 		if (tso) {
2527 			int32_t tso_maxlen;
2528 
2529 			tso_maxlen = tp->tso_max_segment_size ?
2530 			    tp->tso_max_segment_size : TCP_MAXWIN;
2531 
2532 			/* hdrlen includes optlen */
2533 			if (len > tso_maxlen - hdrlen) {
2534 				len = tso_maxlen - hdrlen;
2535 				sendalot = 1;
2536 			} else if (tp->t_flags & TF_NEEDFIN) {
2537 				sendalot = 1;
2538 			}
2539 
2540 			if (len % (tp->t_maxopd - optlen) != 0) {
2541 				len = len - (len % (tp->t_maxopd - optlen));
2542 				sendalot = 1;
2543 			}
2544 		} else {
2545 			len = tp->t_maxopd - optlen - ipoptlen;
2546 			sendalot = 1;
2547 		}
2548 	}
2549 
2550 	if (!(flags & TH_SYN) &&
2551 	    ((tp->accurate_ecn_on && (tp->ecn_flags & TE_SENDIPECT) != 0) ||
2552 	    inp->inp_max_pacing_rate != UINT64_MAX)) {
2553 		uint32_t pacing_delay;
2554 
2555 		pacing_delay = tcp_pacer_get_packet_tx_time(tp, len, &pacing_tx_time);
2556 
2557 		if (TSTMP_GT(tcp_now_local + pacing_delay, tp->t_latest_tx)) {
2558 			/*
2559 			 * We need to make sure that time never moves backwards. This is
2560 			 * needed because `tcp_now` is not the same as `microuptime`
2561 			 * and thus two threads trying to send (one from the app, one
2562 			 * from dlil_input) may end up with different views on the time
2563 			 * and thus we may end up going backwards...
2564 			 * So, make sure t_latest_tx is strictly increasing.
2565 			 */
2566 			tp->t_latest_tx = tcp_now_local + pacing_delay;
2567 		}
2568 	} else {
2569 		if (TSTMP_GT(tcp_now_local, tp->t_latest_tx)) {
2570 			tp->t_latest_tx = tcp_now_local;
2571 		}
2572 	}
2573 
2574 	if (tsvalptr != NULL) {
2575 		uint32_t tsval;
2576 
2577 		/*
2578 		 * pacing_delay is folded into t_latest_tx, so that our
2579 		 * RTT-estimate is not artificially inflated.
2580 		 */
2581 		tsval = tp->t_ts_offset + tp->t_latest_tx;
2582 		*tsvalptr = htonl(tsval);
2583 	}
2584 
2585 	if (max_linkhdr + hdrlen > MCLBYTES) {
2586 		panic("tcphdr too big");
2587 	}
2588 
2589 	/* Check if there is enough data in the send socket
2590 	 * buffer to start measuring bandwidth
2591 	 */
2592 	if ((tp->t_flagsext & TF_MEASURESNDBW) != 0 &&
2593 	    (tp->t_bwmeas != NULL) &&
2594 	    (tp->t_flagsext & TF_BWMEAS_INPROGRESS) == 0) {
2595 		tp->t_bwmeas->bw_size = min(min(
2596 			    (so->so_snd.sb_cc - (tp->snd_max - tp->snd_una)),
2597 			    tp->snd_cwnd), tp->snd_wnd);
2598 		if (tp->t_bwmeas->bw_minsize > 0 &&
2599 		    tp->t_bwmeas->bw_size < tp->t_bwmeas->bw_minsize) {
2600 			tp->t_bwmeas->bw_size = 0;
2601 		}
2602 		if (tp->t_bwmeas->bw_maxsize > 0) {
2603 			tp->t_bwmeas->bw_size = min(tp->t_bwmeas->bw_size,
2604 			    tp->t_bwmeas->bw_maxsize);
2605 		}
2606 		if (tp->t_bwmeas->bw_size > 0) {
2607 			tp->t_flagsext |= TF_BWMEAS_INPROGRESS;
2608 			tp->t_bwmeas->bw_start = tp->snd_max;
2609 			tp->t_bwmeas->bw_ts = tcp_now_local;
2610 		}
2611 	}
2612 
2613 	VERIFY(inp->inp_flowhash != 0);
2614 	/*
2615 	 * Grab a header mbuf, attaching a copy of data to
2616 	 * be transmitted, and initialize the header from
2617 	 * the template for sends on this connection.
2618 	 */
2619 	if (len) {
2620 		/* Remember what the last head-of-line packet-size was */
2621 		if (tp->t_pmtud_lastseg_size == 0 && tp->snd_nxt == tp->snd_una) {
2622 			ASSERT(len + optlen + ipoptlen <= IP_MAXPACKET);
2623 			tp->t_pmtud_lastseg_size = (uint16_t)(len + optlen + ipoptlen);
2624 		}
2625 		if ((tp->t_flagsext & TF_FORCE) && len == 1) {
2626 			tcpstat.tcps_sndprobe++;
2627 		} else if (SEQ_LT(tp->snd_nxt, tp->snd_max) || rack_sack_rxmit) {
2628 			tcpstat.tcps_sndrexmitpack++;
2629 			tcpstat.tcps_sndrexmitbyte += len;
2630 			if (nstat_collect) {
2631 				nstat_route_tx(inp->inp_route.ro_rt, 1,
2632 				    len, NSTAT_TX_FLAG_RETRANSMIT);
2633 				INP_ADD_TXSTAT(inp, ifnet_count_type, 1, len);
2634 				tp->t_stat.txretransmitbytes += len;
2635 				tp->t_stat.rxmitpkts++;
2636 			}
2637 			if (tp->ecn_flags & TE_SENDIPECT) {
2638 				tp->t_ecn_capable_packets_lost++;
2639 			}
2640 		} else {
2641 			tcpstat.tcps_sndpack++;
2642 			tcpstat.tcps_sndbyte += len;
2643 
2644 			if (nstat_collect) {
2645 				INP_ADD_TXSTAT(inp, ifnet_count_type, 1, len);
2646 			}
2647 			if (tp->ecn_flags & TE_SENDIPECT) {
2648 				tp->t_ecn_capable_packets_sent++;
2649 			}
2650 			inp_decr_sndbytes_unsent(so, len);
2651 		}
2652 #if MPTCP
2653 		if (tp->t_mpflags & TMPF_MPTCP_TRUE) {
2654 			tcpstat.tcps_mp_sndpacks++;
2655 			tcpstat.tcps_mp_sndbytes += len;
2656 		}
2657 #endif /* MPTCP */
2658 		/*
2659 		 * try to use the new interface that allocates all
2660 		 * the necessary mbuf hdrs under 1 mbuf lock and
2661 		 * avoids rescanning the socket mbuf list if
2662 		 * certain conditions are met.  This routine can't
2663 		 * be used in the following cases...
2664 		 * 1) the protocol headers exceed the capacity of
2665 		 * of a single mbuf header's data area (no cluster attached)
2666 		 * 2) the length of the data being transmitted plus
2667 		 * the protocol headers fits into a single mbuf header's
2668 		 * data area (no cluster attached)
2669 		 */
2670 		m = NULL;
2671 
2672 		/* minimum length we are going to allocate */
2673 		allocated_len = MHLEN;
2674 		if (MHLEN < hdrlen + max_linkhdr) {
2675 			MGETHDR(m, M_DONTWAIT, MT_HEADER);
2676 			if (m == NULL) {
2677 				error = ENOBUFS;
2678 				TCP_LOG(tp, "MGETHDR error ENOBUFS");
2679 				goto out;
2680 			}
2681 			MCLGET(m, M_DONTWAIT);
2682 			if ((m->m_flags & M_EXT) == 0) {
2683 				m_freem(m);
2684 				error = ENOBUFS;
2685 				TCP_LOG(tp, "MCLGET error ENOBUFS");
2686 				goto out;
2687 			}
2688 			m->m_data += max_linkhdr;
2689 			m->m_len = hdrlen;
2690 			allocated_len = MCLBYTES;
2691 		}
2692 		if (len <= allocated_len - hdrlen - max_linkhdr) {
2693 			if (m == NULL) {
2694 				VERIFY(allocated_len <= MHLEN);
2695 				MGETHDR(m, M_DONTWAIT, MT_HEADER);
2696 				if (m == NULL) {
2697 					error = ENOBUFS;
2698 					TCP_LOG(tp, "MGETHDR error ENOBUFS");
2699 					goto out;
2700 				}
2701 				m->m_data += max_linkhdr;
2702 				m->m_len = hdrlen;
2703 			}
2704 			/* makes sure we still have data left to be sent at this point */
2705 			if (so->so_snd.sb_mb == NULL || off < 0) {
2706 				if (m != NULL) {
2707 					m_freem(m);
2708 				}
2709 				error = 0; /* should we return an error? */
2710 				goto out;
2711 			}
2712 			m_copydata(so->so_snd.sb_mb, off, (int) len,
2713 			    mtod(m, caddr_t) + hdrlen);
2714 			m->m_len += len;
2715 		} else {
2716 			uint32_t copymode;
2717 			/*
2718 			 * Retain packet header metadata at the socket
2719 			 * buffer if this is is an MPTCP subflow,
2720 			 * otherwise move it.
2721 			 */
2722 			copymode = M_COPYM_MOVE_HDR;
2723 #if MPTCP
2724 			if (so->so_flags & SOF_MP_SUBFLOW) {
2725 				copymode = M_COPYM_NOOP_HDR;
2726 			}
2727 #endif /* MPTCP */
2728 			if (m != NULL) {
2729 				if (so->so_snd.sb_flags & SB_SENDHEAD) {
2730 					VERIFY(so->so_snd.sb_flags & SB_SENDHEAD);
2731 					VERIFY(so->so_snd.sb_sendoff <= so->so_snd.sb_cc);
2732 
2733 					m->m_next = m_copym_mode(so->so_snd.sb_mb,
2734 					    off, (int)len, M_DONTWAIT,
2735 					    &so->so_snd.sb_sendhead,
2736 					    &so->so_snd.sb_sendoff, copymode);
2737 
2738 					VERIFY(so->so_snd.sb_sendoff <= so->so_snd.sb_cc);
2739 				} else {
2740 					m->m_next = m_copym_mode(so->so_snd.sb_mb,
2741 					    off, (int)len, M_DONTWAIT,
2742 					    NULL, NULL, copymode);
2743 				}
2744 				if (m->m_next == NULL) {
2745 					(void) m_free(m);
2746 					error = ENOBUFS;
2747 					TCP_LOG(tp, "m_copym_mode error ENOBUFS");
2748 					goto out;
2749 				}
2750 			} else {
2751 				/*
2752 				 * make sure we still have data left
2753 				 * to be sent at this point
2754 				 */
2755 				if (so->so_snd.sb_mb == NULL) {
2756 					error = 0; /* should we return an error? */
2757 					goto out;
2758 				}
2759 
2760 				/*
2761 				 * m_copym_with_hdrs will always return the
2762 				 * last mbuf pointer and the offset into it that
2763 				 * it acted on to fullfill the current request,
2764 				 * whether a valid 'hint' was passed in or not.
2765 				 */
2766 				if (so->so_snd.sb_flags & SB_SENDHEAD) {
2767 					VERIFY(so->so_snd.sb_flags & SB_SENDHEAD);
2768 					VERIFY(so->so_snd.sb_sendoff <= so->so_snd.sb_cc);
2769 
2770 					m = m_copym_with_hdrs(so->so_snd.sb_mb,
2771 					    off, len, M_DONTWAIT, &so->so_snd.sb_sendhead,
2772 					    &so->so_snd.sb_sendoff, copymode);
2773 
2774 					VERIFY(so->so_snd.sb_sendoff <= so->so_snd.sb_cc);
2775 				} else {
2776 					m = m_copym_with_hdrs(so->so_snd.sb_mb,
2777 					    off, len, M_DONTWAIT, NULL,
2778 					    NULL, copymode);
2779 				}
2780 				if (m == NULL) {
2781 					error = ENOBUFS;
2782 					TCP_LOG(tp, "m_copym_with_hdrs error ENOBUFS");
2783 					goto out;
2784 				}
2785 				m->m_data += max_linkhdr;
2786 				m->m_len = hdrlen;
2787 			}
2788 		}
2789 		/*
2790 		 * If we're sending everything we've got, set PUSH.
2791 		 * (This will keep happy those implementations which only
2792 		 * give data to the user when a buffer fills or
2793 		 * a PUSH comes in.)
2794 		 *
2795 		 * On SYN-segments we should not add the PUSH-flag.
2796 		 */
2797 		if (off + len == so->so_snd.sb_cc && !(flags & TH_SYN)) {
2798 			flags |= TH_PUSH;
2799 		}
2800 	} else {
2801 		if (tp->t_flags & TF_ACKNOW) {
2802 			tcpstat.tcps_sndacks++;
2803 		} else if (flags & (TH_SYN | TH_FIN | TH_RST)) {
2804 			tcpstat.tcps_sndctrl++;
2805 		} else if (SEQ_GT(tp->snd_up, tp->snd_una)) {
2806 			tcpstat.tcps_sndurg++;
2807 		} else {
2808 			tcpstat.tcps_sndwinup++;
2809 		}
2810 
2811 		MGETHDR(m, M_DONTWAIT, MT_HEADER);      /* MAC-OK */
2812 		if (m == NULL) {
2813 			error = ENOBUFS;
2814 			TCP_LOG(tp, "MGETHDR error ENOBUFS");
2815 			goto out;
2816 		}
2817 		if (MHLEN < (hdrlen + max_linkhdr)) {
2818 			MCLGET(m, M_DONTWAIT);
2819 			if ((m->m_flags & M_EXT) == 0) {
2820 				m_freem(m);
2821 				error = ENOBUFS;
2822 				TCP_LOG(tp, "MCLGET error ENOBUFS");
2823 				goto out;
2824 			}
2825 		}
2826 		m->m_data += max_linkhdr;
2827 		m->m_len = hdrlen;
2828 	}
2829 	m->m_pkthdr.rcvif = 0;
2830 	m_add_crumb(m, PKT_CRUMB_TCP_OUTPUT);
2831 
2832 	/* Any flag other than pure-ACK: Do not compress! */
2833 	if (flags & ~(TH_ACK)) {
2834 		do_not_compress = TRUE;
2835 	}
2836 
2837 	if (tp->rcv_scale == 0) {
2838 		do_not_compress = TRUE;
2839 	}
2840 
2841 	if (do_not_compress) {
2842 		m->m_pkthdr.comp_gencnt = 0;
2843 	} else {
2844 		if (TSTMP_LT(tp->t_comp_ack_lastinc + tcp_ack_compression_rate, tcp_now_local)) {
2845 			tp->t_comp_ack_gencnt++;
2846 			/*
2847 			 * 0 means no compression, and ACK gencnt is encoded on 31 bits
2848 			 */
2849 			if (tp->t_comp_ack_gencnt <= TCP_ACK_COMPRESSION_DUMMY ||
2850 			    tp->t_comp_ack_gencnt > INT_MAX) {
2851 				tp->t_comp_ack_gencnt = TCP_ACK_COMPRESSION_DUMMY + 1;
2852 			}
2853 			tp->t_comp_ack_lastinc = tcp_now_local;
2854 		}
2855 		m->m_pkthdr.comp_gencnt = tp->t_comp_ack_gencnt;
2856 	}
2857 
2858 	if (isipv6) {
2859 		ip6 = mtod(m, struct ip6_hdr *);
2860 		th = (struct tcphdr *)(void *)(ip6 + 1);
2861 		tcp_fillheaders(m, tp, ip6, th, NULL, NULL);
2862 
2863 		if (tp->accurate_ecn_on) {
2864 			/* We send ECT1 for ALL packets (data, control, fast retransmits, RTO) */
2865 			if ((tp->ecn_flags & TE_SENDIPECT) != 0 && !(flags & TH_SYN)) {
2866 				ip6->ip6_flow |= htonl(IPTOS_ECN_ECT1 << 20);
2867 			}
2868 		} else {
2869 			if ((tp->ecn_flags & TE_SENDIPECT) != 0 && len &&
2870 			    !SEQ_LT(tp->snd_nxt, tp->snd_max) && !rack_sack_rxmit) {
2871 				ip6->ip6_flow |= htonl(IPTOS_ECN_ECT0 << 20);
2872 			}
2873 		}
2874 		svc_flags |= PKT_SCF_IPV6;
2875 #if PF_ECN
2876 		m_pftag(m)->pftag_hdr = (void *)ip6;
2877 		m_pftag(m)->pftag_flags |= PF_TAG_HDR_INET6;
2878 #endif /* PF_ECN */
2879 	} else {
2880 		ip = mtod(m, struct ip *);
2881 		th = (struct tcphdr *)(void *)(ip + 1);
2882 		/* this picks up the pseudo header (w/o the length) */
2883 		tcp_fillheaders(m, tp, ip, th, NULL, NULL);
2884 
2885 		if (tp->accurate_ecn_on) {
2886 			/* We send ECT1 for ALL packets (data, control, fast retransmits, RTO) */
2887 			if ((tp->ecn_flags & TE_SENDIPECT) != 0 && !(flags & TH_SYN)) {
2888 				ip->ip_tos |= IPTOS_ECN_ECT1;
2889 			}
2890 		} else {
2891 			if ((tp->ecn_flags & TE_SENDIPECT) != 0 && len &&
2892 			    !SEQ_LT(tp->snd_nxt, tp->snd_max) &&
2893 			    !rack_sack_rxmit && !(flags & TH_SYN)) {
2894 				ip->ip_tos |= IPTOS_ECN_ECT0;
2895 			}
2896 		}
2897 #if PF_ECN
2898 		m_pftag(m)->pftag_hdr = (void *)ip;
2899 		m_pftag(m)->pftag_flags |= PF_TAG_HDR_INET;
2900 #endif /* PF_ECN */
2901 	}
2902 
2903 	if (pacing_tx_time) {
2904 		mbuf_set_tx_time(m, pacing_tx_time);
2905 	}
2906 
2907 	/*
2908 	 * Fill in fields, remembering maximum advertised
2909 	 * window for use in delaying messages about window sizes.
2910 	 * If resending a FIN, be sure not to use a new sequence number.
2911 	 */
2912 	if ((flags & TH_FIN) && (tp->t_flags & TF_SENTFIN) &&
2913 	    tp->snd_nxt == tp->snd_max) {
2914 		tp->snd_nxt--;
2915 	}
2916 	/*
2917 	 * If we are doing retransmissions, then snd_nxt will
2918 	 * not reflect the first unsent octet.  For ACK only
2919 	 * packets, we do not want the sequence number of the
2920 	 * retransmitted packet, we want the sequence number
2921 	 * of the next unsent octet.  So, if there is no data
2922 	 * (and no SYN or FIN), use snd_max instead of snd_nxt
2923 	 * when filling in ti_seq.  But if we are in persist
2924 	 * state, snd_max might reflect one byte beyond the
2925 	 * right edge of the window, so use snd_nxt in that
2926 	 * case, since we know we aren't doing a retransmission.
2927 	 * (retransmit and persist are mutually exclusive...)
2928 	 *
2929 	 * Note the state of this retransmit segment to detect spurious
2930 	 * retransmissions.
2931 	 */
2932 	if (rack_sack_rxmit == 0) {
2933 		if (len || (flags & (TH_SYN | TH_FIN)) ||
2934 		    tp->t_timer[TCPT_PERSIST]) {
2935 			th->th_seq = htonl(tp->snd_nxt);
2936 			if (len > 0) {
2937 				m->m_pkthdr.tx_start_seq = tp->snd_nxt;
2938 				m->m_pkthdr.pkt_flags |= PKTF_START_SEQ;
2939 			}
2940 			if (SEQ_LT(tp->snd_nxt, tp->snd_max)) {
2941 				if (SACK_ENABLED(tp) && len > 1 &&
2942 				    !(tp->t_flagsext & TF_SENT_TLPROBE)) {
2943 					tcp_rxtseg_insert(tp, tp->snd_nxt,
2944 					    (tp->snd_nxt + len - 1));
2945 				}
2946 				if (len > 0) {
2947 					m->m_pkthdr.pkt_flags |=
2948 					    PKTF_TCP_REXMT;
2949 				}
2950 			}
2951 		} else {
2952 			th->th_seq = htonl(tp->snd_max);
2953 		}
2954 	} else {
2955 		/* Use RACK if enabled otherwise use SACK */
2956 		if (TCP_RACK_ENABLED(tp)) {
2957 			th->th_seq = htonl(seg->start_seq);
2958 			tcp_rxtseg_insert(tp, seg->start_seq, (seg->start_seq + len - 1));
2959 		} else {
2960 			th->th_seq = htonl(p->rxmit);
2961 			tcp_rxtseg_insert(tp, p->rxmit, (p->rxmit + len - 1));
2962 			p->rxmit += len;
2963 			tp->sackhint.sack_bytes_rexmit += len;
2964 		}
2965 		if (len > 0) {
2966 			m->m_pkthdr.tx_start_seq = ntohl(th->th_seq);
2967 			m->m_pkthdr.pkt_flags |=
2968 			    (PKTF_TCP_REXMT | PKTF_START_SEQ);
2969 		}
2970 	}
2971 	th->th_ack = htonl(tp->rcv_nxt);
2972 	tp->last_ack_sent = tp->rcv_nxt;
2973 	if (optlen) {
2974 		bcopy(opt, th + 1, optlen);
2975 		th->th_off = (sizeof(struct tcphdr) + optlen) >> 2;
2976 	}
2977 	/* Separate AE from flags */
2978 	tcp_set_flags(th, flags);
2979 	th->th_win = htons((u_short) (recwin >> tp->rcv_scale));
2980 	tp->t_last_recwin = recwin;
2981 	if (!(so->so_flags & SOF_MP_SUBFLOW)) {
2982 		if (recwin > 0 && SEQ_LT(tp->rcv_adv, tp->rcv_nxt + recwin)) {
2983 			tp->rcv_adv = tp->rcv_nxt + recwin;
2984 		}
2985 	} else {
2986 		struct mptcb *mp_tp = tptomptp(tp);
2987 		if (recwin > 0) {
2988 			tp->rcv_adv = tp->rcv_nxt + recwin;
2989 		}
2990 
2991 		if (recwin > 0 && MPTCP_SEQ_LT(mp_tp->mpt_rcvadv, mp_tp->mpt_rcvnxt + recwin)) {
2992 			mp_tp->mpt_rcvadv = mp_tp->mpt_rcvnxt + recwin;
2993 		}
2994 	}
2995 
2996 	/*
2997 	 * Adjust the RXWIN0SENT flag - indicate that we have advertised
2998 	 * a 0 window.  This may cause the remote transmitter to stall.  This
2999 	 * flag tells soreceive() to disable delayed acknowledgements when
3000 	 * draining the buffer.  This can occur if the receiver is attempting
3001 	 * to read more data then can be buffered prior to transmitting on
3002 	 * the connection.
3003 	 */
3004 	if (th->th_win == 0) {
3005 		tp->t_flags |= TF_RXWIN0SENT;
3006 	} else {
3007 		tp->t_flags &= ~TF_RXWIN0SENT;
3008 	}
3009 
3010 	if (SEQ_GT(tp->snd_up, tp->snd_nxt)) {
3011 		th->th_urp = htons((u_short)(tp->snd_up - tp->snd_nxt));
3012 		th->th_flags |= TH_URG;
3013 	} else {
3014 		/*
3015 		 * If no urgent pointer to send, then we pull
3016 		 * the urgent pointer to the left edge of the send window
3017 		 * so that it doesn't drift into the send window on sequence
3018 		 * number wraparound.
3019 		 */
3020 		tp->snd_up = tp->snd_una;               /* drag it along */
3021 	}
3022 
3023 	/*
3024 	 * Put TCP length in extended header, and then
3025 	 * checksum extended header and data.
3026 	 */
3027 	m->m_pkthdr.len = hdrlen + len; /* in6_cksum() need this */
3028 
3029 	/*
3030 	 * If this is potentially the last packet on the stream, then mark
3031 	 * it in order to enable some optimizations in the underlying
3032 	 * layers
3033 	 */
3034 	if (tp->t_state != TCPS_ESTABLISHED &&
3035 	    (tp->t_state == TCPS_CLOSING || tp->t_state == TCPS_TIME_WAIT
3036 	    || tp->t_state == TCPS_LAST_ACK || (th->th_flags & TH_RST))) {
3037 		m->m_pkthdr.pkt_flags |= PKTF_LAST_PKT;
3038 	}
3039 
3040 	if (isipv6) {
3041 		/*
3042 		 * ip6_plen is not need to be filled now, and will be filled
3043 		 * in ip6_output.
3044 		 */
3045 		m->m_pkthdr.csum_flags = CSUM_TCPIPV6;
3046 		m->m_pkthdr.csum_data = offsetof(struct tcphdr, th_sum);
3047 		if (len + optlen) {
3048 			th->th_sum = in_addword(th->th_sum,
3049 			    htons((u_short)(optlen + len)));
3050 		}
3051 	} else {
3052 		m->m_pkthdr.csum_flags = CSUM_TCP;
3053 		m->m_pkthdr.csum_data = offsetof(struct tcphdr, th_sum);
3054 		if (len + optlen) {
3055 			th->th_sum = in_addword(th->th_sum,
3056 			    htons((u_short)(optlen + len)));
3057 		}
3058 	}
3059 
3060 	/*
3061 	 * Enable TSO and specify the size of the segments.
3062 	 * The TCP pseudo header checksum is always provided.
3063 	 */
3064 	if (tso) {
3065 		if (isipv6) {
3066 			m->m_pkthdr.csum_flags |= CSUM_TSO_IPV6;
3067 		} else {
3068 			m->m_pkthdr.csum_flags |= CSUM_TSO_IPV4;
3069 		}
3070 
3071 		m->m_pkthdr.tso_segsz = (uint16_t)(tp->t_maxopd - optlen);
3072 		m->m_pkthdr.tx_hdr_len = (uint16_t)hdrlen;
3073 	} else {
3074 		m->m_pkthdr.tso_segsz = 0;
3075 	}
3076 
3077 	/*
3078 	 * In transmit state, time the transmission and arrange for
3079 	 * the retransmit.  In persist state, just set snd_max.
3080 	 */
3081 	if (!(tp->t_flagsext & TF_FORCE)
3082 	    || tp->t_timer[TCPT_PERSIST] == 0) {
3083 		tcp_seq startseq = tp->snd_nxt;
3084 
3085 		/*
3086 		 * Advance snd_nxt over sequence space of this segment.
3087 		 */
3088 		if (flags & (TH_SYN | TH_FIN)) {
3089 			if (flags & TH_SYN) {
3090 				tp->snd_nxt++;
3091 			}
3092 			if ((flags & TH_FIN) &&
3093 			    !(tp->t_flags & TF_SENTFIN)) {
3094 				tp->snd_nxt++;
3095 				tp->t_flags |= TF_SENTFIN;
3096 			}
3097 		}
3098 		if (rack_sack_rxmit) {
3099 			goto timer;
3100 		}
3101 		if (sack_rescue_rxt == true) {
3102 			tp->snd_nxt = old_snd_nxt;
3103 			sack_rescue_rxt = false;
3104 			tcpstat.tcps_pto_in_recovery++;
3105 		} else {
3106 			tp->snd_nxt += len;
3107 		}
3108 		if (SEQ_GT(tp->snd_nxt, tp->snd_max)) {
3109 			tp->snd_max = tp->snd_nxt;
3110 			tp->t_sndtime = tp->t_latest_tx;
3111 			/*
3112 			 * Time this transmission if not a retransmission and
3113 			 * not currently timing anything.
3114 			 */
3115 			if (tp->t_rtttime == 0) {
3116 				tp->t_rtttime = tp->t_latest_tx;
3117 				tp->t_rtseq = startseq;
3118 				tcpstat.tcps_segstimed++;
3119 
3120 				/* update variables related to pipe ack */
3121 				tp->t_pipeack_lastuna = tp->snd_una;
3122 			}
3123 		}
3124 
3125 		/*
3126 		 * Set retransmit timer if not currently set,
3127 		 * and not doing an ack or a keep-alive probe.
3128 		 */
3129 timer:
3130 		if (tp->t_timer[TCPT_REXMT] == 0 &&
3131 		    ((rack_sack_rxmit && tp->snd_nxt != tp->snd_max) ||
3132 		    tp->snd_nxt != tp->snd_una || (flags & TH_FIN))) {
3133 			if (tp->t_timer[TCPT_PERSIST]) {
3134 				tp->t_timer[TCPT_PERSIST] = 0;
3135 				tp->t_persist_stop = 0;
3136 				TCP_RESET_REXMT_STATE(tp);
3137 			}
3138 			tcp_set_rto(tp);
3139 		}
3140 
3141 		if (tcp_enable_tlp && len != 0) {
3142 			tcp_set_pto(tp);
3143 		}
3144 	} else {
3145 		/*
3146 		 * Persist case, update snd_max but since we are in
3147 		 * persist mode (no window) we do not update snd_nxt.
3148 		 */
3149 		int xlen = len;
3150 		if (flags & TH_SYN) {
3151 			++xlen;
3152 		}
3153 		if ((flags & TH_FIN) &&
3154 		    !(tp->t_flags & TF_SENTFIN)) {
3155 			++xlen;
3156 			tp->t_flags |= TF_SENTFIN;
3157 		}
3158 		if (SEQ_GT(tp->snd_nxt + xlen, tp->snd_max)) {
3159 			tp->snd_max = tp->snd_nxt + len;
3160 			tp->t_sndtime = tp->t_latest_tx;
3161 		}
3162 	}
3163 
3164 	/*
3165 	 * Fill in IP length and desired time to live and
3166 	 * send to IP level.  There should be a better way
3167 	 * to handle ttl and tos; we could keep them in
3168 	 * the template, but need a way to checksum without them.
3169 	 */
3170 	/*
3171 	 * m->m_pkthdr.len should have been set before cksum calcuration,
3172 	 * because in6_cksum() need it.
3173 	 */
3174 	if (isipv6) {
3175 		/*
3176 		 * we separately set hoplimit for every segment, since the
3177 		 * user might want to change the value via setsockopt.
3178 		 * Also, desired default hop limit might be changed via
3179 		 * Neighbor Discovery.
3180 		 */
3181 		ip6->ip6_hlim = in6_selecthlim(inp, inp->in6p_route.ro_rt ?
3182 		    inp->in6p_route.ro_rt->rt_ifp : NULL);
3183 
3184 		/* Don't set ECT bit if requested by an app */
3185 
3186 		/* Set ECN bits for testing purposes */
3187 		if (tp->ecn_flags & TE_FORCE_ECT1) {
3188 			ip6->ip6_flow |= htonl(IPTOS_ECN_ECT1 << 20);
3189 		} else if (tp->ecn_flags & TE_FORCE_ECT0) {
3190 			ip6->ip6_flow |= htonl(IPTOS_ECN_ECT0 << 20);
3191 		}
3192 
3193 		KERNEL_DEBUG(DBG_LAYER_BEG,
3194 		    ((inp->inp_fport << 16) | inp->inp_lport),
3195 		    (((inp->in6p_laddr.s6_addr16[0] & 0xffff) << 16) |
3196 		    (inp->in6p_faddr.s6_addr16[0] & 0xffff)),
3197 		    sendalot, 0, 0);
3198 	} else {
3199 		ASSERT(m->m_pkthdr.len <= IP_MAXPACKET);
3200 		ip->ip_len = (u_short)m->m_pkthdr.len;
3201 		ip->ip_ttl = inp->inp_ip_ttl;   /* XXX */
3202 
3203 		/* Don't set ECN bit if requested by an app */
3204 		ip->ip_tos |= (inp->inp_ip_tos & ~IPTOS_ECN_MASK);
3205 
3206 		/* Set ECN bits for testing purposes */
3207 		if (tp->ecn_flags & TE_FORCE_ECT1) {
3208 			ip->ip_tos |= IPTOS_ECN_ECT1;
3209 		} else if (tp->ecn_flags & TE_FORCE_ECT0) {
3210 			ip->ip_tos |= IPTOS_ECN_ECT0;
3211 		}
3212 
3213 		KERNEL_DEBUG(DBG_LAYER_BEG,
3214 		    ((inp->inp_fport << 16) | inp->inp_lport),
3215 		    (((inp->inp_laddr.s_addr & 0xffff) << 16) |
3216 		    (inp->inp_faddr.s_addr & 0xffff)), 0, 0, 0);
3217 	}
3218 
3219 	/*
3220 	 * See if we should do MTU discovery.
3221 	 * Look at the flag updated on the following criterias:
3222 	 *	1) Path MTU discovery is authorized by the sysctl
3223 	 *	2) The route isn't set yet (unlikely but could happen)
3224 	 *	3) The route is up
3225 	 *	4) the MTU is not locked (if it is, then discovery has been
3226 	 *	   disabled for that route)
3227 	 */
3228 	if (!isipv6) {
3229 		if (path_mtu_discovery && (tp->t_flags & TF_PMTUD)) {
3230 			ip->ip_off |= IP_DF;
3231 		}
3232 	}
3233 
3234 #if NECP
3235 	{
3236 		necp_kernel_policy_id policy_id;
3237 		necp_kernel_policy_id skip_policy_id;
3238 		u_int32_t route_rule_id;
3239 		u_int32_t pass_flags;
3240 		if (!necp_socket_is_allowed_to_send_recv(inp, NULL, 0, &policy_id, &route_rule_id, &skip_policy_id, &pass_flags)) {
3241 			TCP_LOG_DROP_NECP(isipv6 ? (void *)ip6 : (void *)ip, th, tp, true);
3242 			m_drop_if(m, outifp, DROPTAP_FLAG_DIR_OUT | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_NECP, NULL, 0);
3243 			error = EHOSTUNREACH;
3244 			goto out;
3245 		}
3246 		necp_mark_packet_from_socket(m, inp, policy_id, route_rule_id, skip_policy_id, pass_flags);
3247 
3248 		if (net_qos_policy_restricted != 0) {
3249 			necp_socket_update_qos_marking(inp, inp->inp_route.ro_rt, route_rule_id);
3250 		}
3251 	}
3252 #endif /* NECP */
3253 
3254 #if IPSEC
3255 	if (inp->inp_sp != NULL) {
3256 		ipsec_setsocket(m, so);
3257 	}
3258 #endif /*IPSEC*/
3259 
3260 	/*
3261 	 * The socket is kept locked while sending out packets in ip_output, even if packet chaining is not active.
3262 	 */
3263 	lost = 0;
3264 
3265 	/*
3266 	 * Embed the flow hash in pkt hdr and mark the packet as
3267 	 * capable of flow controlling
3268 	 */
3269 	m->m_pkthdr.pkt_flowsrc = FLOWSRC_INPCB;
3270 	m->m_pkthdr.pkt_flowid = inp->inp_flowhash;
3271 	m->m_pkthdr.pkt_flags |= (PKTF_FLOW_ID | PKTF_FLOW_LOCALSRC | PKTF_FLOW_ADV);
3272 	m->m_pkthdr.pkt_proto = IPPROTO_TCP;
3273 	m->m_pkthdr.tx_tcp_pid = so->last_pid;
3274 	if (so->so_flags & SOF_DELEGATED) {
3275 		m->m_pkthdr.tx_tcp_e_pid = so->e_pid;
3276 	} else {
3277 		m->m_pkthdr.tx_tcp_e_pid = 0;
3278 	}
3279 
3280 	m->m_nextpkt = NULL;
3281 
3282 	if (outifp != NULL &&
3283 	    !(outifp->if_flags & IFF_LOOPBACK)) {
3284 		/* Hint to prioritize this packet if
3285 		 * 1. if the packet has no data
3286 		 * 2. the interface supports transmit-start model and did
3287 		 *    not disable ACK prioritization.
3288 		 * 3. Only ACK flag is set.
3289 		 * 4. there is no outstanding data on this connection.
3290 		 * 5. Link heuristics are not enabled for the interface
3291 		 */
3292 		if (len == 0 && (outifp->if_eflags & (IFEF_TXSTART | IFEF_NOACKPRI)) == IFEF_TXSTART) {
3293 			if (link_heuristics_enabled && (tcp_link_heuristics_flags & TCP_LINK_HEUR_NOACKPRI) != 0) {
3294 				IF_TCP_STATINC(outifp, linkheur_noackpri);
3295 			} else {
3296 				if (th->th_flags == TH_ACK &&
3297 				    tp->snd_una == tp->snd_max &&
3298 				    tp->t_timer[TCPT_REXMT] == 0) {
3299 					svc_flags |= PKT_SCF_TCP_ACK;
3300 				}
3301 				if (tcp_allow_syn_prio == 1 && (th->th_flags & TH_SYN)) {
3302 					svc_flags |= PKT_SCF_TCP_SYN;
3303 				}
3304 			}
3305 		}
3306 		set_packet_service_class(m, so, sotc, svc_flags);
3307 	} else {
3308 		/*
3309 		 * Optimization for loopback just set the mbuf
3310 		 * service class
3311 		 */
3312 		(void) m_set_service_class(m, so_tc2msc(sotc));
3313 	}
3314 
3315 	tp->t_pktlist_sentlen += len;
3316 	tp->t_lastchain++;
3317 
3318 	if (isipv6) {
3319 		DTRACE_TCP5(send, struct mbuf *, m, struct inpcb *, inp,
3320 		    struct ip6 *, ip6, struct tcpcb *, tp, struct tcphdr *,
3321 		    th);
3322 	} else {
3323 		DTRACE_TCP5(send, struct mbuf *, m, struct inpcb *, inp,
3324 		    struct ip *, ip, struct tcpcb *, tp, struct tcphdr *, th);
3325 	}
3326 
3327 	if (tp->t_pktlist_head != NULL) {
3328 		tp->t_pktlist_tail->m_nextpkt = m;
3329 		tp->t_pktlist_tail = m;
3330 	} else {
3331 		packchain_newlist++;
3332 		tp->t_pktlist_head = tp->t_pktlist_tail = m;
3333 	}
3334 
3335 	/* Append segment to time-ordered list and RB tree used for RACK */
3336 	if (TCP_RACK_ENABLED(tp) && len != 0) {
3337 		uint8_t retransmit_flag = 0;
3338 		if (tp->t_flagsext & TF_SENT_TLPROBE) {
3339 			/* Only set the at least once retransmitted flag */
3340 			retransmit_flag = (m->m_pkthdr.pkt_flags & PKTF_TCP_REXMT) ? TCP_SEGMENT_RETRANSMITTED_ATLEAST_ONCE : 0;
3341 		} else {
3342 			/* Set both RACK and EVER retransmitted flags */
3343 			retransmit_flag = (m->m_pkthdr.pkt_flags & PKTF_TCP_REXMT) ? TCP_SEGMENT_RETRANSMITTED : 0;
3344 		}
3345 		tcp_seg_sent_insert(tp, seg, ntohl(th->th_seq),
3346 		    ntohl(th->th_seq) + len, tp->t_latest_tx, retransmit_flag);
3347 	}
3348 
3349 	if ((th->th_flags & TH_SYN) != 0) {
3350 		(void)os_add_overflow(tp->t_syn_sent, 1, &tp->t_syn_sent);
3351 		if (tp->t_rxtshift > 0) {
3352 			m->m_pkthdr.pkt_flags |= PKTF_TCP_REXMT;
3353 		}
3354 	}
3355 	if ((th->th_flags & TH_FIN) != 0) {
3356 		(void)os_add_overflow(tp->t_fin_sent, 1, &tp->t_fin_sent);
3357 		if (tp->t_rxtshift > 0) {
3358 			m->m_pkthdr.pkt_flags |= PKTF_TCP_REXMT;
3359 		}
3360 	}
3361 	if ((th->th_flags & TH_RST) != 0) {
3362 		(void)os_add_overflow(tp->t_rst_sent, 1, &tp->t_rst_sent);
3363 		if (tp->t_rxtshift > 0) {
3364 			m->m_pkthdr.pkt_flags |= PKTF_TCP_REXMT;
3365 		}
3366 	}
3367 	TCP_LOG_TH_FLAGS(isipv6 ? (void *)ip6 : (void *)ip, th, tp, true,
3368 	    outifp != NULL ? outifp : inp->inp_boundifp);
3369 
3370 	if (__improbable((th->th_flags & TH_RST) != 0 && inp->inp_sndinprog_cnt == 0 &&
3371 	    sendalot == 0 && tp->t_pktlist_head == m)) {
3372 		if (tcp_rst_rlc_compress(mtod(m, void *), m->m_len, th) == true) {
3373 			error = 0;
3374 			goto out;
3375 		}
3376 	}
3377 
3378 	if (link_heuristics_enabled && (tcp_link_heuristics_flags & TCP_LINK_HEUR_RXMT_COMP) != 0 &&
3379 	    (len != 0 || (th->th_flags & TH_FIN) != 0)) {
3380 		/*
3381 		 * Set compression flag if gencnt of segment is the same as the last sent segment
3382 		 * otherwise record the gencnt of the segment that we are sending
3383 		 */
3384 		uint32_t gencnt =  ntohl(th->th_seq) & TCP_COMP_RXMT_GENCNT_MASK;
3385 
3386 		if ((m->m_pkthdr.pkt_flags & PKTF_TCP_REXMT) != 0 && gencnt == tp->t_comp_rxmt_gencnt) {
3387 			IF_TCP_STATINC(outifp, linkheur_comprxmt);
3388 			m->m_pkthdr.comp_gencnt = gencnt;
3389 		} else {
3390 			tp->t_comp_rxmt_gencnt = gencnt;
3391 		}
3392 	}
3393 
3394 	if (sendalot == 0 || (tp->t_state != TCPS_ESTABLISHED) ||
3395 	    (tp->t_flags & TF_ACKNOW) ||
3396 	    (tp->t_flagsext & TF_FORCE) ||
3397 	    tp->t_lastchain >= tcp_packet_chaining) {
3398 		error = 0;
3399 		while (inp->inp_sndinprog_cnt == 0 &&
3400 		    tp->t_pktlist_head != NULL) {
3401 			packetlist = tp->t_pktlist_head;
3402 			packchain_listadd = tp->t_lastchain;
3403 			packchain_sent++;
3404 			lost = tp->t_pktlist_sentlen;
3405 			TCP_PKTLIST_CLEAR(tp);
3406 
3407 			error = tcp_ip_output(so, tp, packetlist,
3408 			    packchain_listadd, tp_inp_options,
3409 			    (so_options & SO_DONTROUTE),
3410 			    (rack_sack_rxmit || (sack_bytes_rxmt != 0)), isipv6);
3411 			if (error) {
3412 				/*
3413 				 * Take into account the rest of unsent
3414 				 * packets in the packet list for this tcp
3415 				 * into "lost", since we're about to free
3416 				 * the whole list below.
3417 				 */
3418 				lost += tp->t_pktlist_sentlen;
3419 				break;
3420 			} else {
3421 				lost = 0;
3422 			}
3423 		}
3424 		/* tcp was closed while we were in ip; resume close */
3425 		if (inp->inp_sndinprog_cnt == 0 &&
3426 		    (tp->t_flags & TF_CLOSING)) {
3427 			tp->t_flags &= ~TF_CLOSING;
3428 			(void) tcp_close(tp);
3429 			return 0;
3430 		}
3431 	} else {
3432 		error = 0;
3433 		packchain_looped++;
3434 		tcpstat.tcps_sndtotal++;
3435 
3436 		goto again;
3437 	}
3438 	if (error) {
3439 		/*
3440 		 * Assume that the packets were lost, so back out the
3441 		 * sequence number advance, if any.  Note that the "lost"
3442 		 * variable represents the amount of user data sent during
3443 		 * the recent call to ip_output_list() plus the amount of
3444 		 * user data in the packet list for this tcp at the moment.
3445 		 */
3446 		if (!(tp->t_flagsext & TF_FORCE)
3447 		    || tp->t_timer[TCPT_PERSIST] == 0) {
3448 			/*
3449 			 * No need to check for TH_FIN here because
3450 			 * the TF_SENTFIN flag handles that case.
3451 			 */
3452 			if ((flags & TH_SYN) == 0) {
3453 				/*
3454 				 * RACK will mark these segments lost on its own
3455 				 * when new ACK arrives, no need to adjust anything here.
3456 				 * In fact doing so would be wrong, as RACK segments are
3457 				 * ordered in time (not sequence number).
3458 				 */
3459 				if (rack_sack_rxmit && !TCP_RACK_ENABLED(tp)) {
3460 					if (SEQ_GT((p->rxmit - lost),
3461 					    tp->snd_una)) {
3462 						p->rxmit -= lost;
3463 
3464 						if (SEQ_LT(p->rxmit, p->start)) {
3465 							p->rxmit = p->start;
3466 						}
3467 					} else {
3468 						lost = p->rxmit - tp->snd_una;
3469 						p->rxmit = tp->snd_una;
3470 
3471 						if (SEQ_LT(p->rxmit, p->start)) {
3472 							p->rxmit = p->start;
3473 						}
3474 					}
3475 					tp->sackhint.sack_bytes_rexmit -= lost;
3476 					if (tp->sackhint.sack_bytes_rexmit < 0) {
3477 						tp->sackhint.sack_bytes_rexmit = 0;
3478 					}
3479 				} else {
3480 					if (SEQ_GT((tp->snd_nxt - lost),
3481 					    tp->snd_una)) {
3482 						tp->snd_nxt -= lost;
3483 					} else {
3484 						tp->snd_nxt = tp->snd_una;
3485 					}
3486 				}
3487 			}
3488 		}
3489 out:
3490 		if (tp->t_pktlist_head != NULL) {
3491 			m_drop_list(tp->t_pktlist_head, outifp, DROPTAP_FLAG_DIR_OUT | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_PKT_UNSENT, NULL, 0);
3492 		}
3493 		TCP_PKTLIST_CLEAR(tp);
3494 
3495 		if (error == ENOBUFS) {
3496 			/*
3497 			 * Set retransmit timer if not currently set
3498 			 * when we failed to send a segment that can be
3499 			 * retransmitted (i.e. not pure ack or rst)
3500 			 */
3501 			if (tp->t_timer[TCPT_REXMT] == 0 &&
3502 			    tp->t_timer[TCPT_PERSIST] == 0 &&
3503 			    (len != 0 || (flags & (TH_SYN | TH_FIN)) != 0 ||
3504 			    so->so_snd.sb_cc > 0)) {
3505 				tcp_set_rto(tp);
3506 			}
3507 			tp->snd_cwnd = tp->t_maxseg;
3508 			tp->t_bytes_acked = 0;
3509 			tcp_check_timer_state(tp);
3510 			KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
3511 
3512 			TCP_LOG_OUTPUT(tp, "error ENOBUFS silently handled");
3513 
3514 			tcp_ccdbg_trace(tp, NULL, TCP_CC_OUTPUT_ERROR);
3515 			return 0;
3516 		}
3517 		if (error == EMSGSIZE) {
3518 			/*
3519 			 * ip_output() will have already fixed the route
3520 			 * for us.  tcp_mtudisc() will, as its last action,
3521 			 * initiate retransmission, so it is important to
3522 			 * not do so here.
3523 			 *
3524 			 * If TSO was active we either got an interface
3525 			 * without TSO capabilits or TSO was turned off.
3526 			 * Disable it for this connection as too and
3527 			 * immediatly retry with MSS sized segments generated
3528 			 * by this function.
3529 			 */
3530 			if (tso) {
3531 				tp->t_flags &= ~TF_TSO;
3532 			}
3533 
3534 			tcp_mtudisc(inp, 0);
3535 			tcp_check_timer_state(tp);
3536 
3537 			TCP_LOG_OUTPUT(tp, "error EMSGSIZE silently handled");
3538 
3539 			KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
3540 			return 0;
3541 		}
3542 		/*
3543 		 * Unless this is due to interface restriction policy,
3544 		 * treat EHOSTUNREACH/ENETDOWN/EADDRNOTAVAIL as a soft error.
3545 		 */
3546 		if ((error == EHOSTUNREACH || error == ENETDOWN || error == EADDRNOTAVAIL) &&
3547 		    TCPS_HAVERCVDSYN(tp->t_state) &&
3548 		    !inp_restricted_send(inp, outifp)) {
3549 			tp->t_softerror = error;
3550 			TCP_LOG_OUTPUT(tp, "soft error %d silently handled", error);
3551 			error = 0;
3552 		} else {
3553 			TCP_LOG_OUTPUT(tp, "error %d", error);
3554 		}
3555 		tcp_check_timer_state(tp);
3556 		KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
3557 		return error;
3558 	}
3559 
3560 	tcpstat.tcps_sndtotal++;
3561 
3562 	KERNEL_DEBUG(DBG_FNC_TCP_OUTPUT | DBG_FUNC_END, 0, 0, 0, 0, 0);
3563 	if (sendalot) {
3564 		goto again;
3565 	}
3566 
3567 	tcp_check_timer_state(tp);
3568 
3569 	return 0;
3570 }
3571 
3572 static int
tcp_set_rto_deadline(struct tcpcb * tp,struct mbuf * pkt,int isipv6,uint32_t tcp_now_local)3573 tcp_set_rto_deadline(struct tcpcb *tp, struct mbuf *pkt, int isipv6, uint32_t tcp_now_local)
3574 {
3575 	struct tcphdr *th;
3576 	int th_offset = isipv6 ? sizeof(struct ip6_hdr) : sizeof(struct ip);
3577 
3578 	/*
3579 	 * Determine whether the RTO should be set
3580 	 */
3581 	if (tp->t_timer[TCPT_REXMT] == 0) {
3582 		/*
3583 		 * RTO is not set for the TP, can not set
3584 		 * the deadline.
3585 		 */
3586 		return ENOENT;
3587 	}
3588 
3589 	/*
3590 	 * RTO deadline is not applicable to pure ACK packets,
3591 	 * as well as to the SYN/RST/FIN packets.
3592 	 */
3593 	th = (struct tcphdr *)(void*)(mtod(pkt, caddr_t) + th_offset);
3594 
3595 	/*
3596 	 * Check whether the packet has any TCP payload, or is a pure ACK.
3597 	 */
3598 	if (pkt->m_pkthdr.len <= th_offset + (th->th_off << 2)) {
3599 		return ENOENT;
3600 	}
3601 
3602 	/*
3603 	 * Check whether this is an SYN/RST/FIN packet
3604 	 */
3605 	if ((th->th_flags & (TH_SYN | TH_RST | TH_FIN)) != 0) {
3606 		return ENOENT;
3607 	}
3608 
3609 	/*
3610 	 * Set the deadline.
3611 	 */
3612 	pkt->m_pkthdr.pkt_deadline = tcp_calculate_rto_deadline(tp, tcp_now_local);
3613 
3614 	return 0;
3615 }
3616 
3617 static int
tcp_ip_output(struct socket * so,struct tcpcb * tp,struct mbuf * pkt,int cnt,struct mbuf * opt,int flags,int sack_in_progress,boolean_t isipv6)3618 tcp_ip_output(struct socket *so, struct tcpcb *tp, struct mbuf *pkt,
3619     int cnt, struct mbuf *opt, int flags, int sack_in_progress, boolean_t isipv6)
3620 {
3621 	int error = 0;
3622 	boolean_t chain;
3623 	boolean_t unlocked = FALSE;
3624 	boolean_t ifdenied = FALSE;
3625 	struct inpcb *__single inp = tp->t_inpcb;
3626 	struct ifnet *__single outif = NULL;
3627 	bool check_qos_marking_again = (so->so_flags1 & SOF1_QOSMARKING_POLICY_OVERRIDE) ? FALSE : TRUE;
3628 	bool fadv_congested = FALSE;
3629 	uint32_t tcp_now_local = os_access_once(tcp_now);
3630 
3631 	union {
3632 		struct route _ro;
3633 		struct route_in6 _ro6;
3634 	} route_u_ = {};
3635 #define ro route_u_._ro
3636 #define ro6 route_u_._ro6
3637 
3638 	union {
3639 		struct ip_out_args _ipoa;
3640 		struct ip6_out_args _ip6oa;
3641 	} out_args_u_ = {};
3642 #define ipoa out_args_u_._ipoa
3643 #define ip6oa out_args_u_._ip6oa
3644 
3645 	if (isipv6) {
3646 		ip6oa.ip6oa_boundif = IFSCOPE_NONE;
3647 		ip6oa.ip6oa_flags = IP6OAF_SELECT_SRCIF | IP6OAF_BOUND_SRCADDR;
3648 		ip6oa.ip6oa_sotc = SO_TC_UNSPEC;
3649 		ip6oa.ip6oa_netsvctype = _NET_SERVICE_TYPE_UNSPEC;
3650 	} else {
3651 		ipoa.ipoa_boundif = IFSCOPE_NONE;
3652 		ipoa.ipoa_flags = IPOAF_SELECT_SRCIF | IPOAF_BOUND_SRCADDR;
3653 		ipoa.ipoa_sotc = SO_TC_UNSPEC;
3654 		ipoa.ipoa_netsvctype = _NET_SERVICE_TYPE_UNSPEC;
3655 	}
3656 
3657 	struct flowadv *__single adv =
3658 	    (isipv6 ? &ip6oa.ip6oa_flowadv : &ipoa.ipoa_flowadv);
3659 
3660 	/* If socket was bound to an ifindex, tell ip_output about it */
3661 	if (inp->inp_flags & INP_BOUND_IF) {
3662 		if (isipv6) {
3663 			ip6oa.ip6oa_boundif = inp->inp_boundifp->if_index;
3664 			ip6oa.ip6oa_flags |= IP6OAF_BOUND_IF;
3665 		} else {
3666 			ipoa.ipoa_boundif = inp->inp_boundifp->if_index;
3667 			ipoa.ipoa_flags |= IPOAF_BOUND_IF;
3668 		}
3669 	} else if (!in6_embedded_scope && isipv6 && (IN6_IS_SCOPE_EMBED(&inp->in6p_faddr))) {
3670 		ip6oa.ip6oa_boundif = inp->inp_fifscope;
3671 		ip6oa.ip6oa_flags |= IP6OAF_BOUND_IF;
3672 	}
3673 
3674 	if (INP_NO_CELLULAR(inp)) {
3675 		if (isipv6) {
3676 			ip6oa.ip6oa_flags |=  IP6OAF_NO_CELLULAR;
3677 		} else {
3678 			ipoa.ipoa_flags |=  IPOAF_NO_CELLULAR;
3679 		}
3680 	}
3681 	if (INP_NO_EXPENSIVE(inp)) {
3682 		if (isipv6) {
3683 			ip6oa.ip6oa_flags |=  IP6OAF_NO_EXPENSIVE;
3684 		} else {
3685 			ipoa.ipoa_flags |=  IPOAF_NO_EXPENSIVE;
3686 		}
3687 	}
3688 	if (INP_NO_CONSTRAINED(inp)) {
3689 		if (isipv6) {
3690 			ip6oa.ip6oa_flags |=  IP6OAF_NO_CONSTRAINED;
3691 		} else {
3692 			ipoa.ipoa_flags |=  IPOAF_NO_CONSTRAINED;
3693 		}
3694 	}
3695 	if (INP_AWDL_UNRESTRICTED(inp)) {
3696 		if (isipv6) {
3697 			ip6oa.ip6oa_flags |=  IP6OAF_AWDL_UNRESTRICTED;
3698 		} else {
3699 			ipoa.ipoa_flags |=  IPOAF_AWDL_UNRESTRICTED;
3700 		}
3701 	}
3702 	if (INP_INTCOPROC_ALLOWED(inp) && isipv6) {
3703 		ip6oa.ip6oa_flags |=  IP6OAF_INTCOPROC_ALLOWED;
3704 	}
3705 	if (INP_MANAGEMENT_ALLOWED(inp)) {
3706 		if (isipv6) {
3707 			ip6oa.ip6oa_flags |=  IP6OAF_MANAGEMENT_ALLOWED;
3708 		} else {
3709 			ipoa.ipoa_flags |=  IPOAF_MANAGEMENT_ALLOWED;
3710 		}
3711 	}
3712 	if (INP_ULTRA_CONSTRAINED_ALLOWED(inp)) {
3713 		if (isipv6) {
3714 			ip6oa.ip6oa_flags |=  IP6OAF_ULTRA_CONSTRAINED_ALLOWED;
3715 		} else {
3716 			ipoa.ipoa_flags |=  IPOAF_ULTRA_CONSTRAINED_ALLOWED;
3717 		}
3718 	}
3719 	if (isipv6) {
3720 		ip6oa.ip6oa_sotc = so->so_traffic_class;
3721 		ip6oa.ip6oa_netsvctype = so->so_netsvctype;
3722 		ip6oa.qos_marking_gencount = inp->inp_policyresult.results.qos_marking_gencount;
3723 	} else {
3724 		ipoa.ipoa_sotc = so->so_traffic_class;
3725 		ipoa.ipoa_netsvctype = so->so_netsvctype;
3726 		ipoa.qos_marking_gencount = inp->inp_policyresult.results.qos_marking_gencount;
3727 	}
3728 	if ((so->so_flags1 & SOF1_QOSMARKING_ALLOWED)) {
3729 		if (isipv6) {
3730 			ip6oa.ip6oa_flags |= IP6OAF_QOSMARKING_ALLOWED;
3731 		} else {
3732 			ipoa.ipoa_flags |= IPOAF_QOSMARKING_ALLOWED;
3733 		}
3734 	}
3735 	if (check_qos_marking_again) {
3736 		if (isipv6) {
3737 			ip6oa.ip6oa_flags |= IP6OAF_REDO_QOSMARKING_POLICY;
3738 		} else {
3739 			ipoa.ipoa_flags |= IPOAF_REDO_QOSMARKING_POLICY;
3740 		}
3741 	}
3742 	if (isipv6) {
3743 		flags |= IPV6_OUTARGS;
3744 	} else {
3745 		flags |= IP_OUTARGS;
3746 	}
3747 
3748 	/* Copy the cached route and take an extra reference */
3749 	if (isipv6) {
3750 		in6p_route_copyout(inp, &ro6);
3751 	} else {
3752 		inp_route_copyout(inp, &ro);
3753 	}
3754 #if (DEBUG || DEVELOPMENT)
3755 	if ((so->so_flags & SOF_MARK_WAKE_PKT) && pkt != NULL) {
3756 		so->so_flags &= ~SOF_MARK_WAKE_PKT;
3757 		pkt->m_pkthdr.pkt_flags |= PKTF_WAKE_PKT;
3758 	}
3759 #endif /* (DEBUG || DEVELOPMENT) */
3760 
3761 	/*
3762 	 * Make sure ACK/DELACK conditions are cleared before
3763 	 * we unlock the socket.
3764 	 */
3765 	tp->last_ack_sent = tp->rcv_nxt;
3766 	tp->t_flags &= ~(TF_ACKNOW | TF_DELACK);
3767 	tp->t_timer[TCPT_DELACK] = 0;
3768 	tp->t_unacksegs = 0;
3769 	tp->t_unacksegs_ce = 0;
3770 
3771 	/* Increment the count of outstanding send operations */
3772 	inp->inp_sndinprog_cnt++;
3773 
3774 	/*
3775 	 * If allowed, unlock TCP socket while in IP
3776 	 * but only if the connection is established and
3777 	 * in a normal mode where reentrancy on the tcpcb won't be
3778 	 * an issue:
3779 	 * - there is no SACK episode
3780 	 * - we're not in Fast Recovery mode
3781 	 * - if we're not sending from an upcall.
3782 	 */
3783 	if (tcp_output_unlocked && !so->so_upcallusecount &&
3784 	    (tp->t_state == TCPS_ESTABLISHED) && (sack_in_progress == 0) &&
3785 	    !IN_FASTRECOVERY(tp) && !(so->so_flags & SOF_MP_SUBFLOW)) {
3786 		unlocked = TRUE;
3787 		socket_unlock(so, 0);
3788 	}
3789 
3790 	/*
3791 	 * Don't send down a chain of packets when:
3792 	 * - TCP chaining is disabled
3793 	 * - there is an IPsec rule set
3794 	 * - there is a non default rule set for the firewall
3795 	 */
3796 
3797 	chain = tcp_packet_chaining > 1
3798 #if IPSEC
3799 	    && ipsec_bypass
3800 #endif
3801 	;         // I'm important, not extraneous
3802 
3803 	while (pkt != NULL) {
3804 		struct mbuf *npkt = pkt->m_nextpkt;
3805 
3806 		/*
3807 		 * If enabled, set the RTO deadline for the packet.
3808 		 */
3809 		if (tcp_use_rto_deadline) {
3810 			tcp_set_rto_deadline(tp, pkt, isipv6, tcp_now_local);
3811 		}
3812 
3813 		if (!chain) {
3814 			pkt->m_nextpkt = NULL;
3815 			/*
3816 			 * If we are not chaining, make sure to set the packet
3817 			 * list count to 0 so that IP takes the right path;
3818 			 * this is important for cases such as IPsec where a
3819 			 * single mbuf might result in multiple mbufs as part
3820 			 * of the encapsulation.  If a non-zero count is passed
3821 			 * down to IP, the head of the chain might change and
3822 			 * we could end up skipping it (thus generating bogus
3823 			 * packets).  Fixing it in IP would be desirable, but
3824 			 * for now this would do it.
3825 			 */
3826 			cnt = 0;
3827 		}
3828 		if (isipv6) {
3829 			error = ip6_output_list(pkt, cnt,
3830 			    inp->in6p_outputopts, &ro6, flags, NULL, NULL,
3831 			    &ip6oa);
3832 			ifdenied = (ip6oa.ip6oa_flags & IP6OAF_R_IFDENIED);
3833 		} else {
3834 			error = ip_output_list(pkt, cnt, opt, &ro, flags, NULL,
3835 			    &ipoa);
3836 			ifdenied = (ipoa.ipoa_flags & IPOAF_R_IFDENIED);
3837 		}
3838 
3839 		if (adv->code == FADV_CONGESTED) {
3840 			fadv_congested = TRUE;
3841 		}
3842 
3843 		if (chain || error) {
3844 			/*
3845 			 * If we sent down a chain then we are done since
3846 			 * the callee had taken care of everything; else
3847 			 * we need to free the rest of the chain ourselves.
3848 			 */
3849 			if (!chain) {
3850 				m_drop_list(npkt, NULL, DROPTAP_FLAG_DIR_OUT | DROPTAP_FLAG_L2_MISSING, DROP_REASON_TCP_PKT_UNSENT, NULL, 0);
3851 			}
3852 			break;
3853 		}
3854 		pkt = npkt;
3855 	}
3856 
3857 	if (unlocked) {
3858 		socket_lock(so, 0);
3859 	}
3860 
3861 	/*
3862 	 * Enter flow controlled state if the connection is established
3863 	 * and is not in recovery. Flow control is allowed only if there
3864 	 * is outstanding data.
3865 	 *
3866 	 * A connection will enter suspended state even if it is in
3867 	 * recovery.
3868 	 */
3869 	if (((adv->code == FADV_FLOW_CONTROLLED && !IN_FASTRECOVERY(tp)) ||
3870 	    adv->code == FADV_SUSPENDED) &&
3871 	    !(tp->t_flags & TF_CLOSING) &&
3872 	    tp->t_state == TCPS_ESTABLISHED &&
3873 	    SEQ_GT(tp->snd_max, tp->snd_una)) {
3874 		int rc;
3875 		rc = inp_set_fc_state(inp, adv->code);
3876 
3877 		if (rc == 1) {
3878 			tcp_ccdbg_trace(tp, NULL,
3879 			    ((adv->code == FADV_FLOW_CONTROLLED) ?
3880 			    TCP_CC_FLOW_CONTROL : TCP_CC_SUSPEND));
3881 			if (adv->code == FADV_FLOW_CONTROLLED) {
3882 				TCP_LOG_OUTPUT(tp, "flow controlled");
3883 			} else {
3884 				TCP_LOG_OUTPUT(tp, "flow suspended");
3885 			}
3886 		}
3887 	}
3888 
3889 	if (fadv_congested && !IN_FASTRECOVERY(tp) && !(tp->t_flags & TF_CLOSING) &&
3890 	    tp->t_state == TCPS_ESTABLISHED) {
3891 		TCP_LOG_OUTPUT(tp, "flow congestion notified");
3892 		tcp_local_congestion_notification(tp);
3893 		tcp_ccdbg_trace(tp, NULL, TCP_CC_FLOW_CONGESTION_NOTIFIED);
3894 	}
3895 
3896 	/*
3897 	 * When an interface queue gets suspended, some of the
3898 	 * packets are dropped. Return ENOBUFS, to update the
3899 	 * pcb state.
3900 	 */
3901 	if (adv->code == FADV_SUSPENDED) {
3902 		error = ENOBUFS;
3903 	}
3904 
3905 	VERIFY(inp->inp_sndinprog_cnt > 0);
3906 	if (--inp->inp_sndinprog_cnt == 0) {
3907 		inp->inp_flags &= ~(INP_FC_FEEDBACK);
3908 		if (inp->inp_sndingprog_waiters > 0) {
3909 			wakeup(&inp->inp_sndinprog_cnt);
3910 		}
3911 	}
3912 
3913 	if (isipv6) {
3914 		/*
3915 		 * When an NECP IP tunnel policy forces the outbound interface,
3916 		 * ip6_output_list() informs the transport layer what is the actual
3917 		 * outgoing interface
3918 		 */
3919 		if (ip6oa.ip6oa_flags & IP6OAF_BOUND_IF) {
3920 			ifnet_head_lock_shared();
3921 			outif = ifindex2ifnet[ip6oa.ip6oa_boundif];
3922 			ifnet_head_done();
3923 		} else if (ro6.ro_rt != NULL) {
3924 			outif = ro6.ro_rt->rt_ifp;
3925 		}
3926 	} else {
3927 		if (ro.ro_rt != NULL) {
3928 			outif = ro.ro_rt->rt_ifp;
3929 		}
3930 	}
3931 	if (check_qos_marking_again) {
3932 		uint32_t qos_marking_gencount;
3933 		bool allow_qos_marking;
3934 		if (isipv6) {
3935 			qos_marking_gencount = ip6oa.qos_marking_gencount;
3936 			allow_qos_marking = ip6oa.ip6oa_flags & IP6OAF_QOSMARKING_ALLOWED ? TRUE : FALSE;
3937 		} else {
3938 			qos_marking_gencount = ipoa.qos_marking_gencount;
3939 			allow_qos_marking = ipoa.ipoa_flags & IPOAF_QOSMARKING_ALLOWED ? TRUE : FALSE;
3940 		}
3941 		inp->inp_policyresult.results.qos_marking_gencount = qos_marking_gencount;
3942 		if (allow_qos_marking == TRUE) {
3943 			inp->inp_socket->so_flags1 |= SOF1_QOSMARKING_ALLOWED;
3944 		} else {
3945 			inp->inp_socket->so_flags1 &= ~SOF1_QOSMARKING_ALLOWED;
3946 		}
3947 	}
3948 
3949 	if (outif != NULL && outif != inp->inp_last_outifp) {
3950 		/* Update the send byte count */
3951 		if (so->so_snd.sb_cc > 0 && so->so_snd.sb_flags & SB_SNDBYTE_CNT) {
3952 			inp_decr_sndbytes_total(so, so->so_snd.sb_cc);
3953 			inp_decr_sndbytes_allunsent(so, tp->snd_una);
3954 			so->so_snd.sb_flags &= ~SB_SNDBYTE_CNT;
3955 		}
3956 		inp->inp_last_outifp = outif;
3957 #if SKYWALK
3958 		if (NETNS_TOKEN_VALID(&inp->inp_netns_token)) {
3959 			netns_set_ifnet(&inp->inp_netns_token, inp->inp_last_outifp);
3960 		}
3961 #endif /* SKYWALK */
3962 	}
3963 
3964 	if (error != 0 && ifdenied &&
3965 	    (INP_NO_CELLULAR(inp) || INP_NO_EXPENSIVE(inp) || INP_NO_CONSTRAINED(inp))) {
3966 		soevent(so,
3967 		    (SO_FILT_HINT_LOCKED | SO_FILT_HINT_IFDENIED));
3968 	}
3969 
3970 	/* Synchronize cached PCB route & options */
3971 	if (isipv6) {
3972 		in6p_route_copyin(inp, &ro6);
3973 	} else {
3974 		inp_route_copyin(inp, &ro);
3975 	}
3976 
3977 	if (tp->t_state < TCPS_ESTABLISHED && tp->t_rxtshift == 0 &&
3978 	    tp->t_inpcb->inp_route.ro_rt != NULL) {
3979 		/* If we found the route and there is an rtt on it
3980 		 * reset the retransmit timer
3981 		 */
3982 		tcp_getrt_rtt(tp, tp->t_inpcb->in6p_route.ro_rt);
3983 		tcp_set_rto(tp);
3984 	}
3985 	return error;
3986 #undef ro
3987 #undef ro6
3988 #undef ipoa
3989 #undef ip6oa
3990 }
3991 
3992 int tcptv_persmin_val = TCPTV_PERSMIN;
3993 
3994 void
tcp_setpersist(struct tcpcb * tp)3995 tcp_setpersist(struct tcpcb *tp)
3996 {
3997 	int t = ((tp->t_srtt >> 2) + tp->t_rttvar) >> 1;
3998 
3999 	/* If a PERSIST_TIMER option was set we will limit the
4000 	 * time the persist timer will be active for that connection
4001 	 * in order to avoid DOS by using zero window probes.
4002 	 * see rdar://5805356
4003 	 */
4004 
4005 	if (tp->t_persist_timeout != 0 &&
4006 	    tp->t_timer[TCPT_PERSIST] == 0 &&
4007 	    tp->t_persist_stop == 0) {
4008 		tp->t_persist_stop = tcp_now + tp->t_persist_timeout;
4009 	}
4010 
4011 	/*
4012 	 * Start/restart persistance timer.
4013 	 */
4014 	TCPT_RANGESET(tp->t_timer[TCPT_PERSIST],
4015 	    t * tcp_backoff[tp->t_rxtshift],
4016 	    tcptv_persmin_val, TCPTV_PERSMAX, 0);
4017 	tp->t_timer[TCPT_PERSIST] = tcp_offset_from_start(tp, tp->t_timer[TCPT_PERSIST]);
4018 
4019 	if (tp->t_rxtshift < TCP_MAXRXTSHIFT) {
4020 		tp->t_rxtshift++;
4021 	}
4022 }
4023 
4024 static int
tcp_recv_throttle(struct tcpcb * tp)4025 tcp_recv_throttle(struct tcpcb *tp)
4026 {
4027 	uint32_t base_rtt, newsize;
4028 	struct sockbuf *__single sbrcv = &tp->t_inpcb->inp_socket->so_rcv;
4029 
4030 	if (tcp_use_rtt_recvbg == 1 &&
4031 	    TSTMP_SUPPORTED(tp)) {
4032 		/*
4033 		 * Timestamps are supported on this connection. Use
4034 		 * RTT to look for an increase in latency.
4035 		 */
4036 
4037 		/*
4038 		 * If the connection is already being throttled, leave it
4039 		 * in that state until rtt comes closer to base rtt
4040 		 */
4041 		if (tp->t_flagsext & TF_RECV_THROTTLE) {
4042 			return 1;
4043 		}
4044 
4045 		base_rtt = get_base_rtt(tp);
4046 
4047 		if (base_rtt != 0 && tp->t_rttcur != 0) {
4048 			/*
4049 			 * if latency increased on a background flow,
4050 			 * return 1 to start throttling.
4051 			 */
4052 			if (tp->t_rttcur > (base_rtt + target_qdelay)) {
4053 				tp->t_flagsext |= TF_RECV_THROTTLE;
4054 				if (tp->t_recv_throttle_ts == 0) {
4055 					tp->t_recv_throttle_ts = tcp_now;
4056 				}
4057 				/*
4058 				 * Reduce the recv socket buffer size to
4059 				 * minimize latecy.
4060 				 */
4061 				if (sbrcv->sb_idealsize >
4062 				    tcp_recv_throttle_minwin) {
4063 					newsize = sbrcv->sb_idealsize >> 1;
4064 					/* Set a minimum of 16 K */
4065 					newsize =
4066 					    max(newsize,
4067 					    tcp_recv_throttle_minwin);
4068 					sbrcv->sb_idealsize = newsize;
4069 				}
4070 				return 1;
4071 			} else {
4072 				return 0;
4073 			}
4074 		}
4075 	}
4076 
4077 	/*
4078 	 * Timestamps are not supported or there is no good RTT
4079 	 * measurement. Use IPDV in this case.
4080 	 */
4081 	if (tp->acc_iaj > tcp_acc_iaj_react_limit) {
4082 		return 1;
4083 	}
4084 
4085 	return 0;
4086 }
4087