xref: /titanic_50/usr/src/uts/common/inet/tcp/tcp_output.c (revision 3e95bd4ab92abca814bd28e854607d1975c7dc88)
1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License (the "License").
6  * You may not use this file except in compliance with the License.
7  *
8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9  * or http://www.opensolaris.org/os/licensing.
10  * See the License for the specific language governing permissions
11  * and limitations under the License.
12  *
13  * When distributing Covered Code, include this CDDL HEADER in each
14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15  * If applicable, add the following below this CDDL HEADER, with the
16  * fields enclosed by brackets "[]" replaced with your own identifying
17  * information: Portions Copyright [yyyy] [name of copyright owner]
18  *
19  * CDDL HEADER END
20  */
21 
22 /*
23  * Copyright (c) 2010, Oracle and/or its affiliates. All rights reserved.
24  */
25 
26 /* This file contains all TCP output processing functions. */
27 
28 #include <sys/types.h>
29 #include <sys/stream.h>
30 #include <sys/strsun.h>
31 #include <sys/strsubr.h>
32 #include <sys/stropts.h>
33 #include <sys/strlog.h>
34 #define	_SUN_TPI_VERSION 2
35 #include <sys/tihdr.h>
36 #include <sys/suntpi.h>
37 #include <sys/xti_inet.h>
38 #include <sys/timod.h>
39 #include <sys/pattr.h>
40 #include <sys/squeue_impl.h>
41 #include <sys/squeue.h>
42 #include <sys/sockio.h>
43 #include <sys/tsol/tnet.h>
44 
45 #include <inet/common.h>
46 #include <inet/ip.h>
47 #include <inet/tcp.h>
48 #include <inet/tcp_impl.h>
49 #include <inet/snmpcom.h>
50 #include <inet/proto_set.h>
51 #include <inet/ipsec_impl.h>
52 #include <inet/ip_ndp.h>
53 
54 static mblk_t	*tcp_get_seg_mp(tcp_t *, uint32_t, int32_t *);
55 static void	tcp_wput_cmdblk(queue_t *, mblk_t *);
56 static void	tcp_wput_flush(tcp_t *, mblk_t *);
57 static void	tcp_wput_iocdata(tcp_t *tcp, mblk_t *mp);
58 static int	tcp_xmit_end(tcp_t *);
59 static int	tcp_send(tcp_t *, const int, const int, const int,
60 		    const int, int *, uint_t *, int *, mblk_t **, mblk_t *);
61 static void	tcp_xmit_early_reset(char *, mblk_t *, uint32_t, uint32_t,
62 		    int, ip_recv_attr_t *, ip_stack_t *, conn_t *);
63 static boolean_t	tcp_send_rst_chk(tcp_stack_t *);
64 static void	tcp_process_shrunk_swnd(tcp_t *, uint32_t);
65 static void	tcp_fill_header(tcp_t *, uchar_t *, clock_t, int);
66 
67 /*
68  * Functions called directly via squeue having a prototype of edesc_t.
69  */
70 static void	tcp_wput_nondata(void *, mblk_t *, void *, ip_recv_attr_t *);
71 static void	tcp_wput_ioctl(void *, mblk_t *, void *, ip_recv_attr_t *);
72 static void	tcp_wput_proto(void *, mblk_t *, void *, ip_recv_attr_t *);
73 
74 /*
75  * This controls how tiny a write must be before we try to copy it
76  * into the mblk on the tail of the transmit queue.  Not much
77  * speedup is observed for values larger than sixteen.  Zero will
78  * disable the optimisation.
79  */
80 static int tcp_tx_pull_len = 16;
81 
82 void
83 tcp_wput(queue_t *q, mblk_t *mp)
84 {
85 	conn_t	*connp = Q_TO_CONN(q);
86 	tcp_t	*tcp;
87 	void (*output_proc)();
88 	t_scalar_t type;
89 	uchar_t *rptr;
90 	struct iocblk	*iocp;
91 	size_t size;
92 
93 	ASSERT(connp->conn_ref >= 2);
94 
95 	switch (DB_TYPE(mp)) {
96 	case M_DATA:
97 		tcp = connp->conn_tcp;
98 		ASSERT(tcp != NULL);
99 
100 		size = msgdsize(mp);
101 
102 		mutex_enter(&tcp->tcp_non_sq_lock);
103 		tcp->tcp_squeue_bytes += size;
104 		if (TCP_UNSENT_BYTES(tcp) > connp->conn_sndbuf) {
105 			tcp_setqfull(tcp);
106 		}
107 		mutex_exit(&tcp->tcp_non_sq_lock);
108 
109 		CONN_INC_REF(connp);
110 		SQUEUE_ENTER_ONE(connp->conn_sqp, mp, tcp_output, connp,
111 		    NULL, tcp_squeue_flag, SQTAG_TCP_OUTPUT);
112 		return;
113 
114 	case M_CMD:
115 		tcp_wput_cmdblk(q, mp);
116 		return;
117 
118 	case M_PROTO:
119 	case M_PCPROTO:
120 		/*
121 		 * if it is a snmp message, don't get behind the squeue
122 		 */
123 		tcp = connp->conn_tcp;
124 		rptr = mp->b_rptr;
125 		if ((mp->b_wptr - rptr) >= sizeof (t_scalar_t)) {
126 			type = ((union T_primitives *)rptr)->type;
127 		} else {
128 			if (connp->conn_debug) {
129 				(void) strlog(TCP_MOD_ID, 0, 1,
130 				    SL_ERROR|SL_TRACE,
131 				    "tcp_wput_proto, dropping one...");
132 			}
133 			freemsg(mp);
134 			return;
135 		}
136 		if (type == T_SVR4_OPTMGMT_REQ) {
137 			/*
138 			 * All Solaris components should pass a db_credp
139 			 * for this TPI message, hence we ASSERT.
140 			 * But in case there is some other M_PROTO that looks
141 			 * like a TPI message sent by some other kernel
142 			 * component, we check and return an error.
143 			 */
144 			cred_t	*cr = msg_getcred(mp, NULL);
145 
146 			ASSERT(cr != NULL);
147 			if (cr == NULL) {
148 				tcp_err_ack(tcp, mp, TSYSERR, EINVAL);
149 				return;
150 			}
151 			if (snmpcom_req(q, mp, tcp_snmp_set, ip_snmp_get,
152 			    cr)) {
153 				/*
154 				 * This was a SNMP request
155 				 */
156 				return;
157 			} else {
158 				output_proc = tcp_wput_proto;
159 			}
160 		} else {
161 			output_proc = tcp_wput_proto;
162 		}
163 		break;
164 	case M_IOCTL:
165 		/*
166 		 * Most ioctls can be processed right away without going via
167 		 * squeues - process them right here. Those that do require
168 		 * squeue (currently _SIOCSOCKFALLBACK)
169 		 * are processed by tcp_wput_ioctl().
170 		 */
171 		iocp = (struct iocblk *)mp->b_rptr;
172 		tcp = connp->conn_tcp;
173 
174 		switch (iocp->ioc_cmd) {
175 		case TCP_IOC_ABORT_CONN:
176 			tcp_ioctl_abort_conn(q, mp);
177 			return;
178 		case TI_GETPEERNAME:
179 		case TI_GETMYNAME:
180 			mi_copyin(q, mp, NULL,
181 			    SIZEOF_STRUCT(strbuf, iocp->ioc_flag));
182 			return;
183 
184 		default:
185 			output_proc = tcp_wput_ioctl;
186 			break;
187 		}
188 		break;
189 	default:
190 		output_proc = tcp_wput_nondata;
191 		break;
192 	}
193 
194 	CONN_INC_REF(connp);
195 	SQUEUE_ENTER_ONE(connp->conn_sqp, mp, output_proc, connp,
196 	    NULL, tcp_squeue_flag, SQTAG_TCP_WPUT_OTHER);
197 }
198 
199 /*
200  * The TCP normal data output path.
201  * NOTE: the logic of the fast path is duplicated from this function.
202  */
203 void
204 tcp_wput_data(tcp_t *tcp, mblk_t *mp, boolean_t urgent)
205 {
206 	int		len;
207 	mblk_t		*local_time;
208 	mblk_t		*mp1;
209 	uint32_t	snxt;
210 	int		tail_unsent;
211 	int		tcpstate;
212 	int		usable = 0;
213 	mblk_t		*xmit_tail;
214 	int32_t		mss;
215 	int32_t		num_sack_blk = 0;
216 	int32_t		total_hdr_len;
217 	int32_t		tcp_hdr_len;
218 	int		rc;
219 	tcp_stack_t	*tcps = tcp->tcp_tcps;
220 	conn_t		*connp = tcp->tcp_connp;
221 	clock_t		now = LBOLT_FASTPATH;
222 
223 	tcpstate = tcp->tcp_state;
224 	if (mp == NULL) {
225 		/*
226 		 * tcp_wput_data() with NULL mp should only be called when
227 		 * there is unsent data.
228 		 */
229 		ASSERT(tcp->tcp_unsent > 0);
230 		/* Really tacky... but we need this for detached closes. */
231 		len = tcp->tcp_unsent;
232 		goto data_null;
233 	}
234 
235 	ASSERT(mp->b_datap->db_type == M_DATA);
236 	/*
237 	 * Don't allow data after T_ORDREL_REQ or T_DISCON_REQ,
238 	 * or before a connection attempt has begun.
239 	 */
240 	if (tcpstate < TCPS_SYN_SENT || tcpstate > TCPS_CLOSE_WAIT ||
241 	    (tcp->tcp_valid_bits & TCP_FSS_VALID) != 0) {
242 		if ((tcp->tcp_valid_bits & TCP_FSS_VALID) != 0) {
243 #ifdef DEBUG
244 			cmn_err(CE_WARN,
245 			    "tcp_wput_data: data after ordrel, %s",
246 			    tcp_display(tcp, NULL,
247 			    DISP_ADDR_AND_PORT));
248 #else
249 			if (connp->conn_debug) {
250 				(void) strlog(TCP_MOD_ID, 0, 1,
251 				    SL_TRACE|SL_ERROR,
252 				    "tcp_wput_data: data after ordrel, %s\n",
253 				    tcp_display(tcp, NULL,
254 				    DISP_ADDR_AND_PORT));
255 			}
256 #endif /* DEBUG */
257 		}
258 		if (tcp->tcp_snd_zcopy_aware &&
259 		    (mp->b_datap->db_struioflag & STRUIO_ZCNOTIFY))
260 			tcp_zcopy_notify(tcp);
261 		freemsg(mp);
262 		mutex_enter(&tcp->tcp_non_sq_lock);
263 		if (tcp->tcp_flow_stopped &&
264 		    TCP_UNSENT_BYTES(tcp) <= connp->conn_sndlowat) {
265 			tcp_clrqfull(tcp);
266 		}
267 		mutex_exit(&tcp->tcp_non_sq_lock);
268 		return;
269 	}
270 
271 	/* Strip empties */
272 	for (;;) {
273 		ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <=
274 		    (uintptr_t)INT_MAX);
275 		len = (int)(mp->b_wptr - mp->b_rptr);
276 		if (len > 0)
277 			break;
278 		mp1 = mp;
279 		mp = mp->b_cont;
280 		freeb(mp1);
281 		if (mp == NULL) {
282 			return;
283 		}
284 	}
285 
286 	/* If we are the first on the list ... */
287 	if (tcp->tcp_xmit_head == NULL) {
288 		tcp->tcp_xmit_head = mp;
289 		tcp->tcp_xmit_tail = mp;
290 		tcp->tcp_xmit_tail_unsent = len;
291 	} else {
292 		/* If tiny tx and room in txq tail, pullup to save mblks. */
293 		struct datab *dp;
294 
295 		mp1 = tcp->tcp_xmit_last;
296 		if (len < tcp_tx_pull_len &&
297 		    (dp = mp1->b_datap)->db_ref == 1 &&
298 		    dp->db_lim - mp1->b_wptr >= len) {
299 			ASSERT(len > 0);
300 			ASSERT(!mp1->b_cont);
301 			if (len == 1) {
302 				*mp1->b_wptr++ = *mp->b_rptr;
303 			} else {
304 				bcopy(mp->b_rptr, mp1->b_wptr, len);
305 				mp1->b_wptr += len;
306 			}
307 			if (mp1 == tcp->tcp_xmit_tail)
308 				tcp->tcp_xmit_tail_unsent += len;
309 			mp1->b_cont = mp->b_cont;
310 			if (tcp->tcp_snd_zcopy_aware &&
311 			    (mp->b_datap->db_struioflag & STRUIO_ZCNOTIFY))
312 				mp1->b_datap->db_struioflag |= STRUIO_ZCNOTIFY;
313 			freeb(mp);
314 			mp = mp1;
315 		} else {
316 			tcp->tcp_xmit_last->b_cont = mp;
317 		}
318 		len += tcp->tcp_unsent;
319 	}
320 
321 	/* Tack on however many more positive length mblks we have */
322 	if ((mp1 = mp->b_cont) != NULL) {
323 		do {
324 			int tlen;
325 			ASSERT((uintptr_t)(mp1->b_wptr - mp1->b_rptr) <=
326 			    (uintptr_t)INT_MAX);
327 			tlen = (int)(mp1->b_wptr - mp1->b_rptr);
328 			if (tlen <= 0) {
329 				mp->b_cont = mp1->b_cont;
330 				freeb(mp1);
331 			} else {
332 				len += tlen;
333 				mp = mp1;
334 			}
335 		} while ((mp1 = mp->b_cont) != NULL);
336 	}
337 	tcp->tcp_xmit_last = mp;
338 	tcp->tcp_unsent = len;
339 
340 	if (urgent)
341 		usable = 1;
342 
343 data_null:
344 	snxt = tcp->tcp_snxt;
345 	xmit_tail = tcp->tcp_xmit_tail;
346 	tail_unsent = tcp->tcp_xmit_tail_unsent;
347 
348 	/*
349 	 * Note that tcp_mss has been adjusted to take into account the
350 	 * timestamp option if applicable.  Because SACK options do not
351 	 * appear in every TCP segments and they are of variable lengths,
352 	 * they cannot be included in tcp_mss.  Thus we need to calculate
353 	 * the actual segment length when we need to send a segment which
354 	 * includes SACK options.
355 	 */
356 	if (tcp->tcp_snd_sack_ok && tcp->tcp_num_sack_blk > 0) {
357 		int32_t	opt_len;
358 
359 		num_sack_blk = MIN(tcp->tcp_max_sack_blk,
360 		    tcp->tcp_num_sack_blk);
361 		opt_len = num_sack_blk * sizeof (sack_blk_t) + TCPOPT_NOP_LEN *
362 		    2 + TCPOPT_HEADER_LEN;
363 		mss = tcp->tcp_mss - opt_len;
364 		total_hdr_len = connp->conn_ht_iphc_len + opt_len;
365 		tcp_hdr_len = connp->conn_ht_ulp_len + opt_len;
366 	} else {
367 		mss = tcp->tcp_mss;
368 		total_hdr_len = connp->conn_ht_iphc_len;
369 		tcp_hdr_len = connp->conn_ht_ulp_len;
370 	}
371 
372 	if ((tcp->tcp_suna == snxt) && !tcp->tcp_localnet &&
373 	    (TICK_TO_MSEC(now - tcp->tcp_last_recv_time) >= tcp->tcp_rto)) {
374 		TCP_SET_INIT_CWND(tcp, mss, tcps->tcps_slow_start_after_idle);
375 	}
376 	if (tcpstate == TCPS_SYN_RCVD) {
377 		/*
378 		 * The three-way connection establishment handshake is not
379 		 * complete yet. We want to queue the data for transmission
380 		 * after entering ESTABLISHED state (RFC793). A jump to
381 		 * "done" label effectively leaves data on the queue.
382 		 */
383 		goto done;
384 	} else {
385 		int usable_r;
386 
387 		/*
388 		 * In the special case when cwnd is zero, which can only
389 		 * happen if the connection is ECN capable, return now.
390 		 * New segments is sent using tcp_timer().  The timer
391 		 * is set in tcp_input_data().
392 		 */
393 		if (tcp->tcp_cwnd == 0) {
394 			/*
395 			 * Note that tcp_cwnd is 0 before 3-way handshake is
396 			 * finished.
397 			 */
398 			ASSERT(tcp->tcp_ecn_ok ||
399 			    tcp->tcp_state < TCPS_ESTABLISHED);
400 			return;
401 		}
402 
403 		/* NOTE: trouble if xmitting while SYN not acked? */
404 		usable_r = snxt - tcp->tcp_suna;
405 		usable_r = tcp->tcp_swnd - usable_r;
406 
407 		/*
408 		 * Check if the receiver has shrunk the window.  If
409 		 * tcp_wput_data() with NULL mp is called, tcp_fin_sent
410 		 * cannot be set as there is unsent data, so FIN cannot
411 		 * be sent out.  Otherwise, we need to take into account
412 		 * of FIN as it consumes an "invisible" sequence number.
413 		 */
414 		ASSERT(tcp->tcp_fin_sent == 0);
415 		if (usable_r < 0) {
416 			/*
417 			 * The receiver has shrunk the window and we have sent
418 			 * -usable_r date beyond the window, re-adjust.
419 			 *
420 			 * If TCP window scaling is enabled, there can be
421 			 * round down error as the advertised receive window
422 			 * is actually right shifted n bits.  This means that
423 			 * the lower n bits info is wiped out.  It will look
424 			 * like the window is shrunk.  Do a check here to
425 			 * see if the shrunk amount is actually within the
426 			 * error in window calculation.  If it is, just
427 			 * return.  Note that this check is inside the
428 			 * shrunk window check.  This makes sure that even
429 			 * though tcp_process_shrunk_swnd() is not called,
430 			 * we will stop further processing.
431 			 */
432 			if ((-usable_r >> tcp->tcp_snd_ws) > 0) {
433 				tcp_process_shrunk_swnd(tcp, -usable_r);
434 			}
435 			return;
436 		}
437 
438 		/* usable = MIN(swnd, cwnd) - unacked_bytes */
439 		if (tcp->tcp_swnd > tcp->tcp_cwnd)
440 			usable_r -= tcp->tcp_swnd - tcp->tcp_cwnd;
441 
442 		/* usable = MIN(usable, unsent) */
443 		if (usable_r > len)
444 			usable_r = len;
445 
446 		/* usable = MAX(usable, {1 for urgent, 0 for data}) */
447 		if (usable_r > 0) {
448 			usable = usable_r;
449 		} else {
450 			/* Bypass all other unnecessary processing. */
451 			goto done;
452 		}
453 	}
454 
455 	local_time = (mblk_t *)now;
456 
457 	/*
458 	 * "Our" Nagle Algorithm.  This is not the same as in the old
459 	 * BSD.  This is more in line with the true intent of Nagle.
460 	 *
461 	 * The conditions are:
462 	 * 1. The amount of unsent data (or amount of data which can be
463 	 *    sent, whichever is smaller) is less than Nagle limit.
464 	 * 2. The last sent size is also less than Nagle limit.
465 	 * 3. There is unack'ed data.
466 	 * 4. Urgent pointer is not set.  Send urgent data ignoring the
467 	 *    Nagle algorithm.  This reduces the probability that urgent
468 	 *    bytes get "merged" together.
469 	 * 5. The app has not closed the connection.  This eliminates the
470 	 *    wait time of the receiving side waiting for the last piece of
471 	 *    (small) data.
472 	 *
473 	 * If all are satisified, exit without sending anything.  Note
474 	 * that Nagle limit can be smaller than 1 MSS.  Nagle limit is
475 	 * the smaller of 1 MSS and global tcp_naglim_def (default to be
476 	 * 4095).
477 	 */
478 	if (usable < (int)tcp->tcp_naglim &&
479 	    tcp->tcp_naglim > tcp->tcp_last_sent_len &&
480 	    snxt != tcp->tcp_suna &&
481 	    !(tcp->tcp_valid_bits & TCP_URG_VALID) &&
482 	    !(tcp->tcp_valid_bits & TCP_FSS_VALID)) {
483 		goto done;
484 	}
485 
486 	/*
487 	 * If tcp_zero_win_probe is not set and the tcp->tcp_cork option
488 	 * is set, then we have to force TCP not to send partial segment
489 	 * (smaller than MSS bytes). We are calculating the usable now
490 	 * based on full mss and will save the rest of remaining data for
491 	 * later. When tcp_zero_win_probe is set, TCP needs to send out
492 	 * something to do zero window probe.
493 	 */
494 	if (tcp->tcp_cork && !tcp->tcp_zero_win_probe) {
495 		if (usable < mss)
496 			goto done;
497 		usable = (usable / mss) * mss;
498 	}
499 
500 	/* Update the latest receive window size in TCP header. */
501 	tcp->tcp_tcpha->tha_win = htons(tcp->tcp_rwnd >> tcp->tcp_rcv_ws);
502 
503 	/* Send the packet. */
504 	rc = tcp_send(tcp, mss, total_hdr_len, tcp_hdr_len,
505 	    num_sack_blk, &usable, &snxt, &tail_unsent, &xmit_tail,
506 	    local_time);
507 
508 	/* Pretend that all we were trying to send really got sent */
509 	if (rc < 0 && tail_unsent < 0) {
510 		do {
511 			xmit_tail = xmit_tail->b_cont;
512 			xmit_tail->b_prev = local_time;
513 			ASSERT((uintptr_t)(xmit_tail->b_wptr -
514 			    xmit_tail->b_rptr) <= (uintptr_t)INT_MAX);
515 			tail_unsent += (int)(xmit_tail->b_wptr -
516 			    xmit_tail->b_rptr);
517 		} while (tail_unsent < 0);
518 	}
519 done:;
520 	tcp->tcp_xmit_tail = xmit_tail;
521 	tcp->tcp_xmit_tail_unsent = tail_unsent;
522 	len = tcp->tcp_snxt - snxt;
523 	if (len) {
524 		/*
525 		 * If new data was sent, need to update the notsack
526 		 * list, which is, afterall, data blocks that have
527 		 * not been sack'ed by the receiver.  New data is
528 		 * not sack'ed.
529 		 */
530 		if (tcp->tcp_snd_sack_ok && tcp->tcp_notsack_list != NULL) {
531 			/* len is a negative value. */
532 			tcp->tcp_pipe -= len;
533 			tcp_notsack_update(&(tcp->tcp_notsack_list),
534 			    tcp->tcp_snxt, snxt,
535 			    &(tcp->tcp_num_notsack_blk),
536 			    &(tcp->tcp_cnt_notsack_list));
537 		}
538 		tcp->tcp_snxt = snxt + tcp->tcp_fin_sent;
539 		tcp->tcp_rack = tcp->tcp_rnxt;
540 		tcp->tcp_rack_cnt = 0;
541 		if ((snxt + len) == tcp->tcp_suna) {
542 			TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
543 		}
544 	} else if (snxt == tcp->tcp_suna && tcp->tcp_swnd == 0) {
545 		/*
546 		 * Didn't send anything. Make sure the timer is running
547 		 * so that we will probe a zero window.
548 		 */
549 		TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
550 	}
551 	/* Note that len is the amount we just sent but with a negative sign */
552 	tcp->tcp_unsent += len;
553 	mutex_enter(&tcp->tcp_non_sq_lock);
554 	if (tcp->tcp_flow_stopped) {
555 		if (TCP_UNSENT_BYTES(tcp) <= connp->conn_sndlowat) {
556 			tcp_clrqfull(tcp);
557 		}
558 	} else if (TCP_UNSENT_BYTES(tcp) >= connp->conn_sndbuf) {
559 		if (!(tcp->tcp_detached))
560 			tcp_setqfull(tcp);
561 	}
562 	mutex_exit(&tcp->tcp_non_sq_lock);
563 }
564 
565 /*
566  * Initial STREAMS write side put() procedure for sockets. It tries to
567  * handle the T_CAPABILITY_REQ which sockfs sends down while setting
568  * up the socket without using the squeue. Non T_CAPABILITY_REQ messages
569  * are handled by tcp_wput() as usual.
570  *
571  * All further messages will also be handled by tcp_wput() because we cannot
572  * be sure that the above short cut is safe later.
573  */
574 void
575 tcp_wput_sock(queue_t *wq, mblk_t *mp)
576 {
577 	conn_t			*connp = Q_TO_CONN(wq);
578 	tcp_t			*tcp = connp->conn_tcp;
579 	struct T_capability_req	*car = (struct T_capability_req *)mp->b_rptr;
580 
581 	ASSERT(wq->q_qinfo == &tcp_sock_winit);
582 	wq->q_qinfo = &tcp_winit;
583 
584 	ASSERT(IPCL_IS_TCP(connp));
585 	ASSERT(TCP_IS_SOCKET(tcp));
586 
587 	if (DB_TYPE(mp) == M_PCPROTO &&
588 	    MBLKL(mp) == sizeof (struct T_capability_req) &&
589 	    car->PRIM_type == T_CAPABILITY_REQ) {
590 		tcp_capability_req(tcp, mp);
591 		return;
592 	}
593 
594 	tcp_wput(wq, mp);
595 }
596 
597 /* ARGSUSED */
598 void
599 tcp_wput_fallback(queue_t *wq, mblk_t *mp)
600 {
601 #ifdef DEBUG
602 	cmn_err(CE_CONT, "tcp_wput_fallback: Message during fallback \n");
603 #endif
604 	freemsg(mp);
605 }
606 
607 /*
608  * Call by tcp_wput() to handle misc non M_DATA messages.
609  */
610 /* ARGSUSED */
611 static void
612 tcp_wput_nondata(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
613 {
614 	conn_t	*connp = (conn_t *)arg;
615 	tcp_t	*tcp = connp->conn_tcp;
616 
617 	ASSERT(DB_TYPE(mp) != M_IOCTL);
618 	/*
619 	 * TCP is D_MP and qprocsoff() is done towards the end of the tcp_close.
620 	 * Once the close starts, streamhead and sockfs will not let any data
621 	 * packets come down (close ensures that there are no threads using the
622 	 * queue and no new threads will come down) but since qprocsoff()
623 	 * hasn't happened yet, a M_FLUSH or some non data message might
624 	 * get reflected back (in response to our own FLUSHRW) and get
625 	 * processed after tcp_close() is done. The conn would still be valid
626 	 * because a ref would have added but we need to check the state
627 	 * before actually processing the packet.
628 	 */
629 	if (TCP_IS_DETACHED(tcp) || (tcp->tcp_state == TCPS_CLOSED)) {
630 		freemsg(mp);
631 		return;
632 	}
633 
634 	switch (DB_TYPE(mp)) {
635 	case M_IOCDATA:
636 		tcp_wput_iocdata(tcp, mp);
637 		break;
638 	case M_FLUSH:
639 		tcp_wput_flush(tcp, mp);
640 		break;
641 	default:
642 		ip_wput_nondata(connp->conn_wq, mp);
643 		break;
644 	}
645 }
646 
647 /* tcp_wput_flush is called by tcp_wput_nondata to handle M_FLUSH messages. */
648 static void
649 tcp_wput_flush(tcp_t *tcp, mblk_t *mp)
650 {
651 	uchar_t	fval = *mp->b_rptr;
652 	mblk_t	*tail;
653 	conn_t	*connp = tcp->tcp_connp;
654 	queue_t	*q = connp->conn_wq;
655 
656 	/* TODO: How should flush interact with urgent data? */
657 	if ((fval & FLUSHW) && tcp->tcp_xmit_head != NULL &&
658 	    !(tcp->tcp_valid_bits & TCP_URG_VALID)) {
659 		/*
660 		 * Flush only data that has not yet been put on the wire.  If
661 		 * we flush data that we have already transmitted, life, as we
662 		 * know it, may come to an end.
663 		 */
664 		tail = tcp->tcp_xmit_tail;
665 		tail->b_wptr -= tcp->tcp_xmit_tail_unsent;
666 		tcp->tcp_xmit_tail_unsent = 0;
667 		tcp->tcp_unsent = 0;
668 		if (tail->b_wptr != tail->b_rptr)
669 			tail = tail->b_cont;
670 		if (tail) {
671 			mblk_t **excess = &tcp->tcp_xmit_head;
672 			for (;;) {
673 				mblk_t *mp1 = *excess;
674 				if (mp1 == tail)
675 					break;
676 				tcp->tcp_xmit_tail = mp1;
677 				tcp->tcp_xmit_last = mp1;
678 				excess = &mp1->b_cont;
679 			}
680 			*excess = NULL;
681 			tcp_close_mpp(&tail);
682 			if (tcp->tcp_snd_zcopy_aware)
683 				tcp_zcopy_notify(tcp);
684 		}
685 		/*
686 		 * We have no unsent data, so unsent must be less than
687 		 * conn_sndlowat, so re-enable flow.
688 		 */
689 		mutex_enter(&tcp->tcp_non_sq_lock);
690 		if (tcp->tcp_flow_stopped) {
691 			tcp_clrqfull(tcp);
692 		}
693 		mutex_exit(&tcp->tcp_non_sq_lock);
694 	}
695 	/*
696 	 * TODO: you can't just flush these, you have to increase rwnd for one
697 	 * thing.  For another, how should urgent data interact?
698 	 */
699 	if (fval & FLUSHR) {
700 		*mp->b_rptr = fval & ~FLUSHW;
701 		/* XXX */
702 		qreply(q, mp);
703 		return;
704 	}
705 	freemsg(mp);
706 }
707 
708 /*
709  * tcp_wput_iocdata is called by tcp_wput_nondata to handle all M_IOCDATA
710  * messages.
711  */
712 static void
713 tcp_wput_iocdata(tcp_t *tcp, mblk_t *mp)
714 {
715 	mblk_t		*mp1;
716 	struct iocblk	*iocp = (struct iocblk *)mp->b_rptr;
717 	STRUCT_HANDLE(strbuf, sb);
718 	uint_t		addrlen;
719 	conn_t		*connp = tcp->tcp_connp;
720 	queue_t 	*q = connp->conn_wq;
721 
722 	/* Make sure it is one of ours. */
723 	switch (iocp->ioc_cmd) {
724 	case TI_GETMYNAME:
725 	case TI_GETPEERNAME:
726 		break;
727 	default:
728 		/*
729 		 * If the conn is closing, then error the ioctl here. Otherwise
730 		 * use the CONN_IOCTLREF_* macros to hold off tcp_close until
731 		 * we're done here.
732 		 */
733 		mutex_enter(&connp->conn_lock);
734 		if (connp->conn_state_flags & CONN_CLOSING) {
735 			mutex_exit(&connp->conn_lock);
736 			iocp->ioc_error = EINVAL;
737 			mp->b_datap->db_type = M_IOCNAK;
738 			iocp->ioc_count = 0;
739 			qreply(q, mp);
740 			return;
741 		}
742 
743 		CONN_INC_IOCTLREF_LOCKED(connp);
744 		ip_wput_nondata(q, mp);
745 		CONN_DEC_IOCTLREF(connp);
746 		return;
747 	}
748 	switch (mi_copy_state(q, mp, &mp1)) {
749 	case -1:
750 		return;
751 	case MI_COPY_CASE(MI_COPY_IN, 1):
752 		break;
753 	case MI_COPY_CASE(MI_COPY_OUT, 1):
754 		/* Copy out the strbuf. */
755 		mi_copyout(q, mp);
756 		return;
757 	case MI_COPY_CASE(MI_COPY_OUT, 2):
758 		/* All done. */
759 		mi_copy_done(q, mp, 0);
760 		return;
761 	default:
762 		mi_copy_done(q, mp, EPROTO);
763 		return;
764 	}
765 	/* Check alignment of the strbuf */
766 	if (!OK_32PTR(mp1->b_rptr)) {
767 		mi_copy_done(q, mp, EINVAL);
768 		return;
769 	}
770 
771 	STRUCT_SET_HANDLE(sb, iocp->ioc_flag, (void *)mp1->b_rptr);
772 
773 	if (connp->conn_family == AF_INET)
774 		addrlen = sizeof (sin_t);
775 	else
776 		addrlen = sizeof (sin6_t);
777 
778 	if (STRUCT_FGET(sb, maxlen) < addrlen) {
779 		mi_copy_done(q, mp, EINVAL);
780 		return;
781 	}
782 
783 	switch (iocp->ioc_cmd) {
784 	case TI_GETMYNAME:
785 		break;
786 	case TI_GETPEERNAME:
787 		if (tcp->tcp_state < TCPS_SYN_RCVD) {
788 			mi_copy_done(q, mp, ENOTCONN);
789 			return;
790 		}
791 		break;
792 	}
793 	mp1 = mi_copyout_alloc(q, mp, STRUCT_FGETP(sb, buf), addrlen, B_TRUE);
794 	if (!mp1)
795 		return;
796 
797 	STRUCT_FSET(sb, len, addrlen);
798 	switch (((struct iocblk *)mp->b_rptr)->ioc_cmd) {
799 	case TI_GETMYNAME:
800 		(void) conn_getsockname(connp, (struct sockaddr *)mp1->b_wptr,
801 		    &addrlen);
802 		break;
803 	case TI_GETPEERNAME:
804 		(void) conn_getpeername(connp, (struct sockaddr *)mp1->b_wptr,
805 		    &addrlen);
806 		break;
807 	}
808 	mp1->b_wptr += addrlen;
809 	/* Copy out the address */
810 	mi_copyout(q, mp);
811 }
812 
813 /*
814  * tcp_wput_ioctl is called by tcp_wput_nondata() to handle all M_IOCTL
815  * messages.
816  */
817 /* ARGSUSED */
818 static void
819 tcp_wput_ioctl(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
820 {
821 	conn_t 		*connp = (conn_t *)arg;
822 	tcp_t		*tcp = connp->conn_tcp;
823 	queue_t		*q = connp->conn_wq;
824 	struct iocblk	*iocp;
825 
826 	ASSERT(DB_TYPE(mp) == M_IOCTL);
827 	/*
828 	 * Try and ASSERT the minimum possible references on the
829 	 * conn early enough. Since we are executing on write side,
830 	 * the connection is obviously not detached and that means
831 	 * there is a ref each for TCP and IP. Since we are behind
832 	 * the squeue, the minimum references needed are 3. If the
833 	 * conn is in classifier hash list, there should be an
834 	 * extra ref for that (we check both the possibilities).
835 	 */
836 	ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) ||
837 	    (connp->conn_fanout == NULL && connp->conn_ref >= 3));
838 
839 	iocp = (struct iocblk *)mp->b_rptr;
840 	switch (iocp->ioc_cmd) {
841 	case _SIOCSOCKFALLBACK:
842 		/*
843 		 * Either sockmod is about to be popped and the socket
844 		 * would now be treated as a plain stream, or a module
845 		 * is about to be pushed so we could no longer use read-
846 		 * side synchronous streams for fused loopback tcp.
847 		 * Drain any queued data and disable direct sockfs
848 		 * interface from now on.
849 		 */
850 		if (!tcp->tcp_issocket) {
851 			DB_TYPE(mp) = M_IOCNAK;
852 			iocp->ioc_error = EINVAL;
853 		} else {
854 			tcp_use_pure_tpi(tcp);
855 			DB_TYPE(mp) = M_IOCACK;
856 			iocp->ioc_error = 0;
857 		}
858 		iocp->ioc_count = 0;
859 		iocp->ioc_rval = 0;
860 		qreply(q, mp);
861 		return;
862 	}
863 
864 	/*
865 	 * If the conn is closing, then error the ioctl here. Otherwise bump the
866 	 * conn_ioctlref to hold off tcp_close until we're done here.
867 	 */
868 	mutex_enter(&(connp)->conn_lock);
869 	if ((connp)->conn_state_flags & CONN_CLOSING) {
870 		mutex_exit(&(connp)->conn_lock);
871 		iocp->ioc_error = EINVAL;
872 		mp->b_datap->db_type = M_IOCNAK;
873 		iocp->ioc_count = 0;
874 		qreply(q, mp);
875 		return;
876 	}
877 
878 	CONN_INC_IOCTLREF_LOCKED(connp);
879 	ip_wput_nondata(q, mp);
880 	CONN_DEC_IOCTLREF(connp);
881 }
882 
883 /*
884  * This routine is called by tcp_wput() to handle all TPI requests.
885  */
886 /* ARGSUSED */
887 static void
888 tcp_wput_proto(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
889 {
890 	conn_t		*connp = (conn_t *)arg;
891 	tcp_t		*tcp = connp->conn_tcp;
892 	union T_primitives *tprim = (union T_primitives *)mp->b_rptr;
893 	uchar_t		*rptr;
894 	t_scalar_t	type;
895 	cred_t		*cr;
896 
897 	/*
898 	 * Try and ASSERT the minimum possible references on the
899 	 * conn early enough. Since we are executing on write side,
900 	 * the connection is obviously not detached and that means
901 	 * there is a ref each for TCP and IP. Since we are behind
902 	 * the squeue, the minimum references needed are 3. If the
903 	 * conn is in classifier hash list, there should be an
904 	 * extra ref for that (we check both the possibilities).
905 	 */
906 	ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) ||
907 	    (connp->conn_fanout == NULL && connp->conn_ref >= 3));
908 
909 	rptr = mp->b_rptr;
910 	ASSERT((uintptr_t)(mp->b_wptr - rptr) <= (uintptr_t)INT_MAX);
911 	if ((mp->b_wptr - rptr) >= sizeof (t_scalar_t)) {
912 		type = ((union T_primitives *)rptr)->type;
913 		if (type == T_EXDATA_REQ) {
914 			tcp_output_urgent(connp, mp, arg2, NULL);
915 		} else if (type != T_DATA_REQ) {
916 			goto non_urgent_data;
917 		} else {
918 			/* TODO: options, flags, ... from user */
919 			/* Set length to zero for reclamation below */
920 			tcp_wput_data(tcp, mp->b_cont, B_TRUE);
921 			freeb(mp);
922 		}
923 		return;
924 	} else {
925 		if (connp->conn_debug) {
926 			(void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE,
927 			    "tcp_wput_proto, dropping one...");
928 		}
929 		freemsg(mp);
930 		return;
931 	}
932 
933 non_urgent_data:
934 
935 	switch ((int)tprim->type) {
936 	case T_SSL_PROXY_BIND_REQ:	/* an SSL proxy endpoint bind request */
937 		/*
938 		 * save the kssl_ent_t from the next block, and convert this
939 		 * back to a normal bind_req.
940 		 */
941 		if (mp->b_cont != NULL) {
942 			ASSERT(MBLKL(mp->b_cont) >= sizeof (kssl_ent_t));
943 
944 			if (tcp->tcp_kssl_ent != NULL) {
945 				kssl_release_ent(tcp->tcp_kssl_ent, NULL,
946 				    KSSL_NO_PROXY);
947 				tcp->tcp_kssl_ent = NULL;
948 			}
949 			bcopy(mp->b_cont->b_rptr, &tcp->tcp_kssl_ent,
950 			    sizeof (kssl_ent_t));
951 			kssl_hold_ent(tcp->tcp_kssl_ent);
952 			freemsg(mp->b_cont);
953 			mp->b_cont = NULL;
954 		}
955 		tprim->type = T_BIND_REQ;
956 
957 	/* FALLTHROUGH */
958 	case O_T_BIND_REQ:	/* bind request */
959 	case T_BIND_REQ:	/* new semantics bind request */
960 		tcp_tpi_bind(tcp, mp);
961 		break;
962 	case T_UNBIND_REQ:	/* unbind request */
963 		tcp_tpi_unbind(tcp, mp);
964 		break;
965 	case O_T_CONN_RES:	/* old connection response XXX */
966 	case T_CONN_RES:	/* connection response */
967 		tcp_tli_accept(tcp, mp);
968 		break;
969 	case T_CONN_REQ:	/* connection request */
970 		tcp_tpi_connect(tcp, mp);
971 		break;
972 	case T_DISCON_REQ:	/* disconnect request */
973 		tcp_disconnect(tcp, mp);
974 		break;
975 	case T_CAPABILITY_REQ:
976 		tcp_capability_req(tcp, mp);	/* capability request */
977 		break;
978 	case T_INFO_REQ:	/* information request */
979 		tcp_info_req(tcp, mp);
980 		break;
981 	case T_SVR4_OPTMGMT_REQ:	/* manage options req */
982 	case T_OPTMGMT_REQ:
983 		/*
984 		 * Note:  no support for snmpcom_req() through new
985 		 * T_OPTMGMT_REQ. See comments in ip.c
986 		 */
987 
988 		/*
989 		 * All Solaris components should pass a db_credp
990 		 * for this TPI message, hence we ASSERT.
991 		 * But in case there is some other M_PROTO that looks
992 		 * like a TPI message sent by some other kernel
993 		 * component, we check and return an error.
994 		 */
995 		cr = msg_getcred(mp, NULL);
996 		ASSERT(cr != NULL);
997 		if (cr == NULL) {
998 			tcp_err_ack(tcp, mp, TSYSERR, EINVAL);
999 			return;
1000 		}
1001 		/*
1002 		 * If EINPROGRESS is returned, the request has been queued
1003 		 * for subsequent processing by ip_restart_optmgmt(), which
1004 		 * will do the CONN_DEC_REF().
1005 		 */
1006 		if ((int)tprim->type == T_SVR4_OPTMGMT_REQ) {
1007 			svr4_optcom_req(connp->conn_wq, mp, cr, &tcp_opt_obj);
1008 		} else {
1009 			tpi_optcom_req(connp->conn_wq, mp, cr, &tcp_opt_obj);
1010 		}
1011 		break;
1012 
1013 	case T_UNITDATA_REQ:	/* unitdata request */
1014 		tcp_err_ack(tcp, mp, TNOTSUPPORT, 0);
1015 		break;
1016 	case T_ORDREL_REQ:	/* orderly release req */
1017 		freemsg(mp);
1018 
1019 		if (tcp->tcp_fused)
1020 			tcp_unfuse(tcp);
1021 
1022 		if (tcp_xmit_end(tcp) != 0) {
1023 			/*
1024 			 * We were crossing FINs and got a reset from
1025 			 * the other side. Just ignore it.
1026 			 */
1027 			if (connp->conn_debug) {
1028 				(void) strlog(TCP_MOD_ID, 0, 1,
1029 				    SL_ERROR|SL_TRACE,
1030 				    "tcp_wput_proto, T_ORDREL_REQ out of "
1031 				    "state %s",
1032 				    tcp_display(tcp, NULL,
1033 				    DISP_ADDR_AND_PORT));
1034 			}
1035 		}
1036 		break;
1037 	case T_ADDR_REQ:
1038 		tcp_addr_req(tcp, mp);
1039 		break;
1040 	default:
1041 		if (connp->conn_debug) {
1042 			(void) strlog(TCP_MOD_ID, 0, 1, SL_ERROR|SL_TRACE,
1043 			    "tcp_wput_proto, bogus TPI msg, type %d",
1044 			    tprim->type);
1045 		}
1046 		/*
1047 		 * We used to M_ERROR.  Sending TNOTSUPPORT gives the user
1048 		 * to recover.
1049 		 */
1050 		tcp_err_ack(tcp, mp, TNOTSUPPORT, 0);
1051 		break;
1052 	}
1053 }
1054 
1055 /*
1056  * Handle special out-of-band ioctl requests (see PSARC/2008/265).
1057  */
1058 static void
1059 tcp_wput_cmdblk(queue_t *q, mblk_t *mp)
1060 {
1061 	void	*data;
1062 	mblk_t	*datamp = mp->b_cont;
1063 	conn_t	*connp = Q_TO_CONN(q);
1064 	tcp_t	*tcp = connp->conn_tcp;
1065 	cmdblk_t *cmdp = (cmdblk_t *)mp->b_rptr;
1066 
1067 	if (datamp == NULL || MBLKL(datamp) < cmdp->cb_len) {
1068 		cmdp->cb_error = EPROTO;
1069 		qreply(q, mp);
1070 		return;
1071 	}
1072 
1073 	data = datamp->b_rptr;
1074 
1075 	switch (cmdp->cb_cmd) {
1076 	case TI_GETPEERNAME:
1077 		if (tcp->tcp_state < TCPS_SYN_RCVD)
1078 			cmdp->cb_error = ENOTCONN;
1079 		else
1080 			cmdp->cb_error = conn_getpeername(connp, data,
1081 			    &cmdp->cb_len);
1082 		break;
1083 	case TI_GETMYNAME:
1084 		cmdp->cb_error = conn_getsockname(connp, data, &cmdp->cb_len);
1085 		break;
1086 	default:
1087 		cmdp->cb_error = EINVAL;
1088 		break;
1089 	}
1090 
1091 	qreply(q, mp);
1092 }
1093 
1094 /*
1095  * The TCP fast path write put procedure.
1096  * NOTE: the logic of the fast path is duplicated from tcp_wput_data()
1097  */
1098 /* ARGSUSED */
1099 void
1100 tcp_output(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
1101 {
1102 	int		len;
1103 	int		hdrlen;
1104 	int		plen;
1105 	mblk_t		*mp1;
1106 	uchar_t		*rptr;
1107 	uint32_t	snxt;
1108 	tcpha_t		*tcpha;
1109 	struct datab	*db;
1110 	uint32_t	suna;
1111 	uint32_t	mss;
1112 	ipaddr_t	*dst;
1113 	ipaddr_t	*src;
1114 	uint32_t	sum;
1115 	int		usable;
1116 	conn_t		*connp = (conn_t *)arg;
1117 	tcp_t		*tcp = connp->conn_tcp;
1118 	uint32_t	msize;
1119 	tcp_stack_t	*tcps = tcp->tcp_tcps;
1120 	ip_xmit_attr_t	*ixa;
1121 	clock_t		now;
1122 
1123 	/*
1124 	 * Try and ASSERT the minimum possible references on the
1125 	 * conn early enough. Since we are executing on write side,
1126 	 * the connection is obviously not detached and that means
1127 	 * there is a ref each for TCP and IP. Since we are behind
1128 	 * the squeue, the minimum references needed are 3. If the
1129 	 * conn is in classifier hash list, there should be an
1130 	 * extra ref for that (we check both the possibilities).
1131 	 */
1132 	ASSERT((connp->conn_fanout != NULL && connp->conn_ref >= 4) ||
1133 	    (connp->conn_fanout == NULL && connp->conn_ref >= 3));
1134 
1135 	ASSERT(DB_TYPE(mp) == M_DATA);
1136 	msize = (mp->b_cont == NULL) ? MBLKL(mp) : msgdsize(mp);
1137 
1138 	mutex_enter(&tcp->tcp_non_sq_lock);
1139 	tcp->tcp_squeue_bytes -= msize;
1140 	mutex_exit(&tcp->tcp_non_sq_lock);
1141 
1142 	/* Bypass tcp protocol for fused tcp loopback */
1143 	if (tcp->tcp_fused && tcp_fuse_output(tcp, mp, msize))
1144 		return;
1145 
1146 	mss = tcp->tcp_mss;
1147 	/*
1148 	 * If ZEROCOPY has turned off, try not to send any zero-copy message
1149 	 * down. Do backoff, now.
1150 	 */
1151 	if (tcp->tcp_snd_zcopy_aware && !tcp->tcp_snd_zcopy_on)
1152 		mp = tcp_zcopy_backoff(tcp, mp, B_FALSE);
1153 
1154 
1155 	ASSERT((uintptr_t)(mp->b_wptr - mp->b_rptr) <= (uintptr_t)INT_MAX);
1156 	len = (int)(mp->b_wptr - mp->b_rptr);
1157 
1158 	/*
1159 	 * Criteria for fast path:
1160 	 *
1161 	 *   1. no unsent data
1162 	 *   2. single mblk in request
1163 	 *   3. connection established
1164 	 *   4. data in mblk
1165 	 *   5. len <= mss
1166 	 *   6. no tcp_valid bits
1167 	 */
1168 	if ((tcp->tcp_unsent != 0) ||
1169 	    (tcp->tcp_cork) ||
1170 	    (mp->b_cont != NULL) ||
1171 	    (tcp->tcp_state != TCPS_ESTABLISHED) ||
1172 	    (len == 0) ||
1173 	    (len > mss) ||
1174 	    (tcp->tcp_valid_bits != 0)) {
1175 		tcp_wput_data(tcp, mp, B_FALSE);
1176 		return;
1177 	}
1178 
1179 	ASSERT(tcp->tcp_xmit_tail_unsent == 0);
1180 	ASSERT(tcp->tcp_fin_sent == 0);
1181 
1182 	/* queue new packet onto retransmission queue */
1183 	if (tcp->tcp_xmit_head == NULL) {
1184 		tcp->tcp_xmit_head = mp;
1185 	} else {
1186 		tcp->tcp_xmit_last->b_cont = mp;
1187 	}
1188 	tcp->tcp_xmit_last = mp;
1189 	tcp->tcp_xmit_tail = mp;
1190 
1191 	/* find out how much we can send */
1192 	/* BEGIN CSTYLED */
1193 	/*
1194 	 *    un-acked	   usable
1195 	 *  |--------------|-----------------|
1196 	 *  tcp_suna       tcp_snxt	  tcp_suna+tcp_swnd
1197 	 */
1198 	/* END CSTYLED */
1199 
1200 	/* start sending from tcp_snxt */
1201 	snxt = tcp->tcp_snxt;
1202 
1203 	/*
1204 	 * Check to see if this connection has been idled for some
1205 	 * time and no ACK is expected.  If it is, we need to slow
1206 	 * start again to get back the connection's "self-clock" as
1207 	 * described in VJ's paper.
1208 	 *
1209 	 * Reinitialize tcp_cwnd after idle.
1210 	 */
1211 	now = LBOLT_FASTPATH;
1212 	if ((tcp->tcp_suna == snxt) && !tcp->tcp_localnet &&
1213 	    (TICK_TO_MSEC(now - tcp->tcp_last_recv_time) >= tcp->tcp_rto)) {
1214 		TCP_SET_INIT_CWND(tcp, mss, tcps->tcps_slow_start_after_idle);
1215 	}
1216 
1217 	usable = tcp->tcp_swnd;		/* tcp window size */
1218 	if (usable > tcp->tcp_cwnd)
1219 		usable = tcp->tcp_cwnd;	/* congestion window smaller */
1220 	usable -= snxt;		/* subtract stuff already sent */
1221 	suna = tcp->tcp_suna;
1222 	usable += suna;
1223 	/* usable can be < 0 if the congestion window is smaller */
1224 	if (len > usable) {
1225 		/* Can't send complete M_DATA in one shot */
1226 		goto slow;
1227 	}
1228 
1229 	mutex_enter(&tcp->tcp_non_sq_lock);
1230 	if (tcp->tcp_flow_stopped &&
1231 	    TCP_UNSENT_BYTES(tcp) <= connp->conn_sndlowat) {
1232 		tcp_clrqfull(tcp);
1233 	}
1234 	mutex_exit(&tcp->tcp_non_sq_lock);
1235 
1236 	/*
1237 	 * determine if anything to send (Nagle).
1238 	 *
1239 	 *   1. len < tcp_mss (i.e. small)
1240 	 *   2. unacknowledged data present
1241 	 *   3. len < nagle limit
1242 	 *   4. last packet sent < nagle limit (previous packet sent)
1243 	 */
1244 	if ((len < mss) && (snxt != suna) &&
1245 	    (len < (int)tcp->tcp_naglim) &&
1246 	    (tcp->tcp_last_sent_len < tcp->tcp_naglim)) {
1247 		/*
1248 		 * This was the first unsent packet and normally
1249 		 * mss < xmit_hiwater so there is no need to worry
1250 		 * about flow control. The next packet will go
1251 		 * through the flow control check in tcp_wput_data().
1252 		 */
1253 		/* leftover work from above */
1254 		tcp->tcp_unsent = len;
1255 		tcp->tcp_xmit_tail_unsent = len;
1256 
1257 		return;
1258 	}
1259 
1260 	/*
1261 	 * len <= tcp->tcp_mss && len == unsent so no sender silly window.  Can
1262 	 * send now.
1263 	 */
1264 
1265 	if (snxt == suna) {
1266 		TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
1267 	}
1268 
1269 	/* we have always sent something */
1270 	tcp->tcp_rack_cnt = 0;
1271 
1272 	tcp->tcp_snxt = snxt + len;
1273 	tcp->tcp_rack = tcp->tcp_rnxt;
1274 
1275 	if ((mp1 = dupb(mp)) == 0)
1276 		goto no_memory;
1277 	mp->b_prev = (mblk_t *)(uintptr_t)now;
1278 	mp->b_next = (mblk_t *)(uintptr_t)snxt;
1279 
1280 	/* adjust tcp header information */
1281 	tcpha = tcp->tcp_tcpha;
1282 	tcpha->tha_flags = (TH_ACK|TH_PUSH);
1283 
1284 	sum = len + connp->conn_ht_ulp_len + connp->conn_sum;
1285 	sum = (sum >> 16) + (sum & 0xFFFF);
1286 	tcpha->tha_sum = htons(sum);
1287 
1288 	tcpha->tha_seq = htonl(snxt);
1289 
1290 	TCPS_BUMP_MIB(tcps, tcpOutDataSegs);
1291 	TCPS_UPDATE_MIB(tcps, tcpOutDataBytes, len);
1292 	BUMP_LOCAL(tcp->tcp_obsegs);
1293 
1294 	/* Update the latest receive window size in TCP header. */
1295 	tcpha->tha_win = htons(tcp->tcp_rwnd >> tcp->tcp_rcv_ws);
1296 
1297 	tcp->tcp_last_sent_len = (ushort_t)len;
1298 
1299 	plen = len + connp->conn_ht_iphc_len;
1300 
1301 	ixa = connp->conn_ixa;
1302 	ixa->ixa_pktlen = plen;
1303 
1304 	if (ixa->ixa_flags & IXAF_IS_IPV4) {
1305 		tcp->tcp_ipha->ipha_length = htons(plen);
1306 	} else {
1307 		tcp->tcp_ip6h->ip6_plen = htons(plen - IPV6_HDR_LEN);
1308 	}
1309 
1310 	/* see if we need to allocate a mblk for the headers */
1311 	hdrlen = connp->conn_ht_iphc_len;
1312 	rptr = mp1->b_rptr - hdrlen;
1313 	db = mp1->b_datap;
1314 	if ((db->db_ref != 2) || rptr < db->db_base ||
1315 	    (!OK_32PTR(rptr))) {
1316 		/* NOTE: we assume allocb returns an OK_32PTR */
1317 		mp = allocb(hdrlen + tcps->tcps_wroff_xtra, BPRI_MED);
1318 		if (!mp) {
1319 			freemsg(mp1);
1320 			goto no_memory;
1321 		}
1322 		mp->b_cont = mp1;
1323 		mp1 = mp;
1324 		/* Leave room for Link Level header */
1325 		rptr = &mp1->b_rptr[tcps->tcps_wroff_xtra];
1326 		mp1->b_wptr = &rptr[hdrlen];
1327 	}
1328 	mp1->b_rptr = rptr;
1329 
1330 	/* Fill in the timestamp option. */
1331 	if (tcp->tcp_snd_ts_ok) {
1332 		uint32_t llbolt = (uint32_t)LBOLT_FASTPATH;
1333 
1334 		U32_TO_BE32(llbolt,
1335 		    (char *)tcpha + TCP_MIN_HEADER_LENGTH+4);
1336 		U32_TO_BE32(tcp->tcp_ts_recent,
1337 		    (char *)tcpha + TCP_MIN_HEADER_LENGTH+8);
1338 	} else {
1339 		ASSERT(connp->conn_ht_ulp_len == TCP_MIN_HEADER_LENGTH);
1340 	}
1341 
1342 	/* copy header into outgoing packet */
1343 	dst = (ipaddr_t *)rptr;
1344 	src = (ipaddr_t *)connp->conn_ht_iphc;
1345 	dst[0] = src[0];
1346 	dst[1] = src[1];
1347 	dst[2] = src[2];
1348 	dst[3] = src[3];
1349 	dst[4] = src[4];
1350 	dst[5] = src[5];
1351 	dst[6] = src[6];
1352 	dst[7] = src[7];
1353 	dst[8] = src[8];
1354 	dst[9] = src[9];
1355 	if (hdrlen -= 40) {
1356 		hdrlen >>= 2;
1357 		dst += 10;
1358 		src += 10;
1359 		do {
1360 			*dst++ = *src++;
1361 		} while (--hdrlen);
1362 	}
1363 
1364 	/*
1365 	 * Set the ECN info in the TCP header.  Note that this
1366 	 * is not the template header.
1367 	 */
1368 	if (tcp->tcp_ecn_ok) {
1369 		TCP_SET_ECT(tcp, rptr);
1370 
1371 		tcpha = (tcpha_t *)(rptr + ixa->ixa_ip_hdr_length);
1372 		if (tcp->tcp_ecn_echo_on)
1373 			tcpha->tha_flags |= TH_ECE;
1374 		if (tcp->tcp_cwr && !tcp->tcp_ecn_cwr_sent) {
1375 			tcpha->tha_flags |= TH_CWR;
1376 			tcp->tcp_ecn_cwr_sent = B_TRUE;
1377 		}
1378 	}
1379 
1380 	if (tcp->tcp_ip_forward_progress) {
1381 		tcp->tcp_ip_forward_progress = B_FALSE;
1382 		connp->conn_ixa->ixa_flags |= IXAF_REACH_CONF;
1383 	} else {
1384 		connp->conn_ixa->ixa_flags &= ~IXAF_REACH_CONF;
1385 	}
1386 	tcp_send_data(tcp, mp1);
1387 	return;
1388 
1389 	/*
1390 	 * If we ran out of memory, we pretend to have sent the packet
1391 	 * and that it was lost on the wire.
1392 	 */
1393 no_memory:
1394 	return;
1395 
1396 slow:
1397 	/* leftover work from above */
1398 	tcp->tcp_unsent = len;
1399 	tcp->tcp_xmit_tail_unsent = len;
1400 	tcp_wput_data(tcp, NULL, B_FALSE);
1401 }
1402 
1403 /* ARGSUSED2 */
1404 void
1405 tcp_output_urgent(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
1406 {
1407 	int len;
1408 	uint32_t msize;
1409 	conn_t *connp = (conn_t *)arg;
1410 	tcp_t *tcp = connp->conn_tcp;
1411 
1412 	msize = msgdsize(mp);
1413 
1414 	len = msize - 1;
1415 	if (len < 0) {
1416 		freemsg(mp);
1417 		return;
1418 	}
1419 
1420 	/*
1421 	 * Try to force urgent data out on the wire. Even if we have unsent
1422 	 * data this will at least send the urgent flag.
1423 	 * XXX does not handle more flag correctly.
1424 	 */
1425 	len += tcp->tcp_unsent;
1426 	len += tcp->tcp_snxt;
1427 	tcp->tcp_urg = len;
1428 	tcp->tcp_valid_bits |= TCP_URG_VALID;
1429 
1430 	/* Bypass tcp protocol for fused tcp loopback */
1431 	if (tcp->tcp_fused && tcp_fuse_output(tcp, mp, msize))
1432 		return;
1433 
1434 	/* Strip off the T_EXDATA_REQ if the data is from TPI */
1435 	if (DB_TYPE(mp) != M_DATA) {
1436 		mblk_t *mp1 = mp;
1437 		ASSERT(!IPCL_IS_NONSTR(connp));
1438 		mp = mp->b_cont;
1439 		freeb(mp1);
1440 	}
1441 	tcp_wput_data(tcp, mp, B_TRUE);
1442 }
1443 
1444 /*
1445  * Called by streams close routine via squeues when our client blows off her
1446  * descriptor, we take this to mean: "close the stream state NOW, close the tcp
1447  * connection politely" When SO_LINGER is set (with a non-zero linger time and
1448  * it is not a nonblocking socket) then this routine sleeps until the FIN is
1449  * acked.
1450  *
1451  * NOTE: tcp_close potentially returns error when lingering.
1452  * However, the stream head currently does not pass these errors
1453  * to the application. 4.4BSD only returns EINTR and EWOULDBLOCK
1454  * errors to the application (from tsleep()) and not errors
1455  * like ECONNRESET caused by receiving a reset packet.
1456  */
1457 
1458 /* ARGSUSED */
1459 void
1460 tcp_close_output(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
1461 {
1462 	char	*msg;
1463 	conn_t	*connp = (conn_t *)arg;
1464 	tcp_t	*tcp = connp->conn_tcp;
1465 	clock_t	delta = 0;
1466 	tcp_stack_t	*tcps = tcp->tcp_tcps;
1467 
1468 	/*
1469 	 * When a non-STREAMS socket is being closed, it does not always
1470 	 * stick around waiting for tcp_close_output to run and can therefore
1471 	 * have dropped a reference already. So adjust the asserts accordingly.
1472 	 */
1473 	ASSERT((connp->conn_fanout != NULL &&
1474 	    connp->conn_ref >= (IPCL_IS_NONSTR(connp) ? 3 : 4)) ||
1475 	    (connp->conn_fanout == NULL &&
1476 	    connp->conn_ref >= (IPCL_IS_NONSTR(connp) ? 2 : 3)));
1477 
1478 	mutex_enter(&tcp->tcp_eager_lock);
1479 	if (tcp->tcp_conn_req_cnt_q0 != 0 || tcp->tcp_conn_req_cnt_q != 0) {
1480 		/*
1481 		 * Cleanup for listener. For non-STREAM sockets sockfs will
1482 		 * close all the eagers on 'q', so in that case only deal
1483 		 * with 'q0'.
1484 		 */
1485 		tcp_eager_cleanup(tcp, IPCL_IS_NONSTR(connp) ? 1 : 0);
1486 		tcp->tcp_wait_for_eagers = 1;
1487 	}
1488 	mutex_exit(&tcp->tcp_eager_lock);
1489 
1490 	tcp->tcp_lso = B_FALSE;
1491 
1492 	msg = NULL;
1493 	switch (tcp->tcp_state) {
1494 	case TCPS_CLOSED:
1495 	case TCPS_IDLE:
1496 	case TCPS_BOUND:
1497 	case TCPS_LISTEN:
1498 		break;
1499 	case TCPS_SYN_SENT:
1500 		msg = "tcp_close, during connect";
1501 		break;
1502 	case TCPS_SYN_RCVD:
1503 		/*
1504 		 * Close during the connect 3-way handshake
1505 		 * but here there may or may not be pending data
1506 		 * already on queue. Process almost same as in
1507 		 * the ESTABLISHED state.
1508 		 */
1509 		/* FALLTHRU */
1510 	default:
1511 		if (tcp->tcp_fused)
1512 			tcp_unfuse(tcp);
1513 
1514 		/*
1515 		 * If SO_LINGER has set a zero linger time, abort the
1516 		 * connection with a reset.
1517 		 */
1518 		if (connp->conn_linger && connp->conn_lingertime == 0) {
1519 			msg = "tcp_close, zero lingertime";
1520 			break;
1521 		}
1522 
1523 		/*
1524 		 * Abort connection if there is unread data queued.
1525 		 */
1526 		if (tcp->tcp_rcv_list || tcp->tcp_reass_head) {
1527 			msg = "tcp_close, unread data";
1528 			break;
1529 		}
1530 
1531 		/*
1532 		 * Abort connection if it is being closed without first
1533 		 * being accepted. This can happen if a listening non-STREAM
1534 		 * socket wants to get rid of the socket, for example, if the
1535 		 * listener is closing.
1536 		 */
1537 		if (tcp->tcp_listener != NULL) {
1538 			ASSERT(IPCL_IS_NONSTR(connp));
1539 			msg = "tcp_close, close before accept";
1540 
1541 			/*
1542 			 * Unlink from the listener and drop the reference
1543 			 * put on it by the eager. tcp_closei_local will not
1544 			 * do it because tcp_tconnind_started is TRUE.
1545 			 */
1546 			mutex_enter(&tcp->tcp_saved_listener->tcp_eager_lock);
1547 			tcp_eager_unlink(tcp);
1548 			mutex_exit(&tcp->tcp_saved_listener->tcp_eager_lock);
1549 			CONN_DEC_REF(tcp->tcp_saved_listener->tcp_connp);
1550 
1551 			/*
1552 			 * If the conn has received a RST, the only thing
1553 			 * left to do is to drop the ref.
1554 			 */
1555 			if (tcp->tcp_state <= TCPS_BOUND) {
1556 				CONN_DEC_REF(tcp->tcp_connp);
1557 				return;
1558 			}
1559 			break;
1560 		}
1561 
1562 		/*
1563 		 * Transmit the FIN before detaching the tcp_t.
1564 		 * After tcp_detach returns this queue/perimeter
1565 		 * no longer owns the tcp_t thus others can modify it.
1566 		 */
1567 		(void) tcp_xmit_end(tcp);
1568 
1569 		/*
1570 		 * If lingering on close then wait until the fin is acked,
1571 		 * the SO_LINGER time passes, or a reset is sent/received.
1572 		 */
1573 		if (connp->conn_linger && connp->conn_lingertime > 0 &&
1574 		    !(tcp->tcp_fin_acked) &&
1575 		    tcp->tcp_state >= TCPS_ESTABLISHED) {
1576 			if (tcp->tcp_closeflags & (FNDELAY|FNONBLOCK)) {
1577 				tcp->tcp_client_errno = EWOULDBLOCK;
1578 			} else if (tcp->tcp_client_errno == 0) {
1579 
1580 				ASSERT(tcp->tcp_linger_tid == 0);
1581 
1582 				/* conn_lingertime is in sec. */
1583 				tcp->tcp_linger_tid = TCP_TIMER(tcp,
1584 				    tcp_close_linger_timeout,
1585 				    connp->conn_lingertime * MILLISEC);
1586 
1587 				/* tcp_close_linger_timeout will finish close */
1588 				if (tcp->tcp_linger_tid == 0)
1589 					tcp->tcp_client_errno = ENOSR;
1590 				else
1591 					return;
1592 			}
1593 
1594 			/*
1595 			 * Check if we need to detach or just close
1596 			 * the instance.
1597 			 */
1598 			if (tcp->tcp_state <= TCPS_LISTEN)
1599 				break;
1600 		}
1601 
1602 		/*
1603 		 * Make sure that no other thread will access the conn_rq of
1604 		 * this instance (through lookups etc.) as conn_rq will go
1605 		 * away shortly.
1606 		 */
1607 		tcp_acceptor_hash_remove(tcp);
1608 
1609 		mutex_enter(&tcp->tcp_non_sq_lock);
1610 		if (tcp->tcp_flow_stopped) {
1611 			tcp_clrqfull(tcp);
1612 		}
1613 		mutex_exit(&tcp->tcp_non_sq_lock);
1614 
1615 		if (tcp->tcp_timer_tid != 0) {
1616 			delta = TCP_TIMER_CANCEL(tcp, tcp->tcp_timer_tid);
1617 			tcp->tcp_timer_tid = 0;
1618 		}
1619 		/*
1620 		 * Need to cancel those timers which will not be used when
1621 		 * TCP is detached.  This has to be done before the conn_wq
1622 		 * is set to NULL.
1623 		 */
1624 		tcp_timers_stop(tcp);
1625 
1626 		tcp->tcp_detached = B_TRUE;
1627 		if (tcp->tcp_state == TCPS_TIME_WAIT) {
1628 			tcp_time_wait_append(tcp);
1629 			TCP_DBGSTAT(tcps, tcp_detach_time_wait);
1630 			ASSERT(connp->conn_ref >=
1631 			    (IPCL_IS_NONSTR(connp) ? 2 : 3));
1632 			goto finish;
1633 		}
1634 
1635 		/*
1636 		 * If delta is zero the timer event wasn't executed and was
1637 		 * successfully canceled. In this case we need to restart it
1638 		 * with the minimal delta possible.
1639 		 */
1640 		if (delta >= 0)
1641 			tcp->tcp_timer_tid = TCP_TIMER(tcp, tcp_timer,
1642 			    delta ? delta : 1);
1643 
1644 		ASSERT(connp->conn_ref >= (IPCL_IS_NONSTR(connp) ? 2 : 3));
1645 		goto finish;
1646 	}
1647 
1648 	/* Detach did not complete. Still need to remove q from stream. */
1649 	if (msg) {
1650 		if (tcp->tcp_state == TCPS_ESTABLISHED ||
1651 		    tcp->tcp_state == TCPS_CLOSE_WAIT)
1652 			TCPS_BUMP_MIB(tcps, tcpEstabResets);
1653 		if (tcp->tcp_state == TCPS_SYN_SENT ||
1654 		    tcp->tcp_state == TCPS_SYN_RCVD)
1655 			TCPS_BUMP_MIB(tcps, tcpAttemptFails);
1656 		tcp_xmit_ctl(msg, tcp,  tcp->tcp_snxt, 0, TH_RST);
1657 	}
1658 
1659 	tcp_closei_local(tcp);
1660 	CONN_DEC_REF(connp);
1661 	ASSERT(connp->conn_ref >= (IPCL_IS_NONSTR(connp) ? 1 : 2));
1662 
1663 finish:
1664 	/*
1665 	 * Don't change the queues in the case of a listener that has
1666 	 * eagers in its q or q0. It could surprise the eagers.
1667 	 * Instead wait for the eagers outside the squeue.
1668 	 *
1669 	 * For non-STREAMS sockets tcp_wait_for_eagers implies that
1670 	 * we should delay the su_closed upcall until all eagers have
1671 	 * dropped their references.
1672 	 */
1673 	if (!tcp->tcp_wait_for_eagers) {
1674 		tcp->tcp_detached = B_TRUE;
1675 		connp->conn_rq = NULL;
1676 		connp->conn_wq = NULL;
1677 
1678 		/* non-STREAM socket, release the upper handle */
1679 		if (IPCL_IS_NONSTR(connp)) {
1680 			ASSERT(connp->conn_upper_handle != NULL);
1681 			(*connp->conn_upcalls->su_closed)
1682 			    (connp->conn_upper_handle);
1683 			connp->conn_upper_handle = NULL;
1684 			connp->conn_upcalls = NULL;
1685 		}
1686 	}
1687 
1688 	/* Signal tcp_close() to finish closing. */
1689 	mutex_enter(&tcp->tcp_closelock);
1690 	tcp->tcp_closed = 1;
1691 	cv_signal(&tcp->tcp_closecv);
1692 	mutex_exit(&tcp->tcp_closelock);
1693 }
1694 
1695 /* ARGSUSED */
1696 void
1697 tcp_shutdown_output(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
1698 {
1699 	conn_t 	*connp = (conn_t *)arg;
1700 	tcp_t	*tcp = connp->conn_tcp;
1701 
1702 	freemsg(mp);
1703 
1704 	if (tcp->tcp_fused)
1705 		tcp_unfuse(tcp);
1706 
1707 	if (tcp_xmit_end(tcp) != 0) {
1708 		/*
1709 		 * We were crossing FINs and got a reset from
1710 		 * the other side. Just ignore it.
1711 		 */
1712 		if (connp->conn_debug) {
1713 			(void) strlog(TCP_MOD_ID, 0, 1,
1714 			    SL_ERROR|SL_TRACE,
1715 			    "tcp_shutdown_output() out of state %s",
1716 			    tcp_display(tcp, NULL, DISP_ADDR_AND_PORT));
1717 		}
1718 	}
1719 }
1720 
1721 #pragma inline(tcp_send_data)
1722 
1723 void
1724 tcp_send_data(tcp_t *tcp, mblk_t *mp)
1725 {
1726 	conn_t		*connp = tcp->tcp_connp;
1727 
1728 	/*
1729 	 * Check here to avoid sending zero-copy message down to IP when
1730 	 * ZEROCOPY capability has turned off. We only need to deal with
1731 	 * the race condition between sockfs and the notification here.
1732 	 * Since we have tried to backoff the tcp_xmit_head when turning
1733 	 * zero-copy off and new messages in tcp_output(), we simply drop
1734 	 * the dup'ed packet here and let tcp retransmit, if tcp_xmit_zc_clean
1735 	 * is not true.
1736 	 */
1737 	if (tcp->tcp_snd_zcopy_aware && !tcp->tcp_snd_zcopy_on &&
1738 	    !tcp->tcp_xmit_zc_clean) {
1739 		ip_drop_output("TCP ZC was disabled but not clean", mp, NULL);
1740 		freemsg(mp);
1741 		return;
1742 	}
1743 
1744 	DTRACE_TCP5(send, mblk_t *, NULL, ip_xmit_attr_t *, connp->conn_ixa,
1745 	    __dtrace_tcp_void_ip_t *, mp->b_rptr, tcp_t *, tcp,
1746 	    __dtrace_tcp_tcph_t *,
1747 	    &mp->b_rptr[connp->conn_ixa->ixa_ip_hdr_length]);
1748 
1749 	ASSERT(connp->conn_ixa->ixa_notify_cookie == connp->conn_tcp);
1750 	(void) conn_ip_output(mp, connp->conn_ixa);
1751 }
1752 
1753 /* ARGSUSED2 */
1754 void
1755 tcp_send_synack(void *arg, mblk_t *mp, void *arg2, ip_recv_attr_t *dummy)
1756 {
1757 	conn_t	*econnp = (conn_t *)arg;
1758 	tcp_t	*tcp = econnp->conn_tcp;
1759 	ip_xmit_attr_t *ixa = econnp->conn_ixa;
1760 
1761 	/* Guard against a RST having blown it away while on the squeue */
1762 	if (tcp->tcp_state == TCPS_CLOSED) {
1763 		freemsg(mp);
1764 		return;
1765 	}
1766 
1767 	/*
1768 	 * In the off-chance that the eager received and responded to
1769 	 * some other packet while the SYN|ACK was queued, we recalculate
1770 	 * the ixa_pktlen. It would be better to fix the SYN/accept
1771 	 * multithreading scheme to avoid this complexity.
1772 	 */
1773 	ixa->ixa_pktlen = msgdsize(mp);
1774 	(void) conn_ip_output(mp, ixa);
1775 }
1776 
1777 /*
1778  * tcp_send() is called by tcp_wput_data() and returns one of the following:
1779  *
1780  * -1 = failed allocation.
1781  *  0 = success; burst count reached, or usable send window is too small,
1782  *      and that we'd rather wait until later before sending again.
1783  */
1784 static int
1785 tcp_send(tcp_t *tcp, const int mss, const int total_hdr_len,
1786     const int tcp_hdr_len, const int num_sack_blk, int *usable,
1787     uint_t *snxt, int *tail_unsent, mblk_t **xmit_tail, mblk_t *local_time)
1788 {
1789 	int		num_burst_seg = tcp->tcp_snd_burst;
1790 	int		num_lso_seg = 1;
1791 	uint_t		lso_usable;
1792 	boolean_t	do_lso_send = B_FALSE;
1793 	tcp_stack_t	*tcps = tcp->tcp_tcps;
1794 	conn_t		*connp = tcp->tcp_connp;
1795 	ip_xmit_attr_t	*ixa = connp->conn_ixa;
1796 
1797 	/*
1798 	 * Check LSO possibility. The value of tcp->tcp_lso indicates whether
1799 	 * the underlying connection is LSO capable. Will check whether having
1800 	 * enough available data to initiate LSO transmission in the for(){}
1801 	 * loops.
1802 	 */
1803 	if (tcp->tcp_lso && (tcp->tcp_valid_bits & ~TCP_FSS_VALID) == 0)
1804 		do_lso_send = B_TRUE;
1805 
1806 	for (;;) {
1807 		struct datab	*db;
1808 		tcpha_t		*tcpha;
1809 		uint32_t	sum;
1810 		mblk_t		*mp, *mp1;
1811 		uchar_t		*rptr;
1812 		int		len;
1813 
1814 		/*
1815 		 * Burst count reached, return successfully.
1816 		 */
1817 		if (num_burst_seg == 0)
1818 			break;
1819 
1820 		/*
1821 		 * Calculate the maximum payload length we can send at one
1822 		 * time.
1823 		 */
1824 		if (do_lso_send) {
1825 			/*
1826 			 * Check whether be able to to do LSO for the current
1827 			 * available data.
1828 			 */
1829 			if (num_burst_seg >= 2 && (*usable - 1) / mss >= 1) {
1830 				lso_usable = MIN(tcp->tcp_lso_max, *usable);
1831 				lso_usable = MIN(lso_usable,
1832 				    num_burst_seg * mss);
1833 
1834 				num_lso_seg = lso_usable / mss;
1835 				if (lso_usable % mss) {
1836 					num_lso_seg++;
1837 					tcp->tcp_last_sent_len = (ushort_t)
1838 					    (lso_usable % mss);
1839 				} else {
1840 					tcp->tcp_last_sent_len = (ushort_t)mss;
1841 				}
1842 			} else {
1843 				do_lso_send = B_FALSE;
1844 				num_lso_seg = 1;
1845 				lso_usable = mss;
1846 			}
1847 		}
1848 
1849 		ASSERT(num_lso_seg <= IP_MAXPACKET / mss + 1);
1850 #ifdef DEBUG
1851 		DTRACE_PROBE2(tcp_send_lso, int, num_lso_seg, boolean_t,
1852 		    do_lso_send);
1853 #endif
1854 		/*
1855 		 * Adjust num_burst_seg here.
1856 		 */
1857 		num_burst_seg -= num_lso_seg;
1858 
1859 		len = mss;
1860 		if (len > *usable) {
1861 			ASSERT(do_lso_send == B_FALSE);
1862 
1863 			len = *usable;
1864 			if (len <= 0) {
1865 				/* Terminate the loop */
1866 				break;	/* success; too small */
1867 			}
1868 			/*
1869 			 * Sender silly-window avoidance.
1870 			 * Ignore this if we are going to send a
1871 			 * zero window probe out.
1872 			 *
1873 			 * TODO: force data into microscopic window?
1874 			 *	==> (!pushed || (unsent > usable))
1875 			 */
1876 			if (len < (tcp->tcp_max_swnd >> 1) &&
1877 			    (tcp->tcp_unsent - (*snxt - tcp->tcp_snxt)) > len &&
1878 			    !((tcp->tcp_valid_bits & TCP_URG_VALID) &&
1879 			    len == 1) && (! tcp->tcp_zero_win_probe)) {
1880 				/*
1881 				 * If the retransmit timer is not running
1882 				 * we start it so that we will retransmit
1883 				 * in the case when the receiver has
1884 				 * decremented the window.
1885 				 */
1886 				if (*snxt == tcp->tcp_snxt &&
1887 				    *snxt == tcp->tcp_suna) {
1888 					/*
1889 					 * We are not supposed to send
1890 					 * anything.  So let's wait a little
1891 					 * bit longer before breaking SWS
1892 					 * avoidance.
1893 					 *
1894 					 * What should the value be?
1895 					 * Suggestion: MAX(init rexmit time,
1896 					 * tcp->tcp_rto)
1897 					 */
1898 					TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
1899 				}
1900 				break;	/* success; too small */
1901 			}
1902 		}
1903 
1904 		tcpha = tcp->tcp_tcpha;
1905 
1906 		/*
1907 		 * The reason to adjust len here is that we need to set flags
1908 		 * and calculate checksum.
1909 		 */
1910 		if (do_lso_send)
1911 			len = lso_usable;
1912 
1913 		*usable -= len; /* Approximate - can be adjusted later */
1914 		if (*usable > 0)
1915 			tcpha->tha_flags = TH_ACK;
1916 		else
1917 			tcpha->tha_flags = (TH_ACK | TH_PUSH);
1918 
1919 		/*
1920 		 * Prime pump for IP's checksumming on our behalf.
1921 		 * Include the adjustment for a source route if any.
1922 		 * In case of LSO, the partial pseudo-header checksum should
1923 		 * exclusive TCP length, so zero tha_sum before IP calculate
1924 		 * pseudo-header checksum for partial checksum offload.
1925 		 */
1926 		if (do_lso_send) {
1927 			sum = 0;
1928 		} else {
1929 			sum = len + tcp_hdr_len + connp->conn_sum;
1930 			sum = (sum >> 16) + (sum & 0xFFFF);
1931 		}
1932 		tcpha->tha_sum = htons(sum);
1933 		tcpha->tha_seq = htonl(*snxt);
1934 
1935 		/*
1936 		 * Branch off to tcp_xmit_mp() if any of the VALID bits is
1937 		 * set.  For the case when TCP_FSS_VALID is the only valid
1938 		 * bit (normal active close), branch off only when we think
1939 		 * that the FIN flag needs to be set.  Note for this case,
1940 		 * that (snxt + len) may not reflect the actual seg_len,
1941 		 * as len may be further reduced in tcp_xmit_mp().  If len
1942 		 * gets modified, we will end up here again.
1943 		 */
1944 		if (tcp->tcp_valid_bits != 0 &&
1945 		    (tcp->tcp_valid_bits != TCP_FSS_VALID ||
1946 		    ((*snxt + len) == tcp->tcp_fss))) {
1947 			uchar_t		*prev_rptr;
1948 			uint32_t	prev_snxt = tcp->tcp_snxt;
1949 
1950 			if (*tail_unsent == 0) {
1951 				ASSERT((*xmit_tail)->b_cont != NULL);
1952 				*xmit_tail = (*xmit_tail)->b_cont;
1953 				prev_rptr = (*xmit_tail)->b_rptr;
1954 				*tail_unsent = (int)((*xmit_tail)->b_wptr -
1955 				    (*xmit_tail)->b_rptr);
1956 			} else {
1957 				prev_rptr = (*xmit_tail)->b_rptr;
1958 				(*xmit_tail)->b_rptr = (*xmit_tail)->b_wptr -
1959 				    *tail_unsent;
1960 			}
1961 			mp = tcp_xmit_mp(tcp, *xmit_tail, len, NULL, NULL,
1962 			    *snxt, B_FALSE, (uint32_t *)&len, B_FALSE);
1963 			/* Restore tcp_snxt so we get amount sent right. */
1964 			tcp->tcp_snxt = prev_snxt;
1965 			if (prev_rptr == (*xmit_tail)->b_rptr) {
1966 				/*
1967 				 * If the previous timestamp is still in use,
1968 				 * don't stomp on it.
1969 				 */
1970 				if ((*xmit_tail)->b_next == NULL) {
1971 					(*xmit_tail)->b_prev = local_time;
1972 					(*xmit_tail)->b_next =
1973 					    (mblk_t *)(uintptr_t)(*snxt);
1974 				}
1975 			} else
1976 				(*xmit_tail)->b_rptr = prev_rptr;
1977 
1978 			if (mp == NULL) {
1979 				return (-1);
1980 			}
1981 			mp1 = mp->b_cont;
1982 
1983 			if (len <= mss) /* LSO is unusable (!do_lso_send) */
1984 				tcp->tcp_last_sent_len = (ushort_t)len;
1985 			while (mp1->b_cont) {
1986 				*xmit_tail = (*xmit_tail)->b_cont;
1987 				(*xmit_tail)->b_prev = local_time;
1988 				(*xmit_tail)->b_next =
1989 				    (mblk_t *)(uintptr_t)(*snxt);
1990 				mp1 = mp1->b_cont;
1991 			}
1992 			*snxt += len;
1993 			*tail_unsent = (*xmit_tail)->b_wptr - mp1->b_wptr;
1994 			BUMP_LOCAL(tcp->tcp_obsegs);
1995 			TCPS_BUMP_MIB(tcps, tcpOutDataSegs);
1996 			TCPS_UPDATE_MIB(tcps, tcpOutDataBytes, len);
1997 			tcp_send_data(tcp, mp);
1998 			continue;
1999 		}
2000 
2001 		*snxt += len;	/* Adjust later if we don't send all of len */
2002 		TCPS_BUMP_MIB(tcps, tcpOutDataSegs);
2003 		TCPS_UPDATE_MIB(tcps, tcpOutDataBytes, len);
2004 
2005 		if (*tail_unsent) {
2006 			/* Are the bytes above us in flight? */
2007 			rptr = (*xmit_tail)->b_wptr - *tail_unsent;
2008 			if (rptr != (*xmit_tail)->b_rptr) {
2009 				*tail_unsent -= len;
2010 				if (len <= mss) /* LSO is unusable */
2011 					tcp->tcp_last_sent_len = (ushort_t)len;
2012 				len += total_hdr_len;
2013 				ixa->ixa_pktlen = len;
2014 
2015 				if (ixa->ixa_flags & IXAF_IS_IPV4) {
2016 					tcp->tcp_ipha->ipha_length = htons(len);
2017 				} else {
2018 					tcp->tcp_ip6h->ip6_plen =
2019 					    htons(len - IPV6_HDR_LEN);
2020 				}
2021 
2022 				mp = dupb(*xmit_tail);
2023 				if (mp == NULL) {
2024 					return (-1);	/* out_of_mem */
2025 				}
2026 				mp->b_rptr = rptr;
2027 				/*
2028 				 * If the old timestamp is no longer in use,
2029 				 * sample a new timestamp now.
2030 				 */
2031 				if ((*xmit_tail)->b_next == NULL) {
2032 					(*xmit_tail)->b_prev = local_time;
2033 					(*xmit_tail)->b_next =
2034 					    (mblk_t *)(uintptr_t)(*snxt-len);
2035 				}
2036 				goto must_alloc;
2037 			}
2038 		} else {
2039 			*xmit_tail = (*xmit_tail)->b_cont;
2040 			ASSERT((uintptr_t)((*xmit_tail)->b_wptr -
2041 			    (*xmit_tail)->b_rptr) <= (uintptr_t)INT_MAX);
2042 			*tail_unsent = (int)((*xmit_tail)->b_wptr -
2043 			    (*xmit_tail)->b_rptr);
2044 		}
2045 
2046 		(*xmit_tail)->b_prev = local_time;
2047 		(*xmit_tail)->b_next = (mblk_t *)(uintptr_t)(*snxt - len);
2048 
2049 		*tail_unsent -= len;
2050 		if (len <= mss) /* LSO is unusable (!do_lso_send) */
2051 			tcp->tcp_last_sent_len = (ushort_t)len;
2052 
2053 		len += total_hdr_len;
2054 		ixa->ixa_pktlen = len;
2055 
2056 		if (ixa->ixa_flags & IXAF_IS_IPV4) {
2057 			tcp->tcp_ipha->ipha_length = htons(len);
2058 		} else {
2059 			tcp->tcp_ip6h->ip6_plen = htons(len - IPV6_HDR_LEN);
2060 		}
2061 
2062 		mp = dupb(*xmit_tail);
2063 		if (mp == NULL) {
2064 			return (-1);	/* out_of_mem */
2065 		}
2066 
2067 		len = total_hdr_len;
2068 		/*
2069 		 * There are four reasons to allocate a new hdr mblk:
2070 		 *  1) The bytes above us are in use by another packet
2071 		 *  2) We don't have good alignment
2072 		 *  3) The mblk is being shared
2073 		 *  4) We don't have enough room for a header
2074 		 */
2075 		rptr = mp->b_rptr - len;
2076 		if (!OK_32PTR(rptr) ||
2077 		    ((db = mp->b_datap), db->db_ref != 2) ||
2078 		    rptr < db->db_base) {
2079 			/* NOTE: we assume allocb returns an OK_32PTR */
2080 
2081 		must_alloc:;
2082 			mp1 = allocb(connp->conn_ht_iphc_allocated +
2083 			    tcps->tcps_wroff_xtra, BPRI_MED);
2084 			if (mp1 == NULL) {
2085 				freemsg(mp);
2086 				return (-1);	/* out_of_mem */
2087 			}
2088 			mp1->b_cont = mp;
2089 			mp = mp1;
2090 			/* Leave room for Link Level header */
2091 			len = total_hdr_len;
2092 			rptr = &mp->b_rptr[tcps->tcps_wroff_xtra];
2093 			mp->b_wptr = &rptr[len];
2094 		}
2095 
2096 		/*
2097 		 * Fill in the header using the template header, and add
2098 		 * options such as time-stamp, ECN and/or SACK, as needed.
2099 		 */
2100 		tcp_fill_header(tcp, rptr, (clock_t)local_time, num_sack_blk);
2101 
2102 		mp->b_rptr = rptr;
2103 
2104 		if (*tail_unsent) {
2105 			int spill = *tail_unsent;
2106 
2107 			mp1 = mp->b_cont;
2108 			if (mp1 == NULL)
2109 				mp1 = mp;
2110 
2111 			/*
2112 			 * If we're a little short, tack on more mblks until
2113 			 * there is no more spillover.
2114 			 */
2115 			while (spill < 0) {
2116 				mblk_t *nmp;
2117 				int nmpsz;
2118 
2119 				nmp = (*xmit_tail)->b_cont;
2120 				nmpsz = MBLKL(nmp);
2121 
2122 				/*
2123 				 * Excess data in mblk; can we split it?
2124 				 * If LSO is enabled for the connection,
2125 				 * keep on splitting as this is a transient
2126 				 * send path.
2127 				 */
2128 				if (!do_lso_send && (spill + nmpsz > 0)) {
2129 					/*
2130 					 * Don't split if stream head was
2131 					 * told to break up larger writes
2132 					 * into smaller ones.
2133 					 */
2134 					if (tcp->tcp_maxpsz_multiplier > 0)
2135 						break;
2136 
2137 					/*
2138 					 * Next mblk is less than SMSS/2
2139 					 * rounded up to nearest 64-byte;
2140 					 * let it get sent as part of the
2141 					 * next segment.
2142 					 */
2143 					if (tcp->tcp_localnet &&
2144 					    !tcp->tcp_cork &&
2145 					    (nmpsz < roundup((mss >> 1), 64)))
2146 						break;
2147 				}
2148 
2149 				*xmit_tail = nmp;
2150 				ASSERT((uintptr_t)nmpsz <= (uintptr_t)INT_MAX);
2151 				/* Stash for rtt use later */
2152 				(*xmit_tail)->b_prev = local_time;
2153 				(*xmit_tail)->b_next =
2154 				    (mblk_t *)(uintptr_t)(*snxt - len);
2155 				mp1->b_cont = dupb(*xmit_tail);
2156 				mp1 = mp1->b_cont;
2157 
2158 				spill += nmpsz;
2159 				if (mp1 == NULL) {
2160 					*tail_unsent = spill;
2161 					freemsg(mp);
2162 					return (-1);	/* out_of_mem */
2163 				}
2164 			}
2165 
2166 			/* Trim back any surplus on the last mblk */
2167 			if (spill >= 0) {
2168 				mp1->b_wptr -= spill;
2169 				*tail_unsent = spill;
2170 			} else {
2171 				/*
2172 				 * We did not send everything we could in
2173 				 * order to remain within the b_cont limit.
2174 				 */
2175 				*usable -= spill;
2176 				*snxt += spill;
2177 				tcp->tcp_last_sent_len += spill;
2178 				TCPS_UPDATE_MIB(tcps, tcpOutDataBytes, spill);
2179 				/*
2180 				 * Adjust the checksum
2181 				 */
2182 				tcpha = (tcpha_t *)(rptr +
2183 				    ixa->ixa_ip_hdr_length);
2184 				sum += spill;
2185 				sum = (sum >> 16) + (sum & 0xFFFF);
2186 				tcpha->tha_sum = htons(sum);
2187 				if (connp->conn_ipversion == IPV4_VERSION) {
2188 					sum = ntohs(
2189 					    ((ipha_t *)rptr)->ipha_length) +
2190 					    spill;
2191 					((ipha_t *)rptr)->ipha_length =
2192 					    htons(sum);
2193 				} else {
2194 					sum = ntohs(
2195 					    ((ip6_t *)rptr)->ip6_plen) +
2196 					    spill;
2197 					((ip6_t *)rptr)->ip6_plen =
2198 					    htons(sum);
2199 				}
2200 				ixa->ixa_pktlen += spill;
2201 				*tail_unsent = 0;
2202 			}
2203 		}
2204 		if (tcp->tcp_ip_forward_progress) {
2205 			tcp->tcp_ip_forward_progress = B_FALSE;
2206 			ixa->ixa_flags |= IXAF_REACH_CONF;
2207 		} else {
2208 			ixa->ixa_flags &= ~IXAF_REACH_CONF;
2209 		}
2210 
2211 		if (do_lso_send) {
2212 			/* Append LSO information to the mp. */
2213 			lso_info_set(mp, mss, HW_LSO);
2214 			ixa->ixa_fragsize = IP_MAXPACKET;
2215 			ixa->ixa_extra_ident = num_lso_seg - 1;
2216 
2217 			DTRACE_PROBE2(tcp_send_lso, int, num_lso_seg,
2218 			    boolean_t, B_TRUE);
2219 
2220 			tcp_send_data(tcp, mp);
2221 
2222 			/*
2223 			 * Restore values of ixa_fragsize and ixa_extra_ident.
2224 			 */
2225 			ixa->ixa_fragsize = ixa->ixa_pmtu;
2226 			ixa->ixa_extra_ident = 0;
2227 			tcp->tcp_obsegs += num_lso_seg;
2228 			TCP_STAT(tcps, tcp_lso_times);
2229 			TCP_STAT_UPDATE(tcps, tcp_lso_pkt_out, num_lso_seg);
2230 		} else {
2231 			/*
2232 			 * Make sure to clean up LSO information. Wherever a
2233 			 * new mp uses the prepended header room after dupb(),
2234 			 * lso_info_cleanup() should be called.
2235 			 */
2236 			lso_info_cleanup(mp);
2237 			tcp_send_data(tcp, mp);
2238 			BUMP_LOCAL(tcp->tcp_obsegs);
2239 		}
2240 	}
2241 
2242 	return (0);
2243 }
2244 
2245 /*
2246  * Initiate closedown sequence on an active connection.  (May be called as
2247  * writer.)  Return value zero for OK return, non-zero for error return.
2248  */
2249 static int
2250 tcp_xmit_end(tcp_t *tcp)
2251 {
2252 	mblk_t		*mp;
2253 	tcp_stack_t	*tcps = tcp->tcp_tcps;
2254 	iulp_t		uinfo;
2255 	ip_stack_t	*ipst = tcps->tcps_netstack->netstack_ip;
2256 	conn_t		*connp = tcp->tcp_connp;
2257 
2258 	if (tcp->tcp_state < TCPS_SYN_RCVD ||
2259 	    tcp->tcp_state > TCPS_CLOSE_WAIT) {
2260 		/*
2261 		 * Invalid state, only states TCPS_SYN_RCVD,
2262 		 * TCPS_ESTABLISHED and TCPS_CLOSE_WAIT are valid
2263 		 */
2264 		return (-1);
2265 	}
2266 
2267 	tcp->tcp_fss = tcp->tcp_snxt + tcp->tcp_unsent;
2268 	tcp->tcp_valid_bits |= TCP_FSS_VALID;
2269 	/*
2270 	 * If there is nothing more unsent, send the FIN now.
2271 	 * Otherwise, it will go out with the last segment.
2272 	 */
2273 	if (tcp->tcp_unsent == 0) {
2274 		mp = tcp_xmit_mp(tcp, NULL, 0, NULL, NULL,
2275 		    tcp->tcp_fss, B_FALSE, NULL, B_FALSE);
2276 
2277 		if (mp) {
2278 			tcp_send_data(tcp, mp);
2279 		} else {
2280 			/*
2281 			 * Couldn't allocate msg.  Pretend we got it out.
2282 			 * Wait for rexmit timeout.
2283 			 */
2284 			tcp->tcp_snxt = tcp->tcp_fss + 1;
2285 			TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
2286 		}
2287 
2288 		/*
2289 		 * If needed, update tcp_rexmit_snxt as tcp_snxt is
2290 		 * changed.
2291 		 */
2292 		if (tcp->tcp_rexmit && tcp->tcp_rexmit_nxt == tcp->tcp_fss) {
2293 			tcp->tcp_rexmit_nxt = tcp->tcp_snxt;
2294 		}
2295 	} else {
2296 		/*
2297 		 * If tcp->tcp_cork is set, then the data will not get sent,
2298 		 * so we have to check that and unset it first.
2299 		 */
2300 		if (tcp->tcp_cork)
2301 			tcp->tcp_cork = B_FALSE;
2302 		tcp_wput_data(tcp, NULL, B_FALSE);
2303 	}
2304 
2305 	/*
2306 	 * If TCP does not get enough samples of RTT or tcp_rtt_updates
2307 	 * is 0, don't update the cache.
2308 	 */
2309 	if (tcps->tcps_rtt_updates == 0 ||
2310 	    tcp->tcp_rtt_update < tcps->tcps_rtt_updates)
2311 		return (0);
2312 
2313 	/*
2314 	 * We do not have a good algorithm to update ssthresh at this time.
2315 	 * So don't do any update.
2316 	 */
2317 	bzero(&uinfo, sizeof (uinfo));
2318 	uinfo.iulp_rtt = tcp->tcp_rtt_sa;
2319 	uinfo.iulp_rtt_sd = tcp->tcp_rtt_sd;
2320 
2321 	/*
2322 	 * Note that uinfo is kept for conn_faddr in the DCE. Could update even
2323 	 * if source routed but we don't.
2324 	 */
2325 	if (connp->conn_ipversion == IPV4_VERSION) {
2326 		if (connp->conn_faddr_v4 !=  tcp->tcp_ipha->ipha_dst) {
2327 			return (0);
2328 		}
2329 		(void) dce_update_uinfo_v4(connp->conn_faddr_v4, &uinfo, ipst);
2330 	} else {
2331 		uint_t ifindex;
2332 
2333 		if (!(IN6_ARE_ADDR_EQUAL(&connp->conn_faddr_v6,
2334 		    &tcp->tcp_ip6h->ip6_dst))) {
2335 			return (0);
2336 		}
2337 		ifindex = 0;
2338 		if (IN6_IS_ADDR_LINKSCOPE(&connp->conn_faddr_v6)) {
2339 			ip_xmit_attr_t *ixa = connp->conn_ixa;
2340 
2341 			/*
2342 			 * If we are going to create a DCE we'd better have
2343 			 * an ifindex
2344 			 */
2345 			if (ixa->ixa_nce != NULL) {
2346 				ifindex = ixa->ixa_nce->nce_common->ncec_ill->
2347 				    ill_phyint->phyint_ifindex;
2348 			} else {
2349 				return (0);
2350 			}
2351 		}
2352 
2353 		(void) dce_update_uinfo(&connp->conn_faddr_v6, ifindex, &uinfo,
2354 		    ipst);
2355 	}
2356 	return (0);
2357 }
2358 
2359 /*
2360  * Send out a control packet on the tcp connection specified.  This routine
2361  * is typically called where we need a simple ACK or RST generated.
2362  */
2363 void
2364 tcp_xmit_ctl(char *str, tcp_t *tcp, uint32_t seq, uint32_t ack, int ctl)
2365 {
2366 	uchar_t		*rptr;
2367 	tcpha_t		*tcpha;
2368 	ipha_t		*ipha = NULL;
2369 	ip6_t		*ip6h = NULL;
2370 	uint32_t	sum;
2371 	int		total_hdr_len;
2372 	int		ip_hdr_len;
2373 	mblk_t		*mp;
2374 	tcp_stack_t	*tcps = tcp->tcp_tcps;
2375 	conn_t		*connp = tcp->tcp_connp;
2376 	ip_xmit_attr_t	*ixa = connp->conn_ixa;
2377 
2378 	/*
2379 	 * Save sum for use in source route later.
2380 	 */
2381 	sum = connp->conn_ht_ulp_len + connp->conn_sum;
2382 	total_hdr_len = connp->conn_ht_iphc_len;
2383 	ip_hdr_len = ixa->ixa_ip_hdr_length;
2384 
2385 	/* If a text string is passed in with the request, pass it to strlog. */
2386 	if (str != NULL && connp->conn_debug) {
2387 		(void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE,
2388 		    "tcp_xmit_ctl: '%s', seq 0x%x, ack 0x%x, ctl 0x%x",
2389 		    str, seq, ack, ctl);
2390 	}
2391 	mp = allocb(connp->conn_ht_iphc_allocated + tcps->tcps_wroff_xtra,
2392 	    BPRI_MED);
2393 	if (mp == NULL) {
2394 		return;
2395 	}
2396 	rptr = &mp->b_rptr[tcps->tcps_wroff_xtra];
2397 	mp->b_rptr = rptr;
2398 	mp->b_wptr = &rptr[total_hdr_len];
2399 	bcopy(connp->conn_ht_iphc, rptr, total_hdr_len);
2400 
2401 	ixa->ixa_pktlen = total_hdr_len;
2402 
2403 	if (ixa->ixa_flags & IXAF_IS_IPV4) {
2404 		ipha = (ipha_t *)rptr;
2405 		ipha->ipha_length = htons(total_hdr_len);
2406 	} else {
2407 		ip6h = (ip6_t *)rptr;
2408 		ip6h->ip6_plen = htons(total_hdr_len - IPV6_HDR_LEN);
2409 	}
2410 	tcpha = (tcpha_t *)&rptr[ip_hdr_len];
2411 	tcpha->tha_flags = (uint8_t)ctl;
2412 	if (ctl & TH_RST) {
2413 		TCPS_BUMP_MIB(tcps, tcpOutRsts);
2414 		TCPS_BUMP_MIB(tcps, tcpOutControl);
2415 		/*
2416 		 * Don't send TSopt w/ TH_RST packets per RFC 1323.
2417 		 */
2418 		if (tcp->tcp_snd_ts_ok &&
2419 		    tcp->tcp_state > TCPS_SYN_SENT) {
2420 			mp->b_wptr = &rptr[total_hdr_len - TCPOPT_REAL_TS_LEN];
2421 			*(mp->b_wptr) = TCPOPT_EOL;
2422 
2423 			ixa->ixa_pktlen = total_hdr_len - TCPOPT_REAL_TS_LEN;
2424 
2425 			if (connp->conn_ipversion == IPV4_VERSION) {
2426 				ipha->ipha_length = htons(total_hdr_len -
2427 				    TCPOPT_REAL_TS_LEN);
2428 			} else {
2429 				ip6h->ip6_plen = htons(total_hdr_len -
2430 				    IPV6_HDR_LEN - TCPOPT_REAL_TS_LEN);
2431 			}
2432 			tcpha->tha_offset_and_reserved -= (3 << 4);
2433 			sum -= TCPOPT_REAL_TS_LEN;
2434 		}
2435 	}
2436 	if (ctl & TH_ACK) {
2437 		if (tcp->tcp_snd_ts_ok) {
2438 			uint32_t llbolt = (uint32_t)LBOLT_FASTPATH;
2439 
2440 			U32_TO_BE32(llbolt,
2441 			    (char *)tcpha + TCP_MIN_HEADER_LENGTH+4);
2442 			U32_TO_BE32(tcp->tcp_ts_recent,
2443 			    (char *)tcpha + TCP_MIN_HEADER_LENGTH+8);
2444 		}
2445 
2446 		/* Update the latest receive window size in TCP header. */
2447 		tcpha->tha_win = htons(tcp->tcp_rwnd >> tcp->tcp_rcv_ws);
2448 		/* Track what we sent to the peer */
2449 		tcp->tcp_tcpha->tha_win = tcpha->tha_win;
2450 		tcp->tcp_rack = ack;
2451 		tcp->tcp_rack_cnt = 0;
2452 		TCPS_BUMP_MIB(tcps, tcpOutAck);
2453 	}
2454 	BUMP_LOCAL(tcp->tcp_obsegs);
2455 	tcpha->tha_seq = htonl(seq);
2456 	tcpha->tha_ack = htonl(ack);
2457 	/*
2458 	 * Include the adjustment for a source route if any.
2459 	 */
2460 	sum = (sum >> 16) + (sum & 0xFFFF);
2461 	tcpha->tha_sum = htons(sum);
2462 	tcp_send_data(tcp, mp);
2463 }
2464 
2465 /*
2466  * Generate a reset based on an inbound packet, connp is set by caller
2467  * when RST is in response to an unexpected inbound packet for which
2468  * there is active tcp state in the system.
2469  *
2470  * IPSEC NOTE : Try to send the reply with the same protection as it came
2471  * in.  We have the ip_recv_attr_t which is reversed to form the ip_xmit_attr_t.
2472  * That way the packet will go out at the same level of protection as it
2473  * came in with.
2474  */
2475 static void
2476 tcp_xmit_early_reset(char *str, mblk_t *mp, uint32_t seq, uint32_t ack, int ctl,
2477     ip_recv_attr_t *ira, ip_stack_t *ipst, conn_t *connp)
2478 {
2479 	ipha_t		*ipha = NULL;
2480 	ip6_t		*ip6h = NULL;
2481 	ushort_t	len;
2482 	tcpha_t		*tcpha;
2483 	int		i;
2484 	ipaddr_t	v4addr;
2485 	in6_addr_t	v6addr;
2486 	netstack_t	*ns = ipst->ips_netstack;
2487 	tcp_stack_t	*tcps = ns->netstack_tcp;
2488 	ip_xmit_attr_t	ixas, *ixa;
2489 	uint_t		ip_hdr_len = ira->ira_ip_hdr_length;
2490 	boolean_t	need_refrele = B_FALSE;		/* ixa_refrele(ixa) */
2491 	ushort_t	port;
2492 
2493 	if (!tcp_send_rst_chk(tcps)) {
2494 		TCP_STAT(tcps, tcp_rst_unsent);
2495 		freemsg(mp);
2496 		return;
2497 	}
2498 
2499 	/*
2500 	 * If connp != NULL we use conn_ixa to keep IP_NEXTHOP and other
2501 	 * options from the listener. In that case the caller must ensure that
2502 	 * we are running on the listener = connp squeue.
2503 	 *
2504 	 * We get a safe copy of conn_ixa so we don't need to restore anything
2505 	 * we or ip_output_simple might change in the ixa.
2506 	 */
2507 	if (connp != NULL) {
2508 		ASSERT(connp->conn_on_sqp);
2509 
2510 		ixa = conn_get_ixa_exclusive(connp);
2511 		if (ixa == NULL) {
2512 			TCP_STAT(tcps, tcp_rst_unsent);
2513 			freemsg(mp);
2514 			return;
2515 		}
2516 		need_refrele = B_TRUE;
2517 	} else {
2518 		bzero(&ixas, sizeof (ixas));
2519 		ixa = &ixas;
2520 		/*
2521 		 * IXAF_VERIFY_SOURCE is overkill since we know the
2522 		 * packet was for us.
2523 		 */
2524 		ixa->ixa_flags |= IXAF_SET_ULP_CKSUM | IXAF_VERIFY_SOURCE;
2525 		ixa->ixa_protocol = IPPROTO_TCP;
2526 		ixa->ixa_zoneid = ira->ira_zoneid;
2527 		ixa->ixa_ifindex = 0;
2528 		ixa->ixa_ipst = ipst;
2529 		ixa->ixa_cred = kcred;
2530 		ixa->ixa_cpid = NOPID;
2531 	}
2532 
2533 	if (str && tcps->tcps_dbg) {
2534 		(void) strlog(TCP_MOD_ID, 0, 1, SL_TRACE,
2535 		    "tcp_xmit_early_reset: '%s', seq 0x%x, ack 0x%x, "
2536 		    "flags 0x%x",
2537 		    str, seq, ack, ctl);
2538 	}
2539 	if (mp->b_datap->db_ref != 1) {
2540 		mblk_t *mp1 = copyb(mp);
2541 		freemsg(mp);
2542 		mp = mp1;
2543 		if (mp == NULL)
2544 			goto done;
2545 	} else if (mp->b_cont) {
2546 		freemsg(mp->b_cont);
2547 		mp->b_cont = NULL;
2548 		DB_CKSUMFLAGS(mp) = 0;
2549 	}
2550 	/*
2551 	 * We skip reversing source route here.
2552 	 * (for now we replace all IP options with EOL)
2553 	 */
2554 	if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) {
2555 		ipha = (ipha_t *)mp->b_rptr;
2556 		for (i = IP_SIMPLE_HDR_LENGTH; i < (int)ip_hdr_len; i++)
2557 			mp->b_rptr[i] = IPOPT_EOL;
2558 		/*
2559 		 * Make sure that src address isn't flagrantly invalid.
2560 		 * Not all broadcast address checking for the src address
2561 		 * is possible, since we don't know the netmask of the src
2562 		 * addr.  No check for destination address is done, since
2563 		 * IP will not pass up a packet with a broadcast dest
2564 		 * address to TCP.  Similar checks are done below for IPv6.
2565 		 */
2566 		if (ipha->ipha_src == 0 || ipha->ipha_src == INADDR_BROADCAST ||
2567 		    CLASSD(ipha->ipha_src)) {
2568 			BUMP_MIB(&ipst->ips_ip_mib, ipIfStatsInDiscards);
2569 			ip_drop_input("ipIfStatsInDiscards", mp, NULL);
2570 			freemsg(mp);
2571 			goto done;
2572 		}
2573 	} else {
2574 		ip6h = (ip6_t *)mp->b_rptr;
2575 
2576 		if (IN6_IS_ADDR_UNSPECIFIED(&ip6h->ip6_src) ||
2577 		    IN6_IS_ADDR_MULTICAST(&ip6h->ip6_src)) {
2578 			BUMP_MIB(&ipst->ips_ip6_mib, ipIfStatsInDiscards);
2579 			ip_drop_input("ipIfStatsInDiscards", mp, NULL);
2580 			freemsg(mp);
2581 			goto done;
2582 		}
2583 
2584 		/* Remove any extension headers assuming partial overlay */
2585 		if (ip_hdr_len > IPV6_HDR_LEN) {
2586 			uint8_t *to;
2587 
2588 			to = mp->b_rptr + ip_hdr_len - IPV6_HDR_LEN;
2589 			ovbcopy(ip6h, to, IPV6_HDR_LEN);
2590 			mp->b_rptr += ip_hdr_len - IPV6_HDR_LEN;
2591 			ip_hdr_len = IPV6_HDR_LEN;
2592 			ip6h = (ip6_t *)mp->b_rptr;
2593 			ip6h->ip6_nxt = IPPROTO_TCP;
2594 		}
2595 	}
2596 	tcpha = (tcpha_t *)&mp->b_rptr[ip_hdr_len];
2597 	if (tcpha->tha_flags & TH_RST) {
2598 		freemsg(mp);
2599 		goto done;
2600 	}
2601 	tcpha->tha_offset_and_reserved = (5 << 4);
2602 	len = ip_hdr_len + sizeof (tcpha_t);
2603 	mp->b_wptr = &mp->b_rptr[len];
2604 	if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) {
2605 		ipha->ipha_length = htons(len);
2606 		/* Swap addresses */
2607 		v4addr = ipha->ipha_src;
2608 		ipha->ipha_src = ipha->ipha_dst;
2609 		ipha->ipha_dst = v4addr;
2610 		ipha->ipha_ident = 0;
2611 		ipha->ipha_ttl = (uchar_t)tcps->tcps_ipv4_ttl;
2612 		ixa->ixa_flags |= IXAF_IS_IPV4;
2613 		ixa->ixa_ip_hdr_length = ip_hdr_len;
2614 	} else {
2615 		ip6h->ip6_plen = htons(len - IPV6_HDR_LEN);
2616 		/* Swap addresses */
2617 		v6addr = ip6h->ip6_src;
2618 		ip6h->ip6_src = ip6h->ip6_dst;
2619 		ip6h->ip6_dst = v6addr;
2620 		ip6h->ip6_hops = (uchar_t)tcps->tcps_ipv6_hoplimit;
2621 		ixa->ixa_flags &= ~IXAF_IS_IPV4;
2622 
2623 		if (IN6_IS_ADDR_LINKSCOPE(&ip6h->ip6_dst)) {
2624 			ixa->ixa_flags |= IXAF_SCOPEID_SET;
2625 			ixa->ixa_scopeid = ira->ira_ruifindex;
2626 		}
2627 		ixa->ixa_ip_hdr_length = IPV6_HDR_LEN;
2628 	}
2629 	ixa->ixa_pktlen = len;
2630 
2631 	/* Swap the ports */
2632 	port = tcpha->tha_fport;
2633 	tcpha->tha_fport = tcpha->tha_lport;
2634 	tcpha->tha_lport = port;
2635 
2636 	tcpha->tha_ack = htonl(ack);
2637 	tcpha->tha_seq = htonl(seq);
2638 	tcpha->tha_win = 0;
2639 	tcpha->tha_sum = htons(sizeof (tcpha_t));
2640 	tcpha->tha_flags = (uint8_t)ctl;
2641 	if (ctl & TH_RST) {
2642 		if (ctl & TH_ACK) {
2643 			/*
2644 			 * Probe connection rejection here.
2645 			 * tcp_xmit_listeners_reset() drops non-SYN segments
2646 			 * that do not specify TH_ACK in their flags without
2647 			 * calling this function.  As a consequence, if this
2648 			 * function is called with a TH_RST|TH_ACK ctl argument,
2649 			 * it is being called in response to a SYN segment
2650 			 * and thus the tcp:::accept-refused probe point
2651 			 * is valid here.
2652 			 */
2653 			DTRACE_TCP5(accept__refused, mblk_t *, NULL,
2654 			    void, NULL, void_ip_t *, mp->b_rptr, tcp_t *, NULL,
2655 			    tcph_t *, tcpha);
2656 		}
2657 		TCPS_BUMP_MIB(tcps, tcpOutRsts);
2658 		TCPS_BUMP_MIB(tcps, tcpOutControl);
2659 	}
2660 
2661 	/* Discard any old label */
2662 	if (ixa->ixa_free_flags & IXA_FREE_TSL) {
2663 		ASSERT(ixa->ixa_tsl != NULL);
2664 		label_rele(ixa->ixa_tsl);
2665 		ixa->ixa_free_flags &= ~IXA_FREE_TSL;
2666 	}
2667 	ixa->ixa_tsl = ira->ira_tsl;	/* Behave as a multi-level responder */
2668 
2669 	if (ira->ira_flags & IRAF_IPSEC_SECURE) {
2670 		/*
2671 		 * Apply IPsec based on how IPsec was applied to
2672 		 * the packet that caused the RST.
2673 		 */
2674 		if (!ipsec_in_to_out(ira, ixa, mp, ipha, ip6h)) {
2675 			BUMP_MIB(&ipst->ips_ip_mib, ipIfStatsOutDiscards);
2676 			/* Note: mp already consumed and ip_drop_packet done */
2677 			goto done;
2678 		}
2679 	} else {
2680 		/*
2681 		 * This is in clear. The RST message we are building
2682 		 * here should go out in clear, independent of our policy.
2683 		 */
2684 		ixa->ixa_flags |= IXAF_NO_IPSEC;
2685 	}
2686 
2687 	DTRACE_TCP5(send, mblk_t *, NULL, ip_xmit_attr_t *, ixa,
2688 	    __dtrace_tcp_void_ip_t *, mp->b_rptr, tcp_t *, NULL,
2689 	    __dtrace_tcp_tcph_t *, tcpha);
2690 
2691 	/*
2692 	 * NOTE:  one might consider tracing a TCP packet here, but
2693 	 * this function has no active TCP state and no tcp structure
2694 	 * that has a trace buffer.  If we traced here, we would have
2695 	 * to keep a local trace buffer in tcp_record_trace().
2696 	 */
2697 
2698 	(void) ip_output_simple(mp, ixa);
2699 done:
2700 	ixa_cleanup(ixa);
2701 	if (need_refrele) {
2702 		ASSERT(ixa != &ixas);
2703 		ixa_refrele(ixa);
2704 	}
2705 }
2706 
2707 /*
2708  * Generate a "no listener here" RST in response to an "unknown" segment.
2709  * connp is set by caller when RST is in response to an unexpected
2710  * inbound packet for which there is active tcp state in the system.
2711  * Note that we are reusing the incoming mp to construct the outgoing RST.
2712  */
2713 void
2714 tcp_xmit_listeners_reset(mblk_t *mp, ip_recv_attr_t *ira, ip_stack_t *ipst,
2715     conn_t *connp)
2716 {
2717 	uchar_t		*rptr;
2718 	uint32_t	seg_len;
2719 	tcpha_t		*tcpha;
2720 	uint32_t	seg_seq;
2721 	uint32_t	seg_ack;
2722 	uint_t		flags;
2723 	ipha_t 		*ipha;
2724 	ip6_t 		*ip6h;
2725 	boolean_t	policy_present;
2726 	netstack_t	*ns = ipst->ips_netstack;
2727 	tcp_stack_t	*tcps = ns->netstack_tcp;
2728 	ipsec_stack_t	*ipss = tcps->tcps_netstack->netstack_ipsec;
2729 	uint_t		ip_hdr_len = ira->ira_ip_hdr_length;
2730 
2731 	TCP_STAT(tcps, tcp_no_listener);
2732 
2733 	/*
2734 	 * DTrace this "unknown" segment as a tcp:::receive, as we did
2735 	 * just receive something that was TCP.
2736 	 */
2737 	DTRACE_TCP5(receive, mblk_t *, NULL, ip_xmit_attr_t *, NULL,
2738 	    __dtrace_tcp_void_ip_t *, mp->b_rptr, tcp_t *, NULL,
2739 	    __dtrace_tcp_tcph_t *, &mp->b_rptr[ip_hdr_len]);
2740 
2741 	if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) {
2742 		policy_present = ipss->ipsec_inbound_v4_policy_present;
2743 		ipha = (ipha_t *)mp->b_rptr;
2744 		ip6h = NULL;
2745 	} else {
2746 		policy_present = ipss->ipsec_inbound_v6_policy_present;
2747 		ipha = NULL;
2748 		ip6h = (ip6_t *)mp->b_rptr;
2749 	}
2750 
2751 	if (policy_present) {
2752 		/*
2753 		 * The conn_t parameter is NULL because we already know
2754 		 * nobody's home.
2755 		 */
2756 		mp = ipsec_check_global_policy(mp, (conn_t *)NULL, ipha, ip6h,
2757 		    ira, ns);
2758 		if (mp == NULL)
2759 			return;
2760 	}
2761 	if (is_system_labeled() && !tsol_can_reply_error(mp, ira)) {
2762 		DTRACE_PROBE2(
2763 		    tx__ip__log__error__nolistener__tcp,
2764 		    char *, "Could not reply with RST to mp(1)",
2765 		    mblk_t *, mp);
2766 		ip2dbg(("tcp_xmit_listeners_reset: not permitted to reply\n"));
2767 		freemsg(mp);
2768 		return;
2769 	}
2770 
2771 	rptr = mp->b_rptr;
2772 
2773 	tcpha = (tcpha_t *)&rptr[ip_hdr_len];
2774 	seg_seq = ntohl(tcpha->tha_seq);
2775 	seg_ack = ntohl(tcpha->tha_ack);
2776 	flags = tcpha->tha_flags;
2777 
2778 	seg_len = msgdsize(mp) - (TCP_HDR_LENGTH(tcpha) + ip_hdr_len);
2779 	if (flags & TH_RST) {
2780 		freemsg(mp);
2781 	} else if (flags & TH_ACK) {
2782 		tcp_xmit_early_reset("no tcp, reset", mp, seg_ack, 0, TH_RST,
2783 		    ira, ipst, connp);
2784 	} else {
2785 		if (flags & TH_SYN) {
2786 			seg_len++;
2787 		} else {
2788 			/*
2789 			 * Here we violate the RFC.  Note that a normal
2790 			 * TCP will never send a segment without the ACK
2791 			 * flag, except for RST or SYN segment.  This
2792 			 * segment is neither.  Just drop it on the
2793 			 * floor.
2794 			 */
2795 			freemsg(mp);
2796 			TCP_STAT(tcps, tcp_rst_unsent);
2797 			return;
2798 		}
2799 
2800 		tcp_xmit_early_reset("no tcp, reset/ack", mp, 0,
2801 		    seg_seq + seg_len, TH_RST | TH_ACK, ira, ipst, connp);
2802 	}
2803 }
2804 
2805 /*
2806  * tcp_xmit_mp is called to return a pointer to an mblk chain complete with
2807  * ip and tcp header ready to pass down to IP.  If the mp passed in is
2808  * non-NULL, then up to max_to_send bytes of data will be dup'ed off that
2809  * mblk. (If sendall is not set the dup'ing will stop at an mblk boundary
2810  * otherwise it will dup partial mblks.)
2811  * Otherwise, an appropriate ACK packet will be generated.  This
2812  * routine is not usually called to send new data for the first time.  It
2813  * is mostly called out of the timer for retransmits, and to generate ACKs.
2814  *
2815  * If offset is not NULL, the returned mblk chain's first mblk's b_rptr will
2816  * be adjusted by *offset.  And after dupb(), the offset and the ending mblk
2817  * of the original mblk chain will be returned in *offset and *end_mp.
2818  */
2819 mblk_t *
2820 tcp_xmit_mp(tcp_t *tcp, mblk_t *mp, int32_t max_to_send, int32_t *offset,
2821     mblk_t **end_mp, uint32_t seq, boolean_t sendall, uint32_t *seg_len,
2822     boolean_t rexmit)
2823 {
2824 	int	data_length;
2825 	int32_t	off = 0;
2826 	uint_t	flags;
2827 	mblk_t	*mp1;
2828 	mblk_t	*mp2;
2829 	uchar_t	*rptr;
2830 	tcpha_t	*tcpha;
2831 	int32_t	num_sack_blk = 0;
2832 	int32_t	sack_opt_len = 0;
2833 	tcp_stack_t	*tcps = tcp->tcp_tcps;
2834 	conn_t		*connp = tcp->tcp_connp;
2835 	ip_xmit_attr_t	*ixa = connp->conn_ixa;
2836 
2837 	/* Allocate for our maximum TCP header + link-level */
2838 	mp1 = allocb(connp->conn_ht_iphc_allocated + tcps->tcps_wroff_xtra,
2839 	    BPRI_MED);
2840 	if (!mp1)
2841 		return (NULL);
2842 	data_length = 0;
2843 
2844 	/*
2845 	 * Note that tcp_mss has been adjusted to take into account the
2846 	 * timestamp option if applicable.  Because SACK options do not
2847 	 * appear in every TCP segments and they are of variable lengths,
2848 	 * they cannot be included in tcp_mss.  Thus we need to calculate
2849 	 * the actual segment length when we need to send a segment which
2850 	 * includes SACK options.
2851 	 */
2852 	if (tcp->tcp_snd_sack_ok && tcp->tcp_num_sack_blk > 0) {
2853 		num_sack_blk = MIN(tcp->tcp_max_sack_blk,
2854 		    tcp->tcp_num_sack_blk);
2855 		sack_opt_len = num_sack_blk * sizeof (sack_blk_t) +
2856 		    TCPOPT_NOP_LEN * 2 + TCPOPT_HEADER_LEN;
2857 		if (max_to_send + sack_opt_len > tcp->tcp_mss)
2858 			max_to_send -= sack_opt_len;
2859 	}
2860 
2861 	if (offset != NULL) {
2862 		off = *offset;
2863 		/* We use offset as an indicator that end_mp is not NULL. */
2864 		*end_mp = NULL;
2865 	}
2866 	for (mp2 = mp1; mp && data_length != max_to_send; mp = mp->b_cont) {
2867 		/* This could be faster with cooperation from downstream */
2868 		if (mp2 != mp1 && !sendall &&
2869 		    data_length + (int)(mp->b_wptr - mp->b_rptr) >
2870 		    max_to_send)
2871 			/*
2872 			 * Don't send the next mblk since the whole mblk
2873 			 * does not fit.
2874 			 */
2875 			break;
2876 		mp2->b_cont = dupb(mp);
2877 		mp2 = mp2->b_cont;
2878 		if (!mp2) {
2879 			freemsg(mp1);
2880 			return (NULL);
2881 		}
2882 		mp2->b_rptr += off;
2883 		ASSERT((uintptr_t)(mp2->b_wptr - mp2->b_rptr) <=
2884 		    (uintptr_t)INT_MAX);
2885 
2886 		data_length += (int)(mp2->b_wptr - mp2->b_rptr);
2887 		if (data_length > max_to_send) {
2888 			mp2->b_wptr -= data_length - max_to_send;
2889 			data_length = max_to_send;
2890 			off = mp2->b_wptr - mp->b_rptr;
2891 			break;
2892 		} else {
2893 			off = 0;
2894 		}
2895 	}
2896 	if (offset != NULL) {
2897 		*offset = off;
2898 		*end_mp = mp;
2899 	}
2900 	if (seg_len != NULL) {
2901 		*seg_len = data_length;
2902 	}
2903 
2904 	/* Update the latest receive window size in TCP header. */
2905 	tcp->tcp_tcpha->tha_win = htons(tcp->tcp_rwnd >> tcp->tcp_rcv_ws);
2906 
2907 	rptr = mp1->b_rptr + tcps->tcps_wroff_xtra;
2908 	mp1->b_rptr = rptr;
2909 	mp1->b_wptr = rptr + connp->conn_ht_iphc_len + sack_opt_len;
2910 	bcopy(connp->conn_ht_iphc, rptr, connp->conn_ht_iphc_len);
2911 	tcpha = (tcpha_t *)&rptr[ixa->ixa_ip_hdr_length];
2912 	tcpha->tha_seq = htonl(seq);
2913 
2914 	/*
2915 	 * Use tcp_unsent to determine if the PUSH bit should be used assumes
2916 	 * that this function was called from tcp_wput_data. Thus, when called
2917 	 * to retransmit data the setting of the PUSH bit may appear some
2918 	 * what random in that it might get set when it should not. This
2919 	 * should not pose any performance issues.
2920 	 */
2921 	if (data_length != 0 && (tcp->tcp_unsent == 0 ||
2922 	    tcp->tcp_unsent == data_length)) {
2923 		flags = TH_ACK | TH_PUSH;
2924 	} else {
2925 		flags = TH_ACK;
2926 	}
2927 
2928 	if (tcp->tcp_ecn_ok) {
2929 		if (tcp->tcp_ecn_echo_on)
2930 			flags |= TH_ECE;
2931 
2932 		/*
2933 		 * Only set ECT bit and ECN_CWR if a segment contains new data.
2934 		 * There is no TCP flow control for non-data segments, and
2935 		 * only data segment is transmitted reliably.
2936 		 */
2937 		if (data_length > 0 && !rexmit) {
2938 			TCP_SET_ECT(tcp, rptr);
2939 			if (tcp->tcp_cwr && !tcp->tcp_ecn_cwr_sent) {
2940 				flags |= TH_CWR;
2941 				tcp->tcp_ecn_cwr_sent = B_TRUE;
2942 			}
2943 		}
2944 	}
2945 
2946 	if (tcp->tcp_valid_bits) {
2947 		uint32_t u1;
2948 
2949 		if ((tcp->tcp_valid_bits & TCP_ISS_VALID) &&
2950 		    seq == tcp->tcp_iss) {
2951 			uchar_t	*wptr;
2952 
2953 			/*
2954 			 * If TCP_ISS_VALID and the seq number is tcp_iss,
2955 			 * TCP can only be in SYN-SENT, SYN-RCVD or
2956 			 * FIN-WAIT-1 state.  It can be FIN-WAIT-1 if
2957 			 * our SYN is not ack'ed but the app closes this
2958 			 * TCP connection.
2959 			 */
2960 			ASSERT(tcp->tcp_state == TCPS_SYN_SENT ||
2961 			    tcp->tcp_state == TCPS_SYN_RCVD ||
2962 			    tcp->tcp_state == TCPS_FIN_WAIT_1);
2963 
2964 			/*
2965 			 * Tack on the MSS option.  It is always needed
2966 			 * for both active and passive open.
2967 			 *
2968 			 * MSS option value should be interface MTU - MIN
2969 			 * TCP/IP header according to RFC 793 as it means
2970 			 * the maximum segment size TCP can receive.  But
2971 			 * to get around some broken middle boxes/end hosts
2972 			 * out there, we allow the option value to be the
2973 			 * same as the MSS option size on the peer side.
2974 			 * In this way, the other side will not send
2975 			 * anything larger than they can receive.
2976 			 *
2977 			 * Note that for SYN_SENT state, the ndd param
2978 			 * tcp_use_smss_as_mss_opt has no effect as we
2979 			 * don't know the peer's MSS option value. So
2980 			 * the only case we need to take care of is in
2981 			 * SYN_RCVD state, which is done later.
2982 			 */
2983 			wptr = mp1->b_wptr;
2984 			wptr[0] = TCPOPT_MAXSEG;
2985 			wptr[1] = TCPOPT_MAXSEG_LEN;
2986 			wptr += 2;
2987 			u1 = tcp->tcp_initial_pmtu -
2988 			    (connp->conn_ipversion == IPV4_VERSION ?
2989 			    IP_SIMPLE_HDR_LENGTH : IPV6_HDR_LEN) -
2990 			    TCP_MIN_HEADER_LENGTH;
2991 			U16_TO_BE16(u1, wptr);
2992 			mp1->b_wptr = wptr + 2;
2993 			/* Update the offset to cover the additional word */
2994 			tcpha->tha_offset_and_reserved += (1 << 4);
2995 
2996 			/*
2997 			 * Note that the following way of filling in
2998 			 * TCP options are not optimal.  Some NOPs can
2999 			 * be saved.  But there is no need at this time
3000 			 * to optimize it.  When it is needed, we will
3001 			 * do it.
3002 			 */
3003 			switch (tcp->tcp_state) {
3004 			case TCPS_SYN_SENT:
3005 				flags = TH_SYN;
3006 
3007 				if (tcp->tcp_snd_ts_ok) {
3008 					uint32_t llbolt =
3009 					    (uint32_t)LBOLT_FASTPATH;
3010 
3011 					wptr = mp1->b_wptr;
3012 					wptr[0] = TCPOPT_NOP;
3013 					wptr[1] = TCPOPT_NOP;
3014 					wptr[2] = TCPOPT_TSTAMP;
3015 					wptr[3] = TCPOPT_TSTAMP_LEN;
3016 					wptr += 4;
3017 					U32_TO_BE32(llbolt, wptr);
3018 					wptr += 4;
3019 					ASSERT(tcp->tcp_ts_recent == 0);
3020 					U32_TO_BE32(0L, wptr);
3021 					mp1->b_wptr += TCPOPT_REAL_TS_LEN;
3022 					tcpha->tha_offset_and_reserved +=
3023 					    (3 << 4);
3024 				}
3025 
3026 				/*
3027 				 * Set up all the bits to tell other side
3028 				 * we are ECN capable.
3029 				 */
3030 				if (tcp->tcp_ecn_ok) {
3031 					flags |= (TH_ECE | TH_CWR);
3032 				}
3033 				break;
3034 			case TCPS_SYN_RCVD:
3035 				flags |= TH_SYN;
3036 
3037 				/*
3038 				 * Reset the MSS option value to be SMSS
3039 				 * We should probably add back the bytes
3040 				 * for timestamp option and IPsec.  We
3041 				 * don't do that as this is a workaround
3042 				 * for broken middle boxes/end hosts, it
3043 				 * is better for us to be more cautious.
3044 				 * They may not take these things into
3045 				 * account in their SMSS calculation.  Thus
3046 				 * the peer's calculated SMSS may be smaller
3047 				 * than what it can be.  This should be OK.
3048 				 */
3049 				if (tcps->tcps_use_smss_as_mss_opt) {
3050 					u1 = tcp->tcp_mss;
3051 					U16_TO_BE16(u1, wptr);
3052 				}
3053 
3054 				/*
3055 				 * If the other side is ECN capable, reply
3056 				 * that we are also ECN capable.
3057 				 */
3058 				if (tcp->tcp_ecn_ok)
3059 					flags |= TH_ECE;
3060 				break;
3061 			default:
3062 				/*
3063 				 * The above ASSERT() makes sure that this
3064 				 * must be FIN-WAIT-1 state.  Our SYN has
3065 				 * not been ack'ed so retransmit it.
3066 				 */
3067 				flags |= TH_SYN;
3068 				break;
3069 			}
3070 
3071 			if (tcp->tcp_snd_ws_ok) {
3072 				wptr = mp1->b_wptr;
3073 				wptr[0] =  TCPOPT_NOP;
3074 				wptr[1] =  TCPOPT_WSCALE;
3075 				wptr[2] =  TCPOPT_WS_LEN;
3076 				wptr[3] = (uchar_t)tcp->tcp_rcv_ws;
3077 				mp1->b_wptr += TCPOPT_REAL_WS_LEN;
3078 				tcpha->tha_offset_and_reserved += (1 << 4);
3079 			}
3080 
3081 			if (tcp->tcp_snd_sack_ok) {
3082 				wptr = mp1->b_wptr;
3083 				wptr[0] = TCPOPT_NOP;
3084 				wptr[1] = TCPOPT_NOP;
3085 				wptr[2] = TCPOPT_SACK_PERMITTED;
3086 				wptr[3] = TCPOPT_SACK_OK_LEN;
3087 				mp1->b_wptr += TCPOPT_REAL_SACK_OK_LEN;
3088 				tcpha->tha_offset_and_reserved += (1 << 4);
3089 			}
3090 
3091 			/* allocb() of adequate mblk assures space */
3092 			ASSERT((uintptr_t)(mp1->b_wptr - mp1->b_rptr) <=
3093 			    (uintptr_t)INT_MAX);
3094 			u1 = (int)(mp1->b_wptr - mp1->b_rptr);
3095 			/*
3096 			 * Get IP set to checksum on our behalf
3097 			 * Include the adjustment for a source route if any.
3098 			 */
3099 			u1 += connp->conn_sum;
3100 			u1 = (u1 >> 16) + (u1 & 0xFFFF);
3101 			tcpha->tha_sum = htons(u1);
3102 			TCPS_BUMP_MIB(tcps, tcpOutControl);
3103 		}
3104 		if ((tcp->tcp_valid_bits & TCP_FSS_VALID) &&
3105 		    (seq + data_length) == tcp->tcp_fss) {
3106 			if (!tcp->tcp_fin_acked) {
3107 				flags |= TH_FIN;
3108 				TCPS_BUMP_MIB(tcps, tcpOutControl);
3109 			}
3110 			if (!tcp->tcp_fin_sent) {
3111 				tcp->tcp_fin_sent = B_TRUE;
3112 				switch (tcp->tcp_state) {
3113 				case TCPS_SYN_RCVD:
3114 					tcp->tcp_state = TCPS_FIN_WAIT_1;
3115 					DTRACE_TCP6(state__change, void, NULL,
3116 					    ip_xmit_attr_t *, ixa, void, NULL,
3117 					    tcp_t *, tcp, void, NULL,
3118 					    int32_t, TCPS_SYN_RCVD);
3119 					break;
3120 				case TCPS_ESTABLISHED:
3121 					tcp->tcp_state = TCPS_FIN_WAIT_1;
3122 					DTRACE_TCP6(state__change, void, NULL,
3123 					    ip_xmit_attr_t *, ixa, void, NULL,
3124 					    tcp_t *, tcp, void, NULL,
3125 					    int32_t, TCPS_ESTABLISHED);
3126 					break;
3127 				case TCPS_CLOSE_WAIT:
3128 					tcp->tcp_state = TCPS_LAST_ACK;
3129 					DTRACE_TCP6(state__change, void, NULL,
3130 					    ip_xmit_attr_t *, ixa, void, NULL,
3131 					    tcp_t *, tcp, void, NULL,
3132 					    int32_t, TCPS_CLOSE_WAIT);
3133 					break;
3134 				}
3135 				if (tcp->tcp_suna == tcp->tcp_snxt)
3136 					TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
3137 				tcp->tcp_snxt = tcp->tcp_fss + 1;
3138 			}
3139 		}
3140 		/*
3141 		 * Note the trick here.  u1 is unsigned.  When tcp_urg
3142 		 * is smaller than seq, u1 will become a very huge value.
3143 		 * So the comparison will fail.  Also note that tcp_urp
3144 		 * should be positive, see RFC 793 page 17.
3145 		 */
3146 		u1 = tcp->tcp_urg - seq + TCP_OLD_URP_INTERPRETATION;
3147 		if ((tcp->tcp_valid_bits & TCP_URG_VALID) && u1 != 0 &&
3148 		    u1 < (uint32_t)(64 * 1024)) {
3149 			flags |= TH_URG;
3150 			TCPS_BUMP_MIB(tcps, tcpOutUrg);
3151 			tcpha->tha_urp = htons(u1);
3152 		}
3153 	}
3154 	tcpha->tha_flags = (uchar_t)flags;
3155 	tcp->tcp_rack = tcp->tcp_rnxt;
3156 	tcp->tcp_rack_cnt = 0;
3157 
3158 	if (tcp->tcp_snd_ts_ok) {
3159 		if (tcp->tcp_state != TCPS_SYN_SENT) {
3160 			uint32_t llbolt = (uint32_t)LBOLT_FASTPATH;
3161 
3162 			U32_TO_BE32(llbolt,
3163 			    (char *)tcpha + TCP_MIN_HEADER_LENGTH+4);
3164 			U32_TO_BE32(tcp->tcp_ts_recent,
3165 			    (char *)tcpha + TCP_MIN_HEADER_LENGTH+8);
3166 		}
3167 	}
3168 
3169 	if (num_sack_blk > 0) {
3170 		uchar_t *wptr = (uchar_t *)tcpha + connp->conn_ht_ulp_len;
3171 		sack_blk_t *tmp;
3172 		int32_t	i;
3173 
3174 		wptr[0] = TCPOPT_NOP;
3175 		wptr[1] = TCPOPT_NOP;
3176 		wptr[2] = TCPOPT_SACK;
3177 		wptr[3] = TCPOPT_HEADER_LEN + num_sack_blk *
3178 		    sizeof (sack_blk_t);
3179 		wptr += TCPOPT_REAL_SACK_LEN;
3180 
3181 		tmp = tcp->tcp_sack_list;
3182 		for (i = 0; i < num_sack_blk; i++) {
3183 			U32_TO_BE32(tmp[i].begin, wptr);
3184 			wptr += sizeof (tcp_seq);
3185 			U32_TO_BE32(tmp[i].end, wptr);
3186 			wptr += sizeof (tcp_seq);
3187 		}
3188 		tcpha->tha_offset_and_reserved += ((num_sack_blk * 2 + 1) << 4);
3189 	}
3190 	ASSERT((uintptr_t)(mp1->b_wptr - rptr) <= (uintptr_t)INT_MAX);
3191 	data_length += (int)(mp1->b_wptr - rptr);
3192 
3193 	ixa->ixa_pktlen = data_length;
3194 
3195 	if (ixa->ixa_flags & IXAF_IS_IPV4) {
3196 		((ipha_t *)rptr)->ipha_length = htons(data_length);
3197 	} else {
3198 		ip6_t *ip6 = (ip6_t *)rptr;
3199 
3200 		ip6->ip6_plen = htons(data_length - IPV6_HDR_LEN);
3201 	}
3202 
3203 	/*
3204 	 * Prime pump for IP
3205 	 * Include the adjustment for a source route if any.
3206 	 */
3207 	data_length -= ixa->ixa_ip_hdr_length;
3208 	data_length += connp->conn_sum;
3209 	data_length = (data_length >> 16) + (data_length & 0xFFFF);
3210 	tcpha->tha_sum = htons(data_length);
3211 	if (tcp->tcp_ip_forward_progress) {
3212 		tcp->tcp_ip_forward_progress = B_FALSE;
3213 		connp->conn_ixa->ixa_flags |= IXAF_REACH_CONF;
3214 	} else {
3215 		connp->conn_ixa->ixa_flags &= ~IXAF_REACH_CONF;
3216 	}
3217 	return (mp1);
3218 }
3219 
3220 /*
3221  * If this routine returns B_TRUE, TCP can generate a RST in response
3222  * to a segment.  If it returns B_FALSE, TCP should not respond.
3223  */
3224 static boolean_t
3225 tcp_send_rst_chk(tcp_stack_t *tcps)
3226 {
3227 	int64_t	now;
3228 
3229 	/*
3230 	 * TCP needs to protect itself from generating too many RSTs.
3231 	 * This can be a DoS attack by sending us random segments
3232 	 * soliciting RSTs.
3233 	 *
3234 	 * What we do here is to have a limit of tcp_rst_sent_rate RSTs
3235 	 * in each 1 second interval.  In this way, TCP still generate
3236 	 * RSTs in normal cases but when under attack, the impact is
3237 	 * limited.
3238 	 */
3239 	if (tcps->tcps_rst_sent_rate_enabled != 0) {
3240 		now = ddi_get_lbolt64();
3241 		if (TICK_TO_MSEC(now - tcps->tcps_last_rst_intrvl) >
3242 		    1*SECONDS) {
3243 			tcps->tcps_last_rst_intrvl = now;
3244 			tcps->tcps_rst_cnt = 1;
3245 		} else if (++tcps->tcps_rst_cnt > tcps->tcps_rst_sent_rate) {
3246 			return (B_FALSE);
3247 		}
3248 	}
3249 	return (B_TRUE);
3250 }
3251 
3252 /*
3253  * This function handles all retransmissions if SACK is enabled for this
3254  * connection.  First it calculates how many segments can be retransmitted
3255  * based on tcp_pipe.  Then it goes thru the notsack list to find eligible
3256  * segments.  A segment is eligible if sack_cnt for that segment is greater
3257  * than or equal tcp_dupack_fast_retransmit.  After it has retransmitted
3258  * all eligible segments, it checks to see if TCP can send some new segments
3259  * (fast recovery).  If it can, set the appropriate flag for tcp_input_data().
3260  *
3261  * Parameters:
3262  *	tcp_t *tcp: the tcp structure of the connection.
3263  *	uint_t *flags: in return, appropriate value will be set for
3264  *	tcp_input_data().
3265  */
3266 void
3267 tcp_sack_rexmit(tcp_t *tcp, uint_t *flags)
3268 {
3269 	notsack_blk_t	*notsack_blk;
3270 	int32_t		usable_swnd;
3271 	int32_t		mss;
3272 	uint32_t	seg_len;
3273 	mblk_t		*xmit_mp;
3274 	tcp_stack_t	*tcps = tcp->tcp_tcps;
3275 
3276 	ASSERT(tcp->tcp_notsack_list != NULL);
3277 	ASSERT(tcp->tcp_rexmit == B_FALSE);
3278 
3279 	/* Defensive coding in case there is a bug... */
3280 	if (tcp->tcp_notsack_list == NULL) {
3281 		return;
3282 	}
3283 	notsack_blk = tcp->tcp_notsack_list;
3284 	mss = tcp->tcp_mss;
3285 
3286 	/*
3287 	 * Limit the num of outstanding data in the network to be
3288 	 * tcp_cwnd_ssthresh, which is half of the original congestion wnd.
3289 	 */
3290 	usable_swnd = tcp->tcp_cwnd_ssthresh - tcp->tcp_pipe;
3291 
3292 	/* At least retransmit 1 MSS of data. */
3293 	if (usable_swnd <= 0) {
3294 		usable_swnd = mss;
3295 	}
3296 
3297 	/* Make sure no new RTT samples will be taken. */
3298 	tcp->tcp_csuna = tcp->tcp_snxt;
3299 
3300 	notsack_blk = tcp->tcp_notsack_list;
3301 	while (usable_swnd > 0) {
3302 		mblk_t		*snxt_mp, *tmp_mp;
3303 		tcp_seq		begin = tcp->tcp_sack_snxt;
3304 		tcp_seq		end;
3305 		int32_t		off;
3306 
3307 		for (; notsack_blk != NULL; notsack_blk = notsack_blk->next) {
3308 			if (SEQ_GT(notsack_blk->end, begin) &&
3309 			    (notsack_blk->sack_cnt >=
3310 			    tcps->tcps_dupack_fast_retransmit)) {
3311 				end = notsack_blk->end;
3312 				if (SEQ_LT(begin, notsack_blk->begin)) {
3313 					begin = notsack_blk->begin;
3314 				}
3315 				break;
3316 			}
3317 		}
3318 		/*
3319 		 * All holes are filled.  Manipulate tcp_cwnd to send more
3320 		 * if we can.  Note that after the SACK recovery, tcp_cwnd is
3321 		 * set to tcp_cwnd_ssthresh.
3322 		 */
3323 		if (notsack_blk == NULL) {
3324 			usable_swnd = tcp->tcp_cwnd_ssthresh - tcp->tcp_pipe;
3325 			if (usable_swnd <= 0 || tcp->tcp_unsent == 0) {
3326 				tcp->tcp_cwnd = tcp->tcp_snxt - tcp->tcp_suna;
3327 				ASSERT(tcp->tcp_cwnd > 0);
3328 				return;
3329 			} else {
3330 				usable_swnd = usable_swnd / mss;
3331 				tcp->tcp_cwnd = tcp->tcp_snxt - tcp->tcp_suna +
3332 				    MAX(usable_swnd * mss, mss);
3333 				*flags |= TH_XMIT_NEEDED;
3334 				return;
3335 			}
3336 		}
3337 
3338 		/*
3339 		 * Note that we may send more than usable_swnd allows here
3340 		 * because of round off, but no more than 1 MSS of data.
3341 		 */
3342 		seg_len = end - begin;
3343 		if (seg_len > mss)
3344 			seg_len = mss;
3345 		snxt_mp = tcp_get_seg_mp(tcp, begin, &off);
3346 		ASSERT(snxt_mp != NULL);
3347 		/* This should not happen.  Defensive coding again... */
3348 		if (snxt_mp == NULL) {
3349 			return;
3350 		}
3351 
3352 		xmit_mp = tcp_xmit_mp(tcp, snxt_mp, seg_len, &off,
3353 		    &tmp_mp, begin, B_TRUE, &seg_len, B_TRUE);
3354 		if (xmit_mp == NULL)
3355 			return;
3356 
3357 		usable_swnd -= seg_len;
3358 		tcp->tcp_pipe += seg_len;
3359 		tcp->tcp_sack_snxt = begin + seg_len;
3360 
3361 		tcp_send_data(tcp, xmit_mp);
3362 
3363 		/*
3364 		 * Update the send timestamp to avoid false retransmission.
3365 		 */
3366 		snxt_mp->b_prev = (mblk_t *)ddi_get_lbolt();
3367 
3368 		TCPS_BUMP_MIB(tcps, tcpRetransSegs);
3369 		TCPS_UPDATE_MIB(tcps, tcpRetransBytes, seg_len);
3370 		TCPS_BUMP_MIB(tcps, tcpOutSackRetransSegs);
3371 		/*
3372 		 * Update tcp_rexmit_max to extend this SACK recovery phase.
3373 		 * This happens when new data sent during fast recovery is
3374 		 * also lost.  If TCP retransmits those new data, it needs
3375 		 * to extend SACK recover phase to avoid starting another
3376 		 * fast retransmit/recovery unnecessarily.
3377 		 */
3378 		if (SEQ_GT(tcp->tcp_sack_snxt, tcp->tcp_rexmit_max)) {
3379 			tcp->tcp_rexmit_max = tcp->tcp_sack_snxt;
3380 		}
3381 	}
3382 }
3383 
3384 /*
3385  * tcp_ss_rexmit() is called to do slow start retransmission after a timeout
3386  * or ICMP errors.
3387  *
3388  * To limit the number of duplicate segments, we limit the number of segment
3389  * to be sent in one time to tcp_snd_burst, the burst variable.
3390  */
3391 void
3392 tcp_ss_rexmit(tcp_t *tcp)
3393 {
3394 	uint32_t	snxt;
3395 	uint32_t	smax;
3396 	int32_t		win;
3397 	int32_t		mss;
3398 	int32_t		off;
3399 	int32_t		burst = tcp->tcp_snd_burst;
3400 	mblk_t		*snxt_mp;
3401 	tcp_stack_t	*tcps = tcp->tcp_tcps;
3402 
3403 	/*
3404 	 * Note that tcp_rexmit can be set even though TCP has retransmitted
3405 	 * all unack'ed segments.
3406 	 */
3407 	if (SEQ_LT(tcp->tcp_rexmit_nxt, tcp->tcp_rexmit_max)) {
3408 		smax = tcp->tcp_rexmit_max;
3409 		snxt = tcp->tcp_rexmit_nxt;
3410 		if (SEQ_LT(snxt, tcp->tcp_suna)) {
3411 			snxt = tcp->tcp_suna;
3412 		}
3413 		win = MIN(tcp->tcp_cwnd, tcp->tcp_swnd);
3414 		win -= snxt - tcp->tcp_suna;
3415 		mss = tcp->tcp_mss;
3416 		snxt_mp = tcp_get_seg_mp(tcp, snxt, &off);
3417 
3418 		while (SEQ_LT(snxt, smax) && (win > 0) &&
3419 		    (burst > 0) && (snxt_mp != NULL)) {
3420 			mblk_t	*xmit_mp;
3421 			mblk_t	*old_snxt_mp = snxt_mp;
3422 			uint32_t cnt = mss;
3423 
3424 			if (win < cnt) {
3425 				cnt = win;
3426 			}
3427 			if (SEQ_GT(snxt + cnt, smax)) {
3428 				cnt = smax - snxt;
3429 			}
3430 			xmit_mp = tcp_xmit_mp(tcp, snxt_mp, cnt, &off,
3431 			    &snxt_mp, snxt, B_TRUE, &cnt, B_TRUE);
3432 			if (xmit_mp == NULL)
3433 				return;
3434 
3435 			tcp_send_data(tcp, xmit_mp);
3436 
3437 			snxt += cnt;
3438 			win -= cnt;
3439 			/*
3440 			 * Update the send timestamp to avoid false
3441 			 * retransmission.
3442 			 */
3443 			old_snxt_mp->b_prev = (mblk_t *)ddi_get_lbolt();
3444 			TCPS_BUMP_MIB(tcps, tcpRetransSegs);
3445 			TCPS_UPDATE_MIB(tcps, tcpRetransBytes, cnt);
3446 
3447 			tcp->tcp_rexmit_nxt = snxt;
3448 			burst--;
3449 		}
3450 		/*
3451 		 * If we have transmitted all we have at the time
3452 		 * we started the retranmission, we can leave
3453 		 * the rest of the job to tcp_wput_data().  But we
3454 		 * need to check the send window first.  If the
3455 		 * win is not 0, go on with tcp_wput_data().
3456 		 */
3457 		if (SEQ_LT(snxt, smax) || win == 0) {
3458 			return;
3459 		}
3460 	}
3461 	/* Only call tcp_wput_data() if there is data to be sent. */
3462 	if (tcp->tcp_unsent) {
3463 		tcp_wput_data(tcp, NULL, B_FALSE);
3464 	}
3465 }
3466 
3467 /*
3468  * Do slow start retransmission after ICMP errors of PMTU changes.
3469  */
3470 void
3471 tcp_rexmit_after_error(tcp_t *tcp)
3472 {
3473 	/*
3474 	 * All sent data has been acknowledged or no data left to send, just
3475 	 * to return.
3476 	 */
3477 	if (!SEQ_LT(tcp->tcp_suna, tcp->tcp_snxt) ||
3478 	    (tcp->tcp_xmit_head == NULL))
3479 		return;
3480 
3481 	if ((tcp->tcp_valid_bits & TCP_FSS_VALID) && (tcp->tcp_unsent == 0))
3482 		tcp->tcp_rexmit_max = tcp->tcp_fss;
3483 	else
3484 		tcp->tcp_rexmit_max = tcp->tcp_snxt;
3485 
3486 	tcp->tcp_rexmit_nxt = tcp->tcp_suna;
3487 	tcp->tcp_rexmit = B_TRUE;
3488 	tcp->tcp_dupack_cnt = 0;
3489 	tcp->tcp_snd_burst = TCP_CWND_SS;
3490 	tcp_ss_rexmit(tcp);
3491 }
3492 
3493 /*
3494  * tcp_get_seg_mp() is called to get the pointer to a segment in the
3495  * send queue which starts at the given sequence number. If the given
3496  * sequence number is equal to last valid sequence number (tcp_snxt), the
3497  * returned mblk is the last valid mblk, and off is set to the length of
3498  * that mblk.
3499  *
3500  * send queue which starts at the given seq. no.
3501  *
3502  * Parameters:
3503  *	tcp_t *tcp: the tcp instance pointer.
3504  *	uint32_t seq: the starting seq. no of the requested segment.
3505  *	int32_t *off: after the execution, *off will be the offset to
3506  *		the returned mblk which points to the requested seq no.
3507  *		It is the caller's responsibility to send in a non-null off.
3508  *
3509  * Return:
3510  *	A mblk_t pointer pointing to the requested segment in send queue.
3511  */
3512 static mblk_t *
3513 tcp_get_seg_mp(tcp_t *tcp, uint32_t seq, int32_t *off)
3514 {
3515 	int32_t	cnt;
3516 	mblk_t	*mp;
3517 
3518 	/* Defensive coding.  Make sure we don't send incorrect data. */
3519 	if (SEQ_LT(seq, tcp->tcp_suna) || SEQ_GT(seq, tcp->tcp_snxt))
3520 		return (NULL);
3521 
3522 	cnt = seq - tcp->tcp_suna;
3523 	mp = tcp->tcp_xmit_head;
3524 	while (cnt > 0 && mp != NULL) {
3525 		cnt -= mp->b_wptr - mp->b_rptr;
3526 		if (cnt <= 0) {
3527 			cnt += mp->b_wptr - mp->b_rptr;
3528 			break;
3529 		}
3530 		mp = mp->b_cont;
3531 	}
3532 	ASSERT(mp != NULL);
3533 	*off = cnt;
3534 	return (mp);
3535 }
3536 
3537 /*
3538  * This routine adjusts next-to-send sequence number variables, in the
3539  * case where the reciever has shrunk it's window.
3540  */
3541 void
3542 tcp_update_xmit_tail(tcp_t *tcp, uint32_t snxt)
3543 {
3544 	mblk_t *xmit_tail;
3545 	int32_t offset;
3546 
3547 	tcp->tcp_snxt = snxt;
3548 
3549 	/* Get the mblk, and the offset in it, as per the shrunk window */
3550 	xmit_tail = tcp_get_seg_mp(tcp, snxt, &offset);
3551 	ASSERT(xmit_tail != NULL);
3552 	tcp->tcp_xmit_tail = xmit_tail;
3553 	tcp->tcp_xmit_tail_unsent = xmit_tail->b_wptr -
3554 	    xmit_tail->b_rptr - offset;
3555 }
3556 
3557 /*
3558  * This handles the case when the receiver has shrunk its win. Per RFC 1122
3559  * if the receiver shrinks the window, i.e. moves the right window to the
3560  * left, the we should not send new data, but should retransmit normally the
3561  * old unacked data between suna and suna + swnd. We might has sent data
3562  * that is now outside the new window, pretend that we didn't send  it.
3563  */
3564 static void
3565 tcp_process_shrunk_swnd(tcp_t *tcp, uint32_t shrunk_count)
3566 {
3567 	uint32_t	snxt = tcp->tcp_snxt;
3568 
3569 	ASSERT(shrunk_count > 0);
3570 
3571 	if (!tcp->tcp_is_wnd_shrnk) {
3572 		tcp->tcp_snxt_shrunk = snxt;
3573 		tcp->tcp_is_wnd_shrnk = B_TRUE;
3574 	} else if (SEQ_GT(snxt, tcp->tcp_snxt_shrunk)) {
3575 		tcp->tcp_snxt_shrunk = snxt;
3576 	}
3577 
3578 	/* Pretend we didn't send the data outside the window */
3579 	snxt -= shrunk_count;
3580 
3581 	/* Reset all the values per the now shrunk window */
3582 	tcp_update_xmit_tail(tcp, snxt);
3583 	tcp->tcp_unsent += shrunk_count;
3584 
3585 	/*
3586 	 * If the SACK option is set, delete the entire list of
3587 	 * notsack'ed blocks.
3588 	 */
3589 	TCP_NOTSACK_REMOVE_ALL(tcp->tcp_notsack_list, tcp);
3590 
3591 	if (tcp->tcp_suna == tcp->tcp_snxt && tcp->tcp_swnd == 0)
3592 		/*
3593 		 * Make sure the timer is running so that we will probe a zero
3594 		 * window.
3595 		 */
3596 		TCP_TIMER_RESTART(tcp, tcp->tcp_rto);
3597 }
3598 
3599 /*
3600  * tcp_fill_header is called by tcp_send() to fill the outgoing TCP header
3601  * with the template header, as well as other options such as time-stamp,
3602  * ECN and/or SACK.
3603  */
3604 static void
3605 tcp_fill_header(tcp_t *tcp, uchar_t *rptr, clock_t now, int num_sack_blk)
3606 {
3607 	tcpha_t *tcp_tmpl, *tcpha;
3608 	uint32_t *dst, *src;
3609 	int hdrlen;
3610 	conn_t *connp = tcp->tcp_connp;
3611 
3612 	ASSERT(OK_32PTR(rptr));
3613 
3614 	/* Template header */
3615 	tcp_tmpl = tcp->tcp_tcpha;
3616 
3617 	/* Header of outgoing packet */
3618 	tcpha = (tcpha_t *)(rptr + connp->conn_ixa->ixa_ip_hdr_length);
3619 
3620 	/* dst and src are opaque 32-bit fields, used for copying */
3621 	dst = (uint32_t *)rptr;
3622 	src = (uint32_t *)connp->conn_ht_iphc;
3623 	hdrlen = connp->conn_ht_iphc_len;
3624 
3625 	/* Fill time-stamp option if needed */
3626 	if (tcp->tcp_snd_ts_ok) {
3627 		U32_TO_BE32((uint32_t)now,
3628 		    (char *)tcp_tmpl + TCP_MIN_HEADER_LENGTH + 4);
3629 		U32_TO_BE32(tcp->tcp_ts_recent,
3630 		    (char *)tcp_tmpl + TCP_MIN_HEADER_LENGTH + 8);
3631 	} else {
3632 		ASSERT(connp->conn_ht_ulp_len == TCP_MIN_HEADER_LENGTH);
3633 	}
3634 
3635 	/*
3636 	 * Copy the template header; is this really more efficient than
3637 	 * calling bcopy()?  For simple IPv4/TCP, it may be the case,
3638 	 * but perhaps not for other scenarios.
3639 	 */
3640 	dst[0] = src[0];
3641 	dst[1] = src[1];
3642 	dst[2] = src[2];
3643 	dst[3] = src[3];
3644 	dst[4] = src[4];
3645 	dst[5] = src[5];
3646 	dst[6] = src[6];
3647 	dst[7] = src[7];
3648 	dst[8] = src[8];
3649 	dst[9] = src[9];
3650 	if (hdrlen -= 40) {
3651 		hdrlen >>= 2;
3652 		dst += 10;
3653 		src += 10;
3654 		do {
3655 			*dst++ = *src++;
3656 		} while (--hdrlen);
3657 	}
3658 
3659 	/*
3660 	 * Set the ECN info in the TCP header if it is not a zero
3661 	 * window probe.  Zero window probe is only sent in
3662 	 * tcp_wput_data() and tcp_timer().
3663 	 */
3664 	if (tcp->tcp_ecn_ok && !tcp->tcp_zero_win_probe) {
3665 		TCP_SET_ECT(tcp, rptr);
3666 
3667 		if (tcp->tcp_ecn_echo_on)
3668 			tcpha->tha_flags |= TH_ECE;
3669 		if (tcp->tcp_cwr && !tcp->tcp_ecn_cwr_sent) {
3670 			tcpha->tha_flags |= TH_CWR;
3671 			tcp->tcp_ecn_cwr_sent = B_TRUE;
3672 		}
3673 	}
3674 
3675 	/* Fill in SACK options */
3676 	if (num_sack_blk > 0) {
3677 		uchar_t *wptr = rptr + connp->conn_ht_iphc_len;
3678 		sack_blk_t *tmp;
3679 		int32_t	i;
3680 
3681 		wptr[0] = TCPOPT_NOP;
3682 		wptr[1] = TCPOPT_NOP;
3683 		wptr[2] = TCPOPT_SACK;
3684 		wptr[3] = TCPOPT_HEADER_LEN + num_sack_blk *
3685 		    sizeof (sack_blk_t);
3686 		wptr += TCPOPT_REAL_SACK_LEN;
3687 
3688 		tmp = tcp->tcp_sack_list;
3689 		for (i = 0; i < num_sack_blk; i++) {
3690 			U32_TO_BE32(tmp[i].begin, wptr);
3691 			wptr += sizeof (tcp_seq);
3692 			U32_TO_BE32(tmp[i].end, wptr);
3693 			wptr += sizeof (tcp_seq);
3694 		}
3695 		tcpha->tha_offset_and_reserved +=
3696 		    ((num_sack_blk * 2 + 1) << 4);
3697 	}
3698 }
3699