1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 1982, 1986, 1988, 1990, 1993, 1995
5 * The Regents of the University of California. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. Neither the name of the University nor the names of its contributors
16 * may be used to endorse or promote products derived from this software
17 * without specific prior written permission.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 * SUCH DAMAGE.
30 */
31
32 #include "opt_inet.h"
33 #include "opt_inet6.h"
34 #include "opt_ipsec.h"
35 #include "opt_kern_tls.h"
36
37 #include <sys/param.h>
38 #include <sys/systm.h>
39 #include <sys/arb.h>
40 #include <sys/callout.h>
41 #include <sys/eventhandler.h>
42 #ifdef TCP_HHOOK
43 #include <sys/hhook.h>
44 #endif
45 #include <sys/kernel.h>
46 #ifdef TCP_HHOOK
47 #include <sys/khelp.h>
48 #endif
49 #ifdef KERN_TLS
50 #include <sys/ktls.h>
51 #endif
52 #include <sys/qmath.h>
53 #include <sys/stats.h>
54 #include <sys/sysctl.h>
55 #include <sys/jail.h>
56 #include <sys/malloc.h>
57 #include <sys/refcount.h>
58 #include <sys/mbuf.h>
59 #include <sys/priv.h>
60 #include <sys/sdt.h>
61 #include <sys/socket.h>
62 #include <sys/socketvar.h>
63 #include <sys/protosw.h>
64 #include <sys/random.h>
65
66 #include <vm/uma.h>
67
68 #include <net/route.h>
69 #include <net/route/nhop.h>
70 #include <net/if.h>
71 #include <net/if_var.h>
72 #include <net/if_private.h>
73 #include <net/vnet.h>
74
75 #include <netinet/in.h>
76 #include <netinet/in_fib.h>
77 #include <netinet/in_kdtrace.h>
78 #include <netinet/in_pcb.h>
79 #include <netinet/in_systm.h>
80 #include <netinet/in_var.h>
81 #include <netinet/ip.h>
82 #include <netinet/ip_icmp.h>
83 #include <netinet/ip_var.h>
84 #include <netinet/icmp_var.h>
85 #ifdef INET6
86 #include <netinet/icmp6.h>
87 #include <netinet/ip6.h>
88 #include <netinet6/in6_fib.h>
89 #include <netinet6/in6_pcb.h>
90 #include <netinet6/ip6_var.h>
91 #include <netinet6/scope6_var.h>
92 #include <netinet6/nd6.h>
93 #endif
94
95 #include <netinet/tcp.h>
96 #ifdef INVARIANTS
97 #define TCPSTATES
98 #endif
99 #include <netinet/tcp_fsm.h>
100 #include <netinet/tcp_seq.h>
101 #include <netinet/tcp_timer.h>
102 #include <netinet/tcp_var.h>
103 #include <netinet/tcp_ecn.h>
104 #include <netinet/tcp_log_buf.h>
105 #include <netinet/tcp_syncache.h>
106 #include <netinet/tcp_hpts.h>
107 #include <netinet/tcp_lro.h>
108 #include <netinet/cc/cc.h>
109 #include <netinet/tcpip.h>
110 #include <netinet/tcp_fastopen.h>
111 #include <netinet/tcp_accounting.h>
112 #ifdef TCP_OFFLOAD
113 #include <netinet/tcp_offload.h>
114 #endif
115 #include <netinet/udp.h>
116 #include <netinet/udp_var.h>
117 #ifdef INET6
118 #include <netinet6/tcp6_var.h>
119 #endif
120
121 #include <netipsec/ipsec_support.h>
122
123 #include <machine/in_cksum.h>
124 #include <crypto/siphash/siphash.h>
125
126 #include <security/mac/mac_framework.h>
127
128 #ifdef INET6
129 static ip6proto_ctlinput_t tcp6_ctlinput;
130 static udp_tun_icmp_t tcp6_ctlinput_viaudp;
131 #endif
132
133 VNET_DEFINE(int, tcp_mssdflt) = TCP_MSS;
134 #ifdef INET6
135 VNET_DEFINE(int, tcp_v6mssdflt) = TCP6_MSS;
136 #endif
137
138 VNET_DEFINE(uint32_t, tcp_ack_war_time_window) = 1000;
139 SYSCTL_UINT(_net_inet_tcp, OID_AUTO, ack_war_timewindow,
140 CTLFLAG_VNET | CTLFLAG_RW, &VNET_NAME(tcp_ack_war_time_window), 0,
141 "Time interval in ms used to limit the number (ack_war_cnt) of challenge ACKs sent per TCP connection");
142 VNET_DEFINE(uint32_t, tcp_ack_war_cnt) = 5;
143 SYSCTL_UINT(_net_inet_tcp, OID_AUTO, ack_war_cnt, CTLFLAG_VNET | CTLFLAG_RW,
144 &VNET_NAME(tcp_ack_war_cnt), 0,
145 "Maximum number of challenge ACKs sent per TCP connection during the time interval (ack_war_timewindow)");
146
147 struct rwlock tcp_function_lock;
148
149 static int
sysctl_net_inet_tcp_mss_check(SYSCTL_HANDLER_ARGS)150 sysctl_net_inet_tcp_mss_check(SYSCTL_HANDLER_ARGS)
151 {
152 int error, new;
153
154 new = V_tcp_mssdflt;
155 error = sysctl_handle_int(oidp, &new, 0, req);
156 if (error == 0 && req->newptr) {
157 if (new < TCP_MINMSS)
158 error = EINVAL;
159 else
160 V_tcp_mssdflt = new;
161 }
162 return (error);
163 }
164
165 SYSCTL_PROC(_net_inet_tcp, TCPCTL_MSSDFLT, mssdflt,
166 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
167 &VNET_NAME(tcp_mssdflt), 0, &sysctl_net_inet_tcp_mss_check, "I",
168 "Default TCP Maximum Segment Size");
169
170 #ifdef INET6
171 static int
sysctl_net_inet_tcp_mss_v6_check(SYSCTL_HANDLER_ARGS)172 sysctl_net_inet_tcp_mss_v6_check(SYSCTL_HANDLER_ARGS)
173 {
174 int error, new;
175
176 new = V_tcp_v6mssdflt;
177 error = sysctl_handle_int(oidp, &new, 0, req);
178 if (error == 0 && req->newptr) {
179 if (new < TCP_MINMSS)
180 error = EINVAL;
181 else
182 V_tcp_v6mssdflt = new;
183 }
184 return (error);
185 }
186
187 SYSCTL_PROC(_net_inet_tcp, TCPCTL_V6MSSDFLT, v6mssdflt,
188 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
189 &VNET_NAME(tcp_v6mssdflt), 0, &sysctl_net_inet_tcp_mss_v6_check, "I",
190 "Default TCP Maximum Segment Size for IPv6");
191 #endif /* INET6 */
192
193 /*
194 * Minimum MSS we accept and use. This prevents DoS attacks where
195 * we are forced to a ridiculous low MSS like 20 and send hundreds
196 * of packets instead of one. The effect scales with the available
197 * bandwidth and quickly saturates the CPU and network interface
198 * with packet generation and sending. Set to zero to disable MINMSS
199 * checking. This setting prevents us from sending too small packets.
200 */
201 VNET_DEFINE(int, tcp_minmss) = TCP_MINMSS;
202 SYSCTL_INT(_net_inet_tcp, OID_AUTO, minmss, CTLFLAG_VNET | CTLFLAG_RW,
203 &VNET_NAME(tcp_minmss), 0,
204 "Minimum TCP Maximum Segment Size");
205
206 VNET_DEFINE(int, tcp_do_rfc1323) = 1;
207 SYSCTL_INT(_net_inet_tcp, TCPCTL_DO_RFC1323, rfc1323, CTLFLAG_VNET | CTLFLAG_RW,
208 &VNET_NAME(tcp_do_rfc1323), 0,
209 "Enable rfc1323 (high performance TCP) extensions");
210
211 /*
212 * As of June 2021, several TCP stacks violate RFC 7323 from September 2014.
213 * Some stacks negotiate TS, but never send them after connection setup. Some
214 * stacks negotiate TS, but don't send them when sending keep-alive segments.
215 * These include modern widely deployed TCP stacks.
216 * Therefore tolerating violations for now...
217 */
218 VNET_DEFINE(int, tcp_tolerate_missing_ts) = 1;
219 SYSCTL_INT(_net_inet_tcp, OID_AUTO, tolerate_missing_ts, CTLFLAG_VNET | CTLFLAG_RW,
220 &VNET_NAME(tcp_tolerate_missing_ts), 0,
221 "Tolerate missing TCP timestamps");
222
223 VNET_DEFINE(int, tcp_ts_offset_per_conn) = 1;
224 SYSCTL_INT(_net_inet_tcp, OID_AUTO, ts_offset_per_conn, CTLFLAG_VNET | CTLFLAG_RW,
225 &VNET_NAME(tcp_ts_offset_per_conn), 0,
226 "Initialize TCP timestamps per connection instead of per host pair");
227
228 /* How many connections are pacing */
229 static volatile uint32_t number_of_tcp_connections_pacing = 0;
230 static uint32_t shadow_num_connections = 0;
231 static counter_u64_t tcp_pacing_failures;
232 static counter_u64_t tcp_dgp_failures;
233 static uint32_t shadow_tcp_pacing_dgp = 0;
234 static volatile uint32_t number_of_dgp_connections = 0;
235
236 static int tcp_pacing_limit = 10000;
237 SYSCTL_INT(_net_inet_tcp, OID_AUTO, pacing_limit, CTLFLAG_RW,
238 &tcp_pacing_limit, 1000,
239 "If the TCP stack does pacing, is there a limit (-1 = no, 0 = no pacing N = number of connections)");
240
241 static int tcp_dgp_limit = -1;
242 SYSCTL_INT(_net_inet_tcp, OID_AUTO, dgp_limit, CTLFLAG_RW,
243 &tcp_dgp_limit, -1,
244 "If the TCP stack does DGP, is there a limit (-1 = no, 0 = no dgp N = number of connections)");
245
246 SYSCTL_UINT(_net_inet_tcp, OID_AUTO, pacing_count, CTLFLAG_RD,
247 &shadow_num_connections, 0, "Number of TCP connections being paced");
248
249 SYSCTL_COUNTER_U64(_net_inet_tcp, OID_AUTO, pacing_failures, CTLFLAG_RD,
250 &tcp_pacing_failures, "Number of times we failed to enable pacing to avoid exceeding the limit");
251
252 SYSCTL_COUNTER_U64(_net_inet_tcp, OID_AUTO, dgp_failures, CTLFLAG_RD,
253 &tcp_dgp_failures, "Number of times we failed to enable dgp to avoid exceeding the limit");
254
255 static int tcp_log_debug = 0;
256 SYSCTL_INT(_net_inet_tcp, OID_AUTO, log_debug, CTLFLAG_RW,
257 &tcp_log_debug, 0, "Log errors caused by incoming TCP segments");
258
259 /*
260 * Target size of TCP PCB hash tables. Must be a power of two.
261 *
262 * Note that this can be overridden by the kernel environment
263 * variable net.inet.tcp.tcbhashsize
264 */
265 #ifndef TCBHASHSIZE
266 #define TCBHASHSIZE 0
267 #endif
268 static int tcp_tcbhashsize = TCBHASHSIZE;
269 SYSCTL_INT(_net_inet_tcp, OID_AUTO, tcbhashsize, CTLFLAG_RDTUN,
270 &tcp_tcbhashsize, 0, "Size of TCP control-block hashtable");
271
272 static int do_tcpdrain = 1;
273 SYSCTL_INT(_net_inet_tcp, OID_AUTO, do_tcpdrain, CTLFLAG_RW, &do_tcpdrain, 0,
274 "Enable tcp_drain routine for extra help when low on mbufs");
275
276 SYSCTL_UINT(_net_inet_tcp, OID_AUTO, pcbcount, CTLFLAG_VNET | CTLFLAG_RD,
277 &VNET_NAME(tcbinfo.ipi_count), 0, "Number of active PCBs");
278
279 VNET_DEFINE_STATIC(int, icmp_may_rst) = 1;
280 #define V_icmp_may_rst VNET(icmp_may_rst)
281 SYSCTL_INT(_net_inet_tcp, OID_AUTO, icmp_may_rst, CTLFLAG_VNET | CTLFLAG_RW,
282 &VNET_NAME(icmp_may_rst), 0,
283 "Certain ICMP unreachable messages may abort connections in SYN_SENT");
284
285 VNET_DEFINE_STATIC(int, tcp_isn_reseed_interval) = 0;
286 #define V_tcp_isn_reseed_interval VNET(tcp_isn_reseed_interval)
287 SYSCTL_INT(_net_inet_tcp, OID_AUTO, isn_reseed_interval, CTLFLAG_VNET | CTLFLAG_RW,
288 &VNET_NAME(tcp_isn_reseed_interval), 0,
289 "Seconds between reseeding of ISN secret");
290
291 static int tcp_soreceive_stream;
292 SYSCTL_INT(_net_inet_tcp, OID_AUTO, soreceive_stream, CTLFLAG_RDTUN,
293 &tcp_soreceive_stream, 0, "Using soreceive_stream for TCP sockets");
294
295 VNET_DEFINE(uma_zone_t, sack_hole_zone);
296 #define V_sack_hole_zone VNET(sack_hole_zone)
297 VNET_DEFINE(uint32_t, tcp_map_entries_limit) = 0; /* unlimited */
298 static int
sysctl_net_inet_tcp_map_limit_check(SYSCTL_HANDLER_ARGS)299 sysctl_net_inet_tcp_map_limit_check(SYSCTL_HANDLER_ARGS)
300 {
301 int error;
302 uint32_t new;
303
304 new = V_tcp_map_entries_limit;
305 error = sysctl_handle_int(oidp, &new, 0, req);
306 if (error == 0 && req->newptr) {
307 /* only allow "0" and value > minimum */
308 if (new > 0 && new < TCP_MIN_MAP_ENTRIES_LIMIT)
309 error = EINVAL;
310 else
311 V_tcp_map_entries_limit = new;
312 }
313 return (error);
314 }
315 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, map_limit,
316 CTLFLAG_VNET | CTLTYPE_UINT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
317 &VNET_NAME(tcp_map_entries_limit), 0,
318 &sysctl_net_inet_tcp_map_limit_check, "IU",
319 "Total sendmap entries limit");
320
321 VNET_DEFINE(uint32_t, tcp_map_split_limit) = 0; /* unlimited */
322 SYSCTL_UINT(_net_inet_tcp, OID_AUTO, split_limit, CTLFLAG_VNET | CTLFLAG_RW,
323 &VNET_NAME(tcp_map_split_limit), 0,
324 "Total sendmap split entries limit");
325
326 #ifdef TCP_HHOOK
327 VNET_DEFINE(struct hhook_head *, tcp_hhh[HHOOK_TCP_LAST+1]);
328 #endif
329
330 #define TS_OFFSET_SECRET_LENGTH SIPHASH_KEY_LENGTH
331 VNET_DEFINE_STATIC(u_char, ts_offset_secret[TS_OFFSET_SECRET_LENGTH]);
332 #define V_ts_offset_secret VNET(ts_offset_secret)
333
334 static int tcp_default_fb_init(struct tcpcb *tp, void **ptr);
335 static void tcp_default_fb_fini(struct tcpcb *tp, int tcb_is_purged);
336 static int tcp_default_handoff_ok(struct tcpcb *tp);
337 static struct inpcb *tcp_notify(struct inpcb *, int);
338 static struct inpcb *tcp_mtudisc_notify(struct inpcb *, int);
339 static struct inpcb *tcp_mtudisc(struct inpcb *, int);
340 static struct inpcb *tcp_drop_syn_sent(struct inpcb *, int);
341 static char * tcp_log_addr(struct in_conninfo *inc, struct tcphdr *th,
342 const void *ip4hdr, const void *ip6hdr);
343 static void tcp_default_switch_failed(struct tcpcb *tp);
344
345 #ifdef INET
346 static ipproto_ctlinput_t tcp_ctlinput;
347 static udp_tun_icmp_t tcp_ctlinput_viaudp;
348 #endif
349
350 static struct tcp_function_block tcp_def_funcblk = {
351 .tfb_tcp_block_name = "freebsd",
352 .tfb_tcp_output = tcp_default_output,
353 .tfb_tcp_do_segment = tcp_do_segment,
354 .tfb_tcp_ctloutput = tcp_default_ctloutput,
355 .tfb_tcp_handoff_ok = tcp_default_handoff_ok,
356 .tfb_tcp_fb_init = tcp_default_fb_init,
357 .tfb_tcp_fb_fini = tcp_default_fb_fini,
358 .tfb_switch_failed = tcp_default_switch_failed,
359 .tfb_flags = TCP_FUNC_DEFAULT_OK,
360 };
361
362 static int tcp_fb_cnt = 0;
363 struct tcp_funchead t_functions;
364 VNET_DEFINE_STATIC(struct tcp_function_block *, tcp_func_set_ptr) = &tcp_def_funcblk;
365 #define V_tcp_func_set_ptr VNET(tcp_func_set_ptr)
366
367 void
tcp_record_dsack(struct tcpcb * tp,tcp_seq start,tcp_seq end,int tlp)368 tcp_record_dsack(struct tcpcb *tp, tcp_seq start, tcp_seq end, int tlp)
369 {
370 TCPSTAT_INC(tcps_dsack_count);
371 tp->t_dsack_pack++;
372 if (tlp == 0) {
373 if (SEQ_GT(end, start)) {
374 tp->t_dsack_bytes += (end - start);
375 TCPSTAT_ADD(tcps_dsack_bytes, (end - start));
376 } else {
377 tp->t_dsack_tlp_bytes += (start - end);
378 TCPSTAT_ADD(tcps_dsack_bytes, (start - end));
379 }
380 } else {
381 if (SEQ_GT(end, start)) {
382 tp->t_dsack_bytes += (end - start);
383 TCPSTAT_ADD(tcps_dsack_tlp_bytes, (end - start));
384 } else {
385 tp->t_dsack_tlp_bytes += (start - end);
386 TCPSTAT_ADD(tcps_dsack_tlp_bytes, (start - end));
387 }
388 }
389 }
390
391 static struct tcp_function_block *
find_tcp_functions_locked(struct tcp_function_set * fs)392 find_tcp_functions_locked(struct tcp_function_set *fs)
393 {
394 struct tcp_function *f;
395 struct tcp_function_block *blk = NULL;
396
397 rw_assert(&tcp_function_lock, RA_LOCKED);
398 TAILQ_FOREACH(f, &t_functions, tf_next) {
399 if (strcmp(f->tf_name, fs->function_set_name) == 0) {
400 blk = f->tf_fb;
401 break;
402 }
403 }
404 return (blk);
405 }
406
407 static struct tcp_function_block *
find_tcp_fb_locked(struct tcp_function_block * blk,struct tcp_function ** s)408 find_tcp_fb_locked(struct tcp_function_block *blk, struct tcp_function **s)
409 {
410 struct tcp_function_block *rblk = NULL;
411 struct tcp_function *f;
412
413 rw_assert(&tcp_function_lock, RA_LOCKED);
414 TAILQ_FOREACH(f, &t_functions, tf_next) {
415 if (f->tf_fb == blk) {
416 rblk = blk;
417 if (s) {
418 *s = f;
419 }
420 break;
421 }
422 }
423 return (rblk);
424 }
425
426 struct tcp_function_block *
find_and_ref_tcp_functions(struct tcp_function_set * fs)427 find_and_ref_tcp_functions(struct tcp_function_set *fs)
428 {
429 struct tcp_function_block *blk;
430
431 rw_rlock(&tcp_function_lock);
432 blk = find_tcp_functions_locked(fs);
433 if (blk)
434 refcount_acquire(&blk->tfb_refcnt);
435 rw_runlock(&tcp_function_lock);
436 return (blk);
437 }
438
439 struct tcp_function_block *
find_and_ref_tcp_fb(struct tcp_function_block * blk)440 find_and_ref_tcp_fb(struct tcp_function_block *blk)
441 {
442 struct tcp_function_block *rblk;
443
444 rw_rlock(&tcp_function_lock);
445 rblk = find_tcp_fb_locked(blk, NULL);
446 if (rblk)
447 refcount_acquire(&rblk->tfb_refcnt);
448 rw_runlock(&tcp_function_lock);
449 return (rblk);
450 }
451
452 /* Find a matching alias for the given tcp_function_block. */
453 int
find_tcp_function_alias(struct tcp_function_block * blk,struct tcp_function_set * fs)454 find_tcp_function_alias(struct tcp_function_block *blk,
455 struct tcp_function_set *fs)
456 {
457 struct tcp_function *f;
458 int found;
459
460 found = 0;
461 rw_rlock(&tcp_function_lock);
462 TAILQ_FOREACH(f, &t_functions, tf_next) {
463 if ((f->tf_fb == blk) &&
464 (strncmp(f->tf_name, blk->tfb_tcp_block_name,
465 TCP_FUNCTION_NAME_LEN_MAX) != 0)) {
466 /* Matching function block with different name. */
467 strncpy(fs->function_set_name, f->tf_name,
468 TCP_FUNCTION_NAME_LEN_MAX);
469 found = 1;
470 break;
471 }
472 }
473 /* Null terminate the string appropriately. */
474 if (found) {
475 fs->function_set_name[TCP_FUNCTION_NAME_LEN_MAX - 1] = '\0';
476 } else {
477 fs->function_set_name[0] = '\0';
478 }
479 rw_runlock(&tcp_function_lock);
480 return (found);
481 }
482
483 static struct tcp_function_block *
find_and_ref_tcp_default_fb(void)484 find_and_ref_tcp_default_fb(void)
485 {
486 struct tcp_function_block *rblk;
487
488 rw_rlock(&tcp_function_lock);
489 rblk = V_tcp_func_set_ptr;
490 refcount_acquire(&rblk->tfb_refcnt);
491 rw_runlock(&tcp_function_lock);
492 return (rblk);
493 }
494
495 void
tcp_switch_back_to_default(struct tcpcb * tp)496 tcp_switch_back_to_default(struct tcpcb *tp)
497 {
498 struct tcp_function_block *tfb;
499 void *ptr = NULL;
500
501 KASSERT(tp->t_fb != &tcp_def_funcblk,
502 ("%s: called by the built-in default stack", __func__));
503
504 if (tp->t_fb->tfb_tcp_timer_stop_all != NULL)
505 tp->t_fb->tfb_tcp_timer_stop_all(tp);
506
507 /*
508 * Now, we'll find a new function block to use.
509 * Start by trying the current user-selected
510 * default, unless this stack is the user-selected
511 * default.
512 */
513 tfb = find_and_ref_tcp_default_fb();
514 if (tfb == tp->t_fb) {
515 refcount_release(&tfb->tfb_refcnt);
516 tfb = NULL;
517 }
518 /* Does the stack accept this connection? */
519 if (tfb != NULL && (*tfb->tfb_tcp_handoff_ok)(tp)) {
520 refcount_release(&tfb->tfb_refcnt);
521 tfb = NULL;
522 }
523 /* Try to use that stack. */
524 if (tfb != NULL) {
525 /* Initialize the new stack. If it succeeds, we are done. */
526 if (tfb->tfb_tcp_fb_init == NULL ||
527 (*tfb->tfb_tcp_fb_init)(tp, &ptr) == 0) {
528 /* Release the old stack */
529 if (tp->t_fb->tfb_tcp_fb_fini != NULL)
530 (*tp->t_fb->tfb_tcp_fb_fini)(tp, 0);
531 refcount_release(&tp->t_fb->tfb_refcnt);
532 /* Now set in all the pointers */
533 tp->t_fb = tfb;
534 tp->t_fb_ptr = ptr;
535 return;
536 }
537 /*
538 * Initialization failed. Release the reference count on
539 * the looked up default stack.
540 */
541 refcount_release(&tfb->tfb_refcnt);
542 }
543
544 /*
545 * If that wasn't feasible, use the built-in default
546 * stack which is not allowed to reject anyone.
547 */
548 tfb = find_and_ref_tcp_fb(&tcp_def_funcblk);
549 if (tfb == NULL) {
550 /* there always should be a default */
551 panic("Can't refer to tcp_def_funcblk");
552 }
553 if ((*tfb->tfb_tcp_handoff_ok)(tp)) {
554 /* The default stack cannot say no */
555 panic("Default stack rejects a new session?");
556 }
557 if (tfb->tfb_tcp_fb_init != NULL &&
558 (*tfb->tfb_tcp_fb_init)(tp, &ptr)) {
559 /* The default stack cannot fail */
560 panic("Default stack initialization failed");
561 }
562 /* Now release the old stack */
563 if (tp->t_fb->tfb_tcp_fb_fini != NULL)
564 (*tp->t_fb->tfb_tcp_fb_fini)(tp, 0);
565 refcount_release(&tp->t_fb->tfb_refcnt);
566 /* And set in the pointers to the new */
567 tp->t_fb = tfb;
568 tp->t_fb_ptr = ptr;
569 }
570
571 static bool
tcp_recv_udp_tunneled_packet(struct mbuf * m,int off,struct inpcb * inp,const struct sockaddr * sa,void * ctx)572 tcp_recv_udp_tunneled_packet(struct mbuf *m, int off, struct inpcb *inp,
573 const struct sockaddr *sa, void *ctx)
574 {
575 struct ip *iph;
576 #ifdef INET6
577 struct ip6_hdr *ip6;
578 #endif
579 struct udphdr *uh;
580 struct tcphdr *th;
581 int len, thlen;
582 uint16_t port;
583
584 TCPSTAT_INC(tcps_tunneled_pkts);
585 if ((m->m_flags & M_PKTHDR) == 0) {
586 /* Can't handle one that is not a pkt hdr */
587 TCPSTAT_INC(tcps_tunneled_errs);
588 m_freem(m);
589 return (true);
590 }
591 thlen = sizeof(struct tcphdr);
592 if (m->m_len < off + sizeof(struct udphdr) + thlen &&
593 (m = m_pullup(m, off + sizeof(struct udphdr) + thlen)) == NULL) {
594 TCPSTAT_INC(tcps_tunneled_errs);
595 return (true);
596 }
597 iph = mtod(m, struct ip *);
598 uh = (struct udphdr *)((caddr_t)iph + off);
599 th = (struct tcphdr *)(uh + 1);
600 thlen = th->th_off << 2;
601 if (m->m_len < off + sizeof(struct udphdr) + thlen) {
602 m = m_pullup(m, off + sizeof(struct udphdr) + thlen);
603 if (m == NULL) {
604 TCPSTAT_INC(tcps_tunneled_errs);
605 return (true);
606 } else {
607 iph = mtod(m, struct ip *);
608 uh = (struct udphdr *)((caddr_t)iph + off);
609 th = (struct tcphdr *)(uh + 1);
610 }
611 }
612 m->m_pkthdr.tcp_tun_port = port = uh->uh_sport;
613 bcopy(th, uh, m->m_len - off - sizeof(struct udphdr));
614 m->m_len -= sizeof(struct udphdr);
615 m->m_pkthdr.len -= sizeof(struct udphdr);
616 /*
617 * We use the same algorithm for
618 * both UDP and TCP for c-sum. So
619 * the code in tcp_input will skip
620 * the checksum. So we do nothing
621 * with the flag (m->m_pkthdr.csum_flags).
622 */
623 switch (iph->ip_v) {
624 #ifdef INET
625 case IPVERSION:
626 len = ntohs(iph->ip_len) - sizeof(struct udphdr);
627 if (__predict_false(len != m->m_pkthdr.len)) {
628 TCPSTAT_INC(tcps_tunneled_errs);
629 m_freem(m);
630 return (true);
631 } else {
632 iph->ip_len = htons(len);
633 tcp_input_with_port(&m, &off, IPPROTO_TCP, port);
634 }
635 break;
636 #endif
637 #ifdef INET6
638 case IPV6_VERSION >> 4:
639 ip6 = mtod(m, struct ip6_hdr *);
640 len = ntohs(ip6->ip6_plen) - sizeof(struct udphdr);
641 if (__predict_false(len + sizeof(struct ip6_hdr) !=
642 m->m_pkthdr.len)) {
643 TCPSTAT_INC(tcps_tunneled_errs);
644 m_freem(m);
645 return (true);
646 } else {
647 ip6->ip6_plen = htons(len);
648 tcp6_input_with_port(&m, &off, IPPROTO_TCP, port);
649 }
650 break;
651 #endif
652 default:
653 m_freem(m);
654 break;
655 }
656 return (true);
657 }
658
659 static int
sysctl_net_inet_default_tcp_functions(SYSCTL_HANDLER_ARGS)660 sysctl_net_inet_default_tcp_functions(SYSCTL_HANDLER_ARGS)
661 {
662 struct tcp_function_set fs;
663 struct tcp_function_block *blk;
664 int error;
665
666 memset(&fs, 0, sizeof(struct tcp_function_set));
667 rw_rlock(&tcp_function_lock);
668 blk = find_tcp_fb_locked(V_tcp_func_set_ptr, NULL);
669 if (blk != NULL) {
670 /* Found him */
671 strcpy(fs.function_set_name, blk->tfb_tcp_block_name);
672 fs.pcbcnt = blk->tfb_refcnt;
673 }
674 rw_runlock(&tcp_function_lock);
675 error = sysctl_handle_string(oidp, fs.function_set_name,
676 sizeof(fs.function_set_name), req);
677
678 /* Check for error or no change */
679 if (error != 0 || req->newptr == NULL)
680 return (error);
681
682 rw_wlock(&tcp_function_lock);
683 blk = find_tcp_functions_locked(&fs);
684 if ((blk == NULL) ||
685 (blk->tfb_flags & TCP_FUNC_BEING_REMOVED)) {
686 error = ENOENT;
687 goto done;
688 }
689 if ((blk->tfb_flags & TCP_FUNC_DEFAULT_OK) == 0) {
690 error = EINVAL;
691 goto done;
692 }
693 V_tcp_func_set_ptr = blk;
694 done:
695 rw_wunlock(&tcp_function_lock);
696 return (error);
697 }
698
699 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, functions_default,
700 CTLFLAG_VNET | CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
701 NULL, 0, sysctl_net_inet_default_tcp_functions, "A",
702 "Set/get the default TCP functions");
703
704 static int
sysctl_net_inet_list_available(SYSCTL_HANDLER_ARGS)705 sysctl_net_inet_list_available(SYSCTL_HANDLER_ARGS)
706 {
707 int error, cnt, linesz;
708 struct tcp_function *f;
709 char *buffer, *cp;
710 size_t bufsz, outsz;
711 bool alias;
712
713 cnt = 0;
714 rw_rlock(&tcp_function_lock);
715 TAILQ_FOREACH(f, &t_functions, tf_next) {
716 cnt++;
717 }
718 rw_runlock(&tcp_function_lock);
719
720 bufsz = (cnt+2) * ((TCP_FUNCTION_NAME_LEN_MAX * 2) + 13) + 1;
721 buffer = malloc(bufsz, M_TEMP, M_WAITOK);
722
723 error = 0;
724 cp = buffer;
725
726 linesz = snprintf(cp, bufsz, "\n%-32s%c %-32s %s\n", "Stack", 'D',
727 "Alias", "PCB count");
728 cp += linesz;
729 bufsz -= linesz;
730 outsz = linesz;
731
732 rw_rlock(&tcp_function_lock);
733 TAILQ_FOREACH(f, &t_functions, tf_next) {
734 alias = (f->tf_name != f->tf_fb->tfb_tcp_block_name);
735 linesz = snprintf(cp, bufsz, "%-32s%c %-32s %u\n",
736 f->tf_fb->tfb_tcp_block_name,
737 (f->tf_fb == V_tcp_func_set_ptr) ? '*' : ' ',
738 alias ? f->tf_name : "-",
739 f->tf_fb->tfb_refcnt);
740 if (linesz >= bufsz) {
741 error = EOVERFLOW;
742 break;
743 }
744 cp += linesz;
745 bufsz -= linesz;
746 outsz += linesz;
747 }
748 rw_runlock(&tcp_function_lock);
749 if (error == 0)
750 error = sysctl_handle_string(oidp, buffer, outsz + 1, req);
751 free(buffer, M_TEMP);
752 return (error);
753 }
754
755 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, functions_available,
756 CTLFLAG_VNET | CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_NEEDGIANT,
757 NULL, 0, sysctl_net_inet_list_available, "A",
758 "list available TCP Function sets");
759
760 VNET_DEFINE(int, tcp_udp_tunneling_port) = TCP_TUNNELING_PORT_DEFAULT;
761
762 #ifdef INET
763 VNET_DEFINE(struct socket *, udp4_tun_socket) = NULL;
764 #define V_udp4_tun_socket VNET(udp4_tun_socket)
765 #endif
766 #ifdef INET6
767 VNET_DEFINE(struct socket *, udp6_tun_socket) = NULL;
768 #define V_udp6_tun_socket VNET(udp6_tun_socket)
769 #endif
770
771 static struct sx tcpoudp_lock;
772
773 static void
tcp_over_udp_stop(void)774 tcp_over_udp_stop(void)
775 {
776
777 sx_assert(&tcpoudp_lock, SA_XLOCKED);
778
779 #ifdef INET
780 if (V_udp4_tun_socket != NULL) {
781 soclose(V_udp4_tun_socket);
782 V_udp4_tun_socket = NULL;
783 }
784 #endif
785 #ifdef INET6
786 if (V_udp6_tun_socket != NULL) {
787 soclose(V_udp6_tun_socket);
788 V_udp6_tun_socket = NULL;
789 }
790 #endif
791 }
792
793 static int
tcp_over_udp_start(void)794 tcp_over_udp_start(void)
795 {
796 uint16_t port;
797 int ret;
798 #ifdef INET
799 struct sockaddr_in sin;
800 #endif
801 #ifdef INET6
802 struct sockaddr_in6 sin6;
803 #endif
804
805 sx_assert(&tcpoudp_lock, SA_XLOCKED);
806
807 port = V_tcp_udp_tunneling_port;
808 if (ntohs(port) == 0) {
809 /* Must have a port set */
810 return (EINVAL);
811 }
812 #ifdef INET
813 if (V_udp4_tun_socket != NULL) {
814 /* Already running -- must stop first */
815 return (EALREADY);
816 }
817 #endif
818 #ifdef INET6
819 if (V_udp6_tun_socket != NULL) {
820 /* Already running -- must stop first */
821 return (EALREADY);
822 }
823 #endif
824 #ifdef INET
825 if ((ret = socreate(PF_INET, &V_udp4_tun_socket,
826 SOCK_DGRAM, IPPROTO_UDP,
827 curthread->td_ucred, curthread))) {
828 tcp_over_udp_stop();
829 return (ret);
830 }
831 /* Call the special UDP hook. */
832 if ((ret = udp_set_kernel_tunneling(V_udp4_tun_socket,
833 tcp_recv_udp_tunneled_packet,
834 tcp_ctlinput_viaudp,
835 NULL))) {
836 tcp_over_udp_stop();
837 return (ret);
838 }
839 /* Ok, we have a socket, bind it to the port. */
840 memset(&sin, 0, sizeof(struct sockaddr_in));
841 sin.sin_len = sizeof(struct sockaddr_in);
842 sin.sin_family = AF_INET;
843 sin.sin_port = htons(port);
844 if ((ret = sobind(V_udp4_tun_socket,
845 (struct sockaddr *)&sin, curthread))) {
846 tcp_over_udp_stop();
847 return (ret);
848 }
849 #endif
850 #ifdef INET6
851 if ((ret = socreate(PF_INET6, &V_udp6_tun_socket,
852 SOCK_DGRAM, IPPROTO_UDP,
853 curthread->td_ucred, curthread))) {
854 tcp_over_udp_stop();
855 return (ret);
856 }
857 /* Call the special UDP hook. */
858 if ((ret = udp_set_kernel_tunneling(V_udp6_tun_socket,
859 tcp_recv_udp_tunneled_packet,
860 tcp6_ctlinput_viaudp,
861 NULL))) {
862 tcp_over_udp_stop();
863 return (ret);
864 }
865 /* Ok, we have a socket, bind it to the port. */
866 memset(&sin6, 0, sizeof(struct sockaddr_in6));
867 sin6.sin6_len = sizeof(struct sockaddr_in6);
868 sin6.sin6_family = AF_INET6;
869 sin6.sin6_port = htons(port);
870 if ((ret = sobind(V_udp6_tun_socket,
871 (struct sockaddr *)&sin6, curthread))) {
872 tcp_over_udp_stop();
873 return (ret);
874 }
875 #endif
876 return (0);
877 }
878
879 static int
sysctl_net_inet_tcp_udp_tunneling_port_check(SYSCTL_HANDLER_ARGS)880 sysctl_net_inet_tcp_udp_tunneling_port_check(SYSCTL_HANDLER_ARGS)
881 {
882 int error;
883 uint32_t old, new;
884
885 old = V_tcp_udp_tunneling_port;
886 new = old;
887 error = sysctl_handle_int(oidp, &new, 0, req);
888 if ((error == 0) &&
889 (req->newptr != NULL)) {
890 if ((new < TCP_TUNNELING_PORT_MIN) ||
891 (new > TCP_TUNNELING_PORT_MAX)) {
892 error = EINVAL;
893 } else {
894 sx_xlock(&tcpoudp_lock);
895 V_tcp_udp_tunneling_port = new;
896 if (old != 0) {
897 tcp_over_udp_stop();
898 }
899 if (new != 0) {
900 error = tcp_over_udp_start();
901 if (error != 0) {
902 V_tcp_udp_tunneling_port = 0;
903 }
904 }
905 sx_xunlock(&tcpoudp_lock);
906 }
907 }
908 return (error);
909 }
910
911 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, udp_tunneling_port,
912 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_MPSAFE,
913 &VNET_NAME(tcp_udp_tunneling_port),
914 0, &sysctl_net_inet_tcp_udp_tunneling_port_check, "IU",
915 "Tunneling port for tcp over udp");
916
917 VNET_DEFINE(int, tcp_udp_tunneling_overhead) = TCP_TUNNELING_OVERHEAD_DEFAULT;
918
919 static int
sysctl_net_inet_tcp_udp_tunneling_overhead_check(SYSCTL_HANDLER_ARGS)920 sysctl_net_inet_tcp_udp_tunneling_overhead_check(SYSCTL_HANDLER_ARGS)
921 {
922 int error, new;
923
924 new = V_tcp_udp_tunneling_overhead;
925 error = sysctl_handle_int(oidp, &new, 0, req);
926 if (error == 0 && req->newptr) {
927 if ((new < TCP_TUNNELING_OVERHEAD_MIN) ||
928 (new > TCP_TUNNELING_OVERHEAD_MAX))
929 error = EINVAL;
930 else
931 V_tcp_udp_tunneling_overhead = new;
932 }
933 return (error);
934 }
935
936 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, udp_tunneling_overhead,
937 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_MPSAFE,
938 &VNET_NAME(tcp_udp_tunneling_overhead),
939 0, &sysctl_net_inet_tcp_udp_tunneling_overhead_check, "IU",
940 "MSS reduction when using tcp over udp");
941
942 /*
943 * Exports one (struct tcp_function_info) for each alias/name.
944 */
945 static int
sysctl_net_inet_list_func_info(SYSCTL_HANDLER_ARGS)946 sysctl_net_inet_list_func_info(SYSCTL_HANDLER_ARGS)
947 {
948 int cnt, error;
949 struct tcp_function *f;
950 struct tcp_function_info tfi;
951
952 /*
953 * We don't allow writes.
954 */
955 if (req->newptr != NULL)
956 return (EINVAL);
957
958 /*
959 * Wire the old buffer so we can directly copy the functions to
960 * user space without dropping the lock.
961 */
962 if (req->oldptr != NULL) {
963 error = sysctl_wire_old_buffer(req, 0);
964 if (error)
965 return (error);
966 }
967
968 /*
969 * Walk the list and copy out matching entries. If INVARIANTS
970 * is compiled in, also walk the list to verify the length of
971 * the list matches what we have recorded.
972 */
973 rw_rlock(&tcp_function_lock);
974
975 cnt = 0;
976 #ifndef INVARIANTS
977 if (req->oldptr == NULL) {
978 cnt = tcp_fb_cnt;
979 goto skip_loop;
980 }
981 #endif
982 TAILQ_FOREACH(f, &t_functions, tf_next) {
983 #ifdef INVARIANTS
984 cnt++;
985 #endif
986 if (req->oldptr != NULL) {
987 bzero(&tfi, sizeof(tfi));
988 tfi.tfi_refcnt = f->tf_fb->tfb_refcnt;
989 tfi.tfi_id = f->tf_fb->tfb_id;
990 (void)strlcpy(tfi.tfi_alias, f->tf_name,
991 sizeof(tfi.tfi_alias));
992 (void)strlcpy(tfi.tfi_name,
993 f->tf_fb->tfb_tcp_block_name, sizeof(tfi.tfi_name));
994 error = SYSCTL_OUT(req, &tfi, sizeof(tfi));
995 /*
996 * Don't stop on error, as that is the
997 * mechanism we use to accumulate length
998 * information if the buffer was too short.
999 */
1000 }
1001 }
1002 KASSERT(cnt == tcp_fb_cnt,
1003 ("%s: cnt (%d) != tcp_fb_cnt (%d)", __func__, cnt, tcp_fb_cnt));
1004 #ifndef INVARIANTS
1005 skip_loop:
1006 #endif
1007 rw_runlock(&tcp_function_lock);
1008 if (req->oldptr == NULL)
1009 error = SYSCTL_OUT(req, NULL,
1010 (cnt + 1) * sizeof(struct tcp_function_info));
1011
1012 return (error);
1013 }
1014
1015 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, function_info,
1016 CTLTYPE_OPAQUE | CTLFLAG_SKIP | CTLFLAG_RD | CTLFLAG_MPSAFE,
1017 NULL, 0, sysctl_net_inet_list_func_info, "S,tcp_function_info",
1018 "List TCP function block name-to-ID mappings");
1019
1020 /*
1021 * tfb_tcp_handoff_ok() function for the default stack.
1022 * Note that we'll basically try to take all comers.
1023 */
1024 static int
tcp_default_handoff_ok(struct tcpcb * tp)1025 tcp_default_handoff_ok(struct tcpcb *tp)
1026 {
1027
1028 return (0);
1029 }
1030
1031 /*
1032 * tfb_tcp_fb_init() function for the default stack.
1033 *
1034 * This handles making sure we have appropriate timers set if you are
1035 * transitioning a socket that has some amount of setup done.
1036 *
1037 * The init() fuction from the default can *never* return non-zero i.e.
1038 * it is required to always succeed since it is the stack of last resort!
1039 */
1040 static int
tcp_default_fb_init(struct tcpcb * tp,void ** ptr)1041 tcp_default_fb_init(struct tcpcb *tp, void **ptr)
1042 {
1043 struct socket *so = tptosocket(tp);
1044 int rexmt;
1045
1046 INP_WLOCK_ASSERT(tptoinpcb(tp));
1047 /* We don't use the pointer */
1048 *ptr = NULL;
1049
1050 /* Make sure we get no interesting mbuf queuing behavior */
1051 /* All mbuf queue/ack compress flags should be off */
1052 tcp_lro_features_off(tp);
1053
1054 /* Cancel the GP measurement in progress */
1055 tp->t_flags &= ~TF_GPUTINPROG;
1056 /* Validate the timers are not in usec, if they are convert */
1057 tcp_change_time_units(tp, TCP_TMR_GRANULARITY_TICKS);
1058 if ((tp->t_state == TCPS_SYN_SENT) ||
1059 (tp->t_state == TCPS_SYN_RECEIVED))
1060 rexmt = tcp_rexmit_initial * tcp_backoff[tp->t_rxtshift];
1061 else
1062 rexmt = TCP_REXMTVAL(tp) * tcp_backoff[tp->t_rxtshift];
1063 if (tp->t_rxtshift == 0)
1064 tp->t_rxtcur = rexmt;
1065 else
1066 TCPT_RANGESET(tp->t_rxtcur, rexmt, tp->t_rttmin,
1067 tcp_rexmit_max);
1068
1069 /*
1070 * Nothing to do for ESTABLISHED or LISTEN states. And, we don't
1071 * know what to do for unexpected states (which includes TIME_WAIT).
1072 */
1073 if (tp->t_state <= TCPS_LISTEN || tp->t_state >= TCPS_TIME_WAIT)
1074 return (0);
1075
1076 /*
1077 * Make sure some kind of transmission timer is set if there is
1078 * outstanding data.
1079 */
1080 if ((!TCPS_HAVEESTABLISHED(tp->t_state) || sbavail(&so->so_snd) ||
1081 tp->snd_una != tp->snd_max) && !(tcp_timer_active(tp, TT_REXMT) ||
1082 tcp_timer_active(tp, TT_PERSIST))) {
1083 /*
1084 * If the session has established and it looks like it should
1085 * be in the persist state, set the persist timer. Otherwise,
1086 * set the retransmit timer.
1087 */
1088 if (TCPS_HAVEESTABLISHED(tp->t_state) && tp->snd_wnd == 0 &&
1089 (int32_t)(tp->snd_nxt - tp->snd_una) <
1090 (int32_t)sbavail(&so->so_snd))
1091 tcp_setpersist(tp);
1092 else
1093 tcp_timer_activate(tp, TT_REXMT, TP_RXTCUR(tp));
1094 }
1095
1096 /* All non-embryonic sessions get a keepalive timer. */
1097 if (!tcp_timer_active(tp, TT_KEEP))
1098 tcp_timer_activate(tp, TT_KEEP,
1099 TCPS_HAVEESTABLISHED(tp->t_state) ? TP_KEEPIDLE(tp) :
1100 TP_KEEPINIT(tp));
1101
1102 /*
1103 * Make sure critical variables are initialized
1104 * if transitioning while in Recovery.
1105 */
1106 if IN_FASTRECOVERY(tp->t_flags) {
1107 if (tp->sackhint.recover_fs == 0)
1108 tp->sackhint.recover_fs = max(1,
1109 tp->snd_nxt - tp->snd_una);
1110 }
1111
1112 return (0);
1113 }
1114
1115 /*
1116 * tfb_tcp_fb_fini() function for the default stack.
1117 *
1118 * This changes state as necessary (or prudent) to prepare for another stack
1119 * to assume responsibility for the connection.
1120 */
1121 static void
tcp_default_fb_fini(struct tcpcb * tp,int tcb_is_purged)1122 tcp_default_fb_fini(struct tcpcb *tp, int tcb_is_purged)
1123 {
1124
1125 INP_WLOCK_ASSERT(tptoinpcb(tp));
1126
1127 #ifdef TCP_BLACKBOX
1128 tcp_log_flowend(tp);
1129 #endif
1130 tp->t_acktime = 0;
1131 return;
1132 }
1133
1134 MALLOC_DEFINE(M_TCPLOG, "tcplog", "TCP address and flags print buffers");
1135 MALLOC_DEFINE(M_TCPFUNCTIONS, "tcpfunc", "TCP function set memory");
1136 #ifdef TCP_REQUEST_TRK
1137 MALLOC_DEFINE(M_TCPREQTRK, "tcpreqtrk", "TCP request tracking");
1138 #endif
1139
1140 static struct mtx isn_mtx;
1141
1142 #define ISN_LOCK_INIT() mtx_init(&isn_mtx, "isn_mtx", NULL, MTX_DEF)
1143 #define ISN_LOCK() mtx_lock(&isn_mtx)
1144 #define ISN_UNLOCK() mtx_unlock(&isn_mtx)
1145
1146 INPCBSTORAGE_DEFINE(tcpcbstor, tcpcb, "tcpinp", "tcp_inpcb", "tcphash");
1147
1148 /*
1149 * Take a value and get the next power of 2 that doesn't overflow.
1150 * Used to size the tcp_inpcb hash buckets.
1151 */
1152 static int
maketcp_hashsize(int size)1153 maketcp_hashsize(int size)
1154 {
1155 int hashsize;
1156
1157 /*
1158 * auto tune.
1159 * get the next power of 2 higher than maxsockets.
1160 */
1161 hashsize = 1 << fls(size);
1162 /* catch overflow, and just go one power of 2 smaller */
1163 if (hashsize < size) {
1164 hashsize = 1 << (fls(size) - 1);
1165 }
1166 return (hashsize);
1167 }
1168
1169 static volatile int next_tcp_stack_id = 1;
1170
1171 /*
1172 * Register a TCP function block with the name provided in the names
1173 * array. (Note that this function does NOT automatically register
1174 * blk->tfb_tcp_block_name as a stack name. Therefore, you should
1175 * explicitly include blk->tfb_tcp_block_name in the list of names if
1176 * you wish to register the stack with that name.)
1177 *
1178 * Either all name registrations will succeed or all will fail. If
1179 * a name registration fails, the function will update the num_names
1180 * argument to point to the array index of the name that encountered
1181 * the failure.
1182 *
1183 * Returns 0 on success, or an error code on failure.
1184 */
1185 int
register_tcp_functions_as_names(struct tcp_function_block * blk,int wait,const char * names[],int * num_names)1186 register_tcp_functions_as_names(struct tcp_function_block *blk, int wait,
1187 const char *names[], int *num_names)
1188 {
1189 struct tcp_function *f[TCP_FUNCTION_NAME_NUM_MAX];
1190 struct tcp_function_set fs;
1191 int error, i, num_registered;
1192
1193 KASSERT(names != NULL, ("%s: Called with NULL name list", __func__));
1194 KASSERT(*num_names > 0,
1195 ("%s: Called with non-positive length of name list", __func__));
1196 KASSERT(rw_initialized(&tcp_function_lock),
1197 ("%s: called too early", __func__));
1198
1199 if (*num_names > TCP_FUNCTION_NAME_NUM_MAX) {
1200 /* Too many names. */
1201 *num_names = 0;
1202 return (E2BIG);
1203 }
1204 if ((blk->tfb_tcp_output == NULL) ||
1205 (blk->tfb_tcp_do_segment == NULL) ||
1206 (blk->tfb_tcp_ctloutput == NULL) ||
1207 (blk->tfb_tcp_handoff_ok == NULL) ||
1208 (strlen(blk->tfb_tcp_block_name) == 0)) {
1209 /* These functions are required and a name is needed. */
1210 *num_names = 0;
1211 return (EINVAL);
1212 }
1213
1214 for (i = 0; i < *num_names; i++) {
1215 f[i] = malloc(sizeof(struct tcp_function), M_TCPFUNCTIONS, wait);
1216 if (f[i] == NULL) {
1217 while (--i >= 0)
1218 free(f[i], M_TCPFUNCTIONS);
1219 *num_names = 0;
1220 return (ENOMEM);
1221 }
1222 }
1223
1224 num_registered = 0;
1225 rw_wlock(&tcp_function_lock);
1226 if (find_tcp_fb_locked(blk, NULL) != NULL) {
1227 /* A TCP function block can only be registered once. */
1228 error = EALREADY;
1229 goto cleanup;
1230 }
1231 if (blk->tfb_flags & TCP_FUNC_BEING_REMOVED) {
1232 error = EINVAL;
1233 goto cleanup;
1234 }
1235 refcount_init(&blk->tfb_refcnt, 0);
1236 blk->tfb_id = atomic_fetchadd_int(&next_tcp_stack_id, 1);
1237 for (i = 0; i < *num_names; i++) {
1238 (void)strlcpy(fs.function_set_name, names[i],
1239 sizeof(fs.function_set_name));
1240 if (find_tcp_functions_locked(&fs) != NULL) {
1241 /* Duplicate name space not allowed */
1242 error = EALREADY;
1243 goto cleanup;
1244 }
1245 f[i]->tf_fb = blk;
1246 (void)strlcpy(f[i]->tf_name, names[i], sizeof(f[i]->tf_name));
1247 TAILQ_INSERT_TAIL(&t_functions, f[i], tf_next);
1248 tcp_fb_cnt++;
1249 num_registered++;
1250 }
1251 rw_wunlock(&tcp_function_lock);
1252 return (0);
1253
1254 cleanup:
1255 /* Remove the entries just added. */
1256 for (i = 0; i < *num_names; i++) {
1257 if (i < num_registered) {
1258 TAILQ_REMOVE(&t_functions, f[i], tf_next);
1259 tcp_fb_cnt--;
1260 }
1261 f[i]->tf_fb = NULL;
1262 free(f[i], M_TCPFUNCTIONS);
1263 }
1264 rw_wunlock(&tcp_function_lock);
1265 *num_names = num_registered;
1266 return (error);
1267 }
1268
1269 /*
1270 * Register a TCP function block using the name provided in the name
1271 * argument.
1272 *
1273 * Returns 0 on success, or an error code on failure.
1274 */
1275 int
register_tcp_functions_as_name(struct tcp_function_block * blk,const char * name,int wait)1276 register_tcp_functions_as_name(struct tcp_function_block *blk, const char *name,
1277 int wait)
1278 {
1279 const char *name_list[1];
1280 int num_names, rv;
1281
1282 num_names = 1;
1283 if (name != NULL)
1284 name_list[0] = name;
1285 else
1286 name_list[0] = blk->tfb_tcp_block_name;
1287 rv = register_tcp_functions_as_names(blk, wait, name_list, &num_names);
1288 return (rv);
1289 }
1290
1291 /*
1292 * Register a TCP function block using the name defined in
1293 * blk->tfb_tcp_block_name.
1294 *
1295 * Returns 0 on success, or an error code on failure.
1296 */
1297 int
register_tcp_functions(struct tcp_function_block * blk,int wait)1298 register_tcp_functions(struct tcp_function_block *blk, int wait)
1299 {
1300
1301 return (register_tcp_functions_as_name(blk, NULL, wait));
1302 }
1303
1304 /*
1305 * Deregister all names associated with a function block. This
1306 * functionally removes the function block from use within the system.
1307 *
1308 * When called with a true quiesce argument, mark the function block
1309 * as being removed so no more stacks will use it and determine
1310 * whether the removal would succeed.
1311 *
1312 * When called with a false quiesce argument, actually attempt the
1313 * removal.
1314 *
1315 * When called with a force argument, attempt to switch all TCBs to
1316 * use the default stack instead of returning EBUSY.
1317 *
1318 * Returns 0 on success (or if the removal would succeed), or an error
1319 * code on failure.
1320 */
1321 int
deregister_tcp_functions(struct tcp_function_block * blk,bool quiesce,bool force)1322 deregister_tcp_functions(struct tcp_function_block *blk, bool quiesce,
1323 bool force)
1324 {
1325 struct tcp_function *f;
1326 VNET_ITERATOR_DECL(vnet_iter);
1327
1328 if (blk == &tcp_def_funcblk) {
1329 /* You can't un-register the default */
1330 return (EPERM);
1331 }
1332 rw_wlock(&tcp_function_lock);
1333 VNET_LIST_RLOCK_NOSLEEP();
1334 VNET_FOREACH(vnet_iter) {
1335 CURVNET_SET(vnet_iter);
1336 if (blk == V_tcp_func_set_ptr) {
1337 /* You can't free the current default in some vnet. */
1338 CURVNET_RESTORE();
1339 VNET_LIST_RUNLOCK_NOSLEEP();
1340 rw_wunlock(&tcp_function_lock);
1341 return (EBUSY);
1342 }
1343 CURVNET_RESTORE();
1344 }
1345 VNET_LIST_RUNLOCK_NOSLEEP();
1346 /* Mark the block so no more stacks can use it. */
1347 blk->tfb_flags |= TCP_FUNC_BEING_REMOVED;
1348 /*
1349 * If TCBs are still attached to the stack, attempt to switch them
1350 * to the default stack.
1351 */
1352 if (force && blk->tfb_refcnt) {
1353 struct inpcb *inp;
1354 struct tcpcb *tp;
1355 VNET_ITERATOR_DECL(vnet_iter);
1356
1357 rw_wunlock(&tcp_function_lock);
1358
1359 VNET_LIST_RLOCK();
1360 VNET_FOREACH(vnet_iter) {
1361 CURVNET_SET(vnet_iter);
1362 struct inpcb_iterator inpi = INP_ALL_ITERATOR(&V_tcbinfo,
1363 INPLOOKUP_WLOCKPCB);
1364
1365 while ((inp = inp_next(&inpi)) != NULL) {
1366 tp = intotcpcb(inp);
1367 if (tp == NULL || tp->t_fb != blk)
1368 continue;
1369 tcp_switch_back_to_default(tp);
1370 }
1371 CURVNET_RESTORE();
1372 }
1373 VNET_LIST_RUNLOCK();
1374
1375 rw_wlock(&tcp_function_lock);
1376 }
1377 if (blk->tfb_refcnt) {
1378 /* TCBs still attached. */
1379 rw_wunlock(&tcp_function_lock);
1380 return (EBUSY);
1381 }
1382 if (quiesce) {
1383 /* Skip removal. */
1384 rw_wunlock(&tcp_function_lock);
1385 return (0);
1386 }
1387 /* Remove any function names that map to this function block. */
1388 while (find_tcp_fb_locked(blk, &f) != NULL) {
1389 TAILQ_REMOVE(&t_functions, f, tf_next);
1390 tcp_fb_cnt--;
1391 f->tf_fb = NULL;
1392 free(f, M_TCPFUNCTIONS);
1393 }
1394 rw_wunlock(&tcp_function_lock);
1395 return (0);
1396 }
1397
1398 static void
tcp_drain(void * ctx __unused,int flags __unused)1399 tcp_drain(void *ctx __unused, int flags __unused)
1400 {
1401 struct epoch_tracker et;
1402 VNET_ITERATOR_DECL(vnet_iter);
1403
1404 if (!do_tcpdrain)
1405 return;
1406
1407 NET_EPOCH_ENTER(et);
1408 VNET_LIST_RLOCK_NOSLEEP();
1409 VNET_FOREACH(vnet_iter) {
1410 CURVNET_SET(vnet_iter);
1411 struct inpcb_iterator inpi = INP_ALL_ITERATOR(&V_tcbinfo,
1412 INPLOOKUP_WLOCKPCB);
1413 struct inpcb *inpb;
1414 struct tcpcb *tcpb;
1415
1416 /*
1417 * Walk the tcpbs, if existing, and flush the reassembly queue,
1418 * if there is one...
1419 * XXX: The "Net/3" implementation doesn't imply that the TCP
1420 * reassembly queue should be flushed, but in a situation
1421 * where we're really low on mbufs, this is potentially
1422 * useful.
1423 */
1424 while ((inpb = inp_next(&inpi)) != NULL) {
1425 if ((tcpb = intotcpcb(inpb)) != NULL) {
1426 tcp_reass_flush(tcpb);
1427 tcp_clean_sackreport(tcpb);
1428 #ifdef TCP_BLACKBOX
1429 tcp_log_drain(tcpb);
1430 #endif
1431 }
1432 }
1433 CURVNET_RESTORE();
1434 }
1435 VNET_LIST_RUNLOCK_NOSLEEP();
1436 NET_EPOCH_EXIT(et);
1437 }
1438
1439 static void
tcp_vnet_init(void * arg __unused)1440 tcp_vnet_init(void *arg __unused)
1441 {
1442
1443 #ifdef TCP_HHOOK
1444 if (hhook_head_register(HHOOK_TYPE_TCP, HHOOK_TCP_EST_IN,
1445 &V_tcp_hhh[HHOOK_TCP_EST_IN], HHOOK_NOWAIT|HHOOK_HEADISINVNET) != 0)
1446 printf("%s: WARNING: unable to register helper hook\n", __func__);
1447 if (hhook_head_register(HHOOK_TYPE_TCP, HHOOK_TCP_EST_OUT,
1448 &V_tcp_hhh[HHOOK_TCP_EST_OUT], HHOOK_NOWAIT|HHOOK_HEADISINVNET) != 0)
1449 printf("%s: WARNING: unable to register helper hook\n", __func__);
1450 #endif
1451 #ifdef STATS
1452 if (tcp_stats_init())
1453 printf("%s: WARNING: unable to initialise TCP stats\n",
1454 __func__);
1455 #endif
1456 in_pcbinfo_init(&V_tcbinfo, &tcpcbstor, tcp_tcbhashsize,
1457 tcp_tcbhashsize, tcp_tcbhashsize);
1458
1459 syncache_init();
1460 tcp_hc_init();
1461
1462 TUNABLE_INT_FETCH("net.inet.tcp.sack.enable", &V_tcp_do_sack);
1463 V_sack_hole_zone = uma_zcreate("sackhole", sizeof(struct sackhole),
1464 NULL, NULL, NULL, NULL, UMA_ALIGN_PTR, 0);
1465
1466 tcp_fastopen_init();
1467
1468 COUNTER_ARRAY_ALLOC(V_tcps_states, TCP_NSTATES, M_WAITOK);
1469 VNET_PCPUSTAT_ALLOC(tcpstat, M_WAITOK);
1470
1471 V_tcp_msl = TCPTV_MSL;
1472 V_tcp_msl_local = TCPTV_MSL_LOCAL;
1473 arc4rand(&V_ts_offset_secret, sizeof(V_ts_offset_secret), 0);
1474 }
1475 VNET_SYSINIT(tcp_vnet_init, SI_SUB_PROTO_DOMAIN, SI_ORDER_FOURTH,
1476 tcp_vnet_init, NULL);
1477
1478 static void
tcp_init(void * arg __unused)1479 tcp_init(void *arg __unused)
1480 {
1481 int hashsize;
1482
1483 tcp_reass_global_init();
1484
1485 /* XXX virtualize those below? */
1486 tcp_delacktime = TCPTV_DELACK;
1487 tcp_keepinit = TCPTV_KEEP_INIT;
1488 tcp_keepidle = TCPTV_KEEP_IDLE;
1489 tcp_keepintvl = TCPTV_KEEPINTVL;
1490 tcp_maxpersistidle = TCPTV_KEEP_IDLE;
1491 tcp_rexmit_initial = TCPTV_RTOBASE;
1492 tcp_rexmit_min = TCPTV_MIN;
1493 tcp_rexmit_max = TCPTV_REXMTMAX;
1494 tcp_persmin = TCPTV_PERSMIN;
1495 tcp_persmax = TCPTV_PERSMAX;
1496 tcp_rexmit_slop = TCPTV_CPU_VAR;
1497 tcp_finwait2_timeout = TCPTV_FINWAIT2_TIMEOUT;
1498
1499 /* Setup the tcp function block list */
1500 TAILQ_INIT(&t_functions);
1501 rw_init(&tcp_function_lock, "tcp_func_lock");
1502 register_tcp_functions(&tcp_def_funcblk, M_WAITOK);
1503 sx_init(&tcpoudp_lock, "TCP over UDP configuration");
1504 #ifdef TCP_BLACKBOX
1505 /* Initialize the TCP logging data. */
1506 tcp_log_init();
1507 #endif
1508
1509 if (tcp_soreceive_stream) {
1510 #ifdef INET
1511 tcp_protosw.pr_soreceive = soreceive_stream;
1512 #endif
1513 #ifdef INET6
1514 tcp6_protosw.pr_soreceive = soreceive_stream;
1515 #endif /* INET6 */
1516 }
1517
1518 #ifdef INET6
1519 max_protohdr_grow(sizeof(struct ip6_hdr) + sizeof(struct tcphdr));
1520 #else /* INET6 */
1521 max_protohdr_grow(sizeof(struct tcpiphdr));
1522 #endif /* INET6 */
1523
1524 ISN_LOCK_INIT();
1525 EVENTHANDLER_REGISTER(vm_lowmem, tcp_drain, NULL, LOWMEM_PRI_DEFAULT);
1526 EVENTHANDLER_REGISTER(mbuf_lowmem, tcp_drain, NULL, LOWMEM_PRI_DEFAULT);
1527
1528 tcp_inp_lro_direct_queue = counter_u64_alloc(M_WAITOK);
1529 tcp_inp_lro_wokeup_queue = counter_u64_alloc(M_WAITOK);
1530 tcp_inp_lro_compressed = counter_u64_alloc(M_WAITOK);
1531 tcp_inp_lro_locks_taken = counter_u64_alloc(M_WAITOK);
1532 tcp_extra_mbuf = counter_u64_alloc(M_WAITOK);
1533 tcp_would_have_but = counter_u64_alloc(M_WAITOK);
1534 tcp_comp_total = counter_u64_alloc(M_WAITOK);
1535 tcp_uncomp_total = counter_u64_alloc(M_WAITOK);
1536 tcp_bad_csums = counter_u64_alloc(M_WAITOK);
1537 tcp_pacing_failures = counter_u64_alloc(M_WAITOK);
1538 tcp_dgp_failures = counter_u64_alloc(M_WAITOK);
1539
1540 hashsize = tcp_tcbhashsize;
1541 if (hashsize == 0) {
1542 /*
1543 * Auto tune the hash size based on maxsockets.
1544 * A perfect hash would have a 1:1 mapping
1545 * (hashsize = maxsockets) however it's been
1546 * suggested that O(2) average is better.
1547 */
1548 hashsize = maketcp_hashsize(maxsockets / 4);
1549 /*
1550 * Our historical default is 512,
1551 * do not autotune lower than this.
1552 */
1553 if (hashsize < 512)
1554 hashsize = 512;
1555 if (bootverbose)
1556 printf("%s: %s auto tuned to %d\n", __func__,
1557 "net.inet.tcp.tcbhashsize", hashsize);
1558 }
1559 /*
1560 * We require a hashsize to be a power of two.
1561 * Previously if it was not a power of two we would just reset it
1562 * back to 512, which could be a nasty surprise if you did not notice
1563 * the error message.
1564 * Instead what we do is clip it to the closest power of two lower
1565 * than the specified hash value.
1566 */
1567 if (!powerof2(hashsize)) {
1568 int oldhashsize = hashsize;
1569
1570 hashsize = maketcp_hashsize(hashsize);
1571 /* prevent absurdly low value */
1572 if (hashsize < 16)
1573 hashsize = 16;
1574 printf("%s: WARNING: TCB hash size not a power of 2, "
1575 "clipped from %d to %d.\n", __func__, oldhashsize,
1576 hashsize);
1577 }
1578 tcp_tcbhashsize = hashsize;
1579
1580 #ifdef INET
1581 IPPROTO_REGISTER(IPPROTO_TCP, tcp_input, tcp_ctlinput);
1582 #endif
1583 #ifdef INET6
1584 IP6PROTO_REGISTER(IPPROTO_TCP, tcp6_input, tcp6_ctlinput);
1585 #endif
1586 }
1587 SYSINIT(tcp_init, SI_SUB_PROTO_DOMAIN, SI_ORDER_THIRD, tcp_init, NULL);
1588
1589 #ifdef VIMAGE
1590 static void
tcp_destroy(void * unused __unused)1591 tcp_destroy(void *unused __unused)
1592 {
1593 #ifdef TCP_HHOOK
1594 int error;
1595 #endif
1596
1597 tcp_hc_destroy();
1598 syncache_destroy();
1599 in_pcbinfo_destroy(&V_tcbinfo);
1600 /* tcp_discardcb() clears the sack_holes up. */
1601 uma_zdestroy(V_sack_hole_zone);
1602
1603 /*
1604 * Cannot free the zone until all tcpcbs are released as we attach
1605 * the allocations to them.
1606 */
1607 tcp_fastopen_destroy();
1608
1609 COUNTER_ARRAY_FREE(V_tcps_states, TCP_NSTATES);
1610 VNET_PCPUSTAT_FREE(tcpstat);
1611
1612 #ifdef TCP_HHOOK
1613 error = hhook_head_deregister(V_tcp_hhh[HHOOK_TCP_EST_IN]);
1614 if (error != 0) {
1615 printf("%s: WARNING: unable to deregister helper hook "
1616 "type=%d, id=%d: error %d returned\n", __func__,
1617 HHOOK_TYPE_TCP, HHOOK_TCP_EST_IN, error);
1618 }
1619 error = hhook_head_deregister(V_tcp_hhh[HHOOK_TCP_EST_OUT]);
1620 if (error != 0) {
1621 printf("%s: WARNING: unable to deregister helper hook "
1622 "type=%d, id=%d: error %d returned\n", __func__,
1623 HHOOK_TYPE_TCP, HHOOK_TCP_EST_OUT, error);
1624 }
1625 #endif
1626 }
1627 VNET_SYSUNINIT(tcp, SI_SUB_PROTO_DOMAIN, SI_ORDER_FOURTH, tcp_destroy, NULL);
1628 #endif
1629
1630 /*
1631 * Fill in the IP and TCP headers for an outgoing packet, given the tcpcb.
1632 * tcp_template used to store this data in mbufs, but we now recopy it out
1633 * of the tcpcb each time to conserve mbufs.
1634 */
1635 void
tcpip_fillheaders(struct inpcb * inp,uint16_t port,void * ip_ptr,void * tcp_ptr)1636 tcpip_fillheaders(struct inpcb *inp, uint16_t port, void *ip_ptr, void *tcp_ptr)
1637 {
1638 struct tcphdr *th = (struct tcphdr *)tcp_ptr;
1639
1640 INP_WLOCK_ASSERT(inp);
1641
1642 #ifdef INET6
1643 if ((inp->inp_vflag & INP_IPV6) != 0) {
1644 struct ip6_hdr *ip6;
1645
1646 ip6 = (struct ip6_hdr *)ip_ptr;
1647 ip6->ip6_flow = (ip6->ip6_flow & ~IPV6_FLOWINFO_MASK) |
1648 (inp->inp_flow & IPV6_FLOWINFO_MASK);
1649 ip6->ip6_vfc = (ip6->ip6_vfc & ~IPV6_VERSION_MASK) |
1650 (IPV6_VERSION & IPV6_VERSION_MASK);
1651 if (port == 0)
1652 ip6->ip6_nxt = IPPROTO_TCP;
1653 else
1654 ip6->ip6_nxt = IPPROTO_UDP;
1655 ip6->ip6_plen = htons(sizeof(struct tcphdr));
1656 ip6->ip6_src = inp->in6p_laddr;
1657 ip6->ip6_dst = inp->in6p_faddr;
1658 }
1659 #endif /* INET6 */
1660 #if defined(INET6) && defined(INET)
1661 else
1662 #endif
1663 #ifdef INET
1664 {
1665 struct ip *ip;
1666
1667 ip = (struct ip *)ip_ptr;
1668 ip->ip_v = IPVERSION;
1669 ip->ip_hl = 5;
1670 ip->ip_tos = inp->inp_ip_tos;
1671 ip->ip_len = 0;
1672 ip->ip_id = 0;
1673 ip->ip_off = 0;
1674 ip->ip_ttl = inp->inp_ip_ttl;
1675 ip->ip_sum = 0;
1676 if (port == 0)
1677 ip->ip_p = IPPROTO_TCP;
1678 else
1679 ip->ip_p = IPPROTO_UDP;
1680 ip->ip_src = inp->inp_laddr;
1681 ip->ip_dst = inp->inp_faddr;
1682 }
1683 #endif /* INET */
1684 th->th_sport = inp->inp_lport;
1685 th->th_dport = inp->inp_fport;
1686 th->th_seq = 0;
1687 th->th_ack = 0;
1688 th->th_off = 5;
1689 tcp_set_flags(th, 0);
1690 th->th_win = 0;
1691 th->th_urp = 0;
1692 th->th_sum = 0; /* in_pseudo() is called later for ipv4 */
1693 }
1694
1695 /*
1696 * Create template to be used to send tcp packets on a connection.
1697 * Allocates an mbuf and fills in a skeletal tcp/ip header. The only
1698 * use for this function is in keepalives, which use tcp_respond.
1699 */
1700 struct tcptemp *
tcpip_maketemplate(struct inpcb * inp)1701 tcpip_maketemplate(struct inpcb *inp)
1702 {
1703 struct tcptemp *t;
1704
1705 t = malloc(sizeof(*t), M_TEMP, M_NOWAIT);
1706 if (t == NULL)
1707 return (NULL);
1708 tcpip_fillheaders(inp, 0, (void *)&t->tt_ipgen, (void *)&t->tt_t);
1709 return (t);
1710 }
1711
1712 /*
1713 * Send a single message to the TCP at address specified by
1714 * the given TCP/IP header. If m == NULL, then we make a copy
1715 * of the tcpiphdr at th and send directly to the addressed host.
1716 * This is used to force keep alive messages out using the TCP
1717 * template for a connection. If flags are given then we send
1718 * a message back to the TCP which originated the segment th,
1719 * and discard the mbuf containing it and any other attached mbufs.
1720 *
1721 * In any case the ack and sequence number of the transmitted
1722 * segment are as specified by the parameters.
1723 *
1724 * NOTE: If m != NULL, then th must point to *inside* the mbuf.
1725 */
1726
1727 void
tcp_respond(struct tcpcb * tp,void * ipgen,struct tcphdr * th,struct mbuf * m,tcp_seq ack,tcp_seq seq,uint16_t flags)1728 tcp_respond(struct tcpcb *tp, void *ipgen, struct tcphdr *th, struct mbuf *m,
1729 tcp_seq ack, tcp_seq seq, uint16_t flags)
1730 {
1731 struct tcpopt to;
1732 struct inpcb *inp;
1733 struct ip *ip;
1734 struct mbuf *optm;
1735 struct udphdr *uh = NULL;
1736 struct tcphdr *nth;
1737 struct tcp_log_buffer *lgb;
1738 u_char *optp;
1739 #ifdef INET6
1740 struct ip6_hdr *ip6;
1741 int isipv6;
1742 #endif /* INET6 */
1743 int optlen, tlen, win, ulen;
1744 int ect = 0;
1745 bool incl_opts;
1746 uint16_t port;
1747 int output_ret;
1748 #ifdef INVARIANTS
1749 int thflags = tcp_get_flags(th);
1750 #endif
1751
1752 KASSERT(tp != NULL || m != NULL, ("tcp_respond: tp and m both NULL"));
1753 NET_EPOCH_ASSERT();
1754
1755 #ifdef INET6
1756 isipv6 = ((struct ip *)ipgen)->ip_v == (IPV6_VERSION >> 4);
1757 ip6 = ipgen;
1758 #endif /* INET6 */
1759 ip = ipgen;
1760
1761 if (tp != NULL) {
1762 inp = tptoinpcb(tp);
1763 INP_LOCK_ASSERT(inp);
1764 } else
1765 inp = NULL;
1766
1767 if (m != NULL) {
1768 #ifdef INET6
1769 if (isipv6 && ip6 && (ip6->ip6_nxt == IPPROTO_UDP))
1770 port = m->m_pkthdr.tcp_tun_port;
1771 else
1772 #endif
1773 if (ip && (ip->ip_p == IPPROTO_UDP))
1774 port = m->m_pkthdr.tcp_tun_port;
1775 else
1776 port = 0;
1777 } else
1778 port = tp->t_port;
1779
1780 incl_opts = false;
1781 win = 0;
1782 if (tp != NULL) {
1783 if (!(flags & TH_RST)) {
1784 win = sbspace(&inp->inp_socket->so_rcv);
1785 if (win > TCP_MAXWIN << tp->rcv_scale)
1786 win = TCP_MAXWIN << tp->rcv_scale;
1787 }
1788 if ((tp->t_flags & TF_NOOPT) == 0)
1789 incl_opts = true;
1790 }
1791 if (m == NULL) {
1792 m = m_gethdr(M_NOWAIT, MT_DATA);
1793 if (m == NULL)
1794 return;
1795 m->m_data += max_linkhdr;
1796 #ifdef INET6
1797 if (isipv6) {
1798 bcopy((caddr_t)ip6, mtod(m, caddr_t),
1799 sizeof(struct ip6_hdr));
1800 ip6 = mtod(m, struct ip6_hdr *);
1801 nth = (struct tcphdr *)(ip6 + 1);
1802 if (port) {
1803 /* Insert a UDP header */
1804 uh = (struct udphdr *)nth;
1805 uh->uh_sport = htons(V_tcp_udp_tunneling_port);
1806 uh->uh_dport = port;
1807 nth = (struct tcphdr *)(uh + 1);
1808 }
1809 } else
1810 #endif /* INET6 */
1811 {
1812 bcopy((caddr_t)ip, mtod(m, caddr_t), sizeof(struct ip));
1813 ip = mtod(m, struct ip *);
1814 nth = (struct tcphdr *)(ip + 1);
1815 if (port) {
1816 /* Insert a UDP header */
1817 uh = (struct udphdr *)nth;
1818 uh->uh_sport = htons(V_tcp_udp_tunneling_port);
1819 uh->uh_dport = port;
1820 nth = (struct tcphdr *)(uh + 1);
1821 }
1822 }
1823 bcopy((caddr_t)th, (caddr_t)nth, sizeof(struct tcphdr));
1824 flags = TH_ACK;
1825 } else if ((!M_WRITABLE(m)) || (port != 0)) {
1826 struct mbuf *n;
1827
1828 /* Can't reuse 'm', allocate a new mbuf. */
1829 n = m_gethdr(M_NOWAIT, MT_DATA);
1830 if (n == NULL) {
1831 m_freem(m);
1832 return;
1833 }
1834
1835 if (!m_dup_pkthdr(n, m, M_NOWAIT)) {
1836 m_freem(m);
1837 m_freem(n);
1838 return;
1839 }
1840
1841 n->m_data += max_linkhdr;
1842 /* m_len is set later */
1843 #define xchg(a,b,type) { type t; t=a; a=b; b=t; }
1844 #ifdef INET6
1845 if (isipv6) {
1846 bcopy((caddr_t)ip6, mtod(n, caddr_t),
1847 sizeof(struct ip6_hdr));
1848 ip6 = mtod(n, struct ip6_hdr *);
1849 xchg(ip6->ip6_dst, ip6->ip6_src, struct in6_addr);
1850 nth = (struct tcphdr *)(ip6 + 1);
1851 if (port) {
1852 /* Insert a UDP header */
1853 uh = (struct udphdr *)nth;
1854 uh->uh_sport = htons(V_tcp_udp_tunneling_port);
1855 uh->uh_dport = port;
1856 nth = (struct tcphdr *)(uh + 1);
1857 }
1858 } else
1859 #endif /* INET6 */
1860 {
1861 bcopy((caddr_t)ip, mtod(n, caddr_t), sizeof(struct ip));
1862 ip = mtod(n, struct ip *);
1863 xchg(ip->ip_dst.s_addr, ip->ip_src.s_addr, uint32_t);
1864 nth = (struct tcphdr *)(ip + 1);
1865 if (port) {
1866 /* Insert a UDP header */
1867 uh = (struct udphdr *)nth;
1868 uh->uh_sport = htons(V_tcp_udp_tunneling_port);
1869 uh->uh_dport = port;
1870 nth = (struct tcphdr *)(uh + 1);
1871 }
1872 }
1873 bcopy((caddr_t)th, (caddr_t)nth, sizeof(struct tcphdr));
1874 xchg(nth->th_dport, nth->th_sport, uint16_t);
1875 th = nth;
1876 m_freem(m);
1877 m = n;
1878 } else {
1879 /*
1880 * reuse the mbuf.
1881 * XXX MRT We inherit the FIB, which is lucky.
1882 */
1883 m_freem(m->m_next);
1884 m->m_next = NULL;
1885 m->m_data = (caddr_t)ipgen;
1886 /* clear any receive flags for proper bpf timestamping */
1887 m->m_flags &= ~(M_TSTMP | M_TSTMP_LRO);
1888 /* m_len is set later */
1889 #ifdef INET6
1890 if (isipv6) {
1891 xchg(ip6->ip6_dst, ip6->ip6_src, struct in6_addr);
1892 nth = (struct tcphdr *)(ip6 + 1);
1893 } else
1894 #endif /* INET6 */
1895 {
1896 xchg(ip->ip_dst.s_addr, ip->ip_src.s_addr, uint32_t);
1897 nth = (struct tcphdr *)(ip + 1);
1898 }
1899 if (th != nth) {
1900 /*
1901 * this is usually a case when an extension header
1902 * exists between the IPv6 header and the
1903 * TCP header.
1904 */
1905 nth->th_sport = th->th_sport;
1906 nth->th_dport = th->th_dport;
1907 }
1908 xchg(nth->th_dport, nth->th_sport, uint16_t);
1909 #undef xchg
1910 }
1911 tlen = 0;
1912 #ifdef INET6
1913 if (isipv6)
1914 tlen = sizeof (struct ip6_hdr) + sizeof (struct tcphdr);
1915 #endif
1916 #if defined(INET) && defined(INET6)
1917 else
1918 #endif
1919 #ifdef INET
1920 tlen = sizeof (struct tcpiphdr);
1921 #endif
1922 if (port)
1923 tlen += sizeof (struct udphdr);
1924 #ifdef INVARIANTS
1925 m->m_len = 0;
1926 KASSERT(M_TRAILINGSPACE(m) >= tlen,
1927 ("Not enough trailing space for message (m=%p, need=%d, have=%ld)",
1928 m, tlen, (long)M_TRAILINGSPACE(m)));
1929 #endif
1930 m->m_len = tlen;
1931 to.to_flags = 0;
1932 if (incl_opts) {
1933 ect = tcp_ecn_output_established(tp, &flags, 0, false);
1934 /* Make sure we have room. */
1935 if (M_TRAILINGSPACE(m) < TCP_MAXOLEN) {
1936 m->m_next = m_get(M_NOWAIT, MT_DATA);
1937 if (m->m_next) {
1938 optp = mtod(m->m_next, u_char *);
1939 optm = m->m_next;
1940 } else
1941 incl_opts = false;
1942 } else {
1943 optp = (u_char *) (nth + 1);
1944 optm = m;
1945 }
1946 }
1947 if (incl_opts) {
1948 /* Timestamps. */
1949 if (tp->t_flags & TF_RCVD_TSTMP) {
1950 to.to_tsval = tcp_ts_getticks() + tp->ts_offset;
1951 to.to_tsecr = tp->ts_recent;
1952 to.to_flags |= TOF_TS;
1953 }
1954 #if defined(IPSEC_SUPPORT) || defined(TCP_SIGNATURE)
1955 /* TCP-MD5 (RFC2385). */
1956 if (tp->t_flags & TF_SIGNATURE)
1957 to.to_flags |= TOF_SIGNATURE;
1958 #endif
1959 /* Add the options. */
1960 tlen += optlen = tcp_addoptions(&to, optp);
1961
1962 /* Update m_len in the correct mbuf. */
1963 optm->m_len += optlen;
1964 } else
1965 optlen = 0;
1966 #ifdef INET6
1967 if (isipv6) {
1968 if (uh) {
1969 ulen = tlen - sizeof(struct ip6_hdr);
1970 uh->uh_ulen = htons(ulen);
1971 }
1972 ip6->ip6_flow = htonl(ect << IPV6_FLOWLABEL_LEN);
1973 ip6->ip6_vfc = IPV6_VERSION;
1974 if (port)
1975 ip6->ip6_nxt = IPPROTO_UDP;
1976 else
1977 ip6->ip6_nxt = IPPROTO_TCP;
1978 ip6->ip6_plen = htons(tlen - sizeof(*ip6));
1979 }
1980 #endif
1981 #if defined(INET) && defined(INET6)
1982 else
1983 #endif
1984 #ifdef INET
1985 {
1986 if (uh) {
1987 ulen = tlen - sizeof(struct ip);
1988 uh->uh_ulen = htons(ulen);
1989 }
1990 ip->ip_len = htons(tlen);
1991 if (inp != NULL) {
1992 ip->ip_tos = inp->inp_ip_tos & ~IPTOS_ECN_MASK;
1993 ip->ip_ttl = inp->inp_ip_ttl;
1994 } else {
1995 ip->ip_tos = 0;
1996 ip->ip_ttl = V_ip_defttl;
1997 }
1998 ip->ip_tos |= ect;
1999 if (port) {
2000 ip->ip_p = IPPROTO_UDP;
2001 } else {
2002 ip->ip_p = IPPROTO_TCP;
2003 }
2004 if (V_path_mtu_discovery)
2005 ip->ip_off |= htons(IP_DF);
2006 }
2007 #endif
2008 m->m_pkthdr.len = tlen;
2009 m->m_pkthdr.rcvif = NULL;
2010 #ifdef MAC
2011 if (inp != NULL) {
2012 /*
2013 * Packet is associated with a socket, so allow the
2014 * label of the response to reflect the socket label.
2015 */
2016 INP_LOCK_ASSERT(inp);
2017 mac_inpcb_create_mbuf(inp, m);
2018 } else {
2019 /*
2020 * Packet is not associated with a socket, so possibly
2021 * update the label in place.
2022 */
2023 mac_netinet_tcp_reply(m);
2024 }
2025 #endif
2026 nth->th_seq = htonl(seq);
2027 nth->th_ack = htonl(ack);
2028 nth->th_off = (sizeof (struct tcphdr) + optlen) >> 2;
2029 tcp_set_flags(nth, flags);
2030 if (tp && (flags & TH_RST)) {
2031 /* Log the reset */
2032 tcp_log_end_status(tp, TCP_EI_STATUS_SERVER_RST);
2033 }
2034 if (tp != NULL)
2035 nth->th_win = htons((u_short) (win >> tp->rcv_scale));
2036 else
2037 nth->th_win = htons((u_short)win);
2038 nth->th_urp = 0;
2039
2040 #if defined(IPSEC_SUPPORT) || defined(TCP_SIGNATURE)
2041 if (to.to_flags & TOF_SIGNATURE) {
2042 if (!TCPMD5_ENABLED() ||
2043 TCPMD5_OUTPUT(m, nth, to.to_signature) != 0) {
2044 m_freem(m);
2045 return;
2046 }
2047 }
2048 #endif
2049
2050 #ifdef INET6
2051 if (isipv6) {
2052 if (port) {
2053 m->m_pkthdr.csum_flags = CSUM_UDP_IPV6;
2054 m->m_pkthdr.csum_data = offsetof(struct udphdr, uh_sum);
2055 uh->uh_sum = in6_cksum_pseudo(ip6, ulen, IPPROTO_UDP, 0);
2056 nth->th_sum = 0;
2057 } else {
2058 m->m_pkthdr.csum_flags = CSUM_TCP_IPV6;
2059 m->m_pkthdr.csum_data = offsetof(struct tcphdr, th_sum);
2060 nth->th_sum = in6_cksum_pseudo(ip6,
2061 tlen - sizeof(struct ip6_hdr), IPPROTO_TCP, 0);
2062 }
2063 ip6->ip6_hlim = in6_selecthlim(inp, NULL);
2064 }
2065 #endif /* INET6 */
2066 #if defined(INET6) && defined(INET)
2067 else
2068 #endif
2069 #ifdef INET
2070 {
2071 if (port) {
2072 uh->uh_sum = in_pseudo(ip->ip_src.s_addr, ip->ip_dst.s_addr,
2073 htons(ulen + IPPROTO_UDP));
2074 m->m_pkthdr.csum_flags = CSUM_UDP;
2075 m->m_pkthdr.csum_data = offsetof(struct udphdr, uh_sum);
2076 nth->th_sum = 0;
2077 } else {
2078 m->m_pkthdr.csum_flags = CSUM_TCP;
2079 m->m_pkthdr.csum_data = offsetof(struct tcphdr, th_sum);
2080 nth->th_sum = in_pseudo(ip->ip_src.s_addr, ip->ip_dst.s_addr,
2081 htons((u_short)(tlen - sizeof(struct ip) + ip->ip_p)));
2082 }
2083 }
2084 #endif /* INET */
2085 TCP_PROBE3(debug__output, tp, th, m);
2086 if (flags & TH_RST)
2087 TCP_PROBE5(accept__refused, NULL, NULL, m, tp, nth);
2088 lgb = NULL;
2089 if ((tp != NULL) && tcp_bblogging_on(tp)) {
2090 if (INP_WLOCKED(inp)) {
2091 union tcp_log_stackspecific log;
2092 struct timeval tv;
2093
2094 memset(&log, 0, sizeof(log));
2095 log.u_bbr.inhpts = tcp_in_hpts(tp);
2096 log.u_bbr.flex8 = 4;
2097 log.u_bbr.pkts_out = tp->t_maxseg;
2098 log.u_bbr.timeStamp = tcp_get_usecs(&tv);
2099 log.u_bbr.delivered = 0;
2100 lgb = tcp_log_event(tp, nth, NULL, NULL, TCP_LOG_OUT,
2101 ERRNO_UNK, 0, &log, false, NULL, NULL, 0, &tv);
2102 } else {
2103 /*
2104 * We can not log the packet, since we only own the
2105 * read lock, but a write lock is needed. The read lock
2106 * is not upgraded to a write lock, since only getting
2107 * the read lock was done intentionally to improve the
2108 * handling of SYN flooding attacks.
2109 * This happens only for pure SYN segments received in
2110 * the initial CLOSED state, or received in a more
2111 * advanced state than listen and the UDP encapsulation
2112 * port is unexpected.
2113 * The incoming SYN segments do not really belong to
2114 * the TCP connection and the handling does not change
2115 * the state of the TCP connection. Therefore, the
2116 * sending of the RST segments is not logged. Please
2117 * note that also the incoming SYN segments are not
2118 * logged.
2119 *
2120 * The following code ensures that the above description
2121 * is and stays correct.
2122 */
2123 KASSERT((thflags & (TH_ACK|TH_SYN)) == TH_SYN &&
2124 (tp->t_state == TCPS_CLOSED ||
2125 (tp->t_state > TCPS_LISTEN && tp->t_port != port)),
2126 ("%s: Logging of TCP segment with flags 0x%b and "
2127 "UDP encapsulation port %u skipped in state %s",
2128 __func__, thflags, PRINT_TH_FLAGS,
2129 ntohs(port), tcpstates[tp->t_state]));
2130 }
2131 }
2132
2133 if (flags & TH_ACK)
2134 TCPSTAT_INC(tcps_sndacks);
2135 else if (flags & (TH_SYN|TH_FIN|TH_RST))
2136 TCPSTAT_INC(tcps_sndctrl);
2137 TCPSTAT_INC(tcps_sndtotal);
2138
2139 #ifdef INET6
2140 if (isipv6) {
2141 TCP_PROBE5(send, NULL, tp, ip6, tp, nth);
2142 output_ret = ip6_output(m, inp ? inp->in6p_outputopts : NULL,
2143 NULL, 0, NULL, NULL, inp);
2144 }
2145 #endif /* INET6 */
2146 #if defined(INET) && defined(INET6)
2147 else
2148 #endif
2149 #ifdef INET
2150 {
2151 TCP_PROBE5(send, NULL, tp, ip, tp, nth);
2152 output_ret = ip_output(m, NULL, NULL, 0, NULL, inp);
2153 }
2154 #endif
2155 if (lgb != NULL)
2156 lgb->tlb_errno = output_ret;
2157 }
2158
2159 /*
2160 * Check that no more than V_tcp_ack_war_cnt per V_tcp_ack_war_time_window
2161 * are sent. *epoch_end is the end of the current epoch and is updated, if the
2162 * current epoch ended in the past. *ack_cnt is the counter used during the
2163 * current epoch. It might be reset and incremented.
2164 * The function returns true if a challenge ACK should be sent.
2165 */
2166 bool
tcp_challenge_ack_check(sbintime_t * epoch_end,uint32_t * ack_cnt)2167 tcp_challenge_ack_check(sbintime_t *epoch_end, uint32_t *ack_cnt)
2168 {
2169 sbintime_t now;
2170
2171 /*
2172 * The sending of a challenge ACK could be triggered by a blind attacker
2173 * to detect an existing TCP connection. To mitigate that, increment
2174 * also the global counter which would be incremented if the attacker
2175 * would have guessed wrongly.
2176 */
2177 (void)badport_bandlim(BANDLIM_TCP_RST);
2178
2179 if (V_tcp_ack_war_time_window == 0 || V_tcp_ack_war_cnt == 0) {
2180 /* ACK war protection is disabled. */
2181 return (true);
2182 } else {
2183 /* Start new epoch, if the previous one is already over. */
2184 now = getsbinuptime();
2185 if (*epoch_end < now) {
2186 *ack_cnt = 0;
2187 *epoch_end = now + V_tcp_ack_war_time_window * SBT_1MS;
2188 }
2189 /*
2190 * Send a challenge ACK, if less than tcp_ack_war_cnt have been
2191 * sent in the current epoch.
2192 */
2193 if (*ack_cnt < V_tcp_ack_war_cnt) {
2194 (*ack_cnt)++;
2195 return (true);
2196 } else {
2197 return (false);
2198 }
2199 }
2200 }
2201
2202 /*
2203 * Send a challenge ack (no data, no SACK option), but not more than
2204 * V_tcp_ack_war_cnt per V_tcp_ack_war_time_window (per TCP connection).
2205 */
2206 void
tcp_send_challenge_ack(struct tcpcb * tp,struct tcphdr * th,struct mbuf * m)2207 tcp_send_challenge_ack(struct tcpcb *tp, struct tcphdr *th, struct mbuf *m)
2208 {
2209 if (tcp_challenge_ack_check(&tp->t_challenge_ack_end,
2210 &tp->t_challenge_ack_cnt)) {
2211 tcp_respond(tp, mtod(m, void *), th, m, tp->rcv_nxt,
2212 tp->snd_nxt, TH_ACK);
2213 tp->last_ack_sent = tp->rcv_nxt;
2214 } else {
2215 m_freem(m);
2216 }
2217 }
2218
2219 /*
2220 * Create a new TCP control block, making an empty reassembly queue and hooking
2221 * it to the argument protocol control block. The `inp' parameter must have
2222 * come from the zone allocator set up by tcpcbstor declaration.
2223 * The caller can provide a pointer to a tcpcb of the listener to inherit the
2224 * TCP function block from the listener.
2225 */
2226 struct tcpcb *
tcp_newtcpcb(struct inpcb * inp,struct tcpcb * listening_tcb)2227 tcp_newtcpcb(struct inpcb *inp, struct tcpcb *listening_tcb)
2228 {
2229 struct tcpcb *tp = intotcpcb(inp);
2230 #ifdef INET6
2231 int isipv6 = (inp->inp_vflag & INP_IPV6) != 0;
2232 #endif /* INET6 */
2233
2234 /*
2235 * Historically allocation was done with M_ZERO. There is a lot of
2236 * code that rely on that. For now take safe approach and zero whole
2237 * tcpcb. This definitely can be optimized.
2238 */
2239 bzero(&tp->t_start_zero, t_zero_size);
2240
2241 /* Initialise cc_var struct for this tcpcb. */
2242 tp->t_ccv.tp = tp;
2243 rw_rlock(&tcp_function_lock);
2244 if (listening_tcb != NULL) {
2245 INP_LOCK_ASSERT(tptoinpcb(listening_tcb));
2246 KASSERT(listening_tcb->t_fb != NULL,
2247 ("tcp_newtcpcb: listening_tcb->t_fb is NULL"));
2248 if (listening_tcb->t_fb->tfb_flags & TCP_FUNC_BEING_REMOVED) {
2249 rw_runlock(&tcp_function_lock);
2250 return (NULL);
2251 }
2252 tp->t_fb = listening_tcb->t_fb;
2253 } else {
2254 tp->t_fb = V_tcp_func_set_ptr;
2255 }
2256 refcount_acquire(&tp->t_fb->tfb_refcnt);
2257 KASSERT((tp->t_fb->tfb_flags & TCP_FUNC_BEING_REMOVED) == 0,
2258 ("tcp_newtcpcb: using TFB being removed"));
2259 rw_runlock(&tcp_function_lock);
2260 CC_LIST_RLOCK();
2261 if (listening_tcb != NULL) {
2262 if (CC_ALGO(listening_tcb)->flags & CC_MODULE_BEING_REMOVED) {
2263 CC_LIST_RUNLOCK();
2264 if (tp->t_fb->tfb_tcp_fb_fini)
2265 (*tp->t_fb->tfb_tcp_fb_fini)(tp, 1);
2266 refcount_release(&tp->t_fb->tfb_refcnt);
2267 return (NULL);
2268 }
2269 CC_ALGO(tp) = CC_ALGO(listening_tcb);
2270 } else
2271 CC_ALGO(tp) = CC_DEFAULT_ALGO();
2272 cc_refer(CC_ALGO(tp));
2273 CC_LIST_RUNLOCK();
2274 if (CC_ALGO(tp)->cb_init != NULL)
2275 if (CC_ALGO(tp)->cb_init(&tp->t_ccv, NULL) > 0) {
2276 cc_detach(tp);
2277 if (tp->t_fb->tfb_tcp_fb_fini)
2278 (*tp->t_fb->tfb_tcp_fb_fini)(tp, 1);
2279 refcount_release(&tp->t_fb->tfb_refcnt);
2280 return (NULL);
2281 }
2282
2283 #ifdef TCP_HHOOK
2284 if (khelp_init_osd(HELPER_CLASS_TCP, &tp->t_osd)) {
2285 if (CC_ALGO(tp)->cb_destroy != NULL)
2286 CC_ALGO(tp)->cb_destroy(&tp->t_ccv);
2287 CC_DATA(tp) = NULL;
2288 cc_detach(tp);
2289 if (tp->t_fb->tfb_tcp_fb_fini)
2290 (*tp->t_fb->tfb_tcp_fb_fini)(tp, 1);
2291 refcount_release(&tp->t_fb->tfb_refcnt);
2292 return (NULL);
2293 }
2294 #endif
2295
2296 TAILQ_INIT(&tp->t_segq);
2297 STAILQ_INIT(&tp->t_inqueue);
2298 tp->t_maxseg =
2299 #ifdef INET6
2300 isipv6 ? V_tcp_v6mssdflt :
2301 #endif /* INET6 */
2302 V_tcp_mssdflt;
2303
2304 /* All mbuf queue/ack compress flags should be off */
2305 tcp_lro_features_off(tp);
2306
2307 tp->t_hpts_cpu = HPTS_CPU_NONE;
2308 tp->t_lro_cpu = HPTS_CPU_NONE;
2309
2310 callout_init_rw(&tp->t_callout, &inp->inp_lock,
2311 CALLOUT_TRYLOCK | CALLOUT_RETURNUNLOCKED);
2312 for (int i = 0; i < TT_N; i++)
2313 tp->t_timers[i] = SBT_MAX;
2314
2315 switch (V_tcp_do_rfc1323) {
2316 case 0:
2317 break;
2318 default:
2319 case 1:
2320 tp->t_flags = (TF_REQ_SCALE|TF_REQ_TSTMP);
2321 break;
2322 case 2:
2323 tp->t_flags = TF_REQ_SCALE;
2324 break;
2325 case 3:
2326 tp->t_flags = TF_REQ_TSTMP;
2327 break;
2328 }
2329 if (V_tcp_do_sack)
2330 tp->t_flags |= TF_SACK_PERMIT;
2331 TAILQ_INIT(&tp->snd_holes);
2332
2333 /*
2334 * Init srtt to TCPTV_SRTTBASE (0), so we can tell that we have no
2335 * rtt estimate. Set rttvar so that srtt + 4 * rttvar gives
2336 * reasonable initial retransmit time.
2337 */
2338 tp->t_srtt = TCPTV_SRTTBASE;
2339 tp->t_rttvar = ((tcp_rexmit_initial - TCPTV_SRTTBASE) << TCP_RTTVAR_SHIFT) / 4;
2340 tp->t_rttmin = tcp_rexmit_min;
2341 tp->t_rxtcur = tcp_rexmit_initial;
2342 tp->snd_cwnd = TCP_MAXWIN << TCP_MAX_WINSHIFT;
2343 tp->snd_ssthresh = TCP_MAXWIN << TCP_MAX_WINSHIFT;
2344 tp->t_rcvtime = ticks;
2345 /* We always start with ticks granularity */
2346 tp->t_tmr_granularity = TCP_TMR_GRANULARITY_TICKS;
2347 /*
2348 * IPv4 TTL initialization is necessary for an IPv6 socket as well,
2349 * because the socket may be bound to an IPv6 wildcard address,
2350 * which may match an IPv4-mapped IPv6 address.
2351 */
2352 inp->inp_ip_ttl = V_ip_defttl;
2353 #ifdef TCP_BLACKBOX
2354 /* Initialize the per-TCPCB log data. */
2355 tcp_log_tcpcbinit(tp);
2356 #endif
2357 tp->t_pacing_rate = -1;
2358 if (tp->t_fb->tfb_tcp_fb_init) {
2359 if ((*tp->t_fb->tfb_tcp_fb_init)(tp, &tp->t_fb_ptr)) {
2360 if (CC_ALGO(tp)->cb_destroy != NULL)
2361 CC_ALGO(tp)->cb_destroy(&tp->t_ccv);
2362 CC_DATA(tp) = NULL;
2363 cc_detach(tp);
2364 #ifdef TCP_HHOOK
2365 khelp_destroy_osd(&tp->t_osd);
2366 #endif
2367 refcount_release(&tp->t_fb->tfb_refcnt);
2368 return (NULL);
2369 }
2370 }
2371 #ifdef STATS
2372 if (V_tcp_perconn_stats_enable == 1)
2373 tp->t_stats = stats_blob_alloc(V_tcp_perconn_stats_dflt_tpl, 0);
2374 #endif
2375 if (V_tcp_do_lrd)
2376 tp->t_flags |= TF_LRD;
2377
2378 return (tp);
2379 }
2380
2381 /*
2382 * Drop a TCP connection, reporting
2383 * the specified error. If connection is synchronized,
2384 * then send a RST to peer.
2385 */
2386 struct tcpcb *
tcp_drop(struct tcpcb * tp,int errno)2387 tcp_drop(struct tcpcb *tp, int errno)
2388 {
2389 struct socket *so = tptosocket(tp);
2390
2391 NET_EPOCH_ASSERT();
2392 INP_WLOCK_ASSERT(tptoinpcb(tp));
2393
2394 if (TCPS_HAVERCVDSYN(tp->t_state)) {
2395 tcp_state_change(tp, TCPS_CLOSED);
2396 /* Don't use tcp_output() here due to possible recursion. */
2397 (void)tcp_output_nodrop(tp);
2398 TCPSTAT_INC(tcps_drops);
2399 } else
2400 TCPSTAT_INC(tcps_conndrops);
2401 if (errno == ETIMEDOUT && tp->t_softerror)
2402 errno = tp->t_softerror;
2403 so->so_error = errno;
2404 return (tcp_close(tp));
2405 }
2406
2407 void
tcp_discardcb(struct tcpcb * tp)2408 tcp_discardcb(struct tcpcb *tp)
2409 {
2410 struct inpcb *inp = tptoinpcb(tp);
2411 struct socket *so = tptosocket(tp);
2412 struct mbuf *m;
2413 #ifdef INET6
2414 bool isipv6 = (inp->inp_vflag & INP_IPV6) != 0;
2415 #endif
2416
2417 INP_WLOCK_ASSERT(inp);
2418 MPASS(!callout_active(&tp->t_callout));
2419 MPASS(TAILQ_EMPTY(&tp->snd_holes));
2420
2421 /* free the reassembly queue, if any */
2422 tcp_reass_flush(tp);
2423
2424 #ifdef TCP_OFFLOAD
2425 /* Disconnect offload device, if any. */
2426 if (tp->t_flags & TF_TOE)
2427 tcp_offload_detach(tp);
2428 #endif
2429
2430 /* Allow the CC algorithm to clean up after itself. */
2431 if (CC_ALGO(tp)->cb_destroy != NULL)
2432 CC_ALGO(tp)->cb_destroy(&tp->t_ccv);
2433 CC_DATA(tp) = NULL;
2434 /* Detach from the CC algorithm */
2435 cc_detach(tp);
2436
2437 #ifdef TCP_HHOOK
2438 khelp_destroy_osd(&tp->t_osd);
2439 #endif
2440 #ifdef STATS
2441 stats_blob_destroy(tp->t_stats);
2442 #endif
2443 #ifdef TCP_REQUEST_TRK
2444 if (tp->t_tcpreq_info != NULL) {
2445 free(tp->t_tcpreq_info, M_TCPREQTRK);
2446 tp->t_tcpreq_info = NULL;
2447 }
2448 #endif
2449
2450 CC_ALGO(tp) = NULL;
2451 if ((m = STAILQ_FIRST(&tp->t_inqueue)) != NULL) {
2452 struct mbuf *prev;
2453
2454 STAILQ_INIT(&tp->t_inqueue);
2455 STAILQ_FOREACH_FROM_SAFE(m, &tp->t_inqueue, m_stailqpkt, prev)
2456 m_freem(m);
2457 }
2458 TCPSTATES_DEC(tp->t_state);
2459
2460 if (tp->t_fb->tfb_tcp_fb_fini)
2461 (*tp->t_fb->tfb_tcp_fb_fini)(tp, 1);
2462 MPASS(!tcp_in_hpts(tp));
2463 #ifdef TCP_BLACKBOX
2464 tcp_log_tcpcbfini(tp);
2465 #endif
2466
2467 /*
2468 * If we got enough samples through the srtt filter,
2469 * save the rtt and rttvar in the routing entry.
2470 * 'Enough' is arbitrarily defined as 4 rtt samples.
2471 * 4 samples is enough for the srtt filter to converge
2472 * to within enough % of the correct value; fewer samples
2473 * and we could save a bogus rtt. The danger is not high
2474 * as tcp quickly recovers from everything.
2475 * XXX: Works very well but needs some more statistics!
2476 *
2477 * XXXRRS: Updating must be after the stack fini() since
2478 * that may be converting some internal representation of
2479 * say srtt etc into the general one used by other stacks.
2480 */
2481 if (tp->t_rttupdated >= 4) {
2482 struct hc_metrics_lite metrics;
2483 uint32_t ssthresh;
2484
2485 bzero(&metrics, sizeof(metrics));
2486 /*
2487 * Update the ssthresh always when the conditions below
2488 * are satisfied. This gives us better new start value
2489 * for the congestion avoidance for new connections.
2490 * ssthresh is only set if packet loss occurred on a session.
2491 */
2492 ssthresh = tp->snd_ssthresh;
2493 if (ssthresh != 0 && ssthresh < so->so_snd.sb_hiwat / 2) {
2494 /*
2495 * convert the limit from user data bytes to
2496 * packets then to packet data bytes.
2497 */
2498 ssthresh = (ssthresh + tp->t_maxseg / 2) / tp->t_maxseg;
2499 if (ssthresh < 2)
2500 ssthresh = 2;
2501 ssthresh *= (tp->t_maxseg +
2502 #ifdef INET6
2503 (isipv6 ? sizeof (struct ip6_hdr) +
2504 sizeof (struct tcphdr) :
2505 #endif
2506 sizeof (struct tcpiphdr)
2507 #ifdef INET6
2508 )
2509 #endif
2510 );
2511 } else
2512 ssthresh = 0;
2513 metrics.hc_ssthresh = ssthresh;
2514
2515 metrics.hc_rtt = tp->t_srtt;
2516 metrics.hc_rttvar = tp->t_rttvar;
2517 metrics.hc_cwnd = tp->snd_cwnd;
2518 metrics.hc_sendpipe = 0;
2519 metrics.hc_recvpipe = 0;
2520
2521 tcp_hc_update(&inp->inp_inc, &metrics);
2522 }
2523
2524 refcount_release(&tp->t_fb->tfb_refcnt);
2525 }
2526
2527 /*
2528 * Attempt to close a TCP control block, marking it as dropped, and freeing
2529 * the socket if we hold the only reference.
2530 */
2531 struct tcpcb *
tcp_close(struct tcpcb * tp)2532 tcp_close(struct tcpcb *tp)
2533 {
2534 struct inpcb *inp = tptoinpcb(tp);
2535 struct socket *so = tptosocket(tp);
2536
2537 INP_WLOCK_ASSERT(inp);
2538
2539 #ifdef TCP_OFFLOAD
2540 if (tp->t_state == TCPS_LISTEN)
2541 tcp_offload_listen_stop(tp);
2542 #endif
2543 /*
2544 * This releases the TFO pending counter resource for TFO listen
2545 * sockets as well as passively-created TFO sockets that transition
2546 * from SYN_RECEIVED to CLOSED.
2547 */
2548 if (tp->t_tfo_pending) {
2549 tcp_fastopen_decrement_counter(tp->t_tfo_pending);
2550 tp->t_tfo_pending = NULL;
2551 }
2552 tcp_timer_stop(tp);
2553 if (tp->t_fb->tfb_tcp_timer_stop_all != NULL)
2554 tp->t_fb->tfb_tcp_timer_stop_all(tp);
2555 #if defined(INET) && defined(INET6)
2556 if ((inp->inp_vflag & INP_IPV6) != 0)
2557 in6_pcbdisconnect(inp);
2558 else
2559 in_pcbdisconnect(inp);
2560 #elif defined(INET6)
2561 in6_pcbdisconnect(inp);
2562 #else
2563 in_pcbdisconnect(inp);
2564 #endif
2565 TCPSTAT_INC(tcps_closed);
2566 if (tp->t_state != TCPS_CLOSED)
2567 tcp_state_change(tp, TCPS_CLOSED);
2568 tp->t_flags |= TF_DISCONNECTED;
2569 KASSERT(inp->inp_socket != NULL, ("tcp_close: inp_socket NULL"));
2570 tcp_free_sackholes(tp);
2571 soisdisconnected(so);
2572 if (inp->inp_flags & INP_SOCKREF) {
2573 inp->inp_flags &= ~INP_SOCKREF;
2574 INP_WUNLOCK(inp);
2575 sorele(so);
2576 return (NULL);
2577 }
2578 return (tp);
2579 }
2580
2581 /*
2582 * Notify a tcp user of an asynchronous error;
2583 * store error as soft error, but wake up user
2584 * (for now, won't do anything until can select for soft error).
2585 *
2586 * Do not wake up user since there currently is no mechanism for
2587 * reporting soft errors (yet - a kqueue filter may be added).
2588 */
2589 static struct inpcb *
tcp_notify(struct inpcb * inp,int error)2590 tcp_notify(struct inpcb *inp, int error)
2591 {
2592 struct tcpcb *tp;
2593
2594 INP_WLOCK_ASSERT(inp);
2595
2596 tp = intotcpcb(inp);
2597 KASSERT(tp != NULL, ("tcp_notify: tp == NULL"));
2598
2599 /*
2600 * Ignore some errors if we are hooked up.
2601 * If connection hasn't completed, has retransmitted several times,
2602 * and receives a second error, give up now. This is better
2603 * than waiting a long time to establish a connection that
2604 * can never complete.
2605 */
2606 if (tp->t_state == TCPS_ESTABLISHED &&
2607 (error == EHOSTUNREACH || error == ENETUNREACH ||
2608 error == EHOSTDOWN)) {
2609 if (inp->inp_route.ro_nh) {
2610 NH_FREE(inp->inp_route.ro_nh);
2611 inp->inp_route.ro_nh = (struct nhop_object *)NULL;
2612 }
2613 return (inp);
2614 } else if (tp->t_state < TCPS_ESTABLISHED && tp->t_rxtshift > 3 &&
2615 tp->t_softerror) {
2616 tp = tcp_drop(tp, error);
2617 if (tp != NULL)
2618 return (inp);
2619 else
2620 return (NULL);
2621 } else {
2622 tp->t_softerror = error;
2623 return (inp);
2624 }
2625 #if 0
2626 wakeup( &so->so_timeo);
2627 sorwakeup(so);
2628 sowwakeup(so);
2629 #endif
2630 }
2631
2632 static int
tcp_pcblist(SYSCTL_HANDLER_ARGS)2633 tcp_pcblist(SYSCTL_HANDLER_ARGS)
2634 {
2635 struct inpcb_iterator inpi = INP_ALL_ITERATOR(&V_tcbinfo,
2636 INPLOOKUP_RLOCKPCB);
2637 struct xinpgen xig;
2638 struct inpcb *inp;
2639 int error;
2640
2641 if (req->newptr != NULL)
2642 return (EPERM);
2643
2644 if (req->oldptr == NULL) {
2645 int n;
2646
2647 n = V_tcbinfo.ipi_count +
2648 counter_u64_fetch(V_tcps_states[TCPS_SYN_RECEIVED]);
2649 n += imax(n / 8, 10);
2650 req->oldidx = 2 * (sizeof xig) + n * sizeof(struct xtcpcb);
2651 return (0);
2652 }
2653
2654 if ((error = sysctl_wire_old_buffer(req, 0)) != 0)
2655 return (error);
2656
2657 bzero(&xig, sizeof(xig));
2658 xig.xig_len = sizeof xig;
2659 xig.xig_count = V_tcbinfo.ipi_count +
2660 counter_u64_fetch(V_tcps_states[TCPS_SYN_RECEIVED]);
2661 xig.xig_gen = V_tcbinfo.ipi_gencnt;
2662 xig.xig_sogen = so_gencnt;
2663 error = SYSCTL_OUT(req, &xig, sizeof xig);
2664 if (error)
2665 return (error);
2666
2667 error = syncache_pcblist(req);
2668 if (error)
2669 return (error);
2670
2671 while ((inp = inp_next(&inpi)) != NULL) {
2672 if (inp->inp_gencnt <= xig.xig_gen &&
2673 cr_canseeinpcb(req->td->td_ucred, inp) == 0) {
2674 struct xtcpcb xt;
2675
2676 tcp_inptoxtp(inp, &xt);
2677 error = SYSCTL_OUT(req, &xt, sizeof xt);
2678 if (error) {
2679 INP_RUNLOCK(inp);
2680 break;
2681 } else
2682 continue;
2683 }
2684 }
2685
2686 if (!error) {
2687 /*
2688 * Give the user an updated idea of our state.
2689 * If the generation differs from what we told
2690 * her before, she knows that something happened
2691 * while we were processing this request, and it
2692 * might be necessary to retry.
2693 */
2694 xig.xig_gen = V_tcbinfo.ipi_gencnt;
2695 xig.xig_sogen = so_gencnt;
2696 xig.xig_count = V_tcbinfo.ipi_count +
2697 counter_u64_fetch(V_tcps_states[TCPS_SYN_RECEIVED]);
2698 error = SYSCTL_OUT(req, &xig, sizeof xig);
2699 }
2700
2701 return (error);
2702 }
2703
2704 SYSCTL_PROC(_net_inet_tcp, TCPCTL_PCBLIST, pcblist,
2705 CTLTYPE_OPAQUE | CTLFLAG_RD | CTLFLAG_NEEDGIANT,
2706 NULL, 0, tcp_pcblist, "S,xtcpcb",
2707 "List of active TCP connections");
2708
2709 #define SND_TAG_STATUS_MAXLEN 128
2710
2711 #ifdef KERN_TLS
2712
2713 static struct sx ktlslist_lock;
2714 SX_SYSINIT(ktlslistlock, &ktlslist_lock, "ktlslist");
2715 static uint64_t ktls_glob_gen = 1;
2716
2717 static int
tcp_ktlslist_locked(SYSCTL_HANDLER_ARGS,bool export_keys)2718 tcp_ktlslist_locked(SYSCTL_HANDLER_ARGS, bool export_keys)
2719 {
2720 struct xinpgen xig;
2721 struct inpcb *inp;
2722 struct socket *so;
2723 struct ktls_session *ksr, *kss;
2724 char *buf;
2725 struct xktls_session *xktls;
2726 uint64_t ipi_gencnt;
2727 size_t buflen, len, sz;
2728 u_int cnt;
2729 int error;
2730 bool ek, p;
2731
2732 sx_assert(&ktlslist_lock, SA_XLOCKED);
2733 if (req->newptr != NULL)
2734 return (EPERM);
2735
2736 len = 0;
2737 cnt = 0;
2738 ipi_gencnt = V_tcbinfo.ipi_gencnt;
2739 bzero(&xig, sizeof(xig));
2740 xig.xig_len = sizeof(xig);
2741 xig.xig_gen = ktls_glob_gen++;
2742 xig.xig_sogen = so_gencnt;
2743
2744 struct inpcb_iterator inpi = INP_ALL_ITERATOR(&V_tcbinfo,
2745 INPLOOKUP_RLOCKPCB);
2746 while ((inp = inp_next(&inpi)) != NULL) {
2747 if (inp->inp_gencnt > ipi_gencnt ||
2748 cr_canseeinpcb(req->td->td_ucred, inp) != 0)
2749 continue;
2750
2751 so = inp->inp_socket;
2752 if (so != NULL && so->so_gencnt <= xig.xig_sogen) {
2753 p = false;
2754 ek = export_keys && cr_canexport_ktlskeys(
2755 req->td, inp);
2756 ksr = so->so_rcv.sb_tls_info;
2757 if (ksr != NULL) {
2758 ksr->gen = xig.xig_gen;
2759 p = true;
2760 if (ek) {
2761 sz = SIZE_T_MAX;
2762 ktls_session_copy_keys(ksr,
2763 NULL, &sz);
2764 len += sz;
2765 }
2766 if (ksr->snd_tag != NULL &&
2767 ksr->snd_tag->sw->snd_tag_status_str !=
2768 NULL) {
2769 sz = SND_TAG_STATUS_MAXLEN;
2770 in_pcbref(inp);
2771 INP_RUNLOCK(inp);
2772 error = ksr->snd_tag->sw->
2773 snd_tag_status_str(
2774 ksr->snd_tag, NULL, &sz);
2775 if (in_pcbrele_rlock(inp))
2776 return (EDEADLK);
2777 if (error == 0)
2778 len += sz;
2779 }
2780 }
2781 kss = so->so_snd.sb_tls_info;
2782 if (kss != NULL) {
2783 kss->gen = xig.xig_gen;
2784 p = true;
2785 if (ek) {
2786 sz = SIZE_T_MAX;
2787 ktls_session_copy_keys(kss,
2788 NULL, &sz);
2789 len += sz;
2790 }
2791 if (kss->snd_tag != NULL &&
2792 kss->snd_tag->sw->snd_tag_status_str !=
2793 NULL) {
2794 sz = SND_TAG_STATUS_MAXLEN;
2795 in_pcbref(inp);
2796 INP_RUNLOCK(inp);
2797 error = kss->snd_tag->sw->
2798 snd_tag_status_str(
2799 kss->snd_tag, NULL, &sz);
2800 if (in_pcbrele_rlock(inp))
2801 return (EDEADLK);
2802 if (error == 0)
2803 len += sz;
2804 }
2805 }
2806 if (p) {
2807 len += sizeof(*xktls);
2808 len = roundup2(len, __alignof(struct
2809 xktls_session));
2810 }
2811 }
2812 }
2813 if (req->oldptr == NULL) {
2814 len += 2 * sizeof(xig);
2815 len += 3 * len / 4;
2816 req->oldidx = len;
2817 return (0);
2818 }
2819
2820 if ((error = sysctl_wire_old_buffer(req, 0)) != 0)
2821 return (error);
2822
2823 error = SYSCTL_OUT(req, &xig, sizeof xig);
2824 if (error != 0)
2825 return (error);
2826
2827 buflen = roundup2(sizeof(*xktls) + 2 * TLS_MAX_PARAM_SIZE +
2828 2 * SND_TAG_STATUS_MAXLEN, __alignof(struct xktls_session));
2829 buf = malloc(buflen, M_TEMP, M_WAITOK | M_ZERO);
2830 struct inpcb_iterator inpi1 = INP_ALL_ITERATOR(&V_tcbinfo,
2831 INPLOOKUP_RLOCKPCB);
2832 while ((inp = inp_next(&inpi1)) != NULL) {
2833 if (inp->inp_gencnt > ipi_gencnt ||
2834 cr_canseeinpcb(req->td->td_ucred, inp) != 0)
2835 continue;
2836
2837 so = inp->inp_socket;
2838 if (so == NULL)
2839 continue;
2840
2841 p = false;
2842 ek = export_keys && cr_canexport_ktlskeys(req->td, inp);
2843 ksr = so->so_rcv.sb_tls_info;
2844 kss = so->so_snd.sb_tls_info;
2845 xktls = (struct xktls_session *)buf;
2846 if (ksr != NULL && ksr->gen == xig.xig_gen) {
2847 p = true;
2848 ktls_session_to_xktls_onedir(ksr, ek, &xktls->rcv);
2849 }
2850 if (kss != NULL && kss->gen == xig.xig_gen) {
2851 p = true;
2852 ktls_session_to_xktls_onedir(kss, ek, &xktls->snd);
2853 }
2854 if (!p)
2855 continue;
2856
2857 xktls->inp_gencnt = inp->inp_gencnt;
2858 xktls->so_pcb = (kvaddr_t)inp;
2859 memcpy(&xktls->coninf, &inp->inp_inc, sizeof(xktls->coninf));
2860 len = sizeof(*xktls);
2861 if (ksr != NULL && ksr->gen == xig.xig_gen) {
2862 if (ek) {
2863 sz = buflen - len;
2864 ktls_session_copy_keys(ksr, buf + len, &sz);
2865 len += sz;
2866 } else {
2867 xktls->rcv.cipher_key_len = 0;
2868 xktls->rcv.auth_key_len = 0;
2869 }
2870 if (ksr->snd_tag != NULL &&
2871 ksr->snd_tag->sw->snd_tag_status_str != NULL) {
2872 sz = SND_TAG_STATUS_MAXLEN;
2873 in_pcbref(inp);
2874 INP_RUNLOCK(inp);
2875 error = ksr->snd_tag->sw->snd_tag_status_str(
2876 ksr->snd_tag, buf + len, &sz);
2877 if (in_pcbrele_rlock(inp))
2878 return (EDEADLK);
2879 if (error == 0) {
2880 xktls->rcv.drv_st_len = sz;
2881 len += sz;
2882 }
2883 }
2884 }
2885 if (kss != NULL && kss->gen == xig.xig_gen) {
2886 if (ek) {
2887 sz = buflen - len;
2888 ktls_session_copy_keys(kss, buf + len, &sz);
2889 len += sz;
2890 } else {
2891 xktls->snd.cipher_key_len = 0;
2892 xktls->snd.auth_key_len = 0;
2893 }
2894 if (kss->snd_tag != NULL &&
2895 kss->snd_tag->sw->snd_tag_status_str != NULL) {
2896 sz = SND_TAG_STATUS_MAXLEN;
2897 in_pcbref(inp);
2898 INP_RUNLOCK(inp);
2899 error = kss->snd_tag->sw->snd_tag_status_str(
2900 kss->snd_tag, buf + len, &sz);
2901 if (in_pcbrele_rlock(inp))
2902 return (EDEADLK);
2903 if (error == 0) {
2904 xktls->snd.drv_st_len = sz;
2905 len += sz;
2906 }
2907 }
2908 }
2909 len = roundup2(len, __alignof(*xktls));
2910 xktls->tsz = len;
2911 xktls->fsz = sizeof(*xktls);
2912
2913 error = SYSCTL_OUT(req, xktls, len);
2914 if (error != 0) {
2915 INP_RUNLOCK(inp);
2916 break;
2917 }
2918 cnt++;
2919 }
2920
2921 if (error == 0) {
2922 xig.xig_sogen = so_gencnt;
2923 xig.xig_count = cnt;
2924 error = SYSCTL_OUT(req, &xig, sizeof(xig));
2925 }
2926
2927 zfree(buf, M_TEMP);
2928 return (error);
2929 }
2930
2931 static int
tcp_ktlslist1(SYSCTL_HANDLER_ARGS,bool export_keys)2932 tcp_ktlslist1(SYSCTL_HANDLER_ARGS, bool export_keys)
2933 {
2934 int repeats, error;
2935
2936 for (repeats = 0; repeats < 100; repeats++) {
2937 if (sx_xlock_sig(&ktlslist_lock))
2938 return (EINTR);
2939 error = tcp_ktlslist_locked(oidp, arg1, arg2, req,
2940 export_keys);
2941 sx_xunlock(&ktlslist_lock);
2942 if (error != EDEADLK)
2943 break;
2944 if (sig_intr() != 0) {
2945 error = EINTR;
2946 break;
2947 }
2948 req->oldidx = 0;
2949 }
2950 return (error);
2951 }
2952
2953 static int
tcp_ktlslist_nokeys(SYSCTL_HANDLER_ARGS)2954 tcp_ktlslist_nokeys(SYSCTL_HANDLER_ARGS)
2955 {
2956 return (tcp_ktlslist1(oidp, arg1, arg2, req, false));
2957 }
2958
2959 static int
tcp_ktlslist_wkeys(SYSCTL_HANDLER_ARGS)2960 tcp_ktlslist_wkeys(SYSCTL_HANDLER_ARGS)
2961 {
2962 return (tcp_ktlslist1(oidp, arg1, arg2, req, true));
2963 }
2964
2965 SYSCTL_PROC(_net_inet_tcp, TCPCTL_KTLSLIST, ktlslist,
2966 CTLTYPE_OPAQUE | CTLFLAG_RD | CTLFLAG_MPSAFE,
2967 NULL, 0, tcp_ktlslist_nokeys, "S,xktls_session",
2968 "List of active kTLS sessions for TCP connections");
2969 SYSCTL_PROC(_net_inet_tcp, TCPCTL_KTLSLIST_WKEYS, ktlslist_wkeys,
2970 CTLTYPE_OPAQUE | CTLFLAG_RD | CTLFLAG_MPSAFE,
2971 NULL, 0, tcp_ktlslist_wkeys, "S,xktls_session",
2972 "List of active kTLS sessions for TCP connections with keys");
2973 #endif /* KERN_TLS */
2974
2975 #ifdef INET
2976 static int
tcp_getcred(SYSCTL_HANDLER_ARGS)2977 tcp_getcred(SYSCTL_HANDLER_ARGS)
2978 {
2979 struct xucred xuc;
2980 struct sockaddr_in addrs[2];
2981 struct epoch_tracker et;
2982 struct inpcb *inp;
2983 int error;
2984
2985 if (req->newptr == NULL)
2986 return (EINVAL);
2987 error = priv_check(req->td, PRIV_NETINET_GETCRED);
2988 if (error)
2989 return (error);
2990 error = SYSCTL_IN(req, addrs, sizeof(addrs));
2991 if (error)
2992 return (error);
2993 NET_EPOCH_ENTER(et);
2994 inp = in_pcblookup(&V_tcbinfo, addrs[1].sin_addr, addrs[1].sin_port,
2995 addrs[0].sin_addr, addrs[0].sin_port, INPLOOKUP_RLOCKPCB, NULL);
2996 NET_EPOCH_EXIT(et);
2997 if (inp != NULL) {
2998 if (error == 0)
2999 error = cr_canseeinpcb(req->td->td_ucred, inp);
3000 if (error == 0)
3001 cru2x(inp->inp_cred, &xuc);
3002 INP_RUNLOCK(inp);
3003 } else
3004 error = ENOENT;
3005 if (error == 0)
3006 error = SYSCTL_OUT(req, &xuc, sizeof(struct xucred));
3007 return (error);
3008 }
3009
3010 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, getcred,
3011 CTLTYPE_OPAQUE | CTLFLAG_RW | CTLFLAG_PRISON | CTLFLAG_NEEDGIANT,
3012 0, 0, tcp_getcred, "S,xucred",
3013 "Get the xucred of a TCP connection");
3014 #endif /* INET */
3015
3016 #ifdef INET6
3017 static int
tcp6_getcred(SYSCTL_HANDLER_ARGS)3018 tcp6_getcred(SYSCTL_HANDLER_ARGS)
3019 {
3020 struct epoch_tracker et;
3021 struct xucred xuc;
3022 struct sockaddr_in6 addrs[2];
3023 struct inpcb *inp;
3024 int error;
3025 #ifdef INET
3026 int mapped = 0;
3027 #endif
3028
3029 if (req->newptr == NULL)
3030 return (EINVAL);
3031 error = priv_check(req->td, PRIV_NETINET_GETCRED);
3032 if (error)
3033 return (error);
3034 error = SYSCTL_IN(req, addrs, sizeof(addrs));
3035 if (error)
3036 return (error);
3037 if ((error = sa6_embedscope(&addrs[0], V_ip6_use_defzone)) != 0 ||
3038 (error = sa6_embedscope(&addrs[1], V_ip6_use_defzone)) != 0) {
3039 return (error);
3040 }
3041 if (IN6_IS_ADDR_V4MAPPED(&addrs[0].sin6_addr)) {
3042 #ifdef INET
3043 if (IN6_IS_ADDR_V4MAPPED(&addrs[1].sin6_addr))
3044 mapped = 1;
3045 else
3046 #endif
3047 return (EINVAL);
3048 }
3049
3050 NET_EPOCH_ENTER(et);
3051 #ifdef INET
3052 if (mapped == 1)
3053 inp = in_pcblookup(&V_tcbinfo,
3054 *(struct in_addr *)&addrs[1].sin6_addr.s6_addr[12],
3055 addrs[1].sin6_port,
3056 *(struct in_addr *)&addrs[0].sin6_addr.s6_addr[12],
3057 addrs[0].sin6_port, INPLOOKUP_RLOCKPCB, NULL);
3058 else
3059 #endif
3060 inp = in6_pcblookup(&V_tcbinfo,
3061 &addrs[1].sin6_addr, addrs[1].sin6_port,
3062 &addrs[0].sin6_addr, addrs[0].sin6_port,
3063 INPLOOKUP_RLOCKPCB, NULL);
3064 NET_EPOCH_EXIT(et);
3065 if (inp != NULL) {
3066 if (error == 0)
3067 error = cr_canseeinpcb(req->td->td_ucred, inp);
3068 if (error == 0)
3069 cru2x(inp->inp_cred, &xuc);
3070 INP_RUNLOCK(inp);
3071 } else
3072 error = ENOENT;
3073 if (error == 0)
3074 error = SYSCTL_OUT(req, &xuc, sizeof(struct xucred));
3075 return (error);
3076 }
3077
3078 SYSCTL_PROC(_net_inet6_tcp6, OID_AUTO, getcred,
3079 CTLTYPE_OPAQUE | CTLFLAG_RW | CTLFLAG_PRISON | CTLFLAG_NEEDGIANT,
3080 0, 0, tcp6_getcred, "S,xucred",
3081 "Get the xucred of a TCP6 connection");
3082 #endif /* INET6 */
3083
3084 #ifdef INET
3085 /* Path MTU to try next when a fragmentation-needed message is received. */
3086 static inline int
tcp_next_pmtu(const struct icmp * icp,const struct ip * ip)3087 tcp_next_pmtu(const struct icmp *icp, const struct ip *ip)
3088 {
3089 int mtu = ntohs(icp->icmp_nextmtu);
3090
3091 /* If no alternative MTU was proposed, try the next smaller one. */
3092 if (!mtu)
3093 mtu = ip_next_mtu(ntohs(ip->ip_len), 1);
3094 if (mtu < V_tcp_minmss + sizeof(struct tcpiphdr))
3095 mtu = V_tcp_minmss + sizeof(struct tcpiphdr);
3096
3097 return (mtu);
3098 }
3099
3100 static void
tcp_ctlinput_with_port(struct icmp * icp,uint16_t port)3101 tcp_ctlinput_with_port(struct icmp *icp, uint16_t port)
3102 {
3103 struct ip *ip;
3104 struct tcphdr *th;
3105 struct inpcb *inp;
3106 struct tcpcb *tp;
3107 struct inpcb *(*notify)(struct inpcb *, int);
3108 struct in_conninfo inc;
3109 tcp_seq icmp_tcp_seq;
3110 int errno, mtu;
3111
3112 errno = icmp_errmap(icp);
3113 switch (errno) {
3114 case 0:
3115 return;
3116 case EMSGSIZE:
3117 notify = tcp_mtudisc_notify;
3118 break;
3119 case ECONNREFUSED:
3120 if (V_icmp_may_rst)
3121 notify = tcp_drop_syn_sent;
3122 else
3123 notify = tcp_notify;
3124 break;
3125 case EHOSTUNREACH:
3126 if (V_icmp_may_rst && icp->icmp_type == ICMP_TIMXCEED)
3127 notify = tcp_drop_syn_sent;
3128 else
3129 notify = tcp_notify;
3130 break;
3131 default:
3132 notify = tcp_notify;
3133 }
3134
3135 ip = &icp->icmp_ip;
3136 th = (struct tcphdr *)((caddr_t)ip + (ip->ip_hl << 2));
3137 icmp_tcp_seq = th->th_seq;
3138 inp = in_pcblookup(&V_tcbinfo, ip->ip_dst, th->th_dport, ip->ip_src,
3139 th->th_sport, INPLOOKUP_WLOCKPCB, NULL);
3140 if (inp != NULL) {
3141 tp = intotcpcb(inp);
3142 #ifdef TCP_OFFLOAD
3143 if (tp->t_flags & TF_TOE && errno == EMSGSIZE) {
3144 /*
3145 * MTU discovery for offloaded connections. Let
3146 * the TOE driver verify seq# and process it.
3147 */
3148 mtu = tcp_next_pmtu(icp, ip);
3149 tcp_offload_pmtu_update(tp, icmp_tcp_seq, mtu);
3150 goto out;
3151 }
3152 #endif
3153 if (tp->t_port != port)
3154 goto out;
3155 if (SEQ_GEQ(ntohl(icmp_tcp_seq), tp->snd_una) &&
3156 SEQ_LT(ntohl(icmp_tcp_seq), tp->snd_max)) {
3157 if (errno == EMSGSIZE) {
3158 /*
3159 * MTU discovery: we got a needfrag and
3160 * will potentially try a lower MTU.
3161 */
3162 mtu = tcp_next_pmtu(icp, ip);
3163
3164 /*
3165 * Only process the offered MTU if it
3166 * is smaller than the current one.
3167 */
3168 if (mtu < tp->t_maxseg +
3169 sizeof(struct tcpiphdr)) {
3170 bzero(&inc, sizeof(inc));
3171 inc.inc_faddr = ip->ip_dst;
3172 inc.inc_fibnum =
3173 inp->inp_inc.inc_fibnum;
3174 tcp_hc_updatemtu(&inc, mtu);
3175 inp = tcp_mtudisc(inp, mtu);
3176 }
3177 } else
3178 inp = (*notify)(inp, errno);
3179 }
3180 } else {
3181 bzero(&inc, sizeof(inc));
3182 inc.inc_fport = th->th_dport;
3183 inc.inc_lport = th->th_sport;
3184 inc.inc_faddr = ip->ip_dst;
3185 inc.inc_laddr = ip->ip_src;
3186 syncache_unreach(&inc, icmp_tcp_seq, port);
3187 }
3188 out:
3189 if (inp != NULL)
3190 INP_WUNLOCK(inp);
3191 }
3192
3193 static void
tcp_ctlinput(struct icmp * icmp)3194 tcp_ctlinput(struct icmp *icmp)
3195 {
3196 tcp_ctlinput_with_port(icmp, htons(0));
3197 }
3198
3199 static void
tcp_ctlinput_viaudp(udp_tun_icmp_param_t param)3200 tcp_ctlinput_viaudp(udp_tun_icmp_param_t param)
3201 {
3202 /* Its a tunneled TCP over UDP icmp */
3203 struct icmp *icmp = param.icmp;
3204 struct ip *outer_ip, *inner_ip;
3205 struct udphdr *udp;
3206 struct tcphdr *th, ttemp;
3207 int i_hlen, o_len;
3208 uint16_t port;
3209
3210 outer_ip = (struct ip *)((caddr_t)icmp - sizeof(struct ip));
3211 inner_ip = &icmp->icmp_ip;
3212 i_hlen = inner_ip->ip_hl << 2;
3213 o_len = ntohs(outer_ip->ip_len);
3214 if (o_len <
3215 (sizeof(struct ip) + 8 + i_hlen + sizeof(struct udphdr) + offsetof(struct tcphdr, th_ack))) {
3216 /* Not enough data present */
3217 return;
3218 }
3219 /* Ok lets strip out the inner udphdr header by copying up on top of it the tcp hdr */
3220 udp = (struct udphdr *)(((caddr_t)inner_ip) + i_hlen);
3221 if (ntohs(udp->uh_sport) != V_tcp_udp_tunneling_port) {
3222 return;
3223 }
3224 port = udp->uh_dport;
3225 th = (struct tcphdr *)(udp + 1);
3226 memcpy(&ttemp, th, sizeof(struct tcphdr));
3227 memcpy(udp, &ttemp, sizeof(struct tcphdr));
3228 /* Now adjust down the size of the outer IP header */
3229 o_len -= sizeof(struct udphdr);
3230 outer_ip->ip_len = htons(o_len);
3231 /* Now call in to the normal handling code */
3232 tcp_ctlinput_with_port(icmp, port);
3233 }
3234 #endif /* INET */
3235
3236 #ifdef INET6
3237 static inline int
tcp6_next_pmtu(const struct icmp6_hdr * icmp6)3238 tcp6_next_pmtu(const struct icmp6_hdr *icmp6)
3239 {
3240 int mtu = ntohl(icmp6->icmp6_mtu);
3241
3242 /*
3243 * If no alternative MTU was proposed, or the proposed MTU was too
3244 * small, set to the min.
3245 */
3246 if (mtu < IPV6_MMTU)
3247 mtu = IPV6_MMTU;
3248 return (mtu);
3249 }
3250
3251 static void
tcp6_ctlinput_with_port(struct ip6ctlparam * ip6cp,uint16_t port)3252 tcp6_ctlinput_with_port(struct ip6ctlparam *ip6cp, uint16_t port)
3253 {
3254 struct in6_addr *dst;
3255 struct inpcb *(*notify)(struct inpcb *, int);
3256 struct ip6_hdr *ip6;
3257 struct mbuf *m;
3258 struct inpcb *inp;
3259 struct tcpcb *tp;
3260 struct icmp6_hdr *icmp6;
3261 struct in_conninfo inc;
3262 struct tcp_ports {
3263 uint16_t th_sport;
3264 uint16_t th_dport;
3265 } t_ports;
3266 tcp_seq icmp_tcp_seq;
3267 unsigned int mtu;
3268 unsigned int off;
3269 int errno;
3270
3271 icmp6 = ip6cp->ip6c_icmp6;
3272 m = ip6cp->ip6c_m;
3273 ip6 = ip6cp->ip6c_ip6;
3274 off = ip6cp->ip6c_off;
3275 dst = &ip6cp->ip6c_finaldst->sin6_addr;
3276
3277 errno = icmp6_errmap(icmp6);
3278 switch (errno) {
3279 case 0:
3280 return;
3281 case EMSGSIZE:
3282 notify = tcp_mtudisc_notify;
3283 break;
3284 case ECONNREFUSED:
3285 if (V_icmp_may_rst)
3286 notify = tcp_drop_syn_sent;
3287 else
3288 notify = tcp_notify;
3289 break;
3290 case EHOSTUNREACH:
3291 /*
3292 * There are only four ICMPs that may reset connection:
3293 * - administratively prohibited
3294 * - port unreachable
3295 * - time exceeded in transit
3296 * - unknown next header
3297 */
3298 if (V_icmp_may_rst &&
3299 ((icmp6->icmp6_type == ICMP6_DST_UNREACH &&
3300 (icmp6->icmp6_code == ICMP6_DST_UNREACH_ADMIN ||
3301 icmp6->icmp6_code == ICMP6_DST_UNREACH_NOPORT)) ||
3302 (icmp6->icmp6_type == ICMP6_TIME_EXCEEDED &&
3303 icmp6->icmp6_code == ICMP6_TIME_EXCEED_TRANSIT) ||
3304 (icmp6->icmp6_type == ICMP6_PARAM_PROB &&
3305 icmp6->icmp6_code == ICMP6_PARAMPROB_NEXTHEADER)))
3306 notify = tcp_drop_syn_sent;
3307 else
3308 notify = tcp_notify;
3309 break;
3310 default:
3311 notify = tcp_notify;
3312 }
3313
3314 /* Check if we can safely get the ports from the tcp hdr */
3315 if (m == NULL ||
3316 (m->m_pkthdr.len <
3317 (int32_t) (off + sizeof(struct tcp_ports)))) {
3318 return;
3319 }
3320 bzero(&t_ports, sizeof(struct tcp_ports));
3321 m_copydata(m, off, sizeof(struct tcp_ports), (caddr_t)&t_ports);
3322 inp = in6_pcblookup(&V_tcbinfo, &ip6->ip6_dst, t_ports.th_dport,
3323 &ip6->ip6_src, t_ports.th_sport, INPLOOKUP_WLOCKPCB, NULL);
3324 off += sizeof(struct tcp_ports);
3325 if (m->m_pkthdr.len < (int32_t) (off + sizeof(tcp_seq))) {
3326 goto out;
3327 }
3328 m_copydata(m, off, sizeof(tcp_seq), (caddr_t)&icmp_tcp_seq);
3329 if (inp != NULL) {
3330 tp = intotcpcb(inp);
3331 #ifdef TCP_OFFLOAD
3332 if (tp->t_flags & TF_TOE && errno == EMSGSIZE) {
3333 /* MTU discovery for offloaded connections. */
3334 mtu = tcp6_next_pmtu(icmp6);
3335 tcp_offload_pmtu_update(tp, icmp_tcp_seq, mtu);
3336 goto out;
3337 }
3338 #endif
3339 if (tp->t_port != port)
3340 goto out;
3341 if (SEQ_GEQ(ntohl(icmp_tcp_seq), tp->snd_una) &&
3342 SEQ_LT(ntohl(icmp_tcp_seq), tp->snd_max)) {
3343 if (errno == EMSGSIZE) {
3344 /*
3345 * MTU discovery:
3346 * If we got a needfrag set the MTU
3347 * in the route to the suggested new
3348 * value (if given) and then notify.
3349 */
3350 mtu = tcp6_next_pmtu(icmp6);
3351
3352 bzero(&inc, sizeof(inc));
3353 inc.inc_fibnum = M_GETFIB(m);
3354 inc.inc_flags |= INC_ISIPV6;
3355 inc.inc6_faddr = *dst;
3356 if (in6_setscope(&inc.inc6_faddr,
3357 m->m_pkthdr.rcvif, NULL))
3358 goto out;
3359 /*
3360 * Only process the offered MTU if it
3361 * is smaller than the current one.
3362 */
3363 if (mtu < tp->t_maxseg +
3364 sizeof (struct tcphdr) +
3365 sizeof (struct ip6_hdr)) {
3366 tcp_hc_updatemtu(&inc, mtu);
3367 tcp_mtudisc(inp, mtu);
3368 ICMP6STAT_INC(icp6s_pmtuchg);
3369 }
3370 } else
3371 inp = (*notify)(inp, errno);
3372 }
3373 } else {
3374 bzero(&inc, sizeof(inc));
3375 inc.inc_fibnum = M_GETFIB(m);
3376 inc.inc_flags |= INC_ISIPV6;
3377 inc.inc_fport = t_ports.th_dport;
3378 inc.inc_lport = t_ports.th_sport;
3379 inc.inc6_faddr = *dst;
3380 inc.inc6_laddr = ip6->ip6_src;
3381 syncache_unreach(&inc, icmp_tcp_seq, port);
3382 }
3383 out:
3384 if (inp != NULL)
3385 INP_WUNLOCK(inp);
3386 }
3387
3388 static void
tcp6_ctlinput(struct ip6ctlparam * ctl)3389 tcp6_ctlinput(struct ip6ctlparam *ctl)
3390 {
3391 tcp6_ctlinput_with_port(ctl, htons(0));
3392 }
3393
3394 static void
tcp6_ctlinput_viaudp(udp_tun_icmp_param_t param)3395 tcp6_ctlinput_viaudp(udp_tun_icmp_param_t param)
3396 {
3397 struct ip6ctlparam *ip6cp = param.ip6cp;
3398 struct mbuf *m;
3399 struct udphdr *udp;
3400 uint16_t port;
3401
3402 m = m_pulldown(ip6cp->ip6c_m, ip6cp->ip6c_off, sizeof(struct udphdr), NULL);
3403 if (m == NULL) {
3404 return;
3405 }
3406 udp = mtod(m, struct udphdr *);
3407 if (ntohs(udp->uh_sport) != V_tcp_udp_tunneling_port) {
3408 return;
3409 }
3410 port = udp->uh_dport;
3411 m_adj(m, sizeof(struct udphdr));
3412 if ((m->m_flags & M_PKTHDR) == 0) {
3413 ip6cp->ip6c_m->m_pkthdr.len -= sizeof(struct udphdr);
3414 }
3415 /* Now call in to the normal handling code */
3416 tcp6_ctlinput_with_port(ip6cp, port);
3417 }
3418
3419 #endif /* INET6 */
3420
3421 static uint32_t
tcp_keyed_hash(struct in_conninfo * inc,u_char * key,u_int len)3422 tcp_keyed_hash(struct in_conninfo *inc, u_char *key, u_int len)
3423 {
3424 SIPHASH_CTX ctx;
3425 uint32_t hash[2];
3426
3427 KASSERT(len >= SIPHASH_KEY_LENGTH,
3428 ("%s: keylen %u too short ", __func__, len));
3429 SipHash24_Init(&ctx);
3430 SipHash_SetKey(&ctx, (uint8_t *)key);
3431 SipHash_Update(&ctx, &inc->inc_fport, sizeof(uint16_t));
3432 SipHash_Update(&ctx, &inc->inc_lport, sizeof(uint16_t));
3433 switch (inc->inc_flags & INC_ISIPV6) {
3434 #ifdef INET
3435 case 0:
3436 SipHash_Update(&ctx, &inc->inc_faddr, sizeof(struct in_addr));
3437 SipHash_Update(&ctx, &inc->inc_laddr, sizeof(struct in_addr));
3438 break;
3439 #endif
3440 #ifdef INET6
3441 case INC_ISIPV6:
3442 SipHash_Update(&ctx, &inc->inc6_faddr, sizeof(struct in6_addr));
3443 SipHash_Update(&ctx, &inc->inc6_laddr, sizeof(struct in6_addr));
3444 break;
3445 #endif
3446 }
3447 SipHash_Final((uint8_t *)hash, &ctx);
3448
3449 return (hash[0] ^ hash[1]);
3450 }
3451
3452 uint32_t
tcp_new_ts_offset(struct in_conninfo * inc)3453 tcp_new_ts_offset(struct in_conninfo *inc)
3454 {
3455 struct in_conninfo inc_store, *local_inc;
3456
3457 if (!V_tcp_ts_offset_per_conn) {
3458 memcpy(&inc_store, inc, sizeof(struct in_conninfo));
3459 inc_store.inc_lport = 0;
3460 inc_store.inc_fport = 0;
3461 local_inc = &inc_store;
3462 } else {
3463 local_inc = inc;
3464 }
3465 return (tcp_keyed_hash(local_inc, V_ts_offset_secret,
3466 sizeof(V_ts_offset_secret)));
3467 }
3468
3469 /*
3470 * Following is where TCP initial sequence number generation occurs.
3471 *
3472 * There are two places where we must use initial sequence numbers:
3473 * 1. In SYN-ACK packets.
3474 * 2. In SYN packets.
3475 *
3476 * All ISNs for SYN-ACK packets are generated by the syncache. See
3477 * tcp_syncache.c for details.
3478 *
3479 * The ISNs in SYN packets must be monotonic; TIME_WAIT recycling
3480 * depends on this property. In addition, these ISNs should be
3481 * unguessable so as to prevent connection hijacking. To satisfy
3482 * the requirements of this situation, the algorithm outlined in
3483 * RFC 1948 is used, with only small modifications.
3484 *
3485 * Implementation details:
3486 *
3487 * Time is based off the system timer, and is corrected so that it
3488 * increases by one megabyte per second. This allows for proper
3489 * recycling on high speed LANs while still leaving over an hour
3490 * before rollover.
3491 *
3492 * As reading the *exact* system time is too expensive to be done
3493 * whenever setting up a TCP connection, we increment the time
3494 * offset in two ways. First, a small random positive increment
3495 * is added to isn_offset for each connection that is set up.
3496 * Second, the function tcp_isn_tick fires once per clock tick
3497 * and increments isn_offset as necessary so that sequence numbers
3498 * are incremented at approximately ISN_BYTES_PER_SECOND. The
3499 * random positive increments serve only to ensure that the same
3500 * exact sequence number is never sent out twice (as could otherwise
3501 * happen when a port is recycled in less than the system tick
3502 * interval.)
3503 *
3504 * net.inet.tcp.isn_reseed_interval controls the number of seconds
3505 * between seeding of isn_secret. This is normally set to zero,
3506 * as reseeding should not be necessary.
3507 *
3508 * Locking of the global variables isn_secret, isn_last_reseed, isn_offset,
3509 * isn_offset_old, and isn_ctx is performed using the ISN lock. In
3510 * general, this means holding an exclusive (write) lock.
3511 */
3512
3513 #define ISN_BYTES_PER_SECOND 1048576
3514 #define ISN_STATIC_INCREMENT 4096
3515 #define ISN_RANDOM_INCREMENT (4096 - 1)
3516 #define ISN_SECRET_LENGTH SIPHASH_KEY_LENGTH
3517
3518 VNET_DEFINE_STATIC(u_char, isn_secret[ISN_SECRET_LENGTH]);
3519 VNET_DEFINE_STATIC(int, isn_last);
3520 VNET_DEFINE_STATIC(int, isn_last_reseed);
3521 VNET_DEFINE_STATIC(u_int32_t, isn_offset);
3522 VNET_DEFINE_STATIC(u_int32_t, isn_offset_old);
3523
3524 #define V_isn_secret VNET(isn_secret)
3525 #define V_isn_last VNET(isn_last)
3526 #define V_isn_last_reseed VNET(isn_last_reseed)
3527 #define V_isn_offset VNET(isn_offset)
3528 #define V_isn_offset_old VNET(isn_offset_old)
3529
3530 tcp_seq
tcp_new_isn(struct in_conninfo * inc)3531 tcp_new_isn(struct in_conninfo *inc)
3532 {
3533 tcp_seq new_isn;
3534 u_int32_t projected_offset;
3535
3536 ISN_LOCK();
3537 /* Seed if this is the first use, reseed if requested. */
3538 if ((V_isn_last_reseed == 0) || ((V_tcp_isn_reseed_interval > 0) &&
3539 (((u_int)V_isn_last_reseed + (u_int)V_tcp_isn_reseed_interval*hz)
3540 < (u_int)ticks))) {
3541 arc4rand(&V_isn_secret, sizeof(V_isn_secret), 0);
3542 V_isn_last_reseed = ticks;
3543 }
3544
3545 /* Compute the hash and return the ISN. */
3546 new_isn = (tcp_seq)tcp_keyed_hash(inc, V_isn_secret,
3547 sizeof(V_isn_secret));
3548 V_isn_offset += ISN_STATIC_INCREMENT +
3549 (arc4random() & ISN_RANDOM_INCREMENT);
3550 if (ticks != V_isn_last) {
3551 projected_offset = V_isn_offset_old +
3552 ISN_BYTES_PER_SECOND / hz * (ticks - V_isn_last);
3553 if (SEQ_GT(projected_offset, V_isn_offset))
3554 V_isn_offset = projected_offset;
3555 V_isn_offset_old = V_isn_offset;
3556 V_isn_last = ticks;
3557 }
3558 new_isn += V_isn_offset;
3559 ISN_UNLOCK();
3560 return (new_isn);
3561 }
3562
3563 /*
3564 * When a specific ICMP unreachable message is received and the
3565 * connection state is SYN-SENT, drop the connection. This behavior
3566 * is controlled by the icmp_may_rst sysctl.
3567 */
3568 static struct inpcb *
tcp_drop_syn_sent(struct inpcb * inp,int errno)3569 tcp_drop_syn_sent(struct inpcb *inp, int errno)
3570 {
3571 struct tcpcb *tp;
3572
3573 NET_EPOCH_ASSERT();
3574 INP_WLOCK_ASSERT(inp);
3575
3576 tp = intotcpcb(inp);
3577 if (tp->t_state != TCPS_SYN_SENT)
3578 return (inp);
3579
3580 if (tp->t_flags & TF_FASTOPEN)
3581 tcp_fastopen_disable_path(tp);
3582
3583 tp = tcp_drop(tp, errno);
3584 if (tp != NULL)
3585 return (inp);
3586 else
3587 return (NULL);
3588 }
3589
3590 /*
3591 * When `need fragmentation' ICMP is received, update our idea of the MSS
3592 * based on the new value. Also nudge TCP to send something, since we
3593 * know the packet we just sent was dropped.
3594 * This duplicates some code in the tcp_mss() function in tcp_input.c.
3595 */
3596 static struct inpcb *
tcp_mtudisc_notify(struct inpcb * inp,int error)3597 tcp_mtudisc_notify(struct inpcb *inp, int error)
3598 {
3599
3600 return (tcp_mtudisc(inp, -1));
3601 }
3602
3603 static struct inpcb *
tcp_mtudisc(struct inpcb * inp,int mtuoffer)3604 tcp_mtudisc(struct inpcb *inp, int mtuoffer)
3605 {
3606 struct tcpcb *tp;
3607 struct socket *so;
3608
3609 INP_WLOCK_ASSERT(inp);
3610
3611 tp = intotcpcb(inp);
3612 KASSERT(tp != NULL, ("tcp_mtudisc: tp == NULL"));
3613
3614 tcp_mss_update(tp, -1, mtuoffer, NULL, NULL);
3615
3616 so = inp->inp_socket;
3617 SOCK_SENDBUF_LOCK(so);
3618 /* If the mss is larger than the socket buffer, decrease the mss. */
3619 if (so->so_snd.sb_hiwat < tp->t_maxseg) {
3620 tp->t_maxseg = so->so_snd.sb_hiwat;
3621 if (tp->t_maxseg < V_tcp_mssdflt) {
3622 /*
3623 * The MSS is so small we should not process incoming
3624 * SACK's since we are subject to attack in such a
3625 * case.
3626 */
3627 tp->t_flags2 |= TF2_PROC_SACK_PROHIBIT;
3628 } else {
3629 tp->t_flags2 &= ~TF2_PROC_SACK_PROHIBIT;
3630 }
3631 }
3632 SOCK_SENDBUF_UNLOCK(so);
3633
3634 TCPSTAT_INC(tcps_mturesent);
3635 tp->t_rtttime = 0;
3636 tp->snd_nxt = tp->snd_una;
3637 tcp_free_sackholes(tp);
3638 tp->snd_recover = tp->snd_max;
3639 if (tp->t_flags & TF_SACK_PERMIT)
3640 EXIT_FASTRECOVERY(tp->t_flags);
3641 if (tp->t_fb->tfb_tcp_mtu_chg != NULL) {
3642 /*
3643 * Conceptually the snd_nxt setting
3644 * and freeing sack holes should
3645 * be done by the default stacks
3646 * own tfb_tcp_mtu_chg().
3647 */
3648 tp->t_fb->tfb_tcp_mtu_chg(tp);
3649 }
3650 if (tcp_output(tp) < 0)
3651 return (NULL);
3652 else
3653 return (inp);
3654 }
3655
3656 #ifdef INET
3657 /*
3658 * Look-up the routing entry to the peer of this inpcb. If no route
3659 * is found and it cannot be allocated, then return 0. This routine
3660 * is called by TCP routines that access the rmx structure and by
3661 * tcp_mss_update to get the peer/interface MTU.
3662 */
3663 uint32_t
tcp_maxmtu(struct in_conninfo * inc,struct tcp_ifcap * cap)3664 tcp_maxmtu(struct in_conninfo *inc, struct tcp_ifcap *cap)
3665 {
3666 struct nhop_object *nh;
3667 struct ifnet *ifp;
3668 uint32_t maxmtu = 0;
3669
3670 KASSERT(inc != NULL, ("tcp_maxmtu with NULL in_conninfo pointer"));
3671
3672 if (inc->inc_faddr.s_addr != INADDR_ANY) {
3673 nh = fib4_lookup(inc->inc_fibnum, inc->inc_faddr, 0, NHR_NONE, 0);
3674 if (nh == NULL)
3675 return (0);
3676
3677 ifp = nh->nh_ifp;
3678 maxmtu = nh->nh_mtu;
3679
3680 /* Report additional interface capabilities. */
3681 if (cap != NULL) {
3682 if (ifp->if_capenable & IFCAP_TSO4 &&
3683 ifp->if_hwassist & CSUM_TSO) {
3684 cap->ifcap |= CSUM_TSO;
3685 cap->tsomax = ifp->if_hw_tsomax;
3686 cap->tsomaxsegcount = ifp->if_hw_tsomaxsegcount;
3687 cap->tsomaxsegsize = ifp->if_hw_tsomaxsegsize;
3688 /* XXXKIB IFCAP2_IPSEC_OFFLOAD_TSO */
3689 cap->ipsec_tso = (ifp->if_capenable2 &
3690 IFCAP2_BIT(IFCAP2_IPSEC_OFFLOAD)) != 0;
3691 }
3692 }
3693 }
3694 return (maxmtu);
3695 }
3696 #endif /* INET */
3697
3698 #ifdef INET6
3699 uint32_t
tcp_maxmtu6(struct in_conninfo * inc,struct tcp_ifcap * cap)3700 tcp_maxmtu6(struct in_conninfo *inc, struct tcp_ifcap *cap)
3701 {
3702 struct nhop_object *nh;
3703 struct in6_addr dst6;
3704 uint32_t scopeid;
3705 struct ifnet *ifp;
3706 uint32_t maxmtu = 0;
3707
3708 KASSERT(inc != NULL, ("tcp_maxmtu6 with NULL in_conninfo pointer"));
3709
3710 if (inc->inc_flags & INC_IPV6MINMTU)
3711 return (IPV6_MMTU);
3712
3713 if (!IN6_IS_ADDR_UNSPECIFIED(&inc->inc6_faddr)) {
3714 in6_splitscope(&inc->inc6_faddr, &dst6, &scopeid);
3715 nh = fib6_lookup(inc->inc_fibnum, &dst6, scopeid, NHR_NONE, 0);
3716 if (nh == NULL)
3717 return (0);
3718
3719 ifp = nh->nh_ifp;
3720 maxmtu = nh->nh_mtu;
3721
3722 /* Report additional interface capabilities. */
3723 if (cap != NULL) {
3724 if (ifp->if_capenable & IFCAP_TSO6 &&
3725 ifp->if_hwassist & CSUM_TSO) {
3726 cap->ifcap |= CSUM_TSO;
3727 cap->tsomax = ifp->if_hw_tsomax;
3728 cap->tsomaxsegcount = ifp->if_hw_tsomaxsegcount;
3729 cap->tsomaxsegsize = ifp->if_hw_tsomaxsegsize;
3730 cap->ipsec_tso = false; /* XXXKIB */
3731 }
3732 }
3733 }
3734
3735 return (maxmtu);
3736 }
3737
3738 /*
3739 * Handle setsockopt(IPV6_USE_MIN_MTU) by a TCP stack.
3740 *
3741 * XXXGL: we are updating inpcb here with INC_IPV6MINMTU flag.
3742 * The right place to do that is ip6_setpktopt() that has just been
3743 * executed. By the way it just filled ip6po_minmtu for us.
3744 */
3745 void
tcp6_use_min_mtu(struct tcpcb * tp)3746 tcp6_use_min_mtu(struct tcpcb *tp)
3747 {
3748 struct inpcb *inp = tptoinpcb(tp);
3749
3750 INP_WLOCK_ASSERT(inp);
3751 /*
3752 * In case of the IPV6_USE_MIN_MTU socket
3753 * option, the INC_IPV6MINMTU flag to announce
3754 * a corresponding MSS during the initial
3755 * handshake. If the TCP connection is not in
3756 * the front states, just reduce the MSS being
3757 * used. This avoids the sending of TCP
3758 * segments which will be fragmented at the
3759 * IPv6 layer.
3760 */
3761 inp->inp_inc.inc_flags |= INC_IPV6MINMTU;
3762 if ((tp->t_state >= TCPS_SYN_SENT) &&
3763 (inp->inp_inc.inc_flags & INC_ISIPV6)) {
3764 struct ip6_pktopts *opt;
3765
3766 opt = inp->in6p_outputopts;
3767 if (opt != NULL && opt->ip6po_minmtu == IP6PO_MINMTU_ALL &&
3768 tp->t_maxseg > TCP6_MSS) {
3769 tp->t_maxseg = TCP6_MSS;
3770 if (tp->t_maxseg < V_tcp_mssdflt) {
3771 /*
3772 * The MSS is so small we should not process incoming
3773 * SACK's since we are subject to attack in such a
3774 * case.
3775 */
3776 tp->t_flags2 |= TF2_PROC_SACK_PROHIBIT;
3777 } else {
3778 tp->t_flags2 &= ~TF2_PROC_SACK_PROHIBIT;
3779 }
3780 }
3781 }
3782 }
3783 #endif /* INET6 */
3784
3785 /*
3786 * Calculate effective SMSS per RFC5681 definition for a given TCP
3787 * connection at its current state, taking into account SACK and etc.
3788 */
3789 u_int
tcp_maxseg(const struct tcpcb * tp)3790 tcp_maxseg(const struct tcpcb *tp)
3791 {
3792 u_int optlen;
3793
3794 if (tp->t_flags & TF_NOOPT)
3795 return (tp->t_maxseg);
3796
3797 /*
3798 * Here we have a simplified code from tcp_addoptions(),
3799 * without a proper loop, and having most of paddings hardcoded.
3800 * We might make mistakes with padding here in some edge cases,
3801 * but this is harmless, since result of tcp_maxseg() is used
3802 * only in cwnd and ssthresh estimations.
3803 */
3804 if (TCPS_HAVEESTABLISHED(tp->t_state)) {
3805 if (tp->t_flags & TF_RCVD_TSTMP)
3806 optlen = TCPOLEN_TSTAMP_APPA;
3807 else
3808 optlen = 0;
3809 #if defined(IPSEC_SUPPORT) || defined(TCP_SIGNATURE)
3810 if (tp->t_flags & TF_SIGNATURE)
3811 optlen += PADTCPOLEN(TCPOLEN_SIGNATURE);
3812 #endif
3813 if ((tp->t_flags & TF_SACK_PERMIT) && tp->rcv_numsacks > 0) {
3814 optlen += TCPOLEN_SACKHDR;
3815 optlen += tp->rcv_numsacks * TCPOLEN_SACK;
3816 optlen = PADTCPOLEN(optlen);
3817 }
3818 } else {
3819 if (tp->t_flags & TF_REQ_TSTMP)
3820 optlen = TCPOLEN_TSTAMP_APPA;
3821 else
3822 optlen = PADTCPOLEN(TCPOLEN_MAXSEG);
3823 if (tp->t_flags & TF_REQ_SCALE)
3824 optlen += PADTCPOLEN(TCPOLEN_WINDOW);
3825 #if defined(IPSEC_SUPPORT) || defined(TCP_SIGNATURE)
3826 if (tp->t_flags & TF_SIGNATURE)
3827 optlen += PADTCPOLEN(TCPOLEN_SIGNATURE);
3828 #endif
3829 if (tp->t_flags & TF_SACK_PERMIT)
3830 optlen += PADTCPOLEN(TCPOLEN_SACK_PERMITTED);
3831 }
3832 optlen = min(optlen, TCP_MAXOLEN);
3833 return (tp->t_maxseg - optlen);
3834 }
3835
3836
3837 u_int
tcp_fixed_maxseg(const struct tcpcb * tp)3838 tcp_fixed_maxseg(const struct tcpcb *tp)
3839 {
3840 int optlen;
3841
3842 if (tp->t_flags & TF_NOOPT)
3843 return (tp->t_maxseg);
3844
3845 /*
3846 * Here we have a simplified code from tcp_addoptions(),
3847 * without a proper loop, and having most of paddings hardcoded.
3848 * We only consider fixed options that we would send every
3849 * time I.e. SACK is not considered. This is important
3850 * for cc modules to figure out what the modulo of the
3851 * cwnd should be.
3852 */
3853 if (TCPS_HAVEESTABLISHED(tp->t_state)) {
3854 if (tp->t_flags & TF_RCVD_TSTMP)
3855 optlen = TCPOLEN_TSTAMP_APPA;
3856 else
3857 optlen = 0;
3858 #if defined(IPSEC_SUPPORT) || defined(TCP_SIGNATURE)
3859 if (tp->t_flags & TF_SIGNATURE)
3860 optlen += PADTCPOLEN(TCPOLEN_SIGNATURE);
3861 #endif
3862 } else {
3863 if (tp->t_flags & TF_REQ_TSTMP)
3864 optlen = TCPOLEN_TSTAMP_APPA;
3865 else
3866 optlen = PADTCPOLEN(TCPOLEN_MAXSEG);
3867 if (tp->t_flags & TF_REQ_SCALE)
3868 optlen += PADTCPOLEN(TCPOLEN_WINDOW);
3869 #if defined(IPSEC_SUPPORT) || defined(TCP_SIGNATURE)
3870 if (tp->t_flags & TF_SIGNATURE)
3871 optlen += PADTCPOLEN(TCPOLEN_SIGNATURE);
3872 #endif
3873 if (tp->t_flags & TF_SACK_PERMIT)
3874 optlen += PADTCPOLEN(TCPOLEN_SACK_PERMITTED);
3875 }
3876 optlen = min(optlen, TCP_MAXOLEN);
3877 return (tp->t_maxseg - optlen);
3878 }
3879
3880
3881
3882 static int
sysctl_drop(SYSCTL_HANDLER_ARGS)3883 sysctl_drop(SYSCTL_HANDLER_ARGS)
3884 {
3885 /* addrs[0] is a foreign socket, addrs[1] is a local one. */
3886 struct sockaddr_storage addrs[2];
3887 struct inpcb *inp;
3888 struct tcpcb *tp;
3889 #ifdef INET
3890 struct sockaddr_in *fin = NULL, *lin = NULL;
3891 #endif
3892 struct epoch_tracker et;
3893 #ifdef INET6
3894 struct sockaddr_in6 *fin6, *lin6;
3895 #endif
3896 int error;
3897
3898 inp = NULL;
3899 #ifdef INET6
3900 fin6 = lin6 = NULL;
3901 #endif
3902 error = 0;
3903
3904 if (req->oldptr != NULL || req->oldlen != 0)
3905 return (EINVAL);
3906 if (req->newptr == NULL)
3907 return (EPERM);
3908 if (req->newlen < sizeof(addrs))
3909 return (ENOMEM);
3910 error = SYSCTL_IN(req, &addrs, sizeof(addrs));
3911 if (error)
3912 return (error);
3913
3914 switch (addrs[0].ss_family) {
3915 #ifdef INET6
3916 case AF_INET6:
3917 fin6 = (struct sockaddr_in6 *)&addrs[0];
3918 lin6 = (struct sockaddr_in6 *)&addrs[1];
3919 if (fin6->sin6_len != sizeof(struct sockaddr_in6) ||
3920 lin6->sin6_len != sizeof(struct sockaddr_in6))
3921 return (EINVAL);
3922 if (IN6_IS_ADDR_V4MAPPED(&fin6->sin6_addr)) {
3923 if (!IN6_IS_ADDR_V4MAPPED(&lin6->sin6_addr))
3924 return (EINVAL);
3925 in6_sin6_2_sin_in_sock((struct sockaddr *)&addrs[0]);
3926 in6_sin6_2_sin_in_sock((struct sockaddr *)&addrs[1]);
3927 #ifdef INET
3928 fin = (struct sockaddr_in *)&addrs[0];
3929 lin = (struct sockaddr_in *)&addrs[1];
3930 #endif
3931 break;
3932 }
3933 error = sa6_embedscope(fin6, V_ip6_use_defzone);
3934 if (error)
3935 return (error);
3936 error = sa6_embedscope(lin6, V_ip6_use_defzone);
3937 if (error)
3938 return (error);
3939 break;
3940 #endif
3941 #ifdef INET
3942 case AF_INET:
3943 fin = (struct sockaddr_in *)&addrs[0];
3944 lin = (struct sockaddr_in *)&addrs[1];
3945 if (fin->sin_len != sizeof(struct sockaddr_in) ||
3946 lin->sin_len != sizeof(struct sockaddr_in))
3947 return (EINVAL);
3948 break;
3949 #endif
3950 default:
3951 return (EINVAL);
3952 }
3953 NET_EPOCH_ENTER(et);
3954 switch (addrs[0].ss_family) {
3955 #ifdef INET6
3956 case AF_INET6:
3957 inp = in6_pcblookup(&V_tcbinfo, &fin6->sin6_addr,
3958 fin6->sin6_port, &lin6->sin6_addr, lin6->sin6_port,
3959 INPLOOKUP_WLOCKPCB, NULL);
3960 break;
3961 #endif
3962 #ifdef INET
3963 case AF_INET:
3964 inp = in_pcblookup(&V_tcbinfo, fin->sin_addr, fin->sin_port,
3965 lin->sin_addr, lin->sin_port, INPLOOKUP_WLOCKPCB, NULL);
3966 break;
3967 #endif
3968 }
3969 if (inp != NULL) {
3970 if (!SOLISTENING(inp->inp_socket)) {
3971 tp = intotcpcb(inp);
3972 tp = tcp_drop(tp, ECONNABORTED);
3973 if (tp != NULL)
3974 INP_WUNLOCK(inp);
3975 } else
3976 INP_WUNLOCK(inp);
3977 } else
3978 error = ESRCH;
3979 NET_EPOCH_EXIT(et);
3980 return (error);
3981 }
3982
3983 SYSCTL_PROC(_net_inet_tcp, TCPCTL_DROP, drop,
3984 CTLFLAG_VNET | CTLTYPE_STRUCT | CTLFLAG_WR | CTLFLAG_SKIP |
3985 CTLFLAG_NEEDGIANT, NULL, 0, sysctl_drop, "",
3986 "Drop TCP connection");
3987
3988 static int
tcp_sysctl_setsockopt(SYSCTL_HANDLER_ARGS)3989 tcp_sysctl_setsockopt(SYSCTL_HANDLER_ARGS)
3990 {
3991 return (sysctl_setsockopt(oidp, arg1, arg2, req, &V_tcbinfo,
3992 &tcp_ctloutput_set));
3993 }
3994
3995 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, setsockopt,
3996 CTLFLAG_VNET | CTLTYPE_STRUCT | CTLFLAG_WR | CTLFLAG_SKIP |
3997 CTLFLAG_MPSAFE, NULL, 0, tcp_sysctl_setsockopt, "",
3998 "Set socket option for TCP endpoint");
3999
4000 #ifdef KERN_TLS
4001 static int
sysctl_switch_tls(SYSCTL_HANDLER_ARGS)4002 sysctl_switch_tls(SYSCTL_HANDLER_ARGS)
4003 {
4004 /* addrs[0] is a foreign socket, addrs[1] is a local one. */
4005 struct sockaddr_storage addrs[2];
4006 struct inpcb *inp;
4007 #ifdef INET
4008 struct sockaddr_in *fin = NULL, *lin = NULL;
4009 #endif
4010 struct epoch_tracker et;
4011 #ifdef INET6
4012 struct sockaddr_in6 *fin6, *lin6;
4013 #endif
4014 int error;
4015
4016 inp = NULL;
4017 #ifdef INET6
4018 fin6 = lin6 = NULL;
4019 #endif
4020 error = 0;
4021
4022 if (req->oldptr != NULL || req->oldlen != 0)
4023 return (EINVAL);
4024 if (req->newptr == NULL)
4025 return (EPERM);
4026 if (req->newlen < sizeof(addrs))
4027 return (ENOMEM);
4028 error = SYSCTL_IN(req, &addrs, sizeof(addrs));
4029 if (error)
4030 return (error);
4031
4032 switch (addrs[0].ss_family) {
4033 #ifdef INET6
4034 case AF_INET6:
4035 fin6 = (struct sockaddr_in6 *)&addrs[0];
4036 lin6 = (struct sockaddr_in6 *)&addrs[1];
4037 if (fin6->sin6_len != sizeof(struct sockaddr_in6) ||
4038 lin6->sin6_len != sizeof(struct sockaddr_in6))
4039 return (EINVAL);
4040 if (IN6_IS_ADDR_V4MAPPED(&fin6->sin6_addr)) {
4041 if (!IN6_IS_ADDR_V4MAPPED(&lin6->sin6_addr))
4042 return (EINVAL);
4043 in6_sin6_2_sin_in_sock((struct sockaddr *)&addrs[0]);
4044 in6_sin6_2_sin_in_sock((struct sockaddr *)&addrs[1]);
4045 #ifdef INET
4046 fin = (struct sockaddr_in *)&addrs[0];
4047 lin = (struct sockaddr_in *)&addrs[1];
4048 #endif
4049 break;
4050 }
4051 error = sa6_embedscope(fin6, V_ip6_use_defzone);
4052 if (error)
4053 return (error);
4054 error = sa6_embedscope(lin6, V_ip6_use_defzone);
4055 if (error)
4056 return (error);
4057 break;
4058 #endif
4059 #ifdef INET
4060 case AF_INET:
4061 fin = (struct sockaddr_in *)&addrs[0];
4062 lin = (struct sockaddr_in *)&addrs[1];
4063 if (fin->sin_len != sizeof(struct sockaddr_in) ||
4064 lin->sin_len != sizeof(struct sockaddr_in))
4065 return (EINVAL);
4066 break;
4067 #endif
4068 default:
4069 return (EINVAL);
4070 }
4071 NET_EPOCH_ENTER(et);
4072 switch (addrs[0].ss_family) {
4073 #ifdef INET6
4074 case AF_INET6:
4075 inp = in6_pcblookup(&V_tcbinfo, &fin6->sin6_addr,
4076 fin6->sin6_port, &lin6->sin6_addr, lin6->sin6_port,
4077 INPLOOKUP_WLOCKPCB, NULL);
4078 break;
4079 #endif
4080 #ifdef INET
4081 case AF_INET:
4082 inp = in_pcblookup(&V_tcbinfo, fin->sin_addr, fin->sin_port,
4083 lin->sin_addr, lin->sin_port, INPLOOKUP_WLOCKPCB, NULL);
4084 break;
4085 #endif
4086 }
4087 NET_EPOCH_EXIT(et);
4088 if (inp != NULL) {
4089 struct socket *so;
4090
4091 so = inp->inp_socket;
4092 soref(so);
4093 error = ktls_set_tx_mode(so,
4094 arg2 == 0 ? TCP_TLS_MODE_SW : TCP_TLS_MODE_IFNET);
4095 INP_WUNLOCK(inp);
4096 sorele(so);
4097 } else
4098 error = ESRCH;
4099 return (error);
4100 }
4101
4102 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, switch_to_sw_tls,
4103 CTLFLAG_VNET | CTLTYPE_STRUCT | CTLFLAG_WR | CTLFLAG_SKIP |
4104 CTLFLAG_NEEDGIANT, NULL, 0, sysctl_switch_tls, "",
4105 "Switch TCP connection to SW TLS");
4106 SYSCTL_PROC(_net_inet_tcp, OID_AUTO, switch_to_ifnet_tls,
4107 CTLFLAG_VNET | CTLTYPE_STRUCT | CTLFLAG_WR | CTLFLAG_SKIP |
4108 CTLFLAG_NEEDGIANT, NULL, 1, sysctl_switch_tls, "",
4109 "Switch TCP connection to ifnet TLS");
4110 #endif
4111
4112 /*
4113 * Generate a standardized TCP log line for use throughout the
4114 * tcp subsystem. Memory allocation is done with M_NOWAIT to
4115 * allow use in the interrupt context.
4116 *
4117 * NB: The caller MUST free(s, M_TCPLOG) the returned string.
4118 * NB: The function may return NULL if memory allocation failed.
4119 *
4120 * Due to header inclusion and ordering limitations the struct ip
4121 * and ip6_hdr pointers have to be passed as void pointers.
4122 */
4123 char *
tcp_log_vain(struct in_conninfo * inc,struct tcphdr * th,const void * ip4hdr,const void * ip6hdr)4124 tcp_log_vain(struct in_conninfo *inc, struct tcphdr *th, const void *ip4hdr,
4125 const void *ip6hdr)
4126 {
4127
4128 /* Is logging enabled? */
4129 if (V_tcp_log_in_vain == 0)
4130 return (NULL);
4131
4132 return (tcp_log_addr(inc, th, ip4hdr, ip6hdr));
4133 }
4134
4135 char *
tcp_log_addrs(struct in_conninfo * inc,struct tcphdr * th,const void * ip4hdr,const void * ip6hdr)4136 tcp_log_addrs(struct in_conninfo *inc, struct tcphdr *th, const void *ip4hdr,
4137 const void *ip6hdr)
4138 {
4139
4140 /* Is logging enabled? */
4141 if (tcp_log_debug == 0)
4142 return (NULL);
4143
4144 return (tcp_log_addr(inc, th, ip4hdr, ip6hdr));
4145 }
4146
4147 static char *
tcp_log_addr(struct in_conninfo * inc,struct tcphdr * th,const void * ip4hdr,const void * ip6hdr)4148 tcp_log_addr(struct in_conninfo *inc, struct tcphdr *th, const void *ip4hdr,
4149 const void *ip6hdr)
4150 {
4151 char *s, *sp;
4152 size_t size;
4153 #ifdef INET
4154 const struct ip *ip = (const struct ip *)ip4hdr;
4155 #endif
4156 #ifdef INET6
4157 const struct ip6_hdr *ip6 = (const struct ip6_hdr *)ip6hdr;
4158 #endif /* INET6 */
4159
4160 /*
4161 * The log line looks like this:
4162 * "TCP: [1.2.3.4]:50332 to [1.2.3.4]:80 tcpflags 0x2<SYN>"
4163 */
4164 size = sizeof("TCP: []:12345 to []:12345 tcpflags 0x2<>") +
4165 sizeof(PRINT_TH_FLAGS) + 1 +
4166 #ifdef INET6
4167 2 * INET6_ADDRSTRLEN;
4168 #else
4169 2 * INET_ADDRSTRLEN;
4170 #endif /* INET6 */
4171
4172 s = malloc(size, M_TCPLOG, M_ZERO|M_NOWAIT);
4173 if (s == NULL)
4174 return (NULL);
4175
4176 strcat(s, "TCP: [");
4177 sp = s + strlen(s);
4178
4179 if (inc && ((inc->inc_flags & INC_ISIPV6) == 0)) {
4180 inet_ntoa_r(inc->inc_faddr, sp);
4181 sp = s + strlen(s);
4182 sprintf(sp, "]:%i to [", ntohs(inc->inc_fport));
4183 sp = s + strlen(s);
4184 inet_ntoa_r(inc->inc_laddr, sp);
4185 sp = s + strlen(s);
4186 sprintf(sp, "]:%i", ntohs(inc->inc_lport));
4187 #ifdef INET6
4188 } else if (inc) {
4189 ip6_sprintf(sp, &inc->inc6_faddr);
4190 sp = s + strlen(s);
4191 sprintf(sp, "]:%i to [", ntohs(inc->inc_fport));
4192 sp = s + strlen(s);
4193 ip6_sprintf(sp, &inc->inc6_laddr);
4194 sp = s + strlen(s);
4195 sprintf(sp, "]:%i", ntohs(inc->inc_lport));
4196 } else if (ip6 && th) {
4197 ip6_sprintf(sp, &ip6->ip6_src);
4198 sp = s + strlen(s);
4199 sprintf(sp, "]:%i to [", ntohs(th->th_sport));
4200 sp = s + strlen(s);
4201 ip6_sprintf(sp, &ip6->ip6_dst);
4202 sp = s + strlen(s);
4203 sprintf(sp, "]:%i", ntohs(th->th_dport));
4204 #endif /* INET6 */
4205 #ifdef INET
4206 } else if (ip && th) {
4207 inet_ntoa_r(ip->ip_src, sp);
4208 sp = s + strlen(s);
4209 sprintf(sp, "]:%i to [", ntohs(th->th_sport));
4210 sp = s + strlen(s);
4211 inet_ntoa_r(ip->ip_dst, sp);
4212 sp = s + strlen(s);
4213 sprintf(sp, "]:%i", ntohs(th->th_dport));
4214 #endif /* INET */
4215 } else {
4216 free(s, M_TCPLOG);
4217 return (NULL);
4218 }
4219 sp = s + strlen(s);
4220 if (th)
4221 sprintf(sp, " tcpflags 0x%b", tcp_get_flags(th), PRINT_TH_FLAGS);
4222 if (*(s + size - 1) != '\0')
4223 panic("%s: string too long", __func__);
4224 return (s);
4225 }
4226
4227 /*
4228 * A subroutine which makes it easy to track TCP state changes with DTrace.
4229 * This function shouldn't be called for t_state initializations that don't
4230 * correspond to actual TCP state transitions.
4231 */
4232 void
tcp_state_change(struct tcpcb * tp,int newstate)4233 tcp_state_change(struct tcpcb *tp, int newstate)
4234 {
4235 #if defined(KDTRACE_HOOKS)
4236 int pstate = tp->t_state;
4237 #endif
4238
4239 TCPSTATES_DEC(tp->t_state);
4240 TCPSTATES_INC(newstate);
4241 tp->t_state = newstate;
4242 TCP_PROBE6(state__change, NULL, tp, NULL, tp, NULL, pstate);
4243 }
4244
4245 /*
4246 * Create an external-format (``xtcpcb'') structure using the information in
4247 * the kernel-format tcpcb structure pointed to by tp. This is done to
4248 * reduce the spew of irrelevant information over this interface, to isolate
4249 * user code from changes in the kernel structure, and potentially to provide
4250 * information-hiding if we decide that some of this information should be
4251 * hidden from users.
4252 */
4253 void
tcp_inptoxtp(const struct inpcb * inp,struct xtcpcb * xt)4254 tcp_inptoxtp(const struct inpcb *inp, struct xtcpcb *xt)
4255 {
4256 struct tcpcb *tp = intotcpcb(inp);
4257 sbintime_t now;
4258
4259 bzero(xt, sizeof(*xt));
4260 xt->t_state = tp->t_state;
4261 xt->t_logstate = tcp_get_bblog_state(tp);
4262 xt->t_flags = tp->t_flags;
4263 xt->t_sndzerowin = tp->t_sndzerowin;
4264 xt->t_sndrexmitpack = tp->t_sndrexmitpack;
4265 xt->t_rcvoopack = tp->t_rcvoopack;
4266 xt->t_rcv_wnd = tp->rcv_wnd;
4267 xt->t_snd_wnd = tp->snd_wnd;
4268 xt->t_snd_cwnd = tp->snd_cwnd;
4269 xt->t_snd_ssthresh = tp->snd_ssthresh;
4270 xt->t_dsack_bytes = tp->t_dsack_bytes;
4271 xt->t_dsack_tlp_bytes = tp->t_dsack_tlp_bytes;
4272 xt->t_dsack_pack = tp->t_dsack_pack;
4273 xt->t_maxseg = tp->t_maxseg;
4274 xt->xt_ecn = (tp->t_flags2 & TF2_ECN_PERMIT) ? 1 : 0 +
4275 (tp->t_flags2 & TF2_ACE_PERMIT) ? 2 : 0;
4276
4277 now = getsbinuptime();
4278 #define COPYTIMER(which,where) do { \
4279 if (tp->t_timers[which] != SBT_MAX) \
4280 xt->where = (tp->t_timers[which] - now) / SBT_1MS; \
4281 else \
4282 xt->where = 0; \
4283 } while (0)
4284 COPYTIMER(TT_DELACK, tt_delack);
4285 COPYTIMER(TT_REXMT, tt_rexmt);
4286 COPYTIMER(TT_PERSIST, tt_persist);
4287 COPYTIMER(TT_KEEP, tt_keep);
4288 COPYTIMER(TT_2MSL, tt_2msl);
4289 #undef COPYTIMER
4290 xt->t_rcvtime = 1000 * (ticks - tp->t_rcvtime) / hz;
4291
4292 xt->xt_encaps_port = tp->t_port;
4293 bcopy(tp->t_fb->tfb_tcp_block_name, xt->xt_stack,
4294 TCP_FUNCTION_NAME_LEN_MAX);
4295 bcopy(CC_ALGO(tp)->name, xt->xt_cc, TCP_CA_NAME_MAX);
4296 #ifdef TCP_BLACKBOX
4297 (void)tcp_log_get_id(tp, xt->xt_logid);
4298 #endif
4299
4300 xt->xt_len = sizeof(struct xtcpcb);
4301 in_pcbtoxinpcb(inp, &xt->xt_inp);
4302 }
4303
4304 void
tcp_log_end_status(struct tcpcb * tp,uint8_t status)4305 tcp_log_end_status(struct tcpcb *tp, uint8_t status)
4306 {
4307 uint32_t bit, i;
4308
4309 if ((tp == NULL) ||
4310 (status > TCP_EI_STATUS_MAX_VALUE) ||
4311 (status == 0)) {
4312 /* Invalid */
4313 return;
4314 }
4315 if (status > (sizeof(uint32_t) * 8)) {
4316 /* Should this be a KASSERT? */
4317 return;
4318 }
4319 bit = 1U << (status - 1);
4320 if (bit & tp->t_end_info_status) {
4321 /* already logged */
4322 return;
4323 }
4324 for (i = 0; i < TCP_END_BYTE_INFO; i++) {
4325 if (tp->t_end_info_bytes[i] == TCP_EI_EMPTY_SLOT) {
4326 tp->t_end_info_bytes[i] = status;
4327 tp->t_end_info_status |= bit;
4328 break;
4329 }
4330 }
4331 }
4332
4333 int
tcp_can_enable_pacing(void)4334 tcp_can_enable_pacing(void)
4335 {
4336
4337 if ((tcp_pacing_limit == -1) ||
4338 (tcp_pacing_limit > number_of_tcp_connections_pacing)) {
4339 atomic_fetchadd_int(&number_of_tcp_connections_pacing, 1);
4340 shadow_num_connections = number_of_tcp_connections_pacing;
4341 return (1);
4342 } else {
4343 counter_u64_add(tcp_pacing_failures, 1);
4344 return (0);
4345 }
4346 }
4347
4348 int
tcp_incr_dgp_pacing_cnt(void)4349 tcp_incr_dgp_pacing_cnt(void)
4350 {
4351 if ((tcp_dgp_limit == -1) ||
4352 (tcp_dgp_limit > number_of_dgp_connections)) {
4353 atomic_fetchadd_int(&number_of_dgp_connections, 1);
4354 shadow_tcp_pacing_dgp = number_of_dgp_connections;
4355 return (1);
4356 } else {
4357 counter_u64_add(tcp_dgp_failures, 1);
4358 return (0);
4359 }
4360 }
4361
4362 static uint8_t tcp_dgp_warning = 0;
4363
4364 void
tcp_dec_dgp_pacing_cnt(void)4365 tcp_dec_dgp_pacing_cnt(void)
4366 {
4367 uint32_t ret;
4368
4369 ret = atomic_fetchadd_int(&number_of_dgp_connections, -1);
4370 shadow_tcp_pacing_dgp = number_of_dgp_connections;
4371 KASSERT(ret != 0, ("number_of_dgp_connections -1 would cause wrap?"));
4372 if (ret == 0) {
4373 if (tcp_dgp_limit != -1) {
4374 printf("Warning all DGP is now disabled, count decrements invalidly!\n");
4375 tcp_dgp_limit = 0;
4376 tcp_dgp_warning = 1;
4377 } else if (tcp_dgp_warning == 0) {
4378 printf("Warning DGP pacing is invalid, invalid decrement\n");
4379 tcp_dgp_warning = 1;
4380 }
4381 }
4382
4383 }
4384
4385 static uint8_t tcp_pacing_warning = 0;
4386
4387 void
tcp_decrement_paced_conn(void)4388 tcp_decrement_paced_conn(void)
4389 {
4390 uint32_t ret;
4391
4392 ret = atomic_fetchadd_int(&number_of_tcp_connections_pacing, -1);
4393 shadow_num_connections = number_of_tcp_connections_pacing;
4394 KASSERT(ret != 0, ("tcp_paced_connection_exits -1 would cause wrap?"));
4395 if (ret == 0) {
4396 if (tcp_pacing_limit != -1) {
4397 printf("Warning all pacing is now disabled, count decrements invalidly!\n");
4398 tcp_pacing_limit = 0;
4399 } else if (tcp_pacing_warning == 0) {
4400 printf("Warning pacing count is invalid, invalid decrement\n");
4401 tcp_pacing_warning = 1;
4402 }
4403 }
4404 }
4405
4406 static void
tcp_default_switch_failed(struct tcpcb * tp)4407 tcp_default_switch_failed(struct tcpcb *tp)
4408 {
4409 /*
4410 * If a switch fails we only need to
4411 * care about two things:
4412 * a) The t_flags2
4413 * and
4414 * b) The timer granularity.
4415 * Timeouts, at least for now, don't use the
4416 * old callout system in the other stacks so
4417 * those are hopefully safe.
4418 */
4419 tcp_lro_features_off(tp);
4420 tcp_change_time_units(tp, TCP_TMR_GRANULARITY_TICKS);
4421 }
4422
4423 #ifdef TCP_ACCOUNTING
4424 int
tcp_do_ack_accounting(struct tcpcb * tp,struct tcphdr * th,struct tcpopt * to,uint32_t tiwin,int mss)4425 tcp_do_ack_accounting(struct tcpcb *tp, struct tcphdr *th, struct tcpopt *to, uint32_t tiwin, int mss)
4426 {
4427 if (SEQ_LT(th->th_ack, tp->snd_una)) {
4428 /* Do we have a SACK? */
4429 if (to->to_flags & TOF_SACK) {
4430 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4431 tp->tcp_cnt_counters[ACK_SACK]++;
4432 }
4433 return (ACK_SACK);
4434 } else {
4435 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4436 tp->tcp_cnt_counters[ACK_BEHIND]++;
4437 }
4438 return (ACK_BEHIND);
4439 }
4440 } else if (th->th_ack == tp->snd_una) {
4441 /* Do we have a SACK? */
4442 if (to->to_flags & TOF_SACK) {
4443 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4444 tp->tcp_cnt_counters[ACK_SACK]++;
4445 }
4446 return (ACK_SACK);
4447 } else if (tiwin != tp->snd_wnd) {
4448 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4449 tp->tcp_cnt_counters[ACK_RWND]++;
4450 }
4451 return (ACK_RWND);
4452 } else {
4453 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4454 tp->tcp_cnt_counters[ACK_DUPACK]++;
4455 }
4456 return (ACK_DUPACK);
4457 }
4458 } else {
4459 if (!SEQ_GT(th->th_ack, tp->snd_max)) {
4460 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4461 tp->tcp_cnt_counters[CNT_OF_ACKS_IN] += (((th->th_ack - tp->snd_una) + mss - 1)/mss);
4462 }
4463 }
4464 if (to->to_flags & TOF_SACK) {
4465 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4466 tp->tcp_cnt_counters[ACK_CUMACK_SACK]++;
4467 }
4468 return (ACK_CUMACK_SACK);
4469 } else {
4470 if (tp->t_flags2 & TF2_TCP_ACCOUNTING) {
4471 tp->tcp_cnt_counters[ACK_CUMACK]++;
4472 }
4473 return (ACK_CUMACK);
4474 }
4475 }
4476 }
4477 #endif
4478
4479 void
tcp_change_time_units(struct tcpcb * tp,int granularity)4480 tcp_change_time_units(struct tcpcb *tp, int granularity)
4481 {
4482 if (tp->t_tmr_granularity == granularity) {
4483 /* We are there */
4484 return;
4485 }
4486 if (granularity == TCP_TMR_GRANULARITY_USEC) {
4487 KASSERT((tp->t_tmr_granularity == TCP_TMR_GRANULARITY_TICKS),
4488 ("Granularity is not TICKS its %u in tp:%p",
4489 tp->t_tmr_granularity, tp));
4490 tp->t_rttlow = TICKS_2_USEC(tp->t_rttlow);
4491 if (tp->t_srtt > 1) {
4492 uint32_t val, frac;
4493
4494 val = tp->t_srtt >> TCP_RTT_SHIFT;
4495 frac = tp->t_srtt & 0x1f;
4496 tp->t_srtt = TICKS_2_USEC(val);
4497 /*
4498 * frac is the fractional part of the srtt (if any)
4499 * but its in ticks and every bit represents
4500 * 1/32nd of a hz.
4501 */
4502 if (frac) {
4503 if (hz == 1000) {
4504 frac = (((uint64_t)frac * (uint64_t)HPTS_USEC_IN_MSEC) / (uint64_t)TCP_RTT_SCALE);
4505 } else {
4506 frac = (((uint64_t)frac * (uint64_t)HPTS_USEC_IN_SEC) / ((uint64_t)(hz) * (uint64_t)TCP_RTT_SCALE));
4507 }
4508 tp->t_srtt += frac;
4509 }
4510 }
4511 if (tp->t_rttvar) {
4512 uint32_t val, frac;
4513
4514 val = tp->t_rttvar >> TCP_RTTVAR_SHIFT;
4515 frac = tp->t_rttvar & 0x1f;
4516 tp->t_rttvar = TICKS_2_USEC(val);
4517 /*
4518 * frac is the fractional part of the srtt (if any)
4519 * but its in ticks and every bit represents
4520 * 1/32nd of a hz.
4521 */
4522 if (frac) {
4523 if (hz == 1000) {
4524 frac = (((uint64_t)frac * (uint64_t)HPTS_USEC_IN_MSEC) / (uint64_t)TCP_RTT_SCALE);
4525 } else {
4526 frac = (((uint64_t)frac * (uint64_t)HPTS_USEC_IN_SEC) / ((uint64_t)(hz) * (uint64_t)TCP_RTT_SCALE));
4527 }
4528 tp->t_rttvar += frac;
4529 }
4530 }
4531 tp->t_tmr_granularity = TCP_TMR_GRANULARITY_USEC;
4532 } else if (granularity == TCP_TMR_GRANULARITY_TICKS) {
4533 /* Convert back to ticks, with */
4534 KASSERT((tp->t_tmr_granularity == TCP_TMR_GRANULARITY_USEC),
4535 ("Granularity is not USEC its %u in tp:%p",
4536 tp->t_tmr_granularity, tp));
4537 if (tp->t_srtt > 1) {
4538 uint32_t val, frac;
4539
4540 val = USEC_2_TICKS(tp->t_srtt);
4541 frac = tp->t_srtt % (HPTS_USEC_IN_SEC / hz);
4542 tp->t_srtt = val << TCP_RTT_SHIFT;
4543 /*
4544 * frac is the fractional part here is left
4545 * over from converting to hz and shifting.
4546 * We need to convert this to the 5 bit
4547 * remainder.
4548 */
4549 if (frac) {
4550 if (hz == 1000) {
4551 frac = (((uint64_t)frac * (uint64_t)TCP_RTT_SCALE) / (uint64_t)HPTS_USEC_IN_MSEC);
4552 } else {
4553 frac = (((uint64_t)frac * (uint64_t)(hz) * (uint64_t)TCP_RTT_SCALE) /(uint64_t)HPTS_USEC_IN_SEC);
4554 }
4555 tp->t_srtt += frac;
4556 }
4557 }
4558 if (tp->t_rttvar) {
4559 uint32_t val, frac;
4560
4561 val = USEC_2_TICKS(tp->t_rttvar);
4562 frac = tp->t_rttvar % (HPTS_USEC_IN_SEC / hz);
4563 tp->t_rttvar = val << TCP_RTTVAR_SHIFT;
4564 /*
4565 * frac is the fractional part here is left
4566 * over from converting to hz and shifting.
4567 * We need to convert this to the 4 bit
4568 * remainder.
4569 */
4570 if (frac) {
4571 if (hz == 1000) {
4572 frac = (((uint64_t)frac * (uint64_t)TCP_RTTVAR_SCALE) / (uint64_t)HPTS_USEC_IN_MSEC);
4573 } else {
4574 frac = (((uint64_t)frac * (uint64_t)(hz) * (uint64_t)TCP_RTTVAR_SCALE) /(uint64_t)HPTS_USEC_IN_SEC);
4575 }
4576 tp->t_rttvar += frac;
4577 }
4578 }
4579 tp->t_rttlow = USEC_2_TICKS(tp->t_rttlow);
4580 tp->t_tmr_granularity = TCP_TMR_GRANULARITY_TICKS;
4581 }
4582 #ifdef INVARIANTS
4583 else {
4584 panic("Unknown granularity:%d tp:%p",
4585 granularity, tp);
4586 }
4587 #endif
4588 }
4589
4590 void
tcp_handle_orphaned_packets(struct tcpcb * tp)4591 tcp_handle_orphaned_packets(struct tcpcb *tp)
4592 {
4593 struct mbuf *save, *m, *prev;
4594 /*
4595 * Called when a stack switch is occuring from the fini()
4596 * of the old stack. We assue the init() as already been
4597 * run of the new stack and it has set the t_flags2 to
4598 * what it supports. This function will then deal with any
4599 * differences i.e. cleanup packets that maybe queued that
4600 * the newstack does not support.
4601 */
4602
4603 if (tp->t_flags2 & TF2_MBUF_L_ACKS)
4604 return;
4605 if ((tp->t_flags2 & TF2_SUPPORTS_MBUFQ) == 0 &&
4606 !STAILQ_EMPTY(&tp->t_inqueue)) {
4607 /*
4608 * It is unsafe to process the packets since a
4609 * reset may be lurking in them (its rare but it
4610 * can occur). If we were to find a RST, then we
4611 * would end up dropping the connection and the
4612 * INP lock, so when we return the caller (tcp_usrreq)
4613 * will blow up when it trys to unlock the inp.
4614 * This new stack does not do any fancy LRO features
4615 * so all we can do is toss the packets.
4616 */
4617 m = STAILQ_FIRST(&tp->t_inqueue);
4618 STAILQ_INIT(&tp->t_inqueue);
4619 STAILQ_FOREACH_FROM_SAFE(m, &tp->t_inqueue, m_stailqpkt, save)
4620 m_freem(m);
4621 } else {
4622 /*
4623 * Here we have a stack that does mbuf queuing but
4624 * does not support compressed ack's. We must
4625 * walk all the mbufs and discard any compressed acks.
4626 */
4627 STAILQ_FOREACH_SAFE(m, &tp->t_inqueue, m_stailqpkt, save) {
4628 if (m->m_flags & M_ACKCMP) {
4629 if (m == STAILQ_FIRST(&tp->t_inqueue))
4630 STAILQ_REMOVE_HEAD(&tp->t_inqueue,
4631 m_stailqpkt);
4632 else
4633 STAILQ_REMOVE_AFTER(&tp->t_inqueue,
4634 prev, m_stailqpkt);
4635 m_freem(m);
4636 } else
4637 prev = m;
4638 }
4639 }
4640 }
4641
4642 #ifdef TCP_REQUEST_TRK
4643 uint32_t
tcp_estimate_tls_overhead(struct socket * so,uint64_t tls_usr_bytes)4644 tcp_estimate_tls_overhead(struct socket *so, uint64_t tls_usr_bytes)
4645 {
4646 #ifdef KERN_TLS
4647 struct ktls_session *tls;
4648 uint32_t rec_oh, records;
4649
4650 tls = so->so_snd.sb_tls_info;
4651 if (tls == NULL)
4652 return (0);
4653
4654 rec_oh = tls->params.tls_hlen + tls->params.tls_tlen;
4655 records = ((tls_usr_bytes + tls->params.max_frame_len - 1)/tls->params.max_frame_len);
4656 return (records * rec_oh);
4657 #else
4658 return (0);
4659 #endif
4660 }
4661
4662 extern uint32_t tcp_stale_entry_time;
4663 uint32_t tcp_stale_entry_time = 250000;
4664 SYSCTL_UINT(_net_inet_tcp, OID_AUTO, usrlog_stale, CTLFLAG_RW,
4665 &tcp_stale_entry_time, 250000, "Time that a tcpreq entry without a sendfile ages out");
4666
4667 void
tcp_req_log_req_info(struct tcpcb * tp,struct tcp_sendfile_track * req,uint16_t slot,uint8_t val,uint64_t offset,uint64_t nbytes)4668 tcp_req_log_req_info(struct tcpcb *tp, struct tcp_sendfile_track *req,
4669 uint16_t slot, uint8_t val, uint64_t offset, uint64_t nbytes)
4670 {
4671 if (tcp_bblogging_on(tp)) {
4672 union tcp_log_stackspecific log;
4673 struct timeval tv;
4674
4675 memset(&log, 0, sizeof(log));
4676 log.u_bbr.inhpts = tcp_in_hpts(tp);
4677 log.u_bbr.flex8 = val;
4678 log.u_bbr.rttProp = req->timestamp;
4679 log.u_bbr.delRate = req->start;
4680 log.u_bbr.cur_del_rate = req->end;
4681 log.u_bbr.flex1 = req->start_seq;
4682 log.u_bbr.flex2 = req->end_seq;
4683 log.u_bbr.flex3 = req->flags;
4684 log.u_bbr.flex4 = ((req->localtime >> 32) & 0x00000000ffffffff);
4685 log.u_bbr.flex5 = (req->localtime & 0x00000000ffffffff);
4686 log.u_bbr.flex7 = slot;
4687 log.u_bbr.bw_inuse = offset;
4688 /* nbytes = flex6 | epoch */
4689 log.u_bbr.flex6 = ((nbytes >> 32) & 0x00000000ffffffff);
4690 log.u_bbr.epoch = (nbytes & 0x00000000ffffffff);
4691 /* cspr = lt_epoch | pkts_out */
4692 log.u_bbr.lt_epoch = ((req->cspr >> 32) & 0x00000000ffffffff);
4693 log.u_bbr.pkts_out |= (req->cspr & 0x00000000ffffffff);
4694 log.u_bbr.applimited = tp->t_tcpreq_closed;
4695 log.u_bbr.applimited <<= 8;
4696 log.u_bbr.applimited |= tp->t_tcpreq_open;
4697 log.u_bbr.applimited <<= 8;
4698 log.u_bbr.applimited |= tp->t_tcpreq_req;
4699 log.u_bbr.timeStamp = tcp_get_usecs(&tv);
4700 TCP_LOG_EVENTP(tp, NULL,
4701 &tptosocket(tp)->so_rcv,
4702 &tptosocket(tp)->so_snd,
4703 TCP_LOG_REQ_T, 0,
4704 0, &log, false, &tv);
4705 }
4706 }
4707
4708 void
tcp_req_free_a_slot(struct tcpcb * tp,struct tcp_sendfile_track * ent)4709 tcp_req_free_a_slot(struct tcpcb *tp, struct tcp_sendfile_track *ent)
4710 {
4711 if (tp->t_tcpreq_req > 0)
4712 tp->t_tcpreq_req--;
4713 if (ent->flags & TCP_TRK_TRACK_FLG_OPEN) {
4714 if (tp->t_tcpreq_open > 0)
4715 tp->t_tcpreq_open--;
4716 } else {
4717 if (tp->t_tcpreq_closed > 0)
4718 tp->t_tcpreq_closed--;
4719 }
4720 ent->flags = TCP_TRK_TRACK_FLG_EMPTY;
4721 }
4722
4723 static void
tcp_req_check_for_stale_entries(struct tcpcb * tp,uint64_t ts,int rm_oldest)4724 tcp_req_check_for_stale_entries(struct tcpcb *tp, uint64_t ts, int rm_oldest)
4725 {
4726 struct tcp_sendfile_track *ent;
4727 uint64_t time_delta, oldest_delta;
4728 int i, oldest, oldest_set = 0, cnt_rm = 0;
4729
4730 for (i = 0; i < MAX_TCP_TRK_REQ; i++) {
4731 ent = &tp->t_tcpreq_info[i];
4732 if (ent->flags != TCP_TRK_TRACK_FLG_USED) {
4733 /*
4734 * We only care about closed end ranges
4735 * that are allocated and have no sendfile
4736 * ever touching them. They would be in
4737 * state USED.
4738 */
4739 continue;
4740 }
4741 if (ts >= ent->localtime)
4742 time_delta = ts - ent->localtime;
4743 else
4744 time_delta = 0;
4745 if (time_delta &&
4746 ((oldest_delta < time_delta) || (oldest_set == 0))) {
4747 oldest_set = 1;
4748 oldest = i;
4749 oldest_delta = time_delta;
4750 }
4751 if (tcp_stale_entry_time && (time_delta >= tcp_stale_entry_time)) {
4752 /*
4753 * No sendfile in a our time-limit
4754 * time to purge it.
4755 */
4756 cnt_rm++;
4757 tcp_req_log_req_info(tp, &tp->t_tcpreq_info[i], i, TCP_TRK_REQ_LOG_STALE,
4758 time_delta, 0);
4759 tcp_req_free_a_slot(tp, ent);
4760 }
4761 }
4762 if ((cnt_rm == 0) && rm_oldest && oldest_set) {
4763 ent = &tp->t_tcpreq_info[oldest];
4764 tcp_req_log_req_info(tp, &tp->t_tcpreq_info[i], i, TCP_TRK_REQ_LOG_STALE,
4765 oldest_delta, 1);
4766 tcp_req_free_a_slot(tp, ent);
4767 }
4768 }
4769
4770 int
tcp_req_check_for_comp(struct tcpcb * tp,tcp_seq ack_point)4771 tcp_req_check_for_comp(struct tcpcb *tp, tcp_seq ack_point)
4772 {
4773 int i, ret = 0;
4774 struct tcp_sendfile_track *ent;
4775
4776 /* Clean up any old closed end requests that are now completed */
4777 if (tp->t_tcpreq_req == 0)
4778 return (0);
4779 if (tp->t_tcpreq_closed == 0)
4780 return (0);
4781 for (i = 0; i < MAX_TCP_TRK_REQ; i++) {
4782 ent = &tp->t_tcpreq_info[i];
4783 /* Skip empty ones */
4784 if (ent->flags == TCP_TRK_TRACK_FLG_EMPTY)
4785 continue;
4786 /* Skip open ones */
4787 if (ent->flags & TCP_TRK_TRACK_FLG_OPEN)
4788 continue;
4789 if (SEQ_GEQ(ack_point, ent->end_seq)) {
4790 /* We are past it -- free it */
4791 tcp_req_log_req_info(tp, ent,
4792 i, TCP_TRK_REQ_LOG_FREED, 0, 0);
4793 tcp_req_free_a_slot(tp, ent);
4794 ret++;
4795 }
4796 }
4797 return (ret);
4798 }
4799
4800 int
tcp_req_is_entry_comp(struct tcpcb * tp,struct tcp_sendfile_track * ent,tcp_seq ack_point)4801 tcp_req_is_entry_comp(struct tcpcb *tp, struct tcp_sendfile_track *ent, tcp_seq ack_point)
4802 {
4803 if (tp->t_tcpreq_req == 0)
4804 return (-1);
4805 if (tp->t_tcpreq_closed == 0)
4806 return (-1);
4807 if (ent->flags == TCP_TRK_TRACK_FLG_EMPTY)
4808 return (-1);
4809 if (SEQ_GEQ(ack_point, ent->end_seq)) {
4810 return (1);
4811 }
4812 return (0);
4813 }
4814
4815 struct tcp_sendfile_track *
tcp_req_find_a_req_that_is_completed_by(struct tcpcb * tp,tcp_seq th_ack,int * ip)4816 tcp_req_find_a_req_that_is_completed_by(struct tcpcb *tp, tcp_seq th_ack, int *ip)
4817 {
4818 /*
4819 * Given an ack point (th_ack) walk through our entries and
4820 * return the first one found that th_ack goes past the
4821 * end_seq.
4822 */
4823 struct tcp_sendfile_track *ent;
4824 int i;
4825
4826 if (tp->t_tcpreq_req == 0) {
4827 /* none open */
4828 return (NULL);
4829 }
4830 for (i = 0; i < MAX_TCP_TRK_REQ; i++) {
4831 ent = &tp->t_tcpreq_info[i];
4832 if (ent->flags == TCP_TRK_TRACK_FLG_EMPTY)
4833 continue;
4834 if ((ent->flags & TCP_TRK_TRACK_FLG_OPEN) == 0) {
4835 if (SEQ_GEQ(th_ack, ent->end_seq)) {
4836 *ip = i;
4837 return (ent);
4838 }
4839 }
4840 }
4841 return (NULL);
4842 }
4843
4844 struct tcp_sendfile_track *
tcp_req_find_req_for_seq(struct tcpcb * tp,tcp_seq seq)4845 tcp_req_find_req_for_seq(struct tcpcb *tp, tcp_seq seq)
4846 {
4847 struct tcp_sendfile_track *ent;
4848 int i;
4849
4850 if (tp->t_tcpreq_req == 0) {
4851 /* none open */
4852 return (NULL);
4853 }
4854 for (i = 0; i < MAX_TCP_TRK_REQ; i++) {
4855 ent = &tp->t_tcpreq_info[i];
4856 tcp_req_log_req_info(tp, ent, i, TCP_TRK_REQ_LOG_SEARCH,
4857 (uint64_t)seq, 0);
4858 if (ent->flags == TCP_TRK_TRACK_FLG_EMPTY) {
4859 continue;
4860 }
4861 if (ent->flags & TCP_TRK_TRACK_FLG_OPEN) {
4862 /*
4863 * An open end request only needs to
4864 * match the beginning seq or be
4865 * all we have (once we keep going on
4866 * a open end request we may have a seq
4867 * wrap).
4868 */
4869 if ((SEQ_GEQ(seq, ent->start_seq)) ||
4870 (tp->t_tcpreq_closed == 0))
4871 return (ent);
4872 } else {
4873 /*
4874 * For this one we need to
4875 * be a bit more careful if its
4876 * completed at least.
4877 */
4878 if ((SEQ_GEQ(seq, ent->start_seq)) &&
4879 (SEQ_LT(seq, ent->end_seq))) {
4880 return (ent);
4881 }
4882 }
4883 }
4884 return (NULL);
4885 }
4886
4887 /* Should this be in its own file tcp_req.c ? */
4888 struct tcp_sendfile_track *
tcp_req_alloc_req_full(struct tcpcb * tp,struct tcp_snd_req * req,uint64_t ts,int rec_dups)4889 tcp_req_alloc_req_full(struct tcpcb *tp, struct tcp_snd_req *req, uint64_t ts, int rec_dups)
4890 {
4891 struct tcp_sendfile_track *fil;
4892 int i, allocated;
4893
4894 /* Allocate the request tracking array on demand */
4895 if (tp->t_tcpreq_info == NULL) {
4896 tp->t_tcpreq_info = malloc(
4897 sizeof(*tp->t_tcpreq_info) * MAX_TCP_TRK_REQ,
4898 M_TCPREQTRK, M_NOWAIT | M_ZERO);
4899 if (tp->t_tcpreq_info == NULL)
4900 return (NULL);
4901 }
4902 /* In case the stack does not check for completions do so now */
4903 tcp_req_check_for_comp(tp, tp->snd_una);
4904 /* Check for stale entries */
4905 if (tp->t_tcpreq_req)
4906 tcp_req_check_for_stale_entries(tp, ts,
4907 (tp->t_tcpreq_req >= MAX_TCP_TRK_REQ));
4908 /* Check to see if this is a duplicate of one not started */
4909 if (tp->t_tcpreq_req) {
4910 for (i = 0, allocated = 0; i < MAX_TCP_TRK_REQ; i++) {
4911 fil = &tp->t_tcpreq_info[i];
4912 if ((fil->flags & TCP_TRK_TRACK_FLG_USED) == 0)
4913 continue;
4914 if ((fil->timestamp == req->timestamp) &&
4915 (fil->start == req->start) &&
4916 ((fil->flags & TCP_TRK_TRACK_FLG_OPEN) ||
4917 (fil->end == req->end))) {
4918 /*
4919 * We already have this request
4920 * and it has not been started with sendfile.
4921 * This probably means the user was returned
4922 * a 4xx of some sort and its going to age
4923 * out, lets not duplicate it.
4924 */
4925 return (fil);
4926 }
4927 }
4928 }
4929 /* Ok if there is no room at the inn we are in trouble */
4930 if (tp->t_tcpreq_req >= MAX_TCP_TRK_REQ) {
4931 tcp_trace_point(tp, TCP_TP_REQ_LOG_FAIL);
4932 for (i = 0; i < MAX_TCP_TRK_REQ; i++) {
4933 tcp_req_log_req_info(tp, &tp->t_tcpreq_info[i],
4934 i, TCP_TRK_REQ_LOG_ALLOCFAIL, 0, 0);
4935 }
4936 return (NULL);
4937 }
4938 for (i = 0, allocated = 0; i < MAX_TCP_TRK_REQ; i++) {
4939 fil = &tp->t_tcpreq_info[i];
4940 if (fil->flags == TCP_TRK_TRACK_FLG_EMPTY) {
4941 allocated = 1;
4942 fil->flags = TCP_TRK_TRACK_FLG_USED;
4943 fil->timestamp = req->timestamp;
4944 fil->playout_ms = req->playout_ms;
4945 fil->localtime = ts;
4946 fil->start = req->start;
4947 if (req->flags & TCP_LOG_HTTPD_RANGE_END) {
4948 fil->end = req->end;
4949 } else {
4950 fil->end = 0;
4951 fil->flags |= TCP_TRK_TRACK_FLG_OPEN;
4952 }
4953 /*
4954 * We can set the min boundaries to the TCP Sequence space,
4955 * but it might be found to be further up when sendfile
4956 * actually runs on this range (if it ever does).
4957 */
4958 fil->sbcc_at_s = tptosocket(tp)->so_snd.sb_ccc;
4959 fil->start_seq = tp->snd_una +
4960 tptosocket(tp)->so_snd.sb_ccc;
4961 if (req->flags & TCP_LOG_HTTPD_RANGE_END)
4962 fil->end_seq = (fil->start_seq + ((uint32_t)(fil->end - fil->start)));
4963 else
4964 fil->end_seq = 0;
4965 if (tptosocket(tp)->so_snd.sb_tls_info) {
4966 /*
4967 * This session is doing TLS. Take a swag guess
4968 * at the overhead.
4969 */
4970 fil->end_seq += tcp_estimate_tls_overhead(
4971 tptosocket(tp), (fil->end - fil->start));
4972 }
4973 tp->t_tcpreq_req++;
4974 if (fil->flags & TCP_TRK_TRACK_FLG_OPEN)
4975 tp->t_tcpreq_open++;
4976 else
4977 tp->t_tcpreq_closed++;
4978 tcp_req_log_req_info(tp, fil, i,
4979 TCP_TRK_REQ_LOG_NEW, 0, 0);
4980 break;
4981 } else
4982 fil = NULL;
4983 }
4984 return (fil);
4985 }
4986
4987 void
tcp_req_alloc_req(struct tcpcb * tp,union tcp_log_userdata * user,uint64_t ts)4988 tcp_req_alloc_req(struct tcpcb *tp, union tcp_log_userdata *user, uint64_t ts)
4989 {
4990 (void)tcp_req_alloc_req_full(tp, &user->tcp_req, ts, 1);
4991 }
4992 #endif
4993
4994 void
tcp_log_socket_option(struct tcpcb * tp,uint32_t option_num,uint32_t option_val,int err)4995 tcp_log_socket_option(struct tcpcb *tp, uint32_t option_num, uint32_t option_val, int err)
4996 {
4997 if (tcp_bblogging_on(tp)) {
4998 struct tcp_log_buffer *l;
4999
5000 l = tcp_log_event(tp, NULL,
5001 &tptosocket(tp)->so_rcv,
5002 &tptosocket(tp)->so_snd,
5003 TCP_LOG_SOCKET_OPT,
5004 err, 0, NULL, 1,
5005 NULL, NULL, 0, NULL);
5006 if (l) {
5007 l->tlb_flex1 = option_num;
5008 l->tlb_flex2 = option_val;
5009 }
5010 }
5011 }
5012
5013 uint32_t
tcp_get_srtt(struct tcpcb * tp,int granularity)5014 tcp_get_srtt(struct tcpcb *tp, int granularity)
5015 {
5016 uint32_t srtt;
5017
5018 KASSERT(granularity == TCP_TMR_GRANULARITY_USEC ||
5019 granularity == TCP_TMR_GRANULARITY_TICKS,
5020 ("%s: called with unexpected granularity %d", __func__,
5021 granularity));
5022
5023 srtt = tp->t_srtt;
5024
5025 /*
5026 * We only support two granularities. If the stored granularity
5027 * does not match the granularity requested by the caller,
5028 * convert the stored value to the requested unit of granularity.
5029 */
5030 if (tp->t_tmr_granularity != granularity) {
5031 if (granularity == TCP_TMR_GRANULARITY_USEC)
5032 srtt = TICKS_2_USEC(srtt);
5033 else
5034 srtt = USEC_2_TICKS(srtt);
5035 }
5036
5037 /*
5038 * If the srtt is stored with ticks granularity, we need to
5039 * unshift to get the actual value. We do this after the
5040 * conversion above (if one was necessary) in order to maximize
5041 * precision.
5042 */
5043 if (tp->t_tmr_granularity == TCP_TMR_GRANULARITY_TICKS)
5044 srtt = srtt >> TCP_RTT_SHIFT;
5045
5046 return (srtt);
5047 }
5048
5049 void
tcp_account_for_send(struct tcpcb * tp,uint32_t len,uint8_t is_rxt,uint8_t is_tlp,bool hw_tls)5050 tcp_account_for_send(struct tcpcb *tp, uint32_t len, uint8_t is_rxt,
5051 uint8_t is_tlp, bool hw_tls)
5052 {
5053
5054 if (is_tlp) {
5055 tp->t_sndtlppack++;
5056 tp->t_sndtlpbyte += len;
5057 }
5058 /* To get total bytes sent you must add t_snd_rxt_bytes to t_sndbytes */
5059 if (is_rxt)
5060 tp->t_snd_rxt_bytes += len;
5061 else
5062 tp->t_sndbytes += len;
5063
5064 #ifdef KERN_TLS
5065 if (hw_tls && is_rxt && len != 0) {
5066 uint64_t rexmit_percent;
5067
5068 rexmit_percent = (1000ULL * tp->t_snd_rxt_bytes) /
5069 (10ULL * (tp->t_snd_rxt_bytes + tp->t_sndbytes));
5070 if (rexmit_percent > ktls_ifnet_max_rexmit_pct)
5071 ktls_disable_ifnet(tp);
5072 }
5073 #endif
5074 }
5075