1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 1982, 1986, 1991, 1993, 1995
5 * The Regents of the University of California.
6 * Copyright (c) 2007-2009 Robert N. M. Watson
7 * Copyright (c) 2010-2011 Juniper Networks, Inc.
8 * Copyright (c) 2021-2022 Gleb Smirnoff <[email protected]>
9 * All rights reserved.
10 *
11 * Portions of this software were developed by Robert N. M. Watson under
12 * contract to Juniper Networks, Inc.
13 *
14 * Redistribution and use in source and binary forms, with or without
15 * modification, are permitted provided that the following conditions
16 * are met:
17 * 1. Redistributions of source code must retain the above copyright
18 * notice, this list of conditions and the following disclaimer.
19 * 2. Redistributions in binary form must reproduce the above copyright
20 * notice, this list of conditions and the following disclaimer in the
21 * documentation and/or other materials provided with the distribution.
22 * 3. Neither the name of the University nor the names of its contributors
23 * may be used to endorse or promote products derived from this software
24 * without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36 * SUCH DAMAGE.
37 *
38 * @(#)in_pcb.c 8.4 (Berkeley) 5/24/95
39 */
40
41 #include <sys/cdefs.h>
42 #include "opt_ddb.h"
43 #include "opt_ipsec.h"
44 #include "opt_inet.h"
45 #include "opt_inet6.h"
46 #include "opt_ratelimit.h"
47 #include "opt_route.h"
48 #include "opt_rss.h"
49
50 #include <sys/param.h>
51 #include <sys/hash.h>
52 #include <sys/systm.h>
53 #include <sys/libkern.h>
54 #include <sys/lock.h>
55 #include <sys/malloc.h>
56 #include <sys/mbuf.h>
57 #include <sys/eventhandler.h>
58 #include <sys/domain.h>
59 #include <sys/proc.h>
60 #include <sys/protosw.h>
61 #include <sys/smp.h>
62 #include <sys/smr.h>
63 #include <sys/socket.h>
64 #include <sys/socketvar.h>
65 #include <sys/sockio.h>
66 #include <sys/priv.h>
67 #include <sys/proc.h>
68 #include <sys/refcount.h>
69 #include <sys/jail.h>
70 #include <sys/kernel.h>
71 #include <sys/sysctl.h>
72
73 #ifdef DDB
74 #include <ddb/ddb.h>
75 #endif
76
77 #include <vm/uma.h>
78 #include <vm/vm.h>
79
80 #include <net/if.h>
81 #include <net/if_var.h>
82 #include <net/if_private.h>
83 #include <net/if_types.h>
84 #include <net/if_llatbl.h>
85 #include <net/route.h>
86 #include <net/rss_config.h>
87 #include <net/vnet.h>
88
89 #if defined(INET) || defined(INET6)
90 #include <netinet/in.h>
91 #include <netinet/in_pcb.h>
92 #include <netinet/in_pcb_var.h>
93 #include <netinet/tcp.h>
94 #ifdef INET
95 #include <netinet/in_var.h>
96 #include <netinet/in_fib.h>
97 #endif
98 #include <netinet/ip_var.h>
99 #ifdef INET6
100 #include <netinet/ip6.h>
101 #include <netinet6/in6_pcb.h>
102 #include <netinet6/in6_var.h>
103 #include <netinet6/ip6_var.h>
104 #endif /* INET6 */
105 #include <net/route/nhop.h>
106 #endif
107
108 #include <netipsec/ipsec_support.h>
109
110 #include <security/mac/mac_framework.h>
111
112 #define INPCBLBGROUP_SIZMIN 8
113 #define INPCBLBGROUP_SIZMAX 256
114
115 #define INP_FREED 0x00000200 /* Went through in_pcbfree(). */
116 #define INP_INLBGROUP 0x01000000 /* Inserted into inpcblbgroup. */
117
118 /*
119 * These configure the range of local port addresses assigned to
120 * "unspecified" outgoing connections/packets/whatever.
121 */
122 VNET_DEFINE(int, ipport_lowfirstauto) = IPPORT_RESERVED - 1; /* 1023 */
123 VNET_DEFINE(int, ipport_lowlastauto) = IPPORT_RESERVEDSTART; /* 600 */
124 VNET_DEFINE(int, ipport_firstauto) = IPPORT_EPHEMERALFIRST; /* 10000 */
125 VNET_DEFINE(int, ipport_lastauto) = IPPORT_EPHEMERALLAST; /* 65535 */
126 VNET_DEFINE(int, ipport_hifirstauto) = IPPORT_HIFIRSTAUTO; /* 49152 */
127 VNET_DEFINE(int, ipport_hilastauto) = IPPORT_HILASTAUTO; /* 65535 */
128
129 /*
130 * Reserved ports accessible only to root. There are significant
131 * security considerations that must be accounted for when changing these,
132 * but the security benefits can be great. Please be careful.
133 */
134 VNET_DEFINE(int, ipport_reservedhigh) = IPPORT_RESERVED - 1; /* 1023 */
135 VNET_DEFINE(int, ipport_reservedlow);
136
137 /* Enable random ephemeral port allocation by default. */
138 VNET_DEFINE(int, ipport_randomized) = 1;
139
140 #ifdef INET
141 static struct inpcb *in_pcblookup_hash_locked(struct inpcbinfo *pcbinfo,
142 struct in_addr faddr, u_int fport_arg,
143 struct in_addr laddr, u_int lport_arg,
144 int lookupflags, uint8_t numa_domain);
145
146 #define RANGECHK(var, min, max) \
147 if ((var) < (min)) { (var) = (min); } \
148 else if ((var) > (max)) { (var) = (max); }
149
150 static int
sysctl_net_ipport_check(SYSCTL_HANDLER_ARGS)151 sysctl_net_ipport_check(SYSCTL_HANDLER_ARGS)
152 {
153 int error;
154
155 error = sysctl_handle_int(oidp, arg1, arg2, req);
156 if (error == 0) {
157 RANGECHK(V_ipport_lowfirstauto, 1, IPPORT_RESERVED - 1);
158 RANGECHK(V_ipport_lowlastauto, 1, IPPORT_RESERVED - 1);
159 RANGECHK(V_ipport_firstauto, IPPORT_RESERVED, IPPORT_MAX);
160 RANGECHK(V_ipport_lastauto, IPPORT_RESERVED, IPPORT_MAX);
161 RANGECHK(V_ipport_hifirstauto, IPPORT_RESERVED, IPPORT_MAX);
162 RANGECHK(V_ipport_hilastauto, IPPORT_RESERVED, IPPORT_MAX);
163 }
164 return (error);
165 }
166
167 #undef RANGECHK
168
169 static SYSCTL_NODE(_net_inet_ip, IPPROTO_IP, portrange,
170 CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
171 "IP Ports");
172
173 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, lowfirst,
174 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
175 &VNET_NAME(ipport_lowfirstauto), 0, &sysctl_net_ipport_check, "I",
176 "");
177 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, lowlast,
178 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
179 &VNET_NAME(ipport_lowlastauto), 0, &sysctl_net_ipport_check, "I",
180 "");
181 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, first,
182 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
183 &VNET_NAME(ipport_firstauto), 0, &sysctl_net_ipport_check, "I",
184 "");
185 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, last,
186 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
187 &VNET_NAME(ipport_lastauto), 0, &sysctl_net_ipport_check, "I",
188 "");
189 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, hifirst,
190 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
191 &VNET_NAME(ipport_hifirstauto), 0, &sysctl_net_ipport_check, "I",
192 "");
193 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, hilast,
194 CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT,
195 &VNET_NAME(ipport_hilastauto), 0, &sysctl_net_ipport_check, "I",
196 "");
197 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, reservedhigh,
198 CTLFLAG_VNET | CTLFLAG_RW | CTLFLAG_SECURE,
199 &VNET_NAME(ipport_reservedhigh), 0, "");
200 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, reservedlow,
201 CTLFLAG_RW|CTLFLAG_SECURE, &VNET_NAME(ipport_reservedlow), 0, "");
202 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, randomized,
203 CTLFLAG_VNET | CTLFLAG_RW,
204 &VNET_NAME(ipport_randomized), 0, "Enable random port allocation");
205
206 #ifdef RATELIMIT
207 counter_u64_t rate_limit_new;
208 counter_u64_t rate_limit_chg;
209 counter_u64_t rate_limit_active;
210 counter_u64_t rate_limit_alloc_fail;
211 counter_u64_t rate_limit_set_ok;
212
213 static SYSCTL_NODE(_net_inet_ip, OID_AUTO, rl, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
214 "IP Rate Limiting");
215 SYSCTL_COUNTER_U64(_net_inet_ip_rl, OID_AUTO, active, CTLFLAG_RD,
216 &rate_limit_active, "Active rate limited connections");
217 SYSCTL_COUNTER_U64(_net_inet_ip_rl, OID_AUTO, alloc_fail, CTLFLAG_RD,
218 &rate_limit_alloc_fail, "Rate limited connection failures");
219 SYSCTL_COUNTER_U64(_net_inet_ip_rl, OID_AUTO, set_ok, CTLFLAG_RD,
220 &rate_limit_set_ok, "Rate limited setting succeeded");
221 SYSCTL_COUNTER_U64(_net_inet_ip_rl, OID_AUTO, newrl, CTLFLAG_RD,
222 &rate_limit_new, "Total Rate limit new attempts");
223 SYSCTL_COUNTER_U64(_net_inet_ip_rl, OID_AUTO, chgrl, CTLFLAG_RD,
224 &rate_limit_chg, "Total Rate limited change attempts");
225 #endif /* RATELIMIT */
226
227 #endif /* INET */
228
229 VNET_DEFINE(uint32_t, in_pcbhashseed);
230 static void
in_pcbhashseed_init(void)231 in_pcbhashseed_init(void)
232 {
233
234 V_in_pcbhashseed = arc4random();
235 }
236 VNET_SYSINIT(in_pcbhashseed_init, SI_SUB_PROTO_DOMAIN, SI_ORDER_FIRST,
237 in_pcbhashseed_init, 0);
238
239 #ifdef INET
240 VNET_DEFINE_STATIC(int, connect_inaddr_wild) = 1;
241 #define V_connect_inaddr_wild VNET(connect_inaddr_wild)
242 SYSCTL_INT(_net_inet_ip, OID_AUTO, connect_inaddr_wild,
243 CTLFLAG_VNET | CTLFLAG_RW, &VNET_NAME(connect_inaddr_wild), 0,
244 "Allow connecting to INADDR_ANY or INADDR_BROADCAST for connect(2)");
245 #endif
246
247 static void in_pcbremhash(struct inpcb *);
248
249 /*
250 * in_pcb.c: manage the Protocol Control Blocks.
251 *
252 * NOTE: It is assumed that most of these functions will be called with
253 * the pcbinfo lock held, and often, the inpcb lock held, as these utility
254 * functions often modify hash chains or addresses in pcbs.
255 */
256
257 static struct inpcblbgroup *
in_pcblbgroup_alloc(struct inpcblbgrouphead * hdr,struct ucred * cred,u_char vflag,uint16_t port,const union in_dependaddr * addr,int size,uint8_t numa_domain)258 in_pcblbgroup_alloc(struct inpcblbgrouphead *hdr, struct ucred *cred,
259 u_char vflag, uint16_t port, const union in_dependaddr *addr, int size,
260 uint8_t numa_domain)
261 {
262 struct inpcblbgroup *grp;
263 size_t bytes;
264
265 bytes = __offsetof(struct inpcblbgroup, il_inp[size]);
266 grp = malloc(bytes, M_PCB, M_ZERO | M_NOWAIT);
267 if (grp == NULL)
268 return (NULL);
269 grp->il_cred = crhold(cred);
270 grp->il_vflag = vflag;
271 grp->il_lport = port;
272 grp->il_numa_domain = numa_domain;
273 grp->il_dependladdr = *addr;
274 grp->il_inpsiz = size;
275 CK_LIST_INSERT_HEAD(hdr, grp, il_list);
276 return (grp);
277 }
278
279 static void
in_pcblbgroup_free_deferred(epoch_context_t ctx)280 in_pcblbgroup_free_deferred(epoch_context_t ctx)
281 {
282 struct inpcblbgroup *grp;
283
284 grp = __containerof(ctx, struct inpcblbgroup, il_epoch_ctx);
285 crfree(grp->il_cred);
286 free(grp, M_PCB);
287 }
288
289 static void
in_pcblbgroup_free(struct inpcblbgroup * grp)290 in_pcblbgroup_free(struct inpcblbgroup *grp)
291 {
292
293 CK_LIST_REMOVE(grp, il_list);
294 NET_EPOCH_CALL(in_pcblbgroup_free_deferred, &grp->il_epoch_ctx);
295 }
296
297 static struct inpcblbgroup *
in_pcblbgroup_resize(struct inpcblbgrouphead * hdr,struct inpcblbgroup * old_grp,int size)298 in_pcblbgroup_resize(struct inpcblbgrouphead *hdr,
299 struct inpcblbgroup *old_grp, int size)
300 {
301 struct inpcblbgroup *grp;
302 int i;
303
304 grp = in_pcblbgroup_alloc(hdr, old_grp->il_cred, old_grp->il_vflag,
305 old_grp->il_lport, &old_grp->il_dependladdr, size,
306 old_grp->il_numa_domain);
307 if (grp == NULL)
308 return (NULL);
309
310 KASSERT(old_grp->il_inpcnt < grp->il_inpsiz,
311 ("invalid new local group size %d and old local group count %d",
312 grp->il_inpsiz, old_grp->il_inpcnt));
313
314 for (i = 0; i < old_grp->il_inpcnt; ++i)
315 grp->il_inp[i] = old_grp->il_inp[i];
316 grp->il_inpcnt = old_grp->il_inpcnt;
317 in_pcblbgroup_free(old_grp);
318 return (grp);
319 }
320
321 /*
322 * PCB at index 'i' is removed from the group. Pull up the ones below il_inp[i]
323 * and shrink group if possible.
324 */
325 static void
in_pcblbgroup_reorder(struct inpcblbgrouphead * hdr,struct inpcblbgroup ** grpp,int i)326 in_pcblbgroup_reorder(struct inpcblbgrouphead *hdr, struct inpcblbgroup **grpp,
327 int i)
328 {
329 struct inpcblbgroup *grp, *new_grp;
330
331 grp = *grpp;
332 for (; i + 1 < grp->il_inpcnt; ++i)
333 grp->il_inp[i] = grp->il_inp[i + 1];
334 grp->il_inpcnt--;
335
336 if (grp->il_inpsiz > INPCBLBGROUP_SIZMIN &&
337 grp->il_inpcnt <= grp->il_inpsiz / 4) {
338 /* Shrink this group. */
339 new_grp = in_pcblbgroup_resize(hdr, grp, grp->il_inpsiz / 2);
340 if (new_grp != NULL)
341 *grpp = new_grp;
342 }
343 }
344
345 /*
346 * Add PCB to load balance group for SO_REUSEPORT_LB option.
347 */
348 static int
in_pcbinslbgrouphash(struct inpcb * inp,uint8_t numa_domain)349 in_pcbinslbgrouphash(struct inpcb *inp, uint8_t numa_domain)
350 {
351 const static struct timeval interval = { 60, 0 };
352 static struct timeval lastprint;
353 struct inpcbinfo *pcbinfo;
354 struct inpcblbgrouphead *hdr;
355 struct inpcblbgroup *grp;
356 uint32_t idx;
357
358 pcbinfo = inp->inp_pcbinfo;
359
360 INP_WLOCK_ASSERT(inp);
361 INP_HASH_WLOCK_ASSERT(pcbinfo);
362
363 #ifdef INET6
364 /*
365 * Don't allow IPv4 mapped INET6 wild socket.
366 */
367 if ((inp->inp_vflag & INP_IPV4) &&
368 inp->inp_laddr.s_addr == INADDR_ANY &&
369 INP_CHECK_SOCKAF(inp->inp_socket, AF_INET6)) {
370 return (0);
371 }
372 #endif
373
374 idx = INP_PCBPORTHASH(inp->inp_lport, pcbinfo->ipi_lbgrouphashmask);
375 hdr = &pcbinfo->ipi_lbgrouphashbase[idx];
376 CK_LIST_FOREACH(grp, hdr, il_list) {
377 if (grp->il_cred->cr_prison == inp->inp_cred->cr_prison &&
378 grp->il_vflag == inp->inp_vflag &&
379 grp->il_lport == inp->inp_lport &&
380 grp->il_numa_domain == numa_domain &&
381 memcmp(&grp->il_dependladdr,
382 &inp->inp_inc.inc_ie.ie_dependladdr,
383 sizeof(grp->il_dependladdr)) == 0) {
384 break;
385 }
386 }
387 if (grp == NULL) {
388 /* Create new load balance group. */
389 grp = in_pcblbgroup_alloc(hdr, inp->inp_cred, inp->inp_vflag,
390 inp->inp_lport, &inp->inp_inc.inc_ie.ie_dependladdr,
391 INPCBLBGROUP_SIZMIN, numa_domain);
392 if (grp == NULL)
393 return (ENOBUFS);
394 } else if (grp->il_inpcnt == grp->il_inpsiz) {
395 if (grp->il_inpsiz >= INPCBLBGROUP_SIZMAX) {
396 if (ratecheck(&lastprint, &interval))
397 printf("lb group port %d, limit reached\n",
398 ntohs(grp->il_lport));
399 return (0);
400 }
401
402 /* Expand this local group. */
403 grp = in_pcblbgroup_resize(hdr, grp, grp->il_inpsiz * 2);
404 if (grp == NULL)
405 return (ENOBUFS);
406 }
407
408 KASSERT(grp->il_inpcnt < grp->il_inpsiz,
409 ("invalid local group size %d and count %d", grp->il_inpsiz,
410 grp->il_inpcnt));
411
412 grp->il_inp[grp->il_inpcnt] = inp;
413 grp->il_inpcnt++;
414 inp->inp_flags |= INP_INLBGROUP;
415 return (0);
416 }
417
418 /*
419 * Remove PCB from load balance group.
420 */
421 static void
in_pcbremlbgrouphash(struct inpcb * inp)422 in_pcbremlbgrouphash(struct inpcb *inp)
423 {
424 struct inpcbinfo *pcbinfo;
425 struct inpcblbgrouphead *hdr;
426 struct inpcblbgroup *grp;
427 int i;
428
429 pcbinfo = inp->inp_pcbinfo;
430
431 INP_WLOCK_ASSERT(inp);
432 MPASS(inp->inp_flags & INP_INLBGROUP);
433 INP_HASH_WLOCK_ASSERT(pcbinfo);
434
435 hdr = &pcbinfo->ipi_lbgrouphashbase[
436 INP_PCBPORTHASH(inp->inp_lport, pcbinfo->ipi_lbgrouphashmask)];
437 CK_LIST_FOREACH(grp, hdr, il_list) {
438 for (i = 0; i < grp->il_inpcnt; ++i) {
439 if (grp->il_inp[i] != inp)
440 continue;
441
442 if (grp->il_inpcnt == 1) {
443 /* We are the last, free this local group. */
444 in_pcblbgroup_free(grp);
445 } else {
446 /* Pull up inpcbs, shrink group if possible. */
447 in_pcblbgroup_reorder(hdr, &grp, i);
448 }
449 inp->inp_flags &= ~INP_INLBGROUP;
450 return;
451 }
452 }
453 KASSERT(0, ("%s: did not find %p", __func__, inp));
454 }
455
456 int
in_pcblbgroup_numa(struct inpcb * inp,int arg)457 in_pcblbgroup_numa(struct inpcb *inp, int arg)
458 {
459 struct inpcbinfo *pcbinfo;
460 struct inpcblbgrouphead *hdr;
461 struct inpcblbgroup *grp;
462 int err, i;
463 uint8_t numa_domain;
464
465 switch (arg) {
466 case TCP_REUSPORT_LB_NUMA_NODOM:
467 numa_domain = M_NODOM;
468 break;
469 case TCP_REUSPORT_LB_NUMA_CURDOM:
470 numa_domain = PCPU_GET(domain);
471 break;
472 default:
473 if (arg < 0 || arg >= vm_ndomains)
474 return (EINVAL);
475 numa_domain = arg;
476 }
477
478 err = 0;
479 pcbinfo = inp->inp_pcbinfo;
480 INP_WLOCK_ASSERT(inp);
481 INP_HASH_WLOCK(pcbinfo);
482 hdr = &pcbinfo->ipi_lbgrouphashbase[
483 INP_PCBPORTHASH(inp->inp_lport, pcbinfo->ipi_lbgrouphashmask)];
484 CK_LIST_FOREACH(grp, hdr, il_list) {
485 for (i = 0; i < grp->il_inpcnt; ++i) {
486 if (grp->il_inp[i] != inp)
487 continue;
488
489 if (grp->il_numa_domain == numa_domain) {
490 goto abort_with_hash_wlock;
491 }
492
493 /* Remove it from the old group. */
494 in_pcbremlbgrouphash(inp);
495
496 /* Add it to the new group based on numa domain. */
497 in_pcbinslbgrouphash(inp, numa_domain);
498 goto abort_with_hash_wlock;
499 }
500 }
501 err = ENOENT;
502 abort_with_hash_wlock:
503 INP_HASH_WUNLOCK(pcbinfo);
504 return (err);
505 }
506
507 /* Make sure it is safe to use hashinit(9) on CK_LIST. */
508 CTASSERT(sizeof(struct inpcbhead) == sizeof(LIST_HEAD(, inpcb)));
509
510 /*
511 * Initialize an inpcbinfo - a per-VNET instance of connections db.
512 */
513 void
in_pcbinfo_init(struct inpcbinfo * pcbinfo,struct inpcbstorage * pcbstor,u_int hash_nelements,u_int porthash_nelements)514 in_pcbinfo_init(struct inpcbinfo *pcbinfo, struct inpcbstorage *pcbstor,
515 u_int hash_nelements, u_int porthash_nelements)
516 {
517
518 mtx_init(&pcbinfo->ipi_lock, pcbstor->ips_infolock_name, NULL, MTX_DEF);
519 mtx_init(&pcbinfo->ipi_hash_lock, pcbstor->ips_hashlock_name,
520 NULL, MTX_DEF);
521 #ifdef VIMAGE
522 pcbinfo->ipi_vnet = curvnet;
523 #endif
524 CK_LIST_INIT(&pcbinfo->ipi_listhead);
525 pcbinfo->ipi_count = 0;
526 pcbinfo->ipi_hash_exact = hashinit(hash_nelements, M_PCB,
527 &pcbinfo->ipi_hashmask);
528 pcbinfo->ipi_hash_wild = hashinit(hash_nelements, M_PCB,
529 &pcbinfo->ipi_hashmask);
530 porthash_nelements = imin(porthash_nelements, IPPORT_MAX + 1);
531 pcbinfo->ipi_porthashbase = hashinit(porthash_nelements, M_PCB,
532 &pcbinfo->ipi_porthashmask);
533 pcbinfo->ipi_lbgrouphashbase = hashinit(porthash_nelements, M_PCB,
534 &pcbinfo->ipi_lbgrouphashmask);
535 pcbinfo->ipi_zone = pcbstor->ips_zone;
536 pcbinfo->ipi_portzone = pcbstor->ips_portzone;
537 pcbinfo->ipi_smr = uma_zone_get_smr(pcbinfo->ipi_zone);
538 }
539
540 /*
541 * Destroy an inpcbinfo.
542 */
543 void
in_pcbinfo_destroy(struct inpcbinfo * pcbinfo)544 in_pcbinfo_destroy(struct inpcbinfo *pcbinfo)
545 {
546
547 KASSERT(pcbinfo->ipi_count == 0,
548 ("%s: ipi_count = %u", __func__, pcbinfo->ipi_count));
549
550 hashdestroy(pcbinfo->ipi_hash_exact, M_PCB, pcbinfo->ipi_hashmask);
551 hashdestroy(pcbinfo->ipi_hash_wild, M_PCB, pcbinfo->ipi_hashmask);
552 hashdestroy(pcbinfo->ipi_porthashbase, M_PCB,
553 pcbinfo->ipi_porthashmask);
554 hashdestroy(pcbinfo->ipi_lbgrouphashbase, M_PCB,
555 pcbinfo->ipi_lbgrouphashmask);
556 mtx_destroy(&pcbinfo->ipi_hash_lock);
557 mtx_destroy(&pcbinfo->ipi_lock);
558 }
559
560 /*
561 * Initialize a pcbstorage - per protocol zones to allocate inpcbs.
562 */
563 static void inpcb_fini(void *, int);
564 void
in_pcbstorage_init(void * arg)565 in_pcbstorage_init(void *arg)
566 {
567 struct inpcbstorage *pcbstor = arg;
568
569 pcbstor->ips_zone = uma_zcreate(pcbstor->ips_zone_name,
570 pcbstor->ips_size, NULL, NULL, pcbstor->ips_pcbinit,
571 inpcb_fini, UMA_ALIGN_CACHE, UMA_ZONE_SMR);
572 pcbstor->ips_portzone = uma_zcreate(pcbstor->ips_portzone_name,
573 sizeof(struct inpcbport), NULL, NULL, NULL, NULL, UMA_ALIGN_PTR, 0);
574 uma_zone_set_smr(pcbstor->ips_portzone,
575 uma_zone_get_smr(pcbstor->ips_zone));
576 }
577
578 /*
579 * Destroy a pcbstorage - used by unloadable protocols.
580 */
581 void
in_pcbstorage_destroy(void * arg)582 in_pcbstorage_destroy(void *arg)
583 {
584 struct inpcbstorage *pcbstor = arg;
585
586 uma_zdestroy(pcbstor->ips_zone);
587 uma_zdestroy(pcbstor->ips_portzone);
588 }
589
590 /*
591 * Allocate a PCB and associate it with the socket.
592 * On success return with the PCB locked.
593 */
594 int
in_pcballoc(struct socket * so,struct inpcbinfo * pcbinfo)595 in_pcballoc(struct socket *so, struct inpcbinfo *pcbinfo)
596 {
597 struct inpcb *inp;
598 #if defined(IPSEC) || defined(IPSEC_SUPPORT) || defined(MAC)
599 int error;
600 #endif
601
602 inp = uma_zalloc_smr(pcbinfo->ipi_zone, M_NOWAIT);
603 if (inp == NULL)
604 return (ENOBUFS);
605 bzero(&inp->inp_start_zero, inp_zero_size);
606 #ifdef NUMA
607 inp->inp_numa_domain = M_NODOM;
608 #endif
609 inp->inp_pcbinfo = pcbinfo;
610 inp->inp_socket = so;
611 inp->inp_cred = crhold(so->so_cred);
612 inp->inp_inc.inc_fibnum = so->so_fibnum;
613 #ifdef MAC
614 error = mac_inpcb_init(inp, M_NOWAIT);
615 if (error != 0)
616 goto out;
617 mac_inpcb_create(so, inp);
618 #endif
619 #if defined(IPSEC) || defined(IPSEC_SUPPORT)
620 error = ipsec_init_pcbpolicy(inp);
621 if (error != 0) {
622 #ifdef MAC
623 mac_inpcb_destroy(inp);
624 #endif
625 goto out;
626 }
627 #endif /*IPSEC*/
628 #ifdef INET6
629 if (INP_SOCKAF(so) == AF_INET6) {
630 inp->inp_vflag |= INP_IPV6PROTO | INP_IPV6;
631 if (V_ip6_v6only)
632 inp->inp_flags |= IN6P_IPV6_V6ONLY;
633 #ifdef INET
634 else
635 inp->inp_vflag |= INP_IPV4;
636 #endif
637 if (V_ip6_auto_flowlabel)
638 inp->inp_flags |= IN6P_AUTOFLOWLABEL;
639 inp->in6p_hops = -1; /* use kernel default */
640 }
641 #endif
642 #if defined(INET) && defined(INET6)
643 else
644 #endif
645 #ifdef INET
646 inp->inp_vflag |= INP_IPV4;
647 #endif
648 inp->inp_smr = SMR_SEQ_INVALID;
649
650 /*
651 * Routes in inpcb's can cache L2 as well; they are guaranteed
652 * to be cleaned up.
653 */
654 inp->inp_route.ro_flags = RT_LLE_CACHE;
655 refcount_init(&inp->inp_refcount, 1); /* Reference from socket. */
656 INP_WLOCK(inp);
657 INP_INFO_WLOCK(pcbinfo);
658 pcbinfo->ipi_count++;
659 inp->inp_gencnt = ++pcbinfo->ipi_gencnt;
660 CK_LIST_INSERT_HEAD(&pcbinfo->ipi_listhead, inp, inp_list);
661 INP_INFO_WUNLOCK(pcbinfo);
662 so->so_pcb = inp;
663
664 return (0);
665
666 #if defined(IPSEC) || defined(IPSEC_SUPPORT) || defined(MAC)
667 out:
668 crfree(inp->inp_cred);
669 #ifdef INVARIANTS
670 inp->inp_cred = NULL;
671 #endif
672 uma_zfree_smr(pcbinfo->ipi_zone, inp);
673 return (error);
674 #endif
675 }
676
677 #ifdef INET
678 int
in_pcbbind(struct inpcb * inp,struct sockaddr_in * sin,struct ucred * cred)679 in_pcbbind(struct inpcb *inp, struct sockaddr_in *sin, struct ucred *cred)
680 {
681 int anonport, error;
682
683 KASSERT(sin == NULL || sin->sin_family == AF_INET,
684 ("%s: invalid address family for %p", __func__, sin));
685 KASSERT(sin == NULL || sin->sin_len == sizeof(struct sockaddr_in),
686 ("%s: invalid address length for %p", __func__, sin));
687 INP_WLOCK_ASSERT(inp);
688 INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
689
690 if (inp->inp_lport != 0 || inp->inp_laddr.s_addr != INADDR_ANY)
691 return (EINVAL);
692 anonport = sin == NULL || sin->sin_port == 0;
693 error = in_pcbbind_setup(inp, sin, &inp->inp_laddr.s_addr,
694 &inp->inp_lport, cred);
695 if (error)
696 return (error);
697 if (in_pcbinshash(inp) != 0) {
698 inp->inp_laddr.s_addr = INADDR_ANY;
699 inp->inp_lport = 0;
700 return (EAGAIN);
701 }
702 if (anonport)
703 inp->inp_flags |= INP_ANONPORT;
704 return (0);
705 }
706 #endif
707
708 #if defined(INET) || defined(INET6)
709 /*
710 * Assign a local port like in_pcb_lport(), but also used with connect()
711 * and a foreign address and port. If fsa is non-NULL, choose a local port
712 * that is unused with those, otherwise one that is completely unused.
713 * lsa can be NULL for IPv6.
714 */
715 int
in_pcb_lport_dest(struct inpcb * inp,struct sockaddr * lsa,u_short * lportp,struct sockaddr * fsa,u_short fport,struct ucred * cred,int lookupflags)716 in_pcb_lport_dest(struct inpcb *inp, struct sockaddr *lsa, u_short *lportp,
717 struct sockaddr *fsa, u_short fport, struct ucred *cred, int lookupflags)
718 {
719 struct inpcbinfo *pcbinfo;
720 struct inpcb *tmpinp;
721 unsigned short *lastport;
722 int count, error;
723 u_short aux, first, last, lport;
724 #ifdef INET
725 struct in_addr laddr, faddr;
726 #endif
727 #ifdef INET6
728 struct in6_addr *laddr6, *faddr6;
729 #endif
730
731 pcbinfo = inp->inp_pcbinfo;
732
733 /*
734 * Because no actual state changes occur here, a global write lock on
735 * the pcbinfo isn't required.
736 */
737 INP_LOCK_ASSERT(inp);
738 INP_HASH_LOCK_ASSERT(pcbinfo);
739
740 if (inp->inp_flags & INP_HIGHPORT) {
741 first = V_ipport_hifirstauto; /* sysctl */
742 last = V_ipport_hilastauto;
743 lastport = &pcbinfo->ipi_lasthi;
744 } else if (inp->inp_flags & INP_LOWPORT) {
745 error = priv_check_cred(cred, PRIV_NETINET_RESERVEDPORT);
746 if (error)
747 return (error);
748 first = V_ipport_lowfirstauto; /* 1023 */
749 last = V_ipport_lowlastauto; /* 600 */
750 lastport = &pcbinfo->ipi_lastlow;
751 } else {
752 first = V_ipport_firstauto; /* sysctl */
753 last = V_ipport_lastauto;
754 lastport = &pcbinfo->ipi_lastport;
755 }
756
757 /*
758 * Instead of having two loops further down counting up or down
759 * make sure that first is always <= last and go with only one
760 * code path implementing all logic.
761 */
762 if (first > last) {
763 aux = first;
764 first = last;
765 last = aux;
766 }
767
768 #ifdef INET
769 laddr.s_addr = INADDR_ANY; /* used by INET6+INET below too */
770 if ((inp->inp_vflag & (INP_IPV4|INP_IPV6)) == INP_IPV4) {
771 if (lsa != NULL)
772 laddr = ((struct sockaddr_in *)lsa)->sin_addr;
773 if (fsa != NULL)
774 faddr = ((struct sockaddr_in *)fsa)->sin_addr;
775 }
776 #endif
777 #ifdef INET6
778 laddr6 = NULL;
779 if ((inp->inp_vflag & INP_IPV6) != 0) {
780 if (lsa != NULL)
781 laddr6 = &((struct sockaddr_in6 *)lsa)->sin6_addr;
782 if (fsa != NULL)
783 faddr6 = &((struct sockaddr_in6 *)fsa)->sin6_addr;
784 }
785 #endif
786
787 tmpinp = NULL;
788 lport = *lportp;
789
790 if (V_ipport_randomized)
791 *lastport = first + (arc4random() % (last - first));
792
793 count = last - first;
794
795 do {
796 if (count-- < 0) /* completely used? */
797 return (EADDRNOTAVAIL);
798 ++*lastport;
799 if (*lastport < first || *lastport > last)
800 *lastport = first;
801 lport = htons(*lastport);
802
803 if (fsa != NULL) {
804 #ifdef INET
805 if (lsa->sa_family == AF_INET) {
806 tmpinp = in_pcblookup_hash_locked(pcbinfo,
807 faddr, fport, laddr, lport, lookupflags,
808 M_NODOM);
809 }
810 #endif
811 #ifdef INET6
812 if (lsa->sa_family == AF_INET6) {
813 tmpinp = in6_pcblookup_hash_locked(pcbinfo,
814 faddr6, fport, laddr6, lport, lookupflags,
815 M_NODOM);
816 }
817 #endif
818 } else {
819 #ifdef INET6
820 if ((inp->inp_vflag & INP_IPV6) != 0) {
821 tmpinp = in6_pcblookup_local(pcbinfo,
822 &inp->in6p_laddr, lport, lookupflags, cred);
823 #ifdef INET
824 if (tmpinp == NULL &&
825 (inp->inp_vflag & INP_IPV4))
826 tmpinp = in_pcblookup_local(pcbinfo,
827 laddr, lport, lookupflags, cred);
828 #endif
829 }
830 #endif
831 #if defined(INET) && defined(INET6)
832 else
833 #endif
834 #ifdef INET
835 tmpinp = in_pcblookup_local(pcbinfo, laddr,
836 lport, lookupflags, cred);
837 #endif
838 }
839 } while (tmpinp != NULL);
840
841 *lportp = lport;
842
843 return (0);
844 }
845
846 /*
847 * Select a local port (number) to use.
848 */
849 int
in_pcb_lport(struct inpcb * inp,struct in_addr * laddrp,u_short * lportp,struct ucred * cred,int lookupflags)850 in_pcb_lport(struct inpcb *inp, struct in_addr *laddrp, u_short *lportp,
851 struct ucred *cred, int lookupflags)
852 {
853 struct sockaddr_in laddr;
854
855 if (laddrp) {
856 bzero(&laddr, sizeof(laddr));
857 laddr.sin_family = AF_INET;
858 laddr.sin_addr = *laddrp;
859 }
860 return (in_pcb_lport_dest(inp, laddrp ? (struct sockaddr *) &laddr :
861 NULL, lportp, NULL, 0, cred, lookupflags));
862 }
863 #endif /* INET || INET6 */
864
865 #ifdef INET
866 /*
867 * Set up a bind operation on a PCB, performing port allocation
868 * as required, but do not actually modify the PCB. Callers can
869 * either complete the bind by setting inp_laddr/inp_lport and
870 * calling in_pcbinshash(), or they can just use the resulting
871 * port and address to authorise the sending of a once-off packet.
872 *
873 * On error, the values of *laddrp and *lportp are not changed.
874 */
875 int
in_pcbbind_setup(struct inpcb * inp,struct sockaddr_in * sin,in_addr_t * laddrp,u_short * lportp,struct ucred * cred)876 in_pcbbind_setup(struct inpcb *inp, struct sockaddr_in *sin, in_addr_t *laddrp,
877 u_short *lportp, struct ucred *cred)
878 {
879 struct socket *so = inp->inp_socket;
880 struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
881 struct in_addr laddr;
882 u_short lport = 0;
883 int lookupflags = 0, reuseport = (so->so_options & SO_REUSEPORT);
884 int error;
885
886 /*
887 * XXX: Maybe we could let SO_REUSEPORT_LB set SO_REUSEPORT bit here
888 * so that we don't have to add to the (already messy) code below.
889 */
890 int reuseport_lb = (so->so_options & SO_REUSEPORT_LB);
891
892 /*
893 * No state changes, so read locks are sufficient here.
894 */
895 INP_LOCK_ASSERT(inp);
896 INP_HASH_LOCK_ASSERT(pcbinfo);
897
898 laddr.s_addr = *laddrp;
899 if (sin != NULL && laddr.s_addr != INADDR_ANY)
900 return (EINVAL);
901 if ((so->so_options & (SO_REUSEADDR|SO_REUSEPORT|SO_REUSEPORT_LB)) == 0)
902 lookupflags = INPLOOKUP_WILDCARD;
903 if (sin == NULL) {
904 if ((error = prison_local_ip4(cred, &laddr)) != 0)
905 return (error);
906 } else {
907 KASSERT(sin->sin_family == AF_INET,
908 ("%s: invalid family for address %p", __func__, sin));
909 KASSERT(sin->sin_len == sizeof(*sin),
910 ("%s: invalid length for address %p", __func__, sin));
911
912 error = prison_local_ip4(cred, &sin->sin_addr);
913 if (error)
914 return (error);
915 if (sin->sin_port != *lportp) {
916 /* Don't allow the port to change. */
917 if (*lportp != 0)
918 return (EINVAL);
919 lport = sin->sin_port;
920 }
921 /* NB: lport is left as 0 if the port isn't being changed. */
922 if (IN_MULTICAST(ntohl(sin->sin_addr.s_addr))) {
923 /*
924 * Treat SO_REUSEADDR as SO_REUSEPORT for multicast;
925 * allow complete duplication of binding if
926 * SO_REUSEPORT is set, or if SO_REUSEADDR is set
927 * and a multicast address is bound on both
928 * new and duplicated sockets.
929 */
930 if ((so->so_options & (SO_REUSEADDR|SO_REUSEPORT)) != 0)
931 reuseport = SO_REUSEADDR|SO_REUSEPORT;
932 /*
933 * XXX: How to deal with SO_REUSEPORT_LB here?
934 * Treat same as SO_REUSEPORT for now.
935 */
936 if ((so->so_options &
937 (SO_REUSEADDR|SO_REUSEPORT_LB)) != 0)
938 reuseport_lb = SO_REUSEADDR|SO_REUSEPORT_LB;
939 } else if (sin->sin_addr.s_addr != INADDR_ANY) {
940 sin->sin_port = 0; /* yech... */
941 bzero(&sin->sin_zero, sizeof(sin->sin_zero));
942 /*
943 * Is the address a local IP address?
944 * If INP_BINDANY is set, then the socket may be bound
945 * to any endpoint address, local or not.
946 */
947 if ((inp->inp_flags & INP_BINDANY) == 0 &&
948 ifa_ifwithaddr_check((struct sockaddr *)sin) == 0)
949 return (EADDRNOTAVAIL);
950 }
951 laddr = sin->sin_addr;
952 if (lport) {
953 struct inpcb *t;
954
955 /* GROSS */
956 if (ntohs(lport) <= V_ipport_reservedhigh &&
957 ntohs(lport) >= V_ipport_reservedlow &&
958 priv_check_cred(cred, PRIV_NETINET_RESERVEDPORT))
959 return (EACCES);
960 if (!IN_MULTICAST(ntohl(sin->sin_addr.s_addr)) &&
961 priv_check_cred(inp->inp_cred, PRIV_NETINET_REUSEPORT) != 0) {
962 t = in_pcblookup_local(pcbinfo, sin->sin_addr,
963 lport, INPLOOKUP_WILDCARD, cred);
964 /*
965 * XXX
966 * This entire block sorely needs a rewrite.
967 */
968 if (t != NULL &&
969 (so->so_type != SOCK_STREAM ||
970 ntohl(t->inp_faddr.s_addr) == INADDR_ANY) &&
971 (ntohl(sin->sin_addr.s_addr) != INADDR_ANY ||
972 ntohl(t->inp_laddr.s_addr) != INADDR_ANY ||
973 (t->inp_socket->so_options & SO_REUSEPORT) ||
974 (t->inp_socket->so_options & SO_REUSEPORT_LB) == 0) &&
975 (inp->inp_cred->cr_uid !=
976 t->inp_cred->cr_uid))
977 return (EADDRINUSE);
978 }
979 t = in_pcblookup_local(pcbinfo, sin->sin_addr,
980 lport, lookupflags, cred);
981 if (t != NULL && (reuseport & t->inp_socket->so_options) == 0 &&
982 (reuseport_lb & t->inp_socket->so_options) == 0) {
983 #ifdef INET6
984 if (ntohl(sin->sin_addr.s_addr) !=
985 INADDR_ANY ||
986 ntohl(t->inp_laddr.s_addr) !=
987 INADDR_ANY ||
988 (inp->inp_vflag & INP_IPV6PROTO) == 0 ||
989 (t->inp_vflag & INP_IPV6PROTO) == 0)
990 #endif
991 return (EADDRINUSE);
992 }
993 }
994 }
995 if (*lportp != 0)
996 lport = *lportp;
997 if (lport == 0) {
998 error = in_pcb_lport(inp, &laddr, &lport, cred, lookupflags);
999 if (error != 0)
1000 return (error);
1001 }
1002 *laddrp = laddr.s_addr;
1003 *lportp = lport;
1004 return (0);
1005 }
1006
1007 /*
1008 * Connect from a socket to a specified address.
1009 * Both address and port must be specified in argument sin.
1010 * If don't have a local address for this socket yet,
1011 * then pick one.
1012 */
1013 int
in_pcbconnect(struct inpcb * inp,struct sockaddr_in * sin,struct ucred * cred,bool rehash __unused)1014 in_pcbconnect(struct inpcb *inp, struct sockaddr_in *sin, struct ucred *cred,
1015 bool rehash __unused)
1016 {
1017 u_short lport, fport;
1018 in_addr_t laddr, faddr;
1019 int anonport, error;
1020
1021 INP_WLOCK_ASSERT(inp);
1022 INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
1023 KASSERT(in_nullhost(inp->inp_faddr),
1024 ("%s: inp is already connected", __func__));
1025
1026 lport = inp->inp_lport;
1027 laddr = inp->inp_laddr.s_addr;
1028 anonport = (lport == 0);
1029 error = in_pcbconnect_setup(inp, sin, &laddr, &lport, &faddr, &fport,
1030 cred);
1031 if (error)
1032 return (error);
1033
1034 inp->inp_faddr.s_addr = faddr;
1035 inp->inp_fport = fport;
1036
1037 /* Do the initial binding of the local address if required. */
1038 if (inp->inp_laddr.s_addr == INADDR_ANY && inp->inp_lport == 0) {
1039 inp->inp_lport = lport;
1040 inp->inp_laddr.s_addr = laddr;
1041 if (in_pcbinshash(inp) != 0) {
1042 inp->inp_laddr.s_addr = inp->inp_faddr.s_addr =
1043 INADDR_ANY;
1044 inp->inp_lport = inp->inp_fport = 0;
1045 return (EAGAIN);
1046 }
1047 } else {
1048 inp->inp_lport = lport;
1049 inp->inp_laddr.s_addr = laddr;
1050 if ((inp->inp_flags & INP_INHASHLIST) != 0)
1051 in_pcbrehash(inp);
1052 else
1053 in_pcbinshash(inp);
1054 }
1055
1056 if (anonport)
1057 inp->inp_flags |= INP_ANONPORT;
1058 return (0);
1059 }
1060
1061 /*
1062 * Do proper source address selection on an unbound socket in case
1063 * of connect. Take jails into account as well.
1064 */
1065 int
in_pcbladdr(struct inpcb * inp,struct in_addr * faddr,struct in_addr * laddr,struct ucred * cred)1066 in_pcbladdr(struct inpcb *inp, struct in_addr *faddr, struct in_addr *laddr,
1067 struct ucred *cred)
1068 {
1069 struct ifaddr *ifa;
1070 struct sockaddr *sa;
1071 struct sockaddr_in *sin, dst;
1072 struct nhop_object *nh;
1073 int error;
1074
1075 NET_EPOCH_ASSERT();
1076 KASSERT(laddr != NULL, ("%s: laddr NULL", __func__));
1077
1078 /*
1079 * Bypass source address selection and use the primary jail IP
1080 * if requested.
1081 */
1082 if (!prison_saddrsel_ip4(cred, laddr))
1083 return (0);
1084
1085 error = 0;
1086
1087 nh = NULL;
1088 bzero(&dst, sizeof(dst));
1089 sin = &dst;
1090 sin->sin_family = AF_INET;
1091 sin->sin_len = sizeof(struct sockaddr_in);
1092 sin->sin_addr.s_addr = faddr->s_addr;
1093
1094 /*
1095 * If route is known our src addr is taken from the i/f,
1096 * else punt.
1097 *
1098 * Find out route to destination.
1099 */
1100 if ((inp->inp_socket->so_options & SO_DONTROUTE) == 0)
1101 nh = fib4_lookup(inp->inp_inc.inc_fibnum, *faddr,
1102 0, NHR_NONE, 0);
1103
1104 /*
1105 * If we found a route, use the address corresponding to
1106 * the outgoing interface.
1107 *
1108 * Otherwise assume faddr is reachable on a directly connected
1109 * network and try to find a corresponding interface to take
1110 * the source address from.
1111 */
1112 if (nh == NULL || nh->nh_ifp == NULL) {
1113 struct in_ifaddr *ia;
1114 struct ifnet *ifp;
1115
1116 ia = ifatoia(ifa_ifwithdstaddr((struct sockaddr *)sin,
1117 inp->inp_socket->so_fibnum));
1118 if (ia == NULL) {
1119 ia = ifatoia(ifa_ifwithnet((struct sockaddr *)sin, 0,
1120 inp->inp_socket->so_fibnum));
1121 }
1122 if (ia == NULL) {
1123 error = ENETUNREACH;
1124 goto done;
1125 }
1126
1127 if (!prison_flag(cred, PR_IP4)) {
1128 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1129 goto done;
1130 }
1131
1132 ifp = ia->ia_ifp;
1133 ia = NULL;
1134 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1135 sa = ifa->ifa_addr;
1136 if (sa->sa_family != AF_INET)
1137 continue;
1138 sin = (struct sockaddr_in *)sa;
1139 if (prison_check_ip4(cred, &sin->sin_addr) == 0) {
1140 ia = (struct in_ifaddr *)ifa;
1141 break;
1142 }
1143 }
1144 if (ia != NULL) {
1145 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1146 goto done;
1147 }
1148
1149 /* 3. As a last resort return the 'default' jail address. */
1150 error = prison_get_ip4(cred, laddr);
1151 goto done;
1152 }
1153
1154 /*
1155 * If the outgoing interface on the route found is not
1156 * a loopback interface, use the address from that interface.
1157 * In case of jails do those three steps:
1158 * 1. check if the interface address belongs to the jail. If so use it.
1159 * 2. check if we have any address on the outgoing interface
1160 * belonging to this jail. If so use it.
1161 * 3. as a last resort return the 'default' jail address.
1162 */
1163 if ((nh->nh_ifp->if_flags & IFF_LOOPBACK) == 0) {
1164 struct in_ifaddr *ia;
1165 struct ifnet *ifp;
1166
1167 /* If not jailed, use the default returned. */
1168 if (!prison_flag(cred, PR_IP4)) {
1169 ia = (struct in_ifaddr *)nh->nh_ifa;
1170 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1171 goto done;
1172 }
1173
1174 /* Jailed. */
1175 /* 1. Check if the iface address belongs to the jail. */
1176 sin = (struct sockaddr_in *)nh->nh_ifa->ifa_addr;
1177 if (prison_check_ip4(cred, &sin->sin_addr) == 0) {
1178 ia = (struct in_ifaddr *)nh->nh_ifa;
1179 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1180 goto done;
1181 }
1182
1183 /*
1184 * 2. Check if we have any address on the outgoing interface
1185 * belonging to this jail.
1186 */
1187 ia = NULL;
1188 ifp = nh->nh_ifp;
1189 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1190 sa = ifa->ifa_addr;
1191 if (sa->sa_family != AF_INET)
1192 continue;
1193 sin = (struct sockaddr_in *)sa;
1194 if (prison_check_ip4(cred, &sin->sin_addr) == 0) {
1195 ia = (struct in_ifaddr *)ifa;
1196 break;
1197 }
1198 }
1199 if (ia != NULL) {
1200 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1201 goto done;
1202 }
1203
1204 /* 3. As a last resort return the 'default' jail address. */
1205 error = prison_get_ip4(cred, laddr);
1206 goto done;
1207 }
1208
1209 /*
1210 * The outgoing interface is marked with 'loopback net', so a route
1211 * to ourselves is here.
1212 * Try to find the interface of the destination address and then
1213 * take the address from there. That interface is not necessarily
1214 * a loopback interface.
1215 * In case of jails, check that it is an address of the jail
1216 * and if we cannot find, fall back to the 'default' jail address.
1217 */
1218 if ((nh->nh_ifp->if_flags & IFF_LOOPBACK) != 0) {
1219 struct in_ifaddr *ia;
1220
1221 ia = ifatoia(ifa_ifwithdstaddr(sintosa(&dst),
1222 inp->inp_socket->so_fibnum));
1223 if (ia == NULL)
1224 ia = ifatoia(ifa_ifwithnet(sintosa(&dst), 0,
1225 inp->inp_socket->so_fibnum));
1226 if (ia == NULL)
1227 ia = ifatoia(ifa_ifwithaddr(sintosa(&dst)));
1228
1229 if (!prison_flag(cred, PR_IP4)) {
1230 if (ia == NULL) {
1231 error = ENETUNREACH;
1232 goto done;
1233 }
1234 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1235 goto done;
1236 }
1237
1238 /* Jailed. */
1239 if (ia != NULL) {
1240 struct ifnet *ifp;
1241
1242 ifp = ia->ia_ifp;
1243 ia = NULL;
1244 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1245 sa = ifa->ifa_addr;
1246 if (sa->sa_family != AF_INET)
1247 continue;
1248 sin = (struct sockaddr_in *)sa;
1249 if (prison_check_ip4(cred,
1250 &sin->sin_addr) == 0) {
1251 ia = (struct in_ifaddr *)ifa;
1252 break;
1253 }
1254 }
1255 if (ia != NULL) {
1256 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1257 goto done;
1258 }
1259 }
1260
1261 /* 3. As a last resort return the 'default' jail address. */
1262 error = prison_get_ip4(cred, laddr);
1263 goto done;
1264 }
1265
1266 done:
1267 if (error == 0 && laddr->s_addr == INADDR_ANY)
1268 return (EHOSTUNREACH);
1269 return (error);
1270 }
1271
1272 /*
1273 * Set up for a connect from a socket to the specified address.
1274 * On entry, *laddrp and *lportp should contain the current local
1275 * address and port for the PCB; these are updated to the values
1276 * that should be placed in inp_laddr and inp_lport to complete
1277 * the connect.
1278 *
1279 * On success, *faddrp and *fportp will be set to the remote address
1280 * and port. These are not updated in the error case.
1281 */
1282 int
in_pcbconnect_setup(struct inpcb * inp,struct sockaddr_in * sin,in_addr_t * laddrp,u_short * lportp,in_addr_t * faddrp,u_short * fportp,struct ucred * cred)1283 in_pcbconnect_setup(struct inpcb *inp, struct sockaddr_in *sin,
1284 in_addr_t *laddrp, u_short *lportp, in_addr_t *faddrp, u_short *fportp,
1285 struct ucred *cred)
1286 {
1287 struct in_ifaddr *ia;
1288 struct in_addr laddr, faddr;
1289 u_short lport, fport;
1290 int error;
1291
1292 KASSERT(sin->sin_family == AF_INET,
1293 ("%s: invalid address family for %p", __func__, sin));
1294 KASSERT(sin->sin_len == sizeof(*sin),
1295 ("%s: invalid address length for %p", __func__, sin));
1296
1297 /*
1298 * Because a global state change doesn't actually occur here, a read
1299 * lock is sufficient.
1300 */
1301 NET_EPOCH_ASSERT();
1302 INP_LOCK_ASSERT(inp);
1303 INP_HASH_LOCK_ASSERT(inp->inp_pcbinfo);
1304
1305 if (sin->sin_port == 0)
1306 return (EADDRNOTAVAIL);
1307 laddr.s_addr = *laddrp;
1308 lport = *lportp;
1309 faddr = sin->sin_addr;
1310 fport = sin->sin_port;
1311 #ifdef ROUTE_MPATH
1312 if (CALC_FLOWID_OUTBOUND) {
1313 uint32_t hash_val, hash_type;
1314
1315 hash_val = fib4_calc_software_hash(laddr, faddr, 0, fport,
1316 inp->inp_socket->so_proto->pr_protocol, &hash_type);
1317
1318 inp->inp_flowid = hash_val;
1319 inp->inp_flowtype = hash_type;
1320 }
1321 #endif
1322 if (V_connect_inaddr_wild && !CK_STAILQ_EMPTY(&V_in_ifaddrhead)) {
1323 /*
1324 * If the destination address is INADDR_ANY,
1325 * use the primary local address.
1326 * If the supplied address is INADDR_BROADCAST,
1327 * and the primary interface supports broadcast,
1328 * choose the broadcast address for that interface.
1329 */
1330 if (faddr.s_addr == INADDR_ANY) {
1331 faddr =
1332 IA_SIN(CK_STAILQ_FIRST(&V_in_ifaddrhead))->sin_addr;
1333 if ((error = prison_get_ip4(cred, &faddr)) != 0)
1334 return (error);
1335 } else if (faddr.s_addr == (u_long)INADDR_BROADCAST) {
1336 if (CK_STAILQ_FIRST(&V_in_ifaddrhead)->ia_ifp->if_flags &
1337 IFF_BROADCAST)
1338 faddr = satosin(&CK_STAILQ_FIRST(
1339 &V_in_ifaddrhead)->ia_broadaddr)->sin_addr;
1340 }
1341 } else if (faddr.s_addr == INADDR_ANY) {
1342 return (ENETUNREACH);
1343 }
1344 if (laddr.s_addr == INADDR_ANY) {
1345 error = in_pcbladdr(inp, &faddr, &laddr, cred);
1346 /*
1347 * If the destination address is multicast and an outgoing
1348 * interface has been set as a multicast option, prefer the
1349 * address of that interface as our source address.
1350 */
1351 if (IN_MULTICAST(ntohl(faddr.s_addr)) &&
1352 inp->inp_moptions != NULL) {
1353 struct ip_moptions *imo;
1354 struct ifnet *ifp;
1355
1356 imo = inp->inp_moptions;
1357 if (imo->imo_multicast_ifp != NULL) {
1358 ifp = imo->imo_multicast_ifp;
1359 CK_STAILQ_FOREACH(ia, &V_in_ifaddrhead, ia_link) {
1360 if (ia->ia_ifp == ifp &&
1361 prison_check_ip4(cred,
1362 &ia->ia_addr.sin_addr) == 0)
1363 break;
1364 }
1365 if (ia == NULL)
1366 error = EADDRNOTAVAIL;
1367 else {
1368 laddr = ia->ia_addr.sin_addr;
1369 error = 0;
1370 }
1371 }
1372 }
1373 if (error)
1374 return (error);
1375 }
1376
1377 if (lport != 0) {
1378 if (in_pcblookup_hash_locked(inp->inp_pcbinfo, faddr,
1379 fport, laddr, lport, 0, M_NODOM) != NULL)
1380 return (EADDRINUSE);
1381 } else {
1382 struct sockaddr_in lsin, fsin;
1383
1384 bzero(&lsin, sizeof(lsin));
1385 bzero(&fsin, sizeof(fsin));
1386 lsin.sin_family = AF_INET;
1387 lsin.sin_addr = laddr;
1388 fsin.sin_family = AF_INET;
1389 fsin.sin_addr = faddr;
1390 error = in_pcb_lport_dest(inp, (struct sockaddr *) &lsin,
1391 &lport, (struct sockaddr *)& fsin, fport, cred,
1392 INPLOOKUP_WILDCARD);
1393 if (error)
1394 return (error);
1395 }
1396 *laddrp = laddr.s_addr;
1397 *lportp = lport;
1398 *faddrp = faddr.s_addr;
1399 *fportp = fport;
1400 return (0);
1401 }
1402
1403 void
in_pcbdisconnect(struct inpcb * inp)1404 in_pcbdisconnect(struct inpcb *inp)
1405 {
1406
1407 INP_WLOCK_ASSERT(inp);
1408 INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
1409 KASSERT(inp->inp_smr == SMR_SEQ_INVALID,
1410 ("%s: inp %p was already disconnected", __func__, inp));
1411
1412 in_pcbremhash_locked(inp);
1413
1414 /* See the comment in in_pcbinshash(). */
1415 inp->inp_smr = smr_advance(inp->inp_pcbinfo->ipi_smr);
1416 inp->inp_laddr.s_addr = INADDR_ANY;
1417 inp->inp_faddr.s_addr = INADDR_ANY;
1418 inp->inp_fport = 0;
1419 }
1420 #endif /* INET */
1421
1422 /*
1423 * inpcb hash lookups are protected by SMR section.
1424 *
1425 * Once desired pcb has been found, switching from SMR section to a pcb
1426 * lock is performed with inp_smr_lock(). We can not use INP_(W|R)LOCK
1427 * here because SMR is a critical section.
1428 * In 99%+ cases inp_smr_lock() would obtain the lock immediately.
1429 */
1430 void
inp_lock(struct inpcb * inp,const inp_lookup_t lock)1431 inp_lock(struct inpcb *inp, const inp_lookup_t lock)
1432 {
1433
1434 lock == INPLOOKUP_RLOCKPCB ?
1435 rw_rlock(&inp->inp_lock) : rw_wlock(&inp->inp_lock);
1436 }
1437
1438 void
inp_unlock(struct inpcb * inp,const inp_lookup_t lock)1439 inp_unlock(struct inpcb *inp, const inp_lookup_t lock)
1440 {
1441
1442 lock == INPLOOKUP_RLOCKPCB ?
1443 rw_runlock(&inp->inp_lock) : rw_wunlock(&inp->inp_lock);
1444 }
1445
1446 int
inp_trylock(struct inpcb * inp,const inp_lookup_t lock)1447 inp_trylock(struct inpcb *inp, const inp_lookup_t lock)
1448 {
1449
1450 return (lock == INPLOOKUP_RLOCKPCB ?
1451 rw_try_rlock(&inp->inp_lock) : rw_try_wlock(&inp->inp_lock));
1452 }
1453
1454 static inline bool
_inp_smr_lock(struct inpcb * inp,const inp_lookup_t lock,const int ignflags)1455 _inp_smr_lock(struct inpcb *inp, const inp_lookup_t lock, const int ignflags)
1456 {
1457
1458 MPASS(lock == INPLOOKUP_RLOCKPCB || lock == INPLOOKUP_WLOCKPCB);
1459 SMR_ASSERT_ENTERED(inp->inp_pcbinfo->ipi_smr);
1460
1461 if (__predict_true(inp_trylock(inp, lock))) {
1462 if (__predict_false(inp->inp_flags & ignflags)) {
1463 smr_exit(inp->inp_pcbinfo->ipi_smr);
1464 inp_unlock(inp, lock);
1465 return (false);
1466 }
1467 smr_exit(inp->inp_pcbinfo->ipi_smr);
1468 return (true);
1469 }
1470
1471 if (__predict_true(refcount_acquire_if_not_zero(&inp->inp_refcount))) {
1472 smr_exit(inp->inp_pcbinfo->ipi_smr);
1473 inp_lock(inp, lock);
1474 if (__predict_false(in_pcbrele(inp, lock)))
1475 return (false);
1476 /*
1477 * inp acquired through refcount & lock for sure didn't went
1478 * through uma_zfree(). However, it may have already went
1479 * through in_pcbfree() and has another reference, that
1480 * prevented its release by our in_pcbrele().
1481 */
1482 if (__predict_false(inp->inp_flags & ignflags)) {
1483 inp_unlock(inp, lock);
1484 return (false);
1485 }
1486 return (true);
1487 } else {
1488 smr_exit(inp->inp_pcbinfo->ipi_smr);
1489 return (false);
1490 }
1491 }
1492
1493 bool
inp_smr_lock(struct inpcb * inp,const inp_lookup_t lock)1494 inp_smr_lock(struct inpcb *inp, const inp_lookup_t lock)
1495 {
1496
1497 /*
1498 * in_pcblookup() family of functions ignore not only freed entries,
1499 * that may be found due to lockless access to the hash, but dropped
1500 * entries, too.
1501 */
1502 return (_inp_smr_lock(inp, lock, INP_FREED | INP_DROPPED));
1503 }
1504
1505 /*
1506 * inp_next() - inpcb hash/list traversal iterator
1507 *
1508 * Requires initialized struct inpcb_iterator for context.
1509 * The structure can be initialized with INP_ITERATOR() or INP_ALL_ITERATOR().
1510 *
1511 * - Iterator can have either write-lock or read-lock semantics, that can not
1512 * be changed later.
1513 * - Iterator can iterate either over all pcbs list (INP_ALL_LIST), or through
1514 * a single hash slot. Note: only rip_input() does the latter.
1515 * - Iterator may have optional bool matching function. The matching function
1516 * will be executed for each inpcb in the SMR context, so it can not acquire
1517 * locks and can safely access only immutable fields of inpcb.
1518 *
1519 * A fresh initialized iterator has NULL inpcb in its context and that
1520 * means that inp_next() call would return the very first inpcb on the list
1521 * locked with desired semantic. In all following calls the context pointer
1522 * shall hold the current inpcb pointer. The KPI user is not supposed to
1523 * unlock the current inpcb! Upon end of traversal inp_next() will return NULL
1524 * and write NULL to its context. After end of traversal an iterator can be
1525 * reused.
1526 *
1527 * List traversals have the following features/constraints:
1528 * - New entries won't be seen, as they are always added to the head of a list.
1529 * - Removed entries won't stop traversal as long as they are not added to
1530 * a different list. This is violated by in_pcbrehash().
1531 */
1532 #define II_LIST_FIRST(ipi, hash) \
1533 (((hash) == INP_ALL_LIST) ? \
1534 CK_LIST_FIRST(&(ipi)->ipi_listhead) : \
1535 CK_LIST_FIRST(&(ipi)->ipi_hash_exact[(hash)]))
1536 #define II_LIST_NEXT(inp, hash) \
1537 (((hash) == INP_ALL_LIST) ? \
1538 CK_LIST_NEXT((inp), inp_list) : \
1539 CK_LIST_NEXT((inp), inp_hash_exact))
1540 #define II_LOCK_ASSERT(inp, lock) \
1541 rw_assert(&(inp)->inp_lock, \
1542 (lock) == INPLOOKUP_RLOCKPCB ? RA_RLOCKED : RA_WLOCKED )
1543 struct inpcb *
inp_next(struct inpcb_iterator * ii)1544 inp_next(struct inpcb_iterator *ii)
1545 {
1546 const struct inpcbinfo *ipi = ii->ipi;
1547 inp_match_t *match = ii->match;
1548 void *ctx = ii->ctx;
1549 inp_lookup_t lock = ii->lock;
1550 int hash = ii->hash;
1551 struct inpcb *inp;
1552
1553 if (ii->inp == NULL) { /* First call. */
1554 smr_enter(ipi->ipi_smr);
1555 /* This is unrolled CK_LIST_FOREACH(). */
1556 for (inp = II_LIST_FIRST(ipi, hash);
1557 inp != NULL;
1558 inp = II_LIST_NEXT(inp, hash)) {
1559 if (match != NULL && (match)(inp, ctx) == false)
1560 continue;
1561 if (__predict_true(_inp_smr_lock(inp, lock, INP_FREED)))
1562 break;
1563 else {
1564 smr_enter(ipi->ipi_smr);
1565 MPASS(inp != II_LIST_FIRST(ipi, hash));
1566 inp = II_LIST_FIRST(ipi, hash);
1567 if (inp == NULL)
1568 break;
1569 }
1570 }
1571
1572 if (inp == NULL)
1573 smr_exit(ipi->ipi_smr);
1574 else
1575 ii->inp = inp;
1576
1577 return (inp);
1578 }
1579
1580 /* Not a first call. */
1581 smr_enter(ipi->ipi_smr);
1582 restart:
1583 inp = ii->inp;
1584 II_LOCK_ASSERT(inp, lock);
1585 next:
1586 inp = II_LIST_NEXT(inp, hash);
1587 if (inp == NULL) {
1588 smr_exit(ipi->ipi_smr);
1589 goto found;
1590 }
1591
1592 if (match != NULL && (match)(inp, ctx) == false)
1593 goto next;
1594
1595 if (__predict_true(inp_trylock(inp, lock))) {
1596 if (__predict_false(inp->inp_flags & INP_FREED)) {
1597 /*
1598 * Entries are never inserted in middle of a list, thus
1599 * as long as we are in SMR, we can continue traversal.
1600 * Jump to 'restart' should yield in the same result,
1601 * but could produce unnecessary looping. Could this
1602 * looping be unbound?
1603 */
1604 inp_unlock(inp, lock);
1605 goto next;
1606 } else {
1607 smr_exit(ipi->ipi_smr);
1608 goto found;
1609 }
1610 }
1611
1612 /*
1613 * Can't obtain lock immediately, thus going hard. Once we exit the
1614 * SMR section we can no longer jump to 'next', and our only stable
1615 * anchoring point is ii->inp, which we keep locked for this case, so
1616 * we jump to 'restart'.
1617 */
1618 if (__predict_true(refcount_acquire_if_not_zero(&inp->inp_refcount))) {
1619 smr_exit(ipi->ipi_smr);
1620 inp_lock(inp, lock);
1621 if (__predict_false(in_pcbrele(inp, lock))) {
1622 smr_enter(ipi->ipi_smr);
1623 goto restart;
1624 }
1625 /*
1626 * See comment in inp_smr_lock().
1627 */
1628 if (__predict_false(inp->inp_flags & INP_FREED)) {
1629 inp_unlock(inp, lock);
1630 smr_enter(ipi->ipi_smr);
1631 goto restart;
1632 }
1633 } else
1634 goto next;
1635
1636 found:
1637 inp_unlock(ii->inp, lock);
1638 ii->inp = inp;
1639
1640 return (ii->inp);
1641 }
1642
1643 /*
1644 * in_pcbref() bumps the reference count on an inpcb in order to maintain
1645 * stability of an inpcb pointer despite the inpcb lock being released or
1646 * SMR section exited.
1647 *
1648 * To free a reference later in_pcbrele_(r|w)locked() must be performed.
1649 */
1650 void
in_pcbref(struct inpcb * inp)1651 in_pcbref(struct inpcb *inp)
1652 {
1653 u_int old __diagused;
1654
1655 old = refcount_acquire(&inp->inp_refcount);
1656 KASSERT(old > 0, ("%s: refcount 0", __func__));
1657 }
1658
1659 /*
1660 * Drop a refcount on an inpcb elevated using in_pcbref(), potentially
1661 * freeing the pcb, if the reference was very last.
1662 */
1663 bool
in_pcbrele_rlocked(struct inpcb * inp)1664 in_pcbrele_rlocked(struct inpcb *inp)
1665 {
1666
1667 INP_RLOCK_ASSERT(inp);
1668
1669 if (!refcount_release(&inp->inp_refcount))
1670 return (false);
1671
1672 MPASS(inp->inp_flags & INP_FREED);
1673 MPASS(inp->inp_socket == NULL);
1674 crfree(inp->inp_cred);
1675 #ifdef INVARIANTS
1676 inp->inp_cred = NULL;
1677 #endif
1678 INP_RUNLOCK(inp);
1679 uma_zfree_smr(inp->inp_pcbinfo->ipi_zone, inp);
1680 return (true);
1681 }
1682
1683 bool
in_pcbrele_wlocked(struct inpcb * inp)1684 in_pcbrele_wlocked(struct inpcb *inp)
1685 {
1686
1687 INP_WLOCK_ASSERT(inp);
1688
1689 if (!refcount_release(&inp->inp_refcount))
1690 return (false);
1691
1692 MPASS(inp->inp_flags & INP_FREED);
1693 MPASS(inp->inp_socket == NULL);
1694 crfree(inp->inp_cred);
1695 #ifdef INVARIANTS
1696 inp->inp_cred = NULL;
1697 #endif
1698 INP_WUNLOCK(inp);
1699 uma_zfree_smr(inp->inp_pcbinfo->ipi_zone, inp);
1700 return (true);
1701 }
1702
1703 bool
in_pcbrele(struct inpcb * inp,const inp_lookup_t lock)1704 in_pcbrele(struct inpcb *inp, const inp_lookup_t lock)
1705 {
1706
1707 return (lock == INPLOOKUP_RLOCKPCB ?
1708 in_pcbrele_rlocked(inp) : in_pcbrele_wlocked(inp));
1709 }
1710
1711 /*
1712 * Unconditionally schedule an inpcb to be freed by decrementing its
1713 * reference count, which should occur only after the inpcb has been detached
1714 * from its socket. If another thread holds a temporary reference (acquired
1715 * using in_pcbref()) then the free is deferred until that reference is
1716 * released using in_pcbrele_(r|w)locked(), but the inpcb is still unlocked.
1717 * Almost all work, including removal from global lists, is done in this
1718 * context, where the pcbinfo lock is held.
1719 */
1720 void
in_pcbfree(struct inpcb * inp)1721 in_pcbfree(struct inpcb *inp)
1722 {
1723 struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
1724 #ifdef INET
1725 struct ip_moptions *imo;
1726 #endif
1727 #ifdef INET6
1728 struct ip6_moptions *im6o;
1729 #endif
1730
1731 INP_WLOCK_ASSERT(inp);
1732 KASSERT(inp->inp_socket != NULL, ("%s: inp_socket == NULL", __func__));
1733 KASSERT((inp->inp_flags & INP_FREED) == 0,
1734 ("%s: called twice for pcb %p", __func__, inp));
1735
1736 /*
1737 * in_pcblookup_local() and in6_pcblookup_local() may return an inpcb
1738 * from the hash without acquiring inpcb lock, they rely on the hash
1739 * lock, thus in_pcbremhash() should be the first action.
1740 */
1741 if (inp->inp_flags & INP_INHASHLIST)
1742 in_pcbremhash(inp);
1743 INP_INFO_WLOCK(pcbinfo);
1744 inp->inp_gencnt = ++pcbinfo->ipi_gencnt;
1745 pcbinfo->ipi_count--;
1746 CK_LIST_REMOVE(inp, inp_list);
1747 INP_INFO_WUNLOCK(pcbinfo);
1748
1749 #ifdef RATELIMIT
1750 if (inp->inp_snd_tag != NULL)
1751 in_pcbdetach_txrtlmt(inp);
1752 #endif
1753 inp->inp_flags |= INP_FREED;
1754 inp->inp_socket->so_pcb = NULL;
1755 inp->inp_socket = NULL;
1756
1757 RO_INVALIDATE_CACHE(&inp->inp_route);
1758 #ifdef MAC
1759 mac_inpcb_destroy(inp);
1760 #endif
1761 #if defined(IPSEC) || defined(IPSEC_SUPPORT)
1762 if (inp->inp_sp != NULL)
1763 ipsec_delete_pcbpolicy(inp);
1764 #endif
1765 #ifdef INET
1766 if (inp->inp_options)
1767 (void)m_free(inp->inp_options);
1768 imo = inp->inp_moptions;
1769 #endif
1770 #ifdef INET6
1771 if (inp->inp_vflag & INP_IPV6PROTO) {
1772 ip6_freepcbopts(inp->in6p_outputopts);
1773 im6o = inp->in6p_moptions;
1774 } else
1775 im6o = NULL;
1776 #endif
1777
1778 if (__predict_false(in_pcbrele_wlocked(inp) == false)) {
1779 INP_WUNLOCK(inp);
1780 }
1781 #ifdef INET6
1782 ip6_freemoptions(im6o);
1783 #endif
1784 #ifdef INET
1785 inp_freemoptions(imo);
1786 #endif
1787 }
1788
1789 /*
1790 * Different protocols initialize their inpcbs differently - giving
1791 * different name to the lock. But they all are disposed the same.
1792 */
1793 static void
inpcb_fini(void * mem,int size)1794 inpcb_fini(void *mem, int size)
1795 {
1796 struct inpcb *inp = mem;
1797
1798 INP_LOCK_DESTROY(inp);
1799 }
1800
1801 /*
1802 * in_pcbdrop() removes an inpcb from hashed lists, releasing its address and
1803 * port reservation, and preventing it from being returned by inpcb lookups.
1804 *
1805 * It is used by TCP to mark an inpcb as unused and avoid future packet
1806 * delivery or event notification when a socket remains open but TCP has
1807 * closed. This might occur as a result of a shutdown()-initiated TCP close
1808 * or a RST on the wire, and allows the port binding to be reused while still
1809 * maintaining the invariant that so_pcb always points to a valid inpcb until
1810 * in_pcbdetach().
1811 *
1812 * XXXRW: Possibly in_pcbdrop() should also prevent future notifications by
1813 * in_pcbnotifyall() and in_pcbpurgeif0()?
1814 */
1815 void
in_pcbdrop(struct inpcb * inp)1816 in_pcbdrop(struct inpcb *inp)
1817 {
1818
1819 INP_WLOCK_ASSERT(inp);
1820 #ifdef INVARIANTS
1821 if (inp->inp_socket != NULL && inp->inp_ppcb != NULL)
1822 MPASS(inp->inp_refcount > 1);
1823 #endif
1824
1825 inp->inp_flags |= INP_DROPPED;
1826 if (inp->inp_flags & INP_INHASHLIST)
1827 in_pcbremhash(inp);
1828 }
1829
1830 #ifdef INET
1831 /*
1832 * Common routines to return the socket addresses associated with inpcbs.
1833 */
1834 struct sockaddr *
in_sockaddr(in_port_t port,struct in_addr * addr_p)1835 in_sockaddr(in_port_t port, struct in_addr *addr_p)
1836 {
1837 struct sockaddr_in *sin;
1838
1839 sin = malloc(sizeof *sin, M_SONAME,
1840 M_WAITOK | M_ZERO);
1841 sin->sin_family = AF_INET;
1842 sin->sin_len = sizeof(*sin);
1843 sin->sin_addr = *addr_p;
1844 sin->sin_port = port;
1845
1846 return (struct sockaddr *)sin;
1847 }
1848
1849 int
in_getsockaddr(struct socket * so,struct sockaddr ** nam)1850 in_getsockaddr(struct socket *so, struct sockaddr **nam)
1851 {
1852 struct inpcb *inp;
1853 struct in_addr addr;
1854 in_port_t port;
1855
1856 inp = sotoinpcb(so);
1857 KASSERT(inp != NULL, ("in_getsockaddr: inp == NULL"));
1858
1859 INP_RLOCK(inp);
1860 port = inp->inp_lport;
1861 addr = inp->inp_laddr;
1862 INP_RUNLOCK(inp);
1863
1864 *nam = in_sockaddr(port, &addr);
1865 return 0;
1866 }
1867
1868 int
in_getpeeraddr(struct socket * so,struct sockaddr ** nam)1869 in_getpeeraddr(struct socket *so, struct sockaddr **nam)
1870 {
1871 struct inpcb *inp;
1872 struct in_addr addr;
1873 in_port_t port;
1874
1875 inp = sotoinpcb(so);
1876 KASSERT(inp != NULL, ("in_getpeeraddr: inp == NULL"));
1877
1878 INP_RLOCK(inp);
1879 port = inp->inp_fport;
1880 addr = inp->inp_faddr;
1881 INP_RUNLOCK(inp);
1882
1883 *nam = in_sockaddr(port, &addr);
1884 return 0;
1885 }
1886
1887 void
in_pcbnotifyall(struct inpcbinfo * pcbinfo,struct in_addr faddr,int errno,struct inpcb * (* notify)(struct inpcb *,int))1888 in_pcbnotifyall(struct inpcbinfo *pcbinfo, struct in_addr faddr, int errno,
1889 struct inpcb *(*notify)(struct inpcb *, int))
1890 {
1891 struct inpcb *inp, *inp_temp;
1892
1893 INP_INFO_WLOCK(pcbinfo);
1894 CK_LIST_FOREACH_SAFE(inp, &pcbinfo->ipi_listhead, inp_list, inp_temp) {
1895 INP_WLOCK(inp);
1896 #ifdef INET6
1897 if ((inp->inp_vflag & INP_IPV4) == 0) {
1898 INP_WUNLOCK(inp);
1899 continue;
1900 }
1901 #endif
1902 if (inp->inp_faddr.s_addr != faddr.s_addr ||
1903 inp->inp_socket == NULL) {
1904 INP_WUNLOCK(inp);
1905 continue;
1906 }
1907 if ((*notify)(inp, errno))
1908 INP_WUNLOCK(inp);
1909 }
1910 INP_INFO_WUNLOCK(pcbinfo);
1911 }
1912
1913 static bool
inp_v4_multi_match(const struct inpcb * inp,void * v __unused)1914 inp_v4_multi_match(const struct inpcb *inp, void *v __unused)
1915 {
1916
1917 if ((inp->inp_vflag & INP_IPV4) && inp->inp_moptions != NULL)
1918 return (true);
1919 else
1920 return (false);
1921 }
1922
1923 void
in_pcbpurgeif0(struct inpcbinfo * pcbinfo,struct ifnet * ifp)1924 in_pcbpurgeif0(struct inpcbinfo *pcbinfo, struct ifnet *ifp)
1925 {
1926 struct inpcb_iterator inpi = INP_ITERATOR(pcbinfo, INPLOOKUP_WLOCKPCB,
1927 inp_v4_multi_match, NULL);
1928 struct inpcb *inp;
1929 struct in_multi *inm;
1930 struct in_mfilter *imf;
1931 struct ip_moptions *imo;
1932
1933 IN_MULTI_LOCK_ASSERT();
1934
1935 while ((inp = inp_next(&inpi)) != NULL) {
1936 INP_WLOCK_ASSERT(inp);
1937
1938 imo = inp->inp_moptions;
1939 /*
1940 * Unselect the outgoing interface if it is being
1941 * detached.
1942 */
1943 if (imo->imo_multicast_ifp == ifp)
1944 imo->imo_multicast_ifp = NULL;
1945
1946 /*
1947 * Drop multicast group membership if we joined
1948 * through the interface being detached.
1949 *
1950 * XXX This can all be deferred to an epoch_call
1951 */
1952 restart:
1953 IP_MFILTER_FOREACH(imf, &imo->imo_head) {
1954 if ((inm = imf->imf_inm) == NULL)
1955 continue;
1956 if (inm->inm_ifp != ifp)
1957 continue;
1958 ip_mfilter_remove(&imo->imo_head, imf);
1959 in_leavegroup_locked(inm, NULL);
1960 ip_mfilter_free(imf);
1961 goto restart;
1962 }
1963 }
1964 }
1965
1966 /*
1967 * Lookup a PCB based on the local address and port. Caller must hold the
1968 * hash lock. No inpcb locks or references are acquired.
1969 */
1970 #define INP_LOOKUP_MAPPED_PCB_COST 3
1971 struct inpcb *
in_pcblookup_local(struct inpcbinfo * pcbinfo,struct in_addr laddr,u_short lport,int lookupflags,struct ucred * cred)1972 in_pcblookup_local(struct inpcbinfo *pcbinfo, struct in_addr laddr,
1973 u_short lport, int lookupflags, struct ucred *cred)
1974 {
1975 struct inpcb *inp;
1976 #ifdef INET6
1977 int matchwild = 3 + INP_LOOKUP_MAPPED_PCB_COST;
1978 #else
1979 int matchwild = 3;
1980 #endif
1981 int wildcard;
1982
1983 KASSERT((lookupflags & ~(INPLOOKUP_WILDCARD)) == 0,
1984 ("%s: invalid lookup flags %d", __func__, lookupflags));
1985 INP_HASH_LOCK_ASSERT(pcbinfo);
1986
1987 if ((lookupflags & INPLOOKUP_WILDCARD) == 0) {
1988 struct inpcbhead *head;
1989 /*
1990 * Look for an unconnected (wildcard foreign addr) PCB that
1991 * matches the local address and port we're looking for.
1992 */
1993 head = &pcbinfo->ipi_hash_wild[INP_PCBHASH_WILD(lport,
1994 pcbinfo->ipi_hashmask)];
1995 CK_LIST_FOREACH(inp, head, inp_hash_wild) {
1996 #ifdef INET6
1997 /* XXX inp locking */
1998 if ((inp->inp_vflag & INP_IPV4) == 0)
1999 continue;
2000 #endif
2001 if (inp->inp_faddr.s_addr == INADDR_ANY &&
2002 inp->inp_laddr.s_addr == laddr.s_addr &&
2003 inp->inp_lport == lport) {
2004 /*
2005 * Found?
2006 */
2007 if (prison_equal_ip4(cred->cr_prison,
2008 inp->inp_cred->cr_prison))
2009 return (inp);
2010 }
2011 }
2012 /*
2013 * Not found.
2014 */
2015 return (NULL);
2016 } else {
2017 struct inpcbporthead *porthash;
2018 struct inpcbport *phd;
2019 struct inpcb *match = NULL;
2020 /*
2021 * Best fit PCB lookup.
2022 *
2023 * First see if this local port is in use by looking on the
2024 * port hash list.
2025 */
2026 porthash = &pcbinfo->ipi_porthashbase[INP_PCBPORTHASH(lport,
2027 pcbinfo->ipi_porthashmask)];
2028 CK_LIST_FOREACH(phd, porthash, phd_hash) {
2029 if (phd->phd_port == lport)
2030 break;
2031 }
2032 if (phd != NULL) {
2033 /*
2034 * Port is in use by one or more PCBs. Look for best
2035 * fit.
2036 */
2037 CK_LIST_FOREACH(inp, &phd->phd_pcblist, inp_portlist) {
2038 wildcard = 0;
2039 if (!prison_equal_ip4(inp->inp_cred->cr_prison,
2040 cred->cr_prison))
2041 continue;
2042 #ifdef INET6
2043 /* XXX inp locking */
2044 if ((inp->inp_vflag & INP_IPV4) == 0)
2045 continue;
2046 /*
2047 * We never select the PCB that has
2048 * INP_IPV6 flag and is bound to :: if
2049 * we have another PCB which is bound
2050 * to 0.0.0.0. If a PCB has the
2051 * INP_IPV6 flag, then we set its cost
2052 * higher than IPv4 only PCBs.
2053 *
2054 * Note that the case only happens
2055 * when a socket is bound to ::, under
2056 * the condition that the use of the
2057 * mapped address is allowed.
2058 */
2059 if ((inp->inp_vflag & INP_IPV6) != 0)
2060 wildcard += INP_LOOKUP_MAPPED_PCB_COST;
2061 #endif
2062 if (inp->inp_faddr.s_addr != INADDR_ANY)
2063 wildcard++;
2064 if (inp->inp_laddr.s_addr != INADDR_ANY) {
2065 if (laddr.s_addr == INADDR_ANY)
2066 wildcard++;
2067 else if (inp->inp_laddr.s_addr != laddr.s_addr)
2068 continue;
2069 } else {
2070 if (laddr.s_addr != INADDR_ANY)
2071 wildcard++;
2072 }
2073 if (wildcard < matchwild) {
2074 match = inp;
2075 matchwild = wildcard;
2076 if (matchwild == 0)
2077 break;
2078 }
2079 }
2080 }
2081 return (match);
2082 }
2083 }
2084 #undef INP_LOOKUP_MAPPED_PCB_COST
2085
2086 static bool
in_pcblookup_lb_numa_match(const struct inpcblbgroup * grp,int domain)2087 in_pcblookup_lb_numa_match(const struct inpcblbgroup *grp, int domain)
2088 {
2089 return (domain == M_NODOM || domain == grp->il_numa_domain);
2090 }
2091
2092 static struct inpcb *
in_pcblookup_lbgroup(const struct inpcbinfo * pcbinfo,const struct in_addr * faddr,uint16_t fport,const struct in_addr * laddr,uint16_t lport,int domain)2093 in_pcblookup_lbgroup(const struct inpcbinfo *pcbinfo,
2094 const struct in_addr *faddr, uint16_t fport, const struct in_addr *laddr,
2095 uint16_t lport, int domain)
2096 {
2097 const struct inpcblbgrouphead *hdr;
2098 struct inpcblbgroup *grp;
2099 struct inpcblbgroup *jail_exact, *jail_wild, *local_exact, *local_wild;
2100
2101 INP_HASH_LOCK_ASSERT(pcbinfo);
2102
2103 hdr = &pcbinfo->ipi_lbgrouphashbase[
2104 INP_PCBPORTHASH(lport, pcbinfo->ipi_lbgrouphashmask)];
2105
2106 /*
2107 * Search for an LB group match based on the following criteria:
2108 * - prefer jailed groups to non-jailed groups
2109 * - prefer exact source address matches to wildcard matches
2110 * - prefer groups bound to the specified NUMA domain
2111 */
2112 jail_exact = jail_wild = local_exact = local_wild = NULL;
2113 CK_LIST_FOREACH(grp, hdr, il_list) {
2114 bool injail;
2115
2116 #ifdef INET6
2117 if (!(grp->il_vflag & INP_IPV4))
2118 continue;
2119 #endif
2120 if (grp->il_lport != lport)
2121 continue;
2122
2123 injail = prison_flag(grp->il_cred, PR_IP4) != 0;
2124 if (injail && prison_check_ip4_locked(grp->il_cred->cr_prison,
2125 laddr) != 0)
2126 continue;
2127
2128 if (grp->il_laddr.s_addr == laddr->s_addr) {
2129 if (injail) {
2130 jail_exact = grp;
2131 if (in_pcblookup_lb_numa_match(grp, domain))
2132 /* This is a perfect match. */
2133 goto out;
2134 } else if (local_exact == NULL ||
2135 in_pcblookup_lb_numa_match(grp, domain)) {
2136 local_exact = grp;
2137 }
2138 } else if (grp->il_laddr.s_addr == INADDR_ANY) {
2139 if (injail) {
2140 if (jail_wild == NULL ||
2141 in_pcblookup_lb_numa_match(grp, domain))
2142 jail_wild = grp;
2143 } else if (local_wild == NULL ||
2144 in_pcblookup_lb_numa_match(grp, domain)) {
2145 local_wild = grp;
2146 }
2147 }
2148 }
2149
2150 if (jail_exact != NULL)
2151 grp = jail_exact;
2152 else if (jail_wild != NULL)
2153 grp = jail_wild;
2154 else if (local_exact != NULL)
2155 grp = local_exact;
2156 else
2157 grp = local_wild;
2158 if (grp == NULL)
2159 return (NULL);
2160 out:
2161 return (grp->il_inp[INP_PCBLBGROUP_PKTHASH(faddr, lport, fport) %
2162 grp->il_inpcnt]);
2163 }
2164
2165 static bool
in_pcblookup_exact_match(const struct inpcb * inp,struct in_addr faddr,u_short fport,struct in_addr laddr,u_short lport)2166 in_pcblookup_exact_match(const struct inpcb *inp, struct in_addr faddr,
2167 u_short fport, struct in_addr laddr, u_short lport)
2168 {
2169 #ifdef INET6
2170 /* XXX inp locking */
2171 if ((inp->inp_vflag & INP_IPV4) == 0)
2172 return (false);
2173 #endif
2174 if (inp->inp_faddr.s_addr == faddr.s_addr &&
2175 inp->inp_laddr.s_addr == laddr.s_addr &&
2176 inp->inp_fport == fport &&
2177 inp->inp_lport == lport)
2178 return (true);
2179 return (false);
2180 }
2181
2182 static struct inpcb *
in_pcblookup_hash_exact(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_short fport,struct in_addr laddr,u_short lport)2183 in_pcblookup_hash_exact(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2184 u_short fport, struct in_addr laddr, u_short lport)
2185 {
2186 struct inpcbhead *head;
2187 struct inpcb *inp;
2188
2189 INP_HASH_LOCK_ASSERT(pcbinfo);
2190
2191 head = &pcbinfo->ipi_hash_exact[INP_PCBHASH(&faddr, lport, fport,
2192 pcbinfo->ipi_hashmask)];
2193 CK_LIST_FOREACH(inp, head, inp_hash_exact) {
2194 if (in_pcblookup_exact_match(inp, faddr, fport, laddr, lport))
2195 return (inp);
2196 }
2197 return (NULL);
2198 }
2199
2200 typedef enum {
2201 INPLOOKUP_MATCH_NONE = 0,
2202 INPLOOKUP_MATCH_WILD = 1,
2203 INPLOOKUP_MATCH_LADDR = 2,
2204 } inp_lookup_match_t;
2205
2206 static inp_lookup_match_t
in_pcblookup_wild_match(const struct inpcb * inp,struct in_addr laddr,u_short lport)2207 in_pcblookup_wild_match(const struct inpcb *inp, struct in_addr laddr,
2208 u_short lport)
2209 {
2210 #ifdef INET6
2211 /* XXX inp locking */
2212 if ((inp->inp_vflag & INP_IPV4) == 0)
2213 return (INPLOOKUP_MATCH_NONE);
2214 #endif
2215 if (inp->inp_faddr.s_addr != INADDR_ANY || inp->inp_lport != lport)
2216 return (INPLOOKUP_MATCH_NONE);
2217 if (inp->inp_laddr.s_addr == INADDR_ANY)
2218 return (INPLOOKUP_MATCH_WILD);
2219 if (inp->inp_laddr.s_addr == laddr.s_addr)
2220 return (INPLOOKUP_MATCH_LADDR);
2221 return (INPLOOKUP_MATCH_NONE);
2222 }
2223
2224 #define INP_LOOKUP_AGAIN ((struct inpcb *)(uintptr_t)-1)
2225
2226 static struct inpcb *
in_pcblookup_hash_wild_smr(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_short fport,struct in_addr laddr,u_short lport,const inp_lookup_t lockflags)2227 in_pcblookup_hash_wild_smr(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2228 u_short fport, struct in_addr laddr, u_short lport,
2229 const inp_lookup_t lockflags)
2230 {
2231 struct inpcbhead *head;
2232 struct inpcb *inp;
2233
2234 KASSERT(SMR_ENTERED(pcbinfo->ipi_smr),
2235 ("%s: not in SMR read section", __func__));
2236
2237 head = &pcbinfo->ipi_hash_wild[INP_PCBHASH_WILD(lport,
2238 pcbinfo->ipi_hashmask)];
2239 CK_LIST_FOREACH(inp, head, inp_hash_wild) {
2240 inp_lookup_match_t match;
2241
2242 match = in_pcblookup_wild_match(inp, laddr, lport);
2243 if (match == INPLOOKUP_MATCH_NONE)
2244 continue;
2245
2246 if (__predict_true(inp_smr_lock(inp, lockflags))) {
2247 match = in_pcblookup_wild_match(inp, laddr, lport);
2248 if (match != INPLOOKUP_MATCH_NONE &&
2249 prison_check_ip4_locked(inp->inp_cred->cr_prison,
2250 &laddr) == 0)
2251 return (inp);
2252 inp_unlock(inp, lockflags);
2253 }
2254
2255 /*
2256 * The matching socket disappeared out from under us. Fall back
2257 * to a serialized lookup.
2258 */
2259 return (INP_LOOKUP_AGAIN);
2260 }
2261 return (NULL);
2262 }
2263
2264 static struct inpcb *
in_pcblookup_hash_wild_locked(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_short fport,struct in_addr laddr,u_short lport)2265 in_pcblookup_hash_wild_locked(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2266 u_short fport, struct in_addr laddr, u_short lport)
2267 {
2268 struct inpcbhead *head;
2269 struct inpcb *inp, *local_wild, *local_exact, *jail_wild;
2270 #ifdef INET6
2271 struct inpcb *local_wild_mapped;
2272 #endif
2273
2274 INP_HASH_LOCK_ASSERT(pcbinfo);
2275
2276 /*
2277 * Order of socket selection - we always prefer jails.
2278 * 1. jailed, non-wild.
2279 * 2. jailed, wild.
2280 * 3. non-jailed, non-wild.
2281 * 4. non-jailed, wild.
2282 */
2283 head = &pcbinfo->ipi_hash_wild[INP_PCBHASH_WILD(lport,
2284 pcbinfo->ipi_hashmask)];
2285 local_wild = local_exact = jail_wild = NULL;
2286 #ifdef INET6
2287 local_wild_mapped = NULL;
2288 #endif
2289 CK_LIST_FOREACH(inp, head, inp_hash_wild) {
2290 inp_lookup_match_t match;
2291 bool injail;
2292
2293 match = in_pcblookup_wild_match(inp, laddr, lport);
2294 if (match == INPLOOKUP_MATCH_NONE)
2295 continue;
2296
2297 injail = prison_flag(inp->inp_cred, PR_IP4) != 0;
2298 if (injail) {
2299 if (prison_check_ip4_locked(inp->inp_cred->cr_prison,
2300 &laddr) != 0)
2301 continue;
2302 } else {
2303 if (local_exact != NULL)
2304 continue;
2305 }
2306
2307 if (match == INPLOOKUP_MATCH_LADDR) {
2308 if (injail)
2309 return (inp);
2310 local_exact = inp;
2311 } else {
2312 #ifdef INET6
2313 /* XXX inp locking, NULL check */
2314 if (inp->inp_vflag & INP_IPV6PROTO)
2315 local_wild_mapped = inp;
2316 else
2317 #endif
2318 if (injail)
2319 jail_wild = inp;
2320 else
2321 local_wild = inp;
2322 }
2323 }
2324 if (jail_wild != NULL)
2325 return (jail_wild);
2326 if (local_exact != NULL)
2327 return (local_exact);
2328 if (local_wild != NULL)
2329 return (local_wild);
2330 #ifdef INET6
2331 if (local_wild_mapped != NULL)
2332 return (local_wild_mapped);
2333 #endif
2334 return (NULL);
2335 }
2336
2337 /*
2338 * Lookup PCB in hash list, using pcbinfo tables. This variation assumes
2339 * that the caller has either locked the hash list, which usually happens
2340 * for bind(2) operations, or is in SMR section, which happens when sorting
2341 * out incoming packets.
2342 */
2343 static struct inpcb *
in_pcblookup_hash_locked(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_int fport_arg,struct in_addr laddr,u_int lport_arg,int lookupflags,uint8_t numa_domain)2344 in_pcblookup_hash_locked(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2345 u_int fport_arg, struct in_addr laddr, u_int lport_arg, int lookupflags,
2346 uint8_t numa_domain)
2347 {
2348 struct inpcb *inp;
2349 const u_short fport = fport_arg, lport = lport_arg;
2350
2351 KASSERT((lookupflags & ~INPLOOKUP_WILDCARD) == 0,
2352 ("%s: invalid lookup flags %d", __func__, lookupflags));
2353 KASSERT(faddr.s_addr != INADDR_ANY,
2354 ("%s: invalid foreign address", __func__));
2355 KASSERT(laddr.s_addr != INADDR_ANY,
2356 ("%s: invalid local address", __func__));
2357 INP_HASH_WLOCK_ASSERT(pcbinfo);
2358
2359 inp = in_pcblookup_hash_exact(pcbinfo, faddr, fport, laddr, lport);
2360 if (inp != NULL)
2361 return (inp);
2362
2363 if ((lookupflags & INPLOOKUP_WILDCARD) != 0) {
2364 inp = in_pcblookup_lbgroup(pcbinfo, &faddr, fport,
2365 &laddr, lport, numa_domain);
2366 if (inp == NULL) {
2367 inp = in_pcblookup_hash_wild_locked(pcbinfo, faddr,
2368 fport, laddr, lport);
2369 }
2370 }
2371
2372 return (inp);
2373 }
2374
2375 static struct inpcb *
in_pcblookup_hash(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_int fport,struct in_addr laddr,u_int lport,int lookupflags,uint8_t numa_domain)2376 in_pcblookup_hash(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2377 u_int fport, struct in_addr laddr, u_int lport, int lookupflags,
2378 uint8_t numa_domain)
2379 {
2380 struct inpcb *inp;
2381 const inp_lookup_t lockflags = lookupflags & INPLOOKUP_LOCKMASK;
2382
2383 KASSERT((lookupflags & (INPLOOKUP_RLOCKPCB | INPLOOKUP_WLOCKPCB)) != 0,
2384 ("%s: LOCKPCB not set", __func__));
2385
2386 INP_HASH_WLOCK(pcbinfo);
2387 inp = in_pcblookup_hash_locked(pcbinfo, faddr, fport, laddr, lport,
2388 lookupflags & ~INPLOOKUP_LOCKMASK, numa_domain);
2389 if (inp != NULL && !inp_trylock(inp, lockflags)) {
2390 in_pcbref(inp);
2391 INP_HASH_WUNLOCK(pcbinfo);
2392 inp_lock(inp, lockflags);
2393 if (in_pcbrele(inp, lockflags))
2394 /* XXX-MJ or retry until we get a negative match? */
2395 inp = NULL;
2396 } else {
2397 INP_HASH_WUNLOCK(pcbinfo);
2398 }
2399 return (inp);
2400 }
2401
2402 static struct inpcb *
in_pcblookup_hash_smr(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_int fport_arg,struct in_addr laddr,u_int lport_arg,int lookupflags,uint8_t numa_domain)2403 in_pcblookup_hash_smr(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2404 u_int fport_arg, struct in_addr laddr, u_int lport_arg, int lookupflags,
2405 uint8_t numa_domain)
2406 {
2407 struct inpcb *inp;
2408 const inp_lookup_t lockflags = lookupflags & INPLOOKUP_LOCKMASK;
2409 const u_short fport = fport_arg, lport = lport_arg;
2410
2411 KASSERT((lookupflags & ~INPLOOKUP_MASK) == 0,
2412 ("%s: invalid lookup flags %d", __func__, lookupflags));
2413 KASSERT((lookupflags & (INPLOOKUP_RLOCKPCB | INPLOOKUP_WLOCKPCB)) != 0,
2414 ("%s: LOCKPCB not set", __func__));
2415
2416 smr_enter(pcbinfo->ipi_smr);
2417 inp = in_pcblookup_hash_exact(pcbinfo, faddr, fport, laddr, lport);
2418 if (inp != NULL) {
2419 if (__predict_true(inp_smr_lock(inp, lockflags))) {
2420 /*
2421 * Revalidate the 4-tuple, the socket could have been
2422 * disconnected.
2423 */
2424 if (__predict_true(in_pcblookup_exact_match(inp,
2425 faddr, fport, laddr, lport)))
2426 return (inp);
2427 inp_unlock(inp, lockflags);
2428 }
2429
2430 /*
2431 * We failed to lock the inpcb, or its connection state changed
2432 * out from under us. Fall back to a precise search.
2433 */
2434 return (in_pcblookup_hash(pcbinfo, faddr, fport, laddr, lport,
2435 lookupflags, numa_domain));
2436 }
2437
2438 if ((lookupflags & INPLOOKUP_WILDCARD) != 0) {
2439 inp = in_pcblookup_lbgroup(pcbinfo, &faddr, fport,
2440 &laddr, lport, numa_domain);
2441 if (inp != NULL) {
2442 if (__predict_true(inp_smr_lock(inp, lockflags))) {
2443 if (__predict_true(in_pcblookup_wild_match(inp,
2444 laddr, lport) != INPLOOKUP_MATCH_NONE))
2445 return (inp);
2446 inp_unlock(inp, lockflags);
2447 }
2448 inp = INP_LOOKUP_AGAIN;
2449 } else {
2450 inp = in_pcblookup_hash_wild_smr(pcbinfo, faddr, fport,
2451 laddr, lport, lockflags);
2452 }
2453 if (inp == INP_LOOKUP_AGAIN) {
2454 return (in_pcblookup_hash(pcbinfo, faddr, fport, laddr,
2455 lport, lookupflags, numa_domain));
2456 }
2457 }
2458
2459 if (inp == NULL)
2460 smr_exit(pcbinfo->ipi_smr);
2461
2462 return (inp);
2463 }
2464
2465 /*
2466 * Public inpcb lookup routines, accepting a 4-tuple, and optionally, an mbuf
2467 * from which a pre-calculated hash value may be extracted.
2468 */
2469 struct inpcb *
in_pcblookup(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_int fport,struct in_addr laddr,u_int lport,int lookupflags,struct ifnet * ifp __unused)2470 in_pcblookup(struct inpcbinfo *pcbinfo, struct in_addr faddr, u_int fport,
2471 struct in_addr laddr, u_int lport, int lookupflags,
2472 struct ifnet *ifp __unused)
2473 {
2474 return (in_pcblookup_hash_smr(pcbinfo, faddr, fport, laddr, lport,
2475 lookupflags, M_NODOM));
2476 }
2477
2478 struct inpcb *
in_pcblookup_mbuf(struct inpcbinfo * pcbinfo,struct in_addr faddr,u_int fport,struct in_addr laddr,u_int lport,int lookupflags,struct ifnet * ifp __unused,struct mbuf * m)2479 in_pcblookup_mbuf(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2480 u_int fport, struct in_addr laddr, u_int lport, int lookupflags,
2481 struct ifnet *ifp __unused, struct mbuf *m)
2482 {
2483 return (in_pcblookup_hash_smr(pcbinfo, faddr, fport, laddr, lport,
2484 lookupflags, m->m_pkthdr.numa_domain));
2485 }
2486 #endif /* INET */
2487
2488 static bool
in_pcbjailed(const struct inpcb * inp,unsigned int flag)2489 in_pcbjailed(const struct inpcb *inp, unsigned int flag)
2490 {
2491 return (prison_flag(inp->inp_cred, flag) != 0);
2492 }
2493
2494 /*
2495 * Insert the PCB into a hash chain using ordering rules which ensure that
2496 * in_pcblookup_hash_wild_*() always encounter the highest-ranking PCB first.
2497 *
2498 * Specifically, keep jailed PCBs in front of non-jailed PCBs, and keep PCBs
2499 * with exact local addresses ahead of wildcard PCBs. Unbound v4-mapped v6 PCBs
2500 * always appear last no matter whether they are jailed.
2501 */
2502 static void
_in_pcbinshash_wild(struct inpcbhead * pcbhash,struct inpcb * inp)2503 _in_pcbinshash_wild(struct inpcbhead *pcbhash, struct inpcb *inp)
2504 {
2505 struct inpcb *last;
2506 bool bound, injail;
2507
2508 INP_LOCK_ASSERT(inp);
2509 INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
2510
2511 last = NULL;
2512 bound = inp->inp_laddr.s_addr != INADDR_ANY;
2513 if (!bound && (inp->inp_vflag & INP_IPV6PROTO) != 0) {
2514 CK_LIST_FOREACH(last, pcbhash, inp_hash_wild) {
2515 if (CK_LIST_NEXT(last, inp_hash_wild) == NULL) {
2516 CK_LIST_INSERT_AFTER(last, inp, inp_hash_wild);
2517 return;
2518 }
2519 }
2520 CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash_wild);
2521 return;
2522 }
2523
2524 injail = in_pcbjailed(inp, PR_IP4);
2525 if (!injail) {
2526 CK_LIST_FOREACH(last, pcbhash, inp_hash_wild) {
2527 if (!in_pcbjailed(last, PR_IP4))
2528 break;
2529 if (CK_LIST_NEXT(last, inp_hash_wild) == NULL) {
2530 CK_LIST_INSERT_AFTER(last, inp, inp_hash_wild);
2531 return;
2532 }
2533 }
2534 } else if (!CK_LIST_EMPTY(pcbhash) &&
2535 !in_pcbjailed(CK_LIST_FIRST(pcbhash), PR_IP4)) {
2536 CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash_wild);
2537 return;
2538 }
2539 if (!bound) {
2540 CK_LIST_FOREACH_FROM(last, pcbhash, inp_hash_wild) {
2541 if (last->inp_laddr.s_addr == INADDR_ANY)
2542 break;
2543 if (CK_LIST_NEXT(last, inp_hash_wild) == NULL) {
2544 CK_LIST_INSERT_AFTER(last, inp, inp_hash_wild);
2545 return;
2546 }
2547 }
2548 }
2549 if (last == NULL)
2550 CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash_wild);
2551 else
2552 CK_LIST_INSERT_BEFORE(last, inp, inp_hash_wild);
2553 }
2554
2555 #ifdef INET6
2556 /*
2557 * See the comment above _in_pcbinshash_wild().
2558 */
2559 static void
_in6_pcbinshash_wild(struct inpcbhead * pcbhash,struct inpcb * inp)2560 _in6_pcbinshash_wild(struct inpcbhead *pcbhash, struct inpcb *inp)
2561 {
2562 struct inpcb *last;
2563 bool bound, injail;
2564
2565 INP_LOCK_ASSERT(inp);
2566 INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
2567
2568 last = NULL;
2569 bound = !IN6_IS_ADDR_UNSPECIFIED(&inp->in6p_laddr);
2570 injail = in_pcbjailed(inp, PR_IP6);
2571 if (!injail) {
2572 CK_LIST_FOREACH(last, pcbhash, inp_hash_wild) {
2573 if (!in_pcbjailed(last, PR_IP6))
2574 break;
2575 if (CK_LIST_NEXT(last, inp_hash_wild) == NULL) {
2576 CK_LIST_INSERT_AFTER(last, inp, inp_hash_wild);
2577 return;
2578 }
2579 }
2580 } else if (!CK_LIST_EMPTY(pcbhash) &&
2581 !in_pcbjailed(CK_LIST_FIRST(pcbhash), PR_IP6)) {
2582 CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash_wild);
2583 return;
2584 }
2585 if (!bound) {
2586 CK_LIST_FOREACH_FROM(last, pcbhash, inp_hash_wild) {
2587 if (IN6_IS_ADDR_UNSPECIFIED(&last->in6p_laddr))
2588 break;
2589 if (CK_LIST_NEXT(last, inp_hash_wild) == NULL) {
2590 CK_LIST_INSERT_AFTER(last, inp, inp_hash_wild);
2591 return;
2592 }
2593 }
2594 }
2595 if (last == NULL)
2596 CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash_wild);
2597 else
2598 CK_LIST_INSERT_BEFORE(last, inp, inp_hash_wild);
2599 }
2600 #endif
2601
2602 /*
2603 * Insert PCB onto various hash lists.
2604 */
2605 int
in_pcbinshash(struct inpcb * inp)2606 in_pcbinshash(struct inpcb *inp)
2607 {
2608 struct inpcbhead *pcbhash;
2609 struct inpcbporthead *pcbporthash;
2610 struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
2611 struct inpcbport *phd;
2612 uint32_t hash;
2613 bool connected;
2614
2615 INP_WLOCK_ASSERT(inp);
2616 INP_HASH_WLOCK_ASSERT(pcbinfo);
2617 KASSERT((inp->inp_flags & INP_INHASHLIST) == 0,
2618 ("in_pcbinshash: INP_INHASHLIST"));
2619
2620 #ifdef INET6
2621 if (inp->inp_vflag & INP_IPV6) {
2622 hash = INP6_PCBHASH(&inp->in6p_faddr, inp->inp_lport,
2623 inp->inp_fport, pcbinfo->ipi_hashmask);
2624 connected = !IN6_IS_ADDR_UNSPECIFIED(&inp->in6p_faddr);
2625 } else
2626 #endif
2627 {
2628 hash = INP_PCBHASH(&inp->inp_faddr, inp->inp_lport,
2629 inp->inp_fport, pcbinfo->ipi_hashmask);
2630 connected = !in_nullhost(inp->inp_faddr);
2631 }
2632
2633 if (connected)
2634 pcbhash = &pcbinfo->ipi_hash_exact[hash];
2635 else
2636 pcbhash = &pcbinfo->ipi_hash_wild[hash];
2637
2638 pcbporthash = &pcbinfo->ipi_porthashbase[
2639 INP_PCBPORTHASH(inp->inp_lport, pcbinfo->ipi_porthashmask)];
2640
2641 /*
2642 * Add entry to load balance group.
2643 * Only do this if SO_REUSEPORT_LB is set.
2644 */
2645 if ((inp->inp_socket->so_options & SO_REUSEPORT_LB) != 0) {
2646 int error = in_pcbinslbgrouphash(inp, M_NODOM);
2647 if (error != 0)
2648 return (error);
2649 }
2650
2651 /*
2652 * Go through port list and look for a head for this lport.
2653 */
2654 CK_LIST_FOREACH(phd, pcbporthash, phd_hash) {
2655 if (phd->phd_port == inp->inp_lport)
2656 break;
2657 }
2658
2659 /*
2660 * If none exists, malloc one and tack it on.
2661 */
2662 if (phd == NULL) {
2663 phd = uma_zalloc_smr(pcbinfo->ipi_portzone, M_NOWAIT);
2664 if (phd == NULL) {
2665 if ((inp->inp_flags & INP_INLBGROUP) != 0)
2666 in_pcbremlbgrouphash(inp);
2667 return (ENOMEM);
2668 }
2669 phd->phd_port = inp->inp_lport;
2670 CK_LIST_INIT(&phd->phd_pcblist);
2671 CK_LIST_INSERT_HEAD(pcbporthash, phd, phd_hash);
2672 }
2673 inp->inp_phd = phd;
2674 CK_LIST_INSERT_HEAD(&phd->phd_pcblist, inp, inp_portlist);
2675
2676 /*
2677 * The PCB may have been disconnected in the past. Before we can safely
2678 * make it visible in the hash table, we must wait for all readers which
2679 * may be traversing this PCB to finish.
2680 */
2681 if (inp->inp_smr != SMR_SEQ_INVALID) {
2682 smr_wait(pcbinfo->ipi_smr, inp->inp_smr);
2683 inp->inp_smr = SMR_SEQ_INVALID;
2684 }
2685
2686 if (connected)
2687 CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash_exact);
2688 else {
2689 #ifdef INET6
2690 if ((inp->inp_vflag & INP_IPV6) != 0)
2691 _in6_pcbinshash_wild(pcbhash, inp);
2692 else
2693 #endif
2694 _in_pcbinshash_wild(pcbhash, inp);
2695 }
2696 inp->inp_flags |= INP_INHASHLIST;
2697
2698 return (0);
2699 }
2700
2701 void
in_pcbremhash_locked(struct inpcb * inp)2702 in_pcbremhash_locked(struct inpcb *inp)
2703 {
2704 struct inpcbport *phd = inp->inp_phd;
2705
2706 INP_WLOCK_ASSERT(inp);
2707 INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
2708 MPASS(inp->inp_flags & INP_INHASHLIST);
2709
2710 if ((inp->inp_flags & INP_INLBGROUP) != 0)
2711 in_pcbremlbgrouphash(inp);
2712 #ifdef INET6
2713 if (inp->inp_vflag & INP_IPV6) {
2714 if (IN6_IS_ADDR_UNSPECIFIED(&inp->in6p_faddr))
2715 CK_LIST_REMOVE(inp, inp_hash_wild);
2716 else
2717 CK_LIST_REMOVE(inp, inp_hash_exact);
2718 } else
2719 #endif
2720 {
2721 if (in_nullhost(inp->inp_faddr))
2722 CK_LIST_REMOVE(inp, inp_hash_wild);
2723 else
2724 CK_LIST_REMOVE(inp, inp_hash_exact);
2725 }
2726 CK_LIST_REMOVE(inp, inp_portlist);
2727 if (CK_LIST_FIRST(&phd->phd_pcblist) == NULL) {
2728 CK_LIST_REMOVE(phd, phd_hash);
2729 uma_zfree_smr(inp->inp_pcbinfo->ipi_portzone, phd);
2730 }
2731 inp->inp_flags &= ~INP_INHASHLIST;
2732 }
2733
2734 static void
in_pcbremhash(struct inpcb * inp)2735 in_pcbremhash(struct inpcb *inp)
2736 {
2737 INP_HASH_WLOCK(inp->inp_pcbinfo);
2738 in_pcbremhash_locked(inp);
2739 INP_HASH_WUNLOCK(inp->inp_pcbinfo);
2740 }
2741
2742 /*
2743 * Move PCB to the proper hash bucket when { faddr, fport } have been
2744 * changed. NOTE: This does not handle the case of the lport changing (the
2745 * hashed port list would have to be updated as well), so the lport must
2746 * not change after in_pcbinshash() has been called.
2747 */
2748 void
in_pcbrehash(struct inpcb * inp)2749 in_pcbrehash(struct inpcb *inp)
2750 {
2751 struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
2752 struct inpcbhead *head;
2753 uint32_t hash;
2754 bool connected;
2755
2756 INP_WLOCK_ASSERT(inp);
2757 INP_HASH_WLOCK_ASSERT(pcbinfo);
2758 KASSERT(inp->inp_flags & INP_INHASHLIST,
2759 ("%s: !INP_INHASHLIST", __func__));
2760 KASSERT(inp->inp_smr == SMR_SEQ_INVALID,
2761 ("%s: inp was disconnected", __func__));
2762
2763 #ifdef INET6
2764 if (inp->inp_vflag & INP_IPV6) {
2765 hash = INP6_PCBHASH(&inp->in6p_faddr, inp->inp_lport,
2766 inp->inp_fport, pcbinfo->ipi_hashmask);
2767 connected = !IN6_IS_ADDR_UNSPECIFIED(&inp->in6p_faddr);
2768 } else
2769 #endif
2770 {
2771 hash = INP_PCBHASH(&inp->inp_faddr, inp->inp_lport,
2772 inp->inp_fport, pcbinfo->ipi_hashmask);
2773 connected = !in_nullhost(inp->inp_faddr);
2774 }
2775
2776 /*
2777 * When rehashing, the caller must ensure that either the new or the old
2778 * foreign address was unspecified.
2779 */
2780 if (connected)
2781 CK_LIST_REMOVE(inp, inp_hash_wild);
2782 else
2783 CK_LIST_REMOVE(inp, inp_hash_exact);
2784
2785 if (connected) {
2786 head = &pcbinfo->ipi_hash_exact[hash];
2787 CK_LIST_INSERT_HEAD(head, inp, inp_hash_exact);
2788 } else {
2789 head = &pcbinfo->ipi_hash_wild[hash];
2790 CK_LIST_INSERT_HEAD(head, inp, inp_hash_wild);
2791 }
2792 }
2793
2794 /*
2795 * Check for alternatives when higher level complains
2796 * about service problems. For now, invalidate cached
2797 * routing information. If the route was created dynamically
2798 * (by a redirect), time to try a default gateway again.
2799 */
2800 void
in_losing(struct inpcb * inp)2801 in_losing(struct inpcb *inp)
2802 {
2803
2804 RO_INVALIDATE_CACHE(&inp->inp_route);
2805 return;
2806 }
2807
2808 /*
2809 * A set label operation has occurred at the socket layer, propagate the
2810 * label change into the in_pcb for the socket.
2811 */
2812 void
in_pcbsosetlabel(struct socket * so)2813 in_pcbsosetlabel(struct socket *so)
2814 {
2815 #ifdef MAC
2816 struct inpcb *inp;
2817
2818 inp = sotoinpcb(so);
2819 KASSERT(inp != NULL, ("in_pcbsosetlabel: so->so_pcb == NULL"));
2820
2821 INP_WLOCK(inp);
2822 SOCK_LOCK(so);
2823 mac_inpcb_sosetlabel(so, inp);
2824 SOCK_UNLOCK(so);
2825 INP_WUNLOCK(inp);
2826 #endif
2827 }
2828
2829 void
inp_wlock(struct inpcb * inp)2830 inp_wlock(struct inpcb *inp)
2831 {
2832
2833 INP_WLOCK(inp);
2834 }
2835
2836 void
inp_wunlock(struct inpcb * inp)2837 inp_wunlock(struct inpcb *inp)
2838 {
2839
2840 INP_WUNLOCK(inp);
2841 }
2842
2843 void
inp_rlock(struct inpcb * inp)2844 inp_rlock(struct inpcb *inp)
2845 {
2846
2847 INP_RLOCK(inp);
2848 }
2849
2850 void
inp_runlock(struct inpcb * inp)2851 inp_runlock(struct inpcb *inp)
2852 {
2853
2854 INP_RUNLOCK(inp);
2855 }
2856
2857 #ifdef INVARIANT_SUPPORT
2858 void
inp_lock_assert(struct inpcb * inp)2859 inp_lock_assert(struct inpcb *inp)
2860 {
2861
2862 INP_WLOCK_ASSERT(inp);
2863 }
2864
2865 void
inp_unlock_assert(struct inpcb * inp)2866 inp_unlock_assert(struct inpcb *inp)
2867 {
2868
2869 INP_UNLOCK_ASSERT(inp);
2870 }
2871 #endif
2872
2873 void
inp_apply_all(struct inpcbinfo * pcbinfo,void (* func)(struct inpcb *,void *),void * arg)2874 inp_apply_all(struct inpcbinfo *pcbinfo,
2875 void (*func)(struct inpcb *, void *), void *arg)
2876 {
2877 struct inpcb_iterator inpi = INP_ALL_ITERATOR(pcbinfo,
2878 INPLOOKUP_WLOCKPCB);
2879 struct inpcb *inp;
2880
2881 while ((inp = inp_next(&inpi)) != NULL)
2882 func(inp, arg);
2883 }
2884
2885 struct socket *
inp_inpcbtosocket(struct inpcb * inp)2886 inp_inpcbtosocket(struct inpcb *inp)
2887 {
2888
2889 INP_WLOCK_ASSERT(inp);
2890 return (inp->inp_socket);
2891 }
2892
2893 struct tcpcb *
inp_inpcbtotcpcb(struct inpcb * inp)2894 inp_inpcbtotcpcb(struct inpcb *inp)
2895 {
2896
2897 INP_WLOCK_ASSERT(inp);
2898 return ((struct tcpcb *)inp->inp_ppcb);
2899 }
2900
2901 int
inp_ip_tos_get(const struct inpcb * inp)2902 inp_ip_tos_get(const struct inpcb *inp)
2903 {
2904
2905 return (inp->inp_ip_tos);
2906 }
2907
2908 void
inp_ip_tos_set(struct inpcb * inp,int val)2909 inp_ip_tos_set(struct inpcb *inp, int val)
2910 {
2911
2912 inp->inp_ip_tos = val;
2913 }
2914
2915 void
inp_4tuple_get(struct inpcb * inp,uint32_t * laddr,uint16_t * lp,uint32_t * faddr,uint16_t * fp)2916 inp_4tuple_get(struct inpcb *inp, uint32_t *laddr, uint16_t *lp,
2917 uint32_t *faddr, uint16_t *fp)
2918 {
2919
2920 INP_LOCK_ASSERT(inp);
2921 *laddr = inp->inp_laddr.s_addr;
2922 *faddr = inp->inp_faddr.s_addr;
2923 *lp = inp->inp_lport;
2924 *fp = inp->inp_fport;
2925 }
2926
2927 struct inpcb *
so_sotoinpcb(struct socket * so)2928 so_sotoinpcb(struct socket *so)
2929 {
2930
2931 return (sotoinpcb(so));
2932 }
2933
2934 /*
2935 * Create an external-format (``xinpcb'') structure using the information in
2936 * the kernel-format in_pcb structure pointed to by inp. This is done to
2937 * reduce the spew of irrelevant information over this interface, to isolate
2938 * user code from changes in the kernel structure, and potentially to provide
2939 * information-hiding if we decide that some of this information should be
2940 * hidden from users.
2941 */
2942 void
in_pcbtoxinpcb(const struct inpcb * inp,struct xinpcb * xi)2943 in_pcbtoxinpcb(const struct inpcb *inp, struct xinpcb *xi)
2944 {
2945
2946 bzero(xi, sizeof(*xi));
2947 xi->xi_len = sizeof(struct xinpcb);
2948 if (inp->inp_socket)
2949 sotoxsocket(inp->inp_socket, &xi->xi_socket);
2950 bcopy(&inp->inp_inc, &xi->inp_inc, sizeof(struct in_conninfo));
2951 xi->inp_gencnt = inp->inp_gencnt;
2952 xi->inp_ppcb = (uintptr_t)inp->inp_ppcb;
2953 xi->inp_flow = inp->inp_flow;
2954 xi->inp_flowid = inp->inp_flowid;
2955 xi->inp_flowtype = inp->inp_flowtype;
2956 xi->inp_flags = inp->inp_flags;
2957 xi->inp_flags2 = inp->inp_flags2;
2958 xi->in6p_cksum = inp->in6p_cksum;
2959 xi->in6p_hops = inp->in6p_hops;
2960 xi->inp_ip_tos = inp->inp_ip_tos;
2961 xi->inp_vflag = inp->inp_vflag;
2962 xi->inp_ip_ttl = inp->inp_ip_ttl;
2963 xi->inp_ip_p = inp->inp_ip_p;
2964 xi->inp_ip_minttl = inp->inp_ip_minttl;
2965 }
2966
2967 int
sysctl_setsockopt(SYSCTL_HANDLER_ARGS,struct inpcbinfo * pcbinfo,int (* ctloutput_set)(struct inpcb *,struct sockopt *))2968 sysctl_setsockopt(SYSCTL_HANDLER_ARGS, struct inpcbinfo *pcbinfo,
2969 int (*ctloutput_set)(struct inpcb *, struct sockopt *))
2970 {
2971 struct sockopt sopt;
2972 struct inpcb_iterator inpi = INP_ALL_ITERATOR(pcbinfo,
2973 INPLOOKUP_WLOCKPCB);
2974 struct inpcb *inp;
2975 struct sockopt_parameters *params;
2976 struct socket *so;
2977 int error;
2978 char buf[1024];
2979
2980 if (req->oldptr != NULL || req->oldlen != 0)
2981 return (EINVAL);
2982 if (req->newptr == NULL)
2983 return (EPERM);
2984 if (req->newlen > sizeof(buf))
2985 return (ENOMEM);
2986 error = SYSCTL_IN(req, buf, req->newlen);
2987 if (error != 0)
2988 return (error);
2989 if (req->newlen < sizeof(struct sockopt_parameters))
2990 return (EINVAL);
2991 params = (struct sockopt_parameters *)buf;
2992 sopt.sopt_level = params->sop_level;
2993 sopt.sopt_name = params->sop_optname;
2994 sopt.sopt_dir = SOPT_SET;
2995 sopt.sopt_val = params->sop_optval;
2996 sopt.sopt_valsize = req->newlen - sizeof(struct sockopt_parameters);
2997 sopt.sopt_td = NULL;
2998 #ifdef INET6
2999 if (params->sop_inc.inc_flags & INC_ISIPV6) {
3000 if (IN6_IS_SCOPE_LINKLOCAL(¶ms->sop_inc.inc6_laddr))
3001 params->sop_inc.inc6_laddr.s6_addr16[1] =
3002 htons(params->sop_inc.inc6_zoneid & 0xffff);
3003 if (IN6_IS_SCOPE_LINKLOCAL(¶ms->sop_inc.inc6_faddr))
3004 params->sop_inc.inc6_faddr.s6_addr16[1] =
3005 htons(params->sop_inc.inc6_zoneid & 0xffff);
3006 }
3007 #endif
3008 if (params->sop_inc.inc_lport != htons(0) &&
3009 params->sop_inc.inc_fport != htons(0)) {
3010 #ifdef INET6
3011 if (params->sop_inc.inc_flags & INC_ISIPV6)
3012 inpi.hash = INP6_PCBHASH(
3013 ¶ms->sop_inc.inc6_faddr,
3014 params->sop_inc.inc_lport,
3015 params->sop_inc.inc_fport,
3016 pcbinfo->ipi_hashmask);
3017 else
3018 #endif
3019 inpi.hash = INP_PCBHASH(
3020 ¶ms->sop_inc.inc_faddr,
3021 params->sop_inc.inc_lport,
3022 params->sop_inc.inc_fport,
3023 pcbinfo->ipi_hashmask);
3024 }
3025 while ((inp = inp_next(&inpi)) != NULL)
3026 if (inp->inp_gencnt == params->sop_id) {
3027 if (inp->inp_flags & INP_DROPPED) {
3028 INP_WUNLOCK(inp);
3029 return (ECONNRESET);
3030 }
3031 so = inp->inp_socket;
3032 KASSERT(so != NULL, ("inp_socket == NULL"));
3033 soref(so);
3034 if (params->sop_level == SOL_SOCKET) {
3035 INP_WUNLOCK(inp);
3036 error = sosetopt(so, &sopt);
3037 } else
3038 error = (*ctloutput_set)(inp, &sopt);
3039 sorele(so);
3040 break;
3041 }
3042 if (inp == NULL)
3043 error = ESRCH;
3044 return (error);
3045 }
3046
3047 #ifdef DDB
3048 static void
db_print_indent(int indent)3049 db_print_indent(int indent)
3050 {
3051 int i;
3052
3053 for (i = 0; i < indent; i++)
3054 db_printf(" ");
3055 }
3056
3057 static void
db_print_inconninfo(struct in_conninfo * inc,const char * name,int indent)3058 db_print_inconninfo(struct in_conninfo *inc, const char *name, int indent)
3059 {
3060 char faddr_str[48], laddr_str[48];
3061
3062 db_print_indent(indent);
3063 db_printf("%s at %p\n", name, inc);
3064
3065 indent += 2;
3066
3067 #ifdef INET6
3068 if (inc->inc_flags & INC_ISIPV6) {
3069 /* IPv6. */
3070 ip6_sprintf(laddr_str, &inc->inc6_laddr);
3071 ip6_sprintf(faddr_str, &inc->inc6_faddr);
3072 } else
3073 #endif
3074 {
3075 /* IPv4. */
3076 inet_ntoa_r(inc->inc_laddr, laddr_str);
3077 inet_ntoa_r(inc->inc_faddr, faddr_str);
3078 }
3079 db_print_indent(indent);
3080 db_printf("inc_laddr %s inc_lport %u\n", laddr_str,
3081 ntohs(inc->inc_lport));
3082 db_print_indent(indent);
3083 db_printf("inc_faddr %s inc_fport %u\n", faddr_str,
3084 ntohs(inc->inc_fport));
3085 }
3086
3087 static void
db_print_inpflags(int inp_flags)3088 db_print_inpflags(int inp_flags)
3089 {
3090 int comma;
3091
3092 comma = 0;
3093 if (inp_flags & INP_RECVOPTS) {
3094 db_printf("%sINP_RECVOPTS", comma ? ", " : "");
3095 comma = 1;
3096 }
3097 if (inp_flags & INP_RECVRETOPTS) {
3098 db_printf("%sINP_RECVRETOPTS", comma ? ", " : "");
3099 comma = 1;
3100 }
3101 if (inp_flags & INP_RECVDSTADDR) {
3102 db_printf("%sINP_RECVDSTADDR", comma ? ", " : "");
3103 comma = 1;
3104 }
3105 if (inp_flags & INP_ORIGDSTADDR) {
3106 db_printf("%sINP_ORIGDSTADDR", comma ? ", " : "");
3107 comma = 1;
3108 }
3109 if (inp_flags & INP_HDRINCL) {
3110 db_printf("%sINP_HDRINCL", comma ? ", " : "");
3111 comma = 1;
3112 }
3113 if (inp_flags & INP_HIGHPORT) {
3114 db_printf("%sINP_HIGHPORT", comma ? ", " : "");
3115 comma = 1;
3116 }
3117 if (inp_flags & INP_LOWPORT) {
3118 db_printf("%sINP_LOWPORT", comma ? ", " : "");
3119 comma = 1;
3120 }
3121 if (inp_flags & INP_ANONPORT) {
3122 db_printf("%sINP_ANONPORT", comma ? ", " : "");
3123 comma = 1;
3124 }
3125 if (inp_flags & INP_RECVIF) {
3126 db_printf("%sINP_RECVIF", comma ? ", " : "");
3127 comma = 1;
3128 }
3129 if (inp_flags & INP_MTUDISC) {
3130 db_printf("%sINP_MTUDISC", comma ? ", " : "");
3131 comma = 1;
3132 }
3133 if (inp_flags & INP_RECVTTL) {
3134 db_printf("%sINP_RECVTTL", comma ? ", " : "");
3135 comma = 1;
3136 }
3137 if (inp_flags & INP_DONTFRAG) {
3138 db_printf("%sINP_DONTFRAG", comma ? ", " : "");
3139 comma = 1;
3140 }
3141 if (inp_flags & INP_RECVTOS) {
3142 db_printf("%sINP_RECVTOS", comma ? ", " : "");
3143 comma = 1;
3144 }
3145 if (inp_flags & IN6P_IPV6_V6ONLY) {
3146 db_printf("%sIN6P_IPV6_V6ONLY", comma ? ", " : "");
3147 comma = 1;
3148 }
3149 if (inp_flags & IN6P_PKTINFO) {
3150 db_printf("%sIN6P_PKTINFO", comma ? ", " : "");
3151 comma = 1;
3152 }
3153 if (inp_flags & IN6P_HOPLIMIT) {
3154 db_printf("%sIN6P_HOPLIMIT", comma ? ", " : "");
3155 comma = 1;
3156 }
3157 if (inp_flags & IN6P_HOPOPTS) {
3158 db_printf("%sIN6P_HOPOPTS", comma ? ", " : "");
3159 comma = 1;
3160 }
3161 if (inp_flags & IN6P_DSTOPTS) {
3162 db_printf("%sIN6P_DSTOPTS", comma ? ", " : "");
3163 comma = 1;
3164 }
3165 if (inp_flags & IN6P_RTHDR) {
3166 db_printf("%sIN6P_RTHDR", comma ? ", " : "");
3167 comma = 1;
3168 }
3169 if (inp_flags & IN6P_RTHDRDSTOPTS) {
3170 db_printf("%sIN6P_RTHDRDSTOPTS", comma ? ", " : "");
3171 comma = 1;
3172 }
3173 if (inp_flags & IN6P_TCLASS) {
3174 db_printf("%sIN6P_TCLASS", comma ? ", " : "");
3175 comma = 1;
3176 }
3177 if (inp_flags & IN6P_AUTOFLOWLABEL) {
3178 db_printf("%sIN6P_AUTOFLOWLABEL", comma ? ", " : "");
3179 comma = 1;
3180 }
3181 if (inp_flags & INP_ONESBCAST) {
3182 db_printf("%sINP_ONESBCAST", comma ? ", " : "");
3183 comma = 1;
3184 }
3185 if (inp_flags & INP_DROPPED) {
3186 db_printf("%sINP_DROPPED", comma ? ", " : "");
3187 comma = 1;
3188 }
3189 if (inp_flags & INP_SOCKREF) {
3190 db_printf("%sINP_SOCKREF", comma ? ", " : "");
3191 comma = 1;
3192 }
3193 if (inp_flags & IN6P_RFC2292) {
3194 db_printf("%sIN6P_RFC2292", comma ? ", " : "");
3195 comma = 1;
3196 }
3197 if (inp_flags & IN6P_MTU) {
3198 db_printf("IN6P_MTU%s", comma ? ", " : "");
3199 comma = 1;
3200 }
3201 }
3202
3203 static void
db_print_inpvflag(u_char inp_vflag)3204 db_print_inpvflag(u_char inp_vflag)
3205 {
3206 int comma;
3207
3208 comma = 0;
3209 if (inp_vflag & INP_IPV4) {
3210 db_printf("%sINP_IPV4", comma ? ", " : "");
3211 comma = 1;
3212 }
3213 if (inp_vflag & INP_IPV6) {
3214 db_printf("%sINP_IPV6", comma ? ", " : "");
3215 comma = 1;
3216 }
3217 if (inp_vflag & INP_IPV6PROTO) {
3218 db_printf("%sINP_IPV6PROTO", comma ? ", " : "");
3219 comma = 1;
3220 }
3221 }
3222
3223 static void
db_print_inpcb(struct inpcb * inp,const char * name,int indent)3224 db_print_inpcb(struct inpcb *inp, const char *name, int indent)
3225 {
3226
3227 db_print_indent(indent);
3228 db_printf("%s at %p\n", name, inp);
3229
3230 indent += 2;
3231
3232 db_print_indent(indent);
3233 db_printf("inp_flow: 0x%x\n", inp->inp_flow);
3234
3235 db_print_inconninfo(&inp->inp_inc, "inp_conninfo", indent);
3236
3237 db_print_indent(indent);
3238 db_printf("inp_ppcb: %p inp_pcbinfo: %p inp_socket: %p\n",
3239 inp->inp_ppcb, inp->inp_pcbinfo, inp->inp_socket);
3240
3241 db_print_indent(indent);
3242 db_printf("inp_label: %p inp_flags: 0x%x (",
3243 inp->inp_label, inp->inp_flags);
3244 db_print_inpflags(inp->inp_flags);
3245 db_printf(")\n");
3246
3247 db_print_indent(indent);
3248 db_printf("inp_sp: %p inp_vflag: 0x%x (", inp->inp_sp,
3249 inp->inp_vflag);
3250 db_print_inpvflag(inp->inp_vflag);
3251 db_printf(")\n");
3252
3253 db_print_indent(indent);
3254 db_printf("inp_ip_ttl: %d inp_ip_p: %d inp_ip_minttl: %d\n",
3255 inp->inp_ip_ttl, inp->inp_ip_p, inp->inp_ip_minttl);
3256
3257 db_print_indent(indent);
3258 #ifdef INET6
3259 if (inp->inp_vflag & INP_IPV6) {
3260 db_printf("in6p_options: %p in6p_outputopts: %p "
3261 "in6p_moptions: %p\n", inp->in6p_options,
3262 inp->in6p_outputopts, inp->in6p_moptions);
3263 db_printf("in6p_icmp6filt: %p in6p_cksum %d "
3264 "in6p_hops %u\n", inp->in6p_icmp6filt, inp->in6p_cksum,
3265 inp->in6p_hops);
3266 } else
3267 #endif
3268 {
3269 db_printf("inp_ip_tos: %d inp_ip_options: %p "
3270 "inp_ip_moptions: %p\n", inp->inp_ip_tos,
3271 inp->inp_options, inp->inp_moptions);
3272 }
3273
3274 db_print_indent(indent);
3275 db_printf("inp_phd: %p inp_gencnt: %ju\n", inp->inp_phd,
3276 (uintmax_t)inp->inp_gencnt);
3277 }
3278
DB_SHOW_COMMAND(inpcb,db_show_inpcb)3279 DB_SHOW_COMMAND(inpcb, db_show_inpcb)
3280 {
3281 struct inpcb *inp;
3282
3283 if (!have_addr) {
3284 db_printf("usage: show inpcb <addr>\n");
3285 return;
3286 }
3287 inp = (struct inpcb *)addr;
3288
3289 db_print_inpcb(inp, "inpcb", 0);
3290 }
3291 #endif /* DDB */
3292
3293 #ifdef RATELIMIT
3294 /*
3295 * Modify TX rate limit based on the existing "inp->inp_snd_tag",
3296 * if any.
3297 */
3298 int
in_pcbmodify_txrtlmt(struct inpcb * inp,uint32_t max_pacing_rate)3299 in_pcbmodify_txrtlmt(struct inpcb *inp, uint32_t max_pacing_rate)
3300 {
3301 union if_snd_tag_modify_params params = {
3302 .rate_limit.max_rate = max_pacing_rate,
3303 .rate_limit.flags = M_NOWAIT,
3304 };
3305 struct m_snd_tag *mst;
3306 int error;
3307
3308 mst = inp->inp_snd_tag;
3309 if (mst == NULL)
3310 return (EINVAL);
3311
3312 if (mst->sw->snd_tag_modify == NULL) {
3313 error = EOPNOTSUPP;
3314 } else {
3315 error = mst->sw->snd_tag_modify(mst, ¶ms);
3316 }
3317 return (error);
3318 }
3319
3320 /*
3321 * Query existing TX rate limit based on the existing
3322 * "inp->inp_snd_tag", if any.
3323 */
3324 int
in_pcbquery_txrtlmt(struct inpcb * inp,uint32_t * p_max_pacing_rate)3325 in_pcbquery_txrtlmt(struct inpcb *inp, uint32_t *p_max_pacing_rate)
3326 {
3327 union if_snd_tag_query_params params = { };
3328 struct m_snd_tag *mst;
3329 int error;
3330
3331 mst = inp->inp_snd_tag;
3332 if (mst == NULL)
3333 return (EINVAL);
3334
3335 if (mst->sw->snd_tag_query == NULL) {
3336 error = EOPNOTSUPP;
3337 } else {
3338 error = mst->sw->snd_tag_query(mst, ¶ms);
3339 if (error == 0 && p_max_pacing_rate != NULL)
3340 *p_max_pacing_rate = params.rate_limit.max_rate;
3341 }
3342 return (error);
3343 }
3344
3345 /*
3346 * Query existing TX queue level based on the existing
3347 * "inp->inp_snd_tag", if any.
3348 */
3349 int
in_pcbquery_txrlevel(struct inpcb * inp,uint32_t * p_txqueue_level)3350 in_pcbquery_txrlevel(struct inpcb *inp, uint32_t *p_txqueue_level)
3351 {
3352 union if_snd_tag_query_params params = { };
3353 struct m_snd_tag *mst;
3354 int error;
3355
3356 mst = inp->inp_snd_tag;
3357 if (mst == NULL)
3358 return (EINVAL);
3359
3360 if (mst->sw->snd_tag_query == NULL)
3361 return (EOPNOTSUPP);
3362
3363 error = mst->sw->snd_tag_query(mst, ¶ms);
3364 if (error == 0 && p_txqueue_level != NULL)
3365 *p_txqueue_level = params.rate_limit.queue_level;
3366 return (error);
3367 }
3368
3369 /*
3370 * Allocate a new TX rate limit send tag from the network interface
3371 * given by the "ifp" argument and save it in "inp->inp_snd_tag":
3372 */
3373 int
in_pcbattach_txrtlmt(struct inpcb * inp,struct ifnet * ifp,uint32_t flowtype,uint32_t flowid,uint32_t max_pacing_rate,struct m_snd_tag ** st)3374 in_pcbattach_txrtlmt(struct inpcb *inp, struct ifnet *ifp,
3375 uint32_t flowtype, uint32_t flowid, uint32_t max_pacing_rate, struct m_snd_tag **st)
3376
3377 {
3378 union if_snd_tag_alloc_params params = {
3379 .rate_limit.hdr.type = (max_pacing_rate == -1U) ?
3380 IF_SND_TAG_TYPE_UNLIMITED : IF_SND_TAG_TYPE_RATE_LIMIT,
3381 .rate_limit.hdr.flowid = flowid,
3382 .rate_limit.hdr.flowtype = flowtype,
3383 .rate_limit.hdr.numa_domain = inp->inp_numa_domain,
3384 .rate_limit.max_rate = max_pacing_rate,
3385 .rate_limit.flags = M_NOWAIT,
3386 };
3387 int error;
3388
3389 INP_WLOCK_ASSERT(inp);
3390
3391 /*
3392 * If there is already a send tag, or the INP is being torn
3393 * down, allocating a new send tag is not allowed. Else send
3394 * tags may leak.
3395 */
3396 if (*st != NULL || (inp->inp_flags & INP_DROPPED) != 0)
3397 return (EINVAL);
3398
3399 error = m_snd_tag_alloc(ifp, ¶ms, st);
3400 #ifdef INET
3401 if (error == 0) {
3402 counter_u64_add(rate_limit_set_ok, 1);
3403 counter_u64_add(rate_limit_active, 1);
3404 } else if (error != EOPNOTSUPP)
3405 counter_u64_add(rate_limit_alloc_fail, 1);
3406 #endif
3407 return (error);
3408 }
3409
3410 void
in_pcbdetach_tag(struct m_snd_tag * mst)3411 in_pcbdetach_tag(struct m_snd_tag *mst)
3412 {
3413
3414 m_snd_tag_rele(mst);
3415 #ifdef INET
3416 counter_u64_add(rate_limit_active, -1);
3417 #endif
3418 }
3419
3420 /*
3421 * Free an existing TX rate limit tag based on the "inp->inp_snd_tag",
3422 * if any:
3423 */
3424 void
in_pcbdetach_txrtlmt(struct inpcb * inp)3425 in_pcbdetach_txrtlmt(struct inpcb *inp)
3426 {
3427 struct m_snd_tag *mst;
3428
3429 INP_WLOCK_ASSERT(inp);
3430
3431 mst = inp->inp_snd_tag;
3432 inp->inp_snd_tag = NULL;
3433
3434 if (mst == NULL)
3435 return;
3436
3437 m_snd_tag_rele(mst);
3438 #ifdef INET
3439 counter_u64_add(rate_limit_active, -1);
3440 #endif
3441 }
3442
3443 int
in_pcboutput_txrtlmt_locked(struct inpcb * inp,struct ifnet * ifp,struct mbuf * mb,uint32_t max_pacing_rate)3444 in_pcboutput_txrtlmt_locked(struct inpcb *inp, struct ifnet *ifp, struct mbuf *mb, uint32_t max_pacing_rate)
3445 {
3446 int error;
3447
3448 /*
3449 * If the existing send tag is for the wrong interface due to
3450 * a route change, first drop the existing tag. Set the
3451 * CHANGED flag so that we will keep trying to allocate a new
3452 * tag if we fail to allocate one this time.
3453 */
3454 if (inp->inp_snd_tag != NULL && inp->inp_snd_tag->ifp != ifp) {
3455 in_pcbdetach_txrtlmt(inp);
3456 inp->inp_flags2 |= INP_RATE_LIMIT_CHANGED;
3457 }
3458
3459 /*
3460 * NOTE: When attaching to a network interface a reference is
3461 * made to ensure the network interface doesn't go away until
3462 * all ratelimit connections are gone. The network interface
3463 * pointers compared below represent valid network interfaces,
3464 * except when comparing towards NULL.
3465 */
3466 if (max_pacing_rate == 0 && inp->inp_snd_tag == NULL) {
3467 error = 0;
3468 } else if (!(ifp->if_capenable & IFCAP_TXRTLMT)) {
3469 if (inp->inp_snd_tag != NULL)
3470 in_pcbdetach_txrtlmt(inp);
3471 error = 0;
3472 } else if (inp->inp_snd_tag == NULL) {
3473 /*
3474 * In order to utilize packet pacing with RSS, we need
3475 * to wait until there is a valid RSS hash before we
3476 * can proceed:
3477 */
3478 if (M_HASHTYPE_GET(mb) == M_HASHTYPE_NONE) {
3479 error = EAGAIN;
3480 } else {
3481 error = in_pcbattach_txrtlmt(inp, ifp, M_HASHTYPE_GET(mb),
3482 mb->m_pkthdr.flowid, max_pacing_rate, &inp->inp_snd_tag);
3483 }
3484 } else {
3485 error = in_pcbmodify_txrtlmt(inp, max_pacing_rate);
3486 }
3487 if (error == 0 || error == EOPNOTSUPP)
3488 inp->inp_flags2 &= ~INP_RATE_LIMIT_CHANGED;
3489
3490 return (error);
3491 }
3492
3493 /*
3494 * This function should be called when the INP_RATE_LIMIT_CHANGED flag
3495 * is set in the fast path and will attach/detach/modify the TX rate
3496 * limit send tag based on the socket's so_max_pacing_rate value.
3497 */
3498 void
in_pcboutput_txrtlmt(struct inpcb * inp,struct ifnet * ifp,struct mbuf * mb)3499 in_pcboutput_txrtlmt(struct inpcb *inp, struct ifnet *ifp, struct mbuf *mb)
3500 {
3501 struct socket *socket;
3502 uint32_t max_pacing_rate;
3503 bool did_upgrade;
3504
3505 if (inp == NULL)
3506 return;
3507
3508 socket = inp->inp_socket;
3509 if (socket == NULL)
3510 return;
3511
3512 if (!INP_WLOCKED(inp)) {
3513 /*
3514 * NOTE: If the write locking fails, we need to bail
3515 * out and use the non-ratelimited ring for the
3516 * transmit until there is a new chance to get the
3517 * write lock.
3518 */
3519 if (!INP_TRY_UPGRADE(inp))
3520 return;
3521 did_upgrade = 1;
3522 } else {
3523 did_upgrade = 0;
3524 }
3525
3526 /*
3527 * NOTE: The so_max_pacing_rate value is read unlocked,
3528 * because atomic updates are not required since the variable
3529 * is checked at every mbuf we send. It is assumed that the
3530 * variable read itself will be atomic.
3531 */
3532 max_pacing_rate = socket->so_max_pacing_rate;
3533
3534 in_pcboutput_txrtlmt_locked(inp, ifp, mb, max_pacing_rate);
3535
3536 if (did_upgrade)
3537 INP_DOWNGRADE(inp);
3538 }
3539
3540 /*
3541 * Track route changes for TX rate limiting.
3542 */
3543 void
in_pcboutput_eagain(struct inpcb * inp)3544 in_pcboutput_eagain(struct inpcb *inp)
3545 {
3546 bool did_upgrade;
3547
3548 if (inp == NULL)
3549 return;
3550
3551 if (inp->inp_snd_tag == NULL)
3552 return;
3553
3554 if (!INP_WLOCKED(inp)) {
3555 /*
3556 * NOTE: If the write locking fails, we need to bail
3557 * out and use the non-ratelimited ring for the
3558 * transmit until there is a new chance to get the
3559 * write lock.
3560 */
3561 if (!INP_TRY_UPGRADE(inp))
3562 return;
3563 did_upgrade = 1;
3564 } else {
3565 did_upgrade = 0;
3566 }
3567
3568 /* detach rate limiting */
3569 in_pcbdetach_txrtlmt(inp);
3570
3571 /* make sure new mbuf send tag allocation is made */
3572 inp->inp_flags2 |= INP_RATE_LIMIT_CHANGED;
3573
3574 if (did_upgrade)
3575 INP_DOWNGRADE(inp);
3576 }
3577
3578 #ifdef INET
3579 static void
rl_init(void * st)3580 rl_init(void *st)
3581 {
3582 rate_limit_new = counter_u64_alloc(M_WAITOK);
3583 rate_limit_chg = counter_u64_alloc(M_WAITOK);
3584 rate_limit_active = counter_u64_alloc(M_WAITOK);
3585 rate_limit_alloc_fail = counter_u64_alloc(M_WAITOK);
3586 rate_limit_set_ok = counter_u64_alloc(M_WAITOK);
3587 }
3588
3589 SYSINIT(rl, SI_SUB_PROTO_DOMAININIT, SI_ORDER_ANY, rl_init, NULL);
3590 #endif
3591 #endif /* RATELIMIT */
3592