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[FreeBSD/FreeBSD.git] / sys / netinet / in_pcb.c
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  * All rights reserved.
9  *
10  * Portions of this software were developed by Robert N. M. Watson under
11  * contract to Juniper Networks, Inc.
12  *
13  * Redistribution and use in source and binary forms, with or without
14  * modification, are permitted provided that the following conditions
15  * are met:
16  * 1. Redistributions of source code must retain the above copyright
17  *    notice, this list of conditions and the following disclaimer.
18  * 2. Redistributions in binary form must reproduce the above copyright
19  *    notice, this list of conditions and the following disclaimer in the
20  *    documentation and/or other materials provided with the distribution.
21  * 3. Neither the name of the University nor the names of its contributors
22  *    may be used to endorse or promote products derived from this software
23  *    without specific prior written permission.
24  *
25  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
26  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
27  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
28  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
29  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
30  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
31  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
32  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
33  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
34  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
35  * SUCH DAMAGE.
36  *
37  *      @(#)in_pcb.c    8.4 (Berkeley) 5/24/95
38  */
39
40 #include <sys/cdefs.h>
41 __FBSDID("$FreeBSD$");
42
43 #include "opt_ddb.h"
44 #include "opt_ipsec.h"
45 #include "opt_inet.h"
46 #include "opt_inet6.h"
47 #include "opt_ratelimit.h"
48 #include "opt_pcbgroup.h"
49 #include "opt_rss.h"
50
51 #include <sys/param.h>
52 #include <sys/systm.h>
53 #include <sys/lock.h>
54 #include <sys/malloc.h>
55 #include <sys/mbuf.h>
56 #include <sys/callout.h>
57 #include <sys/eventhandler.h>
58 #include <sys/domain.h>
59 #include <sys/protosw.h>
60 #include <sys/rmlock.h>
61 #include <sys/smp.h>
62 #include <sys/socket.h>
63 #include <sys/socketvar.h>
64 #include <sys/sockio.h>
65 #include <sys/priv.h>
66 #include <sys/proc.h>
67 #include <sys/refcount.h>
68 #include <sys/jail.h>
69 #include <sys/kernel.h>
70 #include <sys/sysctl.h>
71
72 #ifdef DDB
73 #include <ddb/ddb.h>
74 #endif
75
76 #include <vm/uma.h>
77
78 #include <net/if.h>
79 #include <net/if_var.h>
80 #include <net/if_types.h>
81 #include <net/if_llatbl.h>
82 #include <net/route.h>
83 #include <net/rss_config.h>
84 #include <net/vnet.h>
85
86 #if defined(INET) || defined(INET6)
87 #include <netinet/in.h>
88 #include <netinet/in_pcb.h>
89 #include <netinet/ip_var.h>
90 #include <netinet/tcp_var.h>
91 #ifdef TCPHPTS
92 #include <netinet/tcp_hpts.h>
93 #endif
94 #include <netinet/udp.h>
95 #include <netinet/udp_var.h>
96 #endif
97 #ifdef INET
98 #include <netinet/in_var.h>
99 #endif
100 #ifdef INET6
101 #include <netinet/ip6.h>
102 #include <netinet6/in6_pcb.h>
103 #include <netinet6/in6_var.h>
104 #include <netinet6/ip6_var.h>
105 #endif /* INET6 */
106
107 #include <netipsec/ipsec_support.h>
108
109 #include <security/mac/mac_framework.h>
110
111 #define INPCBLBGROUP_SIZMIN     8
112 #define INPCBLBGROUP_SIZMAX     256
113
114 static struct callout   ipport_tick_callout;
115
116 /*
117  * These configure the range of local port addresses assigned to
118  * "unspecified" outgoing connections/packets/whatever.
119  */
120 VNET_DEFINE(int, ipport_lowfirstauto) = IPPORT_RESERVED - 1;    /* 1023 */
121 VNET_DEFINE(int, ipport_lowlastauto) = IPPORT_RESERVEDSTART;    /* 600 */
122 VNET_DEFINE(int, ipport_firstauto) = IPPORT_EPHEMERALFIRST;     /* 10000 */
123 VNET_DEFINE(int, ipport_lastauto) = IPPORT_EPHEMERALLAST;       /* 65535 */
124 VNET_DEFINE(int, ipport_hifirstauto) = IPPORT_HIFIRSTAUTO;      /* 49152 */
125 VNET_DEFINE(int, ipport_hilastauto) = IPPORT_HILASTAUTO;        /* 65535 */
126
127 /*
128  * Reserved ports accessible only to root. There are significant
129  * security considerations that must be accounted for when changing these,
130  * but the security benefits can be great. Please be careful.
131  */
132 VNET_DEFINE(int, ipport_reservedhigh) = IPPORT_RESERVED - 1;    /* 1023 */
133 VNET_DEFINE(int, ipport_reservedlow);
134
135 /* Variables dealing with random ephemeral port allocation. */
136 VNET_DEFINE(int, ipport_randomized) = 1;        /* user controlled via sysctl */
137 VNET_DEFINE(int, ipport_randomcps) = 10;        /* user controlled via sysctl */
138 VNET_DEFINE(int, ipport_randomtime) = 45;       /* user controlled via sysctl */
139 VNET_DEFINE(int, ipport_stoprandom);            /* toggled by ipport_tick */
140 VNET_DEFINE(int, ipport_tcpallocs);
141 static VNET_DEFINE(int, ipport_tcplastcount);
142
143 #define V_ipport_tcplastcount           VNET(ipport_tcplastcount)
144
145 static void     in_pcbremlists(struct inpcb *inp);
146 #ifdef INET
147 static struct inpcb     *in_pcblookup_hash_locked(struct inpcbinfo *pcbinfo,
148                             struct in_addr faddr, u_int fport_arg,
149                             struct in_addr laddr, u_int lport_arg,
150                             int lookupflags, struct ifnet *ifp);
151
152 #define RANGECHK(var, min, max) \
153         if ((var) < (min)) { (var) = (min); } \
154         else if ((var) > (max)) { (var) = (max); }
155
156 static int
157 sysctl_net_ipport_check(SYSCTL_HANDLER_ARGS)
158 {
159         int error;
160
161         error = sysctl_handle_int(oidp, arg1, arg2, req);
162         if (error == 0) {
163                 RANGECHK(V_ipport_lowfirstauto, 1, IPPORT_RESERVED - 1);
164                 RANGECHK(V_ipport_lowlastauto, 1, IPPORT_RESERVED - 1);
165                 RANGECHK(V_ipport_firstauto, IPPORT_RESERVED, IPPORT_MAX);
166                 RANGECHK(V_ipport_lastauto, IPPORT_RESERVED, IPPORT_MAX);
167                 RANGECHK(V_ipport_hifirstauto, IPPORT_RESERVED, IPPORT_MAX);
168                 RANGECHK(V_ipport_hilastauto, IPPORT_RESERVED, IPPORT_MAX);
169         }
170         return (error);
171 }
172
173 #undef RANGECHK
174
175 static SYSCTL_NODE(_net_inet_ip, IPPROTO_IP, portrange, CTLFLAG_RW, 0,
176     "IP Ports");
177
178 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, lowfirst,
179         CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW,
180         &VNET_NAME(ipport_lowfirstauto), 0, &sysctl_net_ipport_check, "I", "");
181 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, lowlast,
182         CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW,
183         &VNET_NAME(ipport_lowlastauto), 0, &sysctl_net_ipport_check, "I", "");
184 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, first,
185         CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW,
186         &VNET_NAME(ipport_firstauto), 0, &sysctl_net_ipport_check, "I", "");
187 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, last,
188         CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW,
189         &VNET_NAME(ipport_lastauto), 0, &sysctl_net_ipport_check, "I", "");
190 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, hifirst,
191         CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW,
192         &VNET_NAME(ipport_hifirstauto), 0, &sysctl_net_ipport_check, "I", "");
193 SYSCTL_PROC(_net_inet_ip_portrange, OID_AUTO, hilast,
194         CTLFLAG_VNET | CTLTYPE_INT | CTLFLAG_RW,
195         &VNET_NAME(ipport_hilastauto), 0, &sysctl_net_ipport_check, "I", "");
196 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, reservedhigh,
197         CTLFLAG_VNET | CTLFLAG_RW | CTLFLAG_SECURE,
198         &VNET_NAME(ipport_reservedhigh), 0, "");
199 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, reservedlow,
200         CTLFLAG_RW|CTLFLAG_SECURE, &VNET_NAME(ipport_reservedlow), 0, "");
201 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, randomized,
202         CTLFLAG_VNET | CTLFLAG_RW,
203         &VNET_NAME(ipport_randomized), 0, "Enable random port allocation");
204 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, randomcps,
205         CTLFLAG_VNET | CTLFLAG_RW,
206         &VNET_NAME(ipport_randomcps), 0, "Maximum number of random port "
207         "allocations before switching to a sequental one");
208 SYSCTL_INT(_net_inet_ip_portrange, OID_AUTO, randomtime,
209         CTLFLAG_VNET | CTLFLAG_RW,
210         &VNET_NAME(ipport_randomtime), 0,
211         "Minimum time to keep sequental port "
212         "allocation before switching to a random one");
213 #endif /* INET */
214
215 /*
216  * in_pcb.c: manage the Protocol Control Blocks.
217  *
218  * NOTE: It is assumed that most of these functions will be called with
219  * the pcbinfo lock held, and often, the inpcb lock held, as these utility
220  * functions often modify hash chains or addresses in pcbs.
221  */
222
223 static struct inpcblbgroup *
224 in_pcblbgroup_alloc(struct inpcblbgrouphead *hdr, u_char vflag,
225     uint16_t port, const union in_dependaddr *addr, int size)
226 {
227         struct inpcblbgroup *grp;
228         size_t bytes;
229
230         bytes = __offsetof(struct inpcblbgroup, il_inp[size]);
231         grp = malloc(bytes, M_PCB, M_ZERO | M_NOWAIT);
232         if (!grp)
233                 return (NULL);
234         grp->il_vflag = vflag;
235         grp->il_lport = port;
236         grp->il_dependladdr = *addr;
237         grp->il_inpsiz = size;
238         LIST_INSERT_HEAD(hdr, grp, il_list);
239         return (grp);
240 }
241
242 static void
243 in_pcblbgroup_free(struct inpcblbgroup *grp)
244 {
245
246         LIST_REMOVE(grp, il_list);
247         free(grp, M_TEMP);
248 }
249
250 static struct inpcblbgroup *
251 in_pcblbgroup_resize(struct inpcblbgrouphead *hdr,
252     struct inpcblbgroup *old_grp, int size)
253 {
254         struct inpcblbgroup *grp;
255         int i;
256
257         grp = in_pcblbgroup_alloc(hdr, old_grp->il_vflag,
258             old_grp->il_lport, &old_grp->il_dependladdr, size);
259         if (!grp)
260                 return (NULL);
261
262         KASSERT(old_grp->il_inpcnt < grp->il_inpsiz,
263             ("invalid new local group size %d and old local group count %d",
264              grp->il_inpsiz, old_grp->il_inpcnt));
265
266         for (i = 0; i < old_grp->il_inpcnt; ++i)
267                 grp->il_inp[i] = old_grp->il_inp[i];
268         grp->il_inpcnt = old_grp->il_inpcnt;
269         in_pcblbgroup_free(old_grp);
270         return (grp);
271 }
272
273 /*
274  * PCB at index 'i' is removed from the group. Pull up the ones below il_inp[i]
275  * and shrink group if possible.
276  */
277 static void
278 in_pcblbgroup_reorder(struct inpcblbgrouphead *hdr, struct inpcblbgroup **grpp,
279     int i)
280 {
281         struct inpcblbgroup *grp = *grpp;
282
283         for (; i + 1 < grp->il_inpcnt; ++i)
284                 grp->il_inp[i] = grp->il_inp[i + 1];
285         grp->il_inpcnt--;
286
287         if (grp->il_inpsiz > INPCBLBGROUP_SIZMIN &&
288             grp->il_inpcnt <= (grp->il_inpsiz / 4)) {
289                 /* Shrink this group. */
290                 struct inpcblbgroup *new_grp =
291                         in_pcblbgroup_resize(hdr, grp, grp->il_inpsiz / 2);
292                 if (new_grp)
293                         *grpp = new_grp;
294         }
295         return;
296 }
297
298 /*
299  * Add PCB to load balance group for SO_REUSEPORT_LB option.
300  */
301 static int
302 in_pcbinslbgrouphash(struct inpcb *inp)
303 {
304         struct inpcbinfo *pcbinfo;
305         struct inpcblbgrouphead *hdr;
306         struct inpcblbgroup *grp;
307         uint16_t hashmask, lport;
308         uint32_t group_index;
309         struct ucred *cred;
310         static int limit_logged = 0;
311
312         pcbinfo = inp->inp_pcbinfo;
313
314         INP_WLOCK_ASSERT(inp);
315         INP_HASH_WLOCK_ASSERT(pcbinfo);
316
317         if (pcbinfo->ipi_lbgrouphashbase == NULL)
318                 return (0);
319
320         hashmask = pcbinfo->ipi_lbgrouphashmask;
321         lport = inp->inp_lport;
322         group_index = INP_PCBLBGROUP_PORTHASH(lport, hashmask);
323         hdr = &pcbinfo->ipi_lbgrouphashbase[group_index];
324
325         /*
326          * Don't allow jailed socket to join local group.
327          */
328         if (inp->inp_socket != NULL)
329                 cred = inp->inp_socket->so_cred;
330         else
331                 cred = NULL;
332         if (cred != NULL && jailed(cred))
333                 return (0);
334
335 #ifdef INET6
336         /*
337          * Don't allow IPv4 mapped INET6 wild socket.
338          */
339         if ((inp->inp_vflag & INP_IPV4) &&
340             inp->inp_laddr.s_addr == INADDR_ANY &&
341             INP_CHECK_SOCKAF(inp->inp_socket, AF_INET6)) {
342                 return (0);
343         }
344 #endif
345
346         hdr = &pcbinfo->ipi_lbgrouphashbase[
347             INP_PCBLBGROUP_PORTHASH(inp->inp_lport,
348                 pcbinfo->ipi_lbgrouphashmask)];
349         LIST_FOREACH(grp, hdr, il_list) {
350                 if (grp->il_vflag == inp->inp_vflag &&
351                     grp->il_lport == inp->inp_lport &&
352                     memcmp(&grp->il_dependladdr,
353                         &inp->inp_inc.inc_ie.ie_dependladdr,
354                         sizeof(grp->il_dependladdr)) == 0) {
355                         break;
356                 }
357         }
358         if (grp == NULL) {
359                 /* Create new load balance group. */
360                 grp = in_pcblbgroup_alloc(hdr, inp->inp_vflag,
361                     inp->inp_lport, &inp->inp_inc.inc_ie.ie_dependladdr,
362                     INPCBLBGROUP_SIZMIN);
363                 if (!grp)
364                         return (ENOBUFS);
365         } else if (grp->il_inpcnt == grp->il_inpsiz) {
366                 if (grp->il_inpsiz >= INPCBLBGROUP_SIZMAX) {
367                         if (!limit_logged) {
368                                 limit_logged = 1;
369                                 printf("lb group port %d, limit reached\n",
370                                     ntohs(grp->il_lport));
371                         }
372                         return (0);
373                 }
374
375                 /* Expand this local group. */
376                 grp = in_pcblbgroup_resize(hdr, grp, grp->il_inpsiz * 2);
377                 if (!grp)
378                         return (ENOBUFS);
379         }
380
381         KASSERT(grp->il_inpcnt < grp->il_inpsiz,
382                         ("invalid local group size %d and count %d",
383                          grp->il_inpsiz, grp->il_inpcnt));
384
385         grp->il_inp[grp->il_inpcnt] = inp;
386         grp->il_inpcnt++;
387         return (0);
388 }
389
390 /*
391  * Remove PCB from load balance group.
392  */
393 static void
394 in_pcbremlbgrouphash(struct inpcb *inp)
395 {
396         struct inpcbinfo *pcbinfo;
397         struct inpcblbgrouphead *hdr;
398         struct inpcblbgroup *grp;
399         int i;
400
401         pcbinfo = inp->inp_pcbinfo;
402
403         INP_WLOCK_ASSERT(inp);
404         INP_HASH_WLOCK_ASSERT(pcbinfo);
405
406         if (pcbinfo->ipi_lbgrouphashbase == NULL)
407                 return;
408
409         hdr = &pcbinfo->ipi_lbgrouphashbase[
410             INP_PCBLBGROUP_PORTHASH(inp->inp_lport,
411                 pcbinfo->ipi_lbgrouphashmask)];
412
413         LIST_FOREACH(grp, hdr, il_list) {
414                 for (i = 0; i < grp->il_inpcnt; ++i) {
415                         if (grp->il_inp[i] != inp)
416                                 continue;
417
418                         if (grp->il_inpcnt == 1) {
419                                 /* We are the last, free this local group. */
420                                 in_pcblbgroup_free(grp);
421                         } else {
422                                 /* Pull up inpcbs, shrink group if possible. */
423                                 in_pcblbgroup_reorder(hdr, &grp, i);
424                         }
425                         return;
426                 }
427         }
428 }
429
430 /*
431  * Different protocols initialize their inpcbs differently - giving
432  * different name to the lock.  But they all are disposed the same.
433  */
434 static void
435 inpcb_fini(void *mem, int size)
436 {
437         struct inpcb *inp = mem;
438
439         INP_LOCK_DESTROY(inp);
440 }
441
442 /*
443  * Initialize an inpcbinfo -- we should be able to reduce the number of
444  * arguments in time.
445  */
446 void
447 in_pcbinfo_init(struct inpcbinfo *pcbinfo, const char *name,
448     struct inpcbhead *listhead, int hash_nelements, int porthash_nelements,
449     char *inpcbzone_name, uma_init inpcbzone_init, u_int hashfields)
450 {
451
452         INP_INFO_LOCK_INIT(pcbinfo, name);
453         INP_HASH_LOCK_INIT(pcbinfo, "pcbinfohash");     /* XXXRW: argument? */
454         INP_LIST_LOCK_INIT(pcbinfo, "pcbinfolist");
455 #ifdef VIMAGE
456         pcbinfo->ipi_vnet = curvnet;
457 #endif
458         pcbinfo->ipi_listhead = listhead;
459         CK_LIST_INIT(pcbinfo->ipi_listhead);
460         pcbinfo->ipi_count = 0;
461         pcbinfo->ipi_hashbase = hashinit(hash_nelements, M_PCB,
462             &pcbinfo->ipi_hashmask);
463         pcbinfo->ipi_porthashbase = hashinit(porthash_nelements, M_PCB,
464             &pcbinfo->ipi_porthashmask);
465         pcbinfo->ipi_lbgrouphashbase = hashinit(hash_nelements, M_PCB,
466             &pcbinfo->ipi_lbgrouphashmask);
467 #ifdef PCBGROUP
468         in_pcbgroup_init(pcbinfo, hashfields, hash_nelements);
469 #endif
470         pcbinfo->ipi_zone = uma_zcreate(inpcbzone_name, sizeof(struct inpcb),
471             NULL, NULL, inpcbzone_init, inpcb_fini, UMA_ALIGN_PTR, 0);
472         uma_zone_set_max(pcbinfo->ipi_zone, maxsockets);
473         uma_zone_set_warning(pcbinfo->ipi_zone,
474             "kern.ipc.maxsockets limit reached");
475 }
476
477 /*
478  * Destroy an inpcbinfo.
479  */
480 void
481 in_pcbinfo_destroy(struct inpcbinfo *pcbinfo)
482 {
483
484         KASSERT(pcbinfo->ipi_count == 0,
485             ("%s: ipi_count = %u", __func__, pcbinfo->ipi_count));
486
487         hashdestroy(pcbinfo->ipi_hashbase, M_PCB, pcbinfo->ipi_hashmask);
488         hashdestroy(pcbinfo->ipi_porthashbase, M_PCB,
489             pcbinfo->ipi_porthashmask);
490         hashdestroy(pcbinfo->ipi_lbgrouphashbase, M_PCB,
491             pcbinfo->ipi_lbgrouphashmask);
492 #ifdef PCBGROUP
493         in_pcbgroup_destroy(pcbinfo);
494 #endif
495         uma_zdestroy(pcbinfo->ipi_zone);
496         INP_LIST_LOCK_DESTROY(pcbinfo);
497         INP_HASH_LOCK_DESTROY(pcbinfo);
498         INP_INFO_LOCK_DESTROY(pcbinfo);
499 }
500
501 /*
502  * Allocate a PCB and associate it with the socket.
503  * On success return with the PCB locked.
504  */
505 int
506 in_pcballoc(struct socket *so, struct inpcbinfo *pcbinfo)
507 {
508         struct inpcb *inp;
509         int error;
510
511 #ifdef INVARIANTS
512         if (pcbinfo == &V_tcbinfo) {
513                 INP_INFO_RLOCK_ASSERT(pcbinfo);
514         } else {
515                 INP_INFO_WLOCK_ASSERT(pcbinfo);
516         }
517 #endif
518
519         error = 0;
520         inp = uma_zalloc(pcbinfo->ipi_zone, M_NOWAIT);
521         if (inp == NULL)
522                 return (ENOBUFS);
523         bzero(&inp->inp_start_zero, inp_zero_size);
524         inp->inp_pcbinfo = pcbinfo;
525         inp->inp_socket = so;
526         inp->inp_cred = crhold(so->so_cred);
527         inp->inp_inc.inc_fibnum = so->so_fibnum;
528 #ifdef MAC
529         error = mac_inpcb_init(inp, M_NOWAIT);
530         if (error != 0)
531                 goto out;
532         mac_inpcb_create(so, inp);
533 #endif
534 #if defined(IPSEC) || defined(IPSEC_SUPPORT)
535         error = ipsec_init_pcbpolicy(inp);
536         if (error != 0) {
537 #ifdef MAC
538                 mac_inpcb_destroy(inp);
539 #endif
540                 goto out;
541         }
542 #endif /*IPSEC*/
543 #ifdef INET6
544         if (INP_SOCKAF(so) == AF_INET6) {
545                 inp->inp_vflag |= INP_IPV6PROTO;
546                 if (V_ip6_v6only)
547                         inp->inp_flags |= IN6P_IPV6_V6ONLY;
548         }
549 #endif
550         INP_WLOCK(inp);
551         INP_LIST_WLOCK(pcbinfo);
552         CK_LIST_INSERT_HEAD(pcbinfo->ipi_listhead, inp, inp_list);
553         pcbinfo->ipi_count++;
554         so->so_pcb = (caddr_t)inp;
555 #ifdef INET6
556         if (V_ip6_auto_flowlabel)
557                 inp->inp_flags |= IN6P_AUTOFLOWLABEL;
558 #endif
559         inp->inp_gencnt = ++pcbinfo->ipi_gencnt;
560         refcount_init(&inp->inp_refcount, 1);   /* Reference from inpcbinfo */
561
562         /*
563          * Routes in inpcb's can cache L2 as well; they are guaranteed
564          * to be cleaned up.
565          */
566         inp->inp_route.ro_flags = RT_LLE_CACHE;
567         INP_LIST_WUNLOCK(pcbinfo);
568 #if defined(IPSEC) || defined(IPSEC_SUPPORT) || defined(MAC)
569 out:
570         if (error != 0) {
571                 crfree(inp->inp_cred);
572                 uma_zfree(pcbinfo->ipi_zone, inp);
573         }
574 #endif
575         return (error);
576 }
577
578 #ifdef INET
579 int
580 in_pcbbind(struct inpcb *inp, struct sockaddr *nam, struct ucred *cred)
581 {
582         int anonport, error;
583
584         INP_WLOCK_ASSERT(inp);
585         INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
586
587         if (inp->inp_lport != 0 || inp->inp_laddr.s_addr != INADDR_ANY)
588                 return (EINVAL);
589         anonport = nam == NULL || ((struct sockaddr_in *)nam)->sin_port == 0;
590         error = in_pcbbind_setup(inp, nam, &inp->inp_laddr.s_addr,
591             &inp->inp_lport, cred);
592         if (error)
593                 return (error);
594         if (in_pcbinshash(inp) != 0) {
595                 inp->inp_laddr.s_addr = INADDR_ANY;
596                 inp->inp_lport = 0;
597                 return (EAGAIN);
598         }
599         if (anonport)
600                 inp->inp_flags |= INP_ANONPORT;
601         return (0);
602 }
603 #endif
604
605 /*
606  * Select a local port (number) to use.
607  */
608 #if defined(INET) || defined(INET6)
609 int
610 in_pcb_lport(struct inpcb *inp, struct in_addr *laddrp, u_short *lportp,
611     struct ucred *cred, int lookupflags)
612 {
613         struct inpcbinfo *pcbinfo;
614         struct inpcb *tmpinp;
615         unsigned short *lastport;
616         int count, dorandom, error;
617         u_short aux, first, last, lport;
618 #ifdef INET
619         struct in_addr laddr;
620 #endif
621
622         pcbinfo = inp->inp_pcbinfo;
623
624         /*
625          * Because no actual state changes occur here, a global write lock on
626          * the pcbinfo isn't required.
627          */
628         INP_LOCK_ASSERT(inp);
629         INP_HASH_LOCK_ASSERT(pcbinfo);
630
631         if (inp->inp_flags & INP_HIGHPORT) {
632                 first = V_ipport_hifirstauto;   /* sysctl */
633                 last  = V_ipport_hilastauto;
634                 lastport = &pcbinfo->ipi_lasthi;
635         } else if (inp->inp_flags & INP_LOWPORT) {
636                 error = priv_check_cred(cred, PRIV_NETINET_RESERVEDPORT, 0);
637                 if (error)
638                         return (error);
639                 first = V_ipport_lowfirstauto;  /* 1023 */
640                 last  = V_ipport_lowlastauto;   /* 600 */
641                 lastport = &pcbinfo->ipi_lastlow;
642         } else {
643                 first = V_ipport_firstauto;     /* sysctl */
644                 last  = V_ipport_lastauto;
645                 lastport = &pcbinfo->ipi_lastport;
646         }
647         /*
648          * For UDP(-Lite), use random port allocation as long as the user
649          * allows it.  For TCP (and as of yet unknown) connections,
650          * use random port allocation only if the user allows it AND
651          * ipport_tick() allows it.
652          */
653         if (V_ipport_randomized &&
654                 (!V_ipport_stoprandom || pcbinfo == &V_udbinfo ||
655                 pcbinfo == &V_ulitecbinfo))
656                 dorandom = 1;
657         else
658                 dorandom = 0;
659         /*
660          * It makes no sense to do random port allocation if
661          * we have the only port available.
662          */
663         if (first == last)
664                 dorandom = 0;
665         /* Make sure to not include UDP(-Lite) packets in the count. */
666         if (pcbinfo != &V_udbinfo || pcbinfo != &V_ulitecbinfo)
667                 V_ipport_tcpallocs++;
668         /*
669          * Instead of having two loops further down counting up or down
670          * make sure that first is always <= last and go with only one
671          * code path implementing all logic.
672          */
673         if (first > last) {
674                 aux = first;
675                 first = last;
676                 last = aux;
677         }
678
679 #ifdef INET
680         /* Make the compiler happy. */
681         laddr.s_addr = 0;
682         if ((inp->inp_vflag & (INP_IPV4|INP_IPV6)) == INP_IPV4) {
683                 KASSERT(laddrp != NULL, ("%s: laddrp NULL for v4 inp %p",
684                     __func__, inp));
685                 laddr = *laddrp;
686         }
687 #endif
688         tmpinp = NULL;  /* Make compiler happy. */
689         lport = *lportp;
690
691         if (dorandom)
692                 *lastport = first + (arc4random() % (last - first));
693
694         count = last - first;
695
696         do {
697                 if (count-- < 0)        /* completely used? */
698                         return (EADDRNOTAVAIL);
699                 ++*lastport;
700                 if (*lastport < first || *lastport > last)
701                         *lastport = first;
702                 lport = htons(*lastport);
703
704 #ifdef INET6
705                 if ((inp->inp_vflag & INP_IPV6) != 0)
706                         tmpinp = in6_pcblookup_local(pcbinfo,
707                             &inp->in6p_laddr, lport, lookupflags, cred);
708 #endif
709 #if defined(INET) && defined(INET6)
710                 else
711 #endif
712 #ifdef INET
713                         tmpinp = in_pcblookup_local(pcbinfo, laddr,
714                             lport, lookupflags, cred);
715 #endif
716         } while (tmpinp != NULL);
717
718 #ifdef INET
719         if ((inp->inp_vflag & (INP_IPV4|INP_IPV6)) == INP_IPV4)
720                 laddrp->s_addr = laddr.s_addr;
721 #endif
722         *lportp = lport;
723
724         return (0);
725 }
726
727 /*
728  * Return cached socket options.
729  */
730 int
731 inp_so_options(const struct inpcb *inp)
732 {
733         int so_options;
734
735         so_options = 0;
736
737         if ((inp->inp_flags2 & INP_REUSEPORT_LB) != 0)
738                 so_options |= SO_REUSEPORT_LB;
739         if ((inp->inp_flags2 & INP_REUSEPORT) != 0)
740                 so_options |= SO_REUSEPORT;
741         if ((inp->inp_flags2 & INP_REUSEADDR) != 0)
742                 so_options |= SO_REUSEADDR;
743         return (so_options);
744 }
745 #endif /* INET || INET6 */
746
747 /*
748  * Check if a new BINDMULTI socket is allowed to be created.
749  *
750  * ni points to the new inp.
751  * oi points to the exisitng inp.
752  *
753  * This checks whether the existing inp also has BINDMULTI and
754  * whether the credentials match.
755  */
756 int
757 in_pcbbind_check_bindmulti(const struct inpcb *ni, const struct inpcb *oi)
758 {
759         /* Check permissions match */
760         if ((ni->inp_flags2 & INP_BINDMULTI) &&
761             (ni->inp_cred->cr_uid !=
762             oi->inp_cred->cr_uid))
763                 return (0);
764
765         /* Check the existing inp has BINDMULTI set */
766         if ((ni->inp_flags2 & INP_BINDMULTI) &&
767             ((oi->inp_flags2 & INP_BINDMULTI) == 0))
768                 return (0);
769
770         /*
771          * We're okay - either INP_BINDMULTI isn't set on ni, or
772          * it is and it matches the checks.
773          */
774         return (1);
775 }
776
777 #ifdef INET
778 /*
779  * Set up a bind operation on a PCB, performing port allocation
780  * as required, but do not actually modify the PCB. Callers can
781  * either complete the bind by setting inp_laddr/inp_lport and
782  * calling in_pcbinshash(), or they can just use the resulting
783  * port and address to authorise the sending of a once-off packet.
784  *
785  * On error, the values of *laddrp and *lportp are not changed.
786  */
787 int
788 in_pcbbind_setup(struct inpcb *inp, struct sockaddr *nam, in_addr_t *laddrp,
789     u_short *lportp, struct ucred *cred)
790 {
791         struct socket *so = inp->inp_socket;
792         struct sockaddr_in *sin;
793         struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
794         struct in_addr laddr;
795         u_short lport = 0;
796         int lookupflags = 0, reuseport = (so->so_options & SO_REUSEPORT);
797         int error;
798
799         /*
800          * XXX: Maybe we could let SO_REUSEPORT_LB set SO_REUSEPORT bit here
801          * so that we don't have to add to the (already messy) code below.
802          */
803         int reuseport_lb = (so->so_options & SO_REUSEPORT_LB);
804
805         /*
806          * No state changes, so read locks are sufficient here.
807          */
808         INP_LOCK_ASSERT(inp);
809         INP_HASH_LOCK_ASSERT(pcbinfo);
810
811         if (CK_STAILQ_EMPTY(&V_in_ifaddrhead)) /* XXX broken! */
812                 return (EADDRNOTAVAIL);
813         laddr.s_addr = *laddrp;
814         if (nam != NULL && laddr.s_addr != INADDR_ANY)
815                 return (EINVAL);
816         if ((so->so_options & (SO_REUSEADDR|SO_REUSEPORT|SO_REUSEPORT_LB)) == 0)
817                 lookupflags = INPLOOKUP_WILDCARD;
818         if (nam == NULL) {
819                 if ((error = prison_local_ip4(cred, &laddr)) != 0)
820                         return (error);
821         } else {
822                 sin = (struct sockaddr_in *)nam;
823                 if (nam->sa_len != sizeof (*sin))
824                         return (EINVAL);
825 #ifdef notdef
826                 /*
827                  * We should check the family, but old programs
828                  * incorrectly fail to initialize it.
829                  */
830                 if (sin->sin_family != AF_INET)
831                         return (EAFNOSUPPORT);
832 #endif
833                 error = prison_local_ip4(cred, &sin->sin_addr);
834                 if (error)
835                         return (error);
836                 if (sin->sin_port != *lportp) {
837                         /* Don't allow the port to change. */
838                         if (*lportp != 0)
839                                 return (EINVAL);
840                         lport = sin->sin_port;
841                 }
842                 /* NB: lport is left as 0 if the port isn't being changed. */
843                 if (IN_MULTICAST(ntohl(sin->sin_addr.s_addr))) {
844                         /*
845                          * Treat SO_REUSEADDR as SO_REUSEPORT for multicast;
846                          * allow complete duplication of binding if
847                          * SO_REUSEPORT is set, or if SO_REUSEADDR is set
848                          * and a multicast address is bound on both
849                          * new and duplicated sockets.
850                          */
851                         if ((so->so_options & (SO_REUSEADDR|SO_REUSEPORT)) != 0)
852                                 reuseport = SO_REUSEADDR|SO_REUSEPORT;
853                         /*
854                          * XXX: How to deal with SO_REUSEPORT_LB here?
855                          * Treat same as SO_REUSEPORT for now.
856                          */
857                         if ((so->so_options &
858                             (SO_REUSEADDR|SO_REUSEPORT_LB)) != 0)
859                                 reuseport_lb = SO_REUSEADDR|SO_REUSEPORT_LB;
860                 } else if (sin->sin_addr.s_addr != INADDR_ANY) {
861                         sin->sin_port = 0;              /* yech... */
862                         bzero(&sin->sin_zero, sizeof(sin->sin_zero));
863                         /*
864                          * Is the address a local IP address?
865                          * If INP_BINDANY is set, then the socket may be bound
866                          * to any endpoint address, local or not.
867                          */
868                         if ((inp->inp_flags & INP_BINDANY) == 0 &&
869                             ifa_ifwithaddr_check((struct sockaddr *)sin) == 0)
870                                 return (EADDRNOTAVAIL);
871                 }
872                 laddr = sin->sin_addr;
873                 if (lport) {
874                         struct inpcb *t;
875                         struct tcptw *tw;
876
877                         /* GROSS */
878                         if (ntohs(lport) <= V_ipport_reservedhigh &&
879                             ntohs(lport) >= V_ipport_reservedlow &&
880                             priv_check_cred(cred, PRIV_NETINET_RESERVEDPORT,
881                             0))
882                                 return (EACCES);
883                         if (!IN_MULTICAST(ntohl(sin->sin_addr.s_addr)) &&
884                             priv_check_cred(inp->inp_cred,
885                             PRIV_NETINET_REUSEPORT, 0) != 0) {
886                                 t = in_pcblookup_local(pcbinfo, sin->sin_addr,
887                                     lport, INPLOOKUP_WILDCARD, cred);
888         /*
889          * XXX
890          * This entire block sorely needs a rewrite.
891          */
892                                 if (t &&
893                                     ((inp->inp_flags2 & INP_BINDMULTI) == 0) &&
894                                     ((t->inp_flags & INP_TIMEWAIT) == 0) &&
895                                     (so->so_type != SOCK_STREAM ||
896                                      ntohl(t->inp_faddr.s_addr) == INADDR_ANY) &&
897                                     (ntohl(sin->sin_addr.s_addr) != INADDR_ANY ||
898                                      ntohl(t->inp_laddr.s_addr) != INADDR_ANY ||
899                                      (t->inp_flags2 & INP_REUSEPORT) ||
900                                      (t->inp_flags2 & INP_REUSEPORT_LB) == 0) &&
901                                     (inp->inp_cred->cr_uid !=
902                                      t->inp_cred->cr_uid))
903                                         return (EADDRINUSE);
904
905                                 /*
906                                  * If the socket is a BINDMULTI socket, then
907                                  * the credentials need to match and the
908                                  * original socket also has to have been bound
909                                  * with BINDMULTI.
910                                  */
911                                 if (t && (! in_pcbbind_check_bindmulti(inp, t)))
912                                         return (EADDRINUSE);
913                         }
914                         t = in_pcblookup_local(pcbinfo, sin->sin_addr,
915                             lport, lookupflags, cred);
916                         if (t && (t->inp_flags & INP_TIMEWAIT)) {
917                                 /*
918                                  * XXXRW: If an incpb has had its timewait
919                                  * state recycled, we treat the address as
920                                  * being in use (for now).  This is better
921                                  * than a panic, but not desirable.
922                                  */
923                                 tw = intotw(t);
924                                 if (tw == NULL ||
925                                     ((reuseport & tw->tw_so_options) == 0 &&
926                                         (reuseport_lb &
927                                             tw->tw_so_options) == 0)) {
928                                         return (EADDRINUSE);
929                                 }
930                         } else if (t &&
931                                    ((inp->inp_flags2 & INP_BINDMULTI) == 0) &&
932                                    (reuseport & inp_so_options(t)) == 0 &&
933                                    (reuseport_lb & inp_so_options(t)) == 0) {
934 #ifdef INET6
935                                 if (ntohl(sin->sin_addr.s_addr) !=
936                                     INADDR_ANY ||
937                                     ntohl(t->inp_laddr.s_addr) !=
938                                     INADDR_ANY ||
939                                     (inp->inp_vflag & INP_IPV6PROTO) == 0 ||
940                                     (t->inp_vflag & INP_IPV6PROTO) == 0)
941 #endif
942                                                 return (EADDRINUSE);
943                                 if (t && (! in_pcbbind_check_bindmulti(inp, t)))
944                                         return (EADDRINUSE);
945                         }
946                 }
947         }
948         if (*lportp != 0)
949                 lport = *lportp;
950         if (lport == 0) {
951                 error = in_pcb_lport(inp, &laddr, &lport, cred, lookupflags);
952                 if (error != 0)
953                         return (error);
954
955         }
956         *laddrp = laddr.s_addr;
957         *lportp = lport;
958         return (0);
959 }
960
961 /*
962  * Connect from a socket to a specified address.
963  * Both address and port must be specified in argument sin.
964  * If don't have a local address for this socket yet,
965  * then pick one.
966  */
967 int
968 in_pcbconnect_mbuf(struct inpcb *inp, struct sockaddr *nam,
969     struct ucred *cred, struct mbuf *m)
970 {
971         u_short lport, fport;
972         in_addr_t laddr, faddr;
973         int anonport, error;
974
975         INP_WLOCK_ASSERT(inp);
976         INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
977
978         lport = inp->inp_lport;
979         laddr = inp->inp_laddr.s_addr;
980         anonport = (lport == 0);
981         error = in_pcbconnect_setup(inp, nam, &laddr, &lport, &faddr, &fport,
982             NULL, cred);
983         if (error)
984                 return (error);
985
986         /* Do the initial binding of the local address if required. */
987         if (inp->inp_laddr.s_addr == INADDR_ANY && inp->inp_lport == 0) {
988                 inp->inp_lport = lport;
989                 inp->inp_laddr.s_addr = laddr;
990                 if (in_pcbinshash(inp) != 0) {
991                         inp->inp_laddr.s_addr = INADDR_ANY;
992                         inp->inp_lport = 0;
993                         return (EAGAIN);
994                 }
995         }
996
997         /* Commit the remaining changes. */
998         inp->inp_lport = lport;
999         inp->inp_laddr.s_addr = laddr;
1000         inp->inp_faddr.s_addr = faddr;
1001         inp->inp_fport = fport;
1002         in_pcbrehash_mbuf(inp, m);
1003
1004         if (anonport)
1005                 inp->inp_flags |= INP_ANONPORT;
1006         return (0);
1007 }
1008
1009 int
1010 in_pcbconnect(struct inpcb *inp, struct sockaddr *nam, struct ucred *cred)
1011 {
1012
1013         return (in_pcbconnect_mbuf(inp, nam, cred, NULL));
1014 }
1015
1016 /*
1017  * Do proper source address selection on an unbound socket in case
1018  * of connect. Take jails into account as well.
1019  */
1020 int
1021 in_pcbladdr(struct inpcb *inp, struct in_addr *faddr, struct in_addr *laddr,
1022     struct ucred *cred)
1023 {
1024         struct ifaddr *ifa;
1025         struct sockaddr *sa;
1026         struct sockaddr_in *sin;
1027         struct route sro;
1028         int error;
1029
1030         KASSERT(laddr != NULL, ("%s: laddr NULL", __func__));
1031         /*
1032          * Bypass source address selection and use the primary jail IP
1033          * if requested.
1034          */
1035         if (cred != NULL && !prison_saddrsel_ip4(cred, laddr))
1036                 return (0);
1037
1038         error = 0;
1039         bzero(&sro, sizeof(sro));
1040
1041         sin = (struct sockaddr_in *)&sro.ro_dst;
1042         sin->sin_family = AF_INET;
1043         sin->sin_len = sizeof(struct sockaddr_in);
1044         sin->sin_addr.s_addr = faddr->s_addr;
1045
1046         /*
1047          * If route is known our src addr is taken from the i/f,
1048          * else punt.
1049          *
1050          * Find out route to destination.
1051          */
1052         if ((inp->inp_socket->so_options & SO_DONTROUTE) == 0)
1053                 in_rtalloc_ign(&sro, 0, inp->inp_inc.inc_fibnum);
1054
1055         /*
1056          * If we found a route, use the address corresponding to
1057          * the outgoing interface.
1058          * 
1059          * Otherwise assume faddr is reachable on a directly connected
1060          * network and try to find a corresponding interface to take
1061          * the source address from.
1062          */
1063         NET_EPOCH_ENTER();
1064         if (sro.ro_rt == NULL || sro.ro_rt->rt_ifp == NULL) {
1065                 struct in_ifaddr *ia;
1066                 struct ifnet *ifp;
1067
1068                 ia = ifatoia(ifa_ifwithdstaddr((struct sockaddr *)sin,
1069                                         inp->inp_socket->so_fibnum));
1070                 if (ia == NULL) {
1071                         ia = ifatoia(ifa_ifwithnet((struct sockaddr *)sin, 0,
1072                                                 inp->inp_socket->so_fibnum));
1073
1074                 }
1075                 if (ia == NULL) {
1076                         error = ENETUNREACH;
1077                         goto done;
1078                 }
1079
1080                 if (cred == NULL || !prison_flag(cred, PR_IP4)) {
1081                         laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1082                         goto done;
1083                 }
1084
1085                 ifp = ia->ia_ifp;
1086                 ia = NULL;
1087                 IF_ADDR_RLOCK(ifp);
1088                 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1089
1090                         sa = ifa->ifa_addr;
1091                         if (sa->sa_family != AF_INET)
1092                                 continue;
1093                         sin = (struct sockaddr_in *)sa;
1094                         if (prison_check_ip4(cred, &sin->sin_addr) == 0) {
1095                                 ia = (struct in_ifaddr *)ifa;
1096                                 break;
1097                         }
1098                 }
1099                 if (ia != NULL) {
1100                         laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1101                         IF_ADDR_RUNLOCK(ifp);
1102                         goto done;
1103                 }
1104                 IF_ADDR_RUNLOCK(ifp);
1105
1106                 /* 3. As a last resort return the 'default' jail address. */
1107                 error = prison_get_ip4(cred, laddr);
1108                 goto done;
1109         }
1110
1111         /*
1112          * If the outgoing interface on the route found is not
1113          * a loopback interface, use the address from that interface.
1114          * In case of jails do those three steps:
1115          * 1. check if the interface address belongs to the jail. If so use it.
1116          * 2. check if we have any address on the outgoing interface
1117          *    belonging to this jail. If so use it.
1118          * 3. as a last resort return the 'default' jail address.
1119          */
1120         if ((sro.ro_rt->rt_ifp->if_flags & IFF_LOOPBACK) == 0) {
1121                 struct in_ifaddr *ia;
1122                 struct ifnet *ifp;
1123
1124                 /* If not jailed, use the default returned. */
1125                 if (cred == NULL || !prison_flag(cred, PR_IP4)) {
1126                         ia = (struct in_ifaddr *)sro.ro_rt->rt_ifa;
1127                         laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1128                         goto done;
1129                 }
1130
1131                 /* Jailed. */
1132                 /* 1. Check if the iface address belongs to the jail. */
1133                 sin = (struct sockaddr_in *)sro.ro_rt->rt_ifa->ifa_addr;
1134                 if (prison_check_ip4(cred, &sin->sin_addr) == 0) {
1135                         ia = (struct in_ifaddr *)sro.ro_rt->rt_ifa;
1136                         laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1137                         goto done;
1138                 }
1139
1140                 /*
1141                  * 2. Check if we have any address on the outgoing interface
1142                  *    belonging to this jail.
1143                  */
1144                 ia = NULL;
1145                 ifp = sro.ro_rt->rt_ifp;
1146                 IF_ADDR_RLOCK(ifp);
1147                 CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1148                         sa = ifa->ifa_addr;
1149                         if (sa->sa_family != AF_INET)
1150                                 continue;
1151                         sin = (struct sockaddr_in *)sa;
1152                         if (prison_check_ip4(cred, &sin->sin_addr) == 0) {
1153                                 ia = (struct in_ifaddr *)ifa;
1154                                 break;
1155                         }
1156                 }
1157                 if (ia != NULL) {
1158                         laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1159                         IF_ADDR_RUNLOCK(ifp);
1160                         goto done;
1161                 }
1162                 IF_ADDR_RUNLOCK(ifp);
1163
1164                 /* 3. As a last resort return the 'default' jail address. */
1165                 error = prison_get_ip4(cred, laddr);
1166                 goto done;
1167         }
1168
1169         /*
1170          * The outgoing interface is marked with 'loopback net', so a route
1171          * to ourselves is here.
1172          * Try to find the interface of the destination address and then
1173          * take the address from there. That interface is not necessarily
1174          * a loopback interface.
1175          * In case of jails, check that it is an address of the jail
1176          * and if we cannot find, fall back to the 'default' jail address.
1177          */
1178         if ((sro.ro_rt->rt_ifp->if_flags & IFF_LOOPBACK) != 0) {
1179                 struct sockaddr_in sain;
1180                 struct in_ifaddr *ia;
1181
1182                 bzero(&sain, sizeof(struct sockaddr_in));
1183                 sain.sin_family = AF_INET;
1184                 sain.sin_len = sizeof(struct sockaddr_in);
1185                 sain.sin_addr.s_addr = faddr->s_addr;
1186
1187                 ia = ifatoia(ifa_ifwithdstaddr(sintosa(&sain),
1188                                         inp->inp_socket->so_fibnum));
1189                 if (ia == NULL)
1190                         ia = ifatoia(ifa_ifwithnet(sintosa(&sain), 0,
1191                                                 inp->inp_socket->so_fibnum));
1192                 if (ia == NULL)
1193                         ia = ifatoia(ifa_ifwithaddr(sintosa(&sain)));
1194
1195                 if (cred == NULL || !prison_flag(cred, PR_IP4)) {
1196                         if (ia == NULL) {
1197                                 error = ENETUNREACH;
1198                                 goto done;
1199                         }
1200                         laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1201                         goto done;
1202                 }
1203
1204                 /* Jailed. */
1205                 if (ia != NULL) {
1206                         struct ifnet *ifp;
1207
1208                         ifp = ia->ia_ifp;
1209                         ia = NULL;
1210                         IF_ADDR_RLOCK(ifp);
1211                         CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) {
1212
1213                                 sa = ifa->ifa_addr;
1214                                 if (sa->sa_family != AF_INET)
1215                                         continue;
1216                                 sin = (struct sockaddr_in *)sa;
1217                                 if (prison_check_ip4(cred,
1218                                     &sin->sin_addr) == 0) {
1219                                         ia = (struct in_ifaddr *)ifa;
1220                                         break;
1221                                 }
1222                         }
1223                         if (ia != NULL) {
1224                                 laddr->s_addr = ia->ia_addr.sin_addr.s_addr;
1225                                 IF_ADDR_RUNLOCK(ifp);
1226                                 goto done;
1227                         }
1228                         IF_ADDR_RUNLOCK(ifp);
1229                 }
1230
1231                 /* 3. As a last resort return the 'default' jail address. */
1232                 error = prison_get_ip4(cred, laddr);
1233                 goto done;
1234         }
1235
1236 done:
1237         NET_EPOCH_EXIT();
1238         if (sro.ro_rt != NULL)
1239                 RTFREE(sro.ro_rt);
1240         return (error);
1241 }
1242
1243 /*
1244  * Set up for a connect from a socket to the specified address.
1245  * On entry, *laddrp and *lportp should contain the current local
1246  * address and port for the PCB; these are updated to the values
1247  * that should be placed in inp_laddr and inp_lport to complete
1248  * the connect.
1249  *
1250  * On success, *faddrp and *fportp will be set to the remote address
1251  * and port. These are not updated in the error case.
1252  *
1253  * If the operation fails because the connection already exists,
1254  * *oinpp will be set to the PCB of that connection so that the
1255  * caller can decide to override it. In all other cases, *oinpp
1256  * is set to NULL.
1257  */
1258 int
1259 in_pcbconnect_setup(struct inpcb *inp, struct sockaddr *nam,
1260     in_addr_t *laddrp, u_short *lportp, in_addr_t *faddrp, u_short *fportp,
1261     struct inpcb **oinpp, struct ucred *cred)
1262 {
1263         struct rm_priotracker in_ifa_tracker;
1264         struct sockaddr_in *sin = (struct sockaddr_in *)nam;
1265         struct in_ifaddr *ia;
1266         struct inpcb *oinp;
1267         struct in_addr laddr, faddr;
1268         u_short lport, fport;
1269         int error;
1270
1271         /*
1272          * Because a global state change doesn't actually occur here, a read
1273          * lock is sufficient.
1274          */
1275         INP_LOCK_ASSERT(inp);
1276         INP_HASH_LOCK_ASSERT(inp->inp_pcbinfo);
1277
1278         if (oinpp != NULL)
1279                 *oinpp = NULL;
1280         if (nam->sa_len != sizeof (*sin))
1281                 return (EINVAL);
1282         if (sin->sin_family != AF_INET)
1283                 return (EAFNOSUPPORT);
1284         if (sin->sin_port == 0)
1285                 return (EADDRNOTAVAIL);
1286         laddr.s_addr = *laddrp;
1287         lport = *lportp;
1288         faddr = sin->sin_addr;
1289         fport = sin->sin_port;
1290
1291         if (!CK_STAILQ_EMPTY(&V_in_ifaddrhead)) {
1292                 /*
1293                  * If the destination address is INADDR_ANY,
1294                  * use the primary local address.
1295                  * If the supplied address is INADDR_BROADCAST,
1296                  * and the primary interface supports broadcast,
1297                  * choose the broadcast address for that interface.
1298                  */
1299                 if (faddr.s_addr == INADDR_ANY) {
1300                         IN_IFADDR_RLOCK(&in_ifa_tracker);
1301                         faddr =
1302                             IA_SIN(CK_STAILQ_FIRST(&V_in_ifaddrhead))->sin_addr;
1303                         IN_IFADDR_RUNLOCK(&in_ifa_tracker);
1304                         if (cred != NULL &&
1305                             (error = prison_get_ip4(cred, &faddr)) != 0)
1306                                 return (error);
1307                 } else if (faddr.s_addr == (u_long)INADDR_BROADCAST) {
1308                         IN_IFADDR_RLOCK(&in_ifa_tracker);
1309                         if (CK_STAILQ_FIRST(&V_in_ifaddrhead)->ia_ifp->if_flags &
1310                             IFF_BROADCAST)
1311                                 faddr = satosin(&CK_STAILQ_FIRST(
1312                                     &V_in_ifaddrhead)->ia_broadaddr)->sin_addr;
1313                         IN_IFADDR_RUNLOCK(&in_ifa_tracker);
1314                 }
1315         }
1316         if (laddr.s_addr == INADDR_ANY) {
1317                 error = in_pcbladdr(inp, &faddr, &laddr, cred);
1318                 /*
1319                  * If the destination address is multicast and an outgoing
1320                  * interface has been set as a multicast option, prefer the
1321                  * address of that interface as our source address.
1322                  */
1323                 if (IN_MULTICAST(ntohl(faddr.s_addr)) &&
1324                     inp->inp_moptions != NULL) {
1325                         struct ip_moptions *imo;
1326                         struct ifnet *ifp;
1327
1328                         imo = inp->inp_moptions;
1329                         if (imo->imo_multicast_ifp != NULL) {
1330                                 ifp = imo->imo_multicast_ifp;
1331                                 IN_IFADDR_RLOCK(&in_ifa_tracker);
1332                                 CK_STAILQ_FOREACH(ia, &V_in_ifaddrhead, ia_link) {
1333                                         if ((ia->ia_ifp == ifp) &&
1334                                             (cred == NULL ||
1335                                             prison_check_ip4(cred,
1336                                             &ia->ia_addr.sin_addr) == 0))
1337                                                 break;
1338                                 }
1339                                 if (ia == NULL)
1340                                         error = EADDRNOTAVAIL;
1341                                 else {
1342                                         laddr = ia->ia_addr.sin_addr;
1343                                         error = 0;
1344                                 }
1345                                 IN_IFADDR_RUNLOCK(&in_ifa_tracker);
1346                         }
1347                 }
1348                 if (error)
1349                         return (error);
1350         }
1351         oinp = in_pcblookup_hash_locked(inp->inp_pcbinfo, faddr, fport,
1352             laddr, lport, 0, NULL);
1353         if (oinp != NULL) {
1354                 if (oinpp != NULL)
1355                         *oinpp = oinp;
1356                 return (EADDRINUSE);
1357         }
1358         if (lport == 0) {
1359                 error = in_pcbbind_setup(inp, NULL, &laddr.s_addr, &lport,
1360                     cred);
1361                 if (error)
1362                         return (error);
1363         }
1364         *laddrp = laddr.s_addr;
1365         *lportp = lport;
1366         *faddrp = faddr.s_addr;
1367         *fportp = fport;
1368         return (0);
1369 }
1370
1371 void
1372 in_pcbdisconnect(struct inpcb *inp)
1373 {
1374
1375         INP_WLOCK_ASSERT(inp);
1376         INP_HASH_WLOCK_ASSERT(inp->inp_pcbinfo);
1377
1378         inp->inp_faddr.s_addr = INADDR_ANY;
1379         inp->inp_fport = 0;
1380         in_pcbrehash(inp);
1381 }
1382 #endif /* INET */
1383
1384 /*
1385  * in_pcbdetach() is responsibe for disassociating a socket from an inpcb.
1386  * For most protocols, this will be invoked immediately prior to calling
1387  * in_pcbfree().  However, with TCP the inpcb may significantly outlive the
1388  * socket, in which case in_pcbfree() is deferred.
1389  */
1390 void
1391 in_pcbdetach(struct inpcb *inp)
1392 {
1393
1394         KASSERT(inp->inp_socket != NULL, ("%s: inp_socket == NULL", __func__));
1395
1396 #ifdef RATELIMIT
1397         if (inp->inp_snd_tag != NULL)
1398                 in_pcbdetach_txrtlmt(inp);
1399 #endif
1400         inp->inp_socket->so_pcb = NULL;
1401         inp->inp_socket = NULL;
1402 }
1403
1404 /*
1405  * in_pcbref() bumps the reference count on an inpcb in order to maintain
1406  * stability of an inpcb pointer despite the inpcb lock being released.  This
1407  * is used in TCP when the inpcbinfo lock needs to be acquired or upgraded,
1408  * but where the inpcb lock may already held, or when acquiring a reference
1409  * via a pcbgroup.
1410  *
1411  * in_pcbref() should be used only to provide brief memory stability, and
1412  * must always be followed by a call to INP_WLOCK() and in_pcbrele() to
1413  * garbage collect the inpcb if it has been in_pcbfree()'d from another
1414  * context.  Until in_pcbrele() has returned that the inpcb is still valid,
1415  * lock and rele are the *only* safe operations that may be performed on the
1416  * inpcb.
1417  *
1418  * While the inpcb will not be freed, releasing the inpcb lock means that the
1419  * connection's state may change, so the caller should be careful to
1420  * revalidate any cached state on reacquiring the lock.  Drop the reference
1421  * using in_pcbrele().
1422  */
1423 void
1424 in_pcbref(struct inpcb *inp)
1425 {
1426
1427         KASSERT(inp->inp_refcount > 0, ("%s: refcount 0", __func__));
1428
1429         refcount_acquire(&inp->inp_refcount);
1430 }
1431
1432 /*
1433  * Drop a refcount on an inpcb elevated using in_pcbref(); because a call to
1434  * in_pcbfree() may have been made between in_pcbref() and in_pcbrele(), we
1435  * return a flag indicating whether or not the inpcb remains valid.  If it is
1436  * valid, we return with the inpcb lock held.
1437  *
1438  * Notice that, unlike in_pcbref(), the inpcb lock must be held to drop a
1439  * reference on an inpcb.  Historically more work was done here (actually, in
1440  * in_pcbfree_internal()) but has been moved to in_pcbfree() to avoid the
1441  * need for the pcbinfo lock in in_pcbrele().  Deferring the free is entirely
1442  * about memory stability (and continued use of the write lock).
1443  */
1444 int
1445 in_pcbrele_rlocked(struct inpcb *inp)
1446 {
1447         struct inpcbinfo *pcbinfo;
1448
1449         KASSERT(inp->inp_refcount > 0, ("%s: refcount 0", __func__));
1450
1451         INP_RLOCK_ASSERT(inp);
1452
1453         if (refcount_release(&inp->inp_refcount) == 0) {
1454                 /*
1455                  * If the inpcb has been freed, let the caller know, even if
1456                  * this isn't the last reference.
1457                  */
1458                 if (inp->inp_flags2 & INP_FREED) {
1459                         INP_RUNLOCK(inp);
1460                         return (1);
1461                 }
1462                 return (0);
1463         }
1464         
1465         KASSERT(inp->inp_socket == NULL, ("%s: inp_socket != NULL", __func__));
1466 #ifdef TCPHPTS
1467         if (inp->inp_in_hpts || inp->inp_in_input) {
1468                 struct tcp_hpts_entry *hpts;
1469                 /*
1470                  * We should not be on the hpts at 
1471                  * this point in any form. we must
1472                  * get the lock to be sure.
1473                  */
1474                 hpts = tcp_hpts_lock(inp);
1475                 if (inp->inp_in_hpts)
1476                         panic("Hpts:%p inp:%p at free still on hpts",
1477                               hpts, inp);
1478                 mtx_unlock(&hpts->p_mtx);
1479                 hpts = tcp_input_lock(inp);
1480                 if (inp->inp_in_input) 
1481                         panic("Hpts:%p inp:%p at free still on input hpts",
1482                               hpts, inp);
1483                 mtx_unlock(&hpts->p_mtx);
1484         }
1485 #endif
1486         INP_RUNLOCK(inp);
1487         pcbinfo = inp->inp_pcbinfo;
1488         uma_zfree(pcbinfo->ipi_zone, inp);
1489         return (1);
1490 }
1491
1492 int
1493 in_pcbrele_wlocked(struct inpcb *inp)
1494 {
1495         struct inpcbinfo *pcbinfo;
1496
1497         KASSERT(inp->inp_refcount > 0, ("%s: refcount 0", __func__));
1498
1499         INP_WLOCK_ASSERT(inp);
1500
1501         if (refcount_release(&inp->inp_refcount) == 0) {
1502                 /*
1503                  * If the inpcb has been freed, let the caller know, even if
1504                  * this isn't the last reference.
1505                  */
1506                 if (inp->inp_flags2 & INP_FREED) {
1507                         INP_WUNLOCK(inp);
1508                         return (1);
1509                 }
1510                 return (0);
1511         }
1512
1513         KASSERT(inp->inp_socket == NULL, ("%s: inp_socket != NULL", __func__));
1514 #ifdef TCPHPTS
1515         if (inp->inp_in_hpts || inp->inp_in_input) {
1516                 struct tcp_hpts_entry *hpts;
1517                 /*
1518                  * We should not be on the hpts at 
1519                  * this point in any form. we must
1520                  * get the lock to be sure.
1521                  */
1522                 hpts = tcp_hpts_lock(inp);
1523                 if (inp->inp_in_hpts)
1524                         panic("Hpts:%p inp:%p at free still on hpts",
1525                               hpts, inp);
1526                 mtx_unlock(&hpts->p_mtx);
1527                 hpts = tcp_input_lock(inp);
1528                 if (inp->inp_in_input) 
1529                         panic("Hpts:%p inp:%p at free still on input hpts",
1530                               hpts, inp);
1531                 mtx_unlock(&hpts->p_mtx);
1532         }
1533 #endif
1534         INP_WUNLOCK(inp);
1535         pcbinfo = inp->inp_pcbinfo;
1536         uma_zfree(pcbinfo->ipi_zone, inp);
1537         return (1);
1538 }
1539
1540 /*
1541  * Temporary wrapper.
1542  */
1543 int
1544 in_pcbrele(struct inpcb *inp)
1545 {
1546
1547         return (in_pcbrele_wlocked(inp));
1548 }
1549
1550 void
1551 in_pcblist_rele_rlocked(epoch_context_t ctx)
1552 {
1553         struct in_pcblist *il;
1554         struct inpcb *inp;
1555         struct inpcbinfo *pcbinfo;
1556         int i, n;
1557
1558         il = __containerof(ctx, struct in_pcblist, il_epoch_ctx);
1559         pcbinfo = il->il_pcbinfo;
1560         n = il->il_count;
1561         INP_INFO_WLOCK(pcbinfo);
1562         for (i = 0; i < n; i++) {
1563                 inp = il->il_inp_list[i];
1564                 INP_RLOCK(inp);
1565                 if (!in_pcbrele_rlocked(inp))
1566                         INP_RUNLOCK(inp);
1567         }
1568         INP_INFO_WUNLOCK(pcbinfo);
1569         free(il, M_TEMP);
1570 }
1571
1572 static void
1573 inpcbport_free(epoch_context_t ctx)
1574 {
1575         struct inpcbport *phd;
1576
1577         phd = __containerof(ctx, struct inpcbport, phd_epoch_ctx);
1578         free(phd, M_PCB);
1579 }
1580
1581 static void
1582 in_pcbfree_deferred(epoch_context_t ctx)
1583 {
1584         struct inpcb *inp;
1585         int released __unused;
1586
1587         inp = __containerof(ctx, struct inpcb, inp_epoch_ctx);
1588
1589         INP_WLOCK(inp);
1590 #ifdef INET
1591         inp_freemoptions(inp->inp_moptions);
1592         inp->inp_moptions = NULL;
1593 #endif
1594         /* XXXRW: Do as much as possible here. */
1595 #if defined(IPSEC) || defined(IPSEC_SUPPORT)
1596         if (inp->inp_sp != NULL)
1597                 ipsec_delete_pcbpolicy(inp);
1598 #endif
1599 #ifdef INET6
1600         if (inp->inp_vflag & INP_IPV6PROTO) {
1601                 ip6_freepcbopts(inp->in6p_outputopts);
1602                 ip6_freemoptions(inp->in6p_moptions);
1603                 inp->in6p_moptions = NULL;
1604         }
1605 #endif
1606         if (inp->inp_options)
1607                 (void)m_free(inp->inp_options);
1608         inp->inp_vflag = 0;
1609         crfree(inp->inp_cred);
1610 #ifdef MAC
1611         mac_inpcb_destroy(inp);
1612 #endif
1613         released = in_pcbrele_wlocked(inp);
1614         MPASS(released);
1615 }
1616
1617 /*
1618  * Unconditionally schedule an inpcb to be freed by decrementing its
1619  * reference count, which should occur only after the inpcb has been detached
1620  * from its socket.  If another thread holds a temporary reference (acquired
1621  * using in_pcbref()) then the free is deferred until that reference is
1622  * released using in_pcbrele(), but the inpcb is still unlocked.  Almost all
1623  * work, including removal from global lists, is done in this context, where
1624  * the pcbinfo lock is held.
1625  */
1626 void
1627 in_pcbfree(struct inpcb *inp)
1628 {
1629         struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
1630
1631         KASSERT(inp->inp_socket == NULL, ("%s: inp_socket != NULL", __func__));
1632         KASSERT((inp->inp_flags2 & INP_FREED) == 0,
1633             ("%s: called twice for pcb %p", __func__, inp));
1634         if (inp->inp_flags2 & INP_FREED) {
1635                 INP_WUNLOCK(inp);
1636                 return;
1637         }
1638
1639 #ifdef INVARIANTS
1640         if (pcbinfo == &V_tcbinfo) {
1641                 INP_INFO_LOCK_ASSERT(pcbinfo);
1642         } else {
1643                 INP_INFO_WLOCK_ASSERT(pcbinfo);
1644         }
1645 #endif
1646         INP_WLOCK_ASSERT(inp);
1647         INP_LIST_WLOCK(pcbinfo);
1648         in_pcbremlists(inp);
1649         INP_LIST_WUNLOCK(pcbinfo);
1650         RO_INVALIDATE_CACHE(&inp->inp_route);
1651         /* mark as destruction in progress */
1652         inp->inp_flags2 |= INP_FREED;
1653         INP_WUNLOCK(inp);
1654         epoch_call(net_epoch_preempt, &inp->inp_epoch_ctx, in_pcbfree_deferred);
1655 }
1656
1657 /*
1658  * in_pcbdrop() removes an inpcb from hashed lists, releasing its address and
1659  * port reservation, and preventing it from being returned by inpcb lookups.
1660  *
1661  * It is used by TCP to mark an inpcb as unused and avoid future packet
1662  * delivery or event notification when a socket remains open but TCP has
1663  * closed.  This might occur as a result of a shutdown()-initiated TCP close
1664  * or a RST on the wire, and allows the port binding to be reused while still
1665  * maintaining the invariant that so_pcb always points to a valid inpcb until
1666  * in_pcbdetach().
1667  *
1668  * XXXRW: Possibly in_pcbdrop() should also prevent future notifications by
1669  * in_pcbnotifyall() and in_pcbpurgeif0()?
1670  */
1671 void
1672 in_pcbdrop(struct inpcb *inp)
1673 {
1674
1675         INP_WLOCK_ASSERT(inp);
1676
1677         /*
1678          * XXXRW: Possibly we should protect the setting of INP_DROPPED with
1679          * the hash lock...?
1680          */
1681         inp->inp_flags |= INP_DROPPED;
1682         if (inp->inp_flags & INP_INHASHLIST) {
1683                 struct inpcbport *phd = inp->inp_phd;
1684
1685                 INP_HASH_WLOCK(inp->inp_pcbinfo);
1686                 in_pcbremlbgrouphash(inp);
1687                 CK_LIST_REMOVE(inp, inp_hash);
1688                 CK_LIST_REMOVE(inp, inp_portlist);
1689                 if (CK_LIST_FIRST(&phd->phd_pcblist) == NULL) {
1690                         CK_LIST_REMOVE(phd, phd_hash);
1691                         epoch_call(net_epoch_preempt, &phd->phd_epoch_ctx, inpcbport_free);
1692                 }
1693                 INP_HASH_WUNLOCK(inp->inp_pcbinfo);
1694                 inp->inp_flags &= ~INP_INHASHLIST;
1695 #ifdef PCBGROUP
1696                 in_pcbgroup_remove(inp);
1697 #endif
1698         }
1699 }
1700
1701 #ifdef INET
1702 /*
1703  * Common routines to return the socket addresses associated with inpcbs.
1704  */
1705 struct sockaddr *
1706 in_sockaddr(in_port_t port, struct in_addr *addr_p)
1707 {
1708         struct sockaddr_in *sin;
1709
1710         sin = malloc(sizeof *sin, M_SONAME,
1711                 M_WAITOK | M_ZERO);
1712         sin->sin_family = AF_INET;
1713         sin->sin_len = sizeof(*sin);
1714         sin->sin_addr = *addr_p;
1715         sin->sin_port = port;
1716
1717         return (struct sockaddr *)sin;
1718 }
1719
1720 int
1721 in_getsockaddr(struct socket *so, struct sockaddr **nam)
1722 {
1723         struct inpcb *inp;
1724         struct in_addr addr;
1725         in_port_t port;
1726
1727         inp = sotoinpcb(so);
1728         KASSERT(inp != NULL, ("in_getsockaddr: inp == NULL"));
1729
1730         INP_RLOCK(inp);
1731         port = inp->inp_lport;
1732         addr = inp->inp_laddr;
1733         INP_RUNLOCK(inp);
1734
1735         *nam = in_sockaddr(port, &addr);
1736         return 0;
1737 }
1738
1739 int
1740 in_getpeeraddr(struct socket *so, struct sockaddr **nam)
1741 {
1742         struct inpcb *inp;
1743         struct in_addr addr;
1744         in_port_t port;
1745
1746         inp = sotoinpcb(so);
1747         KASSERT(inp != NULL, ("in_getpeeraddr: inp == NULL"));
1748
1749         INP_RLOCK(inp);
1750         port = inp->inp_fport;
1751         addr = inp->inp_faddr;
1752         INP_RUNLOCK(inp);
1753
1754         *nam = in_sockaddr(port, &addr);
1755         return 0;
1756 }
1757
1758 void
1759 in_pcbnotifyall(struct inpcbinfo *pcbinfo, struct in_addr faddr, int errno,
1760     struct inpcb *(*notify)(struct inpcb *, int))
1761 {
1762         struct inpcb *inp, *inp_temp;
1763
1764         INP_INFO_WLOCK(pcbinfo);
1765         CK_LIST_FOREACH_SAFE(inp, pcbinfo->ipi_listhead, inp_list, inp_temp) {
1766                 INP_WLOCK(inp);
1767 #ifdef INET6
1768                 if ((inp->inp_vflag & INP_IPV4) == 0) {
1769                         INP_WUNLOCK(inp);
1770                         continue;
1771                 }
1772 #endif
1773                 if (inp->inp_faddr.s_addr != faddr.s_addr ||
1774                     inp->inp_socket == NULL) {
1775                         INP_WUNLOCK(inp);
1776                         continue;
1777                 }
1778                 if ((*notify)(inp, errno))
1779                         INP_WUNLOCK(inp);
1780         }
1781         INP_INFO_WUNLOCK(pcbinfo);
1782 }
1783
1784 void
1785 in_pcbpurgeif0(struct inpcbinfo *pcbinfo, struct ifnet *ifp)
1786 {
1787         struct inpcb *inp;
1788         struct ip_moptions *imo;
1789         int i, gap;
1790
1791         INP_INFO_WLOCK(pcbinfo);
1792         CK_LIST_FOREACH(inp, pcbinfo->ipi_listhead, inp_list) {
1793                 INP_WLOCK(inp);
1794                 imo = inp->inp_moptions;
1795                 if ((inp->inp_vflag & INP_IPV4) &&
1796                     imo != NULL) {
1797                         /*
1798                          * Unselect the outgoing interface if it is being
1799                          * detached.
1800                          */
1801                         if (imo->imo_multicast_ifp == ifp)
1802                                 imo->imo_multicast_ifp = NULL;
1803
1804                         /*
1805                          * Drop multicast group membership if we joined
1806                          * through the interface being detached.
1807                          *
1808                          * XXX This can all be deferred to an epoch_call
1809                          */
1810                         for (i = 0, gap = 0; i < imo->imo_num_memberships;
1811                             i++) {
1812                                 if (imo->imo_membership[i]->inm_ifp == ifp) {
1813                                         IN_MULTI_LOCK_ASSERT();
1814                                         in_leavegroup_locked(imo->imo_membership[i], NULL);
1815                                         gap++;
1816                                 } else if (gap != 0)
1817                                         imo->imo_membership[i - gap] =
1818                                             imo->imo_membership[i];
1819                         }
1820                         imo->imo_num_memberships -= gap;
1821                 }
1822                 INP_WUNLOCK(inp);
1823         }
1824         INP_INFO_WUNLOCK(pcbinfo);
1825 }
1826
1827 /*
1828  * Lookup a PCB based on the local address and port.  Caller must hold the
1829  * hash lock.  No inpcb locks or references are acquired.
1830  */
1831 #define INP_LOOKUP_MAPPED_PCB_COST      3
1832 struct inpcb *
1833 in_pcblookup_local(struct inpcbinfo *pcbinfo, struct in_addr laddr,
1834     u_short lport, int lookupflags, struct ucred *cred)
1835 {
1836         struct inpcb *inp;
1837 #ifdef INET6
1838         int matchwild = 3 + INP_LOOKUP_MAPPED_PCB_COST;
1839 #else
1840         int matchwild = 3;
1841 #endif
1842         int wildcard;
1843
1844         KASSERT((lookupflags & ~(INPLOOKUP_WILDCARD)) == 0,
1845             ("%s: invalid lookup flags %d", __func__, lookupflags));
1846
1847         INP_HASH_LOCK_ASSERT(pcbinfo);
1848
1849         if ((lookupflags & INPLOOKUP_WILDCARD) == 0) {
1850                 struct inpcbhead *head;
1851                 /*
1852                  * Look for an unconnected (wildcard foreign addr) PCB that
1853                  * matches the local address and port we're looking for.
1854                  */
1855                 head = &pcbinfo->ipi_hashbase[INP_PCBHASH(INADDR_ANY, lport,
1856                     0, pcbinfo->ipi_hashmask)];
1857                 CK_LIST_FOREACH(inp, head, inp_hash) {
1858 #ifdef INET6
1859                         /* XXX inp locking */
1860                         if ((inp->inp_vflag & INP_IPV4) == 0)
1861                                 continue;
1862 #endif
1863                         if (inp->inp_faddr.s_addr == INADDR_ANY &&
1864                             inp->inp_laddr.s_addr == laddr.s_addr &&
1865                             inp->inp_lport == lport) {
1866                                 /*
1867                                  * Found?
1868                                  */
1869                                 if (cred == NULL ||
1870                                     prison_equal_ip4(cred->cr_prison,
1871                                         inp->inp_cred->cr_prison))
1872                                         return (inp);
1873                         }
1874                 }
1875                 /*
1876                  * Not found.
1877                  */
1878                 return (NULL);
1879         } else {
1880                 struct inpcbporthead *porthash;
1881                 struct inpcbport *phd;
1882                 struct inpcb *match = NULL;
1883                 /*
1884                  * Best fit PCB lookup.
1885                  *
1886                  * First see if this local port is in use by looking on the
1887                  * port hash list.
1888                  */
1889                 porthash = &pcbinfo->ipi_porthashbase[INP_PCBPORTHASH(lport,
1890                     pcbinfo->ipi_porthashmask)];
1891                 CK_LIST_FOREACH(phd, porthash, phd_hash) {
1892                         if (phd->phd_port == lport)
1893                                 break;
1894                 }
1895                 if (phd != NULL) {
1896                         /*
1897                          * Port is in use by one or more PCBs. Look for best
1898                          * fit.
1899                          */
1900                         CK_LIST_FOREACH(inp, &phd->phd_pcblist, inp_portlist) {
1901                                 wildcard = 0;
1902                                 if (cred != NULL &&
1903                                     !prison_equal_ip4(inp->inp_cred->cr_prison,
1904                                         cred->cr_prison))
1905                                         continue;
1906 #ifdef INET6
1907                                 /* XXX inp locking */
1908                                 if ((inp->inp_vflag & INP_IPV4) == 0)
1909                                         continue;
1910                                 /*
1911                                  * We never select the PCB that has
1912                                  * INP_IPV6 flag and is bound to :: if
1913                                  * we have another PCB which is bound
1914                                  * to 0.0.0.0.  If a PCB has the
1915                                  * INP_IPV6 flag, then we set its cost
1916                                  * higher than IPv4 only PCBs.
1917                                  *
1918                                  * Note that the case only happens
1919                                  * when a socket is bound to ::, under
1920                                  * the condition that the use of the
1921                                  * mapped address is allowed.
1922                                  */
1923                                 if ((inp->inp_vflag & INP_IPV6) != 0)
1924                                         wildcard += INP_LOOKUP_MAPPED_PCB_COST;
1925 #endif
1926                                 if (inp->inp_faddr.s_addr != INADDR_ANY)
1927                                         wildcard++;
1928                                 if (inp->inp_laddr.s_addr != INADDR_ANY) {
1929                                         if (laddr.s_addr == INADDR_ANY)
1930                                                 wildcard++;
1931                                         else if (inp->inp_laddr.s_addr != laddr.s_addr)
1932                                                 continue;
1933                                 } else {
1934                                         if (laddr.s_addr != INADDR_ANY)
1935                                                 wildcard++;
1936                                 }
1937                                 if (wildcard < matchwild) {
1938                                         match = inp;
1939                                         matchwild = wildcard;
1940                                         if (matchwild == 0)
1941                                                 break;
1942                                 }
1943                         }
1944                 }
1945                 return (match);
1946         }
1947 }
1948 #undef INP_LOOKUP_MAPPED_PCB_COST
1949
1950 static struct inpcb *
1951 in_pcblookup_lbgroup(const struct inpcbinfo *pcbinfo,
1952   const struct in_addr *laddr, uint16_t lport, const struct in_addr *faddr,
1953   uint16_t fport, int lookupflags)
1954 {
1955         struct inpcb *local_wild = NULL;
1956         const struct inpcblbgrouphead *hdr;
1957         struct inpcblbgroup *grp;
1958         struct inpcblbgroup *grp_local_wild;
1959
1960         INP_HASH_LOCK_ASSERT(pcbinfo);
1961
1962         hdr = &pcbinfo->ipi_lbgrouphashbase[
1963                   INP_PCBLBGROUP_PORTHASH(lport, pcbinfo->ipi_lbgrouphashmask)];
1964
1965         /*
1966          * Order of socket selection:
1967          * 1. non-wild.
1968          * 2. wild (if lookupflags contains INPLOOKUP_WILDCARD).
1969          *
1970          * NOTE:
1971          * - Load balanced group does not contain jailed sockets
1972          * - Load balanced group does not contain IPv4 mapped INET6 wild sockets
1973          */
1974         LIST_FOREACH(grp, hdr, il_list) {
1975 #ifdef INET6
1976                 if (!(grp->il_vflag & INP_IPV4))
1977                         continue;
1978 #endif
1979
1980                 if (grp->il_lport == lport) {
1981
1982                         uint32_t idx = 0;
1983                         int pkt_hash = INP_PCBLBGROUP_PKTHASH(faddr->s_addr,
1984                             lport, fport);
1985
1986                         idx = pkt_hash % grp->il_inpcnt;
1987
1988                         if (grp->il_laddr.s_addr == laddr->s_addr) {
1989                                 return (grp->il_inp[idx]);
1990                         } else {
1991                                 if (grp->il_laddr.s_addr == INADDR_ANY &&
1992                                         (lookupflags & INPLOOKUP_WILDCARD)) {
1993                                         local_wild = grp->il_inp[idx];
1994                                         grp_local_wild = grp;
1995                                 }
1996                         }
1997                 }
1998         }
1999         if (local_wild != NULL) {
2000                 return (local_wild);
2001         }
2002         return (NULL);
2003 }
2004
2005 #ifdef PCBGROUP
2006 /*
2007  * Lookup PCB in hash list, using pcbgroup tables.
2008  */
2009 static struct inpcb *
2010 in_pcblookup_group(struct inpcbinfo *pcbinfo, struct inpcbgroup *pcbgroup,
2011     struct in_addr faddr, u_int fport_arg, struct in_addr laddr,
2012     u_int lport_arg, int lookupflags, struct ifnet *ifp)
2013 {
2014         struct inpcbhead *head;
2015         struct inpcb *inp, *tmpinp;
2016         u_short fport = fport_arg, lport = lport_arg;
2017         bool locked;
2018
2019         /*
2020          * First look for an exact match.
2021          */
2022         tmpinp = NULL;
2023         INP_GROUP_LOCK(pcbgroup);
2024         head = &pcbgroup->ipg_hashbase[INP_PCBHASH(faddr.s_addr, lport, fport,
2025             pcbgroup->ipg_hashmask)];
2026         CK_LIST_FOREACH(inp, head, inp_pcbgrouphash) {
2027 #ifdef INET6
2028                 /* XXX inp locking */
2029                 if ((inp->inp_vflag & INP_IPV4) == 0)
2030                         continue;
2031 #endif
2032                 if (inp->inp_faddr.s_addr == faddr.s_addr &&
2033                     inp->inp_laddr.s_addr == laddr.s_addr &&
2034                     inp->inp_fport == fport &&
2035                     inp->inp_lport == lport) {
2036                         /*
2037                          * XXX We should be able to directly return
2038                          * the inp here, without any checks.
2039                          * Well unless both bound with SO_REUSEPORT?
2040                          */
2041                         if (prison_flag(inp->inp_cred, PR_IP4))
2042                                 goto found;
2043                         if (tmpinp == NULL)
2044                                 tmpinp = inp;
2045                 }
2046         }
2047         if (tmpinp != NULL) {
2048                 inp = tmpinp;
2049                 goto found;
2050         }
2051
2052 #ifdef  RSS
2053         /*
2054          * For incoming connections, we may wish to do a wildcard
2055          * match for an RSS-local socket.
2056          */
2057         if ((lookupflags & INPLOOKUP_WILDCARD) != 0) {
2058                 struct inpcb *local_wild = NULL, *local_exact = NULL;
2059 #ifdef INET6
2060                 struct inpcb *local_wild_mapped = NULL;
2061 #endif
2062                 struct inpcb *jail_wild = NULL;
2063                 struct inpcbhead *head;
2064                 int injail;
2065
2066                 /*
2067                  * Order of socket selection - we always prefer jails.
2068                  *      1. jailed, non-wild.
2069                  *      2. jailed, wild.
2070                  *      3. non-jailed, non-wild.
2071                  *      4. non-jailed, wild.
2072                  */
2073
2074                 head = &pcbgroup->ipg_hashbase[INP_PCBHASH(INADDR_ANY,
2075                     lport, 0, pcbgroup->ipg_hashmask)];
2076                 CK_LIST_FOREACH(inp, head, inp_pcbgrouphash) {
2077 #ifdef INET6
2078                         /* XXX inp locking */
2079                         if ((inp->inp_vflag & INP_IPV4) == 0)
2080                                 continue;
2081 #endif
2082                         if (inp->inp_faddr.s_addr != INADDR_ANY ||
2083                             inp->inp_lport != lport)
2084                                 continue;
2085
2086                         injail = prison_flag(inp->inp_cred, PR_IP4);
2087                         if (injail) {
2088                                 if (prison_check_ip4(inp->inp_cred,
2089                                     &laddr) != 0)
2090                                         continue;
2091                         } else {
2092                                 if (local_exact != NULL)
2093                                         continue;
2094                         }
2095
2096                         if (inp->inp_laddr.s_addr == laddr.s_addr) {
2097                                 if (injail)
2098                                         goto found;
2099                                 else
2100                                         local_exact = inp;
2101                         } else if (inp->inp_laddr.s_addr == INADDR_ANY) {
2102 #ifdef INET6
2103                                 /* XXX inp locking, NULL check */
2104                                 if (inp->inp_vflag & INP_IPV6PROTO)
2105                                         local_wild_mapped = inp;
2106                                 else
2107 #endif
2108                                         if (injail)
2109                                                 jail_wild = inp;
2110                                         else
2111                                                 local_wild = inp;
2112                         }
2113                 } /* LIST_FOREACH */
2114
2115                 inp = jail_wild;
2116                 if (inp == NULL)
2117                         inp = local_exact;
2118                 if (inp == NULL)
2119                         inp = local_wild;
2120 #ifdef INET6
2121                 if (inp == NULL)
2122                         inp = local_wild_mapped;
2123 #endif
2124                 if (inp != NULL)
2125                         goto found;
2126         }
2127 #endif
2128
2129         /*
2130          * Then look for a wildcard match, if requested.
2131          */
2132         if ((lookupflags & INPLOOKUP_WILDCARD) != 0) {
2133                 struct inpcb *local_wild = NULL, *local_exact = NULL;
2134 #ifdef INET6
2135                 struct inpcb *local_wild_mapped = NULL;
2136 #endif
2137                 struct inpcb *jail_wild = NULL;
2138                 struct inpcbhead *head;
2139                 int injail;
2140
2141                 /*
2142                  * Order of socket selection - we always prefer jails.
2143                  *      1. jailed, non-wild.
2144                  *      2. jailed, wild.
2145                  *      3. non-jailed, non-wild.
2146                  *      4. non-jailed, wild.
2147                  */
2148                 head = &pcbinfo->ipi_wildbase[INP_PCBHASH(INADDR_ANY, lport,
2149                     0, pcbinfo->ipi_wildmask)];
2150                 CK_LIST_FOREACH(inp, head, inp_pcbgroup_wild) {
2151 #ifdef INET6
2152                         /* XXX inp locking */
2153                         if ((inp->inp_vflag & INP_IPV4) == 0)
2154                                 continue;
2155 #endif
2156                         if (inp->inp_faddr.s_addr != INADDR_ANY ||
2157                             inp->inp_lport != lport)
2158                                 continue;
2159
2160                         injail = prison_flag(inp->inp_cred, PR_IP4);
2161                         if (injail) {
2162                                 if (prison_check_ip4(inp->inp_cred,
2163                                     &laddr) != 0)
2164                                         continue;
2165                         } else {
2166                                 if (local_exact != NULL)
2167                                         continue;
2168                         }
2169
2170                         if (inp->inp_laddr.s_addr == laddr.s_addr) {
2171                                 if (injail)
2172                                         goto found;
2173                                 else
2174                                         local_exact = inp;
2175                         } else if (inp->inp_laddr.s_addr == INADDR_ANY) {
2176 #ifdef INET6
2177                                 /* XXX inp locking, NULL check */
2178                                 if (inp->inp_vflag & INP_IPV6PROTO)
2179                                         local_wild_mapped = inp;
2180                                 else
2181 #endif
2182                                         if (injail)
2183                                                 jail_wild = inp;
2184                                         else
2185                                                 local_wild = inp;
2186                         }
2187                 } /* LIST_FOREACH */
2188                 inp = jail_wild;
2189                 if (inp == NULL)
2190                         inp = local_exact;
2191                 if (inp == NULL)
2192                         inp = local_wild;
2193 #ifdef INET6
2194                 if (inp == NULL)
2195                         inp = local_wild_mapped;
2196 #endif
2197                 if (inp != NULL)
2198                         goto found;
2199         } /* if (lookupflags & INPLOOKUP_WILDCARD) */
2200         INP_GROUP_UNLOCK(pcbgroup);
2201         return (NULL);
2202
2203 found:
2204         if (lookupflags & INPLOOKUP_WLOCKPCB)
2205                 locked = INP_TRY_WLOCK(inp);
2206         else if (lookupflags & INPLOOKUP_RLOCKPCB)
2207                 locked = INP_TRY_RLOCK(inp);
2208         else
2209                 panic("%s: locking bug", __func__);
2210         if (__predict_false(locked && (inp->inp_flags2 & INP_FREED))) {
2211                 if (lookupflags & INPLOOKUP_WLOCKPCB)
2212                         INP_WUNLOCK(inp);
2213                 else
2214                         INP_RUNLOCK(inp);
2215                 return (NULL);
2216         } else if (!locked)
2217                 in_pcbref(inp);
2218         INP_GROUP_UNLOCK(pcbgroup);
2219         if (!locked) {
2220                 if (lookupflags & INPLOOKUP_WLOCKPCB) {
2221                         INP_WLOCK(inp);
2222                         if (in_pcbrele_wlocked(inp))
2223                                 return (NULL);
2224                 } else {
2225                         INP_RLOCK(inp);
2226                         if (in_pcbrele_rlocked(inp))
2227                                 return (NULL);
2228                 }
2229         }
2230 #ifdef INVARIANTS
2231         if (lookupflags & INPLOOKUP_WLOCKPCB)
2232                 INP_WLOCK_ASSERT(inp);
2233         else
2234                 INP_RLOCK_ASSERT(inp);
2235 #endif
2236         return (inp);
2237 }
2238 #endif /* PCBGROUP */
2239
2240 /*
2241  * Lookup PCB in hash list, using pcbinfo tables.  This variation assumes
2242  * that the caller has locked the hash list, and will not perform any further
2243  * locking or reference operations on either the hash list or the connection.
2244  */
2245 static struct inpcb *
2246 in_pcblookup_hash_locked(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2247     u_int fport_arg, struct in_addr laddr, u_int lport_arg, int lookupflags,
2248     struct ifnet *ifp)
2249 {
2250         struct inpcbhead *head;
2251         struct inpcb *inp, *tmpinp;
2252         u_short fport = fport_arg, lport = lport_arg;
2253
2254         KASSERT((lookupflags & ~(INPLOOKUP_WILDCARD)) == 0,
2255             ("%s: invalid lookup flags %d", __func__, lookupflags));
2256
2257         INP_HASH_LOCK_ASSERT(pcbinfo);
2258
2259         /*
2260          * First look for an exact match.
2261          */
2262         tmpinp = NULL;
2263         head = &pcbinfo->ipi_hashbase[INP_PCBHASH(faddr.s_addr, lport, fport,
2264             pcbinfo->ipi_hashmask)];
2265         CK_LIST_FOREACH(inp, head, inp_hash) {
2266 #ifdef INET6
2267                 /* XXX inp locking */
2268                 if ((inp->inp_vflag & INP_IPV4) == 0)
2269                         continue;
2270 #endif
2271                 if (inp->inp_faddr.s_addr == faddr.s_addr &&
2272                     inp->inp_laddr.s_addr == laddr.s_addr &&
2273                     inp->inp_fport == fport &&
2274                     inp->inp_lport == lport) {
2275                         /*
2276                          * XXX We should be able to directly return
2277                          * the inp here, without any checks.
2278                          * Well unless both bound with SO_REUSEPORT?
2279                          */
2280                         if (prison_flag(inp->inp_cred, PR_IP4))
2281                                 return (inp);
2282                         if (tmpinp == NULL)
2283                                 tmpinp = inp;
2284                 }
2285         }
2286         if (tmpinp != NULL)
2287                 return (tmpinp);
2288
2289         /*
2290          * Then look in lb group (for wildcard match).
2291          */
2292         if (pcbinfo->ipi_lbgrouphashbase != NULL &&
2293                 (lookupflags & INPLOOKUP_WILDCARD)) {
2294                 inp = in_pcblookup_lbgroup(pcbinfo, &laddr, lport, &faddr,
2295                     fport, lookupflags);
2296                 if (inp != NULL) {
2297                         return (inp);
2298                 }
2299         }
2300
2301         /*
2302          * Then look for a wildcard match, if requested.
2303          */
2304         if ((lookupflags & INPLOOKUP_WILDCARD) != 0) {
2305                 struct inpcb *local_wild = NULL, *local_exact = NULL;
2306 #ifdef INET6
2307                 struct inpcb *local_wild_mapped = NULL;
2308 #endif
2309                 struct inpcb *jail_wild = NULL;
2310                 int injail;
2311
2312                 /*
2313                  * Order of socket selection - we always prefer jails.
2314                  *      1. jailed, non-wild.
2315                  *      2. jailed, wild.
2316                  *      3. non-jailed, non-wild.
2317                  *      4. non-jailed, wild.
2318                  */
2319
2320                 head = &pcbinfo->ipi_hashbase[INP_PCBHASH(INADDR_ANY, lport,
2321                     0, pcbinfo->ipi_hashmask)];
2322                 CK_LIST_FOREACH(inp, head, inp_hash) {
2323 #ifdef INET6
2324                         /* XXX inp locking */
2325                         if ((inp->inp_vflag & INP_IPV4) == 0)
2326                                 continue;
2327 #endif
2328                         if (inp->inp_faddr.s_addr != INADDR_ANY ||
2329                             inp->inp_lport != lport)
2330                                 continue;
2331
2332                         injail = prison_flag(inp->inp_cred, PR_IP4);
2333                         if (injail) {
2334                                 if (prison_check_ip4(inp->inp_cred,
2335                                     &laddr) != 0)
2336                                         continue;
2337                         } else {
2338                                 if (local_exact != NULL)
2339                                         continue;
2340                         }
2341
2342                         if (inp->inp_laddr.s_addr == laddr.s_addr) {
2343                                 if (injail)
2344                                         return (inp);
2345                                 else
2346                                         local_exact = inp;
2347                         } else if (inp->inp_laddr.s_addr == INADDR_ANY) {
2348 #ifdef INET6
2349                                 /* XXX inp locking, NULL check */
2350                                 if (inp->inp_vflag & INP_IPV6PROTO)
2351                                         local_wild_mapped = inp;
2352                                 else
2353 #endif
2354                                         if (injail)
2355                                                 jail_wild = inp;
2356                                         else
2357                                                 local_wild = inp;
2358                         }
2359                 } /* LIST_FOREACH */
2360                 if (jail_wild != NULL)
2361                         return (jail_wild);
2362                 if (local_exact != NULL)
2363                         return (local_exact);
2364                 if (local_wild != NULL)
2365                         return (local_wild);
2366 #ifdef INET6
2367                 if (local_wild_mapped != NULL)
2368                         return (local_wild_mapped);
2369 #endif
2370         } /* if ((lookupflags & INPLOOKUP_WILDCARD) != 0) */
2371
2372         return (NULL);
2373 }
2374
2375 /*
2376  * Lookup PCB in hash list, using pcbinfo tables.  This variation locks the
2377  * hash list lock, and will return the inpcb locked (i.e., requires
2378  * INPLOOKUP_LOCKPCB).
2379  */
2380 static struct inpcb *
2381 in_pcblookup_hash(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2382     u_int fport, struct in_addr laddr, u_int lport, int lookupflags,
2383     struct ifnet *ifp)
2384 {
2385         struct inpcb *inp;
2386
2387         INP_HASH_RLOCK(pcbinfo);
2388         inp = in_pcblookup_hash_locked(pcbinfo, faddr, fport, laddr, lport,
2389             (lookupflags & ~(INPLOOKUP_RLOCKPCB | INPLOOKUP_WLOCKPCB)), ifp);
2390         if (inp != NULL) {
2391                 if (lookupflags & INPLOOKUP_WLOCKPCB) {
2392                         INP_WLOCK(inp);
2393                         if (__predict_false(inp->inp_flags2 & INP_FREED)) {
2394                                 INP_WUNLOCK(inp);
2395                                 inp = NULL;
2396                         }
2397                 } else if (lookupflags & INPLOOKUP_RLOCKPCB) {
2398                         INP_RLOCK(inp);
2399                         if (__predict_false(inp->inp_flags2 & INP_FREED)) {
2400                                 INP_RUNLOCK(inp);
2401                                 inp = NULL;
2402                         }
2403                 } else
2404                         panic("%s: locking bug", __func__);
2405 #ifdef INVARIANTS
2406                 if (inp != NULL) {
2407                         if (lookupflags & INPLOOKUP_WLOCKPCB)
2408                                 INP_WLOCK_ASSERT(inp);
2409                         else
2410                                 INP_RLOCK_ASSERT(inp);
2411                 }
2412 #endif
2413         }
2414         INP_HASH_RUNLOCK(pcbinfo);
2415         return (inp);
2416 }
2417
2418 /*
2419  * Public inpcb lookup routines, accepting a 4-tuple, and optionally, an mbuf
2420  * from which a pre-calculated hash value may be extracted.
2421  *
2422  * Possibly more of this logic should be in in_pcbgroup.c.
2423  */
2424 struct inpcb *
2425 in_pcblookup(struct inpcbinfo *pcbinfo, struct in_addr faddr, u_int fport,
2426     struct in_addr laddr, u_int lport, int lookupflags, struct ifnet *ifp)
2427 {
2428 #if defined(PCBGROUP) && !defined(RSS)
2429         struct inpcbgroup *pcbgroup;
2430 #endif
2431
2432         KASSERT((lookupflags & ~INPLOOKUP_MASK) == 0,
2433             ("%s: invalid lookup flags %d", __func__, lookupflags));
2434         KASSERT((lookupflags & (INPLOOKUP_RLOCKPCB | INPLOOKUP_WLOCKPCB)) != 0,
2435             ("%s: LOCKPCB not set", __func__));
2436
2437         /*
2438          * When not using RSS, use connection groups in preference to the
2439          * reservation table when looking up 4-tuples.  When using RSS, just
2440          * use the reservation table, due to the cost of the Toeplitz hash
2441          * in software.
2442          *
2443          * XXXRW: This policy belongs in the pcbgroup code, as in principle
2444          * we could be doing RSS with a non-Toeplitz hash that is affordable
2445          * in software.
2446          */
2447 #if defined(PCBGROUP) && !defined(RSS)
2448         if (in_pcbgroup_enabled(pcbinfo)) {
2449                 pcbgroup = in_pcbgroup_bytuple(pcbinfo, laddr, lport, faddr,
2450                     fport);
2451                 return (in_pcblookup_group(pcbinfo, pcbgroup, faddr, fport,
2452                     laddr, lport, lookupflags, ifp));
2453         }
2454 #endif
2455         return (in_pcblookup_hash(pcbinfo, faddr, fport, laddr, lport,
2456             lookupflags, ifp));
2457 }
2458
2459 struct inpcb *
2460 in_pcblookup_mbuf(struct inpcbinfo *pcbinfo, struct in_addr faddr,
2461     u_int fport, struct in_addr laddr, u_int lport, int lookupflags,
2462     struct ifnet *ifp, struct mbuf *m)
2463 {
2464 #ifdef PCBGROUP
2465         struct inpcbgroup *pcbgroup;
2466 #endif
2467
2468         KASSERT((lookupflags & ~INPLOOKUP_MASK) == 0,
2469             ("%s: invalid lookup flags %d", __func__, lookupflags));
2470         KASSERT((lookupflags & (INPLOOKUP_RLOCKPCB | INPLOOKUP_WLOCKPCB)) != 0,
2471             ("%s: LOCKPCB not set", __func__));
2472
2473 #ifdef PCBGROUP
2474         /*
2475          * If we can use a hardware-generated hash to look up the connection
2476          * group, use that connection group to find the inpcb.  Otherwise
2477          * fall back on a software hash -- or the reservation table if we're
2478          * using RSS.
2479          *
2480          * XXXRW: As above, that policy belongs in the pcbgroup code.
2481          */
2482         if (in_pcbgroup_enabled(pcbinfo) &&
2483             !(M_HASHTYPE_TEST(m, M_HASHTYPE_NONE))) {
2484                 pcbgroup = in_pcbgroup_byhash(pcbinfo, M_HASHTYPE_GET(m),
2485                     m->m_pkthdr.flowid);
2486                 if (pcbgroup != NULL)
2487                         return (in_pcblookup_group(pcbinfo, pcbgroup, faddr,
2488                             fport, laddr, lport, lookupflags, ifp));
2489 #ifndef RSS
2490                 pcbgroup = in_pcbgroup_bytuple(pcbinfo, laddr, lport, faddr,
2491                     fport);
2492                 return (in_pcblookup_group(pcbinfo, pcbgroup, faddr, fport,
2493                     laddr, lport, lookupflags, ifp));
2494 #endif
2495         }
2496 #endif
2497         return (in_pcblookup_hash(pcbinfo, faddr, fport, laddr, lport,
2498             lookupflags, ifp));
2499 }
2500 #endif /* INET */
2501
2502 /*
2503  * Insert PCB onto various hash lists.
2504  */
2505 static int
2506 in_pcbinshash_internal(struct inpcb *inp, int do_pcbgroup_update)
2507 {
2508         struct inpcbhead *pcbhash;
2509         struct inpcbporthead *pcbporthash;
2510         struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
2511         struct inpcbport *phd;
2512         u_int32_t hashkey_faddr;
2513         int so_options;
2514
2515         INP_WLOCK_ASSERT(inp);
2516         INP_HASH_WLOCK_ASSERT(pcbinfo);
2517
2518         KASSERT((inp->inp_flags & INP_INHASHLIST) == 0,
2519             ("in_pcbinshash: INP_INHASHLIST"));
2520
2521 #ifdef INET6
2522         if (inp->inp_vflag & INP_IPV6)
2523                 hashkey_faddr = INP6_PCBHASHKEY(&inp->in6p_faddr);
2524         else
2525 #endif
2526         hashkey_faddr = inp->inp_faddr.s_addr;
2527
2528         pcbhash = &pcbinfo->ipi_hashbase[INP_PCBHASH(hashkey_faddr,
2529                  inp->inp_lport, inp->inp_fport, pcbinfo->ipi_hashmask)];
2530
2531         pcbporthash = &pcbinfo->ipi_porthashbase[
2532             INP_PCBPORTHASH(inp->inp_lport, pcbinfo->ipi_porthashmask)];
2533
2534         /*
2535          * Add entry to load balance group.
2536          * Only do this if SO_REUSEPORT_LB is set.
2537          */
2538         so_options = inp_so_options(inp);
2539         if (so_options & SO_REUSEPORT_LB) {
2540                 int ret = in_pcbinslbgrouphash(inp);
2541                 if (ret) {
2542                         /* pcb lb group malloc fail (ret=ENOBUFS). */
2543                         return (ret);
2544                 }
2545         }
2546
2547         /*
2548          * Go through port list and look for a head for this lport.
2549          */
2550         CK_LIST_FOREACH(phd, pcbporthash, phd_hash) {
2551                 if (phd->phd_port == inp->inp_lport)
2552                         break;
2553         }
2554         /*
2555          * If none exists, malloc one and tack it on.
2556          */
2557         if (phd == NULL) {
2558                 phd = malloc(sizeof(struct inpcbport), M_PCB, M_NOWAIT);
2559                 if (phd == NULL) {
2560                         return (ENOBUFS); /* XXX */
2561                 }
2562                 bzero(&phd->phd_epoch_ctx, sizeof(struct epoch_context));
2563                 phd->phd_port = inp->inp_lport;
2564                 CK_LIST_INIT(&phd->phd_pcblist);
2565                 CK_LIST_INSERT_HEAD(pcbporthash, phd, phd_hash);
2566         }
2567         inp->inp_phd = phd;
2568         CK_LIST_INSERT_HEAD(&phd->phd_pcblist, inp, inp_portlist);
2569         CK_LIST_INSERT_HEAD(pcbhash, inp, inp_hash);
2570         inp->inp_flags |= INP_INHASHLIST;
2571 #ifdef PCBGROUP
2572         if (do_pcbgroup_update)
2573                 in_pcbgroup_update(inp);
2574 #endif
2575         return (0);
2576 }
2577
2578 /*
2579  * For now, there are two public interfaces to insert an inpcb into the hash
2580  * lists -- one that does update pcbgroups, and one that doesn't.  The latter
2581  * is used only in the TCP syncache, where in_pcbinshash is called before the
2582  * full 4-tuple is set for the inpcb, and we don't want to install in the
2583  * pcbgroup until later.
2584  *
2585  * XXXRW: This seems like a misfeature.  in_pcbinshash should always update
2586  * connection groups, and partially initialised inpcbs should not be exposed
2587  * to either reservation hash tables or pcbgroups.
2588  */
2589 int
2590 in_pcbinshash(struct inpcb *inp)
2591 {
2592
2593         return (in_pcbinshash_internal(inp, 1));
2594 }
2595
2596 int
2597 in_pcbinshash_nopcbgroup(struct inpcb *inp)
2598 {
2599
2600         return (in_pcbinshash_internal(inp, 0));
2601 }
2602
2603 /*
2604  * Move PCB to the proper hash bucket when { faddr, fport } have  been
2605  * changed. NOTE: This does not handle the case of the lport changing (the
2606  * hashed port list would have to be updated as well), so the lport must
2607  * not change after in_pcbinshash() has been called.
2608  */
2609 void
2610 in_pcbrehash_mbuf(struct inpcb *inp, struct mbuf *m)
2611 {
2612         struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
2613         struct inpcbhead *head;
2614         u_int32_t hashkey_faddr;
2615
2616         INP_WLOCK_ASSERT(inp);
2617         INP_HASH_WLOCK_ASSERT(pcbinfo);
2618
2619         KASSERT(inp->inp_flags & INP_INHASHLIST,
2620             ("in_pcbrehash: !INP_INHASHLIST"));
2621
2622 #ifdef INET6
2623         if (inp->inp_vflag & INP_IPV6)
2624                 hashkey_faddr = INP6_PCBHASHKEY(&inp->in6p_faddr);
2625         else
2626 #endif
2627         hashkey_faddr = inp->inp_faddr.s_addr;
2628
2629         head = &pcbinfo->ipi_hashbase[INP_PCBHASH(hashkey_faddr,
2630                 inp->inp_lport, inp->inp_fport, pcbinfo->ipi_hashmask)];
2631
2632         CK_LIST_REMOVE(inp, inp_hash);
2633         CK_LIST_INSERT_HEAD(head, inp, inp_hash);
2634
2635 #ifdef PCBGROUP
2636         if (m != NULL)
2637                 in_pcbgroup_update_mbuf(inp, m);
2638         else
2639                 in_pcbgroup_update(inp);
2640 #endif
2641 }
2642
2643 void
2644 in_pcbrehash(struct inpcb *inp)
2645 {
2646
2647         in_pcbrehash_mbuf(inp, NULL);
2648 }
2649
2650 /*
2651  * Remove PCB from various lists.
2652  */
2653 static void
2654 in_pcbremlists(struct inpcb *inp)
2655 {
2656         struct inpcbinfo *pcbinfo = inp->inp_pcbinfo;
2657
2658 #ifdef INVARIANTS
2659         if (pcbinfo == &V_tcbinfo) {
2660                 INP_INFO_RLOCK_ASSERT(pcbinfo);
2661         } else {
2662                 INP_INFO_WLOCK_ASSERT(pcbinfo);
2663         }
2664 #endif
2665
2666         INP_WLOCK_ASSERT(inp);
2667         INP_LIST_WLOCK_ASSERT(pcbinfo);
2668
2669         inp->inp_gencnt = ++pcbinfo->ipi_gencnt;
2670         if (inp->inp_flags & INP_INHASHLIST) {
2671                 struct inpcbport *phd = inp->inp_phd;
2672
2673                 INP_HASH_WLOCK(pcbinfo);
2674
2675                 /* XXX: Only do if SO_REUSEPORT_LB set? */
2676                 in_pcbremlbgrouphash(inp);
2677
2678                 CK_LIST_REMOVE(inp, inp_hash);
2679                 CK_LIST_REMOVE(inp, inp_portlist);
2680                 if (CK_LIST_FIRST(&phd->phd_pcblist) == NULL) {
2681                         CK_LIST_REMOVE(phd, phd_hash);
2682                         epoch_call(net_epoch_preempt, &phd->phd_epoch_ctx, inpcbport_free);
2683                 }
2684                 INP_HASH_WUNLOCK(pcbinfo);
2685                 inp->inp_flags &= ~INP_INHASHLIST;
2686         }
2687         CK_LIST_REMOVE(inp, inp_list);
2688         pcbinfo->ipi_count--;
2689 #ifdef PCBGROUP
2690         in_pcbgroup_remove(inp);
2691 #endif
2692 }
2693
2694 /*
2695  * Check for alternatives when higher level complains
2696  * about service problems.  For now, invalidate cached
2697  * routing information.  If the route was created dynamically
2698  * (by a redirect), time to try a default gateway again.
2699  */
2700 void
2701 in_losing(struct inpcb *inp)
2702 {
2703
2704         RO_INVALIDATE_CACHE(&inp->inp_route);
2705         return;
2706 }
2707
2708 /*
2709  * A set label operation has occurred at the socket layer, propagate the
2710  * label change into the in_pcb for the socket.
2711  */
2712 void
2713 in_pcbsosetlabel(struct socket *so)
2714 {
2715 #ifdef MAC
2716         struct inpcb *inp;
2717
2718         inp = sotoinpcb(so);
2719         KASSERT(inp != NULL, ("in_pcbsosetlabel: so->so_pcb == NULL"));
2720
2721         INP_WLOCK(inp);
2722         SOCK_LOCK(so);
2723         mac_inpcb_sosetlabel(so, inp);
2724         SOCK_UNLOCK(so);
2725         INP_WUNLOCK(inp);
2726 #endif
2727 }
2728
2729 /*
2730  * ipport_tick runs once per second, determining if random port allocation
2731  * should be continued.  If more than ipport_randomcps ports have been
2732  * allocated in the last second, then we return to sequential port
2733  * allocation. We return to random allocation only once we drop below
2734  * ipport_randomcps for at least ipport_randomtime seconds.
2735  */
2736 static void
2737 ipport_tick(void *xtp)
2738 {
2739         VNET_ITERATOR_DECL(vnet_iter);
2740
2741         VNET_LIST_RLOCK_NOSLEEP();
2742         VNET_FOREACH(vnet_iter) {
2743                 CURVNET_SET(vnet_iter); /* XXX appease INVARIANTS here */
2744                 if (V_ipport_tcpallocs <=
2745                     V_ipport_tcplastcount + V_ipport_randomcps) {
2746                         if (V_ipport_stoprandom > 0)
2747                                 V_ipport_stoprandom--;
2748                 } else
2749                         V_ipport_stoprandom = V_ipport_randomtime;
2750                 V_ipport_tcplastcount = V_ipport_tcpallocs;
2751                 CURVNET_RESTORE();
2752         }
2753         VNET_LIST_RUNLOCK_NOSLEEP();
2754         callout_reset(&ipport_tick_callout, hz, ipport_tick, NULL);
2755 }
2756
2757 static void
2758 ip_fini(void *xtp)
2759 {
2760
2761         callout_stop(&ipport_tick_callout);
2762 }
2763
2764 /* 
2765  * The ipport_callout should start running at about the time we attach the
2766  * inet or inet6 domains.
2767  */
2768 static void
2769 ipport_tick_init(const void *unused __unused)
2770 {
2771
2772         /* Start ipport_tick. */
2773         callout_init(&ipport_tick_callout, 1);
2774         callout_reset(&ipport_tick_callout, 1, ipport_tick, NULL);
2775         EVENTHANDLER_REGISTER(shutdown_pre_sync, ip_fini, NULL,
2776                 SHUTDOWN_PRI_DEFAULT);
2777 }
2778 SYSINIT(ipport_tick_init, SI_SUB_PROTO_DOMAIN, SI_ORDER_MIDDLE, 
2779     ipport_tick_init, NULL);
2780
2781 void
2782 inp_wlock(struct inpcb *inp)
2783 {
2784
2785         INP_WLOCK(inp);
2786 }
2787
2788 void
2789 inp_wunlock(struct inpcb *inp)
2790 {
2791
2792         INP_WUNLOCK(inp);
2793 }
2794
2795 void
2796 inp_rlock(struct inpcb *inp)
2797 {
2798
2799         INP_RLOCK(inp);
2800 }
2801
2802 void
2803 inp_runlock(struct inpcb *inp)
2804 {
2805
2806         INP_RUNLOCK(inp);
2807 }
2808
2809 #ifdef INVARIANT_SUPPORT
2810 void
2811 inp_lock_assert(struct inpcb *inp)
2812 {
2813
2814         INP_WLOCK_ASSERT(inp);
2815 }
2816
2817 void
2818 inp_unlock_assert(struct inpcb *inp)
2819 {
2820
2821         INP_UNLOCK_ASSERT(inp);
2822 }
2823 #endif
2824
2825 void
2826 inp_apply_all(void (*func)(struct inpcb *, void *), void *arg)
2827 {
2828         struct inpcb *inp;
2829
2830         INP_INFO_WLOCK(&V_tcbinfo);
2831         CK_LIST_FOREACH(inp, V_tcbinfo.ipi_listhead, inp_list) {
2832                 INP_WLOCK(inp);
2833                 func(inp, arg);
2834                 INP_WUNLOCK(inp);
2835         }
2836         INP_INFO_WUNLOCK(&V_tcbinfo);
2837 }
2838
2839 struct socket *
2840 inp_inpcbtosocket(struct inpcb *inp)
2841 {
2842
2843         INP_WLOCK_ASSERT(inp);
2844         return (inp->inp_socket);
2845 }
2846
2847 struct tcpcb *
2848 inp_inpcbtotcpcb(struct inpcb *inp)
2849 {
2850
2851         INP_WLOCK_ASSERT(inp);
2852         return ((struct tcpcb *)inp->inp_ppcb);
2853 }
2854
2855 int
2856 inp_ip_tos_get(const struct inpcb *inp)
2857 {
2858
2859         return (inp->inp_ip_tos);
2860 }
2861
2862 void
2863 inp_ip_tos_set(struct inpcb *inp, int val)
2864 {
2865
2866         inp->inp_ip_tos = val;
2867 }
2868
2869 void
2870 inp_4tuple_get(struct inpcb *inp, uint32_t *laddr, uint16_t *lp,
2871     uint32_t *faddr, uint16_t *fp)
2872 {
2873
2874         INP_LOCK_ASSERT(inp);
2875         *laddr = inp->inp_laddr.s_addr;
2876         *faddr = inp->inp_faddr.s_addr;
2877         *lp = inp->inp_lport;
2878         *fp = inp->inp_fport;
2879 }
2880
2881 struct inpcb *
2882 so_sotoinpcb(struct socket *so)
2883 {
2884
2885         return (sotoinpcb(so));
2886 }
2887
2888 struct tcpcb *
2889 so_sototcpcb(struct socket *so)
2890 {
2891
2892         return (sototcpcb(so));
2893 }
2894
2895 /*
2896  * Create an external-format (``xinpcb'') structure using the information in
2897  * the kernel-format in_pcb structure pointed to by inp.  This is done to
2898  * reduce the spew of irrelevant information over this interface, to isolate
2899  * user code from changes in the kernel structure, and potentially to provide
2900  * information-hiding if we decide that some of this information should be
2901  * hidden from users.
2902  */
2903 void
2904 in_pcbtoxinpcb(const struct inpcb *inp, struct xinpcb *xi)
2905 {
2906
2907         xi->xi_len = sizeof(struct xinpcb);
2908         if (inp->inp_socket)
2909                 sotoxsocket(inp->inp_socket, &xi->xi_socket);
2910         else
2911                 bzero(&xi->xi_socket, sizeof(struct xsocket));
2912         bcopy(&inp->inp_inc, &xi->inp_inc, sizeof(struct in_conninfo));
2913         xi->inp_gencnt = inp->inp_gencnt;
2914         xi->inp_ppcb = inp->inp_ppcb;
2915         xi->inp_flow = inp->inp_flow;
2916         xi->inp_flowid = inp->inp_flowid;
2917         xi->inp_flowtype = inp->inp_flowtype;
2918         xi->inp_flags = inp->inp_flags;
2919         xi->inp_flags2 = inp->inp_flags2;
2920         xi->inp_rss_listen_bucket = inp->inp_rss_listen_bucket;
2921         xi->in6p_cksum = inp->in6p_cksum;
2922         xi->in6p_hops = inp->in6p_hops;
2923         xi->inp_ip_tos = inp->inp_ip_tos;
2924         xi->inp_vflag = inp->inp_vflag;
2925         xi->inp_ip_ttl = inp->inp_ip_ttl;
2926         xi->inp_ip_p = inp->inp_ip_p;
2927         xi->inp_ip_minttl = inp->inp_ip_minttl;
2928 }
2929
2930 #ifdef DDB
2931 static void
2932 db_print_indent(int indent)
2933 {
2934         int i;
2935
2936         for (i = 0; i < indent; i++)
2937                 db_printf(" ");
2938 }
2939
2940 static void
2941 db_print_inconninfo(struct in_conninfo *inc, const char *name, int indent)
2942 {
2943         char faddr_str[48], laddr_str[48];
2944
2945         db_print_indent(indent);
2946         db_printf("%s at %p\n", name, inc);
2947
2948         indent += 2;
2949
2950 #ifdef INET6
2951         if (inc->inc_flags & INC_ISIPV6) {
2952                 /* IPv6. */
2953                 ip6_sprintf(laddr_str, &inc->inc6_laddr);
2954                 ip6_sprintf(faddr_str, &inc->inc6_faddr);
2955         } else
2956 #endif
2957         {
2958                 /* IPv4. */
2959                 inet_ntoa_r(inc->inc_laddr, laddr_str);
2960                 inet_ntoa_r(inc->inc_faddr, faddr_str);
2961         }
2962         db_print_indent(indent);
2963         db_printf("inc_laddr %s   inc_lport %u\n", laddr_str,
2964             ntohs(inc->inc_lport));
2965         db_print_indent(indent);
2966         db_printf("inc_faddr %s   inc_fport %u\n", faddr_str,
2967             ntohs(inc->inc_fport));
2968 }
2969
2970 static void
2971 db_print_inpflags(int inp_flags)
2972 {
2973         int comma;
2974
2975         comma = 0;
2976         if (inp_flags & INP_RECVOPTS) {
2977                 db_printf("%sINP_RECVOPTS", comma ? ", " : "");
2978                 comma = 1;
2979         }
2980         if (inp_flags & INP_RECVRETOPTS) {
2981                 db_printf("%sINP_RECVRETOPTS", comma ? ", " : "");
2982                 comma = 1;
2983         }
2984         if (inp_flags & INP_RECVDSTADDR) {
2985                 db_printf("%sINP_RECVDSTADDR", comma ? ", " : "");
2986                 comma = 1;
2987         }
2988         if (inp_flags & INP_ORIGDSTADDR) {
2989                 db_printf("%sINP_ORIGDSTADDR", comma ? ", " : "");
2990                 comma = 1;
2991         }
2992         if (inp_flags & INP_HDRINCL) {
2993                 db_printf("%sINP_HDRINCL", comma ? ", " : "");
2994                 comma = 1;
2995         }
2996         if (inp_flags & INP_HIGHPORT) {
2997                 db_printf("%sINP_HIGHPORT", comma ? ", " : "");
2998                 comma = 1;
2999         }
3000         if (inp_flags & INP_LOWPORT) {
3001                 db_printf("%sINP_LOWPORT", comma ? ", " : "");
3002                 comma = 1;
3003         }
3004         if (inp_flags & INP_ANONPORT) {
3005                 db_printf("%sINP_ANONPORT", comma ? ", " : "");
3006                 comma = 1;
3007         }
3008         if (inp_flags & INP_RECVIF) {
3009                 db_printf("%sINP_RECVIF", comma ? ", " : "");
3010                 comma = 1;
3011         }
3012         if (inp_flags & INP_MTUDISC) {
3013                 db_printf("%sINP_MTUDISC", comma ? ", " : "");
3014                 comma = 1;
3015         }
3016         if (inp_flags & INP_RECVTTL) {
3017                 db_printf("%sINP_RECVTTL", comma ? ", " : "");
3018                 comma = 1;
3019         }
3020         if (inp_flags & INP_DONTFRAG) {
3021                 db_printf("%sINP_DONTFRAG", comma ? ", " : "");
3022                 comma = 1;
3023         }
3024         if (inp_flags & INP_RECVTOS) {
3025                 db_printf("%sINP_RECVTOS", comma ? ", " : "");
3026                 comma = 1;
3027         }
3028         if (inp_flags & IN6P_IPV6_V6ONLY) {
3029                 db_printf("%sIN6P_IPV6_V6ONLY", comma ? ", " : "");
3030                 comma = 1;
3031         }
3032         if (inp_flags & IN6P_PKTINFO) {
3033                 db_printf("%sIN6P_PKTINFO", comma ? ", " : "");
3034                 comma = 1;
3035         }
3036         if (inp_flags & IN6P_HOPLIMIT) {
3037                 db_printf("%sIN6P_HOPLIMIT", comma ? ", " : "");
3038                 comma = 1;
3039         }
3040         if (inp_flags & IN6P_HOPOPTS) {
3041                 db_printf("%sIN6P_HOPOPTS", comma ? ", " : "");
3042                 comma = 1;
3043         }
3044         if (inp_flags & IN6P_DSTOPTS) {
3045                 db_printf("%sIN6P_DSTOPTS", comma ? ", " : "");
3046                 comma = 1;
3047         }
3048         if (inp_flags & IN6P_RTHDR) {
3049                 db_printf("%sIN6P_RTHDR", comma ? ", " : "");
3050                 comma = 1;
3051         }
3052         if (inp_flags & IN6P_RTHDRDSTOPTS) {
3053                 db_printf("%sIN6P_RTHDRDSTOPTS", comma ? ", " : "");
3054                 comma = 1;
3055         }
3056         if (inp_flags & IN6P_TCLASS) {
3057                 db_printf("%sIN6P_TCLASS", comma ? ", " : "");
3058                 comma = 1;
3059         }
3060         if (inp_flags & IN6P_AUTOFLOWLABEL) {
3061                 db_printf("%sIN6P_AUTOFLOWLABEL", comma ? ", " : "");
3062                 comma = 1;
3063         }
3064         if (inp_flags & INP_TIMEWAIT) {
3065                 db_printf("%sINP_TIMEWAIT", comma ? ", " : "");
3066                 comma  = 1;
3067         }
3068         if (inp_flags & INP_ONESBCAST) {
3069                 db_printf("%sINP_ONESBCAST", comma ? ", " : "");
3070                 comma  = 1;
3071         }
3072         if (inp_flags & INP_DROPPED) {
3073                 db_printf("%sINP_DROPPED", comma ? ", " : "");
3074                 comma  = 1;
3075         }
3076         if (inp_flags & INP_SOCKREF) {
3077                 db_printf("%sINP_SOCKREF", comma ? ", " : "");
3078                 comma  = 1;
3079         }
3080         if (inp_flags & IN6P_RFC2292) {
3081                 db_printf("%sIN6P_RFC2292", comma ? ", " : "");
3082                 comma = 1;
3083         }
3084         if (inp_flags & IN6P_MTU) {
3085                 db_printf("IN6P_MTU%s", comma ? ", " : "");
3086                 comma = 1;
3087         }
3088 }
3089
3090 static void
3091 db_print_inpvflag(u_char inp_vflag)
3092 {
3093         int comma;
3094
3095         comma = 0;
3096         if (inp_vflag & INP_IPV4) {
3097                 db_printf("%sINP_IPV4", comma ? ", " : "");
3098                 comma  = 1;
3099         }
3100         if (inp_vflag & INP_IPV6) {
3101                 db_printf("%sINP_IPV6", comma ? ", " : "");
3102                 comma  = 1;
3103         }
3104         if (inp_vflag & INP_IPV6PROTO) {
3105                 db_printf("%sINP_IPV6PROTO", comma ? ", " : "");
3106                 comma  = 1;
3107         }
3108 }
3109
3110 static void
3111 db_print_inpcb(struct inpcb *inp, const char *name, int indent)
3112 {
3113
3114         db_print_indent(indent);
3115         db_printf("%s at %p\n", name, inp);
3116
3117         indent += 2;
3118
3119         db_print_indent(indent);
3120         db_printf("inp_flow: 0x%x\n", inp->inp_flow);
3121
3122         db_print_inconninfo(&inp->inp_inc, "inp_conninfo", indent);
3123
3124         db_print_indent(indent);
3125         db_printf("inp_ppcb: %p   inp_pcbinfo: %p   inp_socket: %p\n",
3126             inp->inp_ppcb, inp->inp_pcbinfo, inp->inp_socket);
3127
3128         db_print_indent(indent);
3129         db_printf("inp_label: %p   inp_flags: 0x%x (",
3130            inp->inp_label, inp->inp_flags);
3131         db_print_inpflags(inp->inp_flags);
3132         db_printf(")\n");
3133
3134         db_print_indent(indent);
3135         db_printf("inp_sp: %p   inp_vflag: 0x%x (", inp->inp_sp,
3136             inp->inp_vflag);
3137         db_print_inpvflag(inp->inp_vflag);
3138         db_printf(")\n");
3139
3140         db_print_indent(indent);
3141         db_printf("inp_ip_ttl: %d   inp_ip_p: %d   inp_ip_minttl: %d\n",
3142             inp->inp_ip_ttl, inp->inp_ip_p, inp->inp_ip_minttl);
3143
3144         db_print_indent(indent);
3145 #ifdef INET6
3146         if (inp->inp_vflag & INP_IPV6) {
3147                 db_printf("in6p_options: %p   in6p_outputopts: %p   "
3148                     "in6p_moptions: %p\n", inp->in6p_options,
3149                     inp->in6p_outputopts, inp->in6p_moptions);
3150                 db_printf("in6p_icmp6filt: %p   in6p_cksum %d   "
3151                     "in6p_hops %u\n", inp->in6p_icmp6filt, inp->in6p_cksum,
3152                     inp->in6p_hops);
3153         } else
3154 #endif
3155         {
3156                 db_printf("inp_ip_tos: %d   inp_ip_options: %p   "
3157                     "inp_ip_moptions: %p\n", inp->inp_ip_tos,
3158                     inp->inp_options, inp->inp_moptions);
3159         }
3160
3161         db_print_indent(indent);
3162         db_printf("inp_phd: %p   inp_gencnt: %ju\n", inp->inp_phd,
3163             (uintmax_t)inp->inp_gencnt);
3164 }
3165
3166 DB_SHOW_COMMAND(inpcb, db_show_inpcb)
3167 {
3168         struct inpcb *inp;
3169
3170         if (!have_addr) {
3171                 db_printf("usage: show inpcb <addr>\n");
3172                 return;
3173         }
3174         inp = (struct inpcb *)addr;
3175
3176         db_print_inpcb(inp, "inpcb", 0);
3177 }
3178 #endif /* DDB */
3179
3180 #ifdef RATELIMIT
3181 /*
3182  * Modify TX rate limit based on the existing "inp->inp_snd_tag",
3183  * if any.
3184  */
3185 int
3186 in_pcbmodify_txrtlmt(struct inpcb *inp, uint32_t max_pacing_rate)
3187 {
3188         union if_snd_tag_modify_params params = {
3189                 .rate_limit.max_rate = max_pacing_rate,
3190         };
3191         struct m_snd_tag *mst;
3192         struct ifnet *ifp;
3193         int error;
3194
3195         mst = inp->inp_snd_tag;
3196         if (mst == NULL)
3197                 return (EINVAL);
3198
3199         ifp = mst->ifp;
3200         if (ifp == NULL)
3201                 return (EINVAL);
3202
3203         if (ifp->if_snd_tag_modify == NULL) {
3204                 error = EOPNOTSUPP;
3205         } else {
3206                 error = ifp->if_snd_tag_modify(mst, &params);
3207         }
3208         return (error);
3209 }
3210
3211 /*
3212  * Query existing TX rate limit based on the existing
3213  * "inp->inp_snd_tag", if any.
3214  */
3215 int
3216 in_pcbquery_txrtlmt(struct inpcb *inp, uint32_t *p_max_pacing_rate)
3217 {
3218         union if_snd_tag_query_params params = { };
3219         struct m_snd_tag *mst;
3220         struct ifnet *ifp;
3221         int error;
3222
3223         mst = inp->inp_snd_tag;
3224         if (mst == NULL)
3225                 return (EINVAL);
3226
3227         ifp = mst->ifp;
3228         if (ifp == NULL)
3229                 return (EINVAL);
3230
3231         if (ifp->if_snd_tag_query == NULL) {
3232                 error = EOPNOTSUPP;
3233         } else {
3234                 error = ifp->if_snd_tag_query(mst, &params);
3235                 if (error == 0 &&  p_max_pacing_rate != NULL)
3236                         *p_max_pacing_rate = params.rate_limit.max_rate;
3237         }
3238         return (error);
3239 }
3240
3241 /*
3242  * Query existing TX queue level based on the existing
3243  * "inp->inp_snd_tag", if any.
3244  */
3245 int
3246 in_pcbquery_txrlevel(struct inpcb *inp, uint32_t *p_txqueue_level)
3247 {
3248         union if_snd_tag_query_params params = { };
3249         struct m_snd_tag *mst;
3250         struct ifnet *ifp;
3251         int error;
3252
3253         mst = inp->inp_snd_tag;
3254         if (mst == NULL)
3255                 return (EINVAL);
3256
3257         ifp = mst->ifp;
3258         if (ifp == NULL)
3259                 return (EINVAL);
3260
3261         if (ifp->if_snd_tag_query == NULL)
3262                 return (EOPNOTSUPP);
3263
3264         error = ifp->if_snd_tag_query(mst, &params);
3265         if (error == 0 &&  p_txqueue_level != NULL)
3266                 *p_txqueue_level = params.rate_limit.queue_level;
3267         return (error);
3268 }
3269
3270 /*
3271  * Allocate a new TX rate limit send tag from the network interface
3272  * given by the "ifp" argument and save it in "inp->inp_snd_tag":
3273  */
3274 int
3275 in_pcbattach_txrtlmt(struct inpcb *inp, struct ifnet *ifp,
3276     uint32_t flowtype, uint32_t flowid, uint32_t max_pacing_rate)
3277 {
3278         union if_snd_tag_alloc_params params = {
3279                 .rate_limit.hdr.type = (max_pacing_rate == -1U) ?
3280                     IF_SND_TAG_TYPE_UNLIMITED : IF_SND_TAG_TYPE_RATE_LIMIT,
3281                 .rate_limit.hdr.flowid = flowid,
3282                 .rate_limit.hdr.flowtype = flowtype,
3283                 .rate_limit.max_rate = max_pacing_rate,
3284         };
3285         int error;
3286
3287         INP_WLOCK_ASSERT(inp);
3288
3289         if (inp->inp_snd_tag != NULL)
3290                 return (EINVAL);
3291
3292         if (ifp->if_snd_tag_alloc == NULL) {
3293                 error = EOPNOTSUPP;
3294         } else {
3295                 error = ifp->if_snd_tag_alloc(ifp, &params, &inp->inp_snd_tag);
3296
3297                 /*
3298                  * At success increment the refcount on
3299                  * the send tag's network interface:
3300                  */
3301                 if (error == 0)
3302                         if_ref(inp->inp_snd_tag->ifp);
3303         }
3304         return (error);
3305 }
3306
3307 /*
3308  * Free an existing TX rate limit tag based on the "inp->inp_snd_tag",
3309  * if any:
3310  */
3311 void
3312 in_pcbdetach_txrtlmt(struct inpcb *inp)
3313 {
3314         struct m_snd_tag *mst;
3315         struct ifnet *ifp;
3316
3317         INP_WLOCK_ASSERT(inp);
3318
3319         mst = inp->inp_snd_tag;
3320         inp->inp_snd_tag = NULL;
3321
3322         if (mst == NULL)
3323                 return;
3324
3325         ifp = mst->ifp;
3326         if (ifp == NULL)
3327                 return;
3328
3329         /*
3330          * If the device was detached while we still had reference(s)
3331          * on the ifp, we assume if_snd_tag_free() was replaced with
3332          * stubs.
3333          */
3334         ifp->if_snd_tag_free(mst);
3335
3336         /* release reference count on network interface */
3337         if_rele(ifp);
3338 }
3339
3340 /*
3341  * This function should be called when the INP_RATE_LIMIT_CHANGED flag
3342  * is set in the fast path and will attach/detach/modify the TX rate
3343  * limit send tag based on the socket's so_max_pacing_rate value.
3344  */
3345 void
3346 in_pcboutput_txrtlmt(struct inpcb *inp, struct ifnet *ifp, struct mbuf *mb)
3347 {
3348         struct socket *socket;
3349         uint32_t max_pacing_rate;
3350         bool did_upgrade;
3351         int error;
3352
3353         if (inp == NULL)
3354                 return;
3355
3356         socket = inp->inp_socket;
3357         if (socket == NULL)
3358                 return;
3359
3360         if (!INP_WLOCKED(inp)) {
3361                 /*
3362                  * NOTE: If the write locking fails, we need to bail
3363                  * out and use the non-ratelimited ring for the
3364                  * transmit until there is a new chance to get the
3365                  * write lock.
3366                  */
3367                 if (!INP_TRY_UPGRADE(inp))
3368                         return;
3369                 did_upgrade = 1;
3370         } else {
3371                 did_upgrade = 0;
3372         }
3373
3374         /*
3375          * NOTE: The so_max_pacing_rate value is read unlocked,
3376          * because atomic updates are not required since the variable
3377          * is checked at every mbuf we send. It is assumed that the
3378          * variable read itself will be atomic.
3379          */
3380         max_pacing_rate = socket->so_max_pacing_rate;
3381
3382         /*
3383          * NOTE: When attaching to a network interface a reference is
3384          * made to ensure the network interface doesn't go away until
3385          * all ratelimit connections are gone. The network interface
3386          * pointers compared below represent valid network interfaces,
3387          * except when comparing towards NULL.
3388          */
3389         if (max_pacing_rate == 0 && inp->inp_snd_tag == NULL) {
3390                 error = 0;
3391         } else if (!(ifp->if_capenable & IFCAP_TXRTLMT)) {
3392                 if (inp->inp_snd_tag != NULL)
3393                         in_pcbdetach_txrtlmt(inp);
3394                 error = 0;
3395         } else if (inp->inp_snd_tag == NULL) {
3396                 /*
3397                  * In order to utilize packet pacing with RSS, we need
3398                  * to wait until there is a valid RSS hash before we
3399                  * can proceed:
3400                  */
3401                 if (M_HASHTYPE_GET(mb) == M_HASHTYPE_NONE) {
3402                         error = EAGAIN;
3403                 } else {
3404                         error = in_pcbattach_txrtlmt(inp, ifp, M_HASHTYPE_GET(mb),
3405                             mb->m_pkthdr.flowid, max_pacing_rate);
3406                 }
3407         } else {
3408                 error = in_pcbmodify_txrtlmt(inp, max_pacing_rate);
3409         }
3410         if (error == 0 || error == EOPNOTSUPP)
3411                 inp->inp_flags2 &= ~INP_RATE_LIMIT_CHANGED;
3412         if (did_upgrade)
3413                 INP_DOWNGRADE(inp);
3414 }
3415
3416 /*
3417  * Track route changes for TX rate limiting.
3418  */
3419 void
3420 in_pcboutput_eagain(struct inpcb *inp)
3421 {
3422         struct socket *socket;
3423         bool did_upgrade;
3424
3425         if (inp == NULL)
3426                 return;
3427
3428         socket = inp->inp_socket;
3429         if (socket == NULL)
3430                 return;
3431
3432         if (inp->inp_snd_tag == NULL)
3433                 return;
3434
3435         if (!INP_WLOCKED(inp)) {
3436                 /*
3437                  * NOTE: If the write locking fails, we need to bail
3438                  * out and use the non-ratelimited ring for the
3439                  * transmit until there is a new chance to get the
3440                  * write lock.
3441                  */
3442                 if (!INP_TRY_UPGRADE(inp))
3443                         return;
3444                 did_upgrade = 1;
3445         } else {
3446                 did_upgrade = 0;
3447         }
3448
3449         /* detach rate limiting */
3450         in_pcbdetach_txrtlmt(inp);
3451
3452         /* make sure new mbuf send tag allocation is made */
3453         inp->inp_flags2 |= INP_RATE_LIMIT_CHANGED;
3454
3455         if (did_upgrade)
3456                 INP_DOWNGRADE(inp);
3457 }
3458 #endif /* RATELIMIT */