FreeBSD/Linux Kernel Cross Reference
sys/net/pfvar.h
1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause
3 *
4 * Copyright (c) 2001 Daniel Hartmeier
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 *
11 * - Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * - Redistributions in binary form must reproduce the above
14 * copyright notice, this list of conditions and the following
15 * disclaimer in the documentation and/or other materials provided
16 * with the distribution.
17 *
18 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
19 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
20 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
21 * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE
22 * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
23 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
24 * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
25 * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
26 * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
28 * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 * POSSIBILITY OF SUCH DAMAGE.
30 *
31 * $OpenBSD: pfvar.h,v 1.282 2009/01/29 15:12:28 pyr Exp $
32 * $FreeBSD$
33 */
34
35 #ifndef _NET_PFVAR_H_
36 #define _NET_PFVAR_H_
37
38 #include <sys/param.h>
39 #include <sys/queue.h>
40 #include <sys/counter.h>
41 #include <sys/cpuset.h>
42 #include <sys/epoch.h>
43 #include <sys/malloc.h>
44 #include <sys/nv.h>
45 #include <sys/refcount.h>
46 #include <sys/sdt.h>
47 #include <sys/sysctl.h>
48 #include <sys/smp.h>
49 #include <sys/lock.h>
50 #include <sys/rmlock.h>
51 #include <sys/tree.h>
52 #include <sys/seqc.h>
53 #include <vm/uma.h>
54
55 #include <net/if.h>
56 #include <net/ethernet.h>
57 #include <net/radix.h>
58 #include <netinet/in.h>
59 #ifdef _KERNEL
60 #include <netinet/ip.h>
61 #include <netinet/tcp.h>
62 #include <netinet/udp.h>
63 #include <netinet/ip_icmp.h>
64 #include <netinet/icmp6.h>
65 #endif
66
67 #include <netpfil/pf/pf.h>
68 #include <netpfil/pf/pf_altq.h>
69 #include <netpfil/pf/pf_mtag.h>
70
71 #ifdef _KERNEL
72
73 #if defined(__arm__)
74 #define PF_WANT_32_TO_64_COUNTER
75 #endif
76
77 /*
78 * A hybrid of 32-bit and 64-bit counters which can be used on platforms where
79 * counter(9) is very expensive.
80 *
81 * As 32-bit counters are expected to overflow, a periodic job sums them up to
82 * a saved 64-bit state. Fetching the value still walks all CPUs to get the most
83 * current snapshot.
84 */
85 #ifdef PF_WANT_32_TO_64_COUNTER
86 struct pf_counter_u64_pcpu {
87 u_int32_t current;
88 u_int32_t snapshot;
89 };
90
91 struct pf_counter_u64 {
92 struct pf_counter_u64_pcpu *pfcu64_pcpu;
93 u_int64_t pfcu64_value;
94 seqc_t pfcu64_seqc;
95 };
96
97 static inline int
98 pf_counter_u64_init(struct pf_counter_u64 *pfcu64, int flags)
99 {
100
101 pfcu64->pfcu64_value = 0;
102 pfcu64->pfcu64_seqc = 0;
103 pfcu64->pfcu64_pcpu = uma_zalloc_pcpu(pcpu_zone_8, flags | M_ZERO);
104 if (__predict_false(pfcu64->pfcu64_pcpu == NULL))
105 return (ENOMEM);
106 return (0);
107 }
108
109 static inline void
110 pf_counter_u64_deinit(struct pf_counter_u64 *pfcu64)
111 {
112
113 uma_zfree_pcpu(pcpu_zone_8, pfcu64->pfcu64_pcpu);
114 }
115
116 static inline void
117 pf_counter_u64_critical_enter(void)
118 {
119
120 critical_enter();
121 }
122
123 static inline void
124 pf_counter_u64_critical_exit(void)
125 {
126
127 critical_exit();
128 }
129
130 static inline void
131 pf_counter_u64_add_protected(struct pf_counter_u64 *pfcu64, uint32_t n)
132 {
133 struct pf_counter_u64_pcpu *pcpu;
134 u_int32_t val;
135
136 MPASS(curthread->td_critnest > 0);
137 pcpu = zpcpu_get(pfcu64->pfcu64_pcpu);
138 val = atomic_load_int(&pcpu->current);
139 atomic_store_int(&pcpu->current, val + n);
140 }
141
142 static inline void
143 pf_counter_u64_add(struct pf_counter_u64 *pfcu64, uint32_t n)
144 {
145
146 critical_enter();
147 pf_counter_u64_add_protected(pfcu64, n);
148 critical_exit();
149 }
150
151 static inline u_int64_t
152 pf_counter_u64_periodic(struct pf_counter_u64 *pfcu64)
153 {
154 struct pf_counter_u64_pcpu *pcpu;
155 u_int64_t sum;
156 u_int32_t val;
157 int cpu;
158
159 MPASS(curthread->td_critnest > 0);
160 seqc_write_begin(&pfcu64->pfcu64_seqc);
161 sum = pfcu64->pfcu64_value;
162 CPU_FOREACH(cpu) {
163 pcpu = zpcpu_get_cpu(pfcu64->pfcu64_pcpu, cpu);
164 val = atomic_load_int(&pcpu->current);
165 sum += (uint32_t)(val - pcpu->snapshot);
166 pcpu->snapshot = val;
167 }
168 pfcu64->pfcu64_value = sum;
169 seqc_write_end(&pfcu64->pfcu64_seqc);
170 return (sum);
171 }
172
173 static inline u_int64_t
174 pf_counter_u64_fetch(const struct pf_counter_u64 *pfcu64)
175 {
176 struct pf_counter_u64_pcpu *pcpu;
177 u_int64_t sum;
178 seqc_t seqc;
179 int cpu;
180
181 for (;;) {
182 seqc = seqc_read(&pfcu64->pfcu64_seqc);
183 sum = 0;
184 CPU_FOREACH(cpu) {
185 pcpu = zpcpu_get_cpu(pfcu64->pfcu64_pcpu, cpu);
186 sum += (uint32_t)(atomic_load_int(&pcpu->current) -pcpu->snapshot);
187 }
188 sum += pfcu64->pfcu64_value;
189 if (seqc_consistent(&pfcu64->pfcu64_seqc, seqc))
190 break;
191 }
192 return (sum);
193 }
194
195 static inline void
196 pf_counter_u64_zero_protected(struct pf_counter_u64 *pfcu64)
197 {
198 struct pf_counter_u64_pcpu *pcpu;
199 int cpu;
200
201 MPASS(curthread->td_critnest > 0);
202 seqc_write_begin(&pfcu64->pfcu64_seqc);
203 CPU_FOREACH(cpu) {
204 pcpu = zpcpu_get_cpu(pfcu64->pfcu64_pcpu, cpu);
205 pcpu->snapshot = atomic_load_int(&pcpu->current);
206 }
207 pfcu64->pfcu64_value = 0;
208 seqc_write_end(&pfcu64->pfcu64_seqc);
209 }
210
211 static inline void
212 pf_counter_u64_zero(struct pf_counter_u64 *pfcu64)
213 {
214
215 critical_enter();
216 pf_counter_u64_zero_protected(pfcu64);
217 critical_exit();
218 }
219 #else
220 struct pf_counter_u64 {
221 counter_u64_t counter;
222 };
223
224 static inline int
225 pf_counter_u64_init(struct pf_counter_u64 *pfcu64, int flags)
226 {
227
228 pfcu64->counter = counter_u64_alloc(flags);
229 if (__predict_false(pfcu64->counter == NULL))
230 return (ENOMEM);
231 return (0);
232 }
233
234 static inline void
235 pf_counter_u64_deinit(struct pf_counter_u64 *pfcu64)
236 {
237
238 counter_u64_free(pfcu64->counter);
239 }
240
241 static inline void
242 pf_counter_u64_critical_enter(void)
243 {
244
245 }
246
247 static inline void
248 pf_counter_u64_critical_exit(void)
249 {
250
251 }
252
253 static inline void
254 pf_counter_u64_add_protected(struct pf_counter_u64 *pfcu64, uint32_t n)
255 {
256
257 counter_u64_add(pfcu64->counter, n);
258 }
259
260 static inline void
261 pf_counter_u64_add(struct pf_counter_u64 *pfcu64, uint32_t n)
262 {
263
264 pf_counter_u64_add_protected(pfcu64, n);
265 }
266
267 static inline u_int64_t
268 pf_counter_u64_fetch(const struct pf_counter_u64 *pfcu64)
269 {
270
271 return (counter_u64_fetch(pfcu64->counter));
272 }
273
274 static inline void
275 pf_counter_u64_zero_protected(struct pf_counter_u64 *pfcu64)
276 {
277
278 counter_u64_zero(pfcu64->counter);
279 }
280
281 static inline void
282 pf_counter_u64_zero(struct pf_counter_u64 *pfcu64)
283 {
284
285 pf_counter_u64_zero_protected(pfcu64);
286 }
287 #endif
288
289 #define pf_get_timestamp(prule)({ \
290 uint32_t _ts = 0; \
291 uint32_t __ts; \
292 int cpu; \
293 CPU_FOREACH(cpu) { \
294 __ts = *zpcpu_get_cpu(prule->timestamp, cpu); \
295 if (__ts > _ts) \
296 _ts = __ts; \
297 } \
298 _ts; \
299 })
300
301 #define pf_update_timestamp(prule) \
302 do { \
303 critical_enter(); \
304 *zpcpu_get((prule)->timestamp) = time_second; \
305 critical_exit(); \
306 } while (0)
307
308 #define pf_timestamp_pcpu_zone (sizeof(time_t) == 4 ? pcpu_zone_4 : pcpu_zone_8)
309 _Static_assert(sizeof(time_t) == 4 || sizeof(time_t) == 8, "unexpected time_t size");
310
311 SYSCTL_DECL(_net_pf);
312 MALLOC_DECLARE(M_PFHASH);
313
314 SDT_PROVIDER_DECLARE(pf);
315
316 struct pfi_dynaddr {
317 TAILQ_ENTRY(pfi_dynaddr) entry;
318 struct pf_addr pfid_addr4;
319 struct pf_addr pfid_mask4;
320 struct pf_addr pfid_addr6;
321 struct pf_addr pfid_mask6;
322 struct pfr_ktable *pfid_kt;
323 struct pfi_kkif *pfid_kif;
324 int pfid_net; /* mask or 128 */
325 int pfid_acnt4; /* address count IPv4 */
326 int pfid_acnt6; /* address count IPv6 */
327 sa_family_t pfid_af; /* rule af */
328 u_int8_t pfid_iflags; /* PFI_AFLAG_* */
329 };
330
331 /*
332 * Address manipulation macros
333 */
334 #define HTONL(x) (x) = htonl((__uint32_t)(x))
335 #define HTONS(x) (x) = htons((__uint16_t)(x))
336 #define NTOHL(x) (x) = ntohl((__uint32_t)(x))
337 #define NTOHS(x) (x) = ntohs((__uint16_t)(x))
338
339 #define PF_NAME "pf"
340
341 #define PF_HASHROW_ASSERT(h) mtx_assert(&(h)->lock, MA_OWNED)
342 #define PF_HASHROW_LOCK(h) mtx_lock(&(h)->lock)
343 #define PF_HASHROW_UNLOCK(h) mtx_unlock(&(h)->lock)
344
345 #ifdef INVARIANTS
346 #define PF_STATE_LOCK(s) \
347 do { \
348 struct pf_kstate *_s = (s); \
349 struct pf_idhash *_ih = &V_pf_idhash[PF_IDHASH(_s)]; \
350 MPASS(_s->lock == &_ih->lock); \
351 mtx_lock(_s->lock); \
352 } while (0)
353 #define PF_STATE_UNLOCK(s) \
354 do { \
355 struct pf_kstate *_s = (s); \
356 struct pf_idhash *_ih = &V_pf_idhash[PF_IDHASH(_s)]; \
357 MPASS(_s->lock == &_ih->lock); \
358 mtx_unlock(_s->lock); \
359 } while (0)
360 #else
361 #define PF_STATE_LOCK(s) mtx_lock(s->lock)
362 #define PF_STATE_UNLOCK(s) mtx_unlock(s->lock)
363 #endif
364
365 #ifdef INVARIANTS
366 #define PF_STATE_LOCK_ASSERT(s) \
367 do { \
368 struct pf_kstate *_s = (s); \
369 struct pf_idhash *_ih = &V_pf_idhash[PF_IDHASH(_s)]; \
370 MPASS(_s->lock == &_ih->lock); \
371 PF_HASHROW_ASSERT(_ih); \
372 } while (0)
373 #else /* !INVARIANTS */
374 #define PF_STATE_LOCK_ASSERT(s) do {} while (0)
375 #endif /* INVARIANTS */
376
377 extern struct mtx_padalign pf_unlnkdrules_mtx;
378 #define PF_UNLNKDRULES_LOCK() mtx_lock(&pf_unlnkdrules_mtx)
379 #define PF_UNLNKDRULES_UNLOCK() mtx_unlock(&pf_unlnkdrules_mtx)
380 #define PF_UNLNKDRULES_ASSERT() mtx_assert(&pf_unlnkdrules_mtx, MA_OWNED)
381
382 extern struct sx pf_config_lock;
383 #define PF_CONFIG_LOCK() sx_xlock(&pf_config_lock)
384 #define PF_CONFIG_UNLOCK() sx_xunlock(&pf_config_lock)
385 #define PF_CONFIG_ASSERT() sx_assert(&pf_config_lock, SA_XLOCKED)
386
387 extern struct rmlock pf_rules_lock;
388 #define PF_RULES_RLOCK_TRACKER struct rm_priotracker _pf_rules_tracker
389 #define PF_RULES_RLOCK() rm_rlock(&pf_rules_lock, &_pf_rules_tracker)
390 #define PF_RULES_RUNLOCK() rm_runlock(&pf_rules_lock, &_pf_rules_tracker)
391 #define PF_RULES_WLOCK() rm_wlock(&pf_rules_lock)
392 #define PF_RULES_WUNLOCK() rm_wunlock(&pf_rules_lock)
393 #define PF_RULES_WOWNED() rm_wowned(&pf_rules_lock)
394 #define PF_RULES_ASSERT() rm_assert(&pf_rules_lock, RA_LOCKED)
395 #define PF_RULES_RASSERT() rm_assert(&pf_rules_lock, RA_RLOCKED)
396 #define PF_RULES_WASSERT() rm_assert(&pf_rules_lock, RA_WLOCKED)
397
398 extern struct mtx_padalign pf_table_stats_lock;
399 #define PF_TABLE_STATS_LOCK() mtx_lock(&pf_table_stats_lock)
400 #define PF_TABLE_STATS_UNLOCK() mtx_unlock(&pf_table_stats_lock)
401 #define PF_TABLE_STATS_OWNED() mtx_owned(&pf_table_stats_lock)
402 #define PF_TABLE_STATS_ASSERT() mtx_assert(&pf_rules_lock, MA_OWNED)
403
404 extern struct sx pf_end_lock;
405
406 #define PF_MODVER 1
407 #define PFLOG_MODVER 1
408 #define PFSYNC_MODVER 1
409
410 #define PFLOG_MINVER 1
411 #define PFLOG_PREFVER PFLOG_MODVER
412 #define PFLOG_MAXVER 1
413 #define PFSYNC_MINVER 1
414 #define PFSYNC_PREFVER PFSYNC_MODVER
415 #define PFSYNC_MAXVER 1
416
417 #ifdef INET
418 #ifndef INET6
419 #define PF_INET_ONLY
420 #endif /* ! INET6 */
421 #endif /* INET */
422
423 #ifdef INET6
424 #ifndef INET
425 #define PF_INET6_ONLY
426 #endif /* ! INET */
427 #endif /* INET6 */
428
429 #ifdef INET
430 #ifdef INET6
431 #define PF_INET_INET6
432 #endif /* INET6 */
433 #endif /* INET */
434
435 #else
436
437 #define PF_INET_INET6
438
439 #endif /* _KERNEL */
440
441 /* Both IPv4 and IPv6 */
442 #ifdef PF_INET_INET6
443
444 #define PF_AEQ(a, b, c) \
445 ((c == AF_INET && (a)->addr32[0] == (b)->addr32[0]) || \
446 (c == AF_INET6 && (a)->addr32[3] == (b)->addr32[3] && \
447 (a)->addr32[2] == (b)->addr32[2] && \
448 (a)->addr32[1] == (b)->addr32[1] && \
449 (a)->addr32[0] == (b)->addr32[0])) \
450
451 #define PF_ANEQ(a, b, c) \
452 ((c == AF_INET && (a)->addr32[0] != (b)->addr32[0]) || \
453 (c == AF_INET6 && ((a)->addr32[0] != (b)->addr32[0] || \
454 (a)->addr32[1] != (b)->addr32[1] || \
455 (a)->addr32[2] != (b)->addr32[2] || \
456 (a)->addr32[3] != (b)->addr32[3]))) \
457
458 #define PF_AZERO(a, c) \
459 ((c == AF_INET && !(a)->addr32[0]) || \
460 (c == AF_INET6 && !(a)->addr32[0] && !(a)->addr32[1] && \
461 !(a)->addr32[2] && !(a)->addr32[3] )) \
462
463 #define PF_MATCHA(n, a, m, b, f) \
464 pf_match_addr(n, a, m, b, f)
465
466 #define PF_ACPY(a, b, f) \
467 pf_addrcpy(a, b, f)
468
469 #define PF_AINC(a, f) \
470 pf_addr_inc(a, f)
471
472 #define PF_POOLMASK(a, b, c, d, f) \
473 pf_poolmask(a, b, c, d, f)
474
475 #else
476
477 /* Just IPv6 */
478
479 #ifdef PF_INET6_ONLY
480
481 #define PF_AEQ(a, b, c) \
482 ((a)->addr32[3] == (b)->addr32[3] && \
483 (a)->addr32[2] == (b)->addr32[2] && \
484 (a)->addr32[1] == (b)->addr32[1] && \
485 (a)->addr32[0] == (b)->addr32[0]) \
486
487 #define PF_ANEQ(a, b, c) \
488 ((a)->addr32[3] != (b)->addr32[3] || \
489 (a)->addr32[2] != (b)->addr32[2] || \
490 (a)->addr32[1] != (b)->addr32[1] || \
491 (a)->addr32[0] != (b)->addr32[0]) \
492
493 #define PF_AZERO(a, c) \
494 (!(a)->addr32[0] && \
495 !(a)->addr32[1] && \
496 !(a)->addr32[2] && \
497 !(a)->addr32[3] ) \
498
499 #define PF_MATCHA(n, a, m, b, f) \
500 pf_match_addr(n, a, m, b, f)
501
502 #define PF_ACPY(a, b, f) \
503 pf_addrcpy(a, b, f)
504
505 #define PF_AINC(a, f) \
506 pf_addr_inc(a, f)
507
508 #define PF_POOLMASK(a, b, c, d, f) \
509 pf_poolmask(a, b, c, d, f)
510
511 #else
512
513 /* Just IPv4 */
514 #ifdef PF_INET_ONLY
515
516 #define PF_AEQ(a, b, c) \
517 ((a)->addr32[0] == (b)->addr32[0])
518
519 #define PF_ANEQ(a, b, c) \
520 ((a)->addr32[0] != (b)->addr32[0])
521
522 #define PF_AZERO(a, c) \
523 (!(a)->addr32[0])
524
525 #define PF_MATCHA(n, a, m, b, f) \
526 pf_match_addr(n, a, m, b, f)
527
528 #define PF_ACPY(a, b, f) \
529 (a)->v4.s_addr = (b)->v4.s_addr
530
531 #define PF_AINC(a, f) \
532 do { \
533 (a)->addr32[0] = htonl(ntohl((a)->addr32[0]) + 1); \
534 } while (0)
535
536 #define PF_POOLMASK(a, b, c, d, f) \
537 do { \
538 (a)->addr32[0] = ((b)->addr32[0] & (c)->addr32[0]) | \
539 (((c)->addr32[0] ^ 0xffffffff ) & (d)->addr32[0]); \
540 } while (0)
541
542 #endif /* PF_INET_ONLY */
543 #endif /* PF_INET6_ONLY */
544 #endif /* PF_INET_INET6 */
545
546 /*
547 * XXX callers not FIB-aware in our version of pf yet.
548 * OpenBSD fixed it later it seems, 2010/05/07 13:33:16 claudio.
549 */
550 #define PF_MISMATCHAW(aw, x, af, neg, ifp, rtid) \
551 ( \
552 (((aw)->type == PF_ADDR_NOROUTE && \
553 pf_routable((x), (af), NULL, (rtid))) || \
554 (((aw)->type == PF_ADDR_URPFFAILED && (ifp) != NULL && \
555 pf_routable((x), (af), (ifp), (rtid))) || \
556 ((aw)->type == PF_ADDR_TABLE && \
557 !pfr_match_addr((aw)->p.tbl, (x), (af))) || \
558 ((aw)->type == PF_ADDR_DYNIFTL && \
559 !pfi_match_addr((aw)->p.dyn, (x), (af))) || \
560 ((aw)->type == PF_ADDR_RANGE && \
561 !pf_match_addr_range(&(aw)->v.a.addr, \
562 &(aw)->v.a.mask, (x), (af))) || \
563 ((aw)->type == PF_ADDR_ADDRMASK && \
564 !PF_AZERO(&(aw)->v.a.mask, (af)) && \
565 !PF_MATCHA(0, &(aw)->v.a.addr, \
566 &(aw)->v.a.mask, (x), (af))))) != \
567 (neg) \
568 )
569
570 #define PF_ALGNMNT(off) (((off) % 2) == 0)
571
572 #ifdef _KERNEL
573
574 struct pf_kpooladdr {
575 struct pf_addr_wrap addr;
576 TAILQ_ENTRY(pf_kpooladdr) entries;
577 char ifname[IFNAMSIZ];
578 struct pfi_kkif *kif;
579 };
580
581 TAILQ_HEAD(pf_kpalist, pf_kpooladdr);
582
583 struct pf_kpool {
584 struct mtx mtx;
585 struct pf_kpalist list;
586 struct pf_kpooladdr *cur;
587 struct pf_poolhashkey key;
588 struct pf_addr counter;
589 struct pf_mape_portset mape;
590 int tblidx;
591 u_int16_t proxy_port[2];
592 u_int8_t opts;
593 };
594
595 struct pf_rule_actions {
596 uint16_t qid;
597 uint16_t pqid;
598 uint16_t dnpipe;
599 uint16_t dnrpipe; /* Reverse direction pipe */
600 uint32_t flags;
601 };
602
603 union pf_keth_rule_ptr {
604 struct pf_keth_rule *ptr;
605 uint32_t nr;
606 };
607
608 struct pf_keth_rule_addr {
609 uint8_t addr[ETHER_ADDR_LEN];
610 uint8_t mask[ETHER_ADDR_LEN];
611 bool neg;
612 uint8_t isset;
613 };
614
615 struct pf_keth_anchor;
616
617 TAILQ_HEAD(pf_keth_ruleq, pf_keth_rule);
618
619 struct pf_keth_ruleset {
620 struct pf_keth_ruleq rules[2];
621 struct pf_keth_rules {
622 struct pf_keth_ruleq *rules;
623 int open;
624 uint32_t ticket;
625 } active, inactive;
626 struct epoch_context epoch_ctx;
627 struct vnet *vnet;
628 struct pf_keth_anchor *anchor;
629 };
630
631 RB_HEAD(pf_keth_anchor_global, pf_keth_anchor);
632 RB_HEAD(pf_keth_anchor_node, pf_keth_anchor);
633 struct pf_keth_anchor {
634 RB_ENTRY(pf_keth_anchor) entry_node;
635 RB_ENTRY(pf_keth_anchor) entry_global;
636 struct pf_keth_anchor *parent;
637 struct pf_keth_anchor_node children;
638 char name[PF_ANCHOR_NAME_SIZE];
639 char path[MAXPATHLEN];
640 struct pf_keth_ruleset ruleset;
641 int refcnt; /* anchor rules */
642 uint8_t anchor_relative;
643 uint8_t anchor_wildcard;
644 };
645 RB_PROTOTYPE(pf_keth_anchor_node, pf_keth_anchor, entry_node,
646 pf_keth_anchor_compare);
647 RB_PROTOTYPE(pf_keth_anchor_global, pf_keth_anchor, entry_global,
648 pf_keth_anchor_compare);
649
650 struct pf_keth_rule {
651 #define PFE_SKIP_IFP 0
652 #define PFE_SKIP_DIR 1
653 #define PFE_SKIP_PROTO 2
654 #define PFE_SKIP_SRC_ADDR 3
655 #define PFE_SKIP_DST_ADDR 4
656 #define PFE_SKIP_COUNT 5
657 union pf_keth_rule_ptr skip[PFE_SKIP_COUNT];
658
659 TAILQ_ENTRY(pf_keth_rule) entries;
660
661 struct pf_keth_anchor *anchor;
662 u_int8_t anchor_relative;
663 u_int8_t anchor_wildcard;
664
665 uint32_t nr;
666
667 bool quick;
668
669 /* Filter */
670 char ifname[IFNAMSIZ];
671 struct pfi_kkif *kif;
672 bool ifnot;
673 uint8_t direction;
674 uint16_t proto;
675 struct pf_keth_rule_addr src, dst;
676 struct pf_rule_addr ipsrc, ipdst;
677 char match_tagname[PF_TAG_NAME_SIZE];
678 uint16_t match_tag;
679 bool match_tag_not;
680
681
682 /* Stats */
683 counter_u64_t evaluations;
684 counter_u64_t packets[2];
685 counter_u64_t bytes[2];
686 time_t *timestamp;
687
688 /* Action */
689 char qname[PF_QNAME_SIZE];
690 int qid;
691 char tagname[PF_TAG_NAME_SIZE];
692 uint16_t tag;
693 char bridge_to_name[IFNAMSIZ];
694 struct pfi_kkif *bridge_to;
695 uint8_t action;
696 uint16_t dnpipe;
697 uint32_t dnflags;
698 };
699
700 union pf_krule_ptr {
701 struct pf_krule *ptr;
702 u_int32_t nr;
703 };
704
705 RB_HEAD(pf_krule_global, pf_krule);
706 RB_PROTOTYPE(pf_krule_global, pf_krule, entry_global, pf_krule_compare);
707
708 struct pf_krule {
709 struct pf_rule_addr src;
710 struct pf_rule_addr dst;
711 union pf_krule_ptr skip[PF_SKIP_COUNT];
712 char label[PF_RULE_MAX_LABEL_COUNT][PF_RULE_LABEL_SIZE];
713 uint32_t ridentifier;
714 char ifname[IFNAMSIZ];
715 char qname[PF_QNAME_SIZE];
716 char pqname[PF_QNAME_SIZE];
717 char tagname[PF_TAG_NAME_SIZE];
718 char match_tagname[PF_TAG_NAME_SIZE];
719
720 char overload_tblname[PF_TABLE_NAME_SIZE];
721
722 TAILQ_ENTRY(pf_krule) entries;
723 struct pf_kpool rpool;
724
725 struct pf_counter_u64 evaluations;
726 struct pf_counter_u64 packets[2];
727 struct pf_counter_u64 bytes[2];
728 time_t *timestamp;
729
730 struct pfi_kkif *kif;
731 struct pf_kanchor *anchor;
732 struct pfr_ktable *overload_tbl;
733
734 pf_osfp_t os_fingerprint;
735
736 int rtableid;
737 u_int32_t timeout[PFTM_MAX];
738 u_int32_t max_states;
739 u_int32_t max_src_nodes;
740 u_int32_t max_src_states;
741 u_int32_t max_src_conn;
742 struct {
743 u_int32_t limit;
744 u_int32_t seconds;
745 } max_src_conn_rate;
746 u_int16_t qid;
747 u_int16_t pqid;
748 u_int16_t dnpipe;
749 u_int16_t dnrpipe;
750 u_int32_t free_flags;
751 u_int32_t nr;
752 u_int32_t prob;
753 uid_t cuid;
754 pid_t cpid;
755
756 counter_u64_t states_cur;
757 counter_u64_t states_tot;
758 counter_u64_t src_nodes;
759
760 u_int16_t return_icmp;
761 u_int16_t return_icmp6;
762 u_int16_t max_mss;
763 u_int16_t tag;
764 u_int16_t match_tag;
765 u_int16_t scrub_flags;
766
767 struct pf_rule_uid uid;
768 struct pf_rule_gid gid;
769
770 u_int32_t rule_flag;
771 uint32_t rule_ref;
772 u_int8_t action;
773 u_int8_t direction;
774 u_int8_t log;
775 u_int8_t logif;
776 u_int8_t quick;
777 u_int8_t ifnot;
778 u_int8_t match_tag_not;
779 u_int8_t natpass;
780
781 u_int8_t keep_state;
782 sa_family_t af;
783 u_int8_t proto;
784 u_int8_t type;
785 u_int8_t code;
786 u_int8_t flags;
787 u_int8_t flagset;
788 u_int8_t min_ttl;
789 u_int8_t allow_opts;
790 u_int8_t rt;
791 u_int8_t return_ttl;
792 u_int8_t tos;
793 u_int8_t set_tos;
794 u_int8_t anchor_relative;
795 u_int8_t anchor_wildcard;
796
797 u_int8_t flush;
798 u_int8_t prio;
799 u_int8_t set_prio[2];
800
801 struct {
802 struct pf_addr addr;
803 u_int16_t port;
804 } divert;
805 u_int8_t md5sum[PF_MD5_DIGEST_LENGTH];
806 RB_ENTRY(pf_krule) entry_global;
807
808 #ifdef PF_WANT_32_TO_64_COUNTER
809 LIST_ENTRY(pf_krule) allrulelist;
810 bool allrulelinked;
811 #endif
812 };
813
814 struct pf_ksrc_node {
815 LIST_ENTRY(pf_ksrc_node) entry;
816 struct pf_addr addr;
817 struct pf_addr raddr;
818 union pf_krule_ptr rule;
819 struct pfi_kkif *kif;
820 counter_u64_t bytes[2];
821 counter_u64_t packets[2];
822 u_int32_t states;
823 u_int32_t conn;
824 struct pf_threshold conn_rate;
825 u_int32_t creation;
826 u_int32_t expire;
827 sa_family_t af;
828 u_int8_t ruletype;
829 };
830 #endif
831
832 struct pf_state_scrub {
833 struct timeval pfss_last; /* time received last packet */
834 u_int32_t pfss_tsecr; /* last echoed timestamp */
835 u_int32_t pfss_tsval; /* largest timestamp */
836 u_int32_t pfss_tsval0; /* original timestamp */
837 u_int16_t pfss_flags;
838 #define PFSS_TIMESTAMP 0x0001 /* modulate timestamp */
839 #define PFSS_PAWS 0x0010 /* stricter PAWS checks */
840 #define PFSS_PAWS_IDLED 0x0020 /* was idle too long. no PAWS */
841 #define PFSS_DATA_TS 0x0040 /* timestamp on data packets */
842 #define PFSS_DATA_NOTS 0x0080 /* no timestamp on data packets */
843 u_int8_t pfss_ttl; /* stashed TTL */
844 u_int8_t pad;
845 u_int32_t pfss_ts_mod; /* timestamp modulation */
846 };
847
848 struct pf_state_host {
849 struct pf_addr addr;
850 u_int16_t port;
851 u_int16_t pad;
852 };
853
854 struct pf_state_peer {
855 struct pf_state_scrub *scrub; /* state is scrubbed */
856 u_int32_t seqlo; /* Max sequence number sent */
857 u_int32_t seqhi; /* Max the other end ACKd + win */
858 u_int32_t seqdiff; /* Sequence number modulator */
859 u_int16_t max_win; /* largest window (pre scaling) */
860 u_int16_t mss; /* Maximum segment size option */
861 u_int8_t state; /* active state level */
862 u_int8_t wscale; /* window scaling factor */
863 u_int8_t tcp_est; /* Did we reach TCPS_ESTABLISHED */
864 u_int8_t pad[1];
865 };
866
867 /* Keep synced with struct pf_state_key. */
868 struct pf_state_key_cmp {
869 struct pf_addr addr[2];
870 u_int16_t port[2];
871 sa_family_t af;
872 u_int8_t proto;
873 u_int8_t pad[2];
874 };
875
876 struct pf_state_key {
877 struct pf_addr addr[2];
878 u_int16_t port[2];
879 sa_family_t af;
880 u_int8_t proto;
881 u_int8_t pad[2];
882
883 LIST_ENTRY(pf_state_key) entry;
884 TAILQ_HEAD(, pf_kstate) states[2];
885 };
886
887 /* Keep synced with struct pf_kstate. */
888 struct pf_state_cmp {
889 u_int64_t id;
890 u_int32_t creatorid;
891 u_int8_t direction;
892 u_int8_t pad[3];
893 };
894
895 #define PFSTATE_ALLOWOPTS 0x01
896 #define PFSTATE_SLOPPY 0x02
897 /* was PFSTATE_PFLOW 0x04 */
898 #define PFSTATE_NOSYNC 0x08
899 #define PFSTATE_ACK 0x10
900 #define PFRULE_DN_IS_PIPE 0x40
901 #define PFRULE_DN_IS_QUEUE 0x80
902 #define PFSTATE_SETPRIO 0x0200
903 #define PFSTATE_SETMASK (PFSTATE_SETPRIO)
904
905 struct pf_state_scrub_export {
906 uint16_t pfss_flags;
907 uint8_t pfss_ttl; /* stashed TTL */
908 #define PF_SCRUB_FLAG_VALID 0x01
909 uint8_t scrub_flag;
910 uint32_t pfss_ts_mod; /* timestamp modulation */
911 };
912
913 struct pf_state_key_export {
914 struct pf_addr addr[2];
915 uint16_t port[2];
916 };
917
918 struct pf_state_peer_export {
919 struct pf_state_scrub_export scrub; /* state is scrubbed */
920 uint32_t seqlo; /* Max sequence number sent */
921 uint32_t seqhi; /* Max the other end ACKd + win */
922 uint32_t seqdiff; /* Sequence number modulator */
923 uint16_t max_win; /* largest window (pre scaling) */
924 uint16_t mss; /* Maximum segment size option */
925 uint8_t state; /* active state level */
926 uint8_t wscale; /* window scaling factor */
927 uint8_t dummy[6];
928 };
929 _Static_assert(sizeof(struct pf_state_peer_export) == 32, "size incorrect");
930
931 struct pf_state_export {
932 uint64_t version;
933 #define PF_STATE_VERSION 20210706
934 uint64_t id;
935 char ifname[IFNAMSIZ];
936 char orig_ifname[IFNAMSIZ];
937 struct pf_state_key_export key[2];
938 struct pf_state_peer_export src;
939 struct pf_state_peer_export dst;
940 struct pf_addr rt_addr;
941 uint32_t rule;
942 uint32_t anchor;
943 uint32_t nat_rule;
944 uint32_t creation;
945 uint32_t expire;
946 uint32_t spare0;
947 uint64_t packets[2];
948 uint64_t bytes[2];
949 uint32_t creatorid;
950 uint32_t spare1;
951 sa_family_t af;
952 uint8_t proto;
953 uint8_t direction;
954 uint8_t log;
955 uint8_t state_flags;
956 uint8_t timeout;
957 uint8_t sync_flags;
958 uint8_t updates;
959
960 uint8_t spare[112];
961 };
962 _Static_assert(sizeof(struct pf_state_export) == 384, "size incorrect");
963
964 #ifdef _KERNEL
965 struct pf_kstate {
966 /*
967 * Area shared with pf_state_cmp
968 */
969 u_int64_t id;
970 u_int32_t creatorid;
971 u_int8_t direction;
972 u_int8_t pad[3];
973 /*
974 * end of the area
975 */
976
977 u_int8_t state_flags;
978 u_int8_t timeout;
979 u_int8_t sync_state; /* PFSYNC_S_x */
980 u_int8_t sync_updates; /* XXX */
981 u_int refs;
982 struct mtx *lock;
983 TAILQ_ENTRY(pf_kstate) sync_list;
984 TAILQ_ENTRY(pf_kstate) key_list[2];
985 LIST_ENTRY(pf_kstate) entry;
986 struct pf_state_peer src;
987 struct pf_state_peer dst;
988 union pf_krule_ptr rule;
989 union pf_krule_ptr anchor;
990 union pf_krule_ptr nat_rule;
991 struct pf_addr rt_addr;
992 struct pf_state_key *key[2]; /* addresses stack and wire */
993 struct pfi_kkif *kif;
994 struct pfi_kkif *orig_kif; /* The real kif, even if we're a floating state (i.e. if == V_pfi_all). */
995 struct pfi_kkif *rt_kif;
996 struct pf_ksrc_node *src_node;
997 struct pf_ksrc_node *nat_src_node;
998 u_int64_t packets[2];
999 u_int64_t bytes[2];
1000 u_int32_t creation;
1001 u_int32_t expire;
1002 u_int32_t pfsync_time;
1003 u_int16_t qid;
1004 u_int16_t pqid;
1005 u_int16_t dnpipe;
1006 u_int16_t dnrpipe;
1007 u_int16_t tag;
1008 u_int8_t log;
1009 };
1010
1011 /*
1012 * Size <= fits 13 objects per page on LP64. Try to not grow the struct beyond that.
1013 */
1014 _Static_assert(sizeof(struct pf_kstate) <= 312, "pf_kstate size crosses 312 bytes");
1015 #endif
1016
1017 /*
1018 * Unified state structures for pulling states out of the kernel
1019 * used by pfsync(4) and the pf(4) ioctl.
1020 */
1021 struct pfsync_state_scrub {
1022 u_int16_t pfss_flags;
1023 u_int8_t pfss_ttl; /* stashed TTL */
1024 #define PFSYNC_SCRUB_FLAG_VALID 0x01
1025 u_int8_t scrub_flag;
1026 u_int32_t pfss_ts_mod; /* timestamp modulation */
1027 } __packed;
1028
1029 struct pfsync_state_peer {
1030 struct pfsync_state_scrub scrub; /* state is scrubbed */
1031 u_int32_t seqlo; /* Max sequence number sent */
1032 u_int32_t seqhi; /* Max the other end ACKd + win */
1033 u_int32_t seqdiff; /* Sequence number modulator */
1034 u_int16_t max_win; /* largest window (pre scaling) */
1035 u_int16_t mss; /* Maximum segment size option */
1036 u_int8_t state; /* active state level */
1037 u_int8_t wscale; /* window scaling factor */
1038 u_int8_t pad[6];
1039 } __packed;
1040
1041 struct pfsync_state_key {
1042 struct pf_addr addr[2];
1043 u_int16_t port[2];
1044 };
1045
1046 struct pfsync_state {
1047 u_int64_t id;
1048 char ifname[IFNAMSIZ];
1049 struct pfsync_state_key key[2];
1050 struct pfsync_state_peer src;
1051 struct pfsync_state_peer dst;
1052 struct pf_addr rt_addr;
1053 u_int32_t rule;
1054 u_int32_t anchor;
1055 u_int32_t nat_rule;
1056 u_int32_t creation;
1057 u_int32_t expire;
1058 u_int32_t packets[2][2];
1059 u_int32_t bytes[2][2];
1060 u_int32_t creatorid;
1061 sa_family_t af;
1062 u_int8_t proto;
1063 u_int8_t direction;
1064 u_int8_t __spare[2];
1065 u_int8_t log;
1066 u_int8_t state_flags;
1067 u_int8_t timeout;
1068 u_int8_t sync_flags;
1069 u_int8_t updates;
1070 } __packed;
1071
1072 #ifdef _KERNEL
1073 /* pfsync */
1074 typedef int pfsync_state_import_t(struct pfsync_state *, int);
1075 typedef void pfsync_insert_state_t(struct pf_kstate *);
1076 typedef void pfsync_update_state_t(struct pf_kstate *);
1077 typedef void pfsync_delete_state_t(struct pf_kstate *);
1078 typedef void pfsync_clear_states_t(u_int32_t, const char *);
1079 typedef int pfsync_defer_t(struct pf_kstate *, struct mbuf *);
1080 typedef void pfsync_detach_ifnet_t(struct ifnet *);
1081
1082 VNET_DECLARE(pfsync_state_import_t *, pfsync_state_import_ptr);
1083 #define V_pfsync_state_import_ptr VNET(pfsync_state_import_ptr)
1084 VNET_DECLARE(pfsync_insert_state_t *, pfsync_insert_state_ptr);
1085 #define V_pfsync_insert_state_ptr VNET(pfsync_insert_state_ptr)
1086 VNET_DECLARE(pfsync_update_state_t *, pfsync_update_state_ptr);
1087 #define V_pfsync_update_state_ptr VNET(pfsync_update_state_ptr)
1088 VNET_DECLARE(pfsync_delete_state_t *, pfsync_delete_state_ptr);
1089 #define V_pfsync_delete_state_ptr VNET(pfsync_delete_state_ptr)
1090 VNET_DECLARE(pfsync_clear_states_t *, pfsync_clear_states_ptr);
1091 #define V_pfsync_clear_states_ptr VNET(pfsync_clear_states_ptr)
1092 VNET_DECLARE(pfsync_defer_t *, pfsync_defer_ptr);
1093 #define V_pfsync_defer_ptr VNET(pfsync_defer_ptr)
1094 extern pfsync_detach_ifnet_t *pfsync_detach_ifnet_ptr;
1095
1096 void pfsync_state_export(struct pfsync_state *,
1097 struct pf_kstate *);
1098 void pf_state_export(struct pf_state_export *,
1099 struct pf_kstate *);
1100
1101 /* pflog */
1102 struct pf_kruleset;
1103 struct pf_pdesc;
1104 typedef int pflog_packet_t(struct pfi_kkif *, struct mbuf *, sa_family_t,
1105 u_int8_t, u_int8_t, struct pf_krule *, struct pf_krule *,
1106 struct pf_kruleset *, struct pf_pdesc *, int);
1107 extern pflog_packet_t *pflog_packet_ptr;
1108
1109 #endif /* _KERNEL */
1110
1111 #define PFSYNC_FLAG_SRCNODE 0x04
1112 #define PFSYNC_FLAG_NATSRCNODE 0x08
1113
1114 /* for copies to/from network byte order */
1115 /* ioctl interface also uses network byte order */
1116 #define pf_state_peer_hton(s,d) do { \
1117 (d)->seqlo = htonl((s)->seqlo); \
1118 (d)->seqhi = htonl((s)->seqhi); \
1119 (d)->seqdiff = htonl((s)->seqdiff); \
1120 (d)->max_win = htons((s)->max_win); \
1121 (d)->mss = htons((s)->mss); \
1122 (d)->state = (s)->state; \
1123 (d)->wscale = (s)->wscale; \
1124 if ((s)->scrub) { \
1125 (d)->scrub.pfss_flags = \
1126 htons((s)->scrub->pfss_flags & PFSS_TIMESTAMP); \
1127 (d)->scrub.pfss_ttl = (s)->scrub->pfss_ttl; \
1128 (d)->scrub.pfss_ts_mod = htonl((s)->scrub->pfss_ts_mod);\
1129 (d)->scrub.scrub_flag = PFSYNC_SCRUB_FLAG_VALID; \
1130 } \
1131 } while (0)
1132
1133 #define pf_state_peer_ntoh(s,d) do { \
1134 (d)->seqlo = ntohl((s)->seqlo); \
1135 (d)->seqhi = ntohl((s)->seqhi); \
1136 (d)->seqdiff = ntohl((s)->seqdiff); \
1137 (d)->max_win = ntohs((s)->max_win); \
1138 (d)->mss = ntohs((s)->mss); \
1139 (d)->state = (s)->state; \
1140 (d)->wscale = (s)->wscale; \
1141 if ((s)->scrub.scrub_flag == PFSYNC_SCRUB_FLAG_VALID && \
1142 (d)->scrub != NULL) { \
1143 (d)->scrub->pfss_flags = \
1144 ntohs((s)->scrub.pfss_flags) & PFSS_TIMESTAMP; \
1145 (d)->scrub->pfss_ttl = (s)->scrub.pfss_ttl; \
1146 (d)->scrub->pfss_ts_mod = ntohl((s)->scrub.pfss_ts_mod);\
1147 } \
1148 } while (0)
1149
1150 #define pf_state_counter_hton(s,d) do { \
1151 d[0] = htonl((s>>32)&0xffffffff); \
1152 d[1] = htonl(s&0xffffffff); \
1153 } while (0)
1154
1155 #define pf_state_counter_from_pfsync(s) \
1156 (((u_int64_t)(s[0])<<32) | (u_int64_t)(s[1]))
1157
1158 #define pf_state_counter_ntoh(s,d) do { \
1159 d = ntohl(s[0]); \
1160 d = d<<32; \
1161 d += ntohl(s[1]); \
1162 } while (0)
1163
1164 TAILQ_HEAD(pf_krulequeue, pf_krule);
1165
1166 struct pf_kanchor;
1167
1168 struct pf_kruleset {
1169 struct {
1170 struct pf_krulequeue queues[2];
1171 struct {
1172 struct pf_krulequeue *ptr;
1173 struct pf_krule **ptr_array;
1174 u_int32_t rcount;
1175 u_int32_t ticket;
1176 int open;
1177 struct pf_krule_global *tree;
1178 } active, inactive;
1179 } rules[PF_RULESET_MAX];
1180 struct pf_kanchor *anchor;
1181 u_int32_t tticket;
1182 int tables;
1183 int topen;
1184 };
1185
1186 RB_HEAD(pf_kanchor_global, pf_kanchor);
1187 RB_HEAD(pf_kanchor_node, pf_kanchor);
1188 struct pf_kanchor {
1189 RB_ENTRY(pf_kanchor) entry_global;
1190 RB_ENTRY(pf_kanchor) entry_node;
1191 struct pf_kanchor *parent;
1192 struct pf_kanchor_node children;
1193 char name[PF_ANCHOR_NAME_SIZE];
1194 char path[MAXPATHLEN];
1195 struct pf_kruleset ruleset;
1196 int refcnt; /* anchor rules */
1197 };
1198 RB_PROTOTYPE(pf_kanchor_global, pf_kanchor, entry_global, pf_anchor_compare);
1199 RB_PROTOTYPE(pf_kanchor_node, pf_kanchor, entry_node, pf_kanchor_compare);
1200
1201 #define PF_RESERVED_ANCHOR "_pf"
1202
1203 #define PFR_TFLAG_PERSIST 0x00000001
1204 #define PFR_TFLAG_CONST 0x00000002
1205 #define PFR_TFLAG_ACTIVE 0x00000004
1206 #define PFR_TFLAG_INACTIVE 0x00000008
1207 #define PFR_TFLAG_REFERENCED 0x00000010
1208 #define PFR_TFLAG_REFDANCHOR 0x00000020
1209 #define PFR_TFLAG_COUNTERS 0x00000040
1210 /* Adjust masks below when adding flags. */
1211 #define PFR_TFLAG_USRMASK (PFR_TFLAG_PERSIST | \
1212 PFR_TFLAG_CONST | \
1213 PFR_TFLAG_COUNTERS)
1214 #define PFR_TFLAG_SETMASK (PFR_TFLAG_ACTIVE | \
1215 PFR_TFLAG_INACTIVE | \
1216 PFR_TFLAG_REFERENCED | \
1217 PFR_TFLAG_REFDANCHOR)
1218 #define PFR_TFLAG_ALLMASK (PFR_TFLAG_PERSIST | \
1219 PFR_TFLAG_CONST | \
1220 PFR_TFLAG_ACTIVE | \
1221 PFR_TFLAG_INACTIVE | \
1222 PFR_TFLAG_REFERENCED | \
1223 PFR_TFLAG_REFDANCHOR | \
1224 PFR_TFLAG_COUNTERS)
1225
1226 struct pf_kanchor_stackframe;
1227 struct pf_keth_anchor_stackframe;
1228
1229 struct pfr_table {
1230 char pfrt_anchor[MAXPATHLEN];
1231 char pfrt_name[PF_TABLE_NAME_SIZE];
1232 u_int32_t pfrt_flags;
1233 u_int8_t pfrt_fback;
1234 };
1235
1236 enum { PFR_FB_NONE, PFR_FB_MATCH, PFR_FB_ADDED, PFR_FB_DELETED,
1237 PFR_FB_CHANGED, PFR_FB_CLEARED, PFR_FB_DUPLICATE,
1238 PFR_FB_NOTMATCH, PFR_FB_CONFLICT, PFR_FB_NOCOUNT, PFR_FB_MAX };
1239
1240 struct pfr_addr {
1241 union {
1242 struct in_addr _pfra_ip4addr;
1243 struct in6_addr _pfra_ip6addr;
1244 } pfra_u;
1245 u_int8_t pfra_af;
1246 u_int8_t pfra_net;
1247 u_int8_t pfra_not;
1248 u_int8_t pfra_fback;
1249 };
1250 #define pfra_ip4addr pfra_u._pfra_ip4addr
1251 #define pfra_ip6addr pfra_u._pfra_ip6addr
1252
1253 enum { PFR_DIR_IN, PFR_DIR_OUT, PFR_DIR_MAX };
1254 enum { PFR_OP_BLOCK, PFR_OP_PASS, PFR_OP_ADDR_MAX, PFR_OP_TABLE_MAX };
1255 enum { PFR_TYPE_PACKETS, PFR_TYPE_BYTES, PFR_TYPE_MAX };
1256 #define PFR_NUM_COUNTERS (PFR_DIR_MAX * PFR_OP_ADDR_MAX * PFR_TYPE_MAX)
1257 #define PFR_OP_XPASS PFR_OP_ADDR_MAX
1258
1259 struct pfr_astats {
1260 struct pfr_addr pfras_a;
1261 u_int64_t pfras_packets[PFR_DIR_MAX][PFR_OP_ADDR_MAX];
1262 u_int64_t pfras_bytes[PFR_DIR_MAX][PFR_OP_ADDR_MAX];
1263 long pfras_tzero;
1264 };
1265
1266 enum { PFR_REFCNT_RULE, PFR_REFCNT_ANCHOR, PFR_REFCNT_MAX };
1267
1268 struct pfr_tstats {
1269 struct pfr_table pfrts_t;
1270 u_int64_t pfrts_packets[PFR_DIR_MAX][PFR_OP_TABLE_MAX];
1271 u_int64_t pfrts_bytes[PFR_DIR_MAX][PFR_OP_TABLE_MAX];
1272 u_int64_t pfrts_match;
1273 u_int64_t pfrts_nomatch;
1274 long pfrts_tzero;
1275 int pfrts_cnt;
1276 int pfrts_refcnt[PFR_REFCNT_MAX];
1277 };
1278
1279 #ifdef _KERNEL
1280
1281 struct pfr_kstate_counter {
1282 counter_u64_t pkc_pcpu;
1283 u_int64_t pkc_zero;
1284 };
1285
1286 static inline int
1287 pfr_kstate_counter_init(struct pfr_kstate_counter *pfrc, int flags)
1288 {
1289
1290 pfrc->pkc_zero = 0;
1291 pfrc->pkc_pcpu = counter_u64_alloc(flags);
1292 if (pfrc->pkc_pcpu == NULL)
1293 return (ENOMEM);
1294 return (0);
1295 }
1296
1297 static inline void
1298 pfr_kstate_counter_deinit(struct pfr_kstate_counter *pfrc)
1299 {
1300
1301 counter_u64_free(pfrc->pkc_pcpu);
1302 }
1303
1304 static inline u_int64_t
1305 pfr_kstate_counter_fetch(struct pfr_kstate_counter *pfrc)
1306 {
1307 u_int64_t c;
1308
1309 c = counter_u64_fetch(pfrc->pkc_pcpu);
1310 c -= pfrc->pkc_zero;
1311 return (c);
1312 }
1313
1314 static inline void
1315 pfr_kstate_counter_zero(struct pfr_kstate_counter *pfrc)
1316 {
1317 u_int64_t c;
1318
1319 c = counter_u64_fetch(pfrc->pkc_pcpu);
1320 pfrc->pkc_zero = c;
1321 }
1322
1323 static inline void
1324 pfr_kstate_counter_add(struct pfr_kstate_counter *pfrc, int64_t n)
1325 {
1326
1327 counter_u64_add(pfrc->pkc_pcpu, n);
1328 }
1329
1330 struct pfr_ktstats {
1331 struct pfr_table pfrts_t;
1332 struct pfr_kstate_counter pfrkts_packets[PFR_DIR_MAX][PFR_OP_TABLE_MAX];
1333 struct pfr_kstate_counter pfrkts_bytes[PFR_DIR_MAX][PFR_OP_TABLE_MAX];
1334 struct pfr_kstate_counter pfrkts_match;
1335 struct pfr_kstate_counter pfrkts_nomatch;
1336 long pfrkts_tzero;
1337 int pfrkts_cnt;
1338 int pfrkts_refcnt[PFR_REFCNT_MAX];
1339 };
1340
1341 #endif /* _KERNEL */
1342
1343 #define pfrts_name pfrts_t.pfrt_name
1344 #define pfrts_flags pfrts_t.pfrt_flags
1345
1346 #ifndef _SOCKADDR_UNION_DEFINED
1347 #define _SOCKADDR_UNION_DEFINED
1348 union sockaddr_union {
1349 struct sockaddr sa;
1350 struct sockaddr_in sin;
1351 struct sockaddr_in6 sin6;
1352 };
1353 #endif /* _SOCKADDR_UNION_DEFINED */
1354
1355 struct pfr_kcounters {
1356 counter_u64_t pfrkc_counters;
1357 long pfrkc_tzero;
1358 };
1359 #define pfr_kentry_counter(kc, dir, op, t) \
1360 ((kc)->pfrkc_counters + \
1361 (dir) * PFR_OP_ADDR_MAX * PFR_TYPE_MAX + (op) * PFR_TYPE_MAX + (t))
1362
1363 #ifdef _KERNEL
1364 SLIST_HEAD(pfr_kentryworkq, pfr_kentry);
1365 struct pfr_kentry {
1366 struct radix_node pfrke_node[2];
1367 union sockaddr_union pfrke_sa;
1368 SLIST_ENTRY(pfr_kentry) pfrke_workq;
1369 struct pfr_kcounters pfrke_counters;
1370 u_int8_t pfrke_af;
1371 u_int8_t pfrke_net;
1372 u_int8_t pfrke_not;
1373 u_int8_t pfrke_mark;
1374 };
1375
1376 SLIST_HEAD(pfr_ktableworkq, pfr_ktable);
1377 RB_HEAD(pfr_ktablehead, pfr_ktable);
1378 struct pfr_ktable {
1379 struct pfr_ktstats pfrkt_kts;
1380 RB_ENTRY(pfr_ktable) pfrkt_tree;
1381 SLIST_ENTRY(pfr_ktable) pfrkt_workq;
1382 struct radix_node_head *pfrkt_ip4;
1383 struct radix_node_head *pfrkt_ip6;
1384 struct pfr_ktable *pfrkt_shadow;
1385 struct pfr_ktable *pfrkt_root;
1386 struct pf_kruleset *pfrkt_rs;
1387 long pfrkt_larg;
1388 int pfrkt_nflags;
1389 };
1390 #define pfrkt_t pfrkt_kts.pfrts_t
1391 #define pfrkt_name pfrkt_t.pfrt_name
1392 #define pfrkt_anchor pfrkt_t.pfrt_anchor
1393 #define pfrkt_ruleset pfrkt_t.pfrt_ruleset
1394 #define pfrkt_flags pfrkt_t.pfrt_flags
1395 #define pfrkt_cnt pfrkt_kts.pfrkts_cnt
1396 #define pfrkt_refcnt pfrkt_kts.pfrkts_refcnt
1397 #define pfrkt_packets pfrkt_kts.pfrkts_packets
1398 #define pfrkt_bytes pfrkt_kts.pfrkts_bytes
1399 #define pfrkt_match pfrkt_kts.pfrkts_match
1400 #define pfrkt_nomatch pfrkt_kts.pfrkts_nomatch
1401 #define pfrkt_tzero pfrkt_kts.pfrkts_tzero
1402 #endif
1403
1404 #ifdef _KERNEL
1405 struct pfi_kkif {
1406 char pfik_name[IFNAMSIZ];
1407 union {
1408 RB_ENTRY(pfi_kkif) _pfik_tree;
1409 LIST_ENTRY(pfi_kkif) _pfik_list;
1410 } _pfik_glue;
1411 #define pfik_tree _pfik_glue._pfik_tree
1412 #define pfik_list _pfik_glue._pfik_list
1413 struct pf_counter_u64 pfik_packets[2][2][2];
1414 struct pf_counter_u64 pfik_bytes[2][2][2];
1415 u_int32_t pfik_tzero;
1416 u_int pfik_flags;
1417 struct ifnet *pfik_ifp;
1418 struct ifg_group *pfik_group;
1419 u_int pfik_rulerefs;
1420 TAILQ_HEAD(, pfi_dynaddr) pfik_dynaddrs;
1421 #ifdef PF_WANT_32_TO_64_COUNTER
1422 LIST_ENTRY(pfi_kkif) pfik_allkiflist;
1423 #endif
1424 };
1425 #endif
1426
1427 #define PFI_IFLAG_REFS 0x0001 /* has state references */
1428 #define PFI_IFLAG_SKIP 0x0100 /* skip filtering on interface */
1429
1430 #ifdef _KERNEL
1431 struct pf_pdesc {
1432 struct {
1433 int done;
1434 uid_t uid;
1435 gid_t gid;
1436 } lookup;
1437 u_int64_t tot_len; /* Make Mickey money */
1438 union pf_headers {
1439 struct tcphdr tcp;
1440 struct udphdr udp;
1441 struct icmp icmp;
1442 #ifdef INET6
1443 struct icmp6_hdr icmp6;
1444 #endif /* INET6 */
1445 char any[0];
1446 } hdr;
1447
1448 struct pf_krule *nat_rule; /* nat/rdr rule applied to packet */
1449 struct pf_addr *src; /* src address */
1450 struct pf_addr *dst; /* dst address */
1451 u_int16_t *sport;
1452 u_int16_t *dport;
1453 struct pf_mtag *pf_mtag;
1454 struct pf_rule_actions act;
1455
1456 u_int32_t p_len; /* total length of payload */
1457
1458 u_int16_t *ip_sum;
1459 u_int16_t *proto_sum;
1460 u_int16_t flags; /* Let SCRUB trigger behavior in
1461 * state code. Easier than tags */
1462 #define PFDESC_TCP_NORM 0x0001 /* TCP shall be statefully scrubbed */
1463 #define PFDESC_IP_REAS 0x0002 /* IP frags would've been reassembled */
1464 sa_family_t af;
1465 u_int8_t proto;
1466 u_int8_t tos;
1467 u_int8_t dir; /* direction */
1468 u_int8_t sidx; /* key index for source */
1469 u_int8_t didx; /* key index for destination */
1470 };
1471 #endif
1472
1473 /* flags for RDR options */
1474 #define PF_DPORT_RANGE 0x01 /* Dest port uses range */
1475 #define PF_RPORT_RANGE 0x02 /* RDR'ed port uses range */
1476
1477 /* UDP state enumeration */
1478 #define PFUDPS_NO_TRAFFIC 0
1479 #define PFUDPS_SINGLE 1
1480 #define PFUDPS_MULTIPLE 2
1481
1482 #define PFUDPS_NSTATES 3 /* number of state levels */
1483
1484 #define PFUDPS_NAMES { \
1485 "NO_TRAFFIC", \
1486 "SINGLE", \
1487 "MULTIPLE", \
1488 NULL \
1489 }
1490
1491 /* Other protocol state enumeration */
1492 #define PFOTHERS_NO_TRAFFIC 0
1493 #define PFOTHERS_SINGLE 1
1494 #define PFOTHERS_MULTIPLE 2
1495
1496 #define PFOTHERS_NSTATES 3 /* number of state levels */
1497
1498 #define PFOTHERS_NAMES { \
1499 "NO_TRAFFIC", \
1500 "SINGLE", \
1501 "MULTIPLE", \
1502 NULL \
1503 }
1504
1505 #define ACTION_SET(a, x) \
1506 do { \
1507 if ((a) != NULL) \
1508 *(a) = (x); \
1509 } while (0)
1510
1511 #define REASON_SET(a, x) \
1512 do { \
1513 if ((a) != NULL) \
1514 *(a) = (x); \
1515 if (x < PFRES_MAX) \
1516 counter_u64_add(V_pf_status.counters[x], 1); \
1517 } while (0)
1518
1519 enum pf_syncookies_mode {
1520 PF_SYNCOOKIES_NEVER = 0,
1521 PF_SYNCOOKIES_ALWAYS = 1,
1522 PF_SYNCOOKIES_ADAPTIVE = 2,
1523 PF_SYNCOOKIES_MODE_MAX = PF_SYNCOOKIES_ADAPTIVE
1524 };
1525
1526 #define PF_SYNCOOKIES_HIWATPCT 25
1527 #define PF_SYNCOOKIES_LOWATPCT (PF_SYNCOOKIES_HIWATPCT / 2)
1528
1529 #ifdef _KERNEL
1530 struct pf_kstatus {
1531 counter_u64_t counters[PFRES_MAX]; /* reason for passing/dropping */
1532 counter_u64_t lcounters[KLCNT_MAX]; /* limit counters */
1533 struct pf_counter_u64 fcounters[FCNT_MAX]; /* state operation counters */
1534 counter_u64_t scounters[SCNT_MAX]; /* src_node operation counters */
1535 uint32_t states;
1536 uint32_t src_nodes;
1537 uint32_t running;
1538 uint32_t since;
1539 uint32_t debug;
1540 uint32_t hostid;
1541 char ifname[IFNAMSIZ];
1542 uint8_t pf_chksum[PF_MD5_DIGEST_LENGTH];
1543 bool keep_counters;
1544 enum pf_syncookies_mode syncookies_mode;
1545 bool syncookies_active;
1546 uint64_t syncookies_inflight[2];
1547 uint32_t states_halfopen;
1548 };
1549 #endif
1550
1551 struct pf_divert {
1552 union {
1553 struct in_addr ipv4;
1554 struct in6_addr ipv6;
1555 } addr;
1556 u_int16_t port;
1557 };
1558
1559 #define PFFRAG_FRENT_HIWAT 5000 /* Number of fragment entries */
1560 #define PFR_KENTRY_HIWAT 200000 /* Number of table entries */
1561
1562 /*
1563 * Limit the length of the fragment queue traversal. Remember
1564 * search entry points based on the fragment offset.
1565 */
1566 #define PF_FRAG_ENTRY_POINTS 16
1567
1568 /*
1569 * The number of entries in the fragment queue must be limited
1570 * to avoid DoS by linear searching. Instead of a global limit,
1571 * use a limit per entry point. For large packets these sum up.
1572 */
1573 #define PF_FRAG_ENTRY_LIMIT 64
1574
1575 /*
1576 * ioctl parameter structures
1577 */
1578
1579 struct pfioc_pooladdr {
1580 u_int32_t action;
1581 u_int32_t ticket;
1582 u_int32_t nr;
1583 u_int32_t r_num;
1584 u_int8_t r_action;
1585 u_int8_t r_last;
1586 u_int8_t af;
1587 char anchor[MAXPATHLEN];
1588 struct pf_pooladdr addr;
1589 };
1590
1591 struct pfioc_rule {
1592 u_int32_t action;
1593 u_int32_t ticket;
1594 u_int32_t pool_ticket;
1595 u_int32_t nr;
1596 char anchor[MAXPATHLEN];
1597 char anchor_call[MAXPATHLEN];
1598 struct pf_rule rule;
1599 };
1600
1601 struct pfioc_natlook {
1602 struct pf_addr saddr;
1603 struct pf_addr daddr;
1604 struct pf_addr rsaddr;
1605 struct pf_addr rdaddr;
1606 u_int16_t sport;
1607 u_int16_t dport;
1608 u_int16_t rsport;
1609 u_int16_t rdport;
1610 sa_family_t af;
1611 u_int8_t proto;
1612 u_int8_t direction;
1613 };
1614
1615 struct pfioc_state {
1616 struct pfsync_state state;
1617 };
1618
1619 struct pfioc_src_node_kill {
1620 sa_family_t psnk_af;
1621 struct pf_rule_addr psnk_src;
1622 struct pf_rule_addr psnk_dst;
1623 u_int psnk_killed;
1624 };
1625
1626 #ifdef _KERNEL
1627 struct pf_kstate_kill {
1628 struct pf_state_cmp psk_pfcmp;
1629 sa_family_t psk_af;
1630 int psk_proto;
1631 struct pf_rule_addr psk_src;
1632 struct pf_rule_addr psk_dst;
1633 struct pf_rule_addr psk_rt_addr;
1634 char psk_ifname[IFNAMSIZ];
1635 char psk_label[PF_RULE_LABEL_SIZE];
1636 u_int psk_killed;
1637 bool psk_kill_match;
1638 };
1639 #endif
1640
1641 struct pfioc_state_kill {
1642 struct pf_state_cmp psk_pfcmp;
1643 sa_family_t psk_af;
1644 int psk_proto;
1645 struct pf_rule_addr psk_src;
1646 struct pf_rule_addr psk_dst;
1647 char psk_ifname[IFNAMSIZ];
1648 char psk_label[PF_RULE_LABEL_SIZE];
1649 u_int psk_killed;
1650 };
1651
1652 struct pfioc_states {
1653 int ps_len;
1654 union {
1655 caddr_t psu_buf;
1656 struct pfsync_state *psu_states;
1657 } ps_u;
1658 #define ps_buf ps_u.psu_buf
1659 #define ps_states ps_u.psu_states
1660 };
1661
1662 struct pfioc_states_v2 {
1663 int ps_len;
1664 uint64_t ps_req_version;
1665 union {
1666 caddr_t psu_buf;
1667 struct pf_state_export *psu_states;
1668 } ps_u;
1669 #define ps_buf ps_u.psu_buf
1670 #define ps_states ps_u.psu_states
1671 };
1672
1673 struct pfioc_src_nodes {
1674 int psn_len;
1675 union {
1676 caddr_t psu_buf;
1677 struct pf_src_node *psu_src_nodes;
1678 } psn_u;
1679 #define psn_buf psn_u.psu_buf
1680 #define psn_src_nodes psn_u.psu_src_nodes
1681 };
1682
1683 struct pfioc_if {
1684 char ifname[IFNAMSIZ];
1685 };
1686
1687 struct pfioc_tm {
1688 int timeout;
1689 int seconds;
1690 };
1691
1692 struct pfioc_limit {
1693 int index;
1694 unsigned limit;
1695 };
1696
1697 struct pfioc_altq_v0 {
1698 u_int32_t action;
1699 u_int32_t ticket;
1700 u_int32_t nr;
1701 struct pf_altq_v0 altq;
1702 };
1703
1704 struct pfioc_altq_v1 {
1705 u_int32_t action;
1706 u_int32_t ticket;
1707 u_int32_t nr;
1708 /*
1709 * Placed here so code that only uses the above parameters can be
1710 * written entirely in terms of the v0 or v1 type.
1711 */
1712 u_int32_t version;
1713 struct pf_altq_v1 altq;
1714 };
1715
1716 /*
1717 * Latest version of struct pfioc_altq_vX. This must move in lock-step with
1718 * the latest version of struct pf_altq_vX as it has that struct as a
1719 * member.
1720 */
1721 #define PFIOC_ALTQ_VERSION PF_ALTQ_VERSION
1722
1723 struct pfioc_qstats_v0 {
1724 u_int32_t ticket;
1725 u_int32_t nr;
1726 void *buf;
1727 int nbytes;
1728 u_int8_t scheduler;
1729 };
1730
1731 struct pfioc_qstats_v1 {
1732 u_int32_t ticket;
1733 u_int32_t nr;
1734 void *buf;
1735 int nbytes;
1736 u_int8_t scheduler;
1737 /*
1738 * Placed here so code that only uses the above parameters can be
1739 * written entirely in terms of the v0 or v1 type.
1740 */
1741 u_int32_t version; /* Requested version of stats struct */
1742 };
1743
1744 /* Latest version of struct pfioc_qstats_vX */
1745 #define PFIOC_QSTATS_VERSION 1
1746
1747 struct pfioc_ruleset {
1748 u_int32_t nr;
1749 char path[MAXPATHLEN];
1750 char name[PF_ANCHOR_NAME_SIZE];
1751 };
1752
1753 #define PF_RULESET_ALTQ (PF_RULESET_MAX)
1754 #define PF_RULESET_TABLE (PF_RULESET_MAX+1)
1755 #define PF_RULESET_ETH (PF_RULESET_MAX+2)
1756 struct pfioc_trans {
1757 int size; /* number of elements */
1758 int esize; /* size of each element in bytes */
1759 struct pfioc_trans_e {
1760 int rs_num;
1761 char anchor[MAXPATHLEN];
1762 u_int32_t ticket;
1763 } *array;
1764 };
1765
1766 #define PFR_FLAG_ATOMIC 0x00000001 /* unused */
1767 #define PFR_FLAG_DUMMY 0x00000002
1768 #define PFR_FLAG_FEEDBACK 0x00000004
1769 #define PFR_FLAG_CLSTATS 0x00000008
1770 #define PFR_FLAG_ADDRSTOO 0x00000010
1771 #define PFR_FLAG_REPLACE 0x00000020
1772 #define PFR_FLAG_ALLRSETS 0x00000040
1773 #define PFR_FLAG_ALLMASK 0x0000007F
1774 #ifdef _KERNEL
1775 #define PFR_FLAG_USERIOCTL 0x10000000
1776 #endif
1777
1778 struct pfioc_table {
1779 struct pfr_table pfrio_table;
1780 void *pfrio_buffer;
1781 int pfrio_esize;
1782 int pfrio_size;
1783 int pfrio_size2;
1784 int pfrio_nadd;
1785 int pfrio_ndel;
1786 int pfrio_nchange;
1787 int pfrio_flags;
1788 u_int32_t pfrio_ticket;
1789 };
1790 #define pfrio_exists pfrio_nadd
1791 #define pfrio_nzero pfrio_nadd
1792 #define pfrio_nmatch pfrio_nadd
1793 #define pfrio_naddr pfrio_size2
1794 #define pfrio_setflag pfrio_size2
1795 #define pfrio_clrflag pfrio_nadd
1796
1797 struct pfioc_iface {
1798 char pfiio_name[IFNAMSIZ];
1799 void *pfiio_buffer;
1800 int pfiio_esize;
1801 int pfiio_size;
1802 int pfiio_nzero;
1803 int pfiio_flags;
1804 };
1805
1806 /*
1807 * ioctl operations
1808 */
1809
1810 #define DIOCSTART _IO ('D', 1)
1811 #define DIOCSTOP _IO ('D', 2)
1812 #define DIOCADDRULE _IOWR('D', 4, struct pfioc_rule)
1813 #define DIOCADDRULENV _IOWR('D', 4, struct pfioc_nv)
1814 #define DIOCGETRULES _IOWR('D', 6, struct pfioc_rule)
1815 #define DIOCGETRULE _IOWR('D', 7, struct pfioc_rule)
1816 #define DIOCGETRULENV _IOWR('D', 7, struct pfioc_nv)
1817 /* XXX cut 8 - 17 */
1818 #define DIOCCLRSTATES _IOWR('D', 18, struct pfioc_state_kill)
1819 #define DIOCCLRSTATESNV _IOWR('D', 18, struct pfioc_nv)
1820 #define DIOCGETSTATE _IOWR('D', 19, struct pfioc_state)
1821 #define DIOCGETSTATENV _IOWR('D', 19, struct pfioc_nv)
1822 #define DIOCSETSTATUSIF _IOWR('D', 20, struct pfioc_if)
1823 #define DIOCGETSTATUS _IOWR('D', 21, struct pf_status)
1824 #define DIOCGETSTATUSNV _IOWR('D', 21, struct pfioc_nv)
1825 #define DIOCCLRSTATUS _IO ('D', 22)
1826 #define DIOCNATLOOK _IOWR('D', 23, struct pfioc_natlook)
1827 #define DIOCSETDEBUG _IOWR('D', 24, u_int32_t)
1828 #define DIOCGETSTATES _IOWR('D', 25, struct pfioc_states)
1829 #define DIOCCHANGERULE _IOWR('D', 26, struct pfioc_rule)
1830 /* XXX cut 26 - 28 */
1831 #define DIOCSETTIMEOUT _IOWR('D', 29, struct pfioc_tm)
1832 #define DIOCGETTIMEOUT _IOWR('D', 30, struct pfioc_tm)
1833 #define DIOCADDSTATE _IOWR('D', 37, struct pfioc_state)
1834 #define DIOCCLRRULECTRS _IO ('D', 38)
1835 #define DIOCGETLIMIT _IOWR('D', 39, struct pfioc_limit)
1836 #define DIOCSETLIMIT _IOWR('D', 40, struct pfioc_limit)
1837 #define DIOCKILLSTATES _IOWR('D', 41, struct pfioc_state_kill)
1838 #define DIOCKILLSTATESNV _IOWR('D', 41, struct pfioc_nv)
1839 #define DIOCSTARTALTQ _IO ('D', 42)
1840 #define DIOCSTOPALTQ _IO ('D', 43)
1841 #define DIOCADDALTQV0 _IOWR('D', 45, struct pfioc_altq_v0)
1842 #define DIOCADDALTQV1 _IOWR('D', 45, struct pfioc_altq_v1)
1843 #define DIOCGETALTQSV0 _IOWR('D', 47, struct pfioc_altq_v0)
1844 #define DIOCGETALTQSV1 _IOWR('D', 47, struct pfioc_altq_v1)
1845 #define DIOCGETALTQV0 _IOWR('D', 48, struct pfioc_altq_v0)
1846 #define DIOCGETALTQV1 _IOWR('D', 48, struct pfioc_altq_v1)
1847 #define DIOCCHANGEALTQV0 _IOWR('D', 49, struct pfioc_altq_v0)
1848 #define DIOCCHANGEALTQV1 _IOWR('D', 49, struct pfioc_altq_v1)
1849 #define DIOCGETQSTATSV0 _IOWR('D', 50, struct pfioc_qstats_v0)
1850 #define DIOCGETQSTATSV1 _IOWR('D', 50, struct pfioc_qstats_v1)
1851 #define DIOCBEGINADDRS _IOWR('D', 51, struct pfioc_pooladdr)
1852 #define DIOCADDADDR _IOWR('D', 52, struct pfioc_pooladdr)
1853 #define DIOCGETADDRS _IOWR('D', 53, struct pfioc_pooladdr)
1854 #define DIOCGETADDR _IOWR('D', 54, struct pfioc_pooladdr)
1855 #define DIOCCHANGEADDR _IOWR('D', 55, struct pfioc_pooladdr)
1856 /* XXX cut 55 - 57 */
1857 #define DIOCGETRULESETS _IOWR('D', 58, struct pfioc_ruleset)
1858 #define DIOCGETRULESET _IOWR('D', 59, struct pfioc_ruleset)
1859 #define DIOCRCLRTABLES _IOWR('D', 60, struct pfioc_table)
1860 #define DIOCRADDTABLES _IOWR('D', 61, struct pfioc_table)
1861 #define DIOCRDELTABLES _IOWR('D', 62, struct pfioc_table)
1862 #define DIOCRGETTABLES _IOWR('D', 63, struct pfioc_table)
1863 #define DIOCRGETTSTATS _IOWR('D', 64, struct pfioc_table)
1864 #define DIOCRCLRTSTATS _IOWR('D', 65, struct pfioc_table)
1865 #define DIOCRCLRADDRS _IOWR('D', 66, struct pfioc_table)
1866 #define DIOCRADDADDRS _IOWR('D', 67, struct pfioc_table)
1867 #define DIOCRDELADDRS _IOWR('D', 68, struct pfioc_table)
1868 #define DIOCRSETADDRS _IOWR('D', 69, struct pfioc_table)
1869 #define DIOCRGETADDRS _IOWR('D', 70, struct pfioc_table)
1870 #define DIOCRGETASTATS _IOWR('D', 71, struct pfioc_table)
1871 #define DIOCRCLRASTATS _IOWR('D', 72, struct pfioc_table)
1872 #define DIOCRTSTADDRS _IOWR('D', 73, struct pfioc_table)
1873 #define DIOCRSETTFLAGS _IOWR('D', 74, struct pfioc_table)
1874 #define DIOCRINADEFINE _IOWR('D', 77, struct pfioc_table)
1875 #define DIOCOSFPFLUSH _IO('D', 78)
1876 #define DIOCOSFPADD _IOWR('D', 79, struct pf_osfp_ioctl)
1877 #define DIOCOSFPGET _IOWR('D', 80, struct pf_osfp_ioctl)
1878 #define DIOCXBEGIN _IOWR('D', 81, struct pfioc_trans)
1879 #define DIOCXCOMMIT _IOWR('D', 82, struct pfioc_trans)
1880 #define DIOCXROLLBACK _IOWR('D', 83, struct pfioc_trans)
1881 #define DIOCGETSRCNODES _IOWR('D', 84, struct pfioc_src_nodes)
1882 #define DIOCCLRSRCNODES _IO('D', 85)
1883 #define DIOCSETHOSTID _IOWR('D', 86, u_int32_t)
1884 #define DIOCIGETIFACES _IOWR('D', 87, struct pfioc_iface)
1885 #define DIOCSETIFFLAG _IOWR('D', 89, struct pfioc_iface)
1886 #define DIOCCLRIFFLAG _IOWR('D', 90, struct pfioc_iface)
1887 #define DIOCKILLSRCNODES _IOWR('D', 91, struct pfioc_src_node_kill)
1888 #define DIOCGIFSPEEDV0 _IOWR('D', 92, struct pf_ifspeed_v0)
1889 #define DIOCGIFSPEEDV1 _IOWR('D', 92, struct pf_ifspeed_v1)
1890 #define DIOCGETSTATESV2 _IOWR('D', 93, struct pfioc_states_v2)
1891 #define DIOCGETSYNCOOKIES _IOWR('D', 94, struct pfioc_nv)
1892 #define DIOCSETSYNCOOKIES _IOWR('D', 95, struct pfioc_nv)
1893 #define DIOCKEEPCOUNTERS _IOWR('D', 96, struct pfioc_nv)
1894 #define DIOCKEEPCOUNTERS_FREEBSD13 _IOWR('D', 92, struct pfioc_nv)
1895 #define DIOCADDETHRULE _IOWR('D', 97, struct pfioc_nv)
1896 #define DIOCGETETHRULE _IOWR('D', 98, struct pfioc_nv)
1897 #define DIOCGETETHRULES _IOWR('D', 99, struct pfioc_nv)
1898 #define DIOCGETETHRULESETS _IOWR('D', 100, struct pfioc_nv)
1899 #define DIOCGETETHRULESET _IOWR('D', 101, struct pfioc_nv)
1900
1901 struct pf_ifspeed_v0 {
1902 char ifname[IFNAMSIZ];
1903 u_int32_t baudrate;
1904 };
1905
1906 struct pf_ifspeed_v1 {
1907 char ifname[IFNAMSIZ];
1908 u_int32_t baudrate32;
1909 /* layout identical to struct pf_ifspeed_v0 up to this point */
1910 u_int64_t baudrate;
1911 };
1912
1913 /* Latest version of struct pf_ifspeed_vX */
1914 #define PF_IFSPEED_VERSION 1
1915
1916 /*
1917 * Compatibility and convenience macros
1918 */
1919 #ifndef _KERNEL
1920 #ifdef PFIOC_USE_LATEST
1921 /*
1922 * Maintaining in-tree consumers of the ioctl interface is easier when that
1923 * code can be written in terms old names that refer to the latest interface
1924 * version as that reduces the required changes in the consumers to those
1925 * that are functionally necessary to accommodate a new interface version.
1926 */
1927 #define pfioc_altq __CONCAT(pfioc_altq_v, PFIOC_ALTQ_VERSION)
1928 #define pfioc_qstats __CONCAT(pfioc_qstats_v, PFIOC_QSTATS_VERSION)
1929 #define pf_ifspeed __CONCAT(pf_ifspeed_v, PF_IFSPEED_VERSION)
1930
1931 #define DIOCADDALTQ __CONCAT(DIOCADDALTQV, PFIOC_ALTQ_VERSION)
1932 #define DIOCGETALTQS __CONCAT(DIOCGETALTQSV, PFIOC_ALTQ_VERSION)
1933 #define DIOCGETALTQ __CONCAT(DIOCGETALTQV, PFIOC_ALTQ_VERSION)
1934 #define DIOCCHANGEALTQ __CONCAT(DIOCCHANGEALTQV, PFIOC_ALTQ_VERSION)
1935 #define DIOCGETQSTATS __CONCAT(DIOCGETQSTATSV, PFIOC_QSTATS_VERSION)
1936 #define DIOCGIFSPEED __CONCAT(DIOCGIFSPEEDV, PF_IFSPEED_VERSION)
1937 #else
1938 /*
1939 * When building out-of-tree code that is written for the old interface,
1940 * such as may exist in ports for example, resolve the old struct tags and
1941 * ioctl command names to the v0 versions.
1942 */
1943 #define pfioc_altq __CONCAT(pfioc_altq_v, 0)
1944 #define pfioc_qstats __CONCAT(pfioc_qstats_v, 0)
1945 #define pf_ifspeed __CONCAT(pf_ifspeed_v, 0)
1946
1947 #define DIOCADDALTQ __CONCAT(DIOCADDALTQV, 0)
1948 #define DIOCGETALTQS __CONCAT(DIOCGETALTQSV, 0)
1949 #define DIOCGETALTQ __CONCAT(DIOCGETALTQV, 0)
1950 #define DIOCCHANGEALTQ __CONCAT(DIOCCHANGEALTQV, 0)
1951 #define DIOCGETQSTATS __CONCAT(DIOCGETQSTATSV, 0)
1952 #define DIOCGIFSPEED __CONCAT(DIOCGIFSPEEDV, 0)
1953 #endif /* PFIOC_USE_LATEST */
1954 #endif /* _KERNEL */
1955
1956 #ifdef _KERNEL
1957 LIST_HEAD(pf_ksrc_node_list, pf_ksrc_node);
1958 struct pf_srchash {
1959 struct pf_ksrc_node_list nodes;
1960 struct mtx lock;
1961 };
1962
1963 struct pf_keyhash {
1964 LIST_HEAD(, pf_state_key) keys;
1965 struct mtx lock;
1966 };
1967
1968 struct pf_idhash {
1969 LIST_HEAD(, pf_kstate) states;
1970 struct mtx lock;
1971 };
1972
1973 extern u_long pf_ioctl_maxcount;
1974 extern u_long pf_hashmask;
1975 extern u_long pf_srchashmask;
1976 #define PF_HASHSIZ (131072)
1977 #define PF_SRCHASHSIZ (PF_HASHSIZ/4)
1978 VNET_DECLARE(struct pf_keyhash *, pf_keyhash);
1979 VNET_DECLARE(struct pf_idhash *, pf_idhash);
1980 #define V_pf_keyhash VNET(pf_keyhash)
1981 #define V_pf_idhash VNET(pf_idhash)
1982 VNET_DECLARE(struct pf_srchash *, pf_srchash);
1983 #define V_pf_srchash VNET(pf_srchash)
1984
1985 #define PF_IDHASH(s) (be64toh((s)->id) % (pf_hashmask + 1))
1986
1987 VNET_DECLARE(void *, pf_swi_cookie);
1988 #define V_pf_swi_cookie VNET(pf_swi_cookie)
1989 VNET_DECLARE(struct intr_event *, pf_swi_ie);
1990 #define V_pf_swi_ie VNET(pf_swi_ie)
1991
1992 VNET_DECLARE(struct unrhdr64, pf_stateid);
1993 #define V_pf_stateid VNET(pf_stateid)
1994
1995 TAILQ_HEAD(pf_altqqueue, pf_altq);
1996 VNET_DECLARE(struct pf_altqqueue, pf_altqs[4]);
1997 #define V_pf_altqs VNET(pf_altqs)
1998 VNET_DECLARE(struct pf_kpalist, pf_pabuf);
1999 #define V_pf_pabuf VNET(pf_pabuf)
2000
2001 VNET_DECLARE(u_int32_t, ticket_altqs_active);
2002 #define V_ticket_altqs_active VNET(ticket_altqs_active)
2003 VNET_DECLARE(u_int32_t, ticket_altqs_inactive);
2004 #define V_ticket_altqs_inactive VNET(ticket_altqs_inactive)
2005 VNET_DECLARE(int, altqs_inactive_open);
2006 #define V_altqs_inactive_open VNET(altqs_inactive_open)
2007 VNET_DECLARE(u_int32_t, ticket_pabuf);
2008 #define V_ticket_pabuf VNET(ticket_pabuf)
2009 VNET_DECLARE(struct pf_altqqueue *, pf_altqs_active);
2010 #define V_pf_altqs_active VNET(pf_altqs_active)
2011 VNET_DECLARE(struct pf_altqqueue *, pf_altq_ifs_active);
2012 #define V_pf_altq_ifs_active VNET(pf_altq_ifs_active)
2013 VNET_DECLARE(struct pf_altqqueue *, pf_altqs_inactive);
2014 #define V_pf_altqs_inactive VNET(pf_altqs_inactive)
2015 VNET_DECLARE(struct pf_altqqueue *, pf_altq_ifs_inactive);
2016 #define V_pf_altq_ifs_inactive VNET(pf_altq_ifs_inactive)
2017
2018 VNET_DECLARE(struct pf_krulequeue, pf_unlinked_rules);
2019 #define V_pf_unlinked_rules VNET(pf_unlinked_rules)
2020
2021 #ifdef PF_WANT_32_TO_64_COUNTER
2022 LIST_HEAD(allkiflist_head, pfi_kkif);
2023 VNET_DECLARE(struct allkiflist_head, pf_allkiflist);
2024 #define V_pf_allkiflist VNET(pf_allkiflist)
2025 VNET_DECLARE(size_t, pf_allkifcount);
2026 #define V_pf_allkifcount VNET(pf_allkifcount)
2027 VNET_DECLARE(struct pfi_kkif *, pf_kifmarker);
2028 #define V_pf_kifmarker VNET(pf_kifmarker)
2029
2030 LIST_HEAD(allrulelist_head, pf_krule);
2031 VNET_DECLARE(struct allrulelist_head, pf_allrulelist);
2032 #define V_pf_allrulelist VNET(pf_allrulelist)
2033 VNET_DECLARE(size_t, pf_allrulecount);
2034 #define V_pf_allrulecount VNET(pf_allrulecount)
2035 VNET_DECLARE(struct pf_krule *, pf_rulemarker);
2036 #define V_pf_rulemarker VNET(pf_rulemarker)
2037 #endif
2038
2039 void pf_initialize(void);
2040 void pf_mtag_initialize(void);
2041 void pf_mtag_cleanup(void);
2042 void pf_cleanup(void);
2043
2044 struct pf_mtag *pf_get_mtag(struct mbuf *);
2045
2046 extern void pf_calc_skip_steps(struct pf_krulequeue *);
2047 #ifdef ALTQ
2048 extern void pf_altq_ifnet_event(struct ifnet *, int);
2049 #endif
2050 VNET_DECLARE(uma_zone_t, pf_state_z);
2051 #define V_pf_state_z VNET(pf_state_z)
2052 VNET_DECLARE(uma_zone_t, pf_state_key_z);
2053 #define V_pf_state_key_z VNET(pf_state_key_z)
2054 VNET_DECLARE(uma_zone_t, pf_state_scrub_z);
2055 #define V_pf_state_scrub_z VNET(pf_state_scrub_z)
2056
2057 extern void pf_purge_thread(void *);
2058 extern void pf_unload_vnet_purge(void);
2059 extern void pf_intr(void *);
2060 extern void pf_purge_expired_src_nodes(void);
2061
2062 extern int pf_unlink_state(struct pf_kstate *);
2063 extern int pf_state_insert(struct pfi_kkif *,
2064 struct pfi_kkif *,
2065 struct pf_state_key *,
2066 struct pf_state_key *,
2067 struct pf_kstate *);
2068 extern struct pf_kstate *pf_alloc_state(int);
2069 extern void pf_free_state(struct pf_kstate *);
2070
2071 static __inline void
2072 pf_ref_state(struct pf_kstate *s)
2073 {
2074
2075 refcount_acquire(&s->refs);
2076 }
2077
2078 static __inline int
2079 pf_release_state(struct pf_kstate *s)
2080 {
2081
2082 if (refcount_release(&s->refs)) {
2083 pf_free_state(s);
2084 return (1);
2085 } else
2086 return (0);
2087 }
2088
2089 static __inline int
2090 pf_release_staten(struct pf_kstate *s, u_int n)
2091 {
2092
2093 if (refcount_releasen(&s->refs, n)) {
2094 pf_free_state(s);
2095 return (1);
2096 } else
2097 return (0);
2098 }
2099
2100 extern struct pf_kstate *pf_find_state_byid(uint64_t, uint32_t);
2101 extern struct pf_kstate *pf_find_state_all(struct pf_state_key_cmp *,
2102 u_int, int *);
2103 extern bool pf_find_state_all_exists(struct pf_state_key_cmp *,
2104 u_int);
2105 extern struct pf_ksrc_node *pf_find_src_node(struct pf_addr *,
2106 struct pf_krule *, sa_family_t, int);
2107 extern void pf_unlink_src_node(struct pf_ksrc_node *);
2108 extern u_int pf_free_src_nodes(struct pf_ksrc_node_list *);
2109 extern void pf_print_state(struct pf_kstate *);
2110 extern void pf_print_flags(u_int8_t);
2111 extern u_int16_t pf_cksum_fixup(u_int16_t, u_int16_t, u_int16_t,
2112 u_int8_t);
2113 extern u_int16_t pf_proto_cksum_fixup(struct mbuf *, u_int16_t,
2114 u_int16_t, u_int16_t, u_int8_t);
2115
2116 VNET_DECLARE(struct ifnet *, sync_ifp);
2117 #define V_sync_ifp VNET(sync_ifp);
2118 VNET_DECLARE(struct pf_krule, pf_default_rule);
2119 #define V_pf_default_rule VNET(pf_default_rule)
2120 extern void pf_addrcpy(struct pf_addr *, struct pf_addr *,
2121 u_int8_t);
2122 void pf_free_rule(struct pf_krule *);
2123
2124 int pf_test_eth(int, int, struct ifnet *, struct mbuf **, struct inpcb *);
2125 #ifdef INET
2126 int pf_test(int, int, struct ifnet *, struct mbuf **, struct inpcb *);
2127 int pf_normalize_ip(struct mbuf **, int, struct pfi_kkif *, u_short *,
2128 struct pf_pdesc *);
2129 #endif /* INET */
2130
2131 #ifdef INET6
2132 int pf_test6(int, int, struct ifnet *, struct mbuf **, struct inpcb *);
2133 int pf_normalize_ip6(struct mbuf **, int, struct pfi_kkif *, u_short *,
2134 struct pf_pdesc *);
2135 void pf_poolmask(struct pf_addr *, struct pf_addr*,
2136 struct pf_addr *, struct pf_addr *, u_int8_t);
2137 void pf_addr_inc(struct pf_addr *, sa_family_t);
2138 int pf_refragment6(struct ifnet *, struct mbuf **, struct m_tag *);
2139 #endif /* INET6 */
2140
2141 u_int32_t pf_new_isn(struct pf_kstate *);
2142 void *pf_pull_hdr(struct mbuf *, int, void *, int, u_short *, u_short *,
2143 sa_family_t);
2144 void pf_change_a(void *, u_int16_t *, u_int32_t, u_int8_t);
2145 void pf_change_proto_a(struct mbuf *, void *, u_int16_t *, u_int32_t,
2146 u_int8_t);
2147 void pf_change_tcp_a(struct mbuf *, void *, u_int16_t *, u_int32_t);
2148 void pf_patch_16_unaligned(struct mbuf *, u_int16_t *, void *, u_int16_t,
2149 bool, u_int8_t);
2150 void pf_patch_32_unaligned(struct mbuf *, u_int16_t *, void *, u_int32_t,
2151 bool, u_int8_t);
2152 void pf_send_deferred_syn(struct pf_kstate *);
2153 int pf_match_addr(u_int8_t, struct pf_addr *, struct pf_addr *,
2154 struct pf_addr *, sa_family_t);
2155 int pf_match_addr_range(struct pf_addr *, struct pf_addr *,
2156 struct pf_addr *, sa_family_t);
2157 int pf_match_port(u_int8_t, u_int16_t, u_int16_t, u_int16_t);
2158
2159 void pf_normalize_init(void);
2160 void pf_normalize_cleanup(void);
2161 int pf_normalize_tcp(int, struct pfi_kkif *, struct mbuf *, int, int, void *,
2162 struct pf_pdesc *);
2163 void pf_normalize_tcp_cleanup(struct pf_kstate *);
2164 int pf_normalize_tcp_init(struct mbuf *, int, struct pf_pdesc *,
2165 struct tcphdr *, struct pf_state_peer *, struct pf_state_peer *);
2166 int pf_normalize_tcp_stateful(struct mbuf *, int, struct pf_pdesc *,
2167 u_short *, struct tcphdr *, struct pf_kstate *,
2168 struct pf_state_peer *, struct pf_state_peer *, int *);
2169 u_int32_t
2170 pf_state_expires(const struct pf_kstate *);
2171 void pf_purge_expired_fragments(void);
2172 void pf_purge_fragments(uint32_t);
2173 int pf_routable(struct pf_addr *addr, sa_family_t af, struct pfi_kkif *,
2174 int);
2175 int pf_socket_lookup(int, struct pf_pdesc *, struct mbuf *);
2176 struct pf_state_key *pf_alloc_state_key(int);
2177 void pfr_initialize(void);
2178 void pfr_cleanup(void);
2179 int pfr_match_addr(struct pfr_ktable *, struct pf_addr *, sa_family_t);
2180 void pfr_update_stats(struct pfr_ktable *, struct pf_addr *, sa_family_t,
2181 u_int64_t, int, int, int);
2182 int pfr_pool_get(struct pfr_ktable *, int *, struct pf_addr *, sa_family_t);
2183 void pfr_dynaddr_update(struct pfr_ktable *, struct pfi_dynaddr *);
2184 struct pfr_ktable *
2185 pfr_attach_table(struct pf_kruleset *, char *);
2186 struct pfr_ktable *
2187 pfr_eth_attach_table(struct pf_keth_ruleset *, char *);
2188 void pfr_detach_table(struct pfr_ktable *);
2189 int pfr_clr_tables(struct pfr_table *, int *, int);
2190 int pfr_add_tables(struct pfr_table *, int, int *, int);
2191 int pfr_del_tables(struct pfr_table *, int, int *, int);
2192 int pfr_table_count(struct pfr_table *, int);
2193 int pfr_get_tables(struct pfr_table *, struct pfr_table *, int *, int);
2194 int pfr_get_tstats(struct pfr_table *, struct pfr_tstats *, int *, int);
2195 int pfr_clr_tstats(struct pfr_table *, int, int *, int);
2196 int pfr_set_tflags(struct pfr_table *, int, int, int, int *, int *, int);
2197 int pfr_clr_addrs(struct pfr_table *, int *, int);
2198 int pfr_insert_kentry(struct pfr_ktable *, struct pfr_addr *, long);
2199 int pfr_add_addrs(struct pfr_table *, struct pfr_addr *, int, int *,
2200 int);
2201 int pfr_del_addrs(struct pfr_table *, struct pfr_addr *, int, int *,
2202 int);
2203 int pfr_set_addrs(struct pfr_table *, struct pfr_addr *, int, int *,
2204 int *, int *, int *, int, u_int32_t);
2205 int pfr_get_addrs(struct pfr_table *, struct pfr_addr *, int *, int);
2206 int pfr_get_astats(struct pfr_table *, struct pfr_astats *, int *, int);
2207 int pfr_clr_astats(struct pfr_table *, struct pfr_addr *, int, int *,
2208 int);
2209 int pfr_tst_addrs(struct pfr_table *, struct pfr_addr *, int, int *,
2210 int);
2211 int pfr_ina_begin(struct pfr_table *, u_int32_t *, int *, int);
2212 int pfr_ina_rollback(struct pfr_table *, u_int32_t, int *, int);
2213 int pfr_ina_commit(struct pfr_table *, u_int32_t, int *, int *, int);
2214 int pfr_ina_define(struct pfr_table *, struct pfr_addr *, int, int *,
2215 int *, u_int32_t, int);
2216
2217 MALLOC_DECLARE(PFI_MTYPE);
2218 VNET_DECLARE(struct pfi_kkif *, pfi_all);
2219 #define V_pfi_all VNET(pfi_all)
2220
2221 void pfi_initialize(void);
2222 void pfi_initialize_vnet(void);
2223 void pfi_cleanup(void);
2224 void pfi_cleanup_vnet(void);
2225 void pfi_kkif_ref(struct pfi_kkif *);
2226 void pfi_kkif_unref(struct pfi_kkif *);
2227 struct pfi_kkif *pfi_kkif_find(const char *);
2228 struct pfi_kkif *pfi_kkif_attach(struct pfi_kkif *, const char *);
2229 int pfi_kkif_match(struct pfi_kkif *, struct pfi_kkif *);
2230 void pfi_kkif_purge(void);
2231 int pfi_match_addr(struct pfi_dynaddr *, struct pf_addr *,
2232 sa_family_t);
2233 int pfi_dynaddr_setup(struct pf_addr_wrap *, sa_family_t);
2234 void pfi_dynaddr_remove(struct pfi_dynaddr *);
2235 void pfi_dynaddr_copyout(struct pf_addr_wrap *);
2236 void pfi_update_status(const char *, struct pf_status *);
2237 void pfi_get_ifaces(const char *, struct pfi_kif *, int *);
2238 int pfi_set_flags(const char *, int);
2239 int pfi_clear_flags(const char *, int);
2240
2241 int pf_match_tag(struct mbuf *, struct pf_krule *, int *, int);
2242 int pf_tag_packet(struct mbuf *, struct pf_pdesc *, int);
2243 int pf_addr_cmp(struct pf_addr *, struct pf_addr *,
2244 sa_family_t);
2245
2246 u_int16_t pf_get_mss(struct mbuf *, int, u_int16_t, sa_family_t);
2247 u_int8_t pf_get_wscale(struct mbuf *, int, u_int16_t, sa_family_t);
2248 struct mbuf *pf_build_tcp(const struct pf_krule *, sa_family_t,
2249 const struct pf_addr *, const struct pf_addr *,
2250 u_int16_t, u_int16_t, u_int32_t, u_int32_t,
2251 u_int8_t, u_int16_t, u_int16_t, u_int8_t, int,
2252 u_int16_t);
2253 void pf_send_tcp(const struct pf_krule *, sa_family_t,
2254 const struct pf_addr *, const struct pf_addr *,
2255 u_int16_t, u_int16_t, u_int32_t, u_int32_t,
2256 u_int8_t, u_int16_t, u_int16_t, u_int8_t, int,
2257 u_int16_t);
2258
2259 void pf_syncookies_init(void);
2260 void pf_syncookies_cleanup(void);
2261 int pf_get_syncookies(struct pfioc_nv *);
2262 int pf_set_syncookies(struct pfioc_nv *);
2263 int pf_synflood_check(struct pf_pdesc *);
2264 void pf_syncookie_send(struct mbuf *m, int off,
2265 struct pf_pdesc *);
2266 bool pf_syncookie_check(struct pf_pdesc *);
2267 u_int8_t pf_syncookie_validate(struct pf_pdesc *);
2268 struct mbuf * pf_syncookie_recreate_syn(uint8_t, int,
2269 struct pf_pdesc *);
2270
2271 VNET_DECLARE(struct pf_kstatus, pf_status);
2272 #define V_pf_status VNET(pf_status)
2273
2274 struct pf_limit {
2275 uma_zone_t zone;
2276 u_int limit;
2277 };
2278 VNET_DECLARE(struct pf_limit, pf_limits[PF_LIMIT_MAX]);
2279 #define V_pf_limits VNET(pf_limits)
2280
2281 #endif /* _KERNEL */
2282
2283 #ifdef _KERNEL
2284 VNET_DECLARE(struct pf_kanchor_global, pf_anchors);
2285 #define V_pf_anchors VNET(pf_anchors)
2286 VNET_DECLARE(struct pf_kanchor, pf_main_anchor);
2287 #define V_pf_main_anchor VNET(pf_main_anchor)
2288 VNET_DECLARE(struct pf_keth_anchor_global, pf_keth_anchors);
2289 #define V_pf_keth_anchors VNET(pf_keth_anchors)
2290 #define pf_main_ruleset V_pf_main_anchor.ruleset
2291
2292 VNET_DECLARE(struct pf_keth_anchor, pf_main_keth_anchor);
2293 #define V_pf_main_keth_anchor VNET(pf_main_keth_anchor)
2294 VNET_DECLARE(struct pf_keth_ruleset*, pf_keth);
2295 #define V_pf_keth VNET(pf_keth)
2296
2297 void pf_init_kruleset(struct pf_kruleset *);
2298 void pf_init_keth(struct pf_keth_ruleset *);
2299 int pf_kanchor_setup(struct pf_krule *,
2300 const struct pf_kruleset *, const char *);
2301 int pf_kanchor_nvcopyout(const struct pf_kruleset *,
2302 const struct pf_krule *, nvlist_t *);
2303 int pf_kanchor_copyout(const struct pf_kruleset *,
2304 const struct pf_krule *, struct pfioc_rule *);
2305 void pf_kanchor_remove(struct pf_krule *);
2306 void pf_remove_if_empty_kruleset(struct pf_kruleset *);
2307 struct pf_kruleset *pf_find_kruleset(const char *);
2308 struct pf_kruleset *pf_find_or_create_kruleset(const char *);
2309 void pf_rs_initialize(void);
2310
2311
2312 struct pf_krule *pf_krule_alloc(void);
2313
2314 void pf_remove_if_empty_keth_ruleset(
2315 struct pf_keth_ruleset *);
2316 struct pf_keth_ruleset *pf_find_keth_ruleset(const char *);
2317 struct pf_keth_anchor *pf_find_keth_anchor(const char *);
2318 int pf_keth_anchor_setup(struct pf_keth_rule *,
2319 const struct pf_keth_ruleset *, const char *);
2320 int pf_keth_anchor_nvcopyout(
2321 const struct pf_keth_ruleset *,
2322 const struct pf_keth_rule *, nvlist_t *);
2323 struct pf_keth_ruleset *pf_find_or_create_keth_ruleset(const char *);
2324 void pf_keth_anchor_remove(struct pf_keth_rule *);
2325
2326 void pf_krule_free(struct pf_krule *);
2327 #endif
2328
2329 /* The fingerprint functions can be linked into userland programs (tcpdump) */
2330 int pf_osfp_add(struct pf_osfp_ioctl *);
2331 #ifdef _KERNEL
2332 struct pf_osfp_enlist *
2333 pf_osfp_fingerprint(struct pf_pdesc *, struct mbuf *, int,
2334 const struct tcphdr *);
2335 #endif /* _KERNEL */
2336 void pf_osfp_flush(void);
2337 int pf_osfp_get(struct pf_osfp_ioctl *);
2338 int pf_osfp_match(struct pf_osfp_enlist *, pf_osfp_t);
2339
2340 #ifdef _KERNEL
2341 void pf_print_host(struct pf_addr *, u_int16_t, u_int8_t);
2342
2343 void pf_step_into_anchor(struct pf_kanchor_stackframe *, int *,
2344 struct pf_kruleset **, int, struct pf_krule **,
2345 struct pf_krule **, int *);
2346 int pf_step_out_of_anchor(struct pf_kanchor_stackframe *, int *,
2347 struct pf_kruleset **, int, struct pf_krule **,
2348 struct pf_krule **, int *);
2349 void pf_step_into_keth_anchor(struct pf_keth_anchor_stackframe *,
2350 int *, struct pf_keth_ruleset **,
2351 struct pf_keth_rule **, struct pf_keth_rule **,
2352 int *);
2353 int pf_step_out_of_keth_anchor(struct pf_keth_anchor_stackframe *,
2354 int *, struct pf_keth_ruleset **,
2355 struct pf_keth_rule **, struct pf_keth_rule **,
2356 int *);
2357
2358 int pf_map_addr(u_int8_t, struct pf_krule *,
2359 struct pf_addr *, struct pf_addr *,
2360 struct pf_addr *, struct pf_ksrc_node **);
2361 struct pf_krule *pf_get_translation(struct pf_pdesc *, struct mbuf *,
2362 int, int, struct pfi_kkif *, struct pf_ksrc_node **,
2363 struct pf_state_key **, struct pf_state_key **,
2364 struct pf_addr *, struct pf_addr *,
2365 uint16_t, uint16_t, struct pf_kanchor_stackframe *);
2366
2367 struct pf_state_key *pf_state_key_setup(struct pf_pdesc *, struct pf_addr *,
2368 struct pf_addr *, u_int16_t, u_int16_t);
2369 struct pf_state_key *pf_state_key_clone(struct pf_state_key *);
2370
2371 struct pfi_kkif *pf_kkif_create(int);
2372 void pf_kkif_free(struct pfi_kkif *);
2373 void pf_kkif_zero(struct pfi_kkif *);
2374 #endif /* _KERNEL */
2375
2376 #endif /* _NET_PFVAR_H_ */
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