npf_ruleset.c revision 1.24 1 1.24 rmind /* $NetBSD: npf_ruleset.c,v 1.24 2013/09/19 01:04:46 rmind Exp $ */
2 1.1 rmind
3 1.1 rmind /*-
4 1.17 rmind * Copyright (c) 2009-2013 The NetBSD Foundation, Inc.
5 1.1 rmind * All rights reserved.
6 1.1 rmind *
7 1.1 rmind * This material is based upon work partially supported by The
8 1.1 rmind * NetBSD Foundation under a contract with Mindaugas Rasiukevicius.
9 1.1 rmind *
10 1.1 rmind * Redistribution and use in source and binary forms, with or without
11 1.1 rmind * modification, are permitted provided that the following conditions
12 1.1 rmind * are met:
13 1.1 rmind * 1. Redistributions of source code must retain the above copyright
14 1.1 rmind * notice, this list of conditions and the following disclaimer.
15 1.1 rmind * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 rmind * notice, this list of conditions and the following disclaimer in the
17 1.1 rmind * documentation and/or other materials provided with the distribution.
18 1.1 rmind *
19 1.1 rmind * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 rmind * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 rmind * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 rmind * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 rmind * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 rmind * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 rmind * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 rmind * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 rmind * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 rmind * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 rmind * POSSIBILITY OF SUCH DAMAGE.
30 1.1 rmind */
31 1.1 rmind
32 1.1 rmind /*
33 1.1 rmind * NPF ruleset module.
34 1.1 rmind */
35 1.1 rmind
36 1.1 rmind #include <sys/cdefs.h>
37 1.24 rmind __KERNEL_RCSID(0, "$NetBSD: npf_ruleset.c,v 1.24 2013/09/19 01:04:46 rmind Exp $");
38 1.1 rmind
39 1.1 rmind #include <sys/param.h>
40 1.11 rmind #include <sys/types.h>
41 1.1 rmind
42 1.20 rmind #include <sys/atomic.h>
43 1.1 rmind #include <sys/kmem.h>
44 1.1 rmind #include <sys/queue.h>
45 1.17 rmind #include <sys/mbuf.h>
46 1.1 rmind #include <sys/types.h>
47 1.1 rmind
48 1.17 rmind #include <net/bpf.h>
49 1.20 rmind #include <net/bpfjit.h>
50 1.3 rmind #include <net/pfil.h>
51 1.1 rmind #include <net/if.h>
52 1.1 rmind
53 1.1 rmind #include "npf_ncode.h"
54 1.1 rmind #include "npf_impl.h"
55 1.1 rmind
56 1.4 rmind struct npf_ruleset {
57 1.18 rmind /*
58 1.18 rmind * - List of all rules.
59 1.18 rmind * - Dynamic (i.e. named) rules.
60 1.18 rmind * - G/C list for convenience.
61 1.18 rmind */
62 1.17 rmind LIST_HEAD(, npf_rule) rs_all;
63 1.17 rmind LIST_HEAD(, npf_rule) rs_dynamic;
64 1.18 rmind LIST_HEAD(, npf_rule) rs_gc;
65 1.17 rmind
66 1.19 rmind /* Unique ID counter. */
67 1.19 rmind uint64_t rs_idcnt;
68 1.19 rmind
69 1.17 rmind /* Number of array slots and active rules. */
70 1.17 rmind u_int rs_slots;
71 1.17 rmind u_int rs_nitems;
72 1.17 rmind
73 1.17 rmind /* Array of ordered rules. */
74 1.17 rmind npf_rule_t * rs_rules[];
75 1.4 rmind };
76 1.4 rmind
77 1.1 rmind struct npf_rule {
78 1.17 rmind /* Attributes, interface and skip slot. */
79 1.4 rmind uint32_t r_attr;
80 1.4 rmind u_int r_ifid;
81 1.17 rmind u_int r_skip_to;
82 1.17 rmind
83 1.17 rmind /* Code to process, if any. */
84 1.17 rmind int r_type;
85 1.20 rmind bpfjit_function_t r_jcode;
86 1.17 rmind void * r_code;
87 1.17 rmind size_t r_clen;
88 1.17 rmind
89 1.17 rmind /* NAT policy (optional), rule procedure and subset. */
90 1.17 rmind npf_natpolicy_t * r_natp;
91 1.4 rmind npf_rproc_t * r_rproc;
92 1.17 rmind
93 1.17 rmind /* Rule priority: (highest) 1, 2 ... n (lowest). */
94 1.17 rmind pri_t r_priority;
95 1.17 rmind
96 1.17 rmind /*
97 1.17 rmind * Dynamic group: subset queue and a dynamic group list entry.
98 1.17 rmind * Dynamic rule: entry and the parent rule (the group).
99 1.17 rmind */
100 1.17 rmind union {
101 1.17 rmind TAILQ_HEAD(npf_ruleq, npf_rule) r_subset;
102 1.17 rmind TAILQ_ENTRY(npf_rule) r_entry;
103 1.17 rmind } /* C11 */;
104 1.17 rmind union {
105 1.17 rmind LIST_ENTRY(npf_rule) r_dentry;
106 1.17 rmind npf_rule_t * r_parent;
107 1.17 rmind } /* C11 */;
108 1.17 rmind
109 1.19 rmind /* Rule ID and the original dictionary. */
110 1.19 rmind uint64_t r_id;
111 1.18 rmind prop_dictionary_t r_dict;
112 1.18 rmind
113 1.17 rmind /* Rule name and all-list entry. */
114 1.17 rmind char r_name[NPF_RULE_MAXNAMELEN];
115 1.17 rmind LIST_ENTRY(npf_rule) r_aentry;
116 1.17 rmind
117 1.17 rmind /* Key (optional). */
118 1.17 rmind uint8_t r_key[NPF_RULE_MAXKEYLEN];
119 1.1 rmind };
120 1.1 rmind
121 1.17 rmind #define NPF_DYNAMIC_GROUP_P(attr) \
122 1.17 rmind (((attr) & NPF_DYNAMIC_GROUP) == NPF_DYNAMIC_GROUP)
123 1.17 rmind
124 1.19 rmind #define NPF_DYNAMIC_RULE_P(attr) \
125 1.19 rmind (((attr) & NPF_DYNAMIC_GROUP) == NPF_RULE_DYNAMIC)
126 1.19 rmind
127 1.1 rmind npf_ruleset_t *
128 1.17 rmind npf_ruleset_create(size_t slots)
129 1.1 rmind {
130 1.17 rmind size_t len = offsetof(npf_ruleset_t, rs_rules[slots]);
131 1.1 rmind npf_ruleset_t *rlset;
132 1.1 rmind
133 1.17 rmind rlset = kmem_zalloc(len, KM_SLEEP);
134 1.17 rmind LIST_INIT(&rlset->rs_dynamic);
135 1.17 rmind LIST_INIT(&rlset->rs_all);
136 1.19 rmind LIST_INIT(&rlset->rs_gc);
137 1.19 rmind rlset->rs_slots = slots;
138 1.19 rmind
139 1.1 rmind return rlset;
140 1.1 rmind }
141 1.1 rmind
142 1.17 rmind static void
143 1.17 rmind npf_ruleset_unlink(npf_ruleset_t *rlset, npf_rule_t *rl)
144 1.17 rmind {
145 1.17 rmind if (NPF_DYNAMIC_GROUP_P(rl->r_attr)) {
146 1.17 rmind LIST_REMOVE(rl, r_dentry);
147 1.17 rmind }
148 1.19 rmind if (NPF_DYNAMIC_RULE_P(rl->r_attr)) {
149 1.17 rmind npf_rule_t *rg = rl->r_parent;
150 1.17 rmind TAILQ_REMOVE(&rg->r_subset, rl, r_entry);
151 1.17 rmind }
152 1.17 rmind LIST_REMOVE(rl, r_aentry);
153 1.17 rmind }
154 1.17 rmind
155 1.1 rmind void
156 1.1 rmind npf_ruleset_destroy(npf_ruleset_t *rlset)
157 1.1 rmind {
158 1.17 rmind size_t len = offsetof(npf_ruleset_t, rs_rules[rlset->rs_slots]);
159 1.1 rmind npf_rule_t *rl;
160 1.1 rmind
161 1.17 rmind while ((rl = LIST_FIRST(&rlset->rs_all)) != NULL) {
162 1.17 rmind npf_ruleset_unlink(rlset, rl);
163 1.1 rmind npf_rule_free(rl);
164 1.1 rmind }
165 1.17 rmind KASSERT(LIST_EMPTY(&rlset->rs_dynamic));
166 1.18 rmind KASSERT(LIST_EMPTY(&rlset->rs_gc));
167 1.17 rmind kmem_free(rlset, len);
168 1.1 rmind }
169 1.1 rmind
170 1.1 rmind /*
171 1.1 rmind * npf_ruleset_insert: insert the rule into the specified ruleset.
172 1.1 rmind */
173 1.1 rmind void
174 1.1 rmind npf_ruleset_insert(npf_ruleset_t *rlset, npf_rule_t *rl)
175 1.1 rmind {
176 1.17 rmind u_int n = rlset->rs_nitems;
177 1.17 rmind
178 1.17 rmind KASSERT(n < rlset->rs_slots);
179 1.17 rmind
180 1.17 rmind LIST_INSERT_HEAD(&rlset->rs_all, rl, r_aentry);
181 1.17 rmind if (NPF_DYNAMIC_GROUP_P(rl->r_attr)) {
182 1.17 rmind LIST_INSERT_HEAD(&rlset->rs_dynamic, rl, r_dentry);
183 1.24 rmind } else {
184 1.24 rmind KASSERTMSG(rl->r_parent == NULL, "cannot be dynamic rule");
185 1.24 rmind rl->r_attr &= ~NPF_RULE_DYNAMIC;
186 1.17 rmind }
187 1.17 rmind
188 1.17 rmind rlset->rs_rules[n] = rl;
189 1.17 rmind rlset->rs_nitems++;
190 1.17 rmind
191 1.17 rmind if (rl->r_skip_to < ++n) {
192 1.17 rmind rl->r_skip_to = n;
193 1.17 rmind }
194 1.17 rmind }
195 1.17 rmind
196 1.17 rmind static npf_rule_t *
197 1.17 rmind npf_ruleset_lookup(npf_ruleset_t *rlset, const char *name)
198 1.17 rmind {
199 1.17 rmind npf_rule_t *rl;
200 1.17 rmind
201 1.17 rmind KASSERT(npf_config_locked_p());
202 1.17 rmind
203 1.17 rmind LIST_FOREACH(rl, &rlset->rs_dynamic, r_dentry) {
204 1.17 rmind KASSERT(NPF_DYNAMIC_GROUP_P(rl->r_attr));
205 1.17 rmind if (strncmp(rl->r_name, name, NPF_RULE_MAXNAMELEN) == 0)
206 1.17 rmind break;
207 1.17 rmind }
208 1.17 rmind return rl;
209 1.17 rmind }
210 1.17 rmind
211 1.17 rmind int
212 1.17 rmind npf_ruleset_add(npf_ruleset_t *rlset, const char *rname, npf_rule_t *rl)
213 1.17 rmind {
214 1.17 rmind npf_rule_t *rg, *it;
215 1.17 rmind pri_t priocmd;
216 1.17 rmind
217 1.17 rmind rg = npf_ruleset_lookup(rlset, rname);
218 1.17 rmind if (rg == NULL) {
219 1.19 rmind return ESRCH;
220 1.19 rmind }
221 1.19 rmind if (!NPF_DYNAMIC_RULE_P(rl->r_attr)) {
222 1.19 rmind return EINVAL;
223 1.17 rmind }
224 1.17 rmind
225 1.19 rmind /* Dynamic rule - assign a unique ID and save the parent. */
226 1.19 rmind rl->r_id = ++rlset->rs_idcnt;
227 1.17 rmind rl->r_parent = rg;
228 1.17 rmind
229 1.17 rmind /*
230 1.17 rmind * Rule priority: (highest) 1, 2 ... n (lowest).
231 1.17 rmind * Negative priority indicates an operation and is reset to zero.
232 1.17 rmind */
233 1.17 rmind if ((priocmd = rl->r_priority) < 0) {
234 1.17 rmind rl->r_priority = 0;
235 1.17 rmind }
236 1.17 rmind
237 1.17 rmind switch (priocmd) {
238 1.17 rmind case NPF_PRI_FIRST:
239 1.17 rmind TAILQ_FOREACH(it, &rg->r_subset, r_entry) {
240 1.17 rmind if (rl->r_priority <= it->r_priority)
241 1.17 rmind break;
242 1.17 rmind }
243 1.17 rmind if (it) {
244 1.17 rmind TAILQ_INSERT_BEFORE(it, rl, r_entry);
245 1.17 rmind } else {
246 1.17 rmind TAILQ_INSERT_HEAD(&rg->r_subset, rl, r_entry);
247 1.17 rmind }
248 1.17 rmind break;
249 1.17 rmind case NPF_PRI_LAST:
250 1.17 rmind default:
251 1.17 rmind TAILQ_FOREACH(it, &rg->r_subset, r_entry) {
252 1.17 rmind if (rl->r_priority < it->r_priority)
253 1.17 rmind break;
254 1.17 rmind }
255 1.17 rmind if (it) {
256 1.17 rmind TAILQ_INSERT_BEFORE(it, rl, r_entry);
257 1.17 rmind } else {
258 1.17 rmind TAILQ_INSERT_TAIL(&rg->r_subset, rl, r_entry);
259 1.17 rmind }
260 1.17 rmind break;
261 1.17 rmind }
262 1.17 rmind
263 1.17 rmind /* Finally, add into the all-list. */
264 1.17 rmind LIST_INSERT_HEAD(&rlset->rs_all, rl, r_aentry);
265 1.17 rmind return 0;
266 1.17 rmind }
267 1.17 rmind
268 1.18 rmind int
269 1.19 rmind npf_ruleset_remove(npf_ruleset_t *rlset, const char *rname, uint64_t id)
270 1.17 rmind {
271 1.17 rmind npf_rule_t *rg, *rl;
272 1.17 rmind
273 1.17 rmind if ((rg = npf_ruleset_lookup(rlset, rname)) == NULL) {
274 1.19 rmind return ESRCH;
275 1.17 rmind }
276 1.17 rmind TAILQ_FOREACH(rl, &rg->r_subset, r_entry) {
277 1.24 rmind KASSERT(rl->r_parent == rg);
278 1.24 rmind
279 1.17 rmind /* Compare ID. On match, remove and return. */
280 1.19 rmind if (rl->r_id == id) {
281 1.17 rmind npf_ruleset_unlink(rlset, rl);
282 1.18 rmind LIST_INSERT_HEAD(&rlset->rs_gc, rl, r_aentry);
283 1.19 rmind return 0;
284 1.17 rmind }
285 1.17 rmind }
286 1.19 rmind return ENOENT;
287 1.17 rmind }
288 1.17 rmind
289 1.18 rmind int
290 1.17 rmind npf_ruleset_remkey(npf_ruleset_t *rlset, const char *rname,
291 1.17 rmind const void *key, size_t len)
292 1.17 rmind {
293 1.17 rmind npf_rule_t *rg, *rl;
294 1.1 rmind
295 1.17 rmind KASSERT(len && len <= NPF_RULE_MAXKEYLEN);
296 1.17 rmind
297 1.17 rmind if ((rg = npf_ruleset_lookup(rlset, rname)) == NULL) {
298 1.19 rmind return ESRCH;
299 1.17 rmind }
300 1.18 rmind
301 1.17 rmind /* Find the last in the list. */
302 1.17 rmind TAILQ_FOREACH_REVERSE(rl, &rg->r_subset, npf_ruleq, r_entry) {
303 1.24 rmind KASSERT(rl->r_parent == rg);
304 1.24 rmind
305 1.17 rmind /* Compare the key. On match, remove and return. */
306 1.17 rmind if (memcmp(rl->r_key, key, len) == 0) {
307 1.17 rmind npf_ruleset_unlink(rlset, rl);
308 1.18 rmind LIST_INSERT_HEAD(&rlset->rs_gc, rl, r_aentry);
309 1.19 rmind return 0;
310 1.17 rmind }
311 1.1 rmind }
312 1.19 rmind return ENOENT;
313 1.18 rmind }
314 1.18 rmind
315 1.18 rmind prop_dictionary_t
316 1.18 rmind npf_ruleset_list(npf_ruleset_t *rlset, const char *rname)
317 1.18 rmind {
318 1.18 rmind prop_dictionary_t rldict;
319 1.18 rmind prop_array_t rules;
320 1.18 rmind npf_rule_t *rg, *rl;
321 1.18 rmind
322 1.18 rmind if ((rg = npf_ruleset_lookup(rlset, rname)) == NULL) {
323 1.18 rmind return NULL;
324 1.18 rmind }
325 1.18 rmind if ((rldict = prop_dictionary_create()) == NULL) {
326 1.18 rmind return NULL;
327 1.18 rmind }
328 1.18 rmind if ((rules = prop_array_create()) == NULL) {
329 1.18 rmind prop_object_release(rldict);
330 1.18 rmind return NULL;
331 1.18 rmind }
332 1.18 rmind
333 1.18 rmind TAILQ_FOREACH(rl, &rg->r_subset, r_entry) {
334 1.24 rmind KASSERT(rl->r_parent == rg);
335 1.18 rmind if (rl->r_dict && !prop_array_add(rules, rl->r_dict)) {
336 1.18 rmind prop_object_release(rldict);
337 1.19 rmind prop_object_release(rules);
338 1.18 rmind return NULL;
339 1.18 rmind }
340 1.18 rmind }
341 1.19 rmind
342 1.18 rmind if (!prop_dictionary_set(rldict, "rules", rules)) {
343 1.18 rmind prop_object_release(rldict);
344 1.18 rmind rldict = NULL;
345 1.18 rmind }
346 1.18 rmind prop_object_release(rules);
347 1.18 rmind return rldict;
348 1.18 rmind }
349 1.18 rmind
350 1.18 rmind int
351 1.18 rmind npf_ruleset_flush(npf_ruleset_t *rlset, const char *rname)
352 1.18 rmind {
353 1.18 rmind npf_rule_t *rg, *rl;
354 1.18 rmind
355 1.18 rmind if ((rg = npf_ruleset_lookup(rlset, rname)) == NULL) {
356 1.19 rmind return ESRCH;
357 1.18 rmind }
358 1.18 rmind while ((rl = TAILQ_FIRST(&rg->r_subset)) != NULL) {
359 1.24 rmind KASSERT(rl->r_parent == rg);
360 1.18 rmind npf_ruleset_unlink(rlset, rl);
361 1.18 rmind LIST_INSERT_HEAD(&rlset->rs_gc, rl, r_aentry);
362 1.18 rmind }
363 1.18 rmind return 0;
364 1.18 rmind }
365 1.18 rmind
366 1.18 rmind void
367 1.18 rmind npf_ruleset_gc(npf_ruleset_t *rlset)
368 1.18 rmind {
369 1.18 rmind npf_rule_t *rl;
370 1.18 rmind
371 1.18 rmind while ((rl = LIST_FIRST(&rlset->rs_gc)) != NULL) {
372 1.18 rmind LIST_REMOVE(rl, r_aentry);
373 1.18 rmind npf_rule_free(rl);
374 1.18 rmind }
375 1.17 rmind }
376 1.17 rmind
377 1.17 rmind /*
378 1.17 rmind * npf_ruleset_reload: share the dynamic rules.
379 1.17 rmind *
380 1.17 rmind * => Active ruleset should be exclusively locked.
381 1.17 rmind */
382 1.17 rmind void
383 1.18 rmind npf_ruleset_reload(npf_ruleset_t *rlset, npf_ruleset_t *arlset)
384 1.17 rmind {
385 1.19 rmind npf_rule_t *rg;
386 1.17 rmind
387 1.17 rmind KASSERT(npf_config_locked_p());
388 1.17 rmind
389 1.19 rmind LIST_FOREACH(rg, &rlset->rs_dynamic, r_dentry) {
390 1.19 rmind npf_rule_t *arg, *rl;
391 1.18 rmind
392 1.19 rmind if ((arg = npf_ruleset_lookup(arlset, rg->r_name)) == NULL) {
393 1.17 rmind continue;
394 1.17 rmind }
395 1.18 rmind
396 1.18 rmind /*
397 1.24 rmind * Copy the list-head structure. This is necessary because
398 1.24 rmind * the rules are still active and therefore accessible for
399 1.24 rmind * inspection via the old ruleset.
400 1.18 rmind */
401 1.19 rmind memcpy(&rg->r_subset, &arg->r_subset, sizeof(rg->r_subset));
402 1.19 rmind TAILQ_FOREACH(rl, &rg->r_subset, r_entry) {
403 1.24 rmind /*
404 1.24 rmind * We can safely migrate to the new all-rule list
405 1.24 rmind * and re-set the parent rule, though.
406 1.24 rmind */
407 1.18 rmind LIST_REMOVE(rl, r_aentry);
408 1.18 rmind LIST_INSERT_HEAD(&rlset->rs_all, rl, r_aentry);
409 1.19 rmind rl->r_parent = rg;
410 1.18 rmind }
411 1.1 rmind }
412 1.19 rmind
413 1.19 rmind /* Inherit the ID counter. */
414 1.19 rmind rlset->rs_idcnt = arlset->rs_idcnt;
415 1.1 rmind }
416 1.1 rmind
417 1.1 rmind /*
418 1.4 rmind * npf_ruleset_matchnat: find a matching NAT policy in the ruleset.
419 1.1 rmind */
420 1.4 rmind npf_rule_t *
421 1.4 rmind npf_ruleset_matchnat(npf_ruleset_t *rlset, npf_natpolicy_t *mnp)
422 1.1 rmind {
423 1.4 rmind npf_rule_t *rl;
424 1.1 rmind
425 1.4 rmind /* Find a matching NAT policy in the old ruleset. */
426 1.17 rmind LIST_FOREACH(rl, &rlset->rs_all, r_aentry) {
427 1.4 rmind if (npf_nat_matchpolicy(rl->r_natp, mnp))
428 1.4 rmind break;
429 1.4 rmind }
430 1.4 rmind return rl;
431 1.1 rmind }
432 1.1 rmind
433 1.6 rmind npf_rule_t *
434 1.6 rmind npf_ruleset_sharepm(npf_ruleset_t *rlset, npf_natpolicy_t *mnp)
435 1.6 rmind {
436 1.6 rmind npf_natpolicy_t *np;
437 1.6 rmind npf_rule_t *rl;
438 1.6 rmind
439 1.6 rmind /* Find a matching NAT policy in the old ruleset. */
440 1.17 rmind LIST_FOREACH(rl, &rlset->rs_all, r_aentry) {
441 1.6 rmind /*
442 1.6 rmind * NAT policy might not yet be set during the creation of
443 1.6 rmind * the ruleset (in such case, rule is for our policy), or
444 1.6 rmind * policies might be equal due to rule exchange on reload.
445 1.6 rmind */
446 1.6 rmind np = rl->r_natp;
447 1.6 rmind if (np == NULL || np == mnp)
448 1.6 rmind continue;
449 1.6 rmind if (npf_nat_sharepm(np, mnp))
450 1.6 rmind break;
451 1.6 rmind }
452 1.6 rmind return rl;
453 1.6 rmind }
454 1.6 rmind
455 1.1 rmind /*
456 1.13 rmind * npf_ruleset_freealg: inspect the ruleset and disassociate specified
457 1.13 rmind * ALG from all NAT entries using it.
458 1.13 rmind */
459 1.13 rmind void
460 1.13 rmind npf_ruleset_freealg(npf_ruleset_t *rlset, npf_alg_t *alg)
461 1.13 rmind {
462 1.13 rmind npf_rule_t *rl;
463 1.17 rmind npf_natpolicy_t *np;
464 1.13 rmind
465 1.17 rmind LIST_FOREACH(rl, &rlset->rs_all, r_aentry) {
466 1.17 rmind if ((np = rl->r_natp) != NULL) {
467 1.13 rmind npf_nat_freealg(np, alg);
468 1.13 rmind }
469 1.13 rmind }
470 1.13 rmind }
471 1.13 rmind
472 1.13 rmind /*
473 1.4 rmind * npf_ruleset_natreload: minimum reload of NAT policies by maching
474 1.6 rmind * two (active and new) NAT rulesets.
475 1.4 rmind *
476 1.4 rmind * => Active ruleset should be exclusively locked.
477 1.1 rmind */
478 1.4 rmind void
479 1.4 rmind npf_ruleset_natreload(npf_ruleset_t *nrlset, npf_ruleset_t *arlset)
480 1.1 rmind {
481 1.4 rmind npf_natpolicy_t *np, *anp;
482 1.4 rmind npf_rule_t *rl, *arl;
483 1.4 rmind
484 1.4 rmind /* Scan a new NAT ruleset against NAT policies in old ruleset. */
485 1.17 rmind LIST_FOREACH(rl, &nrlset->rs_all, r_aentry) {
486 1.4 rmind np = rl->r_natp;
487 1.4 rmind arl = npf_ruleset_matchnat(arlset, np);
488 1.4 rmind if (arl == NULL) {
489 1.4 rmind continue;
490 1.4 rmind }
491 1.4 rmind /* On match - we exchange NAT policies. */
492 1.4 rmind anp = arl->r_natp;
493 1.4 rmind rl->r_natp = anp;
494 1.4 rmind arl->r_natp = np;
495 1.6 rmind /* Update other NAT policies to share portmap. */
496 1.6 rmind (void)npf_ruleset_sharepm(nrlset, anp);
497 1.1 rmind }
498 1.4 rmind }
499 1.4 rmind
500 1.1 rmind /*
501 1.6 rmind * npf_rule_alloc: allocate a rule and copy n-code from user-space.
502 1.1 rmind */
503 1.4 rmind npf_rule_t *
504 1.17 rmind npf_rule_alloc(prop_dictionary_t rldict)
505 1.1 rmind {
506 1.4 rmind npf_rule_t *rl;
507 1.7 rmind const char *rname;
508 1.1 rmind
509 1.4 rmind /* Allocate a rule structure. */
510 1.11 rmind rl = kmem_zalloc(sizeof(npf_rule_t), KM_SLEEP);
511 1.17 rmind TAILQ_INIT(&rl->r_subset);
512 1.4 rmind rl->r_natp = NULL;
513 1.4 rmind
514 1.11 rmind /* Name (optional) */
515 1.7 rmind if (prop_dictionary_get_cstring_nocopy(rldict, "name", &rname)) {
516 1.17 rmind strlcpy(rl->r_name, rname, NPF_RULE_MAXNAMELEN);
517 1.7 rmind } else {
518 1.7 rmind rl->r_name[0] = '\0';
519 1.7 rmind }
520 1.7 rmind
521 1.11 rmind /* Attributes, priority and interface ID (optional). */
522 1.7 rmind prop_dictionary_get_uint32(rldict, "attributes", &rl->r_attr);
523 1.7 rmind prop_dictionary_get_int32(rldict, "priority", &rl->r_priority);
524 1.7 rmind prop_dictionary_get_uint32(rldict, "interface", &rl->r_ifid);
525 1.4 rmind
526 1.17 rmind /* Get the skip-to index. No need to validate it. */
527 1.17 rmind prop_dictionary_get_uint32(rldict, "skip-to", &rl->r_skip_to);
528 1.17 rmind
529 1.17 rmind /* Key (optional). */
530 1.17 rmind prop_object_t obj = prop_dictionary_get(rldict, "key");
531 1.17 rmind const void *key = prop_data_data_nocopy(obj);
532 1.17 rmind
533 1.17 rmind if (key) {
534 1.17 rmind size_t len = prop_data_size(obj);
535 1.17 rmind if (len > NPF_RULE_MAXKEYLEN) {
536 1.17 rmind kmem_free(rl, sizeof(npf_rule_t));
537 1.17 rmind return NULL;
538 1.17 rmind }
539 1.17 rmind memcpy(rl->r_key, key, len);
540 1.4 rmind }
541 1.18 rmind
542 1.19 rmind if (NPF_DYNAMIC_RULE_P(rl->r_attr)) {
543 1.18 rmind rl->r_dict = prop_dictionary_copy(rldict);
544 1.18 rmind }
545 1.18 rmind
546 1.17 rmind return rl;
547 1.17 rmind }
548 1.17 rmind
549 1.17 rmind /*
550 1.17 rmind * npf_rule_setcode: assign filter code to the rule.
551 1.17 rmind *
552 1.20 rmind * => The code must be validated by the caller.
553 1.20 rmind * => JIT compilation may be performed here.
554 1.17 rmind */
555 1.17 rmind void
556 1.17 rmind npf_rule_setcode(npf_rule_t *rl, const int type, void *code, size_t size)
557 1.17 rmind {
558 1.24 rmind rl->r_type = type;
559 1.24 rmind rl->r_code = code;
560 1.24 rmind rl->r_clen = size;
561 1.24 rmind #if 0
562 1.20 rmind /* Perform BPF JIT if possible. */
563 1.20 rmind if (type == NPF_CODE_BPF && (membar_consumer(),
564 1.20 rmind bpfjit_module_ops.bj_generate_code != NULL)) {
565 1.20 rmind KASSERT(rl->r_jcode == NULL);
566 1.20 rmind rl->r_jcode = bpfjit_module_ops.bj_generate_code(code, size);
567 1.24 rmind rl->r_code = NULL;
568 1.20 rmind }
569 1.24 rmind #endif
570 1.17 rmind }
571 1.17 rmind
572 1.17 rmind /*
573 1.17 rmind * npf_rule_setrproc: assign a rule procedure and hold a reference on it.
574 1.17 rmind */
575 1.17 rmind void
576 1.17 rmind npf_rule_setrproc(npf_rule_t *rl, npf_rproc_t *rp)
577 1.17 rmind {
578 1.17 rmind npf_rproc_acquire(rp);
579 1.6 rmind rl->r_rproc = rp;
580 1.1 rmind }
581 1.1 rmind
582 1.1 rmind /*
583 1.1 rmind * npf_rule_free: free the specified rule.
584 1.1 rmind */
585 1.1 rmind void
586 1.1 rmind npf_rule_free(npf_rule_t *rl)
587 1.1 rmind {
588 1.4 rmind npf_natpolicy_t *np = rl->r_natp;
589 1.4 rmind npf_rproc_t *rp = rl->r_rproc;
590 1.1 rmind
591 1.4 rmind if (np) {
592 1.4 rmind /* Free NAT policy. */
593 1.4 rmind npf_nat_freepolicy(np);
594 1.4 rmind }
595 1.4 rmind if (rp) {
596 1.6 rmind /* Release rule procedure. */
597 1.4 rmind npf_rproc_release(rp);
598 1.4 rmind }
599 1.17 rmind if (rl->r_code) {
600 1.20 rmind /* Free byte-code. */
601 1.17 rmind kmem_free(rl->r_code, rl->r_clen);
602 1.1 rmind }
603 1.20 rmind if (rl->r_jcode) {
604 1.20 rmind /* Free JIT code. */
605 1.20 rmind KASSERT(bpfjit_module_ops.bj_free_code != NULL);
606 1.20 rmind bpfjit_module_ops.bj_free_code(rl->r_jcode);
607 1.20 rmind }
608 1.18 rmind if (rl->r_dict) {
609 1.18 rmind /* Destroy the dictionary. */
610 1.18 rmind prop_object_release(rl->r_dict);
611 1.18 rmind }
612 1.4 rmind kmem_free(rl, sizeof(npf_rule_t));
613 1.1 rmind }
614 1.1 rmind
615 1.1 rmind /*
616 1.19 rmind * npf_rule_getid: return the unique ID of a rule.
617 1.10 rmind * npf_rule_getrproc: acquire a reference and return rule procedure, if any.
618 1.1 rmind * npf_rule_getnat: get NAT policy assigned to the rule.
619 1.1 rmind */
620 1.1 rmind
621 1.19 rmind uint64_t
622 1.19 rmind npf_rule_getid(const npf_rule_t *rl)
623 1.19 rmind {
624 1.19 rmind KASSERT(NPF_DYNAMIC_RULE_P(rl->r_attr));
625 1.19 rmind return rl->r_id;
626 1.19 rmind }
627 1.19 rmind
628 1.10 rmind npf_rproc_t *
629 1.10 rmind npf_rule_getrproc(npf_rule_t *rl)
630 1.10 rmind {
631 1.10 rmind npf_rproc_t *rp = rl->r_rproc;
632 1.10 rmind
633 1.10 rmind if (rp) {
634 1.10 rmind npf_rproc_acquire(rp);
635 1.10 rmind }
636 1.10 rmind return rp;
637 1.10 rmind }
638 1.10 rmind
639 1.1 rmind npf_natpolicy_t *
640 1.1 rmind npf_rule_getnat(const npf_rule_t *rl)
641 1.1 rmind {
642 1.4 rmind return rl->r_natp;
643 1.1 rmind }
644 1.1 rmind
645 1.4 rmind /*
646 1.4 rmind * npf_rule_setnat: assign NAT policy to the rule and insert into the
647 1.4 rmind * NAT policy list in the ruleset.
648 1.4 rmind */
649 1.1 rmind void
650 1.1 rmind npf_rule_setnat(npf_rule_t *rl, npf_natpolicy_t *np)
651 1.1 rmind {
652 1.3 rmind
653 1.4 rmind KASSERT(rl->r_natp == NULL);
654 1.4 rmind rl->r_natp = np;
655 1.1 rmind }
656 1.1 rmind
657 1.17 rmind /*
658 1.17 rmind * npf_rule_inspect: match the interface, direction and run the filter code.
659 1.17 rmind * Returns true if rule matches, false otherise.
660 1.17 rmind */
661 1.17 rmind static inline bool
662 1.17 rmind npf_rule_inspect(npf_cache_t *npc, nbuf_t *nbuf, const npf_rule_t *rl,
663 1.17 rmind const int di_mask, const int layer)
664 1.17 rmind {
665 1.17 rmind const ifnet_t *ifp = nbuf->nb_ifp;
666 1.17 rmind const void *code;
667 1.17 rmind
668 1.17 rmind /* Match the interface. */
669 1.17 rmind if (rl->r_ifid && rl->r_ifid != ifp->if_index) {
670 1.17 rmind return false;
671 1.17 rmind }
672 1.17 rmind
673 1.17 rmind /* Match the direction. */
674 1.17 rmind if ((rl->r_attr & NPF_RULE_DIMASK) != NPF_RULE_DIMASK) {
675 1.17 rmind if ((rl->r_attr & di_mask) == 0)
676 1.17 rmind return false;
677 1.17 rmind }
678 1.17 rmind
679 1.24 rmind /* Any code? */
680 1.24 rmind if (rl->r_jcode == rl->r_code) {
681 1.24 rmind KASSERT(rl->r_jcode == NULL);
682 1.24 rmind KASSERT(rl->r_code == NULL);
683 1.17 rmind return true;
684 1.17 rmind }
685 1.17 rmind
686 1.17 rmind switch (rl->r_type) {
687 1.24 rmind case NPF_CODE_BPF:
688 1.24 rmind return npf_bpf_filter(npc, nbuf, rl->r_code, rl->r_jcode) != 0;
689 1.17 rmind case NPF_CODE_NC:
690 1.17 rmind return npf_ncode_process(npc, code, nbuf, layer) == 0;
691 1.17 rmind default:
692 1.17 rmind KASSERT(false);
693 1.17 rmind }
694 1.17 rmind return false;
695 1.17 rmind }
696 1.17 rmind
697 1.17 rmind /*
698 1.17 rmind * npf_rule_reinspect: re-inspect the dynamic rule by iterating its list.
699 1.17 rmind * This is only for the dynamic rules. Subrules cannot have nested rules.
700 1.17 rmind */
701 1.17 rmind static npf_rule_t *
702 1.17 rmind npf_rule_reinspect(npf_cache_t *npc, nbuf_t *nbuf, const npf_rule_t *drl,
703 1.17 rmind const int di_mask, const int layer)
704 1.7 rmind {
705 1.17 rmind npf_rule_t *final_rl = NULL, *rl;
706 1.17 rmind
707 1.17 rmind KASSERT(NPF_DYNAMIC_GROUP_P(drl->r_attr));
708 1.7 rmind
709 1.17 rmind TAILQ_FOREACH(rl, &drl->r_subset, r_entry) {
710 1.17 rmind if (!npf_rule_inspect(npc, nbuf, rl, di_mask, layer)) {
711 1.7 rmind continue;
712 1.17 rmind }
713 1.17 rmind if (rl->r_attr & NPF_RULE_FINAL) {
714 1.17 rmind return rl;
715 1.17 rmind }
716 1.17 rmind final_rl = rl;
717 1.7 rmind }
718 1.17 rmind return final_rl;
719 1.7 rmind }
720 1.1 rmind
721 1.1 rmind /*
722 1.7 rmind * npf_ruleset_inspect: inspect the packet against the given ruleset.
723 1.1 rmind *
724 1.7 rmind * Loop through the rules in the set and run n-code processor of each rule
725 1.7 rmind * against the packet (nbuf chain). If sub-ruleset is found, inspect it.
726 1.7 rmind *
727 1.9 rmind * => Caller is responsible for nbuf chain protection.
728 1.1 rmind */
729 1.1 rmind npf_rule_t *
730 1.15 rmind npf_ruleset_inspect(npf_cache_t *npc, nbuf_t *nbuf,
731 1.17 rmind const npf_ruleset_t *rlset, const int di, const int layer)
732 1.1 rmind {
733 1.7 rmind const int di_mask = (di & PFIL_IN) ? NPF_RULE_IN : NPF_RULE_OUT;
734 1.17 rmind const u_int nitems = rlset->rs_nitems;
735 1.17 rmind npf_rule_t *final_rl = NULL;
736 1.17 rmind u_int n = 0;
737 1.1 rmind
738 1.1 rmind KASSERT(((di & PFIL_IN) != 0) ^ ((di & PFIL_OUT) != 0));
739 1.17 rmind
740 1.17 rmind while (n < nitems) {
741 1.17 rmind npf_rule_t *rl = rlset->rs_rules[n];
742 1.17 rmind const u_int skip_to = rl->r_skip_to;
743 1.17 rmind const uint32_t attr = rl->r_attr;
744 1.17 rmind
745 1.16 rmind KASSERT(!nbuf_flag_p(nbuf, NBUF_DATAREF_RESET));
746 1.1 rmind KASSERT(!final_rl || rl->r_priority >= final_rl->r_priority);
747 1.17 rmind KASSERT(n < skip_to);
748 1.1 rmind
749 1.17 rmind /* Group is a barrier: return a matching if found any. */
750 1.17 rmind if ((attr & NPF_RULE_GROUP) != 0 && final_rl) {
751 1.17 rmind break;
752 1.17 rmind }
753 1.17 rmind
754 1.17 rmind /* Main inspection of the rule. */
755 1.17 rmind if (!npf_rule_inspect(npc, nbuf, rl, di_mask, layer)) {
756 1.17 rmind n = skip_to;
757 1.1 rmind continue;
758 1.1 rmind }
759 1.17 rmind
760 1.17 rmind if (NPF_DYNAMIC_GROUP_P(attr)) {
761 1.17 rmind /*
762 1.17 rmind * If this is a dynamic rule, re-inspect the subrules.
763 1.17 rmind * If it has any matching rule, then it is final.
764 1.17 rmind */
765 1.17 rmind rl = npf_rule_reinspect(npc, nbuf, rl, di_mask, layer);
766 1.17 rmind if (rl != NULL) {
767 1.17 rmind final_rl = rl;
768 1.17 rmind break;
769 1.17 rmind }
770 1.17 rmind } else if ((attr & NPF_RULE_GROUP) == 0) {
771 1.17 rmind /*
772 1.17 rmind * Groups themselves are not matching.
773 1.17 rmind */
774 1.17 rmind final_rl = rl;
775 1.1 rmind }
776 1.17 rmind
777 1.1 rmind /* Set the matching rule and check for "final". */
778 1.17 rmind if (attr & NPF_RULE_FINAL) {
779 1.2 rmind break;
780 1.1 rmind }
781 1.17 rmind n++;
782 1.2 rmind }
783 1.16 rmind
784 1.16 rmind KASSERT(!nbuf_flag_p(nbuf, NBUF_DATAREF_RESET));
785 1.7 rmind return final_rl;
786 1.1 rmind }
787 1.1 rmind
788 1.1 rmind /*
789 1.17 rmind * npf_rule_conclude: return decision and the flags for conclusion.
790 1.1 rmind *
791 1.1 rmind * => Returns ENETUNREACH if "block" and 0 if "pass".
792 1.1 rmind */
793 1.1 rmind int
794 1.17 rmind npf_rule_conclude(const npf_rule_t *rl, int *retfl)
795 1.1 rmind {
796 1.1 rmind /* If not passing - drop the packet. */
797 1.4 rmind *retfl = rl->r_attr;
798 1.17 rmind return (rl->r_attr & NPF_RULE_PASS) ? 0 : ENETUNREACH;
799 1.1 rmind }
800 1.1 rmind
801 1.1 rmind #if defined(DDB) || defined(_NPF_TESTING)
802 1.1 rmind
803 1.1 rmind void
804 1.12 rmind npf_rulenc_dump(const npf_rule_t *rl)
805 1.1 rmind {
806 1.17 rmind const uint32_t *op = rl->r_code;
807 1.17 rmind size_t n = rl->r_clen;
808 1.1 rmind
809 1.2 rmind while (n) {
810 1.1 rmind printf("\t> |0x%02x|\n", (uint32_t)*op);
811 1.1 rmind op++;
812 1.1 rmind n -= sizeof(*op);
813 1.2 rmind }
814 1.1 rmind printf("-> %s\n", (rl->r_attr & NPF_RULE_PASS) ? "pass" : "block");
815 1.1 rmind }
816 1.1 rmind
817 1.1 rmind #endif
818