pfctl_optimize.c revision 1.6 1 1.6 yamt /* $NetBSD: pfctl_optimize.c,v 1.6 2008/06/18 09:06:26 yamt Exp $ */
2 1.6 yamt /* $OpenBSD: pfctl_optimize.c,v 1.13 2006/10/31 14:17:45 mcbride Exp $ */
3 1.1 yamt
4 1.1 yamt /*
5 1.1 yamt * Copyright (c) 2004 Mike Frantzen <frantzen (at) openbsd.org>
6 1.1 yamt *
7 1.1 yamt * Permission to use, copy, modify, and distribute this software for any
8 1.1 yamt * purpose with or without fee is hereby granted, provided that the above
9 1.1 yamt * copyright notice and this permission notice appear in all copies.
10 1.1 yamt *
11 1.1 yamt * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
12 1.1 yamt * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
13 1.1 yamt * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
14 1.1 yamt * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
15 1.1 yamt * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
16 1.1 yamt * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
17 1.1 yamt * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
18 1.1 yamt */
19 1.1 yamt
20 1.1 yamt #include <sys/types.h>
21 1.1 yamt #include <sys/ioctl.h>
22 1.1 yamt #include <sys/socket.h>
23 1.1 yamt
24 1.1 yamt #include <net/if.h>
25 1.1 yamt #include <net/pfvar.h>
26 1.1 yamt
27 1.6 yamt #include <netinet/in.h>
28 1.1 yamt #include <arpa/inet.h>
29 1.1 yamt
30 1.1 yamt #include <assert.h>
31 1.1 yamt #include <ctype.h>
32 1.1 yamt #include <err.h>
33 1.1 yamt #include <errno.h>
34 1.1 yamt #include <stddef.h>
35 1.1 yamt #include <stdio.h>
36 1.1 yamt #include <stdlib.h>
37 1.1 yamt #include <string.h>
38 1.1 yamt
39 1.1 yamt #include "pfctl_parser.h"
40 1.1 yamt #include "pfctl.h"
41 1.1 yamt
42 1.1 yamt /* The size at which a table becomes faster than individual rules */
43 1.1 yamt #define TABLE_THRESHOLD 6
44 1.1 yamt
45 1.1 yamt
46 1.1 yamt /* #define OPT_DEBUG 1 */
47 1.1 yamt #ifdef OPT_DEBUG
48 1.1 yamt # define DEBUG(str, v...) \
49 1.1 yamt printf("%s: " str "\n", __FUNCTION__ , ## v)
50 1.1 yamt #else
51 1.1 yamt # define DEBUG(str, v...) ((void)0)
52 1.1 yamt #endif
53 1.1 yamt
54 1.1 yamt
55 1.1 yamt /*
56 1.1 yamt * A container that lets us sort a superblock to optimize the skip step jumps
57 1.1 yamt */
58 1.1 yamt struct pf_skip_step {
59 1.1 yamt int ps_count; /* number of items */
60 1.1 yamt TAILQ_HEAD( , pf_opt_rule) ps_rules;
61 1.1 yamt TAILQ_ENTRY(pf_skip_step) ps_entry;
62 1.1 yamt };
63 1.1 yamt
64 1.1 yamt
65 1.1 yamt /*
66 1.1 yamt * A superblock is a block of adjacent rules of similar action. If there
67 1.1 yamt * are five PASS rules in a row, they all become members of a superblock.
68 1.1 yamt * Once we have a superblock, we are free to re-order any rules within it
69 1.1 yamt * in order to improve performance; if a packet is passed, it doesn't matter
70 1.1 yamt * who passed it.
71 1.1 yamt */
72 1.1 yamt struct superblock {
73 1.1 yamt TAILQ_HEAD( , pf_opt_rule) sb_rules;
74 1.1 yamt TAILQ_ENTRY(superblock) sb_entry;
75 1.1 yamt struct superblock *sb_profiled_block;
76 1.1 yamt TAILQ_HEAD(skiplist, pf_skip_step) sb_skipsteps[PF_SKIP_COUNT];
77 1.1 yamt };
78 1.1 yamt TAILQ_HEAD(superblocks, superblock);
79 1.1 yamt
80 1.1 yamt
81 1.1 yamt /*
82 1.1 yamt * Description of the PF rule structure.
83 1.1 yamt */
84 1.1 yamt enum {
85 1.1 yamt BARRIER, /* the presence of the field puts the rule in it's own block */
86 1.1 yamt BREAK, /* the field may not differ between rules in a superblock */
87 1.1 yamt NOMERGE, /* the field may not differ between rules when combined */
88 1.1 yamt COMBINED, /* the field may itself be combined with other rules */
89 1.1 yamt DC, /* we just don't care about the field */
90 1.1 yamt NEVER}; /* we should never see this field set?!? */
91 1.1 yamt struct pf_rule_field {
92 1.1 yamt const char *prf_name;
93 1.1 yamt int prf_type;
94 1.1 yamt size_t prf_offset;
95 1.1 yamt size_t prf_size;
96 1.1 yamt } pf_rule_desc[] = {
97 1.1 yamt #define PF_RULE_FIELD(field, ty) \
98 1.1 yamt {#field, \
99 1.1 yamt ty, \
100 1.1 yamt offsetof(struct pf_rule, field), \
101 1.1 yamt sizeof(((struct pf_rule *)0)->field)}
102 1.1 yamt
103 1.1 yamt
104 1.1 yamt /*
105 1.1 yamt * The presence of these fields in a rule put the rule in it's own
106 1.1 yamt * superblock. Thus it will not be optimized. It also prevents the
107 1.1 yamt * rule from being re-ordered at all.
108 1.1 yamt */
109 1.1 yamt PF_RULE_FIELD(label, BARRIER),
110 1.1 yamt PF_RULE_FIELD(prob, BARRIER),
111 1.1 yamt PF_RULE_FIELD(max_states, BARRIER),
112 1.1 yamt PF_RULE_FIELD(max_src_nodes, BARRIER),
113 1.6 yamt PF_RULE_FIELD(max_src_states, BARRIER),
114 1.6 yamt PF_RULE_FIELD(max_src_conn, BARRIER),
115 1.6 yamt PF_RULE_FIELD(max_src_conn_rate, BARRIER),
116 1.6 yamt PF_RULE_FIELD(anchor, BARRIER), /* for now */
117 1.1 yamt
118 1.1 yamt /*
119 1.1 yamt * These fields must be the same between all rules in the same superblock.
120 1.1 yamt * These rules are allowed to be re-ordered but only among like rules.
121 1.1 yamt * For instance we can re-order all 'tag "foo"' rules because they have the
122 1.1 yamt * same tag. But we can not re-order between a 'tag "foo"' and a
123 1.1 yamt * 'tag "bar"' since that would change the meaning of the ruleset.
124 1.1 yamt */
125 1.1 yamt PF_RULE_FIELD(tagname, BREAK),
126 1.1 yamt PF_RULE_FIELD(keep_state, BREAK),
127 1.1 yamt PF_RULE_FIELD(qname, BREAK),
128 1.6 yamt PF_RULE_FIELD(pqname, BREAK),
129 1.1 yamt PF_RULE_FIELD(rt, BREAK),
130 1.1 yamt PF_RULE_FIELD(allow_opts, BREAK),
131 1.1 yamt PF_RULE_FIELD(rule_flag, BREAK),
132 1.1 yamt PF_RULE_FIELD(action, BREAK),
133 1.6 yamt PF_RULE_FIELD(log, BREAK),
134 1.6 yamt PF_RULE_FIELD(quick, BREAK),
135 1.6 yamt PF_RULE_FIELD(return_ttl, BREAK),
136 1.6 yamt PF_RULE_FIELD(overload_tblname, BREAK),
137 1.6 yamt PF_RULE_FIELD(flush, BREAK),
138 1.6 yamt PF_RULE_FIELD(rpool, BREAK),
139 1.6 yamt PF_RULE_FIELD(logif, BREAK),
140 1.1 yamt
141 1.1 yamt /*
142 1.1 yamt * Any fields not listed in this structure act as BREAK fields
143 1.1 yamt */
144 1.1 yamt
145 1.1 yamt
146 1.1 yamt /*
147 1.1 yamt * These fields must not differ when we merge two rules together but
148 1.1 yamt * their difference isn't enough to put the rules in different superblocks.
149 1.1 yamt * There are no problems re-ordering any rules with these fields.
150 1.1 yamt */
151 1.1 yamt PF_RULE_FIELD(af, NOMERGE),
152 1.1 yamt PF_RULE_FIELD(ifnot, NOMERGE),
153 1.6 yamt PF_RULE_FIELD(ifname, NOMERGE), /* hack for IF groups */
154 1.1 yamt PF_RULE_FIELD(match_tag_not, NOMERGE),
155 1.1 yamt PF_RULE_FIELD(match_tagname, NOMERGE),
156 1.1 yamt PF_RULE_FIELD(os_fingerprint, NOMERGE),
157 1.1 yamt PF_RULE_FIELD(timeout, NOMERGE),
158 1.1 yamt PF_RULE_FIELD(return_icmp, NOMERGE),
159 1.1 yamt PF_RULE_FIELD(return_icmp6, NOMERGE),
160 1.1 yamt PF_RULE_FIELD(uid, NOMERGE),
161 1.1 yamt PF_RULE_FIELD(gid, NOMERGE),
162 1.1 yamt PF_RULE_FIELD(direction, NOMERGE),
163 1.1 yamt PF_RULE_FIELD(proto, NOMERGE),
164 1.1 yamt PF_RULE_FIELD(type, NOMERGE),
165 1.1 yamt PF_RULE_FIELD(code, NOMERGE),
166 1.1 yamt PF_RULE_FIELD(flags, NOMERGE),
167 1.1 yamt PF_RULE_FIELD(flagset, NOMERGE),
168 1.1 yamt PF_RULE_FIELD(tos, NOMERGE),
169 1.1 yamt PF_RULE_FIELD(src.port, NOMERGE),
170 1.1 yamt PF_RULE_FIELD(dst.port, NOMERGE),
171 1.1 yamt PF_RULE_FIELD(src.port_op, NOMERGE),
172 1.1 yamt PF_RULE_FIELD(dst.port_op, NOMERGE),
173 1.1 yamt PF_RULE_FIELD(src.neg, NOMERGE),
174 1.1 yamt PF_RULE_FIELD(dst.neg, NOMERGE),
175 1.1 yamt
176 1.1 yamt /* These fields can be merged */
177 1.1 yamt PF_RULE_FIELD(src.addr, COMBINED),
178 1.1 yamt PF_RULE_FIELD(dst.addr, COMBINED),
179 1.1 yamt
180 1.1 yamt /* We just don't care about these fields. They're set by the kernel */
181 1.1 yamt PF_RULE_FIELD(skip, DC),
182 1.1 yamt PF_RULE_FIELD(evaluations, DC),
183 1.1 yamt PF_RULE_FIELD(packets, DC),
184 1.1 yamt PF_RULE_FIELD(bytes, DC),
185 1.1 yamt PF_RULE_FIELD(kif, DC),
186 1.1 yamt PF_RULE_FIELD(states, DC),
187 1.1 yamt PF_RULE_FIELD(src_nodes, DC),
188 1.1 yamt PF_RULE_FIELD(nr, DC),
189 1.1 yamt PF_RULE_FIELD(entries, DC),
190 1.1 yamt PF_RULE_FIELD(qid, DC),
191 1.1 yamt PF_RULE_FIELD(pqid, DC),
192 1.1 yamt PF_RULE_FIELD(anchor_relative, DC),
193 1.1 yamt PF_RULE_FIELD(anchor_wildcard, DC),
194 1.6 yamt PF_RULE_FIELD(tag, DC),
195 1.6 yamt PF_RULE_FIELD(match_tag, DC),
196 1.6 yamt PF_RULE_FIELD(overload_tbl, DC),
197 1.1 yamt
198 1.1 yamt /* These fields should never be set in a PASS/BLOCK rule */
199 1.1 yamt PF_RULE_FIELD(natpass, NEVER),
200 1.1 yamt PF_RULE_FIELD(max_mss, NEVER),
201 1.1 yamt PF_RULE_FIELD(min_ttl, NEVER),
202 1.1 yamt };
203 1.1 yamt
204 1.1 yamt
205 1.1 yamt
206 1.1 yamt int add_opt_table(struct pfctl *, struct pf_opt_tbl **, sa_family_t,
207 1.1 yamt struct pf_rule_addr *);
208 1.1 yamt int addrs_combineable(struct pf_rule_addr *, struct pf_rule_addr *);
209 1.1 yamt int addrs_equal(struct pf_rule_addr *, struct pf_rule_addr *);
210 1.1 yamt int block_feedback(struct pfctl *, struct superblock *);
211 1.1 yamt int combine_rules(struct pfctl *, struct superblock *);
212 1.1 yamt void comparable_rule(struct pf_rule *, const struct pf_rule *, int);
213 1.1 yamt int construct_superblocks(struct pfctl *, struct pf_opt_queue *,
214 1.1 yamt struct superblocks *);
215 1.1 yamt void exclude_supersets(struct pf_rule *, struct pf_rule *);
216 1.6 yamt int interface_group(const char *);
217 1.1 yamt int load_feedback_profile(struct pfctl *, struct superblocks *);
218 1.1 yamt int optimize_superblock(struct pfctl *, struct superblock *);
219 1.1 yamt int pf_opt_create_table(struct pfctl *, struct pf_opt_tbl *);
220 1.1 yamt void remove_from_skipsteps(struct skiplist *, struct superblock *,
221 1.1 yamt struct pf_opt_rule *, struct pf_skip_step *);
222 1.1 yamt int remove_identical_rules(struct pfctl *, struct superblock *);
223 1.1 yamt int reorder_rules(struct pfctl *, struct superblock *, int);
224 1.1 yamt int rules_combineable(struct pf_rule *, struct pf_rule *);
225 1.1 yamt void skip_append(struct superblock *, int, struct pf_skip_step *,
226 1.1 yamt struct pf_opt_rule *);
227 1.1 yamt int skip_compare(int, struct pf_skip_step *, struct pf_opt_rule *);
228 1.1 yamt void skip_init(void);
229 1.1 yamt int skip_cmp_af(struct pf_rule *, struct pf_rule *);
230 1.1 yamt int skip_cmp_dir(struct pf_rule *, struct pf_rule *);
231 1.1 yamt int skip_cmp_dst_addr(struct pf_rule *, struct pf_rule *);
232 1.1 yamt int skip_cmp_dst_port(struct pf_rule *, struct pf_rule *);
233 1.1 yamt int skip_cmp_ifp(struct pf_rule *, struct pf_rule *);
234 1.1 yamt int skip_cmp_proto(struct pf_rule *, struct pf_rule *);
235 1.1 yamt int skip_cmp_src_addr(struct pf_rule *, struct pf_rule *);
236 1.1 yamt int skip_cmp_src_port(struct pf_rule *, struct pf_rule *);
237 1.1 yamt int superblock_inclusive(struct superblock *, struct pf_opt_rule *);
238 1.1 yamt void superblock_free(struct pfctl *, struct superblock *);
239 1.1 yamt
240 1.1 yamt
241 1.1 yamt int (*skip_comparitors[PF_SKIP_COUNT])(struct pf_rule *, struct pf_rule *);
242 1.1 yamt const char *skip_comparitors_names[PF_SKIP_COUNT];
243 1.1 yamt #define PF_SKIP_COMPARITORS { \
244 1.1 yamt { "ifp", PF_SKIP_IFP, skip_cmp_ifp }, \
245 1.1 yamt { "dir", PF_SKIP_DIR, skip_cmp_dir }, \
246 1.1 yamt { "af", PF_SKIP_AF, skip_cmp_af }, \
247 1.1 yamt { "proto", PF_SKIP_PROTO, skip_cmp_proto }, \
248 1.1 yamt { "saddr", PF_SKIP_SRC_ADDR, skip_cmp_src_addr }, \
249 1.1 yamt { "sport", PF_SKIP_SRC_PORT, skip_cmp_src_port }, \
250 1.1 yamt { "daddr", PF_SKIP_DST_ADDR, skip_cmp_dst_addr }, \
251 1.1 yamt { "dport", PF_SKIP_DST_PORT, skip_cmp_dst_port } \
252 1.1 yamt }
253 1.1 yamt
254 1.1 yamt struct pfr_buffer table_buffer;
255 1.1 yamt int table_identifier;
256 1.1 yamt
257 1.1 yamt
258 1.1 yamt int
259 1.6 yamt pfctl_optimize_ruleset(struct pfctl *pf, struct pf_ruleset *rs)
260 1.1 yamt {
261 1.1 yamt struct superblocks superblocks;
262 1.6 yamt struct pf_opt_queue opt_queue;
263 1.1 yamt struct superblock *block;
264 1.1 yamt struct pf_opt_rule *por;
265 1.6 yamt struct pf_rule *r;
266 1.6 yamt struct pf_rulequeue *old_rules;
267 1.1 yamt
268 1.1 yamt DEBUG("optimizing ruleset");
269 1.1 yamt memset(&table_buffer, 0, sizeof(table_buffer));
270 1.1 yamt skip_init();
271 1.6 yamt TAILQ_INIT(&opt_queue);
272 1.6 yamt
273 1.6 yamt old_rules = rs->rules[PF_RULESET_FILTER].active.ptr;
274 1.6 yamt rs->rules[PF_RULESET_FILTER].active.ptr =
275 1.6 yamt rs->rules[PF_RULESET_FILTER].inactive.ptr;
276 1.6 yamt rs->rules[PF_RULESET_FILTER].inactive.ptr = old_rules;
277 1.6 yamt
278 1.6 yamt /*
279 1.6 yamt * XXX expanding the pf_opt_rule format throughout pfctl might allow
280 1.6 yamt * us to avoid all this copying.
281 1.6 yamt */
282 1.6 yamt while ((r = TAILQ_FIRST(rs->rules[PF_RULESET_FILTER].inactive.ptr))
283 1.6 yamt != NULL) {
284 1.6 yamt TAILQ_REMOVE(rs->rules[PF_RULESET_FILTER].inactive.ptr, r,
285 1.6 yamt entries);
286 1.6 yamt if ((por = calloc(1, sizeof(*por))) == NULL)
287 1.6 yamt err(1, "calloc");
288 1.6 yamt memcpy(&por->por_rule, r, sizeof(*r));
289 1.6 yamt if (TAILQ_FIRST(&r->rpool.list) != NULL) {
290 1.6 yamt TAILQ_INIT(&por->por_rule.rpool.list);
291 1.6 yamt pfctl_move_pool(&r->rpool, &por->por_rule.rpool);
292 1.6 yamt } else
293 1.6 yamt bzero(&por->por_rule.rpool,
294 1.6 yamt sizeof(por->por_rule.rpool));
295 1.1 yamt
296 1.6 yamt
297 1.6 yamt TAILQ_INSERT_TAIL(&opt_queue, por, por_entry);
298 1.6 yamt }
299 1.1 yamt
300 1.1 yamt TAILQ_INIT(&superblocks);
301 1.6 yamt if (construct_superblocks(pf, &opt_queue, &superblocks))
302 1.1 yamt goto error;
303 1.1 yamt
304 1.6 yamt if (pf->optimize & PF_OPTIMIZE_PROFILE) {
305 1.1 yamt if (load_feedback_profile(pf, &superblocks))
306 1.1 yamt goto error;
307 1.1 yamt }
308 1.1 yamt
309 1.1 yamt TAILQ_FOREACH(block, &superblocks, sb_entry) {
310 1.1 yamt if (optimize_superblock(pf, block))
311 1.1 yamt goto error;
312 1.1 yamt }
313 1.1 yamt
314 1.6 yamt rs->anchor->refcnt = 0;
315 1.1 yamt while ((block = TAILQ_FIRST(&superblocks))) {
316 1.1 yamt TAILQ_REMOVE(&superblocks, block, sb_entry);
317 1.1 yamt
318 1.1 yamt while ((por = TAILQ_FIRST(&block->sb_rules))) {
319 1.1 yamt TAILQ_REMOVE(&block->sb_rules, por, por_entry);
320 1.6 yamt por->por_rule.nr = rs->anchor->refcnt++;
321 1.6 yamt if ((r = calloc(1, sizeof(*r))) == NULL)
322 1.6 yamt err(1, "calloc");
323 1.6 yamt memcpy(r, &por->por_rule, sizeof(*r));
324 1.6 yamt TAILQ_INIT(&r->rpool.list);
325 1.6 yamt pfctl_move_pool(&por->por_rule.rpool, &r->rpool);
326 1.6 yamt TAILQ_INSERT_TAIL(
327 1.6 yamt rs->rules[PF_RULESET_FILTER].active.ptr,
328 1.6 yamt r, entries);
329 1.1 yamt free(por);
330 1.1 yamt }
331 1.1 yamt free(block);
332 1.1 yamt }
333 1.1 yamt
334 1.1 yamt return (0);
335 1.1 yamt
336 1.1 yamt error:
337 1.6 yamt while ((por = TAILQ_FIRST(&opt_queue))) {
338 1.6 yamt TAILQ_REMOVE(&opt_queue, por, por_entry);
339 1.1 yamt if (por->por_src_tbl) {
340 1.1 yamt pfr_buf_clear(por->por_src_tbl->pt_buf);
341 1.1 yamt free(por->por_src_tbl->pt_buf);
342 1.1 yamt free(por->por_src_tbl);
343 1.1 yamt }
344 1.1 yamt if (por->por_dst_tbl) {
345 1.1 yamt pfr_buf_clear(por->por_dst_tbl->pt_buf);
346 1.1 yamt free(por->por_dst_tbl->pt_buf);
347 1.1 yamt free(por->por_dst_tbl);
348 1.1 yamt }
349 1.1 yamt free(por);
350 1.1 yamt }
351 1.1 yamt while ((block = TAILQ_FIRST(&superblocks))) {
352 1.1 yamt TAILQ_REMOVE(&superblocks, block, sb_entry);
353 1.1 yamt superblock_free(pf, block);
354 1.1 yamt }
355 1.1 yamt return (1);
356 1.1 yamt }
357 1.1 yamt
358 1.1 yamt
359 1.1 yamt /*
360 1.1 yamt * Go ahead and optimize a superblock
361 1.1 yamt */
362 1.1 yamt int
363 1.1 yamt optimize_superblock(struct pfctl *pf, struct superblock *block)
364 1.1 yamt {
365 1.1 yamt #ifdef OPT_DEBUG
366 1.1 yamt struct pf_opt_rule *por;
367 1.1 yamt #endif /* OPT_DEBUG */
368 1.1 yamt
369 1.1 yamt /* We have a few optimization passes:
370 1.1 yamt * 1) remove duplicate rules or rules that are a subset of other
371 1.1 yamt * rules
372 1.1 yamt * 2) combine otherwise identical rules with different IP addresses
373 1.1 yamt * into a single rule and put the addresses in a table.
374 1.1 yamt * 3) re-order the rules to improve kernel skip steps
375 1.1 yamt * 4) re-order the 'quick' rules based on feedback from the
376 1.1 yamt * active ruleset statistics
377 1.1 yamt *
378 1.1 yamt * XXX combine_rules() doesn't combine v4 and v6 rules. would just
379 1.1 yamt * have to keep af in the table container, make af 'COMBINE' and
380 1.1 yamt * twiddle the af on the merged rule
381 1.1 yamt * XXX maybe add a weighting to the metric on skipsteps when doing
382 1.1 yamt * reordering. sometimes two sequential tables will be better
383 1.1 yamt * that four consecutive interfaces.
384 1.1 yamt * XXX need to adjust the skipstep count of everything after PROTO,
385 1.1 yamt * since they aren't actually checked on a proto mismatch in
386 1.1 yamt * pf_test_{tcp, udp, icmp}()
387 1.1 yamt * XXX should i treat proto=0, af=0 or dir=0 special in skepstep
388 1.1 yamt * calculation since they are a DC?
389 1.1 yamt * XXX keep last skiplist of last superblock to influence this
390 1.1 yamt * superblock. '5 inet6 log' should make '3 inet6' come before '4
391 1.1 yamt * inet' in the next superblock.
392 1.1 yamt * XXX would be useful to add tables for ports
393 1.1 yamt * XXX we can also re-order some mutually exclusive superblocks to
394 1.1 yamt * try merging superblocks before any of these optimization passes.
395 1.1 yamt * for instance a single 'log in' rule in the middle of non-logging
396 1.1 yamt * out rules.
397 1.1 yamt */
398 1.1 yamt
399 1.1 yamt /* shortcut. there will be alot of 1-rule superblocks */
400 1.1 yamt if (!TAILQ_NEXT(TAILQ_FIRST(&block->sb_rules), por_entry))
401 1.1 yamt return (0);
402 1.1 yamt
403 1.1 yamt #ifdef OPT_DEBUG
404 1.1 yamt printf("--- Superblock ---\n");
405 1.1 yamt TAILQ_FOREACH(por, &block->sb_rules, por_entry) {
406 1.1 yamt printf(" ");
407 1.6 yamt print_rule(&por->por_rule, por->por_rule.anchor ?
408 1.6 yamt por->por_rule.anchor->name : "", 1);
409 1.1 yamt }
410 1.1 yamt #endif /* OPT_DEBUG */
411 1.1 yamt
412 1.1 yamt
413 1.1 yamt if (remove_identical_rules(pf, block))
414 1.1 yamt return (1);
415 1.1 yamt if (combine_rules(pf, block))
416 1.1 yamt return (1);
417 1.6 yamt if ((pf->optimize & PF_OPTIMIZE_PROFILE) &&
418 1.1 yamt TAILQ_FIRST(&block->sb_rules)->por_rule.quick &&
419 1.1 yamt block->sb_profiled_block) {
420 1.1 yamt if (block_feedback(pf, block))
421 1.1 yamt return (1);
422 1.1 yamt } else if (reorder_rules(pf, block, 0)) {
423 1.1 yamt return (1);
424 1.1 yamt }
425 1.1 yamt
426 1.1 yamt /*
427 1.1 yamt * Don't add any optimization passes below reorder_rules(). It will
428 1.1 yamt * have divided superblocks into smaller blocks for further refinement
429 1.1 yamt * and doesn't put them back together again. What once was a true
430 1.1 yamt * superblock might have been split into multiple superblocks.
431 1.1 yamt */
432 1.1 yamt
433 1.1 yamt #ifdef OPT_DEBUG
434 1.1 yamt printf("--- END Superblock ---\n");
435 1.1 yamt #endif /* OPT_DEBUG */
436 1.1 yamt return (0);
437 1.1 yamt }
438 1.1 yamt
439 1.1 yamt
440 1.1 yamt /*
441 1.1 yamt * Optimization pass #1: remove identical rules
442 1.1 yamt */
443 1.1 yamt int
444 1.1 yamt remove_identical_rules(struct pfctl *pf, struct superblock *block)
445 1.1 yamt {
446 1.1 yamt struct pf_opt_rule *por1, *por2, *por_next, *por2_next;
447 1.1 yamt struct pf_rule a, a2, b, b2;
448 1.1 yamt
449 1.1 yamt for (por1 = TAILQ_FIRST(&block->sb_rules); por1; por1 = por_next) {
450 1.1 yamt por_next = TAILQ_NEXT(por1, por_entry);
451 1.1 yamt for (por2 = por_next; por2; por2 = por2_next) {
452 1.1 yamt por2_next = TAILQ_NEXT(por2, por_entry);
453 1.1 yamt comparable_rule(&a, &por1->por_rule, DC);
454 1.1 yamt comparable_rule(&b, &por2->por_rule, DC);
455 1.1 yamt memcpy(&a2, &a, sizeof(a2));
456 1.1 yamt memcpy(&b2, &b, sizeof(b2));
457 1.1 yamt
458 1.1 yamt exclude_supersets(&a, &b);
459 1.1 yamt exclude_supersets(&b2, &a2);
460 1.1 yamt if (memcmp(&a, &b, sizeof(a)) == 0) {
461 1.1 yamt DEBUG("removing identical rule nr%d = *nr%d*",
462 1.1 yamt por1->por_rule.nr, por2->por_rule.nr);
463 1.1 yamt TAILQ_REMOVE(&block->sb_rules, por2, por_entry);
464 1.1 yamt if (por_next == por2)
465 1.1 yamt por_next = TAILQ_NEXT(por1, por_entry);
466 1.1 yamt free(por2);
467 1.1 yamt } else if (memcmp(&a2, &b2, sizeof(a2)) == 0) {
468 1.1 yamt DEBUG("removing identical rule *nr%d* = nr%d",
469 1.1 yamt por1->por_rule.nr, por2->por_rule.nr);
470 1.1 yamt TAILQ_REMOVE(&block->sb_rules, por1, por_entry);
471 1.1 yamt free(por1);
472 1.1 yamt break;
473 1.1 yamt }
474 1.1 yamt }
475 1.1 yamt }
476 1.1 yamt
477 1.1 yamt return (0);
478 1.1 yamt }
479 1.1 yamt
480 1.1 yamt
481 1.1 yamt /*
482 1.1 yamt * Optimization pass #2: combine similar rules with different addresses
483 1.1 yamt * into a single rule and a table
484 1.1 yamt */
485 1.1 yamt int
486 1.1 yamt combine_rules(struct pfctl *pf, struct superblock *block)
487 1.1 yamt {
488 1.1 yamt struct pf_opt_rule *p1, *p2, *por_next;
489 1.1 yamt int src_eq, dst_eq;
490 1.1 yamt
491 1.1 yamt if ((pf->loadopt & PFCTL_FLAG_TABLE) == 0) {
492 1.1 yamt warnx("Must enable table loading for optimizations");
493 1.1 yamt return (1);
494 1.1 yamt }
495 1.1 yamt
496 1.1 yamt /* First we make a pass to combine the rules. O(n log n) */
497 1.1 yamt TAILQ_FOREACH(p1, &block->sb_rules, por_entry) {
498 1.1 yamt for (p2 = TAILQ_NEXT(p1, por_entry); p2; p2 = por_next) {
499 1.1 yamt por_next = TAILQ_NEXT(p2, por_entry);
500 1.1 yamt
501 1.1 yamt src_eq = addrs_equal(&p1->por_rule.src,
502 1.1 yamt &p2->por_rule.src);
503 1.1 yamt dst_eq = addrs_equal(&p1->por_rule.dst,
504 1.1 yamt &p2->por_rule.dst);
505 1.1 yamt
506 1.1 yamt if (src_eq && !dst_eq && p1->por_src_tbl == NULL &&
507 1.1 yamt p2->por_dst_tbl == NULL &&
508 1.5 peter p2->por_src_tbl == NULL &&
509 1.1 yamt rules_combineable(&p1->por_rule, &p2->por_rule) &&
510 1.1 yamt addrs_combineable(&p1->por_rule.dst,
511 1.1 yamt &p2->por_rule.dst)) {
512 1.1 yamt DEBUG("can combine rules nr%d = nr%d",
513 1.1 yamt p1->por_rule.nr, p2->por_rule.nr);
514 1.1 yamt if (p1->por_dst_tbl == NULL &&
515 1.1 yamt add_opt_table(pf, &p1->por_dst_tbl,
516 1.1 yamt p1->por_rule.af, &p1->por_rule.dst))
517 1.1 yamt return (1);
518 1.1 yamt if (add_opt_table(pf, &p1->por_dst_tbl,
519 1.1 yamt p1->por_rule.af, &p2->por_rule.dst))
520 1.1 yamt return (1);
521 1.1 yamt p2->por_dst_tbl = p1->por_dst_tbl;
522 1.1 yamt if (p1->por_dst_tbl->pt_rulecount >=
523 1.1 yamt TABLE_THRESHOLD) {
524 1.1 yamt TAILQ_REMOVE(&block->sb_rules, p2,
525 1.1 yamt por_entry);
526 1.1 yamt free(p2);
527 1.1 yamt }
528 1.1 yamt } else if (!src_eq && dst_eq && p1->por_dst_tbl == NULL
529 1.1 yamt && p2->por_src_tbl == NULL &&
530 1.5 peter p2->por_dst_tbl == NULL &&
531 1.1 yamt rules_combineable(&p1->por_rule, &p2->por_rule) &&
532 1.1 yamt addrs_combineable(&p1->por_rule.src,
533 1.1 yamt &p2->por_rule.src)) {
534 1.1 yamt DEBUG("can combine rules nr%d = nr%d",
535 1.1 yamt p1->por_rule.nr, p2->por_rule.nr);
536 1.1 yamt if (p1->por_src_tbl == NULL &&
537 1.1 yamt add_opt_table(pf, &p1->por_src_tbl,
538 1.1 yamt p1->por_rule.af, &p1->por_rule.src))
539 1.1 yamt return (1);
540 1.1 yamt if (add_opt_table(pf, &p1->por_src_tbl,
541 1.1 yamt p1->por_rule.af, &p2->por_rule.src))
542 1.1 yamt return (1);
543 1.1 yamt p2->por_src_tbl = p1->por_src_tbl;
544 1.1 yamt if (p1->por_src_tbl->pt_rulecount >=
545 1.1 yamt TABLE_THRESHOLD) {
546 1.1 yamt TAILQ_REMOVE(&block->sb_rules, p2,
547 1.1 yamt por_entry);
548 1.1 yamt free(p2);
549 1.1 yamt }
550 1.1 yamt }
551 1.1 yamt }
552 1.1 yamt }
553 1.1 yamt
554 1.1 yamt
555 1.1 yamt /*
556 1.1 yamt * Then we make a final pass to create a valid table name and
557 1.1 yamt * insert the name into the rules.
558 1.1 yamt */
559 1.1 yamt for (p1 = TAILQ_FIRST(&block->sb_rules); p1; p1 = por_next) {
560 1.1 yamt por_next = TAILQ_NEXT(p1, por_entry);
561 1.1 yamt assert(p1->por_src_tbl == NULL || p1->por_dst_tbl == NULL);
562 1.1 yamt
563 1.1 yamt if (p1->por_src_tbl && p1->por_src_tbl->pt_rulecount >=
564 1.1 yamt TABLE_THRESHOLD) {
565 1.1 yamt if (p1->por_src_tbl->pt_generated) {
566 1.1 yamt /* This rule is included in a table */
567 1.1 yamt TAILQ_REMOVE(&block->sb_rules, p1, por_entry);
568 1.1 yamt free(p1);
569 1.1 yamt continue;
570 1.1 yamt }
571 1.1 yamt p1->por_src_tbl->pt_generated = 1;
572 1.1 yamt
573 1.1 yamt if ((pf->opts & PF_OPT_NOACTION) == 0 &&
574 1.1 yamt pf_opt_create_table(pf, p1->por_src_tbl))
575 1.1 yamt return (1);
576 1.1 yamt
577 1.1 yamt pf->tdirty = 1;
578 1.1 yamt
579 1.1 yamt if (pf->opts & PF_OPT_VERBOSE)
580 1.1 yamt print_tabledef(p1->por_src_tbl->pt_name,
581 1.1 yamt PFR_TFLAG_CONST, 1,
582 1.1 yamt &p1->por_src_tbl->pt_nodes);
583 1.1 yamt
584 1.1 yamt memset(&p1->por_rule.src.addr, 0,
585 1.1 yamt sizeof(p1->por_rule.src.addr));
586 1.1 yamt p1->por_rule.src.addr.type = PF_ADDR_TABLE;
587 1.1 yamt strlcpy(p1->por_rule.src.addr.v.tblname,
588 1.1 yamt p1->por_src_tbl->pt_name,
589 1.1 yamt sizeof(p1->por_rule.src.addr.v.tblname));
590 1.1 yamt
591 1.1 yamt pfr_buf_clear(p1->por_src_tbl->pt_buf);
592 1.1 yamt free(p1->por_src_tbl->pt_buf);
593 1.1 yamt p1->por_src_tbl->pt_buf = NULL;
594 1.1 yamt }
595 1.1 yamt if (p1->por_dst_tbl && p1->por_dst_tbl->pt_rulecount >=
596 1.1 yamt TABLE_THRESHOLD) {
597 1.1 yamt if (p1->por_dst_tbl->pt_generated) {
598 1.1 yamt /* This rule is included in a table */
599 1.1 yamt TAILQ_REMOVE(&block->sb_rules, p1, por_entry);
600 1.1 yamt free(p1);
601 1.1 yamt continue;
602 1.1 yamt }
603 1.1 yamt p1->por_dst_tbl->pt_generated = 1;
604 1.1 yamt
605 1.1 yamt if ((pf->opts & PF_OPT_NOACTION) == 0 &&
606 1.1 yamt pf_opt_create_table(pf, p1->por_dst_tbl))
607 1.1 yamt return (1);
608 1.1 yamt pf->tdirty = 1;
609 1.1 yamt
610 1.1 yamt if (pf->opts & PF_OPT_VERBOSE)
611 1.1 yamt print_tabledef(p1->por_dst_tbl->pt_name,
612 1.1 yamt PFR_TFLAG_CONST, 1,
613 1.1 yamt &p1->por_dst_tbl->pt_nodes);
614 1.1 yamt
615 1.1 yamt memset(&p1->por_rule.dst.addr, 0,
616 1.1 yamt sizeof(p1->por_rule.dst.addr));
617 1.1 yamt p1->por_rule.dst.addr.type = PF_ADDR_TABLE;
618 1.1 yamt strlcpy(p1->por_rule.dst.addr.v.tblname,
619 1.1 yamt p1->por_dst_tbl->pt_name,
620 1.1 yamt sizeof(p1->por_rule.dst.addr.v.tblname));
621 1.1 yamt
622 1.1 yamt pfr_buf_clear(p1->por_dst_tbl->pt_buf);
623 1.1 yamt free(p1->por_dst_tbl->pt_buf);
624 1.1 yamt p1->por_dst_tbl->pt_buf = NULL;
625 1.1 yamt }
626 1.1 yamt }
627 1.1 yamt
628 1.1 yamt return (0);
629 1.1 yamt }
630 1.1 yamt
631 1.1 yamt
632 1.1 yamt /*
633 1.1 yamt * Optimization pass #3: re-order rules to improve skip steps
634 1.1 yamt */
635 1.1 yamt int
636 1.1 yamt reorder_rules(struct pfctl *pf, struct superblock *block, int depth)
637 1.1 yamt {
638 1.1 yamt struct superblock *newblock;
639 1.1 yamt struct pf_skip_step *skiplist;
640 1.1 yamt struct pf_opt_rule *por;
641 1.4 lukem int i, largest, largest_list = -1, rule_count = 0;
642 1.1 yamt TAILQ_HEAD( , pf_opt_rule) head;
643 1.1 yamt
644 1.1 yamt /*
645 1.1 yamt * Calculate the best-case skip steps. We put each rule in a list
646 1.1 yamt * of other rules with common fields
647 1.1 yamt */
648 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++) {
649 1.1 yamt TAILQ_FOREACH(por, &block->sb_rules, por_entry) {
650 1.1 yamt TAILQ_FOREACH(skiplist, &block->sb_skipsteps[i],
651 1.1 yamt ps_entry) {
652 1.1 yamt if (skip_compare(i, skiplist, por) == 0)
653 1.1 yamt break;
654 1.1 yamt }
655 1.1 yamt if (skiplist == NULL) {
656 1.1 yamt if ((skiplist = calloc(1, sizeof(*skiplist))) ==
657 1.1 yamt NULL)
658 1.1 yamt err(1, "calloc");
659 1.1 yamt TAILQ_INIT(&skiplist->ps_rules);
660 1.1 yamt TAILQ_INSERT_TAIL(&block->sb_skipsteps[i],
661 1.1 yamt skiplist, ps_entry);
662 1.1 yamt }
663 1.1 yamt skip_append(block, i, skiplist, por);
664 1.1 yamt }
665 1.1 yamt }
666 1.1 yamt
667 1.1 yamt TAILQ_FOREACH(por, &block->sb_rules, por_entry)
668 1.1 yamt rule_count++;
669 1.1 yamt
670 1.1 yamt /*
671 1.1 yamt * Now we're going to ignore any fields that are identical between
672 1.1 yamt * all of the rules in the superblock and those fields which differ
673 1.1 yamt * between every rule in the superblock.
674 1.1 yamt */
675 1.1 yamt largest = 0;
676 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++) {
677 1.1 yamt skiplist = TAILQ_FIRST(&block->sb_skipsteps[i]);
678 1.1 yamt if (skiplist->ps_count == rule_count) {
679 1.1 yamt DEBUG("(%d) original skipstep '%s' is all rules",
680 1.1 yamt depth, skip_comparitors_names[i]);
681 1.1 yamt skiplist->ps_count = 0;
682 1.1 yamt } else if (skiplist->ps_count == 1) {
683 1.1 yamt skiplist->ps_count = 0;
684 1.1 yamt } else {
685 1.1 yamt DEBUG("(%d) original skipstep '%s' largest jump is %d",
686 1.1 yamt depth, skip_comparitors_names[i],
687 1.1 yamt skiplist->ps_count);
688 1.1 yamt if (skiplist->ps_count > largest)
689 1.1 yamt largest = skiplist->ps_count;
690 1.1 yamt }
691 1.1 yamt }
692 1.1 yamt if (largest == 0) {
693 1.1 yamt /* Ugh. There is NO commonality in the superblock on which
694 1.1 yamt * optimize the skipsteps optimization.
695 1.1 yamt */
696 1.1 yamt goto done;
697 1.1 yamt }
698 1.1 yamt
699 1.1 yamt /*
700 1.1 yamt * Now we're going to empty the superblock rule list and re-create
701 1.1 yamt * it based on a more optimal skipstep order.
702 1.1 yamt */
703 1.1 yamt TAILQ_INIT(&head);
704 1.1 yamt while ((por = TAILQ_FIRST(&block->sb_rules))) {
705 1.1 yamt TAILQ_REMOVE(&block->sb_rules, por, por_entry);
706 1.1 yamt TAILQ_INSERT_TAIL(&head, por, por_entry);
707 1.1 yamt }
708 1.1 yamt
709 1.1 yamt
710 1.1 yamt while (!TAILQ_EMPTY(&head)) {
711 1.1 yamt largest = 1;
712 1.1 yamt
713 1.1 yamt /*
714 1.1 yamt * Find the most useful skip steps remaining
715 1.1 yamt */
716 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++) {
717 1.1 yamt skiplist = TAILQ_FIRST(&block->sb_skipsteps[i]);
718 1.1 yamt if (skiplist->ps_count > largest) {
719 1.1 yamt largest = skiplist->ps_count;
720 1.1 yamt largest_list = i;
721 1.1 yamt }
722 1.1 yamt }
723 1.1 yamt
724 1.1 yamt if (largest <= 1) {
725 1.1 yamt /*
726 1.1 yamt * Nothing useful left. Leave remaining rules in order.
727 1.1 yamt */
728 1.1 yamt DEBUG("(%d) no more commonality for skip steps", depth);
729 1.1 yamt while ((por = TAILQ_FIRST(&head))) {
730 1.1 yamt TAILQ_REMOVE(&head, por, por_entry);
731 1.1 yamt TAILQ_INSERT_TAIL(&block->sb_rules, por,
732 1.1 yamt por_entry);
733 1.1 yamt }
734 1.1 yamt } else {
735 1.1 yamt /*
736 1.1 yamt * There is commonality. Extract those common rules
737 1.1 yamt * and place them in the ruleset adjacent to each
738 1.1 yamt * other.
739 1.1 yamt */
740 1.1 yamt skiplist = TAILQ_FIRST(&block->sb_skipsteps[
741 1.1 yamt largest_list]);
742 1.1 yamt DEBUG("(%d) skipstep '%s' largest jump is %d @ #%d",
743 1.1 yamt depth, skip_comparitors_names[largest_list],
744 1.1 yamt largest, TAILQ_FIRST(&TAILQ_FIRST(&block->
745 1.1 yamt sb_skipsteps [largest_list])->ps_rules)->
746 1.1 yamt por_rule.nr);
747 1.1 yamt TAILQ_REMOVE(&block->sb_skipsteps[largest_list],
748 1.1 yamt skiplist, ps_entry);
749 1.1 yamt
750 1.1 yamt
751 1.1 yamt /*
752 1.1 yamt * There may be further commonality inside these
753 1.1 yamt * rules. So we'll split them off into they're own
754 1.1 yamt * superblock and pass it back into the optimizer.
755 1.1 yamt */
756 1.1 yamt if (skiplist->ps_count > 2) {
757 1.1 yamt if ((newblock = calloc(1, sizeof(*newblock)))
758 1.1 yamt == NULL) {
759 1.1 yamt warn("calloc");
760 1.1 yamt return (1);
761 1.1 yamt }
762 1.1 yamt TAILQ_INIT(&newblock->sb_rules);
763 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++)
764 1.1 yamt TAILQ_INIT(&newblock->sb_skipsteps[i]);
765 1.1 yamt TAILQ_INSERT_BEFORE(block, newblock, sb_entry);
766 1.1 yamt DEBUG("(%d) splitting off %d rules from superblock @ #%d",
767 1.1 yamt depth, skiplist->ps_count,
768 1.1 yamt TAILQ_FIRST(&skiplist->ps_rules)->
769 1.1 yamt por_rule.nr);
770 1.1 yamt } else {
771 1.1 yamt newblock = block;
772 1.1 yamt }
773 1.1 yamt
774 1.1 yamt while ((por = TAILQ_FIRST(&skiplist->ps_rules))) {
775 1.1 yamt TAILQ_REMOVE(&head, por, por_entry);
776 1.1 yamt TAILQ_REMOVE(&skiplist->ps_rules, por,
777 1.1 yamt por_skip_entry[largest_list]);
778 1.1 yamt TAILQ_INSERT_TAIL(&newblock->sb_rules, por,
779 1.1 yamt por_entry);
780 1.1 yamt
781 1.1 yamt /* Remove this rule from all other skiplists */
782 1.1 yamt remove_from_skipsteps(&block->sb_skipsteps[
783 1.1 yamt largest_list], block, por, skiplist);
784 1.1 yamt }
785 1.1 yamt free(skiplist);
786 1.1 yamt if (newblock != block)
787 1.1 yamt if (reorder_rules(pf, newblock, depth + 1))
788 1.1 yamt return (1);
789 1.1 yamt }
790 1.1 yamt }
791 1.1 yamt
792 1.1 yamt done:
793 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++) {
794 1.1 yamt while ((skiplist = TAILQ_FIRST(&block->sb_skipsteps[i]))) {
795 1.1 yamt TAILQ_REMOVE(&block->sb_skipsteps[i], skiplist,
796 1.1 yamt ps_entry);
797 1.1 yamt free(skiplist);
798 1.1 yamt }
799 1.1 yamt }
800 1.1 yamt
801 1.1 yamt return (0);
802 1.1 yamt }
803 1.1 yamt
804 1.1 yamt
805 1.1 yamt /*
806 1.1 yamt * Optimization pass #4: re-order 'quick' rules based on feedback from the
807 1.1 yamt * currently running ruleset
808 1.1 yamt */
809 1.1 yamt int
810 1.1 yamt block_feedback(struct pfctl *pf, struct superblock *block)
811 1.1 yamt {
812 1.1 yamt TAILQ_HEAD( , pf_opt_rule) queue;
813 1.1 yamt struct pf_opt_rule *por1, *por2;
814 1.1 yamt u_int64_t total_count = 0;
815 1.1 yamt struct pf_rule a, b;
816 1.1 yamt
817 1.1 yamt
818 1.1 yamt /*
819 1.1 yamt * Walk through all of the profiled superblock's rules and copy
820 1.1 yamt * the counters onto our rules.
821 1.1 yamt */
822 1.1 yamt TAILQ_FOREACH(por1, &block->sb_profiled_block->sb_rules, por_entry) {
823 1.1 yamt comparable_rule(&a, &por1->por_rule, DC);
824 1.6 yamt total_count += por1->por_rule.packets[0] +
825 1.6 yamt por1->por_rule.packets[1];
826 1.1 yamt TAILQ_FOREACH(por2, &block->sb_rules, por_entry) {
827 1.1 yamt if (por2->por_profile_count)
828 1.1 yamt continue;
829 1.1 yamt comparable_rule(&b, &por2->por_rule, DC);
830 1.1 yamt if (memcmp(&a, &b, sizeof(a)) == 0) {
831 1.1 yamt por2->por_profile_count =
832 1.6 yamt por1->por_rule.packets[0] +
833 1.6 yamt por1->por_rule.packets[1];
834 1.1 yamt break;
835 1.1 yamt }
836 1.1 yamt }
837 1.1 yamt }
838 1.1 yamt superblock_free(pf, block->sb_profiled_block);
839 1.1 yamt block->sb_profiled_block = NULL;
840 1.1 yamt
841 1.1 yamt /*
842 1.1 yamt * Now we pull all of the rules off the superblock and re-insert them
843 1.1 yamt * in sorted order.
844 1.1 yamt */
845 1.1 yamt
846 1.1 yamt TAILQ_INIT(&queue);
847 1.1 yamt while ((por1 = TAILQ_FIRST(&block->sb_rules)) != NULL) {
848 1.1 yamt TAILQ_REMOVE(&block->sb_rules, por1, por_entry);
849 1.1 yamt TAILQ_INSERT_TAIL(&queue, por1, por_entry);
850 1.1 yamt }
851 1.1 yamt
852 1.1 yamt while ((por1 = TAILQ_FIRST(&queue)) != NULL) {
853 1.1 yamt TAILQ_REMOVE(&queue, por1, por_entry);
854 1.1 yamt /* XXX I should sort all of the unused rules based on skip steps */
855 1.1 yamt TAILQ_FOREACH(por2, &block->sb_rules, por_entry) {
856 1.1 yamt if (por1->por_profile_count > por2->por_profile_count) {
857 1.1 yamt TAILQ_INSERT_BEFORE(por2, por1, por_entry);
858 1.1 yamt break;
859 1.1 yamt }
860 1.1 yamt }
861 1.1 yamt if (por2 == TAILQ_END(&block->sb_rules))
862 1.1 yamt TAILQ_INSERT_TAIL(&block->sb_rules, por1, por_entry);
863 1.1 yamt }
864 1.1 yamt
865 1.1 yamt return (0);
866 1.1 yamt }
867 1.1 yamt
868 1.1 yamt
869 1.1 yamt /*
870 1.1 yamt * Load the current ruleset from the kernel and try to associate them with
871 1.1 yamt * the ruleset we're optimizing.
872 1.1 yamt */
873 1.1 yamt int
874 1.1 yamt load_feedback_profile(struct pfctl *pf, struct superblocks *superblocks)
875 1.1 yamt {
876 1.1 yamt struct superblock *block, *blockcur;
877 1.1 yamt struct superblocks prof_superblocks;
878 1.1 yamt struct pf_opt_rule *por;
879 1.1 yamt struct pf_opt_queue queue;
880 1.1 yamt struct pfioc_rule pr;
881 1.1 yamt struct pf_rule a, b;
882 1.1 yamt int nr, mnr;
883 1.1 yamt
884 1.1 yamt TAILQ_INIT(&queue);
885 1.1 yamt TAILQ_INIT(&prof_superblocks);
886 1.1 yamt
887 1.1 yamt memset(&pr, 0, sizeof(pr));
888 1.1 yamt pr.rule.action = PF_PASS;
889 1.1 yamt if (ioctl(pf->dev, DIOCGETRULES, &pr)) {
890 1.1 yamt warn("DIOCGETRULES");
891 1.1 yamt return (1);
892 1.1 yamt }
893 1.1 yamt mnr = pr.nr;
894 1.1 yamt
895 1.1 yamt DEBUG("Loading %d active rules for a feedback profile", mnr);
896 1.1 yamt for (nr = 0; nr < mnr; ++nr) {
897 1.6 yamt struct pf_ruleset *rs;
898 1.1 yamt if ((por = calloc(1, sizeof(*por))) == NULL) {
899 1.1 yamt warn("calloc");
900 1.1 yamt return (1);
901 1.1 yamt }
902 1.1 yamt pr.nr = nr;
903 1.1 yamt if (ioctl(pf->dev, DIOCGETRULE, &pr)) {
904 1.1 yamt warn("DIOCGETRULES");
905 1.1 yamt return (1);
906 1.1 yamt }
907 1.1 yamt memcpy(&por->por_rule, &pr.rule, sizeof(por->por_rule));
908 1.6 yamt rs = pf_find_or_create_ruleset(pr.anchor_call);
909 1.6 yamt por->por_rule.anchor = rs->anchor;
910 1.1 yamt if (TAILQ_EMPTY(&por->por_rule.rpool.list))
911 1.1 yamt memset(&por->por_rule.rpool, 0,
912 1.1 yamt sizeof(por->por_rule.rpool));
913 1.1 yamt TAILQ_INSERT_TAIL(&queue, por, por_entry);
914 1.1 yamt
915 1.1 yamt /* XXX pfctl_get_pool(pf->dev, &pr.rule.rpool, nr, pr.ticket,
916 1.1 yamt * PF_PASS, pf->anchor) ???
917 1.1 yamt * ... pfctl_clear_pool(&pr.rule.rpool)
918 1.1 yamt */
919 1.1 yamt }
920 1.1 yamt
921 1.1 yamt if (construct_superblocks(pf, &queue, &prof_superblocks))
922 1.1 yamt return (1);
923 1.1 yamt
924 1.1 yamt
925 1.1 yamt /*
926 1.1 yamt * Now we try to associate the active ruleset's superblocks with
927 1.1 yamt * the superblocks we're compiling.
928 1.1 yamt */
929 1.1 yamt block = TAILQ_FIRST(superblocks);
930 1.1 yamt blockcur = TAILQ_FIRST(&prof_superblocks);
931 1.1 yamt while (block && blockcur) {
932 1.1 yamt comparable_rule(&a, &TAILQ_FIRST(&block->sb_rules)->por_rule,
933 1.1 yamt BREAK);
934 1.1 yamt comparable_rule(&b, &TAILQ_FIRST(&blockcur->sb_rules)->por_rule,
935 1.1 yamt BREAK);
936 1.1 yamt if (memcmp(&a, &b, sizeof(a)) == 0) {
937 1.1 yamt /* The two superblocks lined up */
938 1.1 yamt block->sb_profiled_block = blockcur;
939 1.1 yamt } else {
940 1.1 yamt DEBUG("superblocks don't line up between #%d and #%d",
941 1.1 yamt TAILQ_FIRST(&block->sb_rules)->por_rule.nr,
942 1.1 yamt TAILQ_FIRST(&blockcur->sb_rules)->por_rule.nr);
943 1.1 yamt break;
944 1.1 yamt }
945 1.1 yamt block = TAILQ_NEXT(block, sb_entry);
946 1.1 yamt blockcur = TAILQ_NEXT(blockcur, sb_entry);
947 1.1 yamt }
948 1.1 yamt
949 1.1 yamt
950 1.1 yamt
951 1.1 yamt /* Free any superblocks we couldn't link */
952 1.1 yamt while (blockcur) {
953 1.1 yamt block = TAILQ_NEXT(blockcur, sb_entry);
954 1.1 yamt superblock_free(pf, blockcur);
955 1.1 yamt blockcur = block;
956 1.1 yamt }
957 1.1 yamt return (0);
958 1.1 yamt }
959 1.1 yamt
960 1.1 yamt
961 1.1 yamt /*
962 1.1 yamt * Compare a rule to a skiplist to see if the rule is a member
963 1.1 yamt */
964 1.1 yamt int
965 1.1 yamt skip_compare(int skipnum, struct pf_skip_step *skiplist,
966 1.1 yamt struct pf_opt_rule *por)
967 1.1 yamt {
968 1.1 yamt struct pf_rule *a, *b;
969 1.1 yamt if (skipnum >= PF_SKIP_COUNT || skipnum < 0)
970 1.1 yamt errx(1, "skip_compare() out of bounds");
971 1.1 yamt a = &por->por_rule;
972 1.1 yamt b = &TAILQ_FIRST(&skiplist->ps_rules)->por_rule;
973 1.1 yamt
974 1.1 yamt return ((skip_comparitors[skipnum])(a, b));
975 1.1 yamt }
976 1.1 yamt
977 1.1 yamt
978 1.1 yamt /*
979 1.1 yamt * Add a rule to a skiplist
980 1.1 yamt */
981 1.1 yamt void
982 1.1 yamt skip_append(struct superblock *superblock, int skipnum,
983 1.1 yamt struct pf_skip_step *skiplist, struct pf_opt_rule *por)
984 1.1 yamt {
985 1.1 yamt struct pf_skip_step *prev;
986 1.1 yamt
987 1.1 yamt skiplist->ps_count++;
988 1.1 yamt TAILQ_INSERT_TAIL(&skiplist->ps_rules, por, por_skip_entry[skipnum]);
989 1.1 yamt
990 1.1 yamt /* Keep the list of skiplists sorted by whichever is larger */
991 1.1 yamt while ((prev = TAILQ_PREV(skiplist, skiplist, ps_entry)) &&
992 1.1 yamt prev->ps_count < skiplist->ps_count) {
993 1.1 yamt TAILQ_REMOVE(&superblock->sb_skipsteps[skipnum],
994 1.1 yamt skiplist, ps_entry);
995 1.1 yamt TAILQ_INSERT_BEFORE(prev, skiplist, ps_entry);
996 1.1 yamt }
997 1.1 yamt }
998 1.1 yamt
999 1.1 yamt
1000 1.1 yamt /*
1001 1.1 yamt * Remove a rule from the other skiplist calculations.
1002 1.1 yamt */
1003 1.1 yamt void
1004 1.1 yamt remove_from_skipsteps(struct skiplist *head, struct superblock *block,
1005 1.1 yamt struct pf_opt_rule *por, struct pf_skip_step *active_list)
1006 1.1 yamt {
1007 1.1 yamt struct pf_skip_step *sk, *next;
1008 1.1 yamt struct pf_opt_rule *p2;
1009 1.1 yamt int i, found;
1010 1.1 yamt
1011 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++) {
1012 1.1 yamt sk = TAILQ_FIRST(&block->sb_skipsteps[i]);
1013 1.1 yamt if (sk == NULL || sk == active_list || sk->ps_count <= 1)
1014 1.1 yamt continue;
1015 1.1 yamt found = 0;
1016 1.1 yamt do {
1017 1.1 yamt TAILQ_FOREACH(p2, &sk->ps_rules, por_skip_entry[i])
1018 1.1 yamt if (p2 == por) {
1019 1.1 yamt TAILQ_REMOVE(&sk->ps_rules, p2,
1020 1.1 yamt por_skip_entry[i]);
1021 1.1 yamt found = 1;
1022 1.1 yamt sk->ps_count--;
1023 1.1 yamt break;
1024 1.1 yamt }
1025 1.1 yamt } while (!found && (sk = TAILQ_NEXT(sk, ps_entry)));
1026 1.1 yamt if (found && sk) {
1027 1.1 yamt /* Does this change the sorting order? */
1028 1.1 yamt while ((next = TAILQ_NEXT(sk, ps_entry)) &&
1029 1.1 yamt next->ps_count > sk->ps_count) {
1030 1.1 yamt TAILQ_REMOVE(head, sk, ps_entry);
1031 1.1 yamt TAILQ_INSERT_AFTER(head, next, sk, ps_entry);
1032 1.1 yamt }
1033 1.1 yamt #ifdef OPT_DEBUG
1034 1.1 yamt next = TAILQ_NEXT(sk, ps_entry);
1035 1.1 yamt assert(next == NULL || next->ps_count <= sk->ps_count);
1036 1.1 yamt #endif /* OPT_DEBUG */
1037 1.1 yamt }
1038 1.1 yamt }
1039 1.1 yamt }
1040 1.1 yamt
1041 1.1 yamt
1042 1.1 yamt /* Compare two rules AF field for skiplist construction */
1043 1.1 yamt int
1044 1.1 yamt skip_cmp_af(struct pf_rule *a, struct pf_rule *b)
1045 1.1 yamt {
1046 1.1 yamt if (a->af != b->af || a->af == 0)
1047 1.1 yamt return (1);
1048 1.1 yamt return (0);
1049 1.1 yamt }
1050 1.1 yamt
1051 1.1 yamt /* Compare two rules DIRECTION field for skiplist construction */
1052 1.1 yamt int
1053 1.1 yamt skip_cmp_dir(struct pf_rule *a, struct pf_rule *b)
1054 1.1 yamt {
1055 1.1 yamt if (a->direction == 0 || a->direction != b->direction)
1056 1.1 yamt return (1);
1057 1.1 yamt return (0);
1058 1.1 yamt }
1059 1.1 yamt
1060 1.1 yamt /* Compare two rules DST Address field for skiplist construction */
1061 1.1 yamt int
1062 1.1 yamt skip_cmp_dst_addr(struct pf_rule *a, struct pf_rule *b)
1063 1.1 yamt {
1064 1.1 yamt if (a->dst.neg != b->dst.neg ||
1065 1.1 yamt a->dst.addr.type != b->dst.addr.type)
1066 1.1 yamt return (1);
1067 1.1 yamt /* XXX if (a->proto != b->proto && a->proto != 0 && b->proto != 0
1068 1.1 yamt * && (a->proto == IPPROTO_TCP || a->proto == IPPROTO_UDP ||
1069 1.1 yamt * a->proto == IPPROTO_ICMP
1070 1.1 yamt * return (1);
1071 1.1 yamt */
1072 1.1 yamt switch (a->dst.addr.type) {
1073 1.1 yamt case PF_ADDR_ADDRMASK:
1074 1.1 yamt if (memcmp(&a->dst.addr.v.a.addr, &b->dst.addr.v.a.addr,
1075 1.1 yamt sizeof(a->dst.addr.v.a.addr)) ||
1076 1.1 yamt memcmp(&a->dst.addr.v.a.mask, &b->dst.addr.v.a.mask,
1077 1.1 yamt sizeof(a->dst.addr.v.a.mask)) ||
1078 1.1 yamt (a->dst.addr.v.a.addr.addr32[0] == 0 &&
1079 1.1 yamt a->dst.addr.v.a.addr.addr32[1] == 0 &&
1080 1.1 yamt a->dst.addr.v.a.addr.addr32[2] == 0 &&
1081 1.1 yamt a->dst.addr.v.a.addr.addr32[3] == 0))
1082 1.1 yamt return (1);
1083 1.1 yamt return (0);
1084 1.1 yamt case PF_ADDR_DYNIFTL:
1085 1.1 yamt if (strcmp(a->dst.addr.v.ifname, b->dst.addr.v.ifname) != 0 ||
1086 1.1 yamt a->dst.addr.iflags != a->dst.addr.iflags ||
1087 1.1 yamt memcmp(&a->dst.addr.v.a.mask, &b->dst.addr.v.a.mask,
1088 1.1 yamt sizeof(a->dst.addr.v.a.mask)))
1089 1.1 yamt return (1);
1090 1.1 yamt return (0);
1091 1.1 yamt case PF_ADDR_NOROUTE:
1092 1.6 yamt case PF_ADDR_URPFFAILED:
1093 1.1 yamt return (0);
1094 1.1 yamt case PF_ADDR_TABLE:
1095 1.1 yamt return (strcmp(a->dst.addr.v.tblname, b->dst.addr.v.tblname));
1096 1.1 yamt }
1097 1.1 yamt return (1);
1098 1.1 yamt }
1099 1.1 yamt
1100 1.1 yamt /* Compare two rules DST port field for skiplist construction */
1101 1.1 yamt int
1102 1.1 yamt skip_cmp_dst_port(struct pf_rule *a, struct pf_rule *b)
1103 1.1 yamt {
1104 1.1 yamt /* XXX if (a->proto != b->proto && a->proto != 0 && b->proto != 0
1105 1.1 yamt * && (a->proto == IPPROTO_TCP || a->proto == IPPROTO_UDP ||
1106 1.1 yamt * a->proto == IPPROTO_ICMP
1107 1.1 yamt * return (1);
1108 1.1 yamt */
1109 1.1 yamt if (a->dst.port_op == PF_OP_NONE || a->dst.port_op != b->dst.port_op ||
1110 1.1 yamt a->dst.port[0] != b->dst.port[0] ||
1111 1.1 yamt a->dst.port[1] != b->dst.port[1])
1112 1.1 yamt return (1);
1113 1.1 yamt return (0);
1114 1.1 yamt }
1115 1.1 yamt
1116 1.1 yamt /* Compare two rules IFP field for skiplist construction */
1117 1.1 yamt int
1118 1.1 yamt skip_cmp_ifp(struct pf_rule *a, struct pf_rule *b)
1119 1.1 yamt {
1120 1.1 yamt if (strcmp(a->ifname, b->ifname) || a->ifname[0] == '\0')
1121 1.1 yamt return (1);
1122 1.1 yamt return (a->ifnot != b->ifnot);
1123 1.1 yamt }
1124 1.1 yamt
1125 1.1 yamt /* Compare two rules PROTO field for skiplist construction */
1126 1.1 yamt int
1127 1.1 yamt skip_cmp_proto(struct pf_rule *a, struct pf_rule *b)
1128 1.1 yamt {
1129 1.1 yamt return (a->proto != b->proto || a->proto == 0);
1130 1.1 yamt }
1131 1.1 yamt
1132 1.1 yamt /* Compare two rules SRC addr field for skiplist construction */
1133 1.1 yamt int
1134 1.1 yamt skip_cmp_src_addr(struct pf_rule *a, struct pf_rule *b)
1135 1.1 yamt {
1136 1.1 yamt if (a->src.neg != b->src.neg ||
1137 1.1 yamt a->src.addr.type != b->src.addr.type)
1138 1.1 yamt return (1);
1139 1.1 yamt /* XXX if (a->proto != b->proto && a->proto != 0 && b->proto != 0
1140 1.1 yamt * && (a->proto == IPPROTO_TCP || a->proto == IPPROTO_UDP ||
1141 1.1 yamt * a->proto == IPPROTO_ICMP
1142 1.1 yamt * return (1);
1143 1.1 yamt */
1144 1.1 yamt switch (a->src.addr.type) {
1145 1.1 yamt case PF_ADDR_ADDRMASK:
1146 1.1 yamt if (memcmp(&a->src.addr.v.a.addr, &b->src.addr.v.a.addr,
1147 1.1 yamt sizeof(a->src.addr.v.a.addr)) ||
1148 1.1 yamt memcmp(&a->src.addr.v.a.mask, &b->src.addr.v.a.mask,
1149 1.1 yamt sizeof(a->src.addr.v.a.mask)) ||
1150 1.1 yamt (a->src.addr.v.a.addr.addr32[0] == 0 &&
1151 1.1 yamt a->src.addr.v.a.addr.addr32[1] == 0 &&
1152 1.1 yamt a->src.addr.v.a.addr.addr32[2] == 0 &&
1153 1.1 yamt a->src.addr.v.a.addr.addr32[3] == 0))
1154 1.1 yamt return (1);
1155 1.1 yamt return (0);
1156 1.1 yamt case PF_ADDR_DYNIFTL:
1157 1.1 yamt if (strcmp(a->src.addr.v.ifname, b->src.addr.v.ifname) != 0 ||
1158 1.1 yamt a->src.addr.iflags != a->src.addr.iflags ||
1159 1.1 yamt memcmp(&a->src.addr.v.a.mask, &b->src.addr.v.a.mask,
1160 1.1 yamt sizeof(a->src.addr.v.a.mask)))
1161 1.1 yamt return (1);
1162 1.1 yamt return (0);
1163 1.1 yamt case PF_ADDR_NOROUTE:
1164 1.6 yamt case PF_ADDR_URPFFAILED:
1165 1.1 yamt return (0);
1166 1.1 yamt case PF_ADDR_TABLE:
1167 1.1 yamt return (strcmp(a->src.addr.v.tblname, b->src.addr.v.tblname));
1168 1.1 yamt }
1169 1.1 yamt return (1);
1170 1.1 yamt }
1171 1.1 yamt
1172 1.1 yamt /* Compare two rules SRC port field for skiplist construction */
1173 1.1 yamt int
1174 1.1 yamt skip_cmp_src_port(struct pf_rule *a, struct pf_rule *b)
1175 1.1 yamt {
1176 1.1 yamt if (a->src.port_op == PF_OP_NONE || a->src.port_op != b->src.port_op ||
1177 1.1 yamt a->src.port[0] != b->src.port[0] ||
1178 1.1 yamt a->src.port[1] != b->src.port[1])
1179 1.1 yamt return (1);
1180 1.1 yamt /* XXX if (a->proto != b->proto && a->proto != 0 && b->proto != 0
1181 1.1 yamt * && (a->proto == IPPROTO_TCP || a->proto == IPPROTO_UDP ||
1182 1.1 yamt * a->proto == IPPROTO_ICMP
1183 1.1 yamt * return (1);
1184 1.1 yamt */
1185 1.1 yamt return (0);
1186 1.1 yamt }
1187 1.1 yamt
1188 1.1 yamt
1189 1.1 yamt void
1190 1.1 yamt skip_init(void)
1191 1.1 yamt {
1192 1.1 yamt struct {
1193 1.1 yamt char *name;
1194 1.1 yamt int skipnum;
1195 1.1 yamt int (*func)(struct pf_rule *, struct pf_rule *);
1196 1.1 yamt } comps[] = PF_SKIP_COMPARITORS;
1197 1.1 yamt int skipnum, i;
1198 1.1 yamt
1199 1.1 yamt for (skipnum = 0; skipnum < PF_SKIP_COUNT; skipnum++) {
1200 1.1 yamt for (i = 0; i < sizeof(comps)/sizeof(*comps); i++)
1201 1.1 yamt if (comps[i].skipnum == skipnum) {
1202 1.1 yamt skip_comparitors[skipnum] = comps[i].func;
1203 1.1 yamt skip_comparitors_names[skipnum] = comps[i].name;
1204 1.1 yamt }
1205 1.1 yamt }
1206 1.1 yamt for (skipnum = 0; skipnum < PF_SKIP_COUNT; skipnum++)
1207 1.1 yamt if (skip_comparitors[skipnum] == NULL)
1208 1.1 yamt errx(1, "Need to add skip step comparitor to pfctl?!");
1209 1.1 yamt }
1210 1.1 yamt
1211 1.1 yamt /*
1212 1.1 yamt * Add a host/netmask to a table
1213 1.1 yamt */
1214 1.1 yamt int
1215 1.1 yamt add_opt_table(struct pfctl *pf, struct pf_opt_tbl **tbl, sa_family_t af,
1216 1.1 yamt struct pf_rule_addr *addr)
1217 1.1 yamt {
1218 1.1 yamt #ifdef OPT_DEBUG
1219 1.1 yamt char buf[128];
1220 1.1 yamt #endif /* OPT_DEBUG */
1221 1.1 yamt static int tablenum = 0;
1222 1.1 yamt struct node_host node_host;
1223 1.1 yamt
1224 1.1 yamt if (*tbl == NULL) {
1225 1.1 yamt if ((*tbl = calloc(1, sizeof(**tbl))) == NULL ||
1226 1.1 yamt ((*tbl)->pt_buf = calloc(1, sizeof(*(*tbl)->pt_buf))) ==
1227 1.1 yamt NULL)
1228 1.1 yamt err(1, "calloc");
1229 1.1 yamt (*tbl)->pt_buf->pfrb_type = PFRB_ADDRS;
1230 1.1 yamt SIMPLEQ_INIT(&(*tbl)->pt_nodes);
1231 1.1 yamt
1232 1.1 yamt /* This is just a temporary table name */
1233 1.1 yamt snprintf((*tbl)->pt_name, sizeof((*tbl)->pt_name), "%s%d",
1234 1.1 yamt PF_OPT_TABLE_PREFIX, tablenum++);
1235 1.1 yamt DEBUG("creating table <%s>", (*tbl)->pt_name);
1236 1.1 yamt }
1237 1.1 yamt
1238 1.1 yamt memset(&node_host, 0, sizeof(node_host));
1239 1.1 yamt node_host.af = af;
1240 1.1 yamt node_host.addr = addr->addr;
1241 1.1 yamt
1242 1.1 yamt #ifdef OPT_DEBUG
1243 1.1 yamt DEBUG("<%s> adding %s/%d", (*tbl)->pt_name, inet_ntop(af,
1244 1.1 yamt &node_host.addr.v.a.addr, buf, sizeof(buf)),
1245 1.1 yamt unmask(&node_host.addr.v.a.mask, af));
1246 1.1 yamt #endif /* OPT_DEBUG */
1247 1.1 yamt
1248 1.5 peter if (append_addr_host((*tbl)->pt_buf, &node_host, 0, 0)) {
1249 1.5 peter warn("failed to add host");
1250 1.1 yamt return (1);
1251 1.5 peter }
1252 1.1 yamt if (pf->opts & PF_OPT_VERBOSE) {
1253 1.1 yamt struct node_tinit *ti;
1254 1.1 yamt
1255 1.1 yamt if ((ti = calloc(1, sizeof(*ti))) == NULL)
1256 1.1 yamt err(1, "malloc");
1257 1.1 yamt if ((ti->host = malloc(sizeof(*ti->host))) == NULL)
1258 1.1 yamt err(1, "malloc");
1259 1.1 yamt memcpy(ti->host, &node_host, sizeof(*ti->host));
1260 1.1 yamt SIMPLEQ_INSERT_TAIL(&(*tbl)->pt_nodes, ti, entries);
1261 1.1 yamt }
1262 1.1 yamt
1263 1.1 yamt (*tbl)->pt_rulecount++;
1264 1.1 yamt if ((*tbl)->pt_rulecount == TABLE_THRESHOLD)
1265 1.1 yamt DEBUG("table <%s> now faster than skip steps", (*tbl)->pt_name);
1266 1.1 yamt
1267 1.1 yamt return (0);
1268 1.1 yamt }
1269 1.1 yamt
1270 1.1 yamt
1271 1.1 yamt /*
1272 1.1 yamt * Do the dirty work of choosing an unused table name and creating it.
1273 1.1 yamt * (be careful with the table name, it might already be used in another anchor)
1274 1.1 yamt */
1275 1.1 yamt int
1276 1.1 yamt pf_opt_create_table(struct pfctl *pf, struct pf_opt_tbl *tbl)
1277 1.1 yamt {
1278 1.1 yamt static int tablenum;
1279 1.1 yamt struct pfr_table *t;
1280 1.1 yamt
1281 1.1 yamt if (table_buffer.pfrb_type == 0) {
1282 1.1 yamt /* Initialize the list of tables */
1283 1.1 yamt table_buffer.pfrb_type = PFRB_TABLES;
1284 1.1 yamt for (;;) {
1285 1.1 yamt pfr_buf_grow(&table_buffer, table_buffer.pfrb_size);
1286 1.1 yamt table_buffer.pfrb_size = table_buffer.pfrb_msize;
1287 1.1 yamt if (pfr_get_tables(NULL, table_buffer.pfrb_caddr,
1288 1.1 yamt &table_buffer.pfrb_size, PFR_FLAG_ALLRSETS))
1289 1.1 yamt err(1, "pfr_get_tables");
1290 1.1 yamt if (table_buffer.pfrb_size <= table_buffer.pfrb_msize)
1291 1.1 yamt break;
1292 1.1 yamt }
1293 1.1 yamt table_identifier = arc4random();
1294 1.1 yamt }
1295 1.1 yamt
1296 1.1 yamt /* XXX would be *really* nice to avoid duplicating identical tables */
1297 1.1 yamt
1298 1.1 yamt /* Now we have to pick a table name that isn't used */
1299 1.1 yamt again:
1300 1.1 yamt DEBUG("translating temporary table <%s> to <%s%x_%d>", tbl->pt_name,
1301 1.1 yamt PF_OPT_TABLE_PREFIX, table_identifier, tablenum);
1302 1.1 yamt snprintf(tbl->pt_name, sizeof(tbl->pt_name), "%s%x_%d",
1303 1.1 yamt PF_OPT_TABLE_PREFIX, table_identifier, tablenum);
1304 1.1 yamt PFRB_FOREACH(t, &table_buffer) {
1305 1.1 yamt if (strcasecmp(t->pfrt_name, tbl->pt_name) == 0) {
1306 1.1 yamt /* Collision. Try again */
1307 1.1 yamt DEBUG("wow, table <%s> in use. trying again",
1308 1.1 yamt tbl->pt_name);
1309 1.1 yamt table_identifier = arc4random();
1310 1.1 yamt goto again;
1311 1.1 yamt }
1312 1.1 yamt }
1313 1.1 yamt tablenum++;
1314 1.1 yamt
1315 1.1 yamt
1316 1.6 yamt if (pfctl_define_table(tbl->pt_name, PFR_TFLAG_CONST, 1,
1317 1.6 yamt pf->anchor->name, tbl->pt_buf, pf->anchor->ruleset.tticket)) {
1318 1.5 peter warn("failed to create table %s", tbl->pt_name);
1319 1.1 yamt return (1);
1320 1.5 peter }
1321 1.1 yamt return (0);
1322 1.1 yamt }
1323 1.1 yamt
1324 1.1 yamt /*
1325 1.1 yamt * Partition the flat ruleset into a list of distinct superblocks
1326 1.1 yamt */
1327 1.1 yamt int
1328 1.1 yamt construct_superblocks(struct pfctl *pf, struct pf_opt_queue *opt_queue,
1329 1.1 yamt struct superblocks *superblocks)
1330 1.1 yamt {
1331 1.1 yamt struct superblock *block = NULL;
1332 1.1 yamt struct pf_opt_rule *por;
1333 1.1 yamt int i;
1334 1.1 yamt
1335 1.1 yamt while (!TAILQ_EMPTY(opt_queue)) {
1336 1.1 yamt por = TAILQ_FIRST(opt_queue);
1337 1.1 yamt TAILQ_REMOVE(opt_queue, por, por_entry);
1338 1.1 yamt if (block == NULL || !superblock_inclusive(block, por)) {
1339 1.1 yamt if ((block = calloc(1, sizeof(*block))) == NULL) {
1340 1.1 yamt warn("calloc");
1341 1.1 yamt return (1);
1342 1.1 yamt }
1343 1.1 yamt TAILQ_INIT(&block->sb_rules);
1344 1.1 yamt for (i = 0; i < PF_SKIP_COUNT; i++)
1345 1.1 yamt TAILQ_INIT(&block->sb_skipsteps[i]);
1346 1.1 yamt TAILQ_INSERT_TAIL(superblocks, block, sb_entry);
1347 1.1 yamt }
1348 1.1 yamt TAILQ_INSERT_TAIL(&block->sb_rules, por, por_entry);
1349 1.1 yamt }
1350 1.1 yamt
1351 1.1 yamt return (0);
1352 1.1 yamt }
1353 1.1 yamt
1354 1.1 yamt
1355 1.1 yamt /*
1356 1.1 yamt * Compare two rule addresses
1357 1.1 yamt */
1358 1.1 yamt int
1359 1.1 yamt addrs_equal(struct pf_rule_addr *a, struct pf_rule_addr *b)
1360 1.1 yamt {
1361 1.1 yamt if (a->neg != b->neg)
1362 1.1 yamt return (0);
1363 1.1 yamt return (memcmp(&a->addr, &b->addr, sizeof(a->addr)) == 0);
1364 1.1 yamt }
1365 1.1 yamt
1366 1.1 yamt
1367 1.1 yamt /*
1368 1.1 yamt * The addresses are not equal, but can we combine them into one table?
1369 1.1 yamt */
1370 1.1 yamt int
1371 1.1 yamt addrs_combineable(struct pf_rule_addr *a, struct pf_rule_addr *b)
1372 1.1 yamt {
1373 1.3 yamt if (a->addr.type != PF_ADDR_ADDRMASK ||
1374 1.1 yamt b->addr.type != PF_ADDR_ADDRMASK)
1375 1.1 yamt return (0);
1376 1.1 yamt if (a->neg != b->neg || a->port_op != b->port_op ||
1377 1.1 yamt a->port[0] != b->port[0] || a->port[1] != b->port[1])
1378 1.1 yamt return (0);
1379 1.1 yamt return (1);
1380 1.1 yamt }
1381 1.1 yamt
1382 1.1 yamt
1383 1.1 yamt /*
1384 1.1 yamt * Are we allowed to combine these two rules
1385 1.1 yamt */
1386 1.1 yamt int
1387 1.1 yamt rules_combineable(struct pf_rule *p1, struct pf_rule *p2)
1388 1.1 yamt {
1389 1.1 yamt struct pf_rule a, b;
1390 1.1 yamt
1391 1.1 yamt comparable_rule(&a, p1, COMBINED);
1392 1.1 yamt comparable_rule(&b, p2, COMBINED);
1393 1.1 yamt return (memcmp(&a, &b, sizeof(a)) == 0);
1394 1.1 yamt }
1395 1.1 yamt
1396 1.1 yamt
1397 1.1 yamt /*
1398 1.1 yamt * Can a rule be included inside a superblock
1399 1.1 yamt */
1400 1.1 yamt int
1401 1.1 yamt superblock_inclusive(struct superblock *block, struct pf_opt_rule *por)
1402 1.1 yamt {
1403 1.1 yamt struct pf_rule a, b;
1404 1.1 yamt int i, j;
1405 1.1 yamt
1406 1.1 yamt /* First check for hard breaks */
1407 1.1 yamt for (i = 0; i < sizeof(pf_rule_desc)/sizeof(*pf_rule_desc); i++) {
1408 1.1 yamt if (pf_rule_desc[i].prf_type == BARRIER) {
1409 1.1 yamt for (j = 0; j < pf_rule_desc[i].prf_size; j++)
1410 1.1 yamt if (((char *)&por->por_rule)[j +
1411 1.1 yamt pf_rule_desc[i].prf_offset] != 0)
1412 1.1 yamt return (0);
1413 1.1 yamt }
1414 1.1 yamt }
1415 1.1 yamt
1416 1.6 yamt /* per-rule src-track is also a hard break */
1417 1.6 yamt if (por->por_rule.rule_flag & PFRULE_RULESRCTRACK)
1418 1.1 yamt return (0);
1419 1.1 yamt
1420 1.6 yamt /*
1421 1.6 yamt * Have to handle interface groups seperately. Consider the following
1422 1.6 yamt * rules:
1423 1.6 yamt * block on EXTIFS to any port 22
1424 1.6 yamt * pass on em0 to any port 22
1425 1.6 yamt * (where EXTIFS is an arbitrary interface group)
1426 1.6 yamt * The optimizer may decide to re-order the pass rule in front of the
1427 1.6 yamt * block rule. But what if EXTIFS includes em0??? Such a reordering
1428 1.6 yamt * would change the meaning of the ruleset.
1429 1.6 yamt * We can't just lookup the EXTIFS group and check if em0 is a member
1430 1.6 yamt * because the user is allowed to add interfaces to a group during
1431 1.6 yamt * runtime.
1432 1.6 yamt * Ergo interface groups become a defacto superblock break :-(
1433 1.6 yamt */
1434 1.6 yamt if (interface_group(por->por_rule.ifname) ||
1435 1.6 yamt interface_group(TAILQ_FIRST(&block->sb_rules)->por_rule.ifname)) {
1436 1.6 yamt if (strcasecmp(por->por_rule.ifname,
1437 1.6 yamt TAILQ_FIRST(&block->sb_rules)->por_rule.ifname) != 0)
1438 1.6 yamt return (0);
1439 1.6 yamt }
1440 1.6 yamt
1441 1.1 yamt comparable_rule(&a, &TAILQ_FIRST(&block->sb_rules)->por_rule, NOMERGE);
1442 1.1 yamt comparable_rule(&b, &por->por_rule, NOMERGE);
1443 1.6 yamt if (memcmp(&a, &b, sizeof(a)) == 0)
1444 1.1 yamt return (1);
1445 1.1 yamt
1446 1.1 yamt #ifdef OPT_DEBUG
1447 1.1 yamt for (i = 0; i < sizeof(por->por_rule); i++) {
1448 1.1 yamt int closest = -1;
1449 1.1 yamt if (((u_int8_t *)&a)[i] != ((u_int8_t *)&b)[i]) {
1450 1.1 yamt for (j = 0; j < sizeof(pf_rule_desc) /
1451 1.1 yamt sizeof(*pf_rule_desc); j++) {
1452 1.1 yamt if (i >= pf_rule_desc[j].prf_offset &&
1453 1.1 yamt i < pf_rule_desc[j].prf_offset +
1454 1.1 yamt pf_rule_desc[j].prf_size) {
1455 1.1 yamt DEBUG("superblock break @ %d due to %s",
1456 1.1 yamt por->por_rule.nr,
1457 1.1 yamt pf_rule_desc[j].prf_name);
1458 1.1 yamt return (0);
1459 1.1 yamt }
1460 1.1 yamt if (i > pf_rule_desc[j].prf_offset) {
1461 1.1 yamt if (closest == -1 ||
1462 1.1 yamt i-pf_rule_desc[j].prf_offset <
1463 1.1 yamt i-pf_rule_desc[closest].prf_offset)
1464 1.1 yamt closest = j;
1465 1.1 yamt }
1466 1.1 yamt }
1467 1.1 yamt
1468 1.1 yamt if (closest >= 0)
1469 1.1 yamt DEBUG("superblock break @ %d on %s+%xh",
1470 1.1 yamt por->por_rule.nr,
1471 1.1 yamt pf_rule_desc[closest].prf_name,
1472 1.1 yamt i - pf_rule_desc[closest].prf_offset -
1473 1.1 yamt pf_rule_desc[closest].prf_size);
1474 1.1 yamt else
1475 1.1 yamt DEBUG("superblock break @ %d on field @ %d",
1476 1.1 yamt por->por_rule.nr, i);
1477 1.1 yamt return (0);
1478 1.1 yamt }
1479 1.1 yamt }
1480 1.1 yamt #endif /* OPT_DEBUG */
1481 1.1 yamt
1482 1.1 yamt return (0);
1483 1.1 yamt }
1484 1.1 yamt
1485 1.1 yamt
1486 1.1 yamt /*
1487 1.6 yamt * Figure out if an interface name is an actual interface or actually a
1488 1.6 yamt * group of interfaces.
1489 1.6 yamt */
1490 1.6 yamt int
1491 1.6 yamt interface_group(const char *ifname)
1492 1.6 yamt {
1493 1.6 yamt if (ifname == NULL || !ifname[0])
1494 1.6 yamt return (0);
1495 1.6 yamt
1496 1.6 yamt /* Real interfaces must end in a number, interface groups do not */
1497 1.6 yamt if (isdigit((unsigned char)ifname[strlen(ifname) - 1]))
1498 1.6 yamt return (0);
1499 1.6 yamt else
1500 1.6 yamt return (1);
1501 1.6 yamt }
1502 1.6 yamt
1503 1.6 yamt
1504 1.6 yamt /*
1505 1.1 yamt * Make a rule that can directly compared by memcmp()
1506 1.1 yamt */
1507 1.1 yamt void
1508 1.1 yamt comparable_rule(struct pf_rule *dst, const struct pf_rule *src, int type)
1509 1.1 yamt {
1510 1.1 yamt int i;
1511 1.1 yamt /*
1512 1.1 yamt * To simplify the comparison, we just zero out the fields that are
1513 1.1 yamt * allowed to be different and then do a simple memcmp()
1514 1.1 yamt */
1515 1.1 yamt memcpy(dst, src, sizeof(*dst));
1516 1.1 yamt for (i = 0; i < sizeof(pf_rule_desc)/sizeof(*pf_rule_desc); i++)
1517 1.1 yamt if (pf_rule_desc[i].prf_type >= type) {
1518 1.1 yamt #ifdef OPT_DEBUG
1519 1.1 yamt assert(pf_rule_desc[i].prf_type != NEVER ||
1520 1.1 yamt *(((char *)dst) + pf_rule_desc[i].prf_offset) == 0);
1521 1.1 yamt #endif /* OPT_DEBUG */
1522 1.1 yamt memset(((char *)dst) + pf_rule_desc[i].prf_offset, 0,
1523 1.1 yamt pf_rule_desc[i].prf_size);
1524 1.1 yamt }
1525 1.1 yamt }
1526 1.1 yamt
1527 1.1 yamt
1528 1.1 yamt /*
1529 1.1 yamt * Remove superset information from two rules so we can directly compare them
1530 1.1 yamt * with memcmp()
1531 1.1 yamt */
1532 1.1 yamt void
1533 1.1 yamt exclude_supersets(struct pf_rule *super, struct pf_rule *sub)
1534 1.1 yamt {
1535 1.1 yamt if (super->ifname[0] == '\0')
1536 1.1 yamt memset(sub->ifname, 0, sizeof(sub->ifname));
1537 1.1 yamt if (super->direction == PF_INOUT)
1538 1.1 yamt sub->direction = PF_INOUT;
1539 1.1 yamt if ((super->proto == 0 || super->proto == sub->proto) &&
1540 1.1 yamt super->flags == 0 && super->flagset == 0 && (sub->flags ||
1541 1.1 yamt sub->flagset)) {
1542 1.1 yamt sub->flags = super->flags;
1543 1.1 yamt sub->flagset = super->flagset;
1544 1.1 yamt }
1545 1.1 yamt if (super->proto == 0)
1546 1.1 yamt sub->proto = 0;
1547 1.1 yamt
1548 1.1 yamt if (super->src.port_op == 0) {
1549 1.1 yamt sub->src.port_op = 0;
1550 1.1 yamt sub->src.port[0] = 0;
1551 1.1 yamt sub->src.port[1] = 0;
1552 1.1 yamt }
1553 1.1 yamt if (super->dst.port_op == 0) {
1554 1.1 yamt sub->dst.port_op = 0;
1555 1.1 yamt sub->dst.port[0] = 0;
1556 1.1 yamt sub->dst.port[1] = 0;
1557 1.1 yamt }
1558 1.1 yamt
1559 1.1 yamt if (super->src.addr.type == PF_ADDR_ADDRMASK && !super->src.neg &&
1560 1.1 yamt !sub->src.neg && super->src.addr.v.a.mask.addr32[0] == 0 &&
1561 1.1 yamt super->src.addr.v.a.mask.addr32[1] == 0 &&
1562 1.1 yamt super->src.addr.v.a.mask.addr32[2] == 0 &&
1563 1.1 yamt super->src.addr.v.a.mask.addr32[3] == 0)
1564 1.1 yamt memset(&sub->src.addr, 0, sizeof(sub->src.addr));
1565 1.1 yamt else if (super->src.addr.type == PF_ADDR_ADDRMASK &&
1566 1.1 yamt sub->src.addr.type == PF_ADDR_ADDRMASK &&
1567 1.1 yamt super->src.neg == sub->src.neg &&
1568 1.1 yamt super->af == sub->af &&
1569 1.1 yamt unmask(&super->src.addr.v.a.mask, super->af) <
1570 1.1 yamt unmask(&sub->src.addr.v.a.mask, sub->af) &&
1571 1.1 yamt super->src.addr.v.a.addr.addr32[0] ==
1572 1.1 yamt (sub->src.addr.v.a.addr.addr32[0] &
1573 1.1 yamt super->src.addr.v.a.mask.addr32[0]) &&
1574 1.1 yamt super->src.addr.v.a.addr.addr32[1] ==
1575 1.1 yamt (sub->src.addr.v.a.addr.addr32[1] &
1576 1.1 yamt super->src.addr.v.a.mask.addr32[1]) &&
1577 1.1 yamt super->src.addr.v.a.addr.addr32[2] ==
1578 1.1 yamt (sub->src.addr.v.a.addr.addr32[2] &
1579 1.1 yamt super->src.addr.v.a.mask.addr32[2]) &&
1580 1.1 yamt super->src.addr.v.a.addr.addr32[3] ==
1581 1.1 yamt (sub->src.addr.v.a.addr.addr32[3] &
1582 1.1 yamt super->src.addr.v.a.mask.addr32[3])) {
1583 1.1 yamt /* sub->src.addr is a subset of super->src.addr/mask */
1584 1.1 yamt memcpy(&sub->src.addr, &super->src.addr, sizeof(sub->src.addr));
1585 1.1 yamt }
1586 1.1 yamt
1587 1.1 yamt if (super->dst.addr.type == PF_ADDR_ADDRMASK && !super->dst.neg &&
1588 1.1 yamt !sub->dst.neg && super->dst.addr.v.a.mask.addr32[0] == 0 &&
1589 1.1 yamt super->dst.addr.v.a.mask.addr32[1] == 0 &&
1590 1.1 yamt super->dst.addr.v.a.mask.addr32[2] == 0 &&
1591 1.1 yamt super->dst.addr.v.a.mask.addr32[3] == 0)
1592 1.1 yamt memset(&sub->dst.addr, 0, sizeof(sub->dst.addr));
1593 1.1 yamt else if (super->dst.addr.type == PF_ADDR_ADDRMASK &&
1594 1.1 yamt sub->dst.addr.type == PF_ADDR_ADDRMASK &&
1595 1.1 yamt super->dst.neg == sub->dst.neg &&
1596 1.1 yamt super->af == sub->af &&
1597 1.1 yamt unmask(&super->dst.addr.v.a.mask, super->af) <
1598 1.1 yamt unmask(&sub->dst.addr.v.a.mask, sub->af) &&
1599 1.1 yamt super->dst.addr.v.a.addr.addr32[0] ==
1600 1.1 yamt (sub->dst.addr.v.a.addr.addr32[0] &
1601 1.1 yamt super->dst.addr.v.a.mask.addr32[0]) &&
1602 1.1 yamt super->dst.addr.v.a.addr.addr32[1] ==
1603 1.1 yamt (sub->dst.addr.v.a.addr.addr32[1] &
1604 1.1 yamt super->dst.addr.v.a.mask.addr32[1]) &&
1605 1.1 yamt super->dst.addr.v.a.addr.addr32[2] ==
1606 1.1 yamt (sub->dst.addr.v.a.addr.addr32[2] &
1607 1.1 yamt super->dst.addr.v.a.mask.addr32[2]) &&
1608 1.1 yamt super->dst.addr.v.a.addr.addr32[3] ==
1609 1.1 yamt (sub->dst.addr.v.a.addr.addr32[3] &
1610 1.1 yamt super->dst.addr.v.a.mask.addr32[3])) {
1611 1.1 yamt /* sub->dst.addr is a subset of super->dst.addr/mask */
1612 1.1 yamt memcpy(&sub->dst.addr, &super->dst.addr, sizeof(sub->dst.addr));
1613 1.1 yamt }
1614 1.1 yamt
1615 1.1 yamt if (super->af == 0)
1616 1.1 yamt sub->af = 0;
1617 1.1 yamt }
1618 1.1 yamt
1619 1.1 yamt
1620 1.1 yamt void
1621 1.1 yamt superblock_free(struct pfctl *pf, struct superblock *block)
1622 1.1 yamt {
1623 1.1 yamt struct pf_opt_rule *por;
1624 1.1 yamt while ((por = TAILQ_FIRST(&block->sb_rules))) {
1625 1.1 yamt TAILQ_REMOVE(&block->sb_rules, por, por_entry);
1626 1.1 yamt if (por->por_src_tbl) {
1627 1.1 yamt if (por->por_src_tbl->pt_buf) {
1628 1.1 yamt pfr_buf_clear(por->por_src_tbl->pt_buf);
1629 1.1 yamt free(por->por_src_tbl->pt_buf);
1630 1.1 yamt }
1631 1.1 yamt free(por->por_src_tbl);
1632 1.1 yamt }
1633 1.1 yamt if (por->por_dst_tbl) {
1634 1.1 yamt if (por->por_dst_tbl->pt_buf) {
1635 1.1 yamt pfr_buf_clear(por->por_dst_tbl->pt_buf);
1636 1.1 yamt free(por->por_dst_tbl->pt_buf);
1637 1.1 yamt }
1638 1.1 yamt free(por->por_dst_tbl);
1639 1.1 yamt }
1640 1.1 yamt free(por);
1641 1.1 yamt }
1642 1.1 yamt if (block->sb_profiled_block)
1643 1.1 yamt superblock_free(pf, block->sb_profiled_block);
1644 1.1 yamt free(block);
1645 1.1 yamt }
1646 1.1 yamt
1647