1 /*
2 * iterator/iter_utils.c - iterative resolver module utility functions.
3 *
4 * Copyright (c) 2007, NLnet Labs. All rights reserved.
5 *
6 * This software is open source.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 *
12 * Redistributions of source code must retain the above copyright notice,
13 * this list of conditions and the following disclaimer.
14 *
15 * Redistributions in binary form must reproduce the above copyright notice,
16 * this list of conditions and the following disclaimer in the documentation
17 * and/or other materials provided with the distribution.
18 *
19 * Neither the name of the NLNET LABS nor the names of its contributors may
20 * be used to endorse or promote products derived from this software without
21 * specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
24 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
25 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
26 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
27 * HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
28 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
29 * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
30 * PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
31 * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
32 * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
33 * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
34 */
35
36 /**
37 * \file
38 *
39 * This file contains functions to assist the iterator module.
40 * Configuration options. Forward zones.
41 */
42 #include "config.h"
43 #include "iterator/iter_utils.h"
44 #include "iterator/iterator.h"
45 #include "iterator/iter_hints.h"
46 #include "iterator/iter_fwd.h"
47 #include "iterator/iter_donotq.h"
48 #include "iterator/iter_delegpt.h"
49 #include "iterator/iter_priv.h"
50 #include "services/cache/infra.h"
51 #include "services/cache/dns.h"
52 #include "services/cache/rrset.h"
53 #include "services/outside_network.h"
54 #include "util/net_help.h"
55 #include "util/module.h"
56 #include "util/log.h"
57 #include "util/config_file.h"
58 #include "util/regional.h"
59 #include "util/data/msgparse.h"
60 #include "util/data/dname.h"
61 #include "util/random.h"
62 #include "util/fptr_wlist.h"
63 #include "validator/val_anchor.h"
64 #include "validator/val_kcache.h"
65 #include "validator/val_kentry.h"
66 #include "validator/val_utils.h"
67 #include "validator/val_sigcrypt.h"
68 #include "sldns/sbuffer.h"
69 #include "sldns/str2wire.h"
70
71 /** time when nameserver glue is said to be 'recent' */
72 #define SUSPICION_RECENT_EXPIRY 86400
73
74 /** if NAT64 is enabled and no NAT64 prefix is configured, first fall back to
75 * DNS64 prefix. If that is not configured, fall back to this default value.
76 */
77 static const char DEFAULT_NAT64_PREFIX[] = "64:ff9b::/96";
78
79 /** fillup fetch policy array */
80 static int
fetch_fill(int * target_fetch_policy,int max_dependency_depth,const char * str)81 fetch_fill(int* target_fetch_policy, int max_dependency_depth, const char* str)
82 {
83 char* s = (char*)str, *e;
84 int i;
85 for(i=0; i<max_dependency_depth+1; i++) {
86 target_fetch_policy[i] = strtol(s, &e, 10);
87 if(s == e) {
88 log_err("cannot parse fetch policy number %s", s);
89 return 0;
90 }
91 s = e;
92 }
93 return 1;
94 }
95
96 /** Read config string that represents the target fetch policy */
97 int
read_fetch_policy(int ** target_fetch_policy,int * max_dependency_depth,const char * str)98 read_fetch_policy(int** target_fetch_policy, int* max_dependency_depth,
99 const char* str)
100 {
101 int count = cfg_count_numbers(str);
102 if(count < 1) {
103 log_err("Cannot parse target fetch policy: \"%s\"", str);
104 return 0;
105 }
106 *max_dependency_depth = count - 1;
107 *target_fetch_policy = (int*)calloc(
108 (size_t)(*max_dependency_depth)+1, sizeof(int));
109 if(!*target_fetch_policy) {
110 log_err("alloc fetch policy: out of memory");
111 return 0;
112 }
113 if(!fetch_fill(*target_fetch_policy, *max_dependency_depth, str))
114 return 0;
115 return 1;
116 }
117
118 struct rbtree_type*
caps_white_create(void)119 caps_white_create(void)
120 {
121 struct rbtree_type* caps_white = rbtree_create(name_tree_compare);
122 if(!caps_white)
123 log_err("out of memory");
124 return caps_white;
125 }
126
127 /** delete caps_whitelist element */
128 static void
caps_free(struct rbnode_type * n,void * ATTR_UNUSED (d))129 caps_free(struct rbnode_type* n, void* ATTR_UNUSED(d))
130 {
131 if(n) {
132 free(((struct name_tree_node*)n)->name);
133 free(n);
134 }
135 }
136
137 void
caps_white_delete(struct rbtree_type * caps_white)138 caps_white_delete(struct rbtree_type* caps_white)
139 {
140 if(!caps_white)
141 return;
142 traverse_postorder(caps_white, caps_free, NULL);
143 free(caps_white);
144 }
145
146 int
caps_white_apply_cfg(rbtree_type * ntree,struct config_file * cfg)147 caps_white_apply_cfg(rbtree_type* ntree, struct config_file* cfg)
148 {
149 struct config_strlist* p;
150 for(p=cfg->caps_whitelist; p; p=p->next) {
151 struct name_tree_node* n;
152 size_t len;
153 uint8_t* nm = sldns_str2wire_dname(p->str, &len);
154 if(!nm) {
155 log_err("could not parse %s", p->str);
156 return 0;
157 }
158 n = (struct name_tree_node*)calloc(1, sizeof(*n));
159 if(!n) {
160 log_err("out of memory");
161 free(nm);
162 return 0;
163 }
164 n->node.key = n;
165 n->name = nm;
166 n->len = len;
167 n->labs = dname_count_labels(nm);
168 n->dclass = LDNS_RR_CLASS_IN;
169 if(!name_tree_insert(ntree, n, nm, len, n->labs, n->dclass)) {
170 /* duplicate element ignored, idempotent */
171 free(n->name);
172 free(n);
173 }
174 }
175 name_tree_init_parents(ntree);
176 return 1;
177 }
178
179 int
nat64_apply_cfg(struct iter_nat64 * nat64,struct config_file * cfg)180 nat64_apply_cfg(struct iter_nat64* nat64, struct config_file* cfg)
181 {
182 const char *nat64_prefix;
183
184 nat64_prefix = cfg->nat64_prefix;
185 if(!nat64_prefix)
186 nat64_prefix = cfg->dns64_prefix;
187 if(!nat64_prefix)
188 nat64_prefix = DEFAULT_NAT64_PREFIX;
189 if(!netblockstrtoaddr(nat64_prefix, 0, &nat64->nat64_prefix_addr,
190 &nat64->nat64_prefix_addrlen, &nat64->nat64_prefix_net)) {
191 log_err("cannot parse nat64-prefix netblock: %s", nat64_prefix);
192 return 0;
193 }
194 if(!addr_is_ip6(&nat64->nat64_prefix_addr,
195 nat64->nat64_prefix_addrlen)) {
196 log_err("nat64-prefix is not IPv6: %s", cfg->nat64_prefix);
197 return 0;
198 }
199 if(!prefixnet_is_nat64(nat64->nat64_prefix_net)) {
200 log_err("nat64-prefix length it not 32, 40, 48, 56, 64 or 96: %s",
201 nat64_prefix);
202 return 0;
203 }
204 nat64->use_nat64 = cfg->do_nat64;
205 return 1;
206 }
207
208 int
iter_apply_cfg(struct iter_env * iter_env,struct config_file * cfg)209 iter_apply_cfg(struct iter_env* iter_env, struct config_file* cfg)
210 {
211 int i;
212 /* target fetch policy */
213 if(!read_fetch_policy(&iter_env->target_fetch_policy,
214 &iter_env->max_dependency_depth, cfg->target_fetch_policy))
215 return 0;
216 for(i=0; i<iter_env->max_dependency_depth+1; i++)
217 verbose(VERB_QUERY, "target fetch policy for level %d is %d",
218 i, iter_env->target_fetch_policy[i]);
219
220 if(!iter_env->donotq)
221 iter_env->donotq = donotq_create();
222 if(!iter_env->donotq || !donotq_apply_cfg(iter_env->donotq, cfg)) {
223 log_err("Could not set donotqueryaddresses");
224 return 0;
225 }
226 if(!iter_env->priv)
227 iter_env->priv = priv_create();
228 if(!iter_env->priv || !priv_apply_cfg(iter_env->priv, cfg)) {
229 log_err("Could not set private addresses");
230 return 0;
231 }
232 if(cfg->caps_whitelist) {
233 if(!iter_env->caps_white)
234 iter_env->caps_white = caps_white_create();
235 if(!iter_env->caps_white || !caps_white_apply_cfg(
236 iter_env->caps_white, cfg)) {
237 log_err("Could not set capsforid whitelist");
238 return 0;
239 }
240
241 }
242
243 if(!nat64_apply_cfg(&iter_env->nat64, cfg)) {
244 log_err("Could not setup nat64");
245 return 0;
246 }
247
248 iter_env->supports_ipv6 = cfg->do_ip6;
249 iter_env->supports_ipv4 = cfg->do_ip4;
250 iter_env->outbound_msg_retry = cfg->outbound_msg_retry;
251 iter_env->max_sent_count = cfg->max_sent_count;
252 iter_env->max_query_restarts = cfg->max_query_restarts;
253 return 1;
254 }
255
256 /** filter out unsuitable targets
257 * @param iter_env: iterator environment with ipv6-support flag.
258 * @param env: module environment with infra cache.
259 * @param name: zone name
260 * @param namelen: length of name
261 * @param qtype: query type (host order).
262 * @param now: current time
263 * @param a: address in delegation point we are examining.
264 * @return an integer that signals the target suitability.
265 * as follows:
266 * -1: The address should be omitted from the list.
267 * Because:
268 * o The address is bogus (DNSSEC validation failure).
269 * o Listed as donotquery
270 * o is ipv6 but no ipv6 support (in operating system).
271 * o is ipv4 but no ipv4 support (in operating system).
272 * o is lame
273 * Otherwise, an rtt in milliseconds.
274 * 0 .. USEFUL_SERVER_TOP_TIMEOUT-1
275 * The roundtrip time timeout estimate. less than 2 minutes.
276 * Note that util/rtt.c has a MIN_TIMEOUT of 50 msec, thus
277 * values 0 .. 49 are not used, unless that is changed.
278 * USEFUL_SERVER_TOP_TIMEOUT
279 * This value exactly is given for unresponsive blacklisted.
280 * USEFUL_SERVER_TOP_TIMEOUT+1
281 * For non-blacklisted servers: huge timeout, but has traffic.
282 * USEFUL_SERVER_TOP_TIMEOUT*1 ..
283 * parent-side lame servers get this penalty. A dispreferential
284 * server. (lame in delegpt).
285 * USEFUL_SERVER_TOP_TIMEOUT*2 ..
286 * dnsseclame servers get penalty
287 * USEFUL_SERVER_TOP_TIMEOUT*3 ..
288 * recursion lame servers get penalty
289 * UNKNOWN_SERVER_NICENESS
290 * If no information is known about the server, this is
291 * returned. 376 msec or so.
292 * +BLACKLIST_PENALTY (of USEFUL_TOP_TIMEOUT*4) for dnssec failed IPs.
293 *
294 * When a final value is chosen that is dnsseclame ; dnsseclameness checking
295 * is turned off (so we do not discard the reply).
296 * When a final value is chosen that is recursionlame; RD bit is set on query.
297 * Because of the numbers this means recursionlame also have dnssec lameness
298 * checking turned off.
299 */
300 static int
iter_filter_unsuitable(struct iter_env * iter_env,struct module_env * env,uint8_t * name,size_t namelen,uint16_t qtype,time_t now,struct delegpt_addr * a)301 iter_filter_unsuitable(struct iter_env* iter_env, struct module_env* env,
302 uint8_t* name, size_t namelen, uint16_t qtype, time_t now,
303 struct delegpt_addr* a)
304 {
305 int rtt, lame, reclame, dnsseclame;
306 if(a->bogus)
307 return -1; /* address of server is bogus */
308 if(donotq_lookup(iter_env->donotq, &a->addr, a->addrlen)) {
309 log_addr(VERB_ALGO, "skip addr on the donotquery list",
310 &a->addr, a->addrlen);
311 return -1; /* server is on the donotquery list */
312 }
313 if(!iter_env->supports_ipv6 && addr_is_ip6(&a->addr, a->addrlen)) {
314 return -1; /* there is no ip6 available */
315 }
316 if(!iter_env->supports_ipv4 && !iter_env->nat64.use_nat64 &&
317 !addr_is_ip6(&a->addr, a->addrlen)) {
318 return -1; /* there is no ip4 available */
319 }
320 /* check lameness - need zone , class info */
321 if(infra_get_lame_rtt(env->infra_cache, &a->addr, a->addrlen,
322 name, namelen, qtype, &lame, &dnsseclame, &reclame,
323 &rtt, now)) {
324 log_addr(VERB_ALGO, "servselect", &a->addr, a->addrlen);
325 verbose(VERB_ALGO, " rtt=%d%s%s%s%s%s", rtt,
326 lame?" LAME":"",
327 dnsseclame?" DNSSEC_LAME":"",
328 a->dnsseclame?" ADDR_DNSSEC_LAME":"",
329 reclame?" REC_LAME":"",
330 a->lame?" ADDR_LAME":"");
331 if(lame)
332 return -1; /* server is lame */
333 else if(rtt >= USEFUL_SERVER_TOP_TIMEOUT)
334 /* server is unresponsive,
335 * we used to return TOP_TIMEOUT, but fairly useless,
336 * because if == TOP_TIMEOUT is dropped because
337 * blacklisted later, instead, remove it here, so
338 * other choices (that are not blacklisted) can be
339 * tried */
340 return -1;
341 /* select remainder from worst to best */
342 else if(reclame)
343 return rtt+USEFUL_SERVER_TOP_TIMEOUT*3; /* nonpref */
344 else if(dnsseclame || a->dnsseclame)
345 return rtt+USEFUL_SERVER_TOP_TIMEOUT*2; /* nonpref */
346 else if(a->lame)
347 return rtt+USEFUL_SERVER_TOP_TIMEOUT+1; /* nonpref */
348 else return rtt;
349 }
350 /* no server information present */
351 if(a->dnsseclame)
352 return UNKNOWN_SERVER_NICENESS+USEFUL_SERVER_TOP_TIMEOUT*2; /* nonpref */
353 else if(a->lame)
354 return USEFUL_SERVER_TOP_TIMEOUT+1+UNKNOWN_SERVER_NICENESS; /* nonpref */
355 return UNKNOWN_SERVER_NICENESS;
356 }
357
358 /** lookup RTT information, and also store fastest rtt (if any) */
359 static int
iter_fill_rtt(struct iter_env * iter_env,struct module_env * env,uint8_t * name,size_t namelen,uint16_t qtype,time_t now,struct delegpt * dp,int * best_rtt,struct sock_list * blacklist,size_t * num_suitable_results)360 iter_fill_rtt(struct iter_env* iter_env, struct module_env* env,
361 uint8_t* name, size_t namelen, uint16_t qtype, time_t now,
362 struct delegpt* dp, int* best_rtt, struct sock_list* blacklist,
363 size_t* num_suitable_results)
364 {
365 int got_it = 0;
366 struct delegpt_addr* a;
367 *num_suitable_results = 0;
368
369 if(dp->bogus)
370 return 0; /* NS bogus, all bogus, nothing found */
371 for(a=dp->result_list; a; a = a->next_result) {
372 a->sel_rtt = iter_filter_unsuitable(iter_env, env,
373 name, namelen, qtype, now, a);
374 if(a->sel_rtt != -1) {
375 if(sock_list_find(blacklist, &a->addr, a->addrlen))
376 a->sel_rtt += BLACKLIST_PENALTY;
377
378 if(!got_it) {
379 *best_rtt = a->sel_rtt;
380 got_it = 1;
381 } else if(a->sel_rtt < *best_rtt) {
382 *best_rtt = a->sel_rtt;
383 }
384 (*num_suitable_results)++;
385 }
386 }
387 return got_it;
388 }
389
390 /** compare two rtts, return -1, 0 or 1 */
391 static int
rtt_compare(const void * x,const void * y)392 rtt_compare(const void* x, const void* y)
393 {
394 if(*(int*)x == *(int*)y)
395 return 0;
396 if(*(int*)x > *(int*)y)
397 return 1;
398 return -1;
399 }
400
401 /** get RTT for the Nth fastest server */
402 static int
nth_rtt(struct delegpt_addr * result_list,size_t num_results,size_t n)403 nth_rtt(struct delegpt_addr* result_list, size_t num_results, size_t n)
404 {
405 int rtt_band;
406 size_t i;
407 int* rtt_list, *rtt_index;
408
409 if(num_results < 1 || n >= num_results) {
410 return -1;
411 }
412
413 rtt_list = calloc(num_results, sizeof(int));
414 if(!rtt_list) {
415 log_err("malloc failure: allocating rtt_list");
416 return -1;
417 }
418 rtt_index = rtt_list;
419
420 for(i=0; i<num_results && result_list; i++) {
421 if(result_list->sel_rtt != -1) {
422 *rtt_index = result_list->sel_rtt;
423 rtt_index++;
424 }
425 result_list=result_list->next_result;
426 }
427 qsort(rtt_list, num_results, sizeof(*rtt_list), rtt_compare);
428
429 log_assert(n > 0);
430 rtt_band = rtt_list[n-1];
431 free(rtt_list);
432
433 return rtt_band;
434 }
435
436 /** filter the address list, putting best targets at front,
437 * returns number of best targets (or 0, no suitable targets) */
438 static int
iter_filter_order(struct iter_env * iter_env,struct module_env * env,uint8_t * name,size_t namelen,uint16_t qtype,time_t now,struct delegpt * dp,int * selected_rtt,int open_target,struct sock_list * blacklist,time_t prefetch)439 iter_filter_order(struct iter_env* iter_env, struct module_env* env,
440 uint8_t* name, size_t namelen, uint16_t qtype, time_t now,
441 struct delegpt* dp, int* selected_rtt, int open_target,
442 struct sock_list* blacklist, time_t prefetch)
443 {
444 int got_num = 0, low_rtt = 0, swap_to_front, rtt_band = RTT_BAND, nth;
445 int alllame = 0;
446 size_t num_results;
447 struct delegpt_addr* a, *n, *prev=NULL;
448
449 /* fillup sel_rtt and find best rtt in the bunch */
450 got_num = iter_fill_rtt(iter_env, env, name, namelen, qtype, now, dp,
451 &low_rtt, blacklist, &num_results);
452 if(got_num == 0)
453 return 0;
454 if(low_rtt >= USEFUL_SERVER_TOP_TIMEOUT &&
455 /* If all missing (or not fully resolved) targets are lame,
456 * then use the remaining lame address. */
457 ((delegpt_count_missing_targets(dp, &alllame) > 0 && !alllame) ||
458 open_target > 0)) {
459 verbose(VERB_ALGO, "Bad choices, trying to get more choice");
460 return 0; /* we want more choice. The best choice is a bad one.
461 return 0 to force the caller to fetch more */
462 }
463
464 if(env->cfg->fast_server_permil != 0 && prefetch == 0 &&
465 num_results > env->cfg->fast_server_num &&
466 ub_random_max(env->rnd, 1000) < env->cfg->fast_server_permil) {
467 /* the query is not prefetch, but for a downstream client,
468 * there are more servers available then the fastest N we want
469 * to choose from. Limit our choice to the fastest servers. */
470 nth = nth_rtt(dp->result_list, num_results,
471 env->cfg->fast_server_num);
472 if(nth > 0) {
473 rtt_band = nth - low_rtt;
474 if(rtt_band > RTT_BAND)
475 rtt_band = RTT_BAND;
476 }
477 }
478
479 got_num = 0;
480 a = dp->result_list;
481 while(a) {
482 /* skip unsuitable targets */
483 if(a->sel_rtt == -1) {
484 prev = a;
485 a = a->next_result;
486 continue;
487 }
488 /* classify the server address and determine what to do */
489 swap_to_front = 0;
490 if(a->sel_rtt >= low_rtt && a->sel_rtt - low_rtt <= rtt_band) {
491 got_num++;
492 swap_to_front = 1;
493 } else if(a->sel_rtt<low_rtt && low_rtt-a->sel_rtt<=rtt_band) {
494 got_num++;
495 swap_to_front = 1;
496 }
497 /* swap to front if necessary, or move to next result */
498 if(swap_to_front && prev) {
499 n = a->next_result;
500 prev->next_result = n;
501 a->next_result = dp->result_list;
502 dp->result_list = a;
503 a = n;
504 } else {
505 prev = a;
506 a = a->next_result;
507 }
508 }
509 *selected_rtt = low_rtt;
510
511 if (env->cfg->prefer_ip6) {
512 int got_num6 = 0;
513 int low_rtt6 = 0;
514 int i;
515 int attempt = -1; /* filter to make sure addresses have
516 less attempts on them than the first, to force round
517 robin when all the IPv6 addresses fail */
518 int num4ok = 0; /* number ip4 at low attempt count */
519 int num4_lowrtt = 0;
520 prev = NULL;
521 a = dp->result_list;
522 for(i = 0; i < got_num; i++) {
523 if(!a) break; /* robustness */
524 swap_to_front = 0;
525 if(a->addr.ss_family != AF_INET6 && attempt == -1) {
526 /* if we only have ip4 at low attempt count,
527 * then ip6 is failing, and we need to
528 * select one of the remaining IPv4 addrs */
529 attempt = a->attempts;
530 num4ok++;
531 num4_lowrtt = a->sel_rtt;
532 } else if(a->addr.ss_family != AF_INET6 && attempt == a->attempts) {
533 num4ok++;
534 if(num4_lowrtt == 0 || a->sel_rtt < num4_lowrtt) {
535 num4_lowrtt = a->sel_rtt;
536 }
537 }
538 if(a->addr.ss_family == AF_INET6) {
539 if(attempt == -1) {
540 attempt = a->attempts;
541 } else if(a->attempts > attempt) {
542 break;
543 }
544 got_num6++;
545 swap_to_front = 1;
546 if(low_rtt6 == 0 || a->sel_rtt < low_rtt6) {
547 low_rtt6 = a->sel_rtt;
548 }
549 }
550 /* swap to front if IPv6, or move to next result */
551 if(swap_to_front && prev) {
552 n = a->next_result;
553 prev->next_result = n;
554 a->next_result = dp->result_list;
555 dp->result_list = a;
556 a = n;
557 } else {
558 prev = a;
559 a = a->next_result;
560 }
561 }
562 if(got_num6 > 0) {
563 got_num = got_num6;
564 *selected_rtt = low_rtt6;
565 } else if(num4ok > 0) {
566 got_num = num4ok;
567 *selected_rtt = num4_lowrtt;
568 }
569 } else if (env->cfg->prefer_ip4) {
570 int got_num4 = 0;
571 int low_rtt4 = 0;
572 int i;
573 int attempt = -1; /* filter to make sure addresses have
574 less attempts on them than the first, to force round
575 robin when all the IPv4 addresses fail */
576 int num6ok = 0; /* number ip6 at low attempt count */
577 int num6_lowrtt = 0;
578 prev = NULL;
579 a = dp->result_list;
580 for(i = 0; i < got_num; i++) {
581 if(!a) break; /* robustness */
582 swap_to_front = 0;
583 if(a->addr.ss_family != AF_INET && attempt == -1) {
584 /* if we only have ip6 at low attempt count,
585 * then ip4 is failing, and we need to
586 * select one of the remaining IPv6 addrs */
587 attempt = a->attempts;
588 num6ok++;
589 num6_lowrtt = a->sel_rtt;
590 } else if(a->addr.ss_family != AF_INET && attempt == a->attempts) {
591 num6ok++;
592 if(num6_lowrtt == 0 || a->sel_rtt < num6_lowrtt) {
593 num6_lowrtt = a->sel_rtt;
594 }
595 }
596 if(a->addr.ss_family == AF_INET) {
597 if(attempt == -1) {
598 attempt = a->attempts;
599 } else if(a->attempts > attempt) {
600 break;
601 }
602 got_num4++;
603 swap_to_front = 1;
604 if(low_rtt4 == 0 || a->sel_rtt < low_rtt4) {
605 low_rtt4 = a->sel_rtt;
606 }
607 }
608 /* swap to front if IPv4, or move to next result */
609 if(swap_to_front && prev) {
610 n = a->next_result;
611 prev->next_result = n;
612 a->next_result = dp->result_list;
613 dp->result_list = a;
614 a = n;
615 } else {
616 prev = a;
617 a = a->next_result;
618 }
619 }
620 if(got_num4 > 0) {
621 got_num = got_num4;
622 *selected_rtt = low_rtt4;
623 } else if(num6ok > 0) {
624 got_num = num6ok;
625 *selected_rtt = num6_lowrtt;
626 }
627 }
628 return got_num;
629 }
630
631 struct delegpt_addr*
iter_server_selection(struct iter_env * iter_env,struct module_env * env,struct delegpt * dp,uint8_t * name,size_t namelen,uint16_t qtype,int * dnssec_lame,int * chase_to_rd,int open_target,struct sock_list * blacklist,time_t prefetch)632 iter_server_selection(struct iter_env* iter_env,
633 struct module_env* env, struct delegpt* dp,
634 uint8_t* name, size_t namelen, uint16_t qtype, int* dnssec_lame,
635 int* chase_to_rd, int open_target, struct sock_list* blacklist,
636 time_t prefetch)
637 {
638 int sel;
639 int selrtt;
640 struct delegpt_addr* a, *prev;
641 int num = iter_filter_order(iter_env, env, name, namelen, qtype,
642 *env->now, dp, &selrtt, open_target, blacklist, prefetch);
643
644 if(num == 0)
645 return NULL;
646 verbose(VERB_ALGO, "selrtt %d", selrtt);
647 if(selrtt > BLACKLIST_PENALTY) {
648 if(selrtt-BLACKLIST_PENALTY > USEFUL_SERVER_TOP_TIMEOUT*3) {
649 verbose(VERB_ALGO, "chase to "
650 "blacklisted recursion lame server");
651 *chase_to_rd = 1;
652 }
653 if(selrtt-BLACKLIST_PENALTY > USEFUL_SERVER_TOP_TIMEOUT*2) {
654 verbose(VERB_ALGO, "chase to "
655 "blacklisted dnssec lame server");
656 *dnssec_lame = 1;
657 }
658 } else {
659 if(selrtt > USEFUL_SERVER_TOP_TIMEOUT*3) {
660 verbose(VERB_ALGO, "chase to recursion lame server");
661 *chase_to_rd = 1;
662 }
663 if(selrtt > USEFUL_SERVER_TOP_TIMEOUT*2) {
664 verbose(VERB_ALGO, "chase to dnssec lame server");
665 *dnssec_lame = 1;
666 }
667 if(selrtt == USEFUL_SERVER_TOP_TIMEOUT) {
668 verbose(VERB_ALGO, "chase to blacklisted lame server");
669 return NULL;
670 }
671 }
672
673 if(num == 1) {
674 a = dp->result_list;
675 if(++a->attempts < iter_env->outbound_msg_retry)
676 return a;
677 dp->result_list = a->next_result;
678 return a;
679 }
680
681 /* randomly select a target from the list */
682 log_assert(num > 1);
683 /* grab secure random number, to pick unexpected server.
684 * also we need it to be threadsafe. */
685 sel = ub_random_max(env->rnd, num);
686 a = dp->result_list;
687 prev = NULL;
688 while(sel > 0 && a) {
689 prev = a;
690 a = a->next_result;
691 sel--;
692 }
693 if(!a) /* robustness */
694 return NULL;
695 if(++a->attempts < iter_env->outbound_msg_retry)
696 return a;
697 /* remove it from the delegation point result list */
698 if(prev)
699 prev->next_result = a->next_result;
700 else dp->result_list = a->next_result;
701 return a;
702 }
703
704 struct dns_msg*
dns_alloc_msg(sldns_buffer * pkt,struct msg_parse * msg,struct regional * region)705 dns_alloc_msg(sldns_buffer* pkt, struct msg_parse* msg,
706 struct regional* region)
707 {
708 struct dns_msg* m = (struct dns_msg*)regional_alloc(region,
709 sizeof(struct dns_msg));
710 if(!m)
711 return NULL;
712 memset(m, 0, sizeof(*m));
713 if(!parse_create_msg(pkt, msg, NULL, &m->qinfo, &m->rep, region)) {
714 log_err("malloc failure: allocating incoming dns_msg");
715 return NULL;
716 }
717 return m;
718 }
719
720 struct dns_msg*
dns_copy_msg(struct dns_msg * from,struct regional * region)721 dns_copy_msg(struct dns_msg* from, struct regional* region)
722 {
723 struct dns_msg* m = (struct dns_msg*)regional_alloc(region,
724 sizeof(struct dns_msg));
725 if(!m)
726 return NULL;
727 m->qinfo = from->qinfo;
728 if(!(m->qinfo.qname = regional_alloc_init(region, from->qinfo.qname,
729 from->qinfo.qname_len)))
730 return NULL;
731 if(!(m->rep = reply_info_copy(from->rep, NULL, region)))
732 return NULL;
733 return m;
734 }
735
736 void
iter_dns_store(struct module_env * env,struct query_info * msgqinf,struct reply_info * msgrep,int is_referral,time_t leeway,int pside,struct regional * region,uint16_t flags,time_t qstarttime,int is_valrec)737 iter_dns_store(struct module_env* env, struct query_info* msgqinf,
738 struct reply_info* msgrep, int is_referral, time_t leeway, int pside,
739 struct regional* region, uint16_t flags, time_t qstarttime,
740 int is_valrec)
741 {
742 if(!dns_cache_store(env, msgqinf, msgrep, is_referral, leeway,
743 pside, region, flags, qstarttime, is_valrec))
744 log_err("out of memory: cannot store data in cache");
745 }
746
747 int
iter_ns_probability(struct ub_randstate * rnd,int n,int m)748 iter_ns_probability(struct ub_randstate* rnd, int n, int m)
749 {
750 int sel;
751 if(n == m) /* 100% chance */
752 return 1;
753 /* we do not need secure random numbers here, but
754 * we do need it to be threadsafe, so we use this */
755 sel = ub_random_max(rnd, m);
756 return (sel < n);
757 }
758
759 /** detect dependency cycle for query and target */
760 static int
causes_cycle(struct module_qstate * qstate,uint8_t * name,size_t namelen,uint16_t t,uint16_t c)761 causes_cycle(struct module_qstate* qstate, uint8_t* name, size_t namelen,
762 uint16_t t, uint16_t c)
763 {
764 struct query_info qinf;
765 qinf.qname = name;
766 qinf.qname_len = namelen;
767 qinf.qtype = t;
768 qinf.qclass = c;
769 qinf.local_alias = NULL;
770 fptr_ok(fptr_whitelist_modenv_detect_cycle(
771 qstate->env->detect_cycle));
772 return (*qstate->env->detect_cycle)(qstate, &qinf,
773 (uint16_t)(BIT_RD|BIT_CD), qstate->is_priming,
774 qstate->is_valrec);
775 }
776
777 void
iter_mark_cycle_targets(struct module_qstate * qstate,struct delegpt * dp)778 iter_mark_cycle_targets(struct module_qstate* qstate, struct delegpt* dp)
779 {
780 struct delegpt_ns* ns;
781 for(ns = dp->nslist; ns; ns = ns->next) {
782 if(ns->resolved)
783 continue;
784 /* see if this ns as target causes dependency cycle */
785 if(causes_cycle(qstate, ns->name, ns->namelen,
786 LDNS_RR_TYPE_AAAA, qstate->qinfo.qclass) ||
787 causes_cycle(qstate, ns->name, ns->namelen,
788 LDNS_RR_TYPE_A, qstate->qinfo.qclass)) {
789 log_nametypeclass(VERB_QUERY, "skipping target due "
790 "to dependency cycle (harden-glue: no may "
791 "fix some of the cycles)",
792 ns->name, LDNS_RR_TYPE_A,
793 qstate->qinfo.qclass);
794 ns->resolved = 1;
795 }
796 }
797 }
798
799 void
iter_mark_pside_cycle_targets(struct module_qstate * qstate,struct delegpt * dp)800 iter_mark_pside_cycle_targets(struct module_qstate* qstate, struct delegpt* dp)
801 {
802 struct delegpt_ns* ns;
803 for(ns = dp->nslist; ns; ns = ns->next) {
804 if(ns->done_pside4 && ns->done_pside6)
805 continue;
806 /* see if this ns as target causes dependency cycle */
807 if(causes_cycle(qstate, ns->name, ns->namelen,
808 LDNS_RR_TYPE_A, qstate->qinfo.qclass)) {
809 log_nametypeclass(VERB_QUERY, "skipping target due "
810 "to dependency cycle", ns->name,
811 LDNS_RR_TYPE_A, qstate->qinfo.qclass);
812 ns->done_pside4 = 1;
813 }
814 if(causes_cycle(qstate, ns->name, ns->namelen,
815 LDNS_RR_TYPE_AAAA, qstate->qinfo.qclass)) {
816 log_nametypeclass(VERB_QUERY, "skipping target due "
817 "to dependency cycle", ns->name,
818 LDNS_RR_TYPE_AAAA, qstate->qinfo.qclass);
819 ns->done_pside6 = 1;
820 }
821 }
822 }
823
824 int
iter_dp_is_useless(struct query_info * qinfo,uint16_t qflags,struct delegpt * dp,int supports_ipv4,int supports_ipv6,int use_nat64)825 iter_dp_is_useless(struct query_info* qinfo, uint16_t qflags,
826 struct delegpt* dp, int supports_ipv4, int supports_ipv6,
827 int use_nat64)
828 {
829 struct delegpt_ns* ns;
830 struct delegpt_addr* a;
831
832 if(supports_ipv6 && use_nat64)
833 supports_ipv4 = 1;
834
835 /* check:
836 * o RD qflag is on.
837 * o no addresses are provided.
838 * o all NS items are required glue.
839 * OR
840 * o RD qflag is on.
841 * o no addresses are provided.
842 * o the query is for one of the nameservers in dp,
843 * and that nameserver is a glue-name for this dp.
844 */
845 if(!(qflags&BIT_RD))
846 return 0;
847 /* either available or unused targets,
848 * if they exist, the dp is not useless. */
849 for(a = dp->usable_list; a; a = a->next_usable) {
850 if(!addr_is_ip6(&a->addr, a->addrlen) && supports_ipv4)
851 return 0;
852 else if(addr_is_ip6(&a->addr, a->addrlen) && supports_ipv6)
853 return 0;
854 }
855 for(a = dp->result_list; a; a = a->next_result) {
856 if(!addr_is_ip6(&a->addr, a->addrlen) && supports_ipv4)
857 return 0;
858 else if(addr_is_ip6(&a->addr, a->addrlen) && supports_ipv6)
859 return 0;
860 }
861
862 /* see if query is for one of the nameservers, which is glue */
863 if( ((qinfo->qtype == LDNS_RR_TYPE_A && supports_ipv4) ||
864 (qinfo->qtype == LDNS_RR_TYPE_AAAA && supports_ipv6)) &&
865 dname_subdomain_c(qinfo->qname, dp->name) &&
866 delegpt_find_ns(dp, qinfo->qname, qinfo->qname_len))
867 return 1;
868
869 for(ns = dp->nslist; ns; ns = ns->next) {
870 if(ns->resolved) /* skip failed targets */
871 continue;
872 if(!dname_subdomain_c(ns->name, dp->name))
873 return 0; /* one address is not required glue */
874 }
875 return 1;
876 }
877
878 int
iter_qname_indicates_dnssec(struct module_env * env,struct query_info * qinfo)879 iter_qname_indicates_dnssec(struct module_env* env, struct query_info *qinfo)
880 {
881 struct trust_anchor* a;
882 if(!env || !env->anchors || !qinfo || !qinfo->qname)
883 return 0;
884 /* a trust anchor exists above the name? */
885 if((a=anchors_lookup(env->anchors, qinfo->qname, qinfo->qname_len,
886 qinfo->qclass))) {
887 if(a->numDS == 0 && a->numDNSKEY == 0) {
888 /* insecure trust point */
889 lock_basic_unlock(&a->lock);
890 return 0;
891 }
892 lock_basic_unlock(&a->lock);
893 return 1;
894 }
895 /* no trust anchor above it. */
896 return 0;
897 }
898
899 int
iter_indicates_dnssec(struct module_env * env,struct delegpt * dp,struct dns_msg * msg,uint16_t dclass)900 iter_indicates_dnssec(struct module_env* env, struct delegpt* dp,
901 struct dns_msg* msg, uint16_t dclass)
902 {
903 struct trust_anchor* a;
904 /* information not available, !env->anchors can be common */
905 if(!env || !env->anchors || !dp || !dp->name)
906 return 0;
907 /* a trust anchor exists with this name, RRSIGs expected */
908 if((a=anchor_find(env->anchors, dp->name, dp->namelabs, dp->namelen,
909 dclass))) {
910 if(a->numDS == 0 && a->numDNSKEY == 0) {
911 /* insecure trust point */
912 lock_basic_unlock(&a->lock);
913 return 0;
914 }
915 lock_basic_unlock(&a->lock);
916 return 1;
917 }
918 /* see if DS rrset was given, in AUTH section */
919 if(msg && msg->rep &&
920 reply_find_rrset_section_ns(msg->rep, dp->name, dp->namelen,
921 LDNS_RR_TYPE_DS, dclass))
922 return 1;
923 /* look in key cache */
924 if(env->key_cache) {
925 struct key_entry_key* kk = key_cache_obtain(env->key_cache,
926 dp->name, dp->namelen, dclass, env->scratch, *env->now);
927 if(kk) {
928 if(query_dname_compare(kk->name, dp->name) == 0) {
929 if(key_entry_isgood(kk) || key_entry_isbad(kk)) {
930 regional_free_all(env->scratch);
931 return 1;
932 } else if(key_entry_isnull(kk)) {
933 regional_free_all(env->scratch);
934 return 0;
935 }
936 }
937 regional_free_all(env->scratch);
938 }
939 }
940 return 0;
941 }
942
943 int
iter_msg_has_dnssec(struct dns_msg * msg)944 iter_msg_has_dnssec(struct dns_msg* msg)
945 {
946 size_t i;
947 if(!msg || !msg->rep)
948 return 0;
949 for(i=0; i<msg->rep->an_numrrsets + msg->rep->ns_numrrsets; i++) {
950 if(((struct packed_rrset_data*)msg->rep->rrsets[i]->
951 entry.data)->rrsig_count > 0)
952 return 1;
953 }
954 /* empty message has no DNSSEC info, with DNSSEC the reply is
955 * not empty (NSEC) */
956 return 0;
957 }
958
iter_msg_from_zone(struct dns_msg * msg,struct delegpt * dp,enum response_type type,uint16_t dclass)959 int iter_msg_from_zone(struct dns_msg* msg, struct delegpt* dp,
960 enum response_type type, uint16_t dclass)
961 {
962 if(!msg || !dp || !msg->rep || !dp->name)
963 return 0;
964 /* SOA RRset - always from reply zone */
965 if(reply_find_rrset_section_an(msg->rep, dp->name, dp->namelen,
966 LDNS_RR_TYPE_SOA, dclass) ||
967 reply_find_rrset_section_ns(msg->rep, dp->name, dp->namelen,
968 LDNS_RR_TYPE_SOA, dclass))
969 return 1;
970 if(type == RESPONSE_TYPE_REFERRAL) {
971 size_t i;
972 /* if it adds a single label, i.e. we expect .com,
973 * and referral to example.com. NS ... , then origin zone
974 * is .com. For a referral to sub.example.com. NS ... then
975 * we do not know, since example.com. may be in between. */
976 for(i=0; i<msg->rep->an_numrrsets+msg->rep->ns_numrrsets;
977 i++) {
978 struct ub_packed_rrset_key* s = msg->rep->rrsets[i];
979 if(ntohs(s->rk.type) == LDNS_RR_TYPE_NS &&
980 ntohs(s->rk.rrset_class) == dclass) {
981 int l = dname_count_labels(s->rk.dname);
982 if(l == dp->namelabs + 1 &&
983 dname_strict_subdomain(s->rk.dname,
984 l, dp->name, dp->namelabs))
985 return 1;
986 }
987 }
988 return 0;
989 }
990 log_assert(type==RESPONSE_TYPE_ANSWER || type==RESPONSE_TYPE_CNAME);
991 /* not a referral, and not lame delegation (upwards), so,
992 * any NS rrset must be from the zone itself */
993 if(reply_find_rrset_section_an(msg->rep, dp->name, dp->namelen,
994 LDNS_RR_TYPE_NS, dclass) ||
995 reply_find_rrset_section_ns(msg->rep, dp->name, dp->namelen,
996 LDNS_RR_TYPE_NS, dclass))
997 return 1;
998 /* a DNSKEY set is expected at the zone apex as well */
999 /* this is for 'minimal responses' for DNSKEYs */
1000 if(reply_find_rrset_section_an(msg->rep, dp->name, dp->namelen,
1001 LDNS_RR_TYPE_DNSKEY, dclass))
1002 return 1;
1003 return 0;
1004 }
1005
1006 /**
1007 * check equality of two rrsets
1008 * @param k1: rrset
1009 * @param k2: rrset
1010 * @return true if equal
1011 */
1012 static int
rrset_equal(struct ub_packed_rrset_key * k1,struct ub_packed_rrset_key * k2)1013 rrset_equal(struct ub_packed_rrset_key* k1, struct ub_packed_rrset_key* k2)
1014 {
1015 struct packed_rrset_data* d1 = (struct packed_rrset_data*)
1016 k1->entry.data;
1017 struct packed_rrset_data* d2 = (struct packed_rrset_data*)
1018 k2->entry.data;
1019 size_t i, t;
1020 if(k1->rk.dname_len != k2->rk.dname_len ||
1021 k1->rk.flags != k2->rk.flags ||
1022 k1->rk.type != k2->rk.type ||
1023 k1->rk.rrset_class != k2->rk.rrset_class ||
1024 query_dname_compare(k1->rk.dname, k2->rk.dname) != 0)
1025 return 0;
1026 if( /* do not check ttl: d1->ttl != d2->ttl || */
1027 d1->count != d2->count ||
1028 d1->rrsig_count != d2->rrsig_count ||
1029 d1->trust != d2->trust ||
1030 d1->security != d2->security)
1031 return 0;
1032 t = d1->count + d1->rrsig_count;
1033 for(i=0; i<t; i++) {
1034 if(d1->rr_len[i] != d2->rr_len[i] ||
1035 /* no ttl check: d1->rr_ttl[i] != d2->rr_ttl[i] ||*/
1036 memcmp(d1->rr_data[i], d2->rr_data[i],
1037 d1->rr_len[i]) != 0)
1038 return 0;
1039 }
1040 return 1;
1041 }
1042
1043 /** compare rrsets and sort canonically. Compares rrset name, type, class.
1044 * return 0 if equal, +1 if x > y, and -1 if x < y.
1045 */
1046 static int
rrset_canonical_sort_cmp(const void * x,const void * y)1047 rrset_canonical_sort_cmp(const void* x, const void* y)
1048 {
1049 struct ub_packed_rrset_key* rrx = *(struct ub_packed_rrset_key**)x;
1050 struct ub_packed_rrset_key* rry = *(struct ub_packed_rrset_key**)y;
1051 int r = dname_canonical_compare(rrx->rk.dname, rry->rk.dname);
1052 if(r != 0)
1053 return r;
1054 if(rrx->rk.type != rry->rk.type) {
1055 if(ntohs(rrx->rk.type) > ntohs(rry->rk.type))
1056 return 1;
1057 else return -1;
1058 }
1059 if(rrx->rk.rrset_class != rry->rk.rrset_class) {
1060 if(ntohs(rrx->rk.rrset_class) > ntohs(rry->rk.rrset_class))
1061 return 1;
1062 else return -1;
1063 }
1064 return 0;
1065 }
1066
1067 int
reply_equal(struct reply_info * p,struct reply_info * q,struct regional * region)1068 reply_equal(struct reply_info* p, struct reply_info* q, struct regional* region)
1069 {
1070 size_t i;
1071 struct ub_packed_rrset_key** sorted_p, **sorted_q;
1072 if(p->flags != q->flags ||
1073 p->qdcount != q->qdcount ||
1074 /* do not check TTL, this may differ */
1075 /*
1076 p->ttl != q->ttl ||
1077 p->prefetch_ttl != q->prefetch_ttl ||
1078 */
1079 p->security != q->security ||
1080 p->an_numrrsets != q->an_numrrsets ||
1081 p->ns_numrrsets != q->ns_numrrsets ||
1082 p->ar_numrrsets != q->ar_numrrsets ||
1083 p->rrset_count != q->rrset_count)
1084 return 0;
1085 /* sort the rrsets in the authority and additional sections before
1086 * compare, the query and answer sections are ordered in the sequence
1087 * they should have (eg. one after the other for aliases). */
1088 sorted_p = (struct ub_packed_rrset_key**)regional_alloc_init(
1089 region, p->rrsets, sizeof(*sorted_p)*p->rrset_count);
1090 if(!sorted_p) return 0;
1091 log_assert(p->an_numrrsets + p->ns_numrrsets + p->ar_numrrsets <=
1092 p->rrset_count);
1093 qsort(sorted_p + p->an_numrrsets, p->ns_numrrsets,
1094 sizeof(*sorted_p), rrset_canonical_sort_cmp);
1095 qsort(sorted_p + p->an_numrrsets + p->ns_numrrsets, p->ar_numrrsets,
1096 sizeof(*sorted_p), rrset_canonical_sort_cmp);
1097
1098 sorted_q = (struct ub_packed_rrset_key**)regional_alloc_init(
1099 region, q->rrsets, sizeof(*sorted_q)*q->rrset_count);
1100 if(!sorted_q) {
1101 regional_free_all(region);
1102 return 0;
1103 }
1104 log_assert(q->an_numrrsets + q->ns_numrrsets + q->ar_numrrsets <=
1105 q->rrset_count);
1106 qsort(sorted_q + q->an_numrrsets, q->ns_numrrsets,
1107 sizeof(*sorted_q), rrset_canonical_sort_cmp);
1108 qsort(sorted_q + q->an_numrrsets + q->ns_numrrsets, q->ar_numrrsets,
1109 sizeof(*sorted_q), rrset_canonical_sort_cmp);
1110
1111 /* compare the rrsets */
1112 for(i=0; i<p->rrset_count; i++) {
1113 if(!rrset_equal(sorted_p[i], sorted_q[i])) {
1114 if(!rrset_canonical_equal(region, sorted_p[i],
1115 sorted_q[i])) {
1116 regional_free_all(region);
1117 return 0;
1118 }
1119 }
1120 }
1121 regional_free_all(region);
1122 return 1;
1123 }
1124
1125 void
caps_strip_reply(struct reply_info * rep)1126 caps_strip_reply(struct reply_info* rep)
1127 {
1128 size_t i;
1129 if(!rep) return;
1130 /* see if message is a referral, in which case the additional and
1131 * NS record cannot be removed */
1132 /* referrals have the AA flag unset (strict check, not elsewhere in
1133 * unbound, but for 0x20 this is very convenient). */
1134 if(!(rep->flags&BIT_AA))
1135 return;
1136 /* remove the additional section from the reply */
1137 if(rep->ar_numrrsets != 0) {
1138 verbose(VERB_ALGO, "caps fallback: removing additional section");
1139 rep->rrset_count -= rep->ar_numrrsets;
1140 rep->ar_numrrsets = 0;
1141 }
1142 /* is there an NS set in the authority section to remove? */
1143 /* the failure case (Cisco firewalls) only has one rrset in authsec */
1144 for(i=rep->an_numrrsets; i<rep->an_numrrsets+rep->ns_numrrsets; i++) {
1145 struct ub_packed_rrset_key* s = rep->rrsets[i];
1146 if(ntohs(s->rk.type) == LDNS_RR_TYPE_NS) {
1147 /* remove NS rrset and break from loop (loop limits
1148 * have changed) */
1149 /* move last rrset into this position (there is no
1150 * additional section any more) */
1151 verbose(VERB_ALGO, "caps fallback: removing NS rrset");
1152 if(i < rep->rrset_count-1)
1153 rep->rrsets[i]=rep->rrsets[rep->rrset_count-1];
1154 rep->rrset_count --;
1155 rep->ns_numrrsets --;
1156 break;
1157 }
1158 }
1159 }
1160
caps_failed_rcode(struct reply_info * rep)1161 int caps_failed_rcode(struct reply_info* rep)
1162 {
1163 return !(FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NOERROR ||
1164 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NXDOMAIN);
1165 }
1166
1167 void
iter_store_parentside_rrset(struct module_env * env,struct ub_packed_rrset_key * rrset)1168 iter_store_parentside_rrset(struct module_env* env,
1169 struct ub_packed_rrset_key* rrset)
1170 {
1171 struct rrset_ref ref;
1172 rrset = packed_rrset_copy_alloc(rrset, env->alloc, *env->now);
1173 if(!rrset) {
1174 log_err("malloc failure in store_parentside_rrset");
1175 return;
1176 }
1177 rrset->rk.flags |= PACKED_RRSET_PARENT_SIDE;
1178 rrset->entry.hash = rrset_key_hash(&rrset->rk);
1179 ref.key = rrset;
1180 ref.id = rrset->id;
1181 /* ignore ret: if it was in the cache, ref updated */
1182 (void)rrset_cache_update(env->rrset_cache, &ref, env->alloc, *env->now);
1183 }
1184
1185 /** fetch NS record from reply, if any */
1186 static struct ub_packed_rrset_key*
reply_get_NS_rrset(struct reply_info * rep)1187 reply_get_NS_rrset(struct reply_info* rep)
1188 {
1189 size_t i;
1190 for(i=0; i<rep->rrset_count; i++) {
1191 if(rep->rrsets[i]->rk.type == htons(LDNS_RR_TYPE_NS)) {
1192 return rep->rrsets[i];
1193 }
1194 }
1195 return NULL;
1196 }
1197
1198 void
iter_store_parentside_NS(struct module_env * env,struct reply_info * rep)1199 iter_store_parentside_NS(struct module_env* env, struct reply_info* rep)
1200 {
1201 struct ub_packed_rrset_key* rrset = reply_get_NS_rrset(rep);
1202 if(rrset) {
1203 log_rrset_key(VERB_ALGO, "store parent-side NS", rrset);
1204 iter_store_parentside_rrset(env, rrset);
1205 }
1206 }
1207
iter_store_parentside_neg(struct module_env * env,struct query_info * qinfo,struct reply_info * rep)1208 void iter_store_parentside_neg(struct module_env* env,
1209 struct query_info* qinfo, struct reply_info* rep)
1210 {
1211 /* TTL: NS from referral in iq->deleg_msg,
1212 * or first RR from iq->response,
1213 * or servfail5secs if !iq->response */
1214 time_t ttl = NORR_TTL;
1215 struct ub_packed_rrset_key* neg;
1216 struct packed_rrset_data* newd;
1217 if(rep) {
1218 struct ub_packed_rrset_key* rrset = reply_get_NS_rrset(rep);
1219 if(!rrset && rep->rrset_count != 0) rrset = rep->rrsets[0];
1220 if(rrset) ttl = ub_packed_rrset_ttl(rrset);
1221 }
1222 /* create empty rrset to store */
1223 neg = (struct ub_packed_rrset_key*)regional_alloc(env->scratch,
1224 sizeof(struct ub_packed_rrset_key));
1225 if(!neg) {
1226 log_err("out of memory in store_parentside_neg");
1227 return;
1228 }
1229 memset(&neg->entry, 0, sizeof(neg->entry));
1230 neg->entry.key = neg;
1231 neg->rk.type = htons(qinfo->qtype);
1232 neg->rk.rrset_class = htons(qinfo->qclass);
1233 neg->rk.flags = 0;
1234 neg->rk.dname = regional_alloc_init(env->scratch, qinfo->qname,
1235 qinfo->qname_len);
1236 if(!neg->rk.dname) {
1237 log_err("out of memory in store_parentside_neg");
1238 return;
1239 }
1240 neg->rk.dname_len = qinfo->qname_len;
1241 neg->entry.hash = rrset_key_hash(&neg->rk);
1242 newd = (struct packed_rrset_data*)regional_alloc_zero(env->scratch,
1243 sizeof(struct packed_rrset_data) + sizeof(size_t) +
1244 sizeof(uint8_t*) + sizeof(time_t) + sizeof(uint16_t));
1245 if(!newd) {
1246 log_err("out of memory in store_parentside_neg");
1247 return;
1248 }
1249 neg->entry.data = newd;
1250 newd->ttl = ttl;
1251 /* entry must have one RR, otherwise not valid in cache.
1252 * put in one RR with empty rdata: those are ignored as nameserver */
1253 newd->count = 1;
1254 newd->rrsig_count = 0;
1255 newd->trust = rrset_trust_ans_noAA;
1256 newd->rr_len = (size_t*)((uint8_t*)newd +
1257 sizeof(struct packed_rrset_data));
1258 newd->rr_len[0] = 0 /* zero len rdata */ + sizeof(uint16_t);
1259 packed_rrset_ptr_fixup(newd);
1260 newd->rr_ttl[0] = newd->ttl;
1261 sldns_write_uint16(newd->rr_data[0], 0 /* zero len rdata */);
1262 /* store it */
1263 log_rrset_key(VERB_ALGO, "store parent-side negative", neg);
1264 iter_store_parentside_rrset(env, neg);
1265 }
1266
1267 int
iter_lookup_parent_NS_from_cache(struct module_env * env,struct delegpt * dp,struct regional * region,struct query_info * qinfo)1268 iter_lookup_parent_NS_from_cache(struct module_env* env, struct delegpt* dp,
1269 struct regional* region, struct query_info* qinfo)
1270 {
1271 struct ub_packed_rrset_key* akey;
1272 akey = rrset_cache_lookup(env->rrset_cache, dp->name,
1273 dp->namelen, LDNS_RR_TYPE_NS, qinfo->qclass,
1274 PACKED_RRSET_PARENT_SIDE, *env->now, 0);
1275 if(akey) {
1276 log_rrset_key(VERB_ALGO, "found parent-side NS in cache", akey);
1277 dp->has_parent_side_NS = 1;
1278 /* and mark the new names as lame */
1279 if(!delegpt_rrset_add_ns(dp, region, akey, 1)) {
1280 lock_rw_unlock(&akey->entry.lock);
1281 return 0;
1282 }
1283 lock_rw_unlock(&akey->entry.lock);
1284 }
1285 return 1;
1286 }
1287
iter_lookup_parent_glue_from_cache(struct module_env * env,struct delegpt * dp,struct regional * region,struct query_info * qinfo)1288 int iter_lookup_parent_glue_from_cache(struct module_env* env,
1289 struct delegpt* dp, struct regional* region, struct query_info* qinfo)
1290 {
1291 struct ub_packed_rrset_key* akey;
1292 struct delegpt_ns* ns;
1293 size_t num = delegpt_count_targets(dp);
1294 for(ns = dp->nslist; ns; ns = ns->next) {
1295 if(ns->cache_lookup_count > ITERATOR_NAME_CACHELOOKUP_MAX_PSIDE)
1296 continue;
1297 ns->cache_lookup_count++;
1298 /* get cached parentside A */
1299 akey = rrset_cache_lookup(env->rrset_cache, ns->name,
1300 ns->namelen, LDNS_RR_TYPE_A, qinfo->qclass,
1301 PACKED_RRSET_PARENT_SIDE, *env->now, 0);
1302 if(akey) {
1303 log_rrset_key(VERB_ALGO, "found parent-side", akey);
1304 ns->done_pside4 = 1;
1305 /* a negative-cache-element has no addresses it adds */
1306 if(!delegpt_add_rrset_A(dp, region, akey, 1, NULL))
1307 log_err("malloc failure in lookup_parent_glue");
1308 lock_rw_unlock(&akey->entry.lock);
1309 }
1310 /* get cached parentside AAAA */
1311 akey = rrset_cache_lookup(env->rrset_cache, ns->name,
1312 ns->namelen, LDNS_RR_TYPE_AAAA, qinfo->qclass,
1313 PACKED_RRSET_PARENT_SIDE, *env->now, 0);
1314 if(akey) {
1315 log_rrset_key(VERB_ALGO, "found parent-side", akey);
1316 ns->done_pside6 = 1;
1317 /* a negative-cache-element has no addresses it adds */
1318 if(!delegpt_add_rrset_AAAA(dp, region, akey, 1, NULL))
1319 log_err("malloc failure in lookup_parent_glue");
1320 lock_rw_unlock(&akey->entry.lock);
1321 }
1322 }
1323 /* see if new (but lame) addresses have become available */
1324 return delegpt_count_targets(dp) != num;
1325 }
1326
1327 int
iter_get_next_root(struct iter_hints * hints,struct iter_forwards * fwd,uint16_t * c)1328 iter_get_next_root(struct iter_hints* hints, struct iter_forwards* fwd,
1329 uint16_t* c)
1330 {
1331 uint16_t c1 = *c, c2 = *c;
1332 int r1, r2;
1333 int nolock = 1;
1334
1335 /* prelock both forwards and hints for atomic read. */
1336 lock_rw_rdlock(&fwd->lock);
1337 lock_rw_rdlock(&hints->lock);
1338 r1 = hints_next_root(hints, &c1, nolock);
1339 r2 = forwards_next_root(fwd, &c2, nolock);
1340 lock_rw_unlock(&fwd->lock);
1341 lock_rw_unlock(&hints->lock);
1342
1343 if(!r1 && !r2) /* got none, end of list */
1344 return 0;
1345 else if(!r1) /* got one, return that */
1346 *c = c2;
1347 else if(!r2)
1348 *c = c1;
1349 else if(c1 < c2) /* got both take smallest */
1350 *c = c1;
1351 else *c = c2;
1352 return 1;
1353 }
1354
1355 void
iter_scrub_ds(struct dns_msg * msg,struct ub_packed_rrset_key * ns,uint8_t * z)1356 iter_scrub_ds(struct dns_msg* msg, struct ub_packed_rrset_key* ns, uint8_t* z)
1357 {
1358 /* Only the DS record for the delegation itself is expected.
1359 * We allow DS for everything between the bailiwick and the
1360 * zonecut, thus DS records must be at or above the zonecut.
1361 * And the DS records must be below the server authority zone.
1362 * The answer section is already scrubbed. */
1363 size_t i = msg->rep->an_numrrsets;
1364 while(i < (msg->rep->an_numrrsets + msg->rep->ns_numrrsets)) {
1365 struct ub_packed_rrset_key* s = msg->rep->rrsets[i];
1366 if(ntohs(s->rk.type) == LDNS_RR_TYPE_DS &&
1367 (!ns || !dname_subdomain_c(ns->rk.dname, s->rk.dname)
1368 || query_dname_compare(z, s->rk.dname) == 0)) {
1369 log_nametypeclass(VERB_ALGO, "removing irrelevant DS",
1370 s->rk.dname, ntohs(s->rk.type),
1371 ntohs(s->rk.rrset_class));
1372 memmove(msg->rep->rrsets+i, msg->rep->rrsets+i+1,
1373 sizeof(struct ub_packed_rrset_key*) *
1374 (msg->rep->rrset_count-i-1));
1375 msg->rep->ns_numrrsets--;
1376 msg->rep->rrset_count--;
1377 /* stay at same i, but new record */
1378 continue;
1379 }
1380 i++;
1381 }
1382 }
1383
1384 void
iter_scrub_nxdomain(struct dns_msg * msg)1385 iter_scrub_nxdomain(struct dns_msg* msg)
1386 {
1387 if(msg->rep->an_numrrsets == 0)
1388 return;
1389
1390 memmove(msg->rep->rrsets, msg->rep->rrsets+msg->rep->an_numrrsets,
1391 sizeof(struct ub_packed_rrset_key*) *
1392 (msg->rep->rrset_count-msg->rep->an_numrrsets));
1393 msg->rep->rrset_count -= msg->rep->an_numrrsets;
1394 msg->rep->an_numrrsets = 0;
1395 }
1396
iter_dec_attempts(struct delegpt * dp,int d,int outbound_msg_retry)1397 void iter_dec_attempts(struct delegpt* dp, int d, int outbound_msg_retry)
1398 {
1399 struct delegpt_addr* a;
1400 for(a=dp->target_list; a; a = a->next_target) {
1401 if(a->attempts >= outbound_msg_retry) {
1402 /* add back to result list */
1403 delegpt_add_to_result_list(dp, a);
1404 }
1405 if(a->attempts > d)
1406 a->attempts -= d;
1407 else a->attempts = 0;
1408 }
1409 }
1410
iter_merge_retry_counts(struct delegpt * dp,struct delegpt * old,int outbound_msg_retry)1411 void iter_merge_retry_counts(struct delegpt* dp, struct delegpt* old,
1412 int outbound_msg_retry)
1413 {
1414 struct delegpt_addr* a, *o, *prev;
1415 for(a=dp->target_list; a; a = a->next_target) {
1416 o = delegpt_find_addr(old, &a->addr, a->addrlen);
1417 if(o) {
1418 log_addr(VERB_ALGO, "copy attempt count previous dp",
1419 &a->addr, a->addrlen);
1420 a->attempts = o->attempts;
1421 }
1422 }
1423 prev = NULL;
1424 a = dp->usable_list;
1425 while(a) {
1426 if(a->attempts >= outbound_msg_retry) {
1427 log_addr(VERB_ALGO, "remove from usable list dp",
1428 &a->addr, a->addrlen);
1429 /* remove from result list */
1430 if(prev)
1431 prev->next_usable = a->next_usable;
1432 else dp->usable_list = a->next_usable;
1433 /* prev stays the same */
1434 a = a->next_usable;
1435 continue;
1436 }
1437 prev = a;
1438 a = a->next_usable;
1439 }
1440 }
1441
1442 int
iter_ds_toolow(struct dns_msg * msg,struct delegpt * dp)1443 iter_ds_toolow(struct dns_msg* msg, struct delegpt* dp)
1444 {
1445 /* if for query example.com, there is example.com SOA or a subdomain
1446 * of example.com, then we are too low and need to fetch NS. */
1447 size_t i;
1448 /* if we have a DNAME or CNAME we are probably wrong */
1449 /* if we have a qtype DS in the answer section, its fine */
1450 for(i=0; i < msg->rep->an_numrrsets; i++) {
1451 struct ub_packed_rrset_key* s = msg->rep->rrsets[i];
1452 if(ntohs(s->rk.type) == LDNS_RR_TYPE_DNAME ||
1453 ntohs(s->rk.type) == LDNS_RR_TYPE_CNAME) {
1454 /* not the right answer, maybe too low, check the
1455 * RRSIG signer name (if there is any) for a hint
1456 * that it is from the dp zone anyway */
1457 uint8_t* sname;
1458 size_t slen;
1459 val_find_rrset_signer(s, &sname, &slen);
1460 if(sname && query_dname_compare(dp->name, sname)==0)
1461 return 0; /* it is fine, from the right dp */
1462 return 1;
1463 }
1464 if(ntohs(s->rk.type) == LDNS_RR_TYPE_DS)
1465 return 0; /* fine, we have a DS record */
1466 }
1467 for(i=msg->rep->an_numrrsets;
1468 i < msg->rep->an_numrrsets + msg->rep->ns_numrrsets; i++) {
1469 struct ub_packed_rrset_key* s = msg->rep->rrsets[i];
1470 if(ntohs(s->rk.type) == LDNS_RR_TYPE_SOA) {
1471 if(dname_subdomain_c(s->rk.dname, msg->qinfo.qname))
1472 return 1; /* point is too low */
1473 if(query_dname_compare(s->rk.dname, dp->name)==0)
1474 return 0; /* right dp */
1475 }
1476 if(ntohs(s->rk.type) == LDNS_RR_TYPE_NSEC ||
1477 ntohs(s->rk.type) == LDNS_RR_TYPE_NSEC3) {
1478 uint8_t* sname;
1479 size_t slen;
1480 val_find_rrset_signer(s, &sname, &slen);
1481 if(sname && query_dname_compare(dp->name, sname)==0)
1482 return 0; /* it is fine, from the right dp */
1483 return 1;
1484 }
1485 }
1486 /* we do not know */
1487 return 1;
1488 }
1489
iter_dp_cangodown(struct query_info * qinfo,struct delegpt * dp)1490 int iter_dp_cangodown(struct query_info* qinfo, struct delegpt* dp)
1491 {
1492 /* no delegation point, do not see how we can go down,
1493 * robust check, it should really exist */
1494 if(!dp) return 0;
1495
1496 /* see if dp equals the qname, then we cannot go down further */
1497 if(query_dname_compare(qinfo->qname, dp->name) == 0)
1498 return 0;
1499 /* if dp is one label above the name we also cannot go down further */
1500 if(dname_count_labels(qinfo->qname) == dp->namelabs+1)
1501 return 0;
1502 return 1;
1503 }
1504
1505 int
iter_stub_fwd_no_cache(struct module_qstate * qstate,struct query_info * qinf,uint8_t ** retdpname,size_t * retdpnamelen,uint8_t * dpname_storage,size_t dpname_storage_len)1506 iter_stub_fwd_no_cache(struct module_qstate *qstate, struct query_info *qinf,
1507 uint8_t** retdpname, size_t* retdpnamelen, uint8_t* dpname_storage,
1508 size_t dpname_storage_len)
1509 {
1510 struct iter_hints_stub *stub;
1511 struct delegpt *dp;
1512 int nolock = 1;
1513
1514 /* Check for stub. */
1515 /* Lock both forwards and hints for atomic read. */
1516 lock_rw_rdlock(&qstate->env->fwds->lock);
1517 lock_rw_rdlock(&qstate->env->hints->lock);
1518 stub = hints_lookup_stub(qstate->env->hints, qinf->qname,
1519 qinf->qclass, NULL, nolock);
1520 dp = forwards_lookup(qstate->env->fwds, qinf->qname, qinf->qclass,
1521 nolock);
1522
1523 /* see if forward or stub is more pertinent */
1524 if(stub && stub->dp && dp) {
1525 if(dname_strict_subdomain(dp->name, dp->namelabs,
1526 stub->dp->name, stub->dp->namelabs)) {
1527 stub = NULL; /* ignore stub, forward is lower */
1528 } else {
1529 dp = NULL; /* ignore forward, stub is lower */
1530 }
1531 }
1532
1533 /* check stub */
1534 if (stub != NULL && stub->dp != NULL) {
1535 enum verbosity_value level = VERB_ALGO;
1536 int stub_no_cache = stub->dp->no_cache;
1537 lock_rw_unlock(&qstate->env->fwds->lock);
1538 if(verbosity >= level && stub_no_cache) {
1539 char qname[LDNS_MAX_DOMAINLEN];
1540 char dpname[LDNS_MAX_DOMAINLEN];
1541 dname_str(qinf->qname, qname);
1542 dname_str(stub->dp->name, dpname);
1543 verbose(level, "stub for %s %s has no_cache", qname, dpname);
1544 }
1545 if(retdpname) {
1546 if(stub->dp->namelen > dpname_storage_len) {
1547 verbose(VERB_ALGO, "no cache stub dpname too long");
1548 lock_rw_unlock(&qstate->env->hints->lock);
1549 *retdpname = NULL;
1550 *retdpnamelen = 0;
1551 return stub_no_cache;
1552 }
1553 memmove(dpname_storage, stub->dp->name,
1554 stub->dp->namelen);
1555 *retdpname = dpname_storage;
1556 *retdpnamelen = stub->dp->namelen;
1557 }
1558 lock_rw_unlock(&qstate->env->hints->lock);
1559 return stub_no_cache;
1560 }
1561
1562 /* Check for forward. */
1563 if (dp) {
1564 enum verbosity_value level = VERB_ALGO;
1565 int dp_no_cache = dp->no_cache;
1566 lock_rw_unlock(&qstate->env->hints->lock);
1567 if(verbosity >= level && dp_no_cache) {
1568 char qname[LDNS_MAX_DOMAINLEN];
1569 char dpname[LDNS_MAX_DOMAINLEN];
1570 dname_str(qinf->qname, qname);
1571 dname_str(dp->name, dpname);
1572 verbose(level, "forward for %s %s has no_cache", qname, dpname);
1573 }
1574 if(retdpname) {
1575 if(dp->namelen > dpname_storage_len) {
1576 verbose(VERB_ALGO, "no cache dpname too long");
1577 lock_rw_unlock(&qstate->env->fwds->lock);
1578 *retdpname = NULL;
1579 *retdpnamelen = 0;
1580 return dp_no_cache;
1581 }
1582 memmove(dpname_storage, dp->name, dp->namelen);
1583 *retdpname = dpname_storage;
1584 *retdpnamelen = dp->namelen;
1585 }
1586 lock_rw_unlock(&qstate->env->fwds->lock);
1587 return dp_no_cache;
1588 }
1589 lock_rw_unlock(&qstate->env->fwds->lock);
1590 lock_rw_unlock(&qstate->env->hints->lock);
1591 if(retdpname) {
1592 *retdpname = NULL;
1593 *retdpnamelen = 0;
1594 }
1595 return 0;
1596 }
1597
iterator_set_ip46_support(struct module_stack * mods,struct module_env * env,struct outside_network * outnet)1598 void iterator_set_ip46_support(struct module_stack* mods,
1599 struct module_env* env, struct outside_network* outnet)
1600 {
1601 int m = modstack_find(mods, "iterator");
1602 struct iter_env* ie = NULL;
1603 if(m == -1)
1604 return;
1605 ie = (struct iter_env*)env->modinfo[m];
1606 if(outnet->pending == NULL)
1607 return; /* we are in testbound, no rbtree for UDP */
1608 if(outnet->num_ip4 == 0)
1609 ie->supports_ipv4 = 0;
1610 if(outnet->num_ip6 == 0)
1611 ie->supports_ipv6 = 0;
1612 }
1613
1614 void
limit_nsec_ttl(struct dns_msg * msg)1615 limit_nsec_ttl(struct dns_msg* msg)
1616 {
1617 /* Limit NSEC and NSEC3 TTL in response, RFC9077 */
1618 size_t i;
1619 int found = 0;
1620 time_t soa_ttl = 0;
1621 /* Limit the NSEC and NSEC3 TTL values to the SOA TTL and SOA minimum
1622 * TTL. That has already been applied to the SOA record ttl. */
1623 for(i=0; i<msg->rep->rrset_count; i++) {
1624 struct ub_packed_rrset_key* s = msg->rep->rrsets[i];
1625 if(ntohs(s->rk.type) == LDNS_RR_TYPE_SOA) {
1626 struct packed_rrset_data* soadata = (struct packed_rrset_data*)s->entry.data;
1627 found = 1;
1628 soa_ttl = soadata->ttl;
1629 break;
1630 }
1631 }
1632 if(!found)
1633 return;
1634 for(i=0; i<msg->rep->rrset_count; i++) {
1635 struct ub_packed_rrset_key* s = msg->rep->rrsets[i];
1636 if(ntohs(s->rk.type) == LDNS_RR_TYPE_NSEC ||
1637 ntohs(s->rk.type) == LDNS_RR_TYPE_NSEC3) {
1638 struct packed_rrset_data* data = (struct packed_rrset_data*)s->entry.data;
1639 /* Limit the negative TTL. */
1640 if(data->ttl > soa_ttl) {
1641 if(verbosity >= VERB_ALGO) {
1642 char buf[256];
1643 snprintf(buf, sizeof(buf),
1644 "limiting TTL %d of %s record to the SOA TTL of %d for",
1645 (int)data->ttl, ((ntohs(s->rk.type) == LDNS_RR_TYPE_NSEC)?"NSEC":"NSEC3"), (int)soa_ttl);
1646 log_nametypeclass(VERB_ALGO, buf,
1647 s->rk.dname, ntohs(s->rk.type),
1648 ntohs(s->rk.rrset_class));
1649 }
1650 data->ttl = soa_ttl;
1651 }
1652 }
1653 }
1654 }
1655
1656 void
iter_make_minimal(struct reply_info * rep)1657 iter_make_minimal(struct reply_info* rep)
1658 {
1659 size_t rem = rep->ns_numrrsets + rep->ar_numrrsets;
1660 rep->ns_numrrsets = 0;
1661 rep->ar_numrrsets = 0;
1662 rep->rrset_count -= rem;
1663 }
1664