blob: 4844d7f3f26d6ed00ca38ca20e95246dbb43a642 [file] [log] [blame]
Emeric Brunc9437992021-02-12 19:42:55 +01001/*
2 * Name server resolution
3 *
4 * Copyright 2014 Baptiste Assmann <bedis9@gmail.com>
5 *
6 * This program is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU General Public License
8 * as published by the Free Software Foundation; either version
9 * 2 of the License, or (at your option) any later version.
10 *
11 */
12
13#include <errno.h>
14#include <fcntl.h>
15#include <stdio.h>
16#include <stdlib.h>
17#include <string.h>
18#include <unistd.h>
19
20#include <sys/types.h>
21
22#include <haproxy/action.h>
23#include <haproxy/api.h>
24#include <haproxy/cfgparse.h>
25#include <haproxy/channel.h>
26#include <haproxy/check.h>
27#include <haproxy/cli.h>
28#include <haproxy/dns.h>
29#include <haproxy/errors.h>
30#include <haproxy/fd.h>
31#include <haproxy/global.h>
32#include <haproxy/http_rules.h>
33#include <haproxy/log.h>
34#include <haproxy/net_helper.h>
35#include <haproxy/protocol.h>
36#include <haproxy/proxy.h>
37#include <haproxy/resolvers.h>
38#include <haproxy/ring.h>
39#include <haproxy/sample.h>
40#include <haproxy/server.h>
41#include <haproxy/stats.h>
42#include <haproxy/stream_interface.h>
43#include <haproxy/task.h>
44#include <haproxy/tcp_rules.h>
45#include <haproxy/ticks.h>
46#include <haproxy/time.h>
47#include <haproxy/vars.h>
48
49
50struct list sec_resolvers = LIST_HEAD_INIT(sec_resolvers);
51struct list resolv_srvrq_list = LIST_HEAD_INIT(resolv_srvrq_list);
52
53static THREAD_LOCAL uint64_t resolv_query_id_seed = 0; /* random seed */
54struct resolvers *curr_resolvers = NULL;
55
56DECLARE_STATIC_POOL(resolv_answer_item_pool, "resolv_answer_item", sizeof(struct resolv_answer_item));
57DECLARE_STATIC_POOL(resolv_resolution_pool, "resolv_resolution", sizeof(struct resolv_resolution));
58DECLARE_POOL(resolv_requester_pool, "resolv_requester", sizeof(struct resolv_requester));
59
60static unsigned int resolution_uuid = 1;
61unsigned int resolv_failed_resolutions = 0;
62
63enum {
64 DNS_STAT_ID,
65 DNS_STAT_PID,
66 DNS_STAT_SENT,
67 DNS_STAT_SND_ERROR,
68 DNS_STAT_VALID,
69 DNS_STAT_UPDATE,
70 DNS_STAT_CNAME,
71 DNS_STAT_CNAME_ERROR,
72 DNS_STAT_ANY_ERR,
73 DNS_STAT_NX,
74 DNS_STAT_TIMEOUT,
75 DNS_STAT_REFUSED,
76 DNS_STAT_OTHER,
77 DNS_STAT_INVALID,
78 DNS_STAT_TOO_BIG,
79 DNS_STAT_TRUNCATED,
80 DNS_STAT_OUTDATED,
81 DNS_STAT_END,
82};
83
84static struct name_desc dns_stats[] = {
85 [DNS_STAT_ID] = { .name = "id", .desc = "ID" },
86 [DNS_STAT_PID] = { .name = "pid", .desc = "Parent ID" },
87 [DNS_STAT_SENT] = { .name = "sent", .desc = "Sent" },
88 [DNS_STAT_SND_ERROR] = { .name = "send_error", .desc = "Send error" },
89 [DNS_STAT_VALID] = { .name = "valid", .desc = "Valid" },
90 [DNS_STAT_UPDATE] = { .name = "update", .desc = "Update" },
91 [DNS_STAT_CNAME] = { .name = "cname", .desc = "CNAME" },
92 [DNS_STAT_CNAME_ERROR] = { .name = "cname_error", .desc = "CNAME error" },
93 [DNS_STAT_ANY_ERR] = { .name = "any_err", .desc = "Any errors" },
94 [DNS_STAT_NX] = { .name = "nx", .desc = "NX" },
95 [DNS_STAT_TIMEOUT] = { .name = "timeout", .desc = "Timeout" },
96 [DNS_STAT_REFUSED] = { .name = "refused", .desc = "Refused" },
97 [DNS_STAT_OTHER] = { .name = "other", .desc = "Other" },
98 [DNS_STAT_INVALID] = { .name = "invalid", .desc = "Invalid" },
99 [DNS_STAT_TOO_BIG] = { .name = "too_big", .desc = "Too big" },
100 [DNS_STAT_TRUNCATED] = { .name = "truncated", .desc = "Truncated" },
101 [DNS_STAT_OUTDATED] = { .name = "outdated", .desc = "Outdated" },
102};
103
104static struct dns_counters dns_counters;
105
106static void dns_fill_stats(void *d, struct field *stats)
107{
108 struct dns_counters *counters = d;
109 stats[DNS_STAT_ID] = mkf_str(FO_CONFIG, counters->id);
110 stats[DNS_STAT_PID] = mkf_str(FO_CONFIG, counters->pid);
111 stats[DNS_STAT_SENT] = mkf_u64(FN_GAUGE, counters->sent);
112 stats[DNS_STAT_SND_ERROR] = mkf_u64(FN_GAUGE, counters->snd_error);
113 stats[DNS_STAT_VALID] = mkf_u64(FN_GAUGE, counters->valid);
114 stats[DNS_STAT_UPDATE] = mkf_u64(FN_GAUGE, counters->update);
115 stats[DNS_STAT_CNAME] = mkf_u64(FN_GAUGE, counters->cname);
116 stats[DNS_STAT_CNAME_ERROR] = mkf_u64(FN_GAUGE, counters->cname_error);
117 stats[DNS_STAT_ANY_ERR] = mkf_u64(FN_GAUGE, counters->any_err);
118 stats[DNS_STAT_NX] = mkf_u64(FN_GAUGE, counters->nx);
119 stats[DNS_STAT_TIMEOUT] = mkf_u64(FN_GAUGE, counters->timeout);
120 stats[DNS_STAT_REFUSED] = mkf_u64(FN_GAUGE, counters->refused);
121 stats[DNS_STAT_OTHER] = mkf_u64(FN_GAUGE, counters->other);
122 stats[DNS_STAT_INVALID] = mkf_u64(FN_GAUGE, counters->invalid);
123 stats[DNS_STAT_TOO_BIG] = mkf_u64(FN_GAUGE, counters->too_big);
124 stats[DNS_STAT_TRUNCATED] = mkf_u64(FN_GAUGE, counters->truncated);
125 stats[DNS_STAT_OUTDATED] = mkf_u64(FN_GAUGE, counters->outdated);
126}
127
128static struct stats_module dns_stats_module = {
129 .name = "dns",
130 .domain_flags = STATS_DOMAIN_DNS << STATS_DOMAIN,
131 .fill_stats = dns_fill_stats,
132 .stats = dns_stats,
133 .stats_count = DNS_STAT_END,
134 .counters = &dns_counters,
135 .counters_size = sizeof(dns_counters),
136 .clearable = 0,
137};
138
139INITCALL1(STG_REGISTER, stats_register_module, &dns_stats_module);
140
141/* Returns a pointer to the resolvers matching the id <id>. NULL is returned if
142 * no match is found.
143 */
144struct resolvers *find_resolvers_by_id(const char *id)
145{
146 struct resolvers *res;
147
148 list_for_each_entry(res, &sec_resolvers, list) {
149 if (strcmp(res->id, id) == 0)
150 return res;
151 }
152 return NULL;
153}
154
155/* Compare hostnames in a case-insensitive way .
156 * Returns 0 if they are the same, non-zero otherwise
157 */
158static __inline int resolv_hostname_cmp(const char *name1, const char *name2, int len)
159{
160 int i;
161
162 for (i = 0; i < len; i++)
163 if (tolower((unsigned char)name1[i]) != tolower((unsigned char)name2[i]))
164 return -1;
165 return 0;
166}
167
168/* Returns a pointer on the SRV request matching the name <name> for the proxy
169 * <px>. NULL is returned if no match is found.
170 */
171struct resolv_srvrq *find_srvrq_by_name(const char *name, struct proxy *px)
172{
173 struct resolv_srvrq *srvrq;
174
175 list_for_each_entry(srvrq, &resolv_srvrq_list, list) {
176 if (srvrq->proxy == px && strcmp(srvrq->name, name) == 0)
177 return srvrq;
178 }
179 return NULL;
180}
181
182/* Allocates a new SRVRQ for the given server with the name <fqdn>. It returns
183 * NULL if an error occurred. */
184struct resolv_srvrq *new_resolv_srvrq(struct server *srv, char *fqdn)
185{
186 struct proxy *px = srv->proxy;
187 struct resolv_srvrq *srvrq = NULL;
188 int fqdn_len, hostname_dn_len;
189
190 fqdn_len = strlen(fqdn);
191 hostname_dn_len = resolv_str_to_dn_label(fqdn, fqdn_len + 1, trash.area,
192 trash.size);
193 if (hostname_dn_len == -1) {
194 ha_alert("config : %s '%s', server '%s': failed to parse FQDN '%s'\n",
195 proxy_type_str(px), px->id, srv->id, fqdn);
196 goto err;
197 }
198
199 if ((srvrq = calloc(1, sizeof(*srvrq))) == NULL) {
200 ha_alert("config : %s '%s', server '%s': out of memory\n",
201 proxy_type_str(px), px->id, srv->id);
202 goto err;
203 }
204 srvrq->obj_type = OBJ_TYPE_SRVRQ;
205 srvrq->proxy = px;
206 srvrq->name = strdup(fqdn);
207 srvrq->hostname_dn = strdup(trash.area);
208 srvrq->hostname_dn_len = hostname_dn_len;
209 if (!srvrq->name || !srvrq->hostname_dn) {
210 ha_alert("config : %s '%s', server '%s': out of memory\n",
211 proxy_type_str(px), px->id, srv->id);
212 goto err;
213 }
214 LIST_ADDQ(&resolv_srvrq_list, &srvrq->list);
215 return srvrq;
216
217 err:
218 if (srvrq) {
219 free(srvrq->name);
220 free(srvrq->hostname_dn);
221 free(srvrq);
222 }
223 return NULL;
224}
225
226
Baptiste Assmann6a8d11d2021-03-10 12:22:18 +0100227/* finds and return the SRV answer item associated to a requester (whose type is 'server').
228 *
229 * returns NULL in case of error or not found.
230 */
231struct resolv_answer_item *find_srvrq_answer_record(const struct resolv_requester *requester)
232{
233 struct resolv_resolution *res;
234 struct resolv_answer_item *item;
235 struct server *srv;
236
237 if (!requester)
238 return NULL;
239
240 if ((srv = objt_server(requester->owner)) == NULL)
241 return NULL;
242 /* check if the server is managed by a SRV record */
243 if (srv->srvrq == NULL)
244 return NULL;
245
246 res = srv->srvrq->requester->resolution;
247 /* search an ANSWER record whose target points to the server's hostname and whose port is
248 * the same as server's svc_port */
249 list_for_each_entry(item, &res->response.answer_list, list) {
250 if (resolv_hostname_cmp(srv->hostname_dn, item->target, srv->hostname_dn_len) == 0 &&
251 (srv->svc_port == item->port))
252 return item;
253 }
254
255 return NULL;
256}
257
Emeric Brunc9437992021-02-12 19:42:55 +0100258/* 2 bytes random generator to generate DNS query ID */
259static inline uint16_t resolv_rnd16(void)
260{
261 if (!resolv_query_id_seed)
262 resolv_query_id_seed = now_ms;
263 resolv_query_id_seed ^= resolv_query_id_seed << 13;
264 resolv_query_id_seed ^= resolv_query_id_seed >> 7;
265 resolv_query_id_seed ^= resolv_query_id_seed << 17;
266 return resolv_query_id_seed;
267}
268
269
270static inline int resolv_resolution_timeout(struct resolv_resolution *res)
271{
272 return res->resolvers->timeout.resolve;
273}
274
275/* Updates a resolvers' task timeout for next wake up and queue it */
276static void resolv_update_resolvers_timeout(struct resolvers *resolvers)
277{
278 struct resolv_resolution *res;
279 int next;
280
281 next = tick_add(now_ms, resolvers->timeout.resolve);
282 if (!LIST_ISEMPTY(&resolvers->resolutions.curr)) {
283 res = LIST_NEXT(&resolvers->resolutions.curr, struct resolv_resolution *, list);
284 next = MIN(next, tick_add(res->last_query, resolvers->timeout.retry));
285 }
286
287 list_for_each_entry(res, &resolvers->resolutions.wait, list)
288 next = MIN(next, tick_add(res->last_resolution, resolv_resolution_timeout(res)));
289
290 resolvers->t->expire = next;
291 task_queue(resolvers->t);
292}
293
294/* Forges a DNS query. It needs the following information from the caller:
295 * - <query_id> : the DNS query id corresponding to this query
296 * - <query_type> : DNS_RTYPE_* request DNS record type (A, AAAA, ANY...)
297 * - <hostname_dn> : hostname in domain name format
298 * - <hostname_dn_len> : length of <hostname_dn>
299 *
300 * To store the query, the caller must pass a buffer <buf> and its size
301 * <bufsize>. It returns the number of written bytes in success, -1 if <buf> is
302 * too short.
303 */
304static int resolv_build_query(int query_id, int query_type, unsigned int accepted_payload_size,
305 char *hostname_dn, int hostname_dn_len, char *buf, int bufsize)
306{
307 struct dns_header dns_hdr;
308 struct dns_question qinfo;
309 struct dns_additional_record edns;
310 char *p = buf;
311
312 if (sizeof(dns_hdr) + sizeof(qinfo) + sizeof(edns) + hostname_dn_len >= bufsize)
313 return -1;
314
315 memset(buf, 0, bufsize);
316
317 /* Set dns query headers */
318 dns_hdr.id = (unsigned short) htons(query_id);
319 dns_hdr.flags = htons(0x0100); /* qr=0, opcode=0, aa=0, tc=0, rd=1, ra=0, z=0, rcode=0 */
320 dns_hdr.qdcount = htons(1); /* 1 question */
321 dns_hdr.ancount = 0;
322 dns_hdr.nscount = 0;
323 dns_hdr.arcount = htons(1);
324 memcpy(p, &dns_hdr, sizeof(dns_hdr));
325 p += sizeof(dns_hdr);
326
327 /* Set up query hostname */
328 memcpy(p, hostname_dn, hostname_dn_len);
329 p += hostname_dn_len;
330 *p++ = 0;
331
332 /* Set up query info (type and class) */
333 qinfo.qtype = htons(query_type);
334 qinfo.qclass = htons(DNS_RCLASS_IN);
335 memcpy(p, &qinfo, sizeof(qinfo));
336 p += sizeof(qinfo);
337
338 /* Set the DNS extension */
339 edns.name = 0;
340 edns.type = htons(DNS_RTYPE_OPT);
341 edns.udp_payload_size = htons(accepted_payload_size);
342 edns.extension = 0;
343 edns.data_length = 0;
344 memcpy(p, &edns, sizeof(edns));
345 p += sizeof(edns);
346
347 return (p - buf);
348}
349
350/* Sends a DNS query to resolvers associated to a resolution. It returns 0 on
351 * success, -1 otherwise.
352 */
353static int resolv_send_query(struct resolv_resolution *resolution)
354{
355 struct resolvers *resolvers = resolution->resolvers;
356 struct dns_nameserver *ns;
357 int len;
358
359 /* Update resolution */
360 resolution->nb_queries = 0;
361 resolution->nb_responses = 0;
362 resolution->last_query = now_ms;
363
364 len = resolv_build_query(resolution->query_id, resolution->query_type,
365 resolvers->accepted_payload_size,
366 resolution->hostname_dn, resolution->hostname_dn_len,
367 trash.area, trash.size);
368
369 list_for_each_entry(ns, &resolvers->nameservers, list) {
370 if (len < 0) {
371 ns->counters->snd_error++;
372 continue;
373 }
374
375 if (dns_send_nameserver(ns, trash.area, len) < 0)
376 ns->counters->snd_error++;
377 else
378 resolution->nb_queries++;
379 }
380
381 /* Push the resolution at the end of the active list */
382 LIST_DEL(&resolution->list);
383 LIST_ADDQ(&resolvers->resolutions.curr, &resolution->list);
384 return 0;
385}
386
387/* Prepares and sends a DNS resolution. It returns 1 if the query was sent, 0 if
388 * skipped and -1 if an error occurred.
389 */
390static int
391resolv_run_resolution(struct resolv_resolution *resolution)
392{
393 struct resolvers *resolvers = resolution->resolvers;
394 int query_id, i;
395
396 /* Avoid sending requests for resolutions that don't yet have an
397 * hostname, ie resolutions linked to servers that do not yet have an
398 * fqdn */
399 if (!resolution->hostname_dn)
400 return 0;
401
402 /* Check if a resolution has already been started for this server return
403 * directly to avoid resolution pill up. */
404 if (resolution->step != RSLV_STEP_NONE)
405 return 0;
406
407 /* Generates a new query id. We try at most 100 times to find a free
408 * query id */
409 for (i = 0; i < 100; ++i) {
410 query_id = resolv_rnd16();
411 if (!eb32_lookup(&resolvers->query_ids, query_id))
412 break;
413 query_id = -1;
414 }
415 if (query_id == -1) {
416 send_log(NULL, LOG_NOTICE,
417 "could not generate a query id for %s, in resolvers %s.\n",
418 resolution->hostname_dn, resolvers->id);
419 return -1;
420 }
421
422 /* Update resolution parameters */
423 resolution->query_id = query_id;
424 resolution->qid.key = query_id;
425 resolution->step = RSLV_STEP_RUNNING;
426 resolution->query_type = resolution->prefered_query_type;
427 resolution->try = resolvers->resolve_retries;
428 eb32_insert(&resolvers->query_ids, &resolution->qid);
429
430 /* Send the DNS query */
431 resolution->try -= 1;
432 resolv_send_query(resolution);
433 return 1;
434}
435
436/* Performs a name resolution for the requester <req> */
437void resolv_trigger_resolution(struct resolv_requester *req)
438{
439 struct resolvers *resolvers;
440 struct resolv_resolution *res;
441 int exp;
442
443 if (!req || !req->resolution)
444 return;
445 res = req->resolution;
446 resolvers = res->resolvers;
447
448 /* The resolution must not be triggered yet. Use the cached response, if
449 * valid */
450 exp = tick_add(res->last_resolution, resolvers->hold.valid);
451 if (resolvers->t && (res->status != RSLV_STATUS_VALID ||
452 !tick_isset(res->last_resolution) || tick_is_expired(exp, now_ms)))
453 task_wakeup(resolvers->t, TASK_WOKEN_OTHER);
454}
455
456
457/* Resets some resolution parameters to initial values and also delete the query
458 * ID from the resolver's tree.
459 */
460static void resolv_reset_resolution(struct resolv_resolution *resolution)
461{
462 /* update resolution status */
463 resolution->step = RSLV_STEP_NONE;
464 resolution->try = 0;
465 resolution->last_resolution = now_ms;
466 resolution->nb_queries = 0;
467 resolution->nb_responses = 0;
468 resolution->query_type = resolution->prefered_query_type;
469
470 /* clean up query id */
471 eb32_delete(&resolution->qid);
472 resolution->query_id = 0;
473 resolution->qid.key = 0;
474}
475
476/* Returns the query id contained in a DNS response */
477static inline unsigned short resolv_response_get_query_id(unsigned char *resp)
478{
479 return resp[0] * 256 + resp[1];
480}
481
482
483/* Analyses, re-builds and copies the name <name> from the DNS response packet
484 * <buffer>. <name> must point to the 'data_len' information or pointer 'c0'
485 * for compressed data. The result is copied into <dest>, ensuring we don't
486 * overflow using <dest_len> Returns the number of bytes the caller can move
487 * forward. If 0 it means an error occurred while parsing the name. <offset> is
488 * the number of bytes the caller could move forward.
489 */
490int resolv_read_name(unsigned char *buffer, unsigned char *bufend,
491 unsigned char *name, char *destination, int dest_len,
492 int *offset, unsigned int depth)
493{
494 int nb_bytes = 0, n = 0;
495 int label_len;
496 unsigned char *reader = name;
497 char *dest = destination;
498
499 while (1) {
500 if (reader >= bufend)
501 goto err;
502
503 /* Name compression is in use */
504 if ((*reader & 0xc0) == 0xc0) {
505 if (reader + 1 >= bufend)
506 goto err;
507
508 /* Must point BEFORE current position */
509 if ((buffer + reader[1]) > reader)
510 goto err;
511
512 if (depth++ > 100)
513 goto err;
514
515 n = resolv_read_name(buffer, bufend, buffer + (*reader & 0x3f)*256 + reader[1],
516 dest, dest_len - nb_bytes, offset, depth);
517 if (n == 0)
518 goto err;
519
520 dest += n;
521 nb_bytes += n;
522 goto out;
523 }
524
525 label_len = *reader;
526 if (label_len == 0)
527 goto out;
528
529 /* Check if:
530 * - we won't read outside the buffer
531 * - there is enough place in the destination
532 */
533 if ((reader + label_len >= bufend) || (nb_bytes + label_len >= dest_len))
534 goto err;
535
536 /* +1 to take label len + label string */
537 label_len++;
538
539 memcpy(dest, reader, label_len);
540
541 dest += label_len;
542 nb_bytes += label_len;
543 reader += label_len;
544 }
545
546 out:
547 /* offset computation:
548 * parse from <name> until finding either NULL or a pointer "c0xx"
549 */
550 reader = name;
551 *offset = 0;
552 while (reader < bufend) {
553 if ((reader[0] & 0xc0) == 0xc0) {
554 *offset += 2;
555 break;
556 }
557 else if (*reader == 0) {
558 *offset += 1;
559 break;
560 }
561 *offset += 1;
562 ++reader;
563 }
564 return nb_bytes;
565
566 err:
567 return 0;
568}
569
570/* Checks for any obsolete record, also identify any SRV request, and try to
571 * find a corresponding server.
572*/
573static void resolv_check_response(struct resolv_resolution *res)
574{
575 struct resolvers *resolvers = res->resolvers;
576 struct resolv_requester *req, *reqback;
577 struct resolv_answer_item *item, *itemback;
578 struct server *srv;
579 struct resolv_srvrq *srvrq;
580
581 list_for_each_entry_safe(item, itemback, &res->response.answer_list, list) {
582 struct resolv_answer_item *ar_item = item->ar_item;
583
584 /* clean up obsolete Additional record */
585 if (ar_item && (ar_item->last_seen + resolvers->hold.obsolete / 1000) < now.tv_sec) {
Christopher Faulet3e0600f2021-03-10 18:38:37 +0100586 /* Cleaning up the AR item will trigger an extra DNS resolution, except if the SRV
587 * item is also obsolete.
588 */
Emeric Brunc9437992021-02-12 19:42:55 +0100589 pool_free(resolv_answer_item_pool, ar_item);
590 item->ar_item = NULL;
591 }
592
593 /* Remove obsolete items */
594 if ((item->last_seen + resolvers->hold.obsolete / 1000) < now.tv_sec) {
595 if (item->type != DNS_RTYPE_SRV)
596 goto rm_obselete_item;
597
598 list_for_each_entry_safe(req, reqback, &res->requesters, list) {
599 if ((srvrq = objt_resolv_srvrq(req->owner)) == NULL)
600 continue;
601
602 /* Remove any associated server */
603 for (srv = srvrq->proxy->srv; srv != NULL; srv = srv->next) {
604 HA_SPIN_LOCK(SERVER_LOCK, &srv->lock);
605 if (srv->srvrq == srvrq && srv->svc_port == item->port &&
606 item->data_len == srv->hostname_dn_len &&
607 !resolv_hostname_cmp(srv->hostname_dn, item->target, item->data_len)) {
Christopher Fauletbca680b2021-03-10 21:33:21 +0100608 resolv_unlink_resolution(srv->resolv_requester);
Christopher Faulet6b117ae2021-03-11 18:06:23 +0100609 srvrq_update_srv_status(srv, 1);
Willy Tarreau61cfdf42021-02-20 10:46:51 +0100610 ha_free(&srv->hostname);
611 ha_free(&srv->hostname_dn);
Emeric Brunc9437992021-02-12 19:42:55 +0100612 srv->hostname_dn_len = 0;
Christopher Faulet52d4d302021-02-23 12:24:09 +0100613 memset(&srv->addr, 0, sizeof(srv->addr));
614 srv->svc_port = 0;
Emeric Brunc9437992021-02-12 19:42:55 +0100615 }
616 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
617 }
618 }
619
620 rm_obselete_item:
621 LIST_DEL(&item->list);
622 if (item->ar_item) {
623 pool_free(resolv_answer_item_pool, item->ar_item);
624 item->ar_item = NULL;
625 }
626 pool_free(resolv_answer_item_pool, item);
627 continue;
628 }
629
630 if (item->type != DNS_RTYPE_SRV)
631 continue;
632
633 /* Now process SRV records */
634 list_for_each_entry_safe(req, reqback, &res->requesters, list) {
635 if ((srvrq = objt_resolv_srvrq(req->owner)) == NULL)
636 continue;
637
638 /* Check if a server already uses that hostname */
639 for (srv = srvrq->proxy->srv; srv != NULL; srv = srv->next) {
640 HA_SPIN_LOCK(SERVER_LOCK, &srv->lock);
641 if (srv->srvrq == srvrq && srv->svc_port == item->port &&
642 item->data_len == srv->hostname_dn_len &&
643 !resolv_hostname_cmp(srv->hostname_dn, item->target, item->data_len)) {
644 break;
645 }
646 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
647 }
648
649 /* If not, try to find a server with undefined hostname */
650 if (!srv) {
651 for (srv = srvrq->proxy->srv; srv != NULL; srv = srv->next) {
652 HA_SPIN_LOCK(SERVER_LOCK, &srv->lock);
653 if (srv->srvrq == srvrq && !srv->hostname_dn)
654 break;
655 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
656 }
657 }
658
659 /* And update this server, if found (srv is locked here) */
660 if (srv) {
Christopher Faulet3e0600f2021-03-10 18:38:37 +0100661 /* re-enable DNS resolution for this server by default */
662 srv->flags &= ~SRV_F_NO_RESOLUTION;
663
Emeric Brunc9437992021-02-12 19:42:55 +0100664 /* Check if an Additional Record is associated to this SRV record.
665 * Perform some sanity checks too to ensure the record can be used.
666 * If all fine, we simply pick up the IP address found and associate
Christopher Faulet3e0600f2021-03-10 18:38:37 +0100667 * it to the server. And DNS resolution is disabled for this server.
Emeric Brunc9437992021-02-12 19:42:55 +0100668 */
669 if ((item->ar_item != NULL) &&
670 (item->ar_item->type == DNS_RTYPE_A || item->ar_item->type == DNS_RTYPE_AAAA))
Christopher Faulet3e0600f2021-03-10 18:38:37 +0100671 {
Emeric Brunc9437992021-02-12 19:42:55 +0100672
673 switch (item->ar_item->type) {
674 case DNS_RTYPE_A:
Christopher Faulet69beaa92021-02-16 12:07:47 +0100675 srv_update_addr(srv, &(((struct sockaddr_in*)&item->ar_item->address)->sin_addr), AF_INET, "DNS additional record");
Emeric Brunc9437992021-02-12 19:42:55 +0100676 break;
677 case DNS_RTYPE_AAAA:
Christopher Faulet69beaa92021-02-16 12:07:47 +0100678 srv_update_addr(srv, &(((struct sockaddr_in6*)&item->ar_item->address)->sin6_addr), AF_INET6, "DNS additional record");
Emeric Brunc9437992021-02-12 19:42:55 +0100679 break;
680 }
681
682 srv->flags |= SRV_F_NO_RESOLUTION;
Christopher Faulet3e0600f2021-03-10 18:38:37 +0100683
684 /* Unlink A/AAAA resolution for this server if there is an AR item.
685 * It is usless to perform an extra resolution
686 */
687 resolv_unlink_resolution(srv->resolv_requester);
Emeric Brunc9437992021-02-12 19:42:55 +0100688 }
689
690 if (!srv->hostname_dn) {
691 const char *msg = NULL;
692 char hostname[DNS_MAX_NAME_SIZE];
693
694 if (resolv_dn_label_to_str(item->target, item->data_len+1,
695 hostname, DNS_MAX_NAME_SIZE) == -1) {
696 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
697 continue;
698 }
Christopher Faulet69beaa92021-02-16 12:07:47 +0100699 msg = srv_update_fqdn(srv, hostname, "SRV record", 1);
Emeric Brunc9437992021-02-12 19:42:55 +0100700 if (msg)
701 send_log(srv->proxy, LOG_NOTICE, "%s", msg);
702 }
703
Christopher Faulet3e0600f2021-03-10 18:38:37 +0100704 if (!(srv->flags & SRV_F_NO_RESOLUTION)) {
705 /* If there is no AR item responsible of the FQDN resolution,
706 * trigger a dedicated DNS resolution
707 */
708 if (!srv->resolv_requester || !srv->resolv_requester->resolution)
709 resolv_link_resolution(srv, OBJ_TYPE_SERVER, 1);
710 }
711
Christopher Fauletab177ac2021-03-10 15:34:52 +0100712 /* Update the server status */
Christopher Faulet6b117ae2021-03-11 18:06:23 +0100713 srvrq_update_srv_status(srv, (srv->addr.ss_family != AF_INET && srv->addr.ss_family != AF_INET6));
Emeric Brunc9437992021-02-12 19:42:55 +0100714
715 srv->svc_port = item->port;
716 srv->flags &= ~SRV_F_MAPPORTS;
717
718 if (!srv->resolv_opts.ignore_weight) {
719 char weight[9];
720 int ha_weight;
721
722 /* DNS weight range if from 0 to 65535
723 * HAProxy weight is from 0 to 256
724 * The rule below ensures that weight 0 is well respected
725 * while allowing a "mapping" from DNS weight into HAProxy's one.
726 */
727 ha_weight = (item->weight + 255) / 256;
728
729 snprintf(weight, sizeof(weight), "%d", ha_weight);
730 server_parse_weight_change_request(srv, weight);
731 }
732 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
733 }
734 }
735 }
736}
737
738/* Validates that the buffer DNS response provided in <resp> and finishing
739 * before <bufend> is valid from a DNS protocol point of view.
740 *
741 * The result is stored in <resolution>' response, buf_response,
742 * response_query_records and response_answer_records members.
743 *
744 * This function returns one of the RSLV_RESP_* code to indicate the type of
745 * error found.
746 */
747static int resolv_validate_dns_response(unsigned char *resp, unsigned char *bufend,
748 struct resolv_resolution *resolution, int max_answer_records)
749{
750 unsigned char *reader;
751 char *previous_dname, tmpname[DNS_MAX_NAME_SIZE];
752 int len, flags, offset;
753 int query_record_id;
754 int nb_saved_records;
755 struct resolv_query_item *query;
756 struct resolv_answer_item *answer_record, *tmp_record;
757 struct resolv_response *r_res;
758 int i, found = 0;
759 int cause = RSLV_RESP_ERROR;
760
761 reader = resp;
762 len = 0;
763 previous_dname = NULL;
764 query = NULL;
765 answer_record = NULL;
766
767 /* Initialization of response buffer and structure */
768 r_res = &resolution->response;
769
770 /* query id */
771 if (reader + 2 >= bufend)
772 goto invalid_resp;
773
774 r_res->header.id = reader[0] * 256 + reader[1];
775 reader += 2;
776
777 /* Flags and rcode are stored over 2 bytes
778 * First byte contains:
779 * - response flag (1 bit)
780 * - opcode (4 bits)
781 * - authoritative (1 bit)
782 * - truncated (1 bit)
783 * - recursion desired (1 bit)
784 */
785 if (reader + 2 >= bufend)
786 goto invalid_resp;
787
788 flags = reader[0] * 256 + reader[1];
789
790 if ((flags & DNS_FLAG_REPLYCODE) != DNS_RCODE_NO_ERROR) {
791 if ((flags & DNS_FLAG_REPLYCODE) == DNS_RCODE_NX_DOMAIN) {
792 cause = RSLV_RESP_NX_DOMAIN;
793 goto return_error;
794 }
795 else if ((flags & DNS_FLAG_REPLYCODE) == DNS_RCODE_REFUSED) {
796 cause = RSLV_RESP_REFUSED;
797 goto return_error;
798 }
799 else {
800 cause = RSLV_RESP_ERROR;
801 goto return_error;
802 }
803 }
804
805 /* Move forward 2 bytes for flags */
806 reader += 2;
807
808 /* 2 bytes for question count */
809 if (reader + 2 >= bufend)
810 goto invalid_resp;
811 r_res->header.qdcount = reader[0] * 256 + reader[1];
812 /* (for now) we send one query only, so we expect only one in the
813 * response too */
814 if (r_res->header.qdcount != 1) {
815 cause = RSLV_RESP_QUERY_COUNT_ERROR;
816 goto return_error;
817 }
818
819 if (r_res->header.qdcount > DNS_MAX_QUERY_RECORDS)
820 goto invalid_resp;
821 reader += 2;
822
823 /* 2 bytes for answer count */
824 if (reader + 2 >= bufend)
825 goto invalid_resp;
826 r_res->header.ancount = reader[0] * 256 + reader[1];
827 if (r_res->header.ancount == 0) {
828 cause = RSLV_RESP_ANCOUNT_ZERO;
829 goto return_error;
830 }
831
832 /* Check if too many records are announced */
833 if (r_res->header.ancount > max_answer_records)
834 goto invalid_resp;
835 reader += 2;
836
837 /* 2 bytes authority count */
838 if (reader + 2 >= bufend)
839 goto invalid_resp;
840 r_res->header.nscount = reader[0] * 256 + reader[1];
841 reader += 2;
842
843 /* 2 bytes additional count */
844 if (reader + 2 >= bufend)
845 goto invalid_resp;
846 r_res->header.arcount = reader[0] * 256 + reader[1];
847 reader += 2;
848
849 /* Parsing dns queries */
850 LIST_INIT(&r_res->query_list);
851 for (query_record_id = 0; query_record_id < r_res->header.qdcount; query_record_id++) {
852 /* Use next pre-allocated resolv_query_item after ensuring there is
853 * still one available.
854 * It's then added to our packet query list. */
855 if (query_record_id > DNS_MAX_QUERY_RECORDS)
856 goto invalid_resp;
857 query = &resolution->response_query_records[query_record_id];
858 LIST_ADDQ(&r_res->query_list, &query->list);
859
860 /* Name is a NULL terminated string in our case, since we have
861 * one query per response and the first one can't be compressed
862 * (using the 0x0c format) */
863 offset = 0;
864 len = resolv_read_name(resp, bufend, reader, query->name, DNS_MAX_NAME_SIZE, &offset, 0);
865
866 if (len == 0)
867 goto invalid_resp;
868
869 reader += offset;
870 previous_dname = query->name;
871
872 /* move forward 2 bytes for question type */
873 if (reader + 2 >= bufend)
874 goto invalid_resp;
875 query->type = reader[0] * 256 + reader[1];
876 reader += 2;
877
878 /* move forward 2 bytes for question class */
879 if (reader + 2 >= bufend)
880 goto invalid_resp;
881 query->class = reader[0] * 256 + reader[1];
882 reader += 2;
883 }
884
885 /* TRUNCATED flag must be checked after we could read the query type
886 * because a TRUNCATED SRV query type response can still be exploited */
887 if (query->type != DNS_RTYPE_SRV && flags & DNS_FLAG_TRUNCATED) {
888 cause = RSLV_RESP_TRUNCATED;
889 goto return_error;
890 }
891
892 /* now parsing response records */
893 nb_saved_records = 0;
894 for (i = 0; i < r_res->header.ancount; i++) {
895 if (reader >= bufend)
896 goto invalid_resp;
897
898 answer_record = pool_alloc(resolv_answer_item_pool);
899 if (answer_record == NULL)
900 goto invalid_resp;
901
902 /* initialization */
903 answer_record->ar_item = NULL;
904
905 offset = 0;
906 len = resolv_read_name(resp, bufend, reader, tmpname, DNS_MAX_NAME_SIZE, &offset, 0);
907
908 if (len == 0)
909 goto invalid_resp;
910
911 /* Check if the current record dname is valid. previous_dname
912 * points either to queried dname or last CNAME target */
913 if (query->type != DNS_RTYPE_SRV && resolv_hostname_cmp(previous_dname, tmpname, len) != 0) {
914 if (i == 0) {
915 /* First record, means a mismatch issue between
916 * queried dname and dname found in the first
917 * record */
918 goto invalid_resp;
919 }
920 else {
921 /* If not the first record, this means we have a
922 * CNAME resolution error.
923 */
924 cause = RSLV_RESP_CNAME_ERROR;
925 goto return_error;
926 }
927
928 }
929
930 memcpy(answer_record->name, tmpname, len);
931 answer_record->name[len] = 0;
932
933 reader += offset;
934 if (reader >= bufend)
935 goto invalid_resp;
936
937 /* 2 bytes for record type (A, AAAA, CNAME, etc...) */
938 if (reader + 2 > bufend)
939 goto invalid_resp;
940
941 answer_record->type = reader[0] * 256 + reader[1];
942 reader += 2;
943
944 /* 2 bytes for class (2) */
945 if (reader + 2 > bufend)
946 goto invalid_resp;
947
948 answer_record->class = reader[0] * 256 + reader[1];
949 reader += 2;
950
951 /* 4 bytes for ttl (4) */
952 if (reader + 4 > bufend)
953 goto invalid_resp;
954
955 answer_record->ttl = reader[0] * 16777216 + reader[1] * 65536
956 + reader[2] * 256 + reader[3];
957 reader += 4;
958
959 /* Now reading data len */
960 if (reader + 2 > bufend)
961 goto invalid_resp;
962
963 answer_record->data_len = reader[0] * 256 + reader[1];
964
965 /* Move forward 2 bytes for data len */
966 reader += 2;
967
968 if (reader + answer_record->data_len > bufend)
969 goto invalid_resp;
970
971 /* Analyzing record content */
972 switch (answer_record->type) {
973 case DNS_RTYPE_A:
974 /* ipv4 is stored on 4 bytes */
975 if (answer_record->data_len != 4)
976 goto invalid_resp;
977
978 answer_record->address.sa_family = AF_INET;
979 memcpy(&(((struct sockaddr_in *)&answer_record->address)->sin_addr),
980 reader, answer_record->data_len);
981 break;
982
983 case DNS_RTYPE_CNAME:
984 /* Check if this is the last record and update the caller about the status:
985 * no IP could be found and last record was a CNAME. Could be triggered
986 * by a wrong query type
987 *
988 * + 1 because answer_record_id starts at 0
989 * while number of answers is an integer and
990 * starts at 1.
991 */
992 if (i + 1 == r_res->header.ancount) {
993 cause = RSLV_RESP_CNAME_ERROR;
994 goto return_error;
995 }
996
997 offset = 0;
998 len = resolv_read_name(resp, bufend, reader, tmpname, DNS_MAX_NAME_SIZE, &offset, 0);
999 if (len == 0)
1000 goto invalid_resp;
1001
1002 memcpy(answer_record->target, tmpname, len);
1003 answer_record->target[len] = 0;
1004 previous_dname = answer_record->target;
1005 break;
1006
1007
1008 case DNS_RTYPE_SRV:
1009 /* Answer must contain :
1010 * - 2 bytes for the priority
1011 * - 2 bytes for the weight
1012 * - 2 bytes for the port
1013 * - the target hostname
1014 */
1015 if (answer_record->data_len <= 6)
1016 goto invalid_resp;
1017
1018 answer_record->priority = read_n16(reader);
1019 reader += sizeof(uint16_t);
1020 answer_record->weight = read_n16(reader);
1021 reader += sizeof(uint16_t);
1022 answer_record->port = read_n16(reader);
1023 reader += sizeof(uint16_t);
1024 offset = 0;
1025 len = resolv_read_name(resp, bufend, reader, tmpname, DNS_MAX_NAME_SIZE, &offset, 0);
1026 if (len == 0)
1027 goto invalid_resp;
1028
1029 answer_record->data_len = len;
1030 memcpy(answer_record->target, tmpname, len);
1031 answer_record->target[len] = 0;
1032 if (answer_record->ar_item != NULL) {
1033 pool_free(resolv_answer_item_pool, answer_record->ar_item);
1034 answer_record->ar_item = NULL;
1035 }
1036 break;
1037
1038 case DNS_RTYPE_AAAA:
1039 /* ipv6 is stored on 16 bytes */
1040 if (answer_record->data_len != 16)
1041 goto invalid_resp;
1042
1043 answer_record->address.sa_family = AF_INET6;
1044 memcpy(&(((struct sockaddr_in6 *)&answer_record->address)->sin6_addr),
1045 reader, answer_record->data_len);
1046 break;
1047
1048 } /* switch (record type) */
1049
1050 /* Increment the counter for number of records saved into our
1051 * local response */
1052 nb_saved_records++;
1053
1054 /* Move forward answer_record->data_len for analyzing next
1055 * record in the response */
1056 reader += ((answer_record->type == DNS_RTYPE_SRV)
1057 ? offset
1058 : answer_record->data_len);
1059
1060 /* Lookup to see if we already had this entry */
1061 found = 0;
1062 list_for_each_entry(tmp_record, &r_res->answer_list, list) {
1063 if (tmp_record->type != answer_record->type)
1064 continue;
1065
1066 switch(tmp_record->type) {
1067 case DNS_RTYPE_A:
1068 if (!memcmp(&((struct sockaddr_in *)&answer_record->address)->sin_addr,
1069 &((struct sockaddr_in *)&tmp_record->address)->sin_addr,
1070 sizeof(in_addr_t)))
1071 found = 1;
1072 break;
1073
1074 case DNS_RTYPE_AAAA:
1075 if (!memcmp(&((struct sockaddr_in6 *)&answer_record->address)->sin6_addr,
1076 &((struct sockaddr_in6 *)&tmp_record->address)->sin6_addr,
1077 sizeof(struct in6_addr)))
1078 found = 1;
1079 break;
1080
1081 case DNS_RTYPE_SRV:
1082 if (answer_record->data_len == tmp_record->data_len &&
1083 !resolv_hostname_cmp(answer_record->target, tmp_record->target, answer_record->data_len) &&
1084 answer_record->port == tmp_record->port) {
1085 tmp_record->weight = answer_record->weight;
1086 found = 1;
1087 }
1088 break;
1089
1090 default:
1091 break;
1092 }
1093
1094 if (found == 1)
1095 break;
1096 }
1097
1098 if (found == 1) {
Christopher Faulet5037c062021-03-10 15:54:14 +01001099 tmp_record->last_seen = now.tv_sec;
Emeric Brunc9437992021-02-12 19:42:55 +01001100 pool_free(resolv_answer_item_pool, answer_record);
1101 answer_record = NULL;
1102 }
1103 else {
1104 answer_record->last_seen = now.tv_sec;
1105 answer_record->ar_item = NULL;
1106 LIST_ADDQ(&r_res->answer_list, &answer_record->list);
1107 answer_record = NULL;
1108 }
1109 } /* for i 0 to ancount */
1110
1111 /* Save the number of records we really own */
1112 r_res->header.ancount = nb_saved_records;
1113
1114 /* now parsing additional records for SRV queries only */
1115 if (query->type != DNS_RTYPE_SRV)
1116 goto skip_parsing_additional_records;
1117
1118 /* if we find Authority records, just skip them */
1119 for (i = 0; i < r_res->header.nscount; i++) {
1120 offset = 0;
1121 len = resolv_read_name(resp, bufend, reader, tmpname, DNS_MAX_NAME_SIZE,
1122 &offset, 0);
1123 if (len == 0)
1124 continue;
1125
1126 if (reader + offset + 10 >= bufend)
1127 goto invalid_resp;
1128
1129 reader += offset;
1130 /* skip 2 bytes for class */
1131 reader += 2;
1132 /* skip 2 bytes for type */
1133 reader += 2;
1134 /* skip 4 bytes for ttl */
1135 reader += 4;
1136 /* read data len */
1137 len = reader[0] * 256 + reader[1];
1138 reader += 2;
1139
1140 if (reader + len >= bufend)
1141 goto invalid_resp;
1142
1143 reader += len;
1144 }
1145
1146 nb_saved_records = 0;
1147 for (i = 0; i < r_res->header.arcount; i++) {
1148 if (reader >= bufend)
1149 goto invalid_resp;
1150
1151 answer_record = pool_alloc(resolv_answer_item_pool);
1152 if (answer_record == NULL)
1153 goto invalid_resp;
1154
1155 offset = 0;
1156 len = resolv_read_name(resp, bufend, reader, tmpname, DNS_MAX_NAME_SIZE, &offset, 0);
1157
1158 if (len == 0) {
1159 pool_free(resolv_answer_item_pool, answer_record);
1160 answer_record = NULL;
1161 continue;
1162 }
1163
1164 memcpy(answer_record->name, tmpname, len);
1165 answer_record->name[len] = 0;
1166
1167 reader += offset;
1168 if (reader >= bufend)
1169 goto invalid_resp;
1170
1171 /* 2 bytes for record type (A, AAAA, CNAME, etc...) */
1172 if (reader + 2 > bufend)
1173 goto invalid_resp;
1174
1175 answer_record->type = reader[0] * 256 + reader[1];
1176 reader += 2;
1177
1178 /* 2 bytes for class (2) */
1179 if (reader + 2 > bufend)
1180 goto invalid_resp;
1181
1182 answer_record->class = reader[0] * 256 + reader[1];
1183 reader += 2;
1184
1185 /* 4 bytes for ttl (4) */
1186 if (reader + 4 > bufend)
1187 goto invalid_resp;
1188
1189 answer_record->ttl = reader[0] * 16777216 + reader[1] * 65536
1190 + reader[2] * 256 + reader[3];
1191 reader += 4;
1192
1193 /* Now reading data len */
1194 if (reader + 2 > bufend)
1195 goto invalid_resp;
1196
1197 answer_record->data_len = reader[0] * 256 + reader[1];
1198
1199 /* Move forward 2 bytes for data len */
1200 reader += 2;
1201
1202 if (reader + answer_record->data_len > bufend)
1203 goto invalid_resp;
1204
1205 /* Analyzing record content */
1206 switch (answer_record->type) {
1207 case DNS_RTYPE_A:
1208 /* ipv4 is stored on 4 bytes */
1209 if (answer_record->data_len != 4)
1210 goto invalid_resp;
1211
1212 answer_record->address.sa_family = AF_INET;
1213 memcpy(&(((struct sockaddr_in *)&answer_record->address)->sin_addr),
1214 reader, answer_record->data_len);
1215 break;
1216
1217 case DNS_RTYPE_AAAA:
1218 /* ipv6 is stored on 16 bytes */
1219 if (answer_record->data_len != 16)
1220 goto invalid_resp;
1221
1222 answer_record->address.sa_family = AF_INET6;
1223 memcpy(&(((struct sockaddr_in6 *)&answer_record->address)->sin6_addr),
1224 reader, answer_record->data_len);
1225 break;
1226
1227 default:
1228 pool_free(resolv_answer_item_pool, answer_record);
1229 answer_record = NULL;
1230 continue;
1231
1232 } /* switch (record type) */
1233
1234 /* Increment the counter for number of records saved into our
1235 * local response */
1236 nb_saved_records++;
1237
1238 /* Move forward answer_record->data_len for analyzing next
1239 * record in the response */
Christopher Faulet77f86062021-03-10 15:19:57 +01001240 reader += answer_record->data_len;
Emeric Brunc9437992021-02-12 19:42:55 +01001241
1242 /* Lookup to see if we already had this entry */
1243 found = 0;
1244 list_for_each_entry(tmp_record, &r_res->answer_list, list) {
Christopher Faulet77f86062021-03-10 15:19:57 +01001245 struct resolv_answer_item *ar_item;
1246
1247 if (tmp_record->type != DNS_RTYPE_SRV || !tmp_record->ar_item)
1248 continue;
1249
1250 ar_item = tmp_record->ar_item;
1251 if (ar_item->type != answer_record->type ||
1252 len != tmp_record->data_len ||
1253 resolv_hostname_cmp(answer_record->name, tmp_record->target, tmp_record->data_len))
Emeric Brunc9437992021-02-12 19:42:55 +01001254 continue;
1255
Christopher Faulet77f86062021-03-10 15:19:57 +01001256 switch(ar_item->type) {
Emeric Brunc9437992021-02-12 19:42:55 +01001257 case DNS_RTYPE_A:
1258 if (!memcmp(&((struct sockaddr_in *)&answer_record->address)->sin_addr,
Christopher Faulet77f86062021-03-10 15:19:57 +01001259 &((struct sockaddr_in *)&ar_item->address)->sin_addr,
Emeric Brunc9437992021-02-12 19:42:55 +01001260 sizeof(in_addr_t)))
1261 found = 1;
1262 break;
1263
1264 case DNS_RTYPE_AAAA:
1265 if (!memcmp(&((struct sockaddr_in6 *)&answer_record->address)->sin6_addr,
Christopher Faulet77f86062021-03-10 15:19:57 +01001266 &((struct sockaddr_in6 *)&ar_item->address)->sin6_addr,
Emeric Brunc9437992021-02-12 19:42:55 +01001267 sizeof(struct in6_addr)))
1268 found = 1;
1269 break;
1270
1271 default:
1272 break;
1273 }
1274
1275 if (found == 1)
1276 break;
1277 }
1278
1279 if (found == 1) {
Christopher Faulet77f86062021-03-10 15:19:57 +01001280 tmp_record->ar_item->last_seen = now.tv_sec;
Emeric Brunc9437992021-02-12 19:42:55 +01001281 pool_free(resolv_answer_item_pool, answer_record);
1282 answer_record = NULL;
1283 }
1284 else {
1285 answer_record->last_seen = now.tv_sec;
1286 answer_record->ar_item = NULL;
1287
1288 // looking for the SRV record in the response list linked to this additional record
1289 list_for_each_entry(tmp_record, &r_res->answer_list, list) {
1290 if (tmp_record->type == DNS_RTYPE_SRV &&
1291 tmp_record->ar_item == NULL &&
1292 !resolv_hostname_cmp(tmp_record->target, answer_record->name, tmp_record->data_len)) {
1293 /* Always use the received additional record to refresh info */
1294 if (tmp_record->ar_item)
1295 pool_free(resolv_answer_item_pool, tmp_record->ar_item);
1296 tmp_record->ar_item = answer_record;
Christopher Faulet9c246a42021-02-23 11:59:19 +01001297 answer_record = NULL;
Emeric Brunc9437992021-02-12 19:42:55 +01001298 break;
1299 }
1300 }
Christopher Faulet9c246a42021-02-23 11:59:19 +01001301 if (answer_record) {
Emeric Brunc9437992021-02-12 19:42:55 +01001302 pool_free(resolv_answer_item_pool, answer_record);
Christopher Faulet9c246a42021-02-23 11:59:19 +01001303 answer_record = NULL;
1304 }
Emeric Brunc9437992021-02-12 19:42:55 +01001305 }
1306 } /* for i 0 to arcount */
1307
1308 skip_parsing_additional_records:
1309
1310 /* Save the number of records we really own */
1311 r_res->header.arcount = nb_saved_records;
1312
1313 resolv_check_response(resolution);
1314 return RSLV_RESP_VALID;
1315
1316 invalid_resp:
1317 cause = RSLV_RESP_INVALID;
1318
1319 return_error:
1320 pool_free(resolv_answer_item_pool, answer_record);
1321 return cause;
1322}
1323
1324/* Searches dn_name resolution in resp.
1325 * If existing IP not found, return the first IP matching family_priority,
1326 * otherwise, first ip found
1327 * The following tasks are the responsibility of the caller:
1328 * - <r_res> contains an error free DNS response
1329 * For both cases above, resolv_validate_dns_response is required
1330 * returns one of the RSLV_UPD_* code
1331 */
1332int resolv_get_ip_from_response(struct resolv_response *r_res,
1333 struct resolv_options *resolv_opts, void *currentip,
1334 short currentip_sin_family,
1335 void **newip, short *newip_sin_family,
1336 void *owner)
1337{
1338 struct resolv_answer_item *record;
1339 int family_priority;
1340 int currentip_found;
1341 unsigned char *newip4, *newip6;
1342 int currentip_sel;
1343 int j;
1344 int score, max_score;
1345 int allowed_duplicated_ip;
1346
1347 family_priority = resolv_opts->family_prio;
1348 allowed_duplicated_ip = resolv_opts->accept_duplicate_ip;
1349 *newip = newip4 = newip6 = NULL;
1350 currentip_found = 0;
1351 *newip_sin_family = AF_UNSPEC;
1352 max_score = -1;
1353
1354 /* Select an IP regarding configuration preference.
1355 * Top priority is the preferred network ip version,
1356 * second priority is the preferred network.
1357 * the last priority is the currently used IP,
1358 *
1359 * For these three priorities, a score is calculated. The
1360 * weight are:
1361 * 8 - preferred ip version.
1362 * 4 - preferred network.
1363 * 2 - if the ip in the record is not affected to any other server in the same backend (duplication)
1364 * 1 - current ip.
1365 * The result with the biggest score is returned.
1366 */
1367
1368 list_for_each_entry(record, &r_res->answer_list, list) {
1369 void *ip;
1370 unsigned char ip_type;
1371
1372 if (record->type == DNS_RTYPE_A) {
1373 ip = &(((struct sockaddr_in *)&record->address)->sin_addr);
1374 ip_type = AF_INET;
1375 }
1376 else if (record->type == DNS_RTYPE_AAAA) {
1377 ip_type = AF_INET6;
1378 ip = &(((struct sockaddr_in6 *)&record->address)->sin6_addr);
1379 }
1380 else
1381 continue;
1382 score = 0;
1383
1384 /* Check for preferred ip protocol. */
1385 if (ip_type == family_priority)
1386 score += 8;
1387
1388 /* Check for preferred network. */
1389 for (j = 0; j < resolv_opts->pref_net_nb; j++) {
1390
1391 /* Compare only the same addresses class. */
1392 if (resolv_opts->pref_net[j].family != ip_type)
1393 continue;
1394
1395 if ((ip_type == AF_INET &&
1396 in_net_ipv4(ip,
1397 &resolv_opts->pref_net[j].mask.in4,
1398 &resolv_opts->pref_net[j].addr.in4)) ||
1399 (ip_type == AF_INET6 &&
1400 in_net_ipv6(ip,
1401 &resolv_opts->pref_net[j].mask.in6,
1402 &resolv_opts->pref_net[j].addr.in6))) {
1403 score += 4;
1404 break;
1405 }
1406 }
1407
1408 /* Check if the IP found in the record is already affected to a
1409 * member of a group. If not, the score should be incremented
1410 * by 2. */
1411 if (owner && snr_check_ip_callback(owner, ip, &ip_type)) {
1412 if (!allowed_duplicated_ip) {
1413 continue;
1414 }
1415 } else {
1416 score += 2;
1417 }
1418
1419 /* Check for current ip matching. */
1420 if (ip_type == currentip_sin_family &&
1421 ((currentip_sin_family == AF_INET &&
1422 !memcmp(ip, currentip, 4)) ||
1423 (currentip_sin_family == AF_INET6 &&
1424 !memcmp(ip, currentip, 16)))) {
1425 score++;
1426 currentip_sel = 1;
1427 }
1428 else
1429 currentip_sel = 0;
1430
1431 /* Keep the address if the score is better than the previous
1432 * score. The maximum score is 15, if this value is reached, we
1433 * break the parsing. Implicitly, this score is reached the ip
1434 * selected is the current ip. */
1435 if (score > max_score) {
1436 if (ip_type == AF_INET)
1437 newip4 = ip;
1438 else
1439 newip6 = ip;
1440 currentip_found = currentip_sel;
1441 if (score == 15)
1442 return RSLV_UPD_NO;
1443 max_score = score;
1444 }
1445 } /* list for each record entries */
1446
1447 /* No IP found in the response */
1448 if (!newip4 && !newip6)
1449 return RSLV_UPD_NO_IP_FOUND;
1450
1451 /* Case when the caller looks first for an IPv4 address */
1452 if (family_priority == AF_INET) {
1453 if (newip4) {
1454 *newip = newip4;
1455 *newip_sin_family = AF_INET;
1456 }
1457 else if (newip6) {
1458 *newip = newip6;
1459 *newip_sin_family = AF_INET6;
1460 }
1461 if (!currentip_found)
1462 goto not_found;
1463 }
1464 /* Case when the caller looks first for an IPv6 address */
1465 else if (family_priority == AF_INET6) {
1466 if (newip6) {
1467 *newip = newip6;
1468 *newip_sin_family = AF_INET6;
1469 }
1470 else if (newip4) {
1471 *newip = newip4;
1472 *newip_sin_family = AF_INET;
1473 }
1474 if (!currentip_found)
1475 goto not_found;
1476 }
1477 /* Case when the caller have no preference (we prefer IPv6) */
1478 else if (family_priority == AF_UNSPEC) {
1479 if (newip6) {
1480 *newip = newip6;
1481 *newip_sin_family = AF_INET6;
1482 }
1483 else if (newip4) {
1484 *newip = newip4;
1485 *newip_sin_family = AF_INET;
1486 }
1487 if (!currentip_found)
1488 goto not_found;
1489 }
1490
1491 /* No reason why we should change the server's IP address */
1492 return RSLV_UPD_NO;
1493
1494 not_found:
1495 list_for_each_entry(record, &r_res->answer_list, list) {
1496 /* Move the first record to the end of the list, for internal
1497 * round robin */
1498 LIST_DEL(&record->list);
1499 LIST_ADDQ(&r_res->answer_list, &record->list);
1500 break;
1501 }
1502 return RSLV_UPD_SRVIP_NOT_FOUND;
1503}
1504
1505/* Turns a domain name label into a string.
1506 *
1507 * <dn> must be a null-terminated string. <dn_len> must include the terminating
1508 * null byte. <str> must be allocated and its size must be passed in <str_len>.
1509 *
1510 * In case of error, -1 is returned, otherwise, the number of bytes copied in
1511 * <str> (including the terminating null byte).
1512 */
1513int resolv_dn_label_to_str(const char *dn, int dn_len, char *str, int str_len)
1514{
1515 char *ptr;
1516 int i, sz;
1517
1518 if (str_len < dn_len - 1)
1519 return -1;
1520
1521 ptr = str;
1522 for (i = 0; i < dn_len-1; ++i) {
1523 sz = dn[i];
1524 if (i)
1525 *ptr++ = '.';
1526 memcpy(ptr, dn+i+1, sz);
1527 ptr += sz;
1528 i += sz;
1529 }
1530 *ptr++ = '\0';
1531 return (ptr - str);
1532}
1533
1534/* Turns a string into domain name label: www.haproxy.org into 3www7haproxy3org
1535 *
1536 * <str> must be a null-terminated string. <str_len> must include the
1537 * terminating null byte. <dn> buffer must be allocated and its size must be
1538 * passed in <dn_len>.
1539 *
1540 * In case of error, -1 is returned, otherwise, the number of bytes copied in
1541 * <dn> (excluding the terminating null byte).
1542 */
1543int resolv_str_to_dn_label(const char *str, int str_len, char *dn, int dn_len)
1544{
1545 int i, offset;
1546
1547 if (dn_len < str_len + 1)
1548 return -1;
1549
1550 /* First byte of dn will be used to store the length of the first
1551 * label */
1552 offset = 0;
1553 for (i = 0; i < str_len; ++i) {
1554 if (str[i] == '.') {
1555 /* 2 or more consecutive dots is invalid */
1556 if (i == offset)
1557 return -1;
1558
1559 /* ignore trailing dot */
1560 if (i + 2 == str_len) {
1561 i++;
1562 break;
1563 }
1564
1565 dn[offset] = (i - offset);
1566 offset = i+1;
1567 continue;
1568 }
1569 dn[i+1] = str[i];
1570 }
1571 dn[offset] = (i - offset - 1);
1572 dn[i] = '\0';
1573 return i;
1574}
1575
1576/* Validates host name:
1577 * - total size
1578 * - each label size individually
1579 * returns:
1580 * 0 in case of error. If <err> is not NULL, an error message is stored there.
1581 * 1 when no error. <err> is left unaffected.
1582 */
1583int resolv_hostname_validation(const char *string, char **err)
1584{
1585 int i;
1586
1587 if (strlen(string) > DNS_MAX_NAME_SIZE) {
1588 if (err)
1589 *err = DNS_TOO_LONG_FQDN;
1590 return 0;
1591 }
1592
1593 while (*string) {
1594 i = 0;
1595 while (*string && *string != '.' && i < DNS_MAX_LABEL_SIZE) {
1596 if (!(*string == '-' || *string == '_' ||
1597 (*string >= 'a' && *string <= 'z') ||
1598 (*string >= 'A' && *string <= 'Z') ||
1599 (*string >= '0' && *string <= '9'))) {
1600 if (err)
1601 *err = DNS_INVALID_CHARACTER;
1602 return 0;
1603 }
1604 i++;
1605 string++;
1606 }
1607
1608 if (!(*string))
1609 break;
1610
1611 if (*string != '.' && i >= DNS_MAX_LABEL_SIZE) {
1612 if (err)
1613 *err = DNS_LABEL_TOO_LONG;
1614 return 0;
1615 }
1616
1617 string++;
1618 }
1619 return 1;
1620}
1621
1622/* Picks up an available resolution from the different resolution list
1623 * associated to a resolvers section, in this order:
1624 * 1. check in resolutions.curr for the same hostname and query_type
1625 * 2. check in resolutions.wait for the same hostname and query_type
1626 * 3. Get a new resolution from resolution pool
1627 *
1628 * Returns an available resolution, NULL if none found.
1629 */
1630static struct resolv_resolution *resolv_pick_resolution(struct resolvers *resolvers,
1631 char **hostname_dn, int hostname_dn_len,
1632 int query_type)
1633{
1634 struct resolv_resolution *res;
1635
1636 if (!*hostname_dn)
1637 goto from_pool;
1638
1639 /* Search for same hostname and query type in resolutions.curr */
1640 list_for_each_entry(res, &resolvers->resolutions.curr, list) {
1641 if (!res->hostname_dn)
1642 continue;
1643 if ((query_type == res->prefered_query_type) &&
1644 hostname_dn_len == res->hostname_dn_len &&
1645 !resolv_hostname_cmp(*hostname_dn, res->hostname_dn, hostname_dn_len))
1646 return res;
1647 }
1648
1649 /* Search for same hostname and query type in resolutions.wait */
1650 list_for_each_entry(res, &resolvers->resolutions.wait, list) {
1651 if (!res->hostname_dn)
1652 continue;
1653 if ((query_type == res->prefered_query_type) &&
1654 hostname_dn_len == res->hostname_dn_len &&
1655 !resolv_hostname_cmp(*hostname_dn, res->hostname_dn, hostname_dn_len))
1656 return res;
1657 }
1658
1659 from_pool:
1660 /* No resolution could be found, so let's allocate a new one */
1661 res = pool_alloc(resolv_resolution_pool);
1662 if (res) {
1663 memset(res, 0, sizeof(*res));
1664 res->resolvers = resolvers;
1665 res->uuid = resolution_uuid;
1666 res->status = RSLV_STATUS_NONE;
1667 res->step = RSLV_STEP_NONE;
1668 res->last_valid = now_ms;
1669
1670 LIST_INIT(&res->requesters);
1671 LIST_INIT(&res->response.answer_list);
1672
1673 res->prefered_query_type = query_type;
1674 res->query_type = query_type;
1675 res->hostname_dn = *hostname_dn;
1676 res->hostname_dn_len = hostname_dn_len;
1677
1678 ++resolution_uuid;
1679
1680 /* Move the resolution to the resolvers wait queue */
1681 LIST_ADDQ(&resolvers->resolutions.wait, &res->list);
1682 }
1683 return res;
1684}
1685
Christopher Faulet1dec5c72021-03-10 14:40:39 +01001686void resolv_purge_resolution_answer_records(struct resolv_resolution *resolution)
1687{
1688 struct resolv_answer_item *item, *itemback;
1689
1690 list_for_each_entry_safe(item, itemback, &resolution->response.answer_list, list) {
1691 LIST_DEL(&item->list);
1692 pool_free(resolv_answer_item_pool, item->ar_item);
1693 pool_free(resolv_answer_item_pool, item);
1694 }
1695}
1696
Emeric Brunc9437992021-02-12 19:42:55 +01001697/* Releases a resolution from its requester(s) and move it back to the pool */
1698static void resolv_free_resolution(struct resolv_resolution *resolution)
1699{
1700 struct resolv_requester *req, *reqback;
Emeric Brunc9437992021-02-12 19:42:55 +01001701
1702 /* clean up configuration */
1703 resolv_reset_resolution(resolution);
1704 resolution->hostname_dn = NULL;
1705 resolution->hostname_dn_len = 0;
1706
1707 list_for_each_entry_safe(req, reqback, &resolution->requesters, list) {
1708 LIST_DEL(&req->list);
1709 req->resolution = NULL;
1710 }
Christopher Faulet1dec5c72021-03-10 14:40:39 +01001711 resolv_purge_resolution_answer_records(resolution);
Emeric Brunc9437992021-02-12 19:42:55 +01001712 LIST_DEL(&resolution->list);
1713 pool_free(resolv_resolution_pool, resolution);
1714}
1715
1716/* Links a requester (a server or a resolv_srvrq) with a resolution. It returns 0
1717 * on success, -1 otherwise.
1718 */
1719int resolv_link_resolution(void *requester, int requester_type, int requester_locked)
1720{
1721 struct resolv_resolution *res = NULL;
1722 struct resolv_requester *req;
1723 struct resolvers *resolvers;
1724 struct server *srv = NULL;
1725 struct resolv_srvrq *srvrq = NULL;
1726 struct stream *stream = NULL;
1727 char **hostname_dn;
1728 int hostname_dn_len, query_type;
1729
1730 switch (requester_type) {
1731 case OBJ_TYPE_SERVER:
1732 srv = (struct server *)requester;
1733 hostname_dn = &srv->hostname_dn;
1734 hostname_dn_len = srv->hostname_dn_len;
1735 resolvers = srv->resolvers;
1736 query_type = ((srv->resolv_opts.family_prio == AF_INET)
1737 ? DNS_RTYPE_A
1738 : DNS_RTYPE_AAAA);
1739 break;
1740
1741 case OBJ_TYPE_SRVRQ:
1742 srvrq = (struct resolv_srvrq *)requester;
1743 hostname_dn = &srvrq->hostname_dn;
1744 hostname_dn_len = srvrq->hostname_dn_len;
1745 resolvers = srvrq->resolvers;
1746 query_type = DNS_RTYPE_SRV;
1747 break;
1748
1749 case OBJ_TYPE_STREAM:
1750 stream = (struct stream *)requester;
1751 hostname_dn = &stream->resolv_ctx.hostname_dn;
1752 hostname_dn_len = stream->resolv_ctx.hostname_dn_len;
1753 resolvers = stream->resolv_ctx.parent->arg.resolv.resolvers;
1754 query_type = ((stream->resolv_ctx.parent->arg.resolv.opts->family_prio == AF_INET)
1755 ? DNS_RTYPE_A
1756 : DNS_RTYPE_AAAA);
1757 break;
1758 default:
1759 goto err;
1760 }
1761
1762 /* Get a resolution from the resolvers' wait queue or pool */
1763 if ((res = resolv_pick_resolution(resolvers, hostname_dn, hostname_dn_len, query_type)) == NULL)
1764 goto err;
1765
1766 if (srv) {
1767 if (!requester_locked)
1768 HA_SPIN_LOCK(SERVER_LOCK, &srv->lock);
1769 if (srv->resolv_requester == NULL) {
1770 if ((req = pool_alloc(resolv_requester_pool)) == NULL) {
1771 if (!requester_locked)
1772 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
1773 goto err;
1774 }
1775 req->owner = &srv->obj_type;
1776 srv->resolv_requester = req;
1777 }
1778 else
1779 req = srv->resolv_requester;
1780 if (!requester_locked)
1781 HA_SPIN_UNLOCK(SERVER_LOCK, &srv->lock);
1782
1783 req->requester_cb = snr_resolution_cb;
1784 req->requester_error_cb = snr_resolution_error_cb;
1785 }
1786 else if (srvrq) {
1787 if (srvrq->requester == NULL) {
1788 if ((req = pool_alloc(resolv_requester_pool)) == NULL)
1789 goto err;
1790 req->owner = &srvrq->obj_type;
1791 srvrq->requester = req;
1792 }
1793 else
1794 req = srvrq->requester;
1795
1796 req->requester_cb = snr_resolution_cb;
Baptiste Assmannb4badf72020-11-19 22:38:33 +01001797 req->requester_error_cb = srvrq_resolution_error_cb;
Emeric Brunc9437992021-02-12 19:42:55 +01001798 }
1799 else if (stream) {
1800 if (stream->resolv_ctx.requester == NULL) {
1801 if ((req = pool_alloc(resolv_requester_pool)) == NULL)
1802 goto err;
1803 req->owner = &stream->obj_type;
1804 stream->resolv_ctx.requester = req;
1805 }
1806 else
1807 req = stream->resolv_ctx.requester;
1808
1809 req->requester_cb = act_resolution_cb;
1810 req->requester_error_cb = act_resolution_error_cb;
1811 }
1812 else
1813 goto err;
1814
1815 req->resolution = res;
1816
1817 LIST_ADDQ(&res->requesters, &req->list);
1818 return 0;
1819
1820 err:
1821 if (res && LIST_ISEMPTY(&res->requesters))
1822 resolv_free_resolution(res);
1823 return -1;
1824}
1825
1826/* Removes a requester from a DNS resolution. It takes takes care of all the
1827 * consequences. It also cleans up some parameters from the requester.
1828 */
1829void resolv_unlink_resolution(struct resolv_requester *requester)
1830{
1831 struct resolv_resolution *res;
1832 struct resolv_requester *req;
1833
1834 /* Nothing to do */
1835 if (!requester || !requester->resolution)
1836 return;
1837 res = requester->resolution;
1838
1839 /* Clean up the requester */
1840 LIST_DEL(&requester->list);
1841 requester->resolution = NULL;
1842
1843 /* We need to find another requester linked on this resolution */
1844 if (!LIST_ISEMPTY(&res->requesters))
1845 req = LIST_NEXT(&res->requesters, struct resolv_requester *, list);
1846 else {
1847 resolv_free_resolution(res);
1848 return;
1849 }
1850
1851 /* Move hostname_dn related pointers to the next requester */
1852 switch (obj_type(req->owner)) {
1853 case OBJ_TYPE_SERVER:
1854 res->hostname_dn = __objt_server(req->owner)->hostname_dn;
1855 res->hostname_dn_len = __objt_server(req->owner)->hostname_dn_len;
1856 break;
1857 case OBJ_TYPE_SRVRQ:
1858 res->hostname_dn = __objt_resolv_srvrq(req->owner)->hostname_dn;
1859 res->hostname_dn_len = __objt_resolv_srvrq(req->owner)->hostname_dn_len;
1860 break;
1861 case OBJ_TYPE_STREAM:
1862 res->hostname_dn = __objt_stream(req->owner)->resolv_ctx.hostname_dn;
1863 res->hostname_dn_len = __objt_stream(req->owner)->resolv_ctx.hostname_dn_len;
1864 break;
1865 default:
1866 res->hostname_dn = NULL;
1867 res->hostname_dn_len = 0;
1868 break;
1869 }
1870}
1871
1872/* Called when a network IO is generated on a name server socket for an incoming
1873 * packet. It performs the following actions:
1874 * - check if the packet requires processing (not outdated resolution)
1875 * - ensure the DNS packet received is valid and call requester's callback
1876 * - call requester's error callback if invalid response
1877 * - check the dn_name in the packet against the one sent
1878 */
1879static int resolv_process_responses(struct dns_nameserver *ns)
1880{
1881 struct dns_counters *tmpcounters;
1882 struct resolvers *resolvers;
1883 struct resolv_resolution *res;
1884 struct resolv_query_item *query;
1885 unsigned char buf[DNS_MAX_UDP_MESSAGE + 1];
1886 unsigned char *bufend;
1887 int buflen, dns_resp;
1888 int max_answer_records;
1889 unsigned short query_id;
1890 struct eb32_node *eb;
1891 struct resolv_requester *req;
1892
1893 resolvers = ns->parent;
1894 HA_SPIN_LOCK(DNS_LOCK, &resolvers->lock);
1895
1896 /* process all pending input messages */
1897 while (1) {
1898 /* read message received */
1899 memset(buf, '\0', resolvers->accepted_payload_size + 1);
1900 if ((buflen = dns_recv_nameserver(ns, (void *)buf, sizeof(buf))) <= 0) {
1901 break;
1902 }
1903
1904 /* message too big */
1905 if (buflen > resolvers->accepted_payload_size) {
1906 ns->counters->too_big++;
1907 continue;
1908 }
1909
1910 /* initializing variables */
1911 bufend = buf + buflen; /* pointer to mark the end of the buffer */
1912
1913 /* read the query id from the packet (16 bits) */
1914 if (buf + 2 > bufend) {
1915 ns->counters->invalid++;
1916 continue;
1917 }
1918 query_id = resolv_response_get_query_id(buf);
1919
1920 /* search the query_id in the pending resolution tree */
1921 eb = eb32_lookup(&resolvers->query_ids, query_id);
1922 if (eb == NULL) {
1923 /* unknown query id means an outdated response and can be safely ignored */
1924 ns->counters->outdated++;
1925 continue;
1926 }
1927
1928 /* known query id means a resolution in progress */
1929 res = eb32_entry(eb, struct resolv_resolution, qid);
1930 /* number of responses received */
1931 res->nb_responses++;
1932
1933 max_answer_records = (resolvers->accepted_payload_size - DNS_HEADER_SIZE) / DNS_MIN_RECORD_SIZE;
1934 dns_resp = resolv_validate_dns_response(buf, bufend, res, max_answer_records);
1935
1936 switch (dns_resp) {
1937 case RSLV_RESP_VALID:
1938 break;
1939
1940 case RSLV_RESP_INVALID:
1941 case RSLV_RESP_QUERY_COUNT_ERROR:
1942 case RSLV_RESP_WRONG_NAME:
1943 res->status = RSLV_STATUS_INVALID;
1944 ns->counters->invalid++;
1945 break;
1946
1947 case RSLV_RESP_NX_DOMAIN:
1948 res->status = RSLV_STATUS_NX;
1949 ns->counters->nx++;
1950 break;
1951
1952 case RSLV_RESP_REFUSED:
1953 res->status = RSLV_STATUS_REFUSED;
1954 ns->counters->refused++;
1955 break;
1956
1957 case RSLV_RESP_ANCOUNT_ZERO:
1958 res->status = RSLV_STATUS_OTHER;
1959 ns->counters->any_err++;
1960 break;
1961
1962 case RSLV_RESP_CNAME_ERROR:
1963 res->status = RSLV_STATUS_OTHER;
1964 ns->counters->cname_error++;
1965 break;
1966
1967 case RSLV_RESP_TRUNCATED:
1968 res->status = RSLV_STATUS_OTHER;
1969 ns->counters->truncated++;
1970 break;
1971
1972 case RSLV_RESP_NO_EXPECTED_RECORD:
1973 case RSLV_RESP_ERROR:
1974 case RSLV_RESP_INTERNAL:
1975 res->status = RSLV_STATUS_OTHER;
1976 ns->counters->other++;
1977 break;
1978 }
1979
1980 /* Wait all nameservers response to handle errors */
1981 if (dns_resp != RSLV_RESP_VALID && res->nb_responses < res->nb_queries)
1982 continue;
1983
1984 /* Process error codes */
1985 if (dns_resp != RSLV_RESP_VALID) {
1986 if (res->prefered_query_type != res->query_type) {
1987 /* The fallback on the query type was already performed,
1988 * so check the try counter. If it falls to 0, we can
1989 * report an error. Else, wait the next attempt. */
1990 if (!res->try)
1991 goto report_res_error;
1992 }
1993 else {
1994 /* Fallback from A to AAAA or the opposite and re-send
1995 * the resolution immediately. try counter is not
1996 * decremented. */
1997 if (res->prefered_query_type == DNS_RTYPE_A) {
1998 res->query_type = DNS_RTYPE_AAAA;
1999 resolv_send_query(res);
2000 }
2001 else if (res->prefered_query_type == DNS_RTYPE_AAAA) {
2002 res->query_type = DNS_RTYPE_A;
2003 resolv_send_query(res);
2004 }
2005 }
2006 continue;
2007 }
2008
2009 /* Now let's check the query's dname corresponds to the one we
2010 * sent. We can check only the first query of the list. We send
2011 * one query at a time so we get one query in the response */
2012 query = LIST_NEXT(&res->response.query_list, struct resolv_query_item *, list);
2013 if (query && resolv_hostname_cmp(query->name, res->hostname_dn, res->hostname_dn_len) != 0) {
2014 dns_resp = RSLV_RESP_WRONG_NAME;
2015 ns->counters->other++;
2016 goto report_res_error;
2017 }
2018
2019 /* So the resolution succeeded */
2020 res->status = RSLV_STATUS_VALID;
2021 res->last_valid = now_ms;
2022 ns->counters->valid++;
2023 goto report_res_success;
2024
2025 report_res_error:
2026 list_for_each_entry(req, &res->requesters, list)
2027 req->requester_error_cb(req, dns_resp);
2028 resolv_reset_resolution(res);
2029 LIST_DEL(&res->list);
2030 LIST_ADDQ(&resolvers->resolutions.wait, &res->list);
2031 continue;
2032
2033 report_res_success:
2034 /* Only the 1rst requester s managed by the server, others are
2035 * from the cache */
2036 tmpcounters = ns->counters;
2037 list_for_each_entry(req, &res->requesters, list) {
2038 struct server *s = objt_server(req->owner);
2039
2040 if (s)
2041 HA_SPIN_LOCK(SERVER_LOCK, &s->lock);
2042 req->requester_cb(req, tmpcounters);
2043 if (s)
2044 HA_SPIN_UNLOCK(SERVER_LOCK, &s->lock);
2045 tmpcounters = NULL;
2046 }
2047
2048 resolv_reset_resolution(res);
2049 LIST_DEL(&res->list);
2050 LIST_ADDQ(&resolvers->resolutions.wait, &res->list);
2051 continue;
2052 }
2053 resolv_update_resolvers_timeout(resolvers);
2054 HA_SPIN_UNLOCK(DNS_LOCK, &resolvers->lock);
2055
2056 return buflen;
2057}
2058
2059/* Processes DNS resolution. First, it checks the active list to detect expired
2060 * resolutions and retry them if possible. Else a timeout is reported. Then, it
2061 * checks the wait list to trigger new resolutions.
2062 */
Willy Tarreau144f84a2021-03-02 16:09:26 +01002063static struct task *process_resolvers(struct task *t, void *context, unsigned int state)
Emeric Brunc9437992021-02-12 19:42:55 +01002064{
2065 struct resolvers *resolvers = context;
2066 struct resolv_resolution *res, *resback;
2067 int exp;
2068
2069 HA_SPIN_LOCK(DNS_LOCK, &resolvers->lock);
2070
2071 /* Handle all expired resolutions from the active list */
2072 list_for_each_entry_safe(res, resback, &resolvers->resolutions.curr, list) {
2073 /* When we find the first resolution in the future, then we can
2074 * stop here */
2075 exp = tick_add(res->last_query, resolvers->timeout.retry);
2076 if (!tick_is_expired(exp, now_ms))
2077 break;
2078
2079 /* If current resolution has been tried too many times and
2080 * finishes in timeout we update its status and remove it from
2081 * the list */
2082 if (!res->try) {
2083 struct resolv_requester *req;
2084
2085 /* Notify the result to the requesters */
2086 if (!res->nb_responses)
2087 res->status = RSLV_STATUS_TIMEOUT;
2088 list_for_each_entry(req, &res->requesters, list)
2089 req->requester_error_cb(req, res->status);
2090
2091 /* Clean up resolution info and remove it from the
2092 * current list */
2093 resolv_reset_resolution(res);
2094 LIST_DEL(&res->list);
2095 LIST_ADDQ(&resolvers->resolutions.wait, &res->list);
2096 }
2097 else {
2098 /* Otherwise resend the DNS query and requeue the resolution */
2099 if (!res->nb_responses || res->prefered_query_type != res->query_type) {
2100 /* No response received (a real timeout) or fallback already done */
2101 res->query_type = res->prefered_query_type;
2102 res->try--;
2103 }
2104 else {
2105 /* Fallback from A to AAAA or the opposite and re-send
2106 * the resolution immediately. try counter is not
2107 * decremented. */
2108 if (res->prefered_query_type == DNS_RTYPE_A)
2109 res->query_type = DNS_RTYPE_AAAA;
2110 else if (res->prefered_query_type == DNS_RTYPE_AAAA)
2111 res->query_type = DNS_RTYPE_A;
2112 else
2113 res->try--;
2114 }
2115 resolv_send_query(res);
2116 }
2117 }
2118
2119 /* Handle all resolutions in the wait list */
2120 list_for_each_entry_safe(res, resback, &resolvers->resolutions.wait, list) {
2121 exp = tick_add(res->last_resolution, resolv_resolution_timeout(res));
2122 if (tick_isset(res->last_resolution) && !tick_is_expired(exp, now_ms))
2123 continue;
2124
2125 if (resolv_run_resolution(res) != 1) {
2126 res->last_resolution = now_ms;
2127 LIST_DEL(&res->list);
2128 LIST_ADDQ(&resolvers->resolutions.wait, &res->list);
2129 }
2130 }
2131
2132 resolv_update_resolvers_timeout(resolvers);
2133 HA_SPIN_UNLOCK(DNS_LOCK, &resolvers->lock);
2134 return t;
2135}
2136
2137/* Release memory allocated by DNS */
2138static void resolvers_deinit(void)
2139{
2140 struct resolvers *resolvers, *resolversback;
2141 struct dns_nameserver *ns, *nsback;
2142 struct resolv_resolution *res, *resback;
2143 struct resolv_requester *req, *reqback;
2144 struct resolv_srvrq *srvrq, *srvrqback;
2145
2146 list_for_each_entry_safe(resolvers, resolversback, &sec_resolvers, list) {
2147 list_for_each_entry_safe(ns, nsback, &resolvers->nameservers, list) {
2148 free(ns->id);
2149 free((char *)ns->conf.file);
2150 if (ns->dgram) {
2151 if (ns->dgram->conn.t.sock.fd != -1) {
2152 fd_delete(ns->dgram->conn.t.sock.fd);
2153 close(ns->dgram->conn.t.sock.fd);
2154 }
2155 if (ns->dgram->ring_req)
2156 ring_free(ns->dgram->ring_req);
2157 free(ns->dgram);
2158 }
Emeric Brun56fc5d92021-02-12 20:05:45 +01002159 if (ns->stream) {
2160 if (ns->stream->ring_req)
2161 ring_free(ns->stream->ring_req);
2162 if (ns->stream->task_req)
2163 task_destroy(ns->stream->task_req);
2164 if (ns->stream->task_rsp)
2165 task_destroy(ns->stream->task_rsp);
2166 free(ns->stream);
2167 }
Emeric Brunc9437992021-02-12 19:42:55 +01002168 LIST_DEL(&ns->list);
2169 EXTRA_COUNTERS_FREE(ns->extra_counters);
2170 free(ns);
2171 }
2172
2173 list_for_each_entry_safe(res, resback, &resolvers->resolutions.curr, list) {
2174 list_for_each_entry_safe(req, reqback, &res->requesters, list) {
2175 LIST_DEL(&req->list);
2176 pool_free(resolv_requester_pool, req);
2177 }
2178 resolv_free_resolution(res);
2179 }
2180
2181 list_for_each_entry_safe(res, resback, &resolvers->resolutions.wait, list) {
2182 list_for_each_entry_safe(req, reqback, &res->requesters, list) {
2183 LIST_DEL(&req->list);
2184 pool_free(resolv_requester_pool, req);
2185 }
2186 resolv_free_resolution(res);
2187 }
2188
2189 free(resolvers->id);
2190 free((char *)resolvers->conf.file);
2191 task_destroy(resolvers->t);
2192 LIST_DEL(&resolvers->list);
2193 free(resolvers);
2194 }
2195
2196 list_for_each_entry_safe(srvrq, srvrqback, &resolv_srvrq_list, list) {
2197 free(srvrq->name);
2198 free(srvrq->hostname_dn);
2199 LIST_DEL(&srvrq->list);
2200 free(srvrq);
2201 }
2202}
2203
2204/* Finalizes the DNS configuration by allocating required resources and checking
2205 * live parameters.
2206 * Returns 0 on success, ERR_* flags otherwise.
2207 */
2208static int resolvers_finalize_config(void)
2209{
2210 struct resolvers *resolvers;
2211 struct proxy *px;
2212 int err_code = 0;
2213
2214 /* allocate pool of resolution per resolvers */
2215 list_for_each_entry(resolvers, &sec_resolvers, list) {
2216 struct dns_nameserver *ns;
2217 struct task *t;
2218
2219 /* Check if we can create the socket with nameservers info */
2220 list_for_each_entry(ns, &resolvers->nameservers, list) {
2221 int fd;
2222
2223 if (ns->dgram) {
2224 /* Check nameserver info */
2225 if ((fd = socket(ns->dgram->conn.addr.to.ss_family, SOCK_DGRAM, IPPROTO_UDP)) == -1) {
2226 ha_alert("config : resolvers '%s': can't create socket for nameserver '%s'.\n",
2227 resolvers->id, ns->id);
2228 err_code |= (ERR_ALERT|ERR_ABORT);
2229 continue;
2230 }
2231 if (connect(fd, (struct sockaddr*)&ns->dgram->conn.addr.to, get_addr_len(&ns->dgram->conn.addr.to)) == -1) {
2232 ha_alert("config : resolvers '%s': can't connect socket for nameserver '%s'.\n",
2233 resolvers->id, ns->id);
2234 close(fd);
2235 err_code |= (ERR_ALERT|ERR_ABORT);
2236 continue;
2237 }
2238 close(fd);
2239 }
2240 }
2241
2242 /* Create the task associated to the resolvers section */
2243 if ((t = task_new(MAX_THREADS_MASK)) == NULL) {
2244 ha_alert("config : resolvers '%s' : out of memory.\n", resolvers->id);
2245 err_code |= (ERR_ALERT|ERR_ABORT);
2246 goto err;
2247 }
2248
2249 /* Update task's parameters */
2250 t->process = process_resolvers;
2251 t->context = resolvers;
2252 resolvers->t = t;
2253 task_wakeup(t, TASK_WOKEN_INIT);
2254 }
2255
2256 for (px = proxies_list; px; px = px->next) {
2257 struct server *srv;
2258
2259 for (srv = px->srv; srv; srv = srv->next) {
2260 struct resolvers *resolvers;
2261
2262 if (!srv->resolvers_id)
2263 continue;
2264
2265 if ((resolvers = find_resolvers_by_id(srv->resolvers_id)) == NULL) {
2266 ha_alert("config : %s '%s', server '%s': unable to find required resolvers '%s'\n",
2267 proxy_type_str(px), px->id, srv->id, srv->resolvers_id);
2268 err_code |= (ERR_ALERT|ERR_ABORT);
2269 continue;
2270 }
2271 srv->resolvers = resolvers;
2272
2273 if (srv->srvrq && !srv->srvrq->resolvers) {
2274 srv->srvrq->resolvers = srv->resolvers;
2275 if (resolv_link_resolution(srv->srvrq, OBJ_TYPE_SRVRQ, 0) == -1) {
2276 ha_alert("config : %s '%s' : unable to set DNS resolution for server '%s'.\n",
2277 proxy_type_str(px), px->id, srv->id);
2278 err_code |= (ERR_ALERT|ERR_ABORT);
2279 continue;
2280 }
2281 }
2282 if (resolv_link_resolution(srv, OBJ_TYPE_SERVER, 0) == -1) {
2283 ha_alert("config : %s '%s', unable to set DNS resolution for server '%s'.\n",
2284 proxy_type_str(px), px->id, srv->id);
2285 err_code |= (ERR_ALERT|ERR_ABORT);
2286 continue;
2287 }
2288 }
2289 }
2290
2291 if (err_code & (ERR_ALERT|ERR_ABORT))
2292 goto err;
2293
2294 return err_code;
2295 err:
2296 resolvers_deinit();
2297 return err_code;
2298
2299}
2300
2301static int stats_dump_resolv_to_buffer(struct stream_interface *si,
2302 struct dns_nameserver *ns,
2303 struct field *stats, size_t stats_count,
2304 struct list *stat_modules)
2305{
2306 struct appctx *appctx = __objt_appctx(si->end);
2307 struct channel *rep = si_ic(si);
2308 struct stats_module *mod;
2309 size_t idx = 0;
2310
2311 memset(stats, 0, sizeof(struct field) * stats_count);
2312
2313 list_for_each_entry(mod, stat_modules, list) {
2314 struct counters_node *counters = EXTRA_COUNTERS_GET(ns->extra_counters, mod);
2315
2316 mod->fill_stats(counters, stats + idx);
2317 idx += mod->stats_count;
2318 }
2319
2320 if (!stats_dump_one_line(stats, idx, appctx))
2321 return 0;
2322
2323 if (!stats_putchk(rep, NULL, &trash))
2324 goto full;
2325
2326 return 1;
2327
2328 full:
2329 si_rx_room_rdy(si);
2330 return 0;
2331}
2332
2333/* Uses <appctx.ctx.stats.obj1> as a pointer to the current resolver and <obj2>
2334 * as a pointer to the current nameserver.
2335 */
2336int stats_dump_resolvers(struct stream_interface *si,
2337 struct field *stats, size_t stats_count,
2338 struct list *stat_modules)
2339{
2340 struct appctx *appctx = __objt_appctx(si->end);
2341 struct channel *rep = si_ic(si);
2342 struct resolvers *resolver = appctx->ctx.stats.obj1;
2343 struct dns_nameserver *ns = appctx->ctx.stats.obj2;
2344
2345 if (!resolver)
2346 resolver = LIST_NEXT(&sec_resolvers, struct resolvers *, list);
2347
2348 /* dump resolvers */
2349 list_for_each_entry_from(resolver, &sec_resolvers, list) {
2350 appctx->ctx.stats.obj1 = resolver;
2351
2352 ns = appctx->ctx.stats.obj2 ?
2353 appctx->ctx.stats.obj2 :
2354 LIST_NEXT(&resolver->nameservers, struct dns_nameserver *, list);
2355
2356 list_for_each_entry_from(ns, &resolver->nameservers, list) {
2357 appctx->ctx.stats.obj2 = ns;
2358
2359 if (buffer_almost_full(&rep->buf))
2360 goto full;
2361
2362 if (!stats_dump_resolv_to_buffer(si, ns,
2363 stats, stats_count,
2364 stat_modules)) {
2365 return 0;
2366 }
2367 }
2368
2369 appctx->ctx.stats.obj2 = NULL;
2370 }
2371
2372 return 1;
2373
2374 full:
2375 si_rx_room_blk(si);
2376 return 0;
2377}
2378
2379void resolv_stats_clear_counters(int clrall, struct list *stat_modules)
2380{
2381 struct resolvers *resolvers;
2382 struct dns_nameserver *ns;
2383 struct stats_module *mod;
2384 void *counters;
2385
2386 list_for_each_entry(mod, stat_modules, list) {
2387 if (!mod->clearable && !clrall)
2388 continue;
2389
2390 list_for_each_entry(resolvers, &sec_resolvers, list) {
2391 list_for_each_entry(ns, &resolvers->nameservers, list) {
2392 counters = EXTRA_COUNTERS_GET(ns->extra_counters, mod);
2393 memcpy(counters, mod->counters, mod->counters_size);
2394 }
2395 }
2396 }
2397
2398}
2399
2400int resolv_allocate_counters(struct list *stat_modules)
2401{
2402 struct stats_module *mod;
2403 struct resolvers *resolvers;
2404 struct dns_nameserver *ns;
2405
2406 list_for_each_entry(resolvers, &sec_resolvers, list) {
2407 list_for_each_entry(ns, &resolvers->nameservers, list) {
2408 EXTRA_COUNTERS_REGISTER(&ns->extra_counters, COUNTERS_DNS,
2409 alloc_failed);
2410
2411 list_for_each_entry(mod, stat_modules, list) {
2412 EXTRA_COUNTERS_ADD(mod,
2413 ns->extra_counters,
2414 mod->counters,
2415 mod->counters_size);
2416 }
2417
2418 EXTRA_COUNTERS_ALLOC(ns->extra_counters, alloc_failed);
2419
2420 list_for_each_entry(mod, stat_modules, list) {
2421 memcpy(ns->extra_counters->data + mod->counters_off[ns->extra_counters->type],
2422 mod->counters, mod->counters_size);
2423
2424 /* Store the ns counters pointer */
2425 if (strcmp(mod->name, "dns") == 0) {
2426 ns->counters = (struct dns_counters *)ns->extra_counters->data + mod->counters_off[COUNTERS_DNS];
2427 ns->counters->id = ns->id;
2428 ns->counters->pid = resolvers->id;
2429 }
2430 }
2431 }
2432 }
2433
2434 return 1;
2435
2436alloc_failed:
2437 return 0;
2438}
2439
2440/* if an arg is found, it sets the resolvers section pointer into cli.p0 */
2441static int cli_parse_stat_resolvers(char **args, char *payload, struct appctx *appctx, void *private)
2442{
2443 struct resolvers *presolvers;
2444
2445 if (*args[2]) {
2446 list_for_each_entry(presolvers, &sec_resolvers, list) {
2447 if (strcmp(presolvers->id, args[2]) == 0) {
2448 appctx->ctx.cli.p0 = presolvers;
2449 break;
2450 }
2451 }
2452 if (appctx->ctx.cli.p0 == NULL)
2453 return cli_err(appctx, "Can't find that resolvers section\n");
2454 }
2455 return 0;
2456}
2457
2458/* Dumps counters from all resolvers section and associated name servers. It
2459 * returns 0 if the output buffer is full and it needs to be called again,
2460 * otherwise non-zero. It may limit itself to the resolver pointed to by
2461 * <cli.p0> if it's not null.
2462 */
2463static int cli_io_handler_dump_resolvers_to_buffer(struct appctx *appctx)
2464{
2465 struct stream_interface *si = appctx->owner;
2466 struct resolvers *resolvers;
2467 struct dns_nameserver *ns;
2468
2469 chunk_reset(&trash);
2470
2471 switch (appctx->st2) {
2472 case STAT_ST_INIT:
2473 appctx->st2 = STAT_ST_LIST; /* let's start producing data */
2474 /* fall through */
2475
2476 case STAT_ST_LIST:
2477 if (LIST_ISEMPTY(&sec_resolvers)) {
2478 chunk_appendf(&trash, "No resolvers found\n");
2479 }
2480 else {
2481 list_for_each_entry(resolvers, &sec_resolvers, list) {
2482 if (appctx->ctx.cli.p0 != NULL && appctx->ctx.cli.p0 != resolvers)
2483 continue;
2484
2485 chunk_appendf(&trash, "Resolvers section %s\n", resolvers->id);
2486 list_for_each_entry(ns, &resolvers->nameservers, list) {
2487 chunk_appendf(&trash, " nameserver %s:\n", ns->id);
2488 chunk_appendf(&trash, " sent: %lld\n", ns->counters->sent);
2489 chunk_appendf(&trash, " snd_error: %lld\n", ns->counters->snd_error);
2490 chunk_appendf(&trash, " valid: %lld\n", ns->counters->valid);
2491 chunk_appendf(&trash, " update: %lld\n", ns->counters->update);
2492 chunk_appendf(&trash, " cname: %lld\n", ns->counters->cname);
2493 chunk_appendf(&trash, " cname_error: %lld\n", ns->counters->cname_error);
2494 chunk_appendf(&trash, " any_err: %lld\n", ns->counters->any_err);
2495 chunk_appendf(&trash, " nx: %lld\n", ns->counters->nx);
2496 chunk_appendf(&trash, " timeout: %lld\n", ns->counters->timeout);
2497 chunk_appendf(&trash, " refused: %lld\n", ns->counters->refused);
2498 chunk_appendf(&trash, " other: %lld\n", ns->counters->other);
2499 chunk_appendf(&trash, " invalid: %lld\n", ns->counters->invalid);
2500 chunk_appendf(&trash, " too_big: %lld\n", ns->counters->too_big);
2501 chunk_appendf(&trash, " truncated: %lld\n", ns->counters->truncated);
2502 chunk_appendf(&trash, " outdated: %lld\n", ns->counters->outdated);
2503 }
2504 chunk_appendf(&trash, "\n");
2505 }
2506 }
2507
2508 /* display response */
2509 if (ci_putchk(si_ic(si), &trash) == -1) {
2510 /* let's try again later from this session. We add ourselves into
2511 * this session's users so that it can remove us upon termination.
2512 */
2513 si_rx_room_blk(si);
2514 return 0;
2515 }
2516 /* fall through */
2517
2518 default:
2519 appctx->st2 = STAT_ST_FIN;
2520 return 1;
2521 }
2522}
2523
2524/* register cli keywords */
2525static struct cli_kw_list cli_kws = {{ }, {
2526 { { "show", "resolvers", NULL }, "show resolvers [id]: dumps counters from all resolvers section and\n"
2527 " associated name servers",
2528 cli_parse_stat_resolvers, cli_io_handler_dump_resolvers_to_buffer },
2529 {{},}
2530 }
2531};
2532
2533INITCALL1(STG_REGISTER, cli_register_kw, &cli_kws);
2534
2535/*
2536 * Prepare <rule> for hostname resolution.
2537 * Returns -1 in case of any allocation failure, 0 if not.
2538 * On error, a global failure counter is also incremented.
2539 */
2540static int action_prepare_for_resolution(struct stream *stream, const char *hostname)
2541{
2542 char *hostname_dn;
2543 int hostname_len, hostname_dn_len;
2544 struct buffer *tmp = get_trash_chunk();
2545
2546 if (!hostname)
2547 return 0;
2548
2549 hostname_len = strlen(hostname);
2550 hostname_dn = tmp->area;
2551 hostname_dn_len = resolv_str_to_dn_label(hostname, hostname_len + 1,
2552 hostname_dn, tmp->size);
2553 if (hostname_dn_len == -1)
2554 goto err;
2555
2556
2557 stream->resolv_ctx.hostname_dn = strdup(hostname_dn);
2558 stream->resolv_ctx.hostname_dn_len = hostname_dn_len;
2559 if (!stream->resolv_ctx.hostname_dn)
2560 goto err;
2561
2562 return 0;
2563
2564 err:
Willy Tarreau61cfdf42021-02-20 10:46:51 +01002565 ha_free(&stream->resolv_ctx.hostname_dn);
Emeric Brunc9437992021-02-12 19:42:55 +01002566 resolv_failed_resolutions += 1;
2567 return -1;
2568}
2569
2570
2571/*
2572 * Execute the "do-resolution" action. May be called from {tcp,http}request.
2573 */
2574enum act_return resolv_action_do_resolve(struct act_rule *rule, struct proxy *px,
2575 struct session *sess, struct stream *s, int flags)
2576{
2577 struct resolv_resolution *resolution;
2578 struct sample *smp;
2579 char *fqdn;
2580 struct resolv_requester *req;
2581 struct resolvers *resolvers;
2582 struct resolv_resolution *res;
2583 int exp, locked = 0;
2584 enum act_return ret = ACT_RET_CONT;
2585
2586 resolvers = rule->arg.resolv.resolvers;
2587
2588 /* we have a response to our DNS resolution */
2589 use_cache:
2590 if (s->resolv_ctx.requester && s->resolv_ctx.requester->resolution != NULL) {
2591 resolution = s->resolv_ctx.requester->resolution;
2592 if (!locked) {
2593 HA_SPIN_LOCK(DNS_LOCK, &resolvers->lock);
2594 locked = 1;
2595 }
2596
2597 if (resolution->step == RSLV_STEP_RUNNING)
2598 goto yield;
2599 if (resolution->step == RSLV_STEP_NONE) {
2600 /* We update the variable only if we have a valid response. */
2601 if (resolution->status == RSLV_STATUS_VALID) {
2602 struct sample smp;
2603 short ip_sin_family = 0;
2604 void *ip = NULL;
2605
2606 resolv_get_ip_from_response(&resolution->response, rule->arg.resolv.opts, NULL,
2607 0, &ip, &ip_sin_family, NULL);
2608
2609 switch (ip_sin_family) {
2610 case AF_INET:
2611 smp.data.type = SMP_T_IPV4;
2612 memcpy(&smp.data.u.ipv4, ip, 4);
2613 break;
2614 case AF_INET6:
2615 smp.data.type = SMP_T_IPV6;
2616 memcpy(&smp.data.u.ipv6, ip, 16);
2617 break;
2618 default:
2619 ip = NULL;
2620 }
2621
2622 if (ip) {
2623 smp.px = px;
2624 smp.sess = sess;
2625 smp.strm = s;
2626
2627 vars_set_by_name(rule->arg.resolv.varname, strlen(rule->arg.resolv.varname), &smp);
2628 }
2629 }
2630 }
2631
2632 goto release_requester;
2633 }
2634
2635 /* need to configure and start a new DNS resolution */
2636 smp = sample_fetch_as_type(px, sess, s, SMP_OPT_DIR_REQ|SMP_OPT_FINAL, rule->arg.resolv.expr, SMP_T_STR);
2637 if (smp == NULL)
2638 goto end;
2639
2640 fqdn = smp->data.u.str.area;
2641 if (action_prepare_for_resolution(s, fqdn) == -1)
2642 goto end; /* on error, ignore the action */
2643
2644 s->resolv_ctx.parent = rule;
2645
2646 HA_SPIN_LOCK(DNS_LOCK, &resolvers->lock);
2647 locked = 1;
2648
2649 resolv_link_resolution(s, OBJ_TYPE_STREAM, 0);
2650
2651 /* Check if there is a fresh enough response in the cache of our associated resolution */
2652 req = s->resolv_ctx.requester;
2653 if (!req || !req->resolution)
2654 goto release_requester; /* on error, ignore the action */
2655 res = req->resolution;
2656
2657 exp = tick_add(res->last_resolution, resolvers->hold.valid);
2658 if (resolvers->t && res->status == RSLV_STATUS_VALID && tick_isset(res->last_resolution)
2659 && !tick_is_expired(exp, now_ms)) {
2660 goto use_cache;
2661 }
2662
2663 resolv_trigger_resolution(s->resolv_ctx.requester);
2664
2665 yield:
2666 if (flags & ACT_OPT_FINAL)
2667 goto release_requester;
2668 ret = ACT_RET_YIELD;
2669
2670 end:
2671 if (locked)
2672 HA_SPIN_UNLOCK(DNS_LOCK, &resolvers->lock);
2673 return ret;
2674
2675 release_requester:
Willy Tarreau61cfdf42021-02-20 10:46:51 +01002676 ha_free(&s->resolv_ctx.hostname_dn);
Emeric Brunc9437992021-02-12 19:42:55 +01002677 s->resolv_ctx.hostname_dn_len = 0;
2678 if (s->resolv_ctx.requester) {
2679 resolv_unlink_resolution(s->resolv_ctx.requester);
2680 pool_free(resolv_requester_pool, s->resolv_ctx.requester);
2681 s->resolv_ctx.requester = NULL;
2682 }
2683 goto end;
2684}
2685
2686static void release_resolv_action(struct act_rule *rule)
2687{
2688 release_sample_expr(rule->arg.resolv.expr);
2689 free(rule->arg.resolv.varname);
2690 free(rule->arg.resolv.resolvers_id);
2691 free(rule->arg.resolv.opts);
2692}
2693
2694
2695/* parse "do-resolve" action
2696 * This action takes the following arguments:
2697 * do-resolve(<varName>,<resolversSectionName>,<resolvePrefer>) <expr>
2698 *
2699 * - <varName> is the variable name where the result of the DNS resolution will be stored
2700 * (mandatory)
2701 * - <resolversSectionName> is the name of the resolvers section to use to perform the resolution
2702 * (mandatory)
2703 * - <resolvePrefer> can be either 'ipv4' or 'ipv6' and is the IP family we would like to resolve first
2704 * (optional), defaults to ipv6
2705 * - <expr> is an HAProxy expression used to fetch the name to be resolved
2706 */
2707enum act_parse_ret resolv_parse_do_resolve(const char **args, int *orig_arg, struct proxy *px, struct act_rule *rule, char **err)
2708{
2709 int cur_arg;
2710 struct sample_expr *expr;
2711 unsigned int where;
2712 const char *beg, *end;
2713
2714 /* orig_arg points to the first argument, but we need to analyse the command itself first */
2715 cur_arg = *orig_arg - 1;
2716
2717 /* locate varName, which is mandatory */
2718 beg = strchr(args[cur_arg], '(');
2719 if (beg == NULL)
2720 goto do_resolve_parse_error;
2721 beg = beg + 1; /* beg should points to the first character after opening parenthesis '(' */
2722 end = strchr(beg, ',');
2723 if (end == NULL)
2724 goto do_resolve_parse_error;
2725 rule->arg.resolv.varname = my_strndup(beg, end - beg);
2726 if (rule->arg.resolv.varname == NULL)
2727 goto do_resolve_parse_error;
2728
2729
2730 /* locate resolversSectionName, which is mandatory.
2731 * Since next parameters are optional, the delimiter may be comma ','
2732 * or closing parenthesis ')'
2733 */
2734 beg = end + 1;
2735 end = strchr(beg, ',');
2736 if (end == NULL)
2737 end = strchr(beg, ')');
2738 if (end == NULL)
2739 goto do_resolve_parse_error;
2740 rule->arg.resolv.resolvers_id = my_strndup(beg, end - beg);
2741 if (rule->arg.resolv.resolvers_id == NULL)
2742 goto do_resolve_parse_error;
2743
2744
2745 rule->arg.resolv.opts = calloc(1, sizeof(*rule->arg.resolv.opts));
2746 if (rule->arg.resolv.opts == NULL)
2747 goto do_resolve_parse_error;
2748
2749 /* Default priority is ipv6 */
2750 rule->arg.resolv.opts->family_prio = AF_INET6;
2751
2752 /* optional arguments accepted for now:
2753 * ipv4 or ipv6
2754 */
2755 while (*end != ')') {
2756 beg = end + 1;
2757 end = strchr(beg, ',');
2758 if (end == NULL)
2759 end = strchr(beg, ')');
2760 if (end == NULL)
2761 goto do_resolve_parse_error;
2762
2763 if (strncmp(beg, "ipv4", end - beg) == 0) {
2764 rule->arg.resolv.opts->family_prio = AF_INET;
2765 }
2766 else if (strncmp(beg, "ipv6", end - beg) == 0) {
2767 rule->arg.resolv.opts->family_prio = AF_INET6;
2768 }
2769 else {
2770 goto do_resolve_parse_error;
2771 }
2772 }
2773
2774 cur_arg = cur_arg + 1;
2775
2776 expr = sample_parse_expr((char **)args, &cur_arg, px->conf.args.file, px->conf.args.line, err, &px->conf.args, NULL);
2777 if (!expr)
2778 goto do_resolve_parse_error;
2779
2780
2781 where = 0;
2782 if (px->cap & PR_CAP_FE)
2783 where |= SMP_VAL_FE_HRQ_HDR;
2784 if (px->cap & PR_CAP_BE)
2785 where |= SMP_VAL_BE_HRQ_HDR;
2786
2787 if (!(expr->fetch->val & where)) {
2788 memprintf(err,
2789 "fetch method '%s' extracts information from '%s', none of which is available here",
2790 args[cur_arg-1], sample_src_names(expr->fetch->use));
2791 free(expr);
2792 return ACT_RET_PRS_ERR;
2793 }
2794 rule->arg.resolv.expr = expr;
2795 rule->action = ACT_CUSTOM;
2796 rule->action_ptr = resolv_action_do_resolve;
2797 *orig_arg = cur_arg;
2798
2799 rule->check_ptr = check_action_do_resolve;
2800 rule->release_ptr = release_resolv_action;
2801
2802 return ACT_RET_PRS_OK;
2803
2804 do_resolve_parse_error:
Willy Tarreau61cfdf42021-02-20 10:46:51 +01002805 ha_free(&rule->arg.resolv.varname);
2806 ha_free(&rule->arg.resolv.resolvers_id);
Emeric Brunc9437992021-02-12 19:42:55 +01002807 memprintf(err, "Can't parse '%s'. Expects 'do-resolve(<varname>,<resolvers>[,<options>]) <expr>'. Available options are 'ipv4' and 'ipv6'",
2808 args[cur_arg]);
2809 return ACT_RET_PRS_ERR;
2810}
2811
2812static struct action_kw_list http_req_kws = { { }, {
2813 { "do-resolve", resolv_parse_do_resolve, 1 },
2814 { /* END */ }
2815}};
2816
2817INITCALL1(STG_REGISTER, http_req_keywords_register, &http_req_kws);
2818
2819static struct action_kw_list tcp_req_cont_actions = {ILH, {
2820 { "do-resolve", resolv_parse_do_resolve, 1 },
2821 { /* END */ }
2822}};
2823
2824INITCALL1(STG_REGISTER, tcp_req_cont_keywords_register, &tcp_req_cont_actions);
2825
2826/* Check an "http-request do-resolve" action.
2827 *
2828 * The function returns 1 in success case, otherwise, it returns 0 and err is
2829 * filled.
2830 */
2831int check_action_do_resolve(struct act_rule *rule, struct proxy *px, char **err)
2832{
2833 struct resolvers *resolvers = NULL;
2834
2835 if (rule->arg.resolv.resolvers_id == NULL) {
2836 memprintf(err,"Proxy '%s': %s", px->id, "do-resolve action without resolvers");
2837 return 0;
2838 }
2839
2840 resolvers = find_resolvers_by_id(rule->arg.resolv.resolvers_id);
2841 if (resolvers == NULL) {
2842 memprintf(err,"Can't find resolvers section '%s' for do-resolve action", rule->arg.resolv.resolvers_id);
2843 return 0;
2844 }
2845 rule->arg.resolv.resolvers = resolvers;
2846
2847 return 1;
2848}
2849
2850void resolvers_setup_proxy(struct proxy *px)
2851{
2852 px->last_change = now.tv_sec;
2853 px->cap = PR_CAP_FE | PR_CAP_BE;
2854 px->maxconn = 0;
2855 px->conn_retries = 1;
2856 px->timeout.server = TICK_ETERNITY;
2857 px->timeout.client = TICK_ETERNITY;
2858 px->timeout.connect = TICK_ETERNITY;
2859 px->accept = NULL;
2860 px->options2 |= PR_O2_INDEPSTR | PR_O2_SMARTCON;
2861 px->bind_proc = 0; /* will be filled by users */
2862}
2863
2864/*
2865 * Parse a <resolvers> section.
2866 * Returns the error code, 0 if OK, or any combination of :
2867 * - ERR_ABORT: must abort ASAP
2868 * - ERR_FATAL: we can continue parsing but not start the service
2869 * - ERR_WARN: a warning has been emitted
2870 * - ERR_ALERT: an alert has been emitted
2871 * Only the two first ones can stop processing, the two others are just
2872 * indicators.
2873 */
2874int cfg_parse_resolvers(const char *file, int linenum, char **args, int kwm)
2875{
2876 const char *err;
2877 int err_code = 0;
2878 char *errmsg = NULL;
2879 struct proxy *p;
2880
2881 if (strcmp(args[0], "resolvers") == 0) { /* new resolvers section */
2882 if (!*args[1]) {
2883 ha_alert("parsing [%s:%d] : missing name for resolvers section.\n", file, linenum);
2884 err_code |= ERR_ALERT | ERR_ABORT;
2885 goto out;
2886 }
2887
2888 err = invalid_char(args[1]);
2889 if (err) {
2890 ha_alert("parsing [%s:%d] : character '%c' is not permitted in '%s' name '%s'.\n",
2891 file, linenum, *err, args[0], args[1]);
2892 err_code |= ERR_ALERT | ERR_ABORT;
2893 goto out;
2894 }
2895
2896 list_for_each_entry(curr_resolvers, &sec_resolvers, list) {
2897 /* Error if two resolvers owns the same name */
2898 if (strcmp(curr_resolvers->id, args[1]) == 0) {
2899 ha_alert("Parsing [%s:%d]: resolvers '%s' has same name as another resolvers (declared at %s:%d).\n",
2900 file, linenum, args[1], curr_resolvers->conf.file, curr_resolvers->conf.line);
2901 err_code |= ERR_ALERT | ERR_ABORT;
2902 }
2903 }
2904
2905 if ((curr_resolvers = calloc(1, sizeof(*curr_resolvers))) == NULL) {
2906 ha_alert("parsing [%s:%d] : out of memory.\n", file, linenum);
2907 err_code |= ERR_ALERT | ERR_ABORT;
2908 goto out;
2909 }
2910
2911 /* allocate new proxy to tcp servers */
2912 p = calloc(1, sizeof *p);
2913 if (!p) {
2914 ha_alert("parsing [%s:%d] : out of memory.\n", file, linenum);
2915 err_code |= ERR_ALERT | ERR_FATAL;
2916 goto out;
2917 }
2918
2919 init_new_proxy(p);
2920 resolvers_setup_proxy(p);
2921 p->parent = curr_resolvers;
2922 p->id = strdup(args[1]);
2923 p->conf.args.file = p->conf.file = strdup(file);
2924 p->conf.args.line = p->conf.line = linenum;
2925 curr_resolvers->px = p;
2926
2927 /* default values */
2928 LIST_ADDQ(&sec_resolvers, &curr_resolvers->list);
2929 curr_resolvers->conf.file = strdup(file);
2930 curr_resolvers->conf.line = linenum;
2931 curr_resolvers->id = strdup(args[1]);
2932 curr_resolvers->query_ids = EB_ROOT;
2933 /* default maximum response size */
2934 curr_resolvers->accepted_payload_size = 512;
2935 /* default hold period for nx, other, refuse and timeout is 30s */
2936 curr_resolvers->hold.nx = 30000;
2937 curr_resolvers->hold.other = 30000;
2938 curr_resolvers->hold.refused = 30000;
2939 curr_resolvers->hold.timeout = 30000;
2940 curr_resolvers->hold.obsolete = 0;
2941 /* default hold period for valid is 10s */
2942 curr_resolvers->hold.valid = 10000;
2943 curr_resolvers->timeout.resolve = 1000;
2944 curr_resolvers->timeout.retry = 1000;
2945 curr_resolvers->resolve_retries = 3;
2946 LIST_INIT(&curr_resolvers->nameservers);
2947 LIST_INIT(&curr_resolvers->resolutions.curr);
2948 LIST_INIT(&curr_resolvers->resolutions.wait);
2949 HA_SPIN_INIT(&curr_resolvers->lock);
2950 }
Emeric Brun56fc5d92021-02-12 20:05:45 +01002951 else if (strcmp(args[0],"server") == 0) {
2952 err_code |= parse_server(file, linenum, args, curr_resolvers->px, NULL, 1, 0, 1);
2953 }
Emeric Brunc9437992021-02-12 19:42:55 +01002954 else if (strcmp(args[0], "nameserver") == 0) { /* nameserver definition */
2955 struct dns_nameserver *newnameserver = NULL;
2956 struct sockaddr_storage *sk;
2957 int port1, port2;
2958
2959 if (!*args[2]) {
2960 ha_alert("parsing [%s:%d] : '%s' expects <name> and <addr>[:<port>] as arguments.\n",
2961 file, linenum, args[0]);
2962 err_code |= ERR_ALERT | ERR_FATAL;
2963 goto out;
2964 }
2965
2966 err = invalid_char(args[1]);
2967 if (err) {
2968 ha_alert("parsing [%s:%d] : character '%c' is not permitted in server name '%s'.\n",
2969 file, linenum, *err, args[1]);
2970 err_code |= ERR_ALERT | ERR_FATAL;
2971 goto out;
2972 }
2973
2974 list_for_each_entry(newnameserver, &curr_resolvers->nameservers, list) {
2975 /* Error if two resolvers owns the same name */
2976 if (strcmp(newnameserver->id, args[1]) == 0) {
2977 ha_alert("Parsing [%s:%d]: nameserver '%s' has same name as another nameserver (declared at %s:%d).\n",
2978 file, linenum, args[1], newnameserver->conf.file, newnameserver->conf.line);
2979 err_code |= ERR_ALERT | ERR_FATAL;
2980 }
2981 }
2982
2983 sk = str2sa_range(args[2], NULL, &port1, &port2, NULL, NULL,
2984 &errmsg, NULL, NULL, PA_O_RESOLVE | PA_O_PORT_OK | PA_O_PORT_MAND | PA_O_DGRAM);
2985 if (!sk) {
2986 ha_alert("parsing [%s:%d] : '%s %s' : %s\n", file, linenum, args[0], args[1], errmsg);
2987 err_code |= ERR_ALERT | ERR_FATAL;
2988 goto out;
2989 }
2990
2991 if ((newnameserver = calloc(1, sizeof(*newnameserver))) == NULL) {
2992 ha_alert("parsing [%s:%d] : out of memory.\n", file, linenum);
2993 err_code |= ERR_ALERT | ERR_ABORT;
2994 goto out;
2995 }
2996
2997 if (dns_dgram_init(newnameserver, sk) < 0) {
2998 ha_alert("parsing [%s:%d] : out of memory.\n", file, linenum);
2999 err_code |= ERR_ALERT | ERR_ABORT;
3000 goto out;
3001 }
3002
3003 if ((newnameserver->conf.file = strdup(file)) == NULL) {
3004 ha_alert("parsing [%s:%d] : out of memory.\n", file, linenum);
3005 err_code |= ERR_ALERT | ERR_ABORT;
3006 goto out;
3007 }
3008
3009 if ((newnameserver->id = strdup(args[1])) == NULL) {
3010 ha_alert("parsing [%s:%d] : out of memory.\n", file, linenum);
3011 err_code |= ERR_ALERT | ERR_ABORT;
3012 goto out;
3013 }
3014
3015 newnameserver->parent = curr_resolvers;
3016 newnameserver->process_responses = resolv_process_responses;
3017 newnameserver->conf.line = linenum;
3018 /* the nameservers are linked backward first */
3019 LIST_ADDQ(&curr_resolvers->nameservers, &newnameserver->list);
3020 }
3021 else if (strcmp(args[0], "parse-resolv-conf") == 0) {
3022 struct dns_nameserver *newnameserver = NULL;
3023 const char *whitespace = "\r\n\t ";
3024 char *resolv_line = NULL;
3025 int resolv_linenum = 0;
3026 FILE *f = NULL;
3027 char *address = NULL;
3028 struct sockaddr_storage *sk = NULL;
3029 struct protocol *proto;
3030 int duplicate_name = 0;
3031
3032 if ((resolv_line = malloc(sizeof(*resolv_line) * LINESIZE)) == NULL) {
3033 ha_alert("parsing [%s:%d] : out of memory.\n",
3034 file, linenum);
3035 err_code |= ERR_ALERT | ERR_FATAL;
3036 goto resolv_out;
3037 }
3038
3039 if ((f = fopen("/etc/resolv.conf", "r")) == NULL) {
3040 ha_alert("parsing [%s:%d] : failed to open /etc/resolv.conf.\n",
3041 file, linenum);
3042 err_code |= ERR_ALERT | ERR_FATAL;
3043 goto resolv_out;
3044 }
3045
3046 sk = calloc(1, sizeof(*sk));
3047 if (sk == NULL) {
3048 ha_alert("parsing [/etc/resolv.conf:%d] : out of memory.\n",
3049 resolv_linenum);
3050 err_code |= ERR_ALERT | ERR_FATAL;
3051 goto resolv_out;
3052 }
3053
3054 while (fgets(resolv_line, LINESIZE, f) != NULL) {
3055 resolv_linenum++;
3056 if (strncmp(resolv_line, "nameserver", 10) != 0)
3057 continue;
3058
3059 address = strtok(resolv_line + 10, whitespace);
3060 if (address == resolv_line + 10)
3061 continue;
3062
3063 if (address == NULL) {
3064 ha_warning("parsing [/etc/resolv.conf:%d] : nameserver line is missing address.\n",
3065 resolv_linenum);
3066 err_code |= ERR_WARN;
3067 continue;
3068 }
3069
3070 duplicate_name = 0;
3071 list_for_each_entry(newnameserver, &curr_resolvers->nameservers, list) {
3072 if (strcmp(newnameserver->id, address) == 0) {
3073 ha_warning("Parsing [/etc/resolv.conf:%d] : generated name for /etc/resolv.conf nameserver '%s' conflicts with another nameserver (declared at %s:%d), it appears to be a duplicate and will be excluded.\n",
3074 resolv_linenum, address, newnameserver->conf.file, newnameserver->conf.line);
3075 err_code |= ERR_WARN;
3076 duplicate_name = 1;
3077 }
3078 }
3079
3080 if (duplicate_name)
3081 continue;
3082
3083 memset(sk, 0, sizeof(*sk));
3084 if (!str2ip2(address, sk, 1)) {
3085 ha_warning("parsing [/etc/resolv.conf:%d] : address '%s' could not be recognized, nameserver will be excluded.\n",
3086 resolv_linenum, address);
3087 err_code |= ERR_WARN;
3088 continue;
3089 }
3090
3091 set_host_port(sk, 53);
3092
3093 proto = protocol_by_family(sk->ss_family);
3094 if (!proto || !proto->connect) {
3095 ha_warning("parsing [/etc/resolv.conf:%d] : '%s' : connect() not supported for this address family.\n",
3096 resolv_linenum, address);
3097 err_code |= ERR_WARN;
3098 continue;
3099 }
3100
3101 if ((newnameserver = calloc(1, sizeof(*newnameserver))) == NULL) {
3102 ha_alert("parsing [/etc/resolv.conf:%d] : out of memory.\n", resolv_linenum);
3103 err_code |= ERR_ALERT | ERR_FATAL;
3104 goto resolv_out;
3105 }
3106
3107 if (dns_dgram_init(newnameserver, sk) < 0) {
3108 ha_alert("parsing [/etc/resolv.conf:%d] : out of memory.\n", resolv_linenum);
3109 err_code |= ERR_ALERT | ERR_FATAL;
3110 free(newnameserver);
3111 goto resolv_out;
3112 }
3113
3114 newnameserver->conf.file = strdup("/etc/resolv.conf");
3115 if (newnameserver->conf.file == NULL) {
3116 ha_alert("parsing [/etc/resolv.conf:%d] : out of memory.\n", resolv_linenum);
3117 err_code |= ERR_ALERT | ERR_FATAL;
3118 free(newnameserver);
3119 goto resolv_out;
3120 }
3121
3122 newnameserver->id = strdup(address);
3123 if (newnameserver->id == NULL) {
3124 ha_alert("parsing [/etc/resolv.conf:%d] : out of memory.\n", resolv_linenum);
3125 err_code |= ERR_ALERT | ERR_FATAL;
3126 free((char *)newnameserver->conf.file);
3127 free(newnameserver);
3128 goto resolv_out;
3129 }
3130
3131 newnameserver->parent = curr_resolvers;
3132 newnameserver->process_responses = resolv_process_responses;
3133 newnameserver->conf.line = resolv_linenum;
3134 LIST_ADDQ(&curr_resolvers->nameservers, &newnameserver->list);
3135 }
3136
3137resolv_out:
3138 free(sk);
3139 free(resolv_line);
3140 if (f != NULL)
3141 fclose(f);
3142 }
3143 else if (strcmp(args[0], "hold") == 0) { /* hold periods */
3144 const char *res;
3145 unsigned int time;
3146
3147 if (!*args[2]) {
3148 ha_alert("parsing [%s:%d] : '%s' expects an <event> and a <time> as arguments.\n",
3149 file, linenum, args[0]);
3150 ha_alert("<event> can be either 'valid', 'nx', 'refused', 'timeout', or 'other'\n");
3151 err_code |= ERR_ALERT | ERR_FATAL;
3152 goto out;
3153 }
3154 res = parse_time_err(args[2], &time, TIME_UNIT_MS);
3155 if (res == PARSE_TIME_OVER) {
3156 ha_alert("parsing [%s:%d]: timer overflow in argument <%s> to <%s>, maximum value is 2147483647 ms (~24.8 days).\n",
3157 file, linenum, args[1], args[0]);
3158 err_code |= ERR_ALERT | ERR_FATAL;
3159 goto out;
3160 }
3161 else if (res == PARSE_TIME_UNDER) {
3162 ha_alert("parsing [%s:%d]: timer underflow in argument <%s> to <%s>, minimum non-null value is 1 ms.\n",
3163 file, linenum, args[1], args[0]);
3164 err_code |= ERR_ALERT | ERR_FATAL;
3165 goto out;
3166 }
3167 else if (res) {
3168 ha_alert("parsing [%s:%d]: unexpected character '%c' in argument to <%s>.\n",
3169 file, linenum, *res, args[0]);
3170 err_code |= ERR_ALERT | ERR_FATAL;
3171 goto out;
3172 }
3173 if (strcmp(args[1], "nx") == 0)
3174 curr_resolvers->hold.nx = time;
3175 else if (strcmp(args[1], "other") == 0)
3176 curr_resolvers->hold.other = time;
3177 else if (strcmp(args[1], "refused") == 0)
3178 curr_resolvers->hold.refused = time;
3179 else if (strcmp(args[1], "timeout") == 0)
3180 curr_resolvers->hold.timeout = time;
3181 else if (strcmp(args[1], "valid") == 0)
3182 curr_resolvers->hold.valid = time;
3183 else if (strcmp(args[1], "obsolete") == 0)
3184 curr_resolvers->hold.obsolete = time;
3185 else {
3186 ha_alert("parsing [%s:%d] : '%s' unknown <event>: '%s', expects either 'nx', 'timeout', 'valid', 'obsolete' or 'other'.\n",
3187 file, linenum, args[0], args[1]);
3188 err_code |= ERR_ALERT | ERR_FATAL;
3189 goto out;
3190 }
3191
3192 }
3193 else if (strcmp(args[0], "accepted_payload_size") == 0) {
3194 int i = 0;
3195
3196 if (!*args[1]) {
3197 ha_alert("parsing [%s:%d] : '%s' expects <nb> as argument.\n",
3198 file, linenum, args[0]);
3199 err_code |= ERR_ALERT | ERR_FATAL;
3200 goto out;
3201 }
3202
3203 i = atoi(args[1]);
3204 if (i < DNS_HEADER_SIZE || i > DNS_MAX_UDP_MESSAGE) {
3205 ha_alert("parsing [%s:%d] : '%s' must be between %d and %d inclusive (was %s).\n",
3206 file, linenum, args[0], DNS_HEADER_SIZE, DNS_MAX_UDP_MESSAGE, args[1]);
3207 err_code |= ERR_ALERT | ERR_FATAL;
3208 goto out;
3209 }
3210
3211 curr_resolvers->accepted_payload_size = i;
3212 }
3213 else if (strcmp(args[0], "resolution_pool_size") == 0) {
3214 ha_alert("parsing [%s:%d] : '%s' directive is not supported anymore (it never appeared in a stable release).\n",
3215 file, linenum, args[0]);
3216 err_code |= ERR_ALERT | ERR_FATAL;
3217 goto out;
3218 }
3219 else if (strcmp(args[0], "resolve_retries") == 0) {
3220 if (!*args[1]) {
3221 ha_alert("parsing [%s:%d] : '%s' expects <nb> as argument.\n",
3222 file, linenum, args[0]);
3223 err_code |= ERR_ALERT | ERR_FATAL;
3224 goto out;
3225 }
3226 curr_resolvers->resolve_retries = atoi(args[1]);
3227 }
3228 else if (strcmp(args[0], "timeout") == 0) {
3229 if (!*args[1]) {
3230 ha_alert("parsing [%s:%d] : '%s' expects 'retry' or 'resolve' and <time> as arguments.\n",
3231 file, linenum, args[0]);
3232 err_code |= ERR_ALERT | ERR_FATAL;
3233 goto out;
3234 }
3235 else if (strcmp(args[1], "retry") == 0 ||
3236 strcmp(args[1], "resolve") == 0) {
3237 const char *res;
3238 unsigned int tout;
3239
3240 if (!*args[2]) {
3241 ha_alert("parsing [%s:%d] : '%s %s' expects <time> as argument.\n",
3242 file, linenum, args[0], args[1]);
3243 err_code |= ERR_ALERT | ERR_FATAL;
3244 goto out;
3245 }
3246 res = parse_time_err(args[2], &tout, TIME_UNIT_MS);
3247 if (res == PARSE_TIME_OVER) {
3248 ha_alert("parsing [%s:%d]: timer overflow in argument <%s> to <%s %s>, maximum value is 2147483647 ms (~24.8 days).\n",
3249 file, linenum, args[2], args[0], args[1]);
3250 err_code |= ERR_ALERT | ERR_FATAL;
3251 goto out;
3252 }
3253 else if (res == PARSE_TIME_UNDER) {
3254 ha_alert("parsing [%s:%d]: timer underflow in argument <%s> to <%s %s>, minimum non-null value is 1 ms.\n",
3255 file, linenum, args[2], args[0], args[1]);
3256 err_code |= ERR_ALERT | ERR_FATAL;
3257 goto out;
3258 }
3259 else if (res) {
3260 ha_alert("parsing [%s:%d]: unexpected character '%c' in argument to <%s %s>.\n",
3261 file, linenum, *res, args[0], args[1]);
3262 err_code |= ERR_ALERT | ERR_FATAL;
3263 goto out;
3264 }
3265 if (args[1][2] == 't')
3266 curr_resolvers->timeout.retry = tout;
3267 else
3268 curr_resolvers->timeout.resolve = tout;
3269 }
3270 else {
3271 ha_alert("parsing [%s:%d] : '%s' expects 'retry' or 'resolve' and <time> as arguments got '%s'.\n",
3272 file, linenum, args[0], args[1]);
3273 err_code |= ERR_ALERT | ERR_FATAL;
3274 goto out;
3275 }
3276 }
3277 else if (*args[0] != 0) {
3278 ha_alert("parsing [%s:%d] : unknown keyword '%s' in '%s' section\n", file, linenum, args[0], cursection);
3279 err_code |= ERR_ALERT | ERR_FATAL;
3280 goto out;
3281 }
3282
3283 out:
3284 free(errmsg);
3285 return err_code;
3286}
Emeric Brun56fc5d92021-02-12 20:05:45 +01003287int cfg_post_parse_resolvers()
3288{
3289 int err_code = 0;
3290 struct server *srv;
3291
3292 if (curr_resolvers) {
3293
3294 /* prepare forward server descriptors */
3295 if (curr_resolvers->px) {
3296 srv = curr_resolvers->px->srv;
3297 while (srv) {
3298 struct dns_nameserver *ns;
3299
3300 list_for_each_entry(ns, &curr_resolvers->nameservers, list) {
3301 /* Error if two resolvers owns the same name */
3302 if (strcmp(ns->id, srv->id) == 0) {
3303 ha_alert("Parsing [%s:%d]: nameserver '%s' has same name as another nameserver (declared at %s:%d).\n",
3304 srv->conf.file, srv->conf.line, srv->id, ns->conf.file, ns->conf.line);
3305 err_code |= ERR_ALERT | ERR_FATAL;
3306 break;
3307 }
3308 }
3309
3310 /* init ssl if needed */
3311 if (srv->use_ssl == 1 && xprt_get(XPRT_SSL) && xprt_get(XPRT_SSL)->prepare_srv) {
3312 if (xprt_get(XPRT_SSL)->prepare_srv(srv)) {
3313 ha_alert("unable to prepare SSL for server '%s' in resolvers section '%s'.\n", srv->id, curr_resolvers->id);
3314 err_code |= ERR_ALERT | ERR_FATAL;
3315 break;
3316 }
3317 }
3318
3319 /* allocate nameserver */
3320 ns = calloc(1, sizeof(*ns));
3321 if (!ns) {
3322 ha_alert("memory allocation error initializing tcp server '%s' in resolvers section '%s'.\n", srv->id, curr_resolvers->id);
3323 err_code |= ERR_ALERT | ERR_FATAL;
3324 break;
3325 }
3326
3327 if (dns_stream_init(ns, srv) < 0) {
3328 ha_alert("memory allocation error initializing tcp server '%s' in resolvers section '%s'.\n", srv->id, curr_resolvers->id);
3329 err_code |= ERR_ALERT|ERR_ABORT;
3330 break;
3331 }
3332
3333 ns->conf.file = strdup(srv->conf.file);
3334 if (!ns->conf.file) {
3335 ha_alert("memory allocation error initializing tcp server '%s' in resolvers section '%s'.\n", srv->id, curr_resolvers->id);
3336 err_code |= ERR_ALERT|ERR_ABORT;
3337 break;
3338 }
3339 ns->id = strdup(srv->id);
3340 if (!ns->id) {
3341 ha_alert("memory allocation error initializing tcp server '%s' in resolvers section '%s'.\n", srv->id, curr_resolvers->id);
3342 err_code |= ERR_ALERT|ERR_ABORT;
3343 break;
3344 }
3345 ns->conf.line = srv->conf.line;
3346 ns->process_responses = resolv_process_responses;
3347 ns->parent = curr_resolvers;
3348 LIST_ADDQ(&curr_resolvers->nameservers, &ns->list);
3349 srv = srv->next;
3350 }
3351 }
3352 }
3353 curr_resolvers = NULL;
3354 return err_code;
3355}
Emeric Brunc9437992021-02-12 19:42:55 +01003356
Emeric Brun56fc5d92021-02-12 20:05:45 +01003357REGISTER_CONFIG_SECTION("resolvers", cfg_parse_resolvers, cfg_post_parse_resolvers);
Emeric Brunc9437992021-02-12 19:42:55 +01003358REGISTER_POST_DEINIT(resolvers_deinit);
3359REGISTER_CONFIG_POSTPARSER("dns runtime resolver", resolvers_finalize_config);