1 /*
2 * services/authzone.c - authoritative zone that is locally hosted.
3 *
4 * Copyright (c) 2017, NLnet Labs. All rights reserved.
5 *
6 * This software is open source.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 *
12 * Redistributions of source code must retain the above copyright notice,
13 * this list of conditions and the following disclaimer.
14 *
15 * Redistributions in binary form must reproduce the above copyright notice,
16 * this list of conditions and the following disclaimer in the documentation
17 * and/or other materials provided with the distribution.
18 *
19 * Neither the name of the NLNET LABS nor the names of its contributors may
20 * be used to endorse or promote products derived from this software without
21 * specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
24 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
25 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
26 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
27 * HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
28 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
29 * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
30 * PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
31 * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
32 * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
33 * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
34 */
35
36 /**
37 * \file
38 *
39 * This file contains the functions for an authority zone. This zone
40 * is queried by the iterator, just like a stub or forward zone, but then
41 * the data is locally held.
42 */
43
44 #include "config.h"
45 #include "services/authzone.h"
46 #include "util/data/dname.h"
47 #include "util/data/msgparse.h"
48 #include "util/data/msgreply.h"
49 #include "util/data/msgencode.h"
50 #include "util/data/packed_rrset.h"
51 #include "util/regional.h"
52 #include "util/net_help.h"
53 #include "util/netevent.h"
54 #include "util/config_file.h"
55 #include "util/log.h"
56 #include "util/module.h"
57 #include "util/random.h"
58 #include "util/timeval_func.h"
59 #include "services/cache/dns.h"
60 #include "services/outside_network.h"
61 #include "services/listen_dnsport.h"
62 #include "services/mesh.h"
63 #include "sldns/rrdef.h"
64 #include "sldns/pkthdr.h"
65 #include "sldns/sbuffer.h"
66 #include "sldns/str2wire.h"
67 #include "sldns/wire2str.h"
68 #include "sldns/parseutil.h"
69 #include "sldns/keyraw.h"
70 #include "validator/val_nsec3.h"
71 #include "validator/val_nsec.h"
72 #include "validator/val_secalgo.h"
73 #include "validator/val_sigcrypt.h"
74 #include "validator/val_anchor.h"
75 #include "validator/val_utils.h"
76 #include <ctype.h>
77
78 /** bytes to use for NSEC3 hash buffer. 20 for sha1 */
79 #define N3HASHBUFLEN 32
80 /** max number of CNAMEs we are willing to follow (in one answer) */
81 #define MAX_CNAME_CHAIN 8
82 /** timeout for probe packets for SOA */
83 #define AUTH_PROBE_TIMEOUT 100 /* msec */
84 /** when to stop with SOA probes (when exponential timeouts exceed this) */
85 #define AUTH_PROBE_TIMEOUT_STOP 1000 /* msec */
86 /* auth transfer timeout for TCP connections, in msec */
87 #define AUTH_TRANSFER_TIMEOUT 10000 /* msec */
88 /* auth transfer max backoff for failed transfers and probes */
89 #define AUTH_TRANSFER_MAX_BACKOFF 86400 /* sec */
90 /* auth http port number */
91 #define AUTH_HTTP_PORT 80
92 /* auth https port number */
93 #define AUTH_HTTPS_PORT 443
94 /* max depth for nested $INCLUDEs */
95 #define MAX_INCLUDE_DEPTH 10
96 /** number of timeouts before we fallback from IXFR to AXFR,
97 * because some versions of servers (eg. dnsmasq) drop IXFR packets. */
98 #define NUM_TIMEOUTS_FALLBACK_IXFR 3
99 /** number of IXFRs before an AXFR is performed, to consolidate RPZ memory. */
100 #define NUM_IXFR_BEFORE_AXFR 5
101
102 /** pick up nextprobe task to start waiting to perform transfer actions */
103 static void xfr_set_timeout(struct auth_xfer* xfr, struct module_env* env,
104 int failure, int lookup_only);
105 /** move to sending the probe packets, next if fails. task_probe */
106 static void xfr_probe_send_or_end(struct auth_xfer* xfr,
107 struct module_env* env);
108 /** pick up probe task with specified(or NULL) destination first,
109 * or transfer task if nothing to probe, or false if already in progress */
110 static int xfr_start_probe(struct auth_xfer* xfr, struct module_env* env,
111 struct auth_master* spec);
112 /** copy the master addresses from the task_probe lookups to the allow_notify
113 * list of masters */
114 static void probe_copy_masters_for_allow_notify(struct auth_xfer* xfr);
115 /** delete xfer structure (not its tree entry) */
116 void auth_xfer_delete(struct auth_xfer* xfr);
117
118 /** create new dns_msg */
119 static struct dns_msg*
msg_create(struct regional * region,struct query_info * qinfo)120 msg_create(struct regional* region, struct query_info* qinfo)
121 {
122 struct dns_msg* msg = (struct dns_msg*)regional_alloc(region,
123 sizeof(struct dns_msg));
124 if(!msg)
125 return NULL;
126 msg->qinfo.qname = regional_alloc_init(region, qinfo->qname,
127 qinfo->qname_len);
128 if(!msg->qinfo.qname)
129 return NULL;
130 msg->qinfo.qname_len = qinfo->qname_len;
131 msg->qinfo.qtype = qinfo->qtype;
132 msg->qinfo.qclass = qinfo->qclass;
133 msg->qinfo.local_alias = NULL;
134 /* non-packed reply_info, because it needs to grow the array */
135 msg->rep = (struct reply_info*)regional_alloc_zero(region,
136 sizeof(struct reply_info)-sizeof(struct rrset_ref));
137 if(!msg->rep)
138 return NULL;
139 msg->rep->flags = (uint16_t)(BIT_QR | BIT_AA);
140 msg->rep->authoritative = 1;
141 msg->rep->reason_bogus = LDNS_EDE_NONE;
142 msg->rep->qdcount = 1;
143 /* rrsets is NULL, no rrsets yet */
144 return msg;
145 }
146
147 /** grow rrset array by one in msg */
148 static int
msg_grow_array(struct regional * region,struct dns_msg * msg)149 msg_grow_array(struct regional* region, struct dns_msg* msg)
150 {
151 if(msg->rep->rrsets == NULL) {
152 msg->rep->rrsets = regional_alloc_zero(region,
153 sizeof(struct ub_packed_rrset_key*)*(msg->rep->rrset_count+1));
154 if(!msg->rep->rrsets)
155 return 0;
156 } else {
157 struct ub_packed_rrset_key** rrsets_old = msg->rep->rrsets;
158 msg->rep->rrsets = regional_alloc_zero(region,
159 sizeof(struct ub_packed_rrset_key*)*(msg->rep->rrset_count+1));
160 if(!msg->rep->rrsets)
161 return 0;
162 memmove(msg->rep->rrsets, rrsets_old,
163 sizeof(struct ub_packed_rrset_key*)*msg->rep->rrset_count);
164 }
165 return 1;
166 }
167
168 /** get ttl of rrset */
169 static time_t
get_rrset_ttl(struct ub_packed_rrset_key * k)170 get_rrset_ttl(struct ub_packed_rrset_key* k)
171 {
172 struct packed_rrset_data* d = (struct packed_rrset_data*)
173 k->entry.data;
174 return d->ttl;
175 }
176
177 /** Copy rrset into region from domain-datanode and packet rrset */
178 static struct ub_packed_rrset_key*
auth_packed_rrset_copy_region(struct auth_zone * z,struct auth_data * node,struct auth_rrset * rrset,struct regional * region)179 auth_packed_rrset_copy_region(struct auth_zone* z, struct auth_data* node,
180 struct auth_rrset* rrset, struct regional* region)
181 {
182 struct ub_packed_rrset_key key;
183 memset(&key, 0, sizeof(key));
184 key.entry.key = &key;
185 key.entry.data = rrset->data;
186 key.rk.dname = node->name;
187 key.rk.dname_len = node->namelen;
188 key.rk.type = htons(rrset->type);
189 key.rk.rrset_class = htons(z->dclass);
190 key.entry.hash = rrset_key_hash(&key.rk);
191 return packed_rrset_copy_region(&key, region, 0);
192 }
193
194 /** fix up msg->rep TTL and prefetch ttl */
195 static void
msg_ttl(struct dns_msg * msg)196 msg_ttl(struct dns_msg* msg)
197 {
198 if(msg->rep->rrset_count == 0) return;
199 if(msg->rep->rrset_count == 1) {
200 msg->rep->ttl = get_rrset_ttl(msg->rep->rrsets[0]);
201 msg->rep->prefetch_ttl = PREFETCH_TTL_CALC(msg->rep->ttl);
202 msg->rep->serve_expired_ttl = msg->rep->ttl + SERVE_EXPIRED_TTL;
203 } else if(get_rrset_ttl(msg->rep->rrsets[msg->rep->rrset_count-1]) <
204 msg->rep->ttl) {
205 msg->rep->ttl = get_rrset_ttl(msg->rep->rrsets[
206 msg->rep->rrset_count-1]);
207 msg->rep->prefetch_ttl = PREFETCH_TTL_CALC(msg->rep->ttl);
208 msg->rep->serve_expired_ttl = msg->rep->ttl + SERVE_EXPIRED_TTL;
209 }
210 }
211
212 /** see if rrset is a duplicate in the answer message */
213 static int
msg_rrset_duplicate(struct dns_msg * msg,uint8_t * nm,size_t nmlen,uint16_t type,uint16_t dclass)214 msg_rrset_duplicate(struct dns_msg* msg, uint8_t* nm, size_t nmlen,
215 uint16_t type, uint16_t dclass)
216 {
217 size_t i;
218 for(i=0; i<msg->rep->rrset_count; i++) {
219 struct ub_packed_rrset_key* k = msg->rep->rrsets[i];
220 if(ntohs(k->rk.type) == type && k->rk.dname_len == nmlen &&
221 ntohs(k->rk.rrset_class) == dclass &&
222 query_dname_compare(k->rk.dname, nm) == 0)
223 return 1;
224 }
225 return 0;
226 }
227
228 /** add rrset to answer section (no auth, add rrsets yet) */
229 static int
msg_add_rrset_an(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node,struct auth_rrset * rrset)230 msg_add_rrset_an(struct auth_zone* z, struct regional* region,
231 struct dns_msg* msg, struct auth_data* node, struct auth_rrset* rrset)
232 {
233 log_assert(msg->rep->ns_numrrsets == 0);
234 log_assert(msg->rep->ar_numrrsets == 0);
235 if(!rrset || !node)
236 return 1;
237 if(msg_rrset_duplicate(msg, node->name, node->namelen, rrset->type,
238 z->dclass))
239 return 1;
240 /* grow array */
241 if(!msg_grow_array(region, msg))
242 return 0;
243 /* copy it */
244 if(!(msg->rep->rrsets[msg->rep->rrset_count] =
245 auth_packed_rrset_copy_region(z, node, rrset, region)))
246 return 0;
247 msg->rep->rrset_count++;
248 msg->rep->an_numrrsets++;
249 msg_ttl(msg);
250 return 1;
251 }
252
253 /** add rrset to authority section (no additional section rrsets yet) */
254 static int
msg_add_rrset_ns(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node,struct auth_rrset * rrset)255 msg_add_rrset_ns(struct auth_zone* z, struct regional* region,
256 struct dns_msg* msg, struct auth_data* node, struct auth_rrset* rrset)
257 {
258 log_assert(msg->rep->ar_numrrsets == 0);
259 if(!rrset || !node)
260 return 1;
261 if(msg_rrset_duplicate(msg, node->name, node->namelen, rrset->type,
262 z->dclass))
263 return 1;
264 /* grow array */
265 if(!msg_grow_array(region, msg))
266 return 0;
267 /* copy it */
268 if(!(msg->rep->rrsets[msg->rep->rrset_count] =
269 auth_packed_rrset_copy_region(z, node, rrset, region)))
270 return 0;
271 msg->rep->rrset_count++;
272 msg->rep->ns_numrrsets++;
273 msg_ttl(msg);
274 return 1;
275 }
276
277 /** add rrset to additional section */
278 static int
msg_add_rrset_ar(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node,struct auth_rrset * rrset)279 msg_add_rrset_ar(struct auth_zone* z, struct regional* region,
280 struct dns_msg* msg, struct auth_data* node, struct auth_rrset* rrset)
281 {
282 if(!rrset || !node)
283 return 1;
284 if(msg_rrset_duplicate(msg, node->name, node->namelen, rrset->type,
285 z->dclass))
286 return 1;
287 /* grow array */
288 if(!msg_grow_array(region, msg))
289 return 0;
290 /* copy it */
291 if(!(msg->rep->rrsets[msg->rep->rrset_count] =
292 auth_packed_rrset_copy_region(z, node, rrset, region)))
293 return 0;
294 msg->rep->rrset_count++;
295 msg->rep->ar_numrrsets++;
296 msg_ttl(msg);
297 return 1;
298 }
299
auth_zones_create(void)300 struct auth_zones* auth_zones_create(void)
301 {
302 struct auth_zones* az = (struct auth_zones*)calloc(1, sizeof(*az));
303 if(!az) {
304 log_err("out of memory");
305 return NULL;
306 }
307 rbtree_init(&az->ztree, &auth_zone_cmp);
308 rbtree_init(&az->xtree, &auth_xfer_cmp);
309 lock_rw_init(&az->lock);
310 lock_protect(&az->lock, &az->ztree, sizeof(az->ztree));
311 lock_protect(&az->lock, &az->xtree, sizeof(az->xtree));
312 /* also lock protects the rbnode's in struct auth_zone, auth_xfer */
313 lock_rw_init(&az->rpz_lock);
314 lock_protect(&az->rpz_lock, &az->rpz_first, sizeof(az->rpz_first));
315 return az;
316 }
317
auth_zone_cmp(const void * z1,const void * z2)318 int auth_zone_cmp(const void* z1, const void* z2)
319 {
320 /* first sort on class, so that hierarchy can be maintained within
321 * a class */
322 struct auth_zone* a = (struct auth_zone*)z1;
323 struct auth_zone* b = (struct auth_zone*)z2;
324 int m;
325 if(a->dclass != b->dclass) {
326 if(a->dclass < b->dclass)
327 return -1;
328 return 1;
329 }
330 /* sorted such that higher zones sort before lower zones (their
331 * contents) */
332 return dname_lab_cmp(a->name, a->namelabs, b->name, b->namelabs, &m);
333 }
334
auth_data_cmp(const void * z1,const void * z2)335 int auth_data_cmp(const void* z1, const void* z2)
336 {
337 struct auth_data* a = (struct auth_data*)z1;
338 struct auth_data* b = (struct auth_data*)z2;
339 int m;
340 /* canonical sort, because DNSSEC needs that */
341 return dname_canon_lab_cmp(a->name, a->namelabs, b->name,
342 b->namelabs, &m);
343 }
344
auth_xfer_cmp(const void * z1,const void * z2)345 int auth_xfer_cmp(const void* z1, const void* z2)
346 {
347 /* first sort on class, so that hierarchy can be maintained within
348 * a class */
349 struct auth_xfer* a = (struct auth_xfer*)z1;
350 struct auth_xfer* b = (struct auth_xfer*)z2;
351 int m;
352 if(a->dclass != b->dclass) {
353 if(a->dclass < b->dclass)
354 return -1;
355 return 1;
356 }
357 /* sorted such that higher zones sort before lower zones (their
358 * contents) */
359 return dname_lab_cmp(a->name, a->namelabs, b->name, b->namelabs, &m);
360 }
361
362 /** delete auth rrset node */
363 static void
auth_rrset_delete(struct auth_rrset * rrset)364 auth_rrset_delete(struct auth_rrset* rrset)
365 {
366 if(!rrset) return;
367 free(rrset->data);
368 free(rrset);
369 }
370
371 /** delete auth data domain node */
372 static void
auth_data_delete(struct auth_data * n)373 auth_data_delete(struct auth_data* n)
374 {
375 struct auth_rrset* p, *np;
376 if(!n) return;
377 p = n->rrsets;
378 while(p) {
379 np = p->next;
380 auth_rrset_delete(p);
381 p = np;
382 }
383 free(n->name);
384 free(n);
385 }
386
387 /** helper traverse to delete zones */
388 static void
auth_data_del(rbnode_type * n,void * ATTR_UNUSED (arg))389 auth_data_del(rbnode_type* n, void* ATTR_UNUSED(arg))
390 {
391 struct auth_data* z = (struct auth_data*)n->key;
392 auth_data_delete(z);
393 }
394
395 /** delete chunklist */
396 static void
auth_chunk_list_delete(struct auth_chunk * first)397 auth_chunk_list_delete(struct auth_chunk* first)
398 {
399 struct auth_chunk* c, *cn;
400 c = first;
401 while(c) {
402 cn = c->next;
403 free(c->data);
404 free(c);
405 c = cn;
406 }
407 }
408
409 /** delete an auth zone structure (tree remove must be done elsewhere) */
410 static void
auth_zone_delete(struct auth_zone * z,struct auth_zones * az)411 auth_zone_delete(struct auth_zone* z, struct auth_zones* az)
412 {
413 if(!z) return;
414 lock_rw_destroy(&z->lock);
415 traverse_postorder(&z->data, auth_data_del, NULL);
416
417 if(az && z->rpz) {
418 /* keep RPZ linked list intact */
419 lock_rw_wrlock(&az->rpz_lock);
420 if(z->rpz_az_prev)
421 z->rpz_az_prev->rpz_az_next = z->rpz_az_next;
422 else
423 az->rpz_first = z->rpz_az_next;
424 if(z->rpz_az_next)
425 z->rpz_az_next->rpz_az_prev = z->rpz_az_prev;
426 lock_rw_unlock(&az->rpz_lock);
427 }
428 if(z->rpz)
429 rpz_delete(z->rpz);
430 auth_chunk_list_delete(z->perform_write_chunk_list);
431 free(z->name);
432 free(z->zonefile);
433 free(z);
434 }
435
436 struct auth_zone*
auth_zone_create(struct auth_zones * az,uint8_t * nm,size_t nmlen,uint16_t dclass)437 auth_zone_create(struct auth_zones* az, uint8_t* nm, size_t nmlen,
438 uint16_t dclass)
439 {
440 struct auth_zone* z = (struct auth_zone*)calloc(1, sizeof(*z));
441 if(!z) {
442 return NULL;
443 }
444 z->node.key = z;
445 z->dclass = dclass;
446 z->namelen = nmlen;
447 z->namelabs = dname_count_labels(nm);
448 z->name = memdup(nm, nmlen);
449 if(!z->name) {
450 free(z);
451 return NULL;
452 }
453 rbtree_init(&z->data, &auth_data_cmp);
454 lock_rw_init(&z->lock);
455 lock_protect(&z->lock, &z->name, sizeof(*z)-sizeof(rbnode_type)-
456 sizeof(z->rpz_az_next)-sizeof(z->rpz_az_prev)-
457 sizeof(z->max_transfer_size)-sizeof(z->max_transfer_size));
458 lock_protect(&z->lock, &z->max_transfer_size,
459 sizeof(z->max_transfer_size));
460 lock_protect(&z->lock, &z->max_transfer_time,
461 sizeof(z->max_transfer_time));
462 lock_rw_wrlock(&z->lock);
463 /* z lock protects all, except rbtree itself and the rpz linked list
464 * pointers, which are protected using az->lock */
465 if(!rbtree_insert(&az->ztree, &z->node)) {
466 lock_rw_unlock(&z->lock);
467 auth_zone_delete(z, NULL);
468 log_warn("duplicate auth zone");
469 return NULL;
470 }
471 return z;
472 }
473
474 struct auth_zone*
auth_zone_find(struct auth_zones * az,uint8_t * nm,size_t nmlen,uint16_t dclass)475 auth_zone_find(struct auth_zones* az, uint8_t* nm, size_t nmlen,
476 uint16_t dclass)
477 {
478 struct auth_zone key;
479 key.node.key = &key;
480 key.dclass = dclass;
481 key.name = nm;
482 key.namelen = nmlen;
483 key.namelabs = dname_count_labels(nm);
484 return (struct auth_zone*)rbtree_search(&az->ztree, &key);
485 }
486
487 struct auth_xfer*
auth_xfer_find(struct auth_zones * az,uint8_t * nm,size_t nmlen,uint16_t dclass)488 auth_xfer_find(struct auth_zones* az, uint8_t* nm, size_t nmlen,
489 uint16_t dclass)
490 {
491 struct auth_xfer key;
492 key.node.key = &key;
493 key.dclass = dclass;
494 key.name = nm;
495 key.namelen = nmlen;
496 key.namelabs = dname_count_labels(nm);
497 return (struct auth_xfer*)rbtree_search(&az->xtree, &key);
498 }
499
500 /** find an auth zone or sorted less-or-equal, return true if exact */
501 static int
auth_zone_find_less_equal(struct auth_zones * az,uint8_t * nm,size_t nmlen,uint16_t dclass,struct auth_zone ** z)502 auth_zone_find_less_equal(struct auth_zones* az, uint8_t* nm, size_t nmlen,
503 uint16_t dclass, struct auth_zone** z)
504 {
505 struct auth_zone key;
506 key.node.key = &key;
507 key.dclass = dclass;
508 key.name = nm;
509 key.namelen = nmlen;
510 key.namelabs = dname_count_labels(nm);
511 return rbtree_find_less_equal(&az->ztree, &key, (rbnode_type**)z);
512 }
513
514
515 /** find the auth zone that is above the given name */
516 struct auth_zone*
auth_zones_find_zone(struct auth_zones * az,uint8_t * name,size_t name_len,uint16_t dclass)517 auth_zones_find_zone(struct auth_zones* az, uint8_t* name, size_t name_len,
518 uint16_t dclass)
519 {
520 uint8_t* nm = name;
521 size_t nmlen = name_len;
522 struct auth_zone* z;
523 if(auth_zone_find_less_equal(az, nm, nmlen, dclass, &z)) {
524 /* exact match */
525 return z;
526 } else {
527 /* less-or-nothing */
528 if(!z) return NULL; /* nothing smaller, nothing above it */
529 /* we found smaller name; smaller may be above the name,
530 * but not below it. */
531 nm = dname_get_shared_topdomain(z->name, name);
532 dname_count_size_labels(nm, &nmlen);
533 z = NULL;
534 }
535
536 /* search up */
537 while(!z) {
538 z = auth_zone_find(az, nm, nmlen, dclass);
539 if(z) return z;
540 if(dname_is_root(nm)) break;
541 dname_remove_label(&nm, &nmlen);
542 }
543 return NULL;
544 }
545
546 /** find or create zone with name str. caller must have lock on az.
547 * returns a wrlocked zone */
548 static struct auth_zone*
auth_zones_find_or_add_zone(struct auth_zones * az,char * name)549 auth_zones_find_or_add_zone(struct auth_zones* az, char* name)
550 {
551 uint8_t nm[LDNS_MAX_DOMAINLEN+1];
552 size_t nmlen = sizeof(nm);
553 struct auth_zone* z;
554
555 if(sldns_str2wire_dname_buf(name, nm, &nmlen) != 0) {
556 log_err("cannot parse auth zone name: %s", name);
557 return 0;
558 }
559 z = auth_zone_find(az, nm, nmlen, LDNS_RR_CLASS_IN);
560 if(!z) {
561 /* not found, create the zone */
562 z = auth_zone_create(az, nm, nmlen, LDNS_RR_CLASS_IN);
563 } else {
564 lock_rw_wrlock(&z->lock);
565 }
566 return z;
567 }
568
569 /** find or create xfer zone with name str. caller must have lock on az.
570 * returns a locked xfer */
571 static struct auth_xfer*
auth_zones_find_or_add_xfer(struct auth_zones * az,struct auth_zone * z)572 auth_zones_find_or_add_xfer(struct auth_zones* az, struct auth_zone* z)
573 {
574 struct auth_xfer* x;
575 x = auth_xfer_find(az, z->name, z->namelen, z->dclass);
576 if(!x) {
577 /* not found, create the zone */
578 x = auth_xfer_create(az, z);
579 } else {
580 lock_basic_lock(&x->lock);
581 }
582 return x;
583 }
584
585 int
auth_zone_set_zonefile(struct auth_zone * z,char * zonefile)586 auth_zone_set_zonefile(struct auth_zone* z, char* zonefile)
587 {
588 if(z->zonefile) free(z->zonefile);
589 if(zonefile == NULL) {
590 z->zonefile = NULL;
591 } else {
592 z->zonefile = strdup(zonefile);
593 if(!z->zonefile) {
594 log_err("malloc failure");
595 return 0;
596 }
597 }
598 return 1;
599 }
600
601 /** set auth zone fallback. caller must have lock on zone */
602 int
auth_zone_set_fallback(struct auth_zone * z,char * fallbackstr)603 auth_zone_set_fallback(struct auth_zone* z, char* fallbackstr)
604 {
605 if(strcmp(fallbackstr, "yes") != 0 && strcmp(fallbackstr, "no") != 0){
606 log_err("auth zone fallback, expected yes or no, got %s",
607 fallbackstr);
608 return 0;
609 }
610 z->fallback_enabled = (strcmp(fallbackstr, "yes")==0);
611 return 1;
612 }
613
614 /** create domain with the given name */
615 static struct auth_data*
az_domain_create(struct auth_zone * z,uint8_t * nm,size_t nmlen)616 az_domain_create(struct auth_zone* z, uint8_t* nm, size_t nmlen)
617 {
618 struct auth_data* n = (struct auth_data*)malloc(sizeof(*n));
619 if(!n) return NULL;
620 memset(n, 0, sizeof(*n));
621 n->node.key = n;
622 n->name = memdup(nm, nmlen);
623 if(!n->name) {
624 free(n);
625 return NULL;
626 }
627 n->namelen = nmlen;
628 n->namelabs = dname_count_labels(nm);
629 if(!rbtree_insert(&z->data, &n->node)) {
630 log_warn("duplicate auth domain name");
631 free(n->name);
632 free(n);
633 return NULL;
634 }
635 return n;
636 }
637
638 /** find domain with exactly the given name */
639 static struct auth_data*
az_find_name(struct auth_zone * z,uint8_t * nm,size_t nmlen)640 az_find_name(struct auth_zone* z, uint8_t* nm, size_t nmlen)
641 {
642 struct auth_zone key;
643 key.node.key = &key;
644 key.name = nm;
645 key.namelen = nmlen;
646 key.namelabs = dname_count_labels(nm);
647 return (struct auth_data*)rbtree_search(&z->data, &key);
648 }
649
650 /** Find domain name (or closest match) */
651 static void
az_find_domain(struct auth_zone * z,struct query_info * qinfo,int * node_exact,struct auth_data ** node)652 az_find_domain(struct auth_zone* z, struct query_info* qinfo, int* node_exact,
653 struct auth_data** node)
654 {
655 struct auth_zone key;
656 key.node.key = &key;
657 key.name = qinfo->qname;
658 key.namelen = qinfo->qname_len;
659 key.namelabs = dname_count_labels(key.name);
660 *node_exact = rbtree_find_less_equal(&z->data, &key,
661 (rbnode_type**)node);
662 }
663
664 /** find or create domain with name in zone */
665 static struct auth_data*
az_domain_find_or_create(struct auth_zone * z,uint8_t * dname,size_t dname_len)666 az_domain_find_or_create(struct auth_zone* z, uint8_t* dname,
667 size_t dname_len)
668 {
669 struct auth_data* n = az_find_name(z, dname, dname_len);
670 if(!n) {
671 n = az_domain_create(z, dname, dname_len);
672 }
673 return n;
674 }
675
676 /** find rrset of given type in the domain */
677 static struct auth_rrset*
az_domain_rrset(struct auth_data * n,uint16_t t)678 az_domain_rrset(struct auth_data* n, uint16_t t)
679 {
680 struct auth_rrset* rrset;
681 if(!n) return NULL;
682 rrset = n->rrsets;
683 while(rrset) {
684 if(rrset->type == t)
685 return rrset;
686 rrset = rrset->next;
687 }
688 return NULL;
689 }
690
691 /** remove rrset of this type from domain */
692 static void
domain_remove_rrset(struct auth_data * node,uint16_t rr_type)693 domain_remove_rrset(struct auth_data* node, uint16_t rr_type)
694 {
695 struct auth_rrset* rrset, *prev;
696 if(!node) return;
697 prev = NULL;
698 rrset = node->rrsets;
699 while(rrset) {
700 if(rrset->type == rr_type) {
701 /* found it, now delete it */
702 if(prev) prev->next = rrset->next;
703 else node->rrsets = rrset->next;
704 auth_rrset_delete(rrset);
705 return;
706 }
707 prev = rrset;
708 rrset = rrset->next;
709 }
710 }
711
712 /** find an rrsig index in the rrset. returns true if found */
713 static int
az_rrset_find_rrsig(struct packed_rrset_data * d,uint8_t * rdata,size_t len,size_t * index)714 az_rrset_find_rrsig(struct packed_rrset_data* d, uint8_t* rdata, size_t len,
715 size_t* index)
716 {
717 size_t i;
718 for(i=d->count; i<d->count + d->rrsig_count; i++) {
719 if(d->rr_len[i] != len)
720 continue;
721 if(memcmp(d->rr_data[i], rdata, len) == 0) {
722 *index = i;
723 return 1;
724 }
725 }
726 return 0;
727 }
728
729 /** see if rdata is duplicate */
730 static int
rdata_duplicate(struct packed_rrset_data * d,uint8_t * rdata,size_t len)731 rdata_duplicate(struct packed_rrset_data* d, uint8_t* rdata, size_t len)
732 {
733 size_t i;
734 for(i=0; i<d->count + d->rrsig_count; i++) {
735 if(d->rr_len[i] != len)
736 continue;
737 if(memcmp(d->rr_data[i], rdata, len) == 0)
738 return 1;
739 }
740 return 0;
741 }
742
743 /** get rrsig type covered from rdata.
744 * @param rdata: rdata in wireformat, starting with 16bit rdlength.
745 * @param rdatalen: length of rdata buffer.
746 * @return type covered (or 0).
747 */
748 static uint16_t
rrsig_rdata_get_type_covered(uint8_t * rdata,size_t rdatalen)749 rrsig_rdata_get_type_covered(uint8_t* rdata, size_t rdatalen)
750 {
751 if(rdatalen < 4)
752 return 0;
753 return sldns_read_uint16(rdata+2);
754 }
755
756 /** remove RR from existing RRset. Also sig, if it is a signature.
757 * reallocates the packed rrset for a new one, false on alloc failure */
758 static int
rrset_remove_rr(struct auth_rrset * rrset,size_t index)759 rrset_remove_rr(struct auth_rrset* rrset, size_t index)
760 {
761 struct packed_rrset_data* d, *old = rrset->data;
762 size_t i;
763 if(index >= old->count + old->rrsig_count)
764 return 0; /* index out of bounds */
765 d = (struct packed_rrset_data*)calloc(1, packed_rrset_sizeof(old) - (
766 sizeof(size_t) + sizeof(uint8_t*) + sizeof(time_t) +
767 old->rr_len[index]));
768 if(!d) {
769 log_err("malloc failure");
770 return 0;
771 }
772 d->ttl = old->ttl;
773 d->count = old->count;
774 d->rrsig_count = old->rrsig_count;
775 if(index < d->count) d->count--;
776 else d->rrsig_count--;
777 d->trust = old->trust;
778 d->security = old->security;
779
780 /* set rr_len, needed for ptr_fixup */
781 d->rr_len = (size_t*)((uint8_t*)d +
782 sizeof(struct packed_rrset_data));
783 if(index > 0)
784 memmove(d->rr_len, old->rr_len, (index)*sizeof(size_t));
785 if(index+1 < old->count+old->rrsig_count)
786 memmove(&d->rr_len[index], &old->rr_len[index+1],
787 (old->count+old->rrsig_count - (index+1))*sizeof(size_t));
788 packed_rrset_ptr_fixup(d);
789
790 /* move over ttls */
791 if(index > 0)
792 memmove(d->rr_ttl, old->rr_ttl, (index)*sizeof(time_t));
793 if(index+1 < old->count+old->rrsig_count)
794 memmove(&d->rr_ttl[index], &old->rr_ttl[index+1],
795 (old->count+old->rrsig_count - (index+1))*sizeof(time_t));
796
797 /* move over rr_data */
798 for(i=0; i<d->count+d->rrsig_count; i++) {
799 size_t oldi;
800 if(i < index) oldi = i;
801 else oldi = i+1;
802 memmove(d->rr_data[i], old->rr_data[oldi], d->rr_len[i]);
803 }
804
805 /* recalc ttl (lowest of remaining RR ttls) */
806 if(d->count + d->rrsig_count > 0)
807 d->ttl = d->rr_ttl[0];
808 for(i=0; i<d->count+d->rrsig_count; i++) {
809 if(d->rr_ttl[i] < d->ttl)
810 d->ttl = d->rr_ttl[i];
811 }
812
813 free(rrset->data);
814 rrset->data = d;
815 return 1;
816 }
817
818 /** add RR to existing RRset. If insert_sig is true, add to rrsigs.
819 * This reallocates the packed rrset for a new one */
820 static int
rrset_add_rr(struct auth_rrset * rrset,uint32_t rr_ttl,uint8_t * rdata,size_t rdatalen,int insert_sig)821 rrset_add_rr(struct auth_rrset* rrset, uint32_t rr_ttl, uint8_t* rdata,
822 size_t rdatalen, int insert_sig)
823 {
824 struct packed_rrset_data* d, *old = rrset->data;
825 size_t total, old_total;
826
827 d = (struct packed_rrset_data*)calloc(1, packed_rrset_sizeof(old)
828 + sizeof(size_t) + sizeof(uint8_t*) + sizeof(time_t)
829 + rdatalen);
830 if(!d) {
831 log_err("out of memory");
832 return 0;
833 }
834 /* copy base values */
835 memcpy(d, old, sizeof(struct packed_rrset_data));
836 if(!insert_sig) {
837 d->count++;
838 } else {
839 d->rrsig_count++;
840 }
841 old_total = old->count + old->rrsig_count;
842 total = d->count + d->rrsig_count;
843 /* set rr_len, needed for ptr_fixup */
844 d->rr_len = (size_t*)((uint8_t*)d +
845 sizeof(struct packed_rrset_data));
846 if(old->count != 0)
847 memmove(d->rr_len, old->rr_len, old->count*sizeof(size_t));
848 if(old->rrsig_count != 0)
849 memmove(d->rr_len+d->count, old->rr_len+old->count,
850 old->rrsig_count*sizeof(size_t));
851 if(!insert_sig)
852 d->rr_len[d->count-1] = rdatalen;
853 else d->rr_len[total-1] = rdatalen;
854 packed_rrset_ptr_fixup(d);
855 if((time_t)rr_ttl < d->ttl)
856 d->ttl = rr_ttl;
857
858 /* copy old values into new array */
859 if(old->count != 0) {
860 memmove(d->rr_ttl, old->rr_ttl, old->count*sizeof(time_t));
861 /* all the old rr pieces are allocated sequential, so we
862 * can copy them in one go */
863 memmove(d->rr_data[0], old->rr_data[0],
864 (old->rr_data[old->count-1] - old->rr_data[0]) +
865 old->rr_len[old->count-1]);
866 }
867 if(old->rrsig_count != 0) {
868 memmove(d->rr_ttl+d->count, old->rr_ttl+old->count,
869 old->rrsig_count*sizeof(time_t));
870 memmove(d->rr_data[d->count], old->rr_data[old->count],
871 (old->rr_data[old_total-1] - old->rr_data[old->count]) +
872 old->rr_len[old_total-1]);
873 }
874
875 /* insert new value */
876 if(!insert_sig) {
877 d->rr_ttl[d->count-1] = rr_ttl;
878 memmove(d->rr_data[d->count-1], rdata, rdatalen);
879 } else {
880 d->rr_ttl[total-1] = rr_ttl;
881 memmove(d->rr_data[total-1], rdata, rdatalen);
882 }
883
884 rrset->data = d;
885 free(old);
886 return 1;
887 }
888
889 /** Create new rrset for node with packed rrset with one RR element */
890 static struct auth_rrset*
rrset_create(struct auth_data * node,uint16_t rr_type,uint32_t rr_ttl,uint8_t * rdata,size_t rdatalen)891 rrset_create(struct auth_data* node, uint16_t rr_type, uint32_t rr_ttl,
892 uint8_t* rdata, size_t rdatalen)
893 {
894 struct auth_rrset* rrset = (struct auth_rrset*)calloc(1,
895 sizeof(*rrset));
896 struct auth_rrset* p, *prev;
897 struct packed_rrset_data* d;
898 if(!rrset) {
899 log_err("out of memory");
900 return NULL;
901 }
902 rrset->type = rr_type;
903
904 /* the rrset data structure, with one RR */
905 d = (struct packed_rrset_data*)calloc(1,
906 sizeof(struct packed_rrset_data) + sizeof(size_t) +
907 sizeof(uint8_t*) + sizeof(time_t) + rdatalen);
908 if(!d) {
909 free(rrset);
910 log_err("out of memory");
911 return NULL;
912 }
913 rrset->data = d;
914 d->ttl = rr_ttl;
915 d->trust = rrset_trust_prim_noglue;
916 d->rr_len = (size_t*)((uint8_t*)d + sizeof(struct packed_rrset_data));
917 d->rr_data = (uint8_t**)&(d->rr_len[1]);
918 d->rr_ttl = (time_t*)&(d->rr_data[1]);
919 d->rr_data[0] = (uint8_t*)&(d->rr_ttl[1]);
920
921 /* insert the RR */
922 d->rr_len[0] = rdatalen;
923 d->rr_ttl[0] = rr_ttl;
924 memmove(d->rr_data[0], rdata, rdatalen);
925 d->count++;
926
927 /* insert rrset into linked list for domain */
928 /* find sorted place to link the rrset into the list */
929 prev = NULL;
930 p = node->rrsets;
931 while(p && p->type<=rr_type) {
932 prev = p;
933 p = p->next;
934 }
935 /* so, prev is smaller, and p is larger than rr_type */
936 rrset->next = p;
937 if(prev) prev->next = rrset;
938 else node->rrsets = rrset;
939 return rrset;
940 }
941
942 /** count number (and size) of rrsigs that cover a type */
943 static size_t
rrsig_num_that_cover(struct auth_rrset * rrsig,uint16_t rr_type,size_t * sigsz)944 rrsig_num_that_cover(struct auth_rrset* rrsig, uint16_t rr_type, size_t* sigsz)
945 {
946 struct packed_rrset_data* d = rrsig->data;
947 size_t i, num = 0;
948 *sigsz = 0;
949 log_assert(d && rrsig->type == LDNS_RR_TYPE_RRSIG);
950 for(i=0; i<d->count+d->rrsig_count; i++) {
951 if(rrsig_rdata_get_type_covered(d->rr_data[i],
952 d->rr_len[i]) == rr_type) {
953 num++;
954 (*sigsz) += d->rr_len[i];
955 }
956 }
957 return num;
958 }
959
960 /** See if rrsig set has covered sigs for rrset and move them over */
961 static int
rrset_moveover_rrsigs(struct auth_data * node,uint16_t rr_type,struct auth_rrset * rrset,struct auth_rrset * rrsig)962 rrset_moveover_rrsigs(struct auth_data* node, uint16_t rr_type,
963 struct auth_rrset* rrset, struct auth_rrset* rrsig)
964 {
965 size_t sigs, sigsz, i, j, total;
966 struct packed_rrset_data* sigold = rrsig->data;
967 struct packed_rrset_data* old = rrset->data;
968 struct packed_rrset_data* d, *sigd;
969
970 log_assert(rrset->type == rr_type);
971 log_assert(rrsig->type == LDNS_RR_TYPE_RRSIG);
972 sigs = rrsig_num_that_cover(rrsig, rr_type, &sigsz);
973 if(sigs == 0) {
974 /* 0 rrsigs to move over, done */
975 return 1;
976 }
977
978 /* allocate rrset sigsz larger for extra sigs elements, and
979 * allocate rrsig sigsz smaller for less sigs elements. */
980 d = (struct packed_rrset_data*)calloc(1, packed_rrset_sizeof(old)
981 + sigs*(sizeof(size_t) + sizeof(uint8_t*) + sizeof(time_t))
982 + sigsz);
983 if(!d) {
984 log_err("out of memory");
985 return 0;
986 }
987 /* copy base values */
988 total = old->count + old->rrsig_count;
989 memcpy(d, old, sizeof(struct packed_rrset_data));
990 d->rrsig_count += sigs;
991 /* setup rr_len */
992 d->rr_len = (size_t*)((uint8_t*)d +
993 sizeof(struct packed_rrset_data));
994 if(total != 0)
995 memmove(d->rr_len, old->rr_len, total*sizeof(size_t));
996 j = d->count+d->rrsig_count-sigs;
997 for(i=0; i<sigold->count+sigold->rrsig_count; i++) {
998 if(rrsig_rdata_get_type_covered(sigold->rr_data[i],
999 sigold->rr_len[i]) == rr_type) {
1000 d->rr_len[j] = sigold->rr_len[i];
1001 j++;
1002 }
1003 }
1004 packed_rrset_ptr_fixup(d);
1005
1006 /* copy old values into new array */
1007 if(total != 0) {
1008 memmove(d->rr_ttl, old->rr_ttl, total*sizeof(time_t));
1009 /* all the old rr pieces are allocated sequential, so we
1010 * can copy them in one go */
1011 memmove(d->rr_data[0], old->rr_data[0],
1012 (old->rr_data[total-1] - old->rr_data[0]) +
1013 old->rr_len[total-1]);
1014 }
1015
1016 /* move over the rrsigs to the larger rrset*/
1017 j = d->count+d->rrsig_count-sigs;
1018 for(i=0; i<sigold->count+sigold->rrsig_count; i++) {
1019 if(rrsig_rdata_get_type_covered(sigold->rr_data[i],
1020 sigold->rr_len[i]) == rr_type) {
1021 /* move this one over to location j */
1022 d->rr_ttl[j] = sigold->rr_ttl[i];
1023 memmove(d->rr_data[j], sigold->rr_data[i],
1024 sigold->rr_len[i]);
1025 if(d->rr_ttl[j] < d->ttl)
1026 d->ttl = d->rr_ttl[j];
1027 j++;
1028 }
1029 }
1030
1031 /* put it in and deallocate the old rrset */
1032 rrset->data = d;
1033 free(old);
1034
1035 /* now make rrsig set smaller */
1036 if(sigold->count+sigold->rrsig_count == sigs) {
1037 /* remove all sigs from rrsig, remove it entirely */
1038 domain_remove_rrset(node, LDNS_RR_TYPE_RRSIG);
1039 return 1;
1040 }
1041 log_assert(packed_rrset_sizeof(sigold) > sigs*(sizeof(size_t) +
1042 sizeof(uint8_t*) + sizeof(time_t)) + sigsz);
1043 sigd = (struct packed_rrset_data*)calloc(1, packed_rrset_sizeof(sigold)
1044 - sigs*(sizeof(size_t) + sizeof(uint8_t*) + sizeof(time_t))
1045 - sigsz);
1046 if(!sigd) {
1047 /* no need to free up d, it has already been placed in the
1048 * node->rrset structure */
1049 log_err("out of memory");
1050 return 0;
1051 }
1052 /* copy base values */
1053 memcpy(sigd, sigold, sizeof(struct packed_rrset_data));
1054 /* in sigd the RRSIGs are stored in the base of the RR, in count */
1055 sigd->count -= sigs;
1056 /* setup rr_len */
1057 sigd->rr_len = (size_t*)((uint8_t*)sigd +
1058 sizeof(struct packed_rrset_data));
1059 j = 0;
1060 for(i=0; i<sigold->count+sigold->rrsig_count; i++) {
1061 if(rrsig_rdata_get_type_covered(sigold->rr_data[i],
1062 sigold->rr_len[i]) != rr_type) {
1063 sigd->rr_len[j] = sigold->rr_len[i];
1064 j++;
1065 }
1066 }
1067 packed_rrset_ptr_fixup(sigd);
1068
1069 /* copy old values into new rrsig array */
1070 j = 0;
1071 for(i=0; i<sigold->count+sigold->rrsig_count; i++) {
1072 if(rrsig_rdata_get_type_covered(sigold->rr_data[i],
1073 sigold->rr_len[i]) != rr_type) {
1074 /* move this one over to location j */
1075 sigd->rr_ttl[j] = sigold->rr_ttl[i];
1076 memmove(sigd->rr_data[j], sigold->rr_data[i],
1077 sigold->rr_len[i]);
1078 if(j==0) sigd->ttl = sigd->rr_ttl[j];
1079 else {
1080 if(sigd->rr_ttl[j] < sigd->ttl)
1081 sigd->ttl = sigd->rr_ttl[j];
1082 }
1083 j++;
1084 }
1085 }
1086
1087 /* put it in and deallocate the old rrset */
1088 rrsig->data = sigd;
1089 free(sigold);
1090
1091 return 1;
1092 }
1093
1094 /** copy the rrsigs from the rrset to the rrsig rrset, because the rrset
1095 * is going to be deleted. reallocates the RRSIG rrset data. */
1096 static int
rrsigs_copy_from_rrset_to_rrsigset(struct auth_rrset * rrset,struct auth_rrset * rrsigset)1097 rrsigs_copy_from_rrset_to_rrsigset(struct auth_rrset* rrset,
1098 struct auth_rrset* rrsigset)
1099 {
1100 size_t i;
1101 if(rrset->data->rrsig_count == 0)
1102 return 1;
1103
1104 /* move them over one by one, because there might be duplicates,
1105 * duplicates are ignored */
1106 for(i=rrset->data->count;
1107 i<rrset->data->count+rrset->data->rrsig_count; i++) {
1108 uint8_t* rdata = rrset->data->rr_data[i];
1109 size_t rdatalen = rrset->data->rr_len[i];
1110 time_t rr_ttl = rrset->data->rr_ttl[i];
1111
1112 if(rdata_duplicate(rrsigset->data, rdata, rdatalen)) {
1113 continue;
1114 }
1115 if(!rrset_add_rr(rrsigset, rr_ttl, rdata, rdatalen, 0))
1116 return 0;
1117 }
1118 return 1;
1119 }
1120
1121 /** Add rr to node, ignores duplicate RRs,
1122 * rdata points to buffer with rdatalen octets, starts with 2bytelength. */
1123 static int
az_domain_add_rr(struct auth_data * node,uint16_t rr_type,uint32_t rr_ttl,uint8_t * rdata,size_t rdatalen,int * duplicate)1124 az_domain_add_rr(struct auth_data* node, uint16_t rr_type, uint32_t rr_ttl,
1125 uint8_t* rdata, size_t rdatalen, int* duplicate)
1126 {
1127 struct auth_rrset* rrset;
1128 /* packed rrsets have their rrsigs along with them, sort them out */
1129 if(rr_type == LDNS_RR_TYPE_RRSIG) {
1130 uint16_t ctype = rrsig_rdata_get_type_covered(rdata, rdatalen);
1131 if((rrset=az_domain_rrset(node, ctype))!= NULL) {
1132 /* a node of the correct type exists, add the RRSIG
1133 * to the rrset of the covered data type */
1134 if(rdata_duplicate(rrset->data, rdata, rdatalen)) {
1135 if(duplicate) *duplicate = 1;
1136 return 1;
1137 }
1138 if(!rrset_add_rr(rrset, rr_ttl, rdata, rdatalen, 1))
1139 return 0;
1140 } else if((rrset=az_domain_rrset(node, rr_type))!= NULL) {
1141 /* add RRSIG to rrset of type RRSIG */
1142 if(rdata_duplicate(rrset->data, rdata, rdatalen)) {
1143 if(duplicate) *duplicate = 1;
1144 return 1;
1145 }
1146 if(!rrset_add_rr(rrset, rr_ttl, rdata, rdatalen, 0))
1147 return 0;
1148 } else {
1149 /* create rrset of type RRSIG */
1150 if(!rrset_create(node, rr_type, rr_ttl, rdata,
1151 rdatalen))
1152 return 0;
1153 }
1154 } else {
1155 /* normal RR type */
1156 if((rrset=az_domain_rrset(node, rr_type))!= NULL) {
1157 /* add data to existing node with data type */
1158 if(rdata_duplicate(rrset->data, rdata, rdatalen)) {
1159 if(duplicate) *duplicate = 1;
1160 return 1;
1161 }
1162 if(!rrset_add_rr(rrset, rr_ttl, rdata, rdatalen, 0))
1163 return 0;
1164 } else {
1165 struct auth_rrset* rrsig;
1166 /* create new node with data type */
1167 if(!(rrset=rrset_create(node, rr_type, rr_ttl, rdata,
1168 rdatalen)))
1169 return 0;
1170
1171 /* see if node of type RRSIG has signatures that
1172 * cover the data type, and move them over */
1173 /* and then make the RRSIG type smaller */
1174 if((rrsig=az_domain_rrset(node, LDNS_RR_TYPE_RRSIG))
1175 != NULL) {
1176 if(!rrset_moveover_rrsigs(node, rr_type,
1177 rrset, rrsig))
1178 return 0;
1179 }
1180 }
1181 }
1182 return 1;
1183 }
1184
1185 /** insert RR into zone, ignore duplicates */
1186 static int
az_insert_rr(struct auth_zone * z,uint8_t * rr,size_t rr_len,size_t dname_len,int * duplicate)1187 az_insert_rr(struct auth_zone* z, uint8_t* rr, size_t rr_len,
1188 size_t dname_len, int* duplicate)
1189 {
1190 struct auth_data* node;
1191 uint8_t* dname = rr;
1192 uint16_t rr_type = sldns_wirerr_get_type(rr, rr_len, dname_len);
1193 uint16_t rr_class = sldns_wirerr_get_class(rr, rr_len, dname_len);
1194 uint32_t rr_ttl = sldns_wirerr_get_ttl(rr, rr_len, dname_len);
1195 size_t rdatalen = ((size_t)sldns_wirerr_get_rdatalen(rr, rr_len,
1196 dname_len))+2;
1197 /* rdata points to rdata prefixed with uint16 rdatalength */
1198 uint8_t* rdata = sldns_wirerr_get_rdatawl(rr, rr_len, dname_len);
1199
1200 if(rr_class != z->dclass) {
1201 log_err("wrong class for RR");
1202 return 0;
1203 }
1204 if(rr_type == LDNS_RR_TYPE_A && rdatalen != 6 /* 2 + 4 */) {
1205 log_err("malformed A record");
1206 return 0;
1207 } else if(rr_type == LDNS_RR_TYPE_AAAA && rdatalen != 18 /* 2 + 16 */) {
1208 log_err("malformed AAAA record");
1209 return 0;
1210 }
1211 if(!dname_subdomain_c(dname, z->name)) {
1212 char nm[LDNS_MAX_DOMAINLEN], zn[LDNS_MAX_DOMAINLEN];
1213 dname_str(dname, nm);
1214 dname_str(z->name, zn);
1215 verbose(VERB_ALGO, "auth-zone %s: dropping out-of-zone RR "
1216 "%s", zn, nm);
1217 if(duplicate) *duplicate=1; /* treat as bad insert */
1218 return 1;
1219 }
1220 if(!(node=az_domain_find_or_create(z, dname, dname_len))) {
1221 log_err("cannot create domain");
1222 return 0;
1223 }
1224 if(!az_domain_add_rr(node, rr_type, rr_ttl, rdata, rdatalen,
1225 duplicate)) {
1226 log_err("cannot add RR to domain");
1227 if(node->rrsets == NULL) {
1228 (void)rbtree_delete(&z->data, node);
1229 auth_data_delete(node);
1230 }
1231 return 0;
1232 }
1233 if(z->rpz) {
1234 if(!(rpz_insert_rr(z->rpz, z->name, z->namelen, dname,
1235 dname_len, rr_type, rr_class, rr_ttl, rdata, rdatalen,
1236 rr, rr_len)))
1237 return 0;
1238 }
1239 return 1;
1240 }
1241
1242 /** Remove rr from node, ignores nonexisting RRs,
1243 * rdata points to buffer with rdatalen octets, starts with 2bytelength. */
1244 static int
az_domain_remove_rr(struct auth_data * node,uint16_t rr_type,uint8_t * rdata,size_t rdatalen,int * nonexist)1245 az_domain_remove_rr(struct auth_data* node, uint16_t rr_type,
1246 uint8_t* rdata, size_t rdatalen, int* nonexist)
1247 {
1248 struct auth_rrset* rrset;
1249 size_t index = 0;
1250
1251 /* find the plain RR of the given type */
1252 if((rrset=az_domain_rrset(node, rr_type))!= NULL) {
1253 if(packed_rrset_find_rr(rrset->data, rdata, rdatalen, &index)) {
1254 if(rrset->data->count == 1 &&
1255 rrset->data->rrsig_count == 0) {
1256 /* last RR, delete the rrset */
1257 domain_remove_rrset(node, rr_type);
1258 } else if(rrset->data->count == 1 &&
1259 rrset->data->rrsig_count != 0) {
1260 /* move RRSIGs to the RRSIG rrset, or
1261 * this one becomes that RRset */
1262 struct auth_rrset* rrsigset = az_domain_rrset(
1263 node, LDNS_RR_TYPE_RRSIG);
1264 if(rrsigset) {
1265 /* move left over rrsigs to the
1266 * existing rrset of type RRSIG */
1267 rrsigs_copy_from_rrset_to_rrsigset(
1268 rrset, rrsigset);
1269 /* and then delete the rrset */
1270 domain_remove_rrset(node, rr_type);
1271 } else {
1272 /* no rrset of type RRSIG, this
1273 * set is now of that type,
1274 * just remove the rr */
1275 if(!rrset_remove_rr(rrset, index))
1276 return 0;
1277 rrset->type = LDNS_RR_TYPE_RRSIG;
1278 rrset->data->count = rrset->data->rrsig_count;
1279 rrset->data->rrsig_count = 0;
1280 }
1281 } else {
1282 /* remove the RR from the rrset */
1283 if(!rrset_remove_rr(rrset, index))
1284 return 0;
1285 }
1286 return 1;
1287 }
1288 /* rr not found in rrset */
1289 }
1290
1291 /* is it a type RRSIG, look under the covered type */
1292 if(rr_type == LDNS_RR_TYPE_RRSIG) {
1293 uint16_t ctype = rrsig_rdata_get_type_covered(rdata, rdatalen);
1294 if((rrset=az_domain_rrset(node, ctype))!= NULL) {
1295 if(az_rrset_find_rrsig(rrset->data, rdata, rdatalen,
1296 &index)) {
1297 /* rrsig should have d->count > 0, be
1298 * over some rr of that type */
1299 /* remove the rrsig from the rrsigs list of the
1300 * rrset */
1301 if(!rrset_remove_rr(rrset, index))
1302 return 0;
1303 return 1;
1304 }
1305 }
1306 /* also RRSIG not found */
1307 }
1308
1309 /* nothing found to delete */
1310 if(nonexist) *nonexist = 1;
1311 return 1;
1312 }
1313
1314 /** remove RR from zone, ignore if it does not exist, false on alloc failure*/
1315 static int
az_remove_rr(struct auth_zone * z,uint8_t * rr,size_t rr_len,size_t dname_len,int * nonexist)1316 az_remove_rr(struct auth_zone* z, uint8_t* rr, size_t rr_len,
1317 size_t dname_len, int* nonexist)
1318 {
1319 struct auth_data* node;
1320 uint8_t* dname = rr;
1321 uint16_t rr_type = sldns_wirerr_get_type(rr, rr_len, dname_len);
1322 uint16_t rr_class = sldns_wirerr_get_class(rr, rr_len, dname_len);
1323 size_t rdatalen = ((size_t)sldns_wirerr_get_rdatalen(rr, rr_len,
1324 dname_len))+2;
1325 /* rdata points to rdata prefixed with uint16 rdatalength */
1326 uint8_t* rdata = sldns_wirerr_get_rdatawl(rr, rr_len, dname_len);
1327
1328 if(rr_class != z->dclass) {
1329 log_err("wrong class for RR");
1330 /* really also a nonexisting entry, because no records
1331 * of that class in the zone, but return an error because
1332 * getting records of the wrong class is a failure of the
1333 * zone transfer */
1334 return 0;
1335 }
1336 node = az_find_name(z, dname, dname_len);
1337 if(!node) {
1338 /* node with that name does not exist */
1339 /* nonexisting entry, because no such name */
1340 *nonexist = 1;
1341 return 1;
1342 }
1343 if(!az_domain_remove_rr(node, rr_type, rdata, rdatalen, nonexist)) {
1344 /* alloc failure or so */
1345 return 0;
1346 }
1347 /* remove the node, if necessary */
1348 /* an rrsets==NULL entry is not kept around for empty nonterminals,
1349 * and also parent nodes are not kept around, so we just delete it */
1350 if(node->rrsets == NULL) {
1351 (void)rbtree_delete(&z->data, node);
1352 auth_data_delete(node);
1353 }
1354 if(z->rpz) {
1355 rpz_remove_rr(z->rpz, z->name, z->namelen, dname, dname_len,
1356 rr_type, rr_class, rdata, rdatalen);
1357 }
1358 return 1;
1359 }
1360
1361 /** decompress an RR into the buffer where it'll be an uncompressed RR
1362 * with uncompressed dname and uncompressed rdata (dnames) */
1363 static int
decompress_rr_into_buffer(struct sldns_buffer * buf,uint8_t * pkt,size_t pktlen,uint8_t * dname,uint16_t rr_type,uint16_t rr_class,uint32_t rr_ttl,uint8_t * rr_data,uint16_t rr_rdlen)1364 decompress_rr_into_buffer(struct sldns_buffer* buf, uint8_t* pkt,
1365 size_t pktlen, uint8_t* dname, uint16_t rr_type, uint16_t rr_class,
1366 uint32_t rr_ttl, uint8_t* rr_data, uint16_t rr_rdlen)
1367 {
1368 sldns_buffer pktbuf;
1369 size_t dname_len = 0;
1370 size_t rdlenpos;
1371 size_t rdlen;
1372 uint8_t* rd;
1373 const sldns_rr_descriptor* desc;
1374 sldns_buffer_init_frm_data(&pktbuf, pkt, pktlen);
1375 sldns_buffer_clear(buf);
1376
1377 /* decompress dname */
1378 sldns_buffer_set_position(&pktbuf,
1379 (size_t)(dname - sldns_buffer_current(&pktbuf)));
1380 dname_len = pkt_dname_len(&pktbuf);
1381 if(dname_len == 0) return 0; /* parse fail on dname */
1382 if(!sldns_buffer_available(buf, dname_len)) return 0;
1383 dname_pkt_copy(&pktbuf, sldns_buffer_current(buf), dname);
1384 sldns_buffer_skip(buf, (ssize_t)dname_len);
1385
1386 /* type, class, ttl and rdatalength fields */
1387 if(!sldns_buffer_available(buf, 10)) return 0;
1388 sldns_buffer_write_u16(buf, rr_type);
1389 sldns_buffer_write_u16(buf, rr_class);
1390 sldns_buffer_write_u32(buf, rr_ttl);
1391 rdlenpos = sldns_buffer_position(buf);
1392 sldns_buffer_write_u16(buf, 0); /* rd length position */
1393
1394 /* decompress rdata */
1395 desc = sldns_rr_descript(rr_type);
1396 rd = rr_data;
1397 rdlen = rr_rdlen;
1398 if(rdlen > 0 && desc && desc->_dname_count > 0) {
1399 int count = (int)desc->_dname_count;
1400 int rdf = 0;
1401 size_t len; /* how much rdata to plain copy */
1402 size_t uncompressed_len, compressed_len;
1403 size_t oldpos;
1404 /* decompress dnames. */
1405 while(rdlen > 0 && count) {
1406 switch(desc->_wireformat[rdf]) {
1407 case LDNS_RDF_TYPE_DNAME:
1408 sldns_buffer_set_position(&pktbuf,
1409 (size_t)(rd -
1410 sldns_buffer_begin(&pktbuf)));
1411 oldpos = sldns_buffer_position(&pktbuf);
1412 /* moves pktbuf to right after the
1413 * compressed dname, and returns uncompressed
1414 * dname length */
1415 uncompressed_len = pkt_dname_len(&pktbuf);
1416 if(!uncompressed_len)
1417 return 0; /* parse error in dname */
1418 compressed_len = sldns_buffer_position(
1419 &pktbuf) - oldpos;
1420 if(compressed_len > rdlen)
1421 return 0; /* dname exceeds rdata */
1422 if(!sldns_buffer_available(buf,
1423 uncompressed_len))
1424 /* dname too long for buffer */
1425 return 0;
1426 dname_pkt_copy(&pktbuf,
1427 sldns_buffer_current(buf), rd);
1428 sldns_buffer_skip(buf, (ssize_t)uncompressed_len);
1429 rd += compressed_len;
1430 rdlen -= compressed_len;
1431 count--;
1432 len = 0;
1433 break;
1434 case LDNS_RDF_TYPE_STR:
1435 /* Check rdlen for resilience, because it is
1436 * checked above, that rdlen > 0 */
1437 if(rdlen < 1) return 0; /* malformed */
1438 len = rd[0] + 1;
1439 break;
1440 default:
1441 len = get_rdf_size(desc->_wireformat[rdf]);
1442 break;
1443 }
1444 if(len) {
1445 if(len > rdlen)
1446 return 0; /* malformed */
1447 if(!sldns_buffer_available(buf, len))
1448 return 0; /* too long for buffer */
1449 sldns_buffer_write(buf, rd, len);
1450 rd += len;
1451 rdlen -= len;
1452 }
1453 rdf++;
1454 }
1455 }
1456 /* copy remaining data */
1457 if(rdlen > 0) {
1458 if(!sldns_buffer_available(buf, rdlen)) return 0;
1459 sldns_buffer_write(buf, rd, rdlen);
1460 }
1461 /* fixup rdlength */
1462 sldns_buffer_write_u16_at(buf, rdlenpos,
1463 sldns_buffer_position(buf)-rdlenpos-2);
1464 sldns_buffer_flip(buf);
1465 return 1;
1466 }
1467
1468 /** insert RR into zone, from packet, decompress RR,
1469 * if duplicate is nonNULL set the flag but otherwise ignore duplicates */
1470 static int
az_insert_rr_decompress(struct auth_zone * z,uint8_t * pkt,size_t pktlen,struct sldns_buffer * scratch_buffer,uint8_t * dname,uint16_t rr_type,uint16_t rr_class,uint32_t rr_ttl,uint8_t * rr_data,uint16_t rr_rdlen,int * duplicate)1471 az_insert_rr_decompress(struct auth_zone* z, uint8_t* pkt, size_t pktlen,
1472 struct sldns_buffer* scratch_buffer, uint8_t* dname, uint16_t rr_type,
1473 uint16_t rr_class, uint32_t rr_ttl, uint8_t* rr_data,
1474 uint16_t rr_rdlen, int* duplicate)
1475 {
1476 uint8_t* rr;
1477 size_t rr_len;
1478 size_t dname_len;
1479 if(!decompress_rr_into_buffer(scratch_buffer, pkt, pktlen, dname,
1480 rr_type, rr_class, rr_ttl, rr_data, rr_rdlen)) {
1481 log_err("could not decompress RR");
1482 return 0;
1483 }
1484 rr = sldns_buffer_begin(scratch_buffer);
1485 rr_len = sldns_buffer_limit(scratch_buffer);
1486 dname_len = dname_valid(rr, rr_len);
1487 return az_insert_rr(z, rr, rr_len, dname_len, duplicate);
1488 }
1489
1490 /** remove RR from zone, from packet, decompress RR,
1491 * if nonexist is nonNULL set the flag but otherwise ignore nonexisting entries*/
1492 static int
az_remove_rr_decompress(struct auth_zone * z,uint8_t * pkt,size_t pktlen,struct sldns_buffer * scratch_buffer,uint8_t * dname,uint16_t rr_type,uint16_t rr_class,uint32_t rr_ttl,uint8_t * rr_data,uint16_t rr_rdlen,int * nonexist)1493 az_remove_rr_decompress(struct auth_zone* z, uint8_t* pkt, size_t pktlen,
1494 struct sldns_buffer* scratch_buffer, uint8_t* dname, uint16_t rr_type,
1495 uint16_t rr_class, uint32_t rr_ttl, uint8_t* rr_data,
1496 uint16_t rr_rdlen, int* nonexist)
1497 {
1498 uint8_t* rr;
1499 size_t rr_len;
1500 size_t dname_len;
1501 if(!decompress_rr_into_buffer(scratch_buffer, pkt, pktlen, dname,
1502 rr_type, rr_class, rr_ttl, rr_data, rr_rdlen)) {
1503 log_err("could not decompress RR");
1504 return 0;
1505 }
1506 rr = sldns_buffer_begin(scratch_buffer);
1507 rr_len = sldns_buffer_limit(scratch_buffer);
1508 dname_len = dname_valid(rr, rr_len);
1509 return az_remove_rr(z, rr, rr_len, dname_len, nonexist);
1510 }
1511
1512 /**
1513 * Parse zonefile
1514 * @param z: zone to read in.
1515 * @param in: file to read from (just opened).
1516 * @param rr: buffer to use for RRs, 64k.
1517 * passed so that recursive includes can use the same buffer and do
1518 * not grow the stack too much.
1519 * @param rrbuflen: sizeof rr buffer.
1520 * @param state: parse state with $ORIGIN, $TTL and 'prev-dname' and so on,
1521 * that is kept between includes.
1522 * The lineno is set at 1 and then increased by the function.
1523 * @param fname: file name.
1524 * @param depth: recursion depth for includes
1525 * @param cfg: config for chroot.
1526 * returns false on failure, has printed an error message
1527 */
1528 static int
az_parse_file(struct auth_zone * z,FILE * in,uint8_t * rr,size_t rrbuflen,struct sldns_file_parse_state * state,char * fname,int depth,struct config_file * cfg)1529 az_parse_file(struct auth_zone* z, FILE* in, uint8_t* rr, size_t rrbuflen,
1530 struct sldns_file_parse_state* state, char* fname, int depth,
1531 struct config_file* cfg)
1532 {
1533 size_t rr_len, dname_len;
1534 int status;
1535 state->lineno = 1;
1536
1537 while(!feof(in)) {
1538 rr_len = rrbuflen;
1539 dname_len = 0;
1540 status = sldns_fp2wire_rr_buf(in, rr, &rr_len, &dname_len,
1541 state);
1542 if(status == LDNS_WIREPARSE_ERR_INCLUDE && rr_len == 0) {
1543 /* we have $INCLUDE or $something */
1544 if(strncmp((char*)rr, "$INCLUDE ", 9) == 0 ||
1545 strncmp((char*)rr, "$INCLUDE\t", 9) == 0) {
1546 FILE* inc;
1547 int lineno_orig = state->lineno;
1548 char* incfile = (char*)rr + 8;
1549 if(depth > MAX_INCLUDE_DEPTH) {
1550 log_err("%s:%d max include depth"
1551 "exceeded", fname, state->lineno);
1552 return 0;
1553 }
1554 /* A $INCLUDE is not expected for a secondary zone. */
1555 if(z->zone_is_slave) {
1556 log_err("%s:%d $INCLUDE not allowed for secondary zone", fname, state->lineno);
1557 return 0;
1558 }
1559 /* skip spaces */
1560 while(*incfile == ' ' || *incfile == '\t')
1561 incfile++;
1562 /* adjust for chroot on include file */
1563 if(cfg->chrootdir && cfg->chrootdir[0] &&
1564 strncmp(incfile, cfg->chrootdir,
1565 strlen(cfg->chrootdir)) == 0)
1566 incfile += strlen(cfg->chrootdir);
1567 incfile = strdup(incfile);
1568 if(!incfile) {
1569 log_err("malloc failure");
1570 return 0;
1571 }
1572 verbose(VERB_ALGO, "opening $INCLUDE %s",
1573 incfile);
1574 inc = fopen(incfile, "r");
1575 if(!inc) {
1576 log_err("%s:%d cannot open include "
1577 "file %s: %s", fname,
1578 lineno_orig, incfile,
1579 strerror(errno));
1580 free(incfile);
1581 return 0;
1582 }
1583 /* recurse read that file now */
1584 if(!az_parse_file(z, inc, rr, rrbuflen,
1585 state, incfile, depth+1, cfg)) {
1586 log_err("%s:%d cannot parse include "
1587 "file %s", fname,
1588 lineno_orig, incfile);
1589 fclose(inc);
1590 free(incfile);
1591 return 0;
1592 }
1593 fclose(inc);
1594 verbose(VERB_ALGO, "done with $INCLUDE %s",
1595 incfile);
1596 free(incfile);
1597 state->lineno = lineno_orig;
1598 }
1599 continue;
1600 }
1601 if(status != 0) {
1602 log_err("parse error %s %d:%d: %s", fname,
1603 state->lineno, LDNS_WIREPARSE_OFFSET(status),
1604 sldns_get_errorstr_parse(status));
1605 return 0;
1606 }
1607 if(rr_len == 0) {
1608 /* EMPTY line, TTL or ORIGIN */
1609 continue;
1610 }
1611 /* insert wirerr in rrbuf */
1612 if(!az_insert_rr(z, rr, rr_len, dname_len, NULL)) {
1613 char buf[17];
1614 sldns_wire2str_type_buf(sldns_wirerr_get_type(rr,
1615 rr_len, dname_len), buf, sizeof(buf));
1616 log_err("%s:%d cannot insert RR of type %s",
1617 fname, state->lineno, buf);
1618 return 0;
1619 }
1620 }
1621 return 1;
1622 }
1623
auth_zone_clear_data(struct auth_zone * z)1624 void auth_zone_clear_data(struct auth_zone* z)
1625 {
1626 /* clear the data tree */
1627 traverse_postorder(&z->data, auth_data_del, NULL);
1628 rbtree_init(&z->data, &auth_data_cmp);
1629 /* clear the RPZ policies */
1630 if(z->rpz)
1631 rpz_clear(z->rpz);
1632 }
1633
1634 int
auth_zone_read_zonefile(struct auth_zone * z,struct config_file * cfg)1635 auth_zone_read_zonefile(struct auth_zone* z, struct config_file* cfg)
1636 {
1637 uint8_t rr[LDNS_RR_BUF_SIZE];
1638 struct sldns_file_parse_state state;
1639 char* zfilename;
1640 FILE* in;
1641 if(!z || !z->zonefile || z->zonefile[0]==0)
1642 return 1; /* no file, or "", nothing to read */
1643
1644 zfilename = z->zonefile;
1645 if(cfg->chrootdir && cfg->chrootdir[0] && strncmp(zfilename,
1646 cfg->chrootdir, strlen(cfg->chrootdir)) == 0)
1647 zfilename += strlen(cfg->chrootdir);
1648 if(verbosity >= VERB_ALGO) {
1649 char nm[LDNS_MAX_DOMAINLEN];
1650 dname_str(z->name, nm);
1651 verbose(VERB_ALGO, "read zonefile %s for %s", zfilename, nm);
1652 }
1653 in = fopen(zfilename, "r");
1654 if(!in) {
1655 char* n = sldns_wire2str_dname(z->name, z->namelen);
1656 if(errno == ENOENT) {
1657 /* For a secondary, fetch the zone contents later, no
1658 * file yet. For a primary, no way to fetch the zone,
1659 * so warn. */
1660 if(z->zone_is_slave)
1661 verbose(VERB_ALGO, "no zonefile %s for %s",
1662 zfilename, n?n:"error");
1663 else
1664 log_warn("no zonefile %s for %s",
1665 zfilename, n?n:"error");
1666 free(n);
1667 return 1;
1668 }
1669 log_err("cannot open zonefile %s for %s: %s",
1670 zfilename, n?n:"error", strerror(errno));
1671 free(n);
1672 return 0;
1673 }
1674
1675 /* clear the data tree */
1676 traverse_postorder(&z->data, auth_data_del, NULL);
1677 rbtree_init(&z->data, &auth_data_cmp);
1678 /* clear the RPZ policies */
1679 if(z->rpz)
1680 rpz_clear(z->rpz);
1681
1682 memset(&state, 0, sizeof(state));
1683 /* default TTL to 3600 */
1684 state.default_ttl = 3600;
1685 /* set $ORIGIN to the zone name */
1686 if(z->namelen <= sizeof(state.origin)) {
1687 memcpy(state.origin, z->name, z->namelen);
1688 state.origin_len = z->namelen;
1689 }
1690 /* parse the (toplevel) file */
1691 if(!az_parse_file(z, in, rr, sizeof(rr), &state, zfilename, 0, cfg)) {
1692 char* n = sldns_wire2str_dname(z->name, z->namelen);
1693 log_err("error parsing zonefile %s for %s",
1694 zfilename, n?n:"error");
1695 free(n);
1696 fclose(in);
1697 return 0;
1698 }
1699 fclose(in);
1700
1701 if(z->rpz)
1702 rpz_finish_config(z->rpz);
1703 return 1;
1704 }
1705
1706 /** write buffer to file and check return codes */
1707 static int
write_out(FILE * out,const char * str,size_t len)1708 write_out(FILE* out, const char* str, size_t len)
1709 {
1710 size_t r;
1711 if(len == 0)
1712 return 1;
1713 r = fwrite(str, 1, len, out);
1714 if(r == 0) {
1715 log_err("write failed: %s", strerror(errno));
1716 return 0;
1717 } else if(r < len) {
1718 log_err("write failed: too short (disk full?)");
1719 return 0;
1720 }
1721 return 1;
1722 }
1723
1724 /** convert auth rr to string */
1725 static int
auth_rr_to_string(uint8_t * nm,size_t nmlen,uint16_t tp,uint16_t cl,struct packed_rrset_data * data,size_t i,char * s,size_t buflen)1726 auth_rr_to_string(uint8_t* nm, size_t nmlen, uint16_t tp, uint16_t cl,
1727 struct packed_rrset_data* data, size_t i, char* s, size_t buflen)
1728 {
1729 int w = 0;
1730 size_t slen = buflen, datlen;
1731 uint8_t* dat;
1732 if(i >= data->count) tp = LDNS_RR_TYPE_RRSIG;
1733 dat = nm;
1734 datlen = nmlen;
1735 w += sldns_wire2str_dname_scan(&dat, &datlen, &s, &slen, NULL, 0, NULL);
1736 w += sldns_str_print(&s, &slen, "\t");
1737 w += sldns_str_print(&s, &slen, "%lu\t", (unsigned long)data->rr_ttl[i]);
1738 w += sldns_wire2str_class_print(&s, &slen, cl);
1739 w += sldns_str_print(&s, &slen, "\t");
1740 w += sldns_wire2str_type_print(&s, &slen, tp);
1741 w += sldns_str_print(&s, &slen, "\t");
1742 datlen = data->rr_len[i]-2;
1743 dat = data->rr_data[i]+2;
1744 w += sldns_wire2str_rdata_scan(&dat, &datlen, &s, &slen, tp, NULL, 0, NULL);
1745
1746 if(tp == LDNS_RR_TYPE_DNSKEY) {
1747 w += sldns_str_print(&s, &slen, " ;{id = %u}",
1748 sldns_calc_keytag_raw(data->rr_data[i]+2,
1749 data->rr_len[i]-2));
1750 }
1751 w += sldns_str_print(&s, &slen, "\n");
1752
1753 if(w >= (int)buflen) {
1754 log_nametypeclass(NO_VERBOSE, "RR too long to print", nm, tp, cl);
1755 return 0;
1756 }
1757 return 1;
1758 }
1759
1760 /** write rrset to file */
1761 static int
auth_zone_write_rrset(struct auth_zone * z,struct auth_data * node,struct auth_rrset * r,FILE * out)1762 auth_zone_write_rrset(struct auth_zone* z, struct auth_data* node,
1763 struct auth_rrset* r, FILE* out)
1764 {
1765 size_t i, count = r->data->count + r->data->rrsig_count;
1766 char buf[LDNS_RR_BUF_SIZE];
1767 for(i=0; i<count; i++) {
1768 if(!auth_rr_to_string(node->name, node->namelen, r->type,
1769 z->dclass, r->data, i, buf, sizeof(buf))) {
1770 verbose(VERB_ALGO, "failed to rr2str rr %d", (int)i);
1771 continue;
1772 }
1773 if(!write_out(out, buf, strlen(buf)))
1774 return 0;
1775 }
1776 return 1;
1777 }
1778
1779 /** write domain to file */
1780 static int
auth_zone_write_domain(struct auth_zone * z,struct auth_data * n,FILE * out)1781 auth_zone_write_domain(struct auth_zone* z, struct auth_data* n, FILE* out)
1782 {
1783 struct auth_rrset* r;
1784 /* if this is zone apex, write SOA first */
1785 if(z->namelen == n->namelen) {
1786 struct auth_rrset* soa = az_domain_rrset(n, LDNS_RR_TYPE_SOA);
1787 if(soa) {
1788 if(!auth_zone_write_rrset(z, n, soa, out))
1789 return 0;
1790 }
1791 }
1792 /* write all the RRsets for this domain */
1793 for(r = n->rrsets; r; r = r->next) {
1794 if(z->namelen == n->namelen &&
1795 r->type == LDNS_RR_TYPE_SOA)
1796 continue; /* skip SOA here */
1797 if(!auth_zone_write_rrset(z, n, r, out))
1798 return 0;
1799 }
1800 return 1;
1801 }
1802
auth_zone_write_file(struct auth_zone * z,const char * fname)1803 int auth_zone_write_file(struct auth_zone* z, const char* fname)
1804 {
1805 FILE* out;
1806 struct auth_data* n;
1807 out = fopen(fname, "w");
1808 if(!out) {
1809 log_err("could not open %s: %s", fname, strerror(errno));
1810 return 0;
1811 }
1812 RBTREE_FOR(n, struct auth_data*, &z->data) {
1813 if(!auth_zone_write_domain(z, n, out)) {
1814 log_err("could not write domain to %s", fname);
1815 fclose(out);
1816 return 0;
1817 }
1818 }
1819 fclose(out);
1820 return 1;
1821 }
1822
1823 /** offline verify for zonemd, while reading a zone file to immediately
1824 * spot bad hashes in zonefile as they are read.
1825 * Creates temp buffers, but uses anchors and validation environment
1826 * from the module_env. */
1827 static void
zonemd_offline_verify(struct auth_zone * z,struct module_env * env_for_val,struct module_stack * mods)1828 zonemd_offline_verify(struct auth_zone* z, struct module_env* env_for_val,
1829 struct module_stack* mods)
1830 {
1831 struct module_env env;
1832 time_t now = 0;
1833 if(!z->zonemd_check)
1834 return;
1835 env = *env_for_val;
1836 env.scratch_buffer = sldns_buffer_new(env.cfg->msg_buffer_size);
1837 if(!env.scratch_buffer) {
1838 log_err("out of memory");
1839 goto clean_exit;
1840 }
1841 env.scratch = regional_create();
1842 if(!env.now) {
1843 env.now = &now;
1844 now = time(NULL);
1845 }
1846 if(!env.scratch) {
1847 log_err("out of memory");
1848 goto clean_exit;
1849 }
1850 auth_zone_verify_zonemd(z, &env, mods, NULL, 1, 0);
1851
1852 clean_exit:
1853 /* clean up and exit */
1854 sldns_buffer_free(env.scratch_buffer);
1855 regional_destroy(env.scratch);
1856 }
1857
1858 /** read all auth zones from file (if they have) */
1859 static int
auth_zones_read_zones(struct auth_zones * az,struct config_file * cfg,struct module_env * env,struct module_stack * mods)1860 auth_zones_read_zones(struct auth_zones* az, struct config_file* cfg,
1861 struct module_env* env, struct module_stack* mods)
1862 {
1863 struct auth_zone* z;
1864 lock_rw_wrlock(&az->lock);
1865 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
1866 lock_rw_wrlock(&z->lock);
1867 if(!auth_zone_read_zonefile(z, cfg)) {
1868 /* For both secondary and primary zones, not fatal.
1869 * This keeps the server up. */
1870 auth_zone_clear_data(z);
1871 lock_rw_unlock(&z->lock);
1872 continue;
1873 }
1874 if(z->zonefile && z->zonefile[0]!=0 && env)
1875 zonemd_offline_verify(z, env, mods);
1876 lock_rw_unlock(&z->lock);
1877 }
1878 lock_rw_unlock(&az->lock);
1879 return 1;
1880 }
1881
1882 /** fetch the content of a ZONEMD RR from the rdata */
zonemd_fetch_parameters(struct auth_rrset * zonemd_rrset,size_t i,uint32_t * serial,int * scheme,int * hashalgo,uint8_t ** hash,size_t * hashlen)1883 static int zonemd_fetch_parameters(struct auth_rrset* zonemd_rrset, size_t i,
1884 uint32_t* serial, int* scheme, int* hashalgo, uint8_t** hash,
1885 size_t* hashlen)
1886 {
1887 size_t rr_len;
1888 uint8_t* rdata;
1889 if(i >= zonemd_rrset->data->count)
1890 return 0;
1891 rr_len = zonemd_rrset->data->rr_len[i];
1892 if(rr_len < 2+4+1+1)
1893 return 0; /* too short, for rdlen+serial+scheme+algo */
1894 rdata = zonemd_rrset->data->rr_data[i];
1895 *serial = sldns_read_uint32(rdata+2);
1896 *scheme = rdata[6];
1897 *hashalgo = rdata[7];
1898 *hashlen = rr_len - 8;
1899 if(*hashlen == 0)
1900 *hash = NULL;
1901 else *hash = rdata+8;
1902 return 1;
1903 }
1904
1905 /**
1906 * See if the ZONEMD scheme, hash occurs more than once.
1907 * @param zonemd_rrset: the zonemd rrset to check with the RRs in it.
1908 * @param index: index of the original, this is allowed to have that
1909 * scheme and hashalgo, but other RRs should not have it.
1910 * @param scheme: the scheme to check for.
1911 * @param hashalgo: the hash algorithm to check for.
1912 * @return true if it occurs more than once.
1913 */
zonemd_is_duplicate_scheme_hash(struct auth_rrset * zonemd_rrset,size_t index,int scheme,int hashalgo)1914 static int zonemd_is_duplicate_scheme_hash(struct auth_rrset* zonemd_rrset,
1915 size_t index, int scheme, int hashalgo)
1916 {
1917 size_t j;
1918 for(j=0; j<zonemd_rrset->data->count; j++) {
1919 uint32_t serial2 = 0;
1920 int scheme2 = 0, hashalgo2 = 0;
1921 uint8_t* hash2 = NULL;
1922 size_t hashlen2 = 0;
1923 if(index == j) {
1924 /* this is the original */
1925 continue;
1926 }
1927 if(!zonemd_fetch_parameters(zonemd_rrset, j, &serial2,
1928 &scheme2, &hashalgo2, &hash2, &hashlen2)) {
1929 /* malformed, skip it */
1930 continue;
1931 }
1932 if(scheme == scheme2 && hashalgo == hashalgo2) {
1933 /* duplicate scheme, hash */
1934 verbose(VERB_ALGO, "zonemd duplicate for scheme %d "
1935 "and hash %d", scheme, hashalgo);
1936 return 1;
1937 }
1938 }
1939 return 0;
1940 }
1941
1942 /**
1943 * Check ZONEMDs if present for the auth zone. Depending on config
1944 * it can warn or fail on that. Checks the hash of the ZONEMD.
1945 * @param z: auth zone to check for.
1946 * caller must hold lock on zone.
1947 * @param env: module env for temp buffers.
1948 * @param reason: returned on failure.
1949 * @return false on failure, true if hash checks out.
1950 */
auth_zone_zonemd_check_hash(struct auth_zone * z,struct module_env * env,char ** reason)1951 static int auth_zone_zonemd_check_hash(struct auth_zone* z,
1952 struct module_env* env, char** reason)
1953 {
1954 /* loop over ZONEMDs and see which one is valid. if not print
1955 * failure (depending on config) */
1956 struct auth_data* apex;
1957 struct auth_rrset* zonemd_rrset;
1958 size_t i;
1959 struct regional* region = NULL;
1960 struct sldns_buffer* buf = NULL;
1961 uint32_t soa_serial = 0;
1962 char* unsupported_reason = NULL;
1963 int only_unsupported = 1;
1964 region = env->scratch;
1965 regional_free_all(region);
1966 buf = env->scratch_buffer;
1967 if(!auth_zone_get_serial(z, &soa_serial)) {
1968 *reason = "zone has no SOA serial";
1969 return 0;
1970 }
1971
1972 apex = az_find_name(z, z->name, z->namelen);
1973 if(!apex) {
1974 *reason = "zone has no apex";
1975 return 0;
1976 }
1977 zonemd_rrset = az_domain_rrset(apex, LDNS_RR_TYPE_ZONEMD);
1978 if(!zonemd_rrset || zonemd_rrset->data->count==0) {
1979 *reason = "zone has no ZONEMD";
1980 return 0; /* no RRset or no RRs in rrset */
1981 }
1982
1983 /* we have a ZONEMD, check if it is correct */
1984 for(i=0; i<zonemd_rrset->data->count; i++) {
1985 uint32_t serial = 0;
1986 int scheme = 0, hashalgo = 0;
1987 uint8_t* hash = NULL;
1988 size_t hashlen = 0;
1989 if(!zonemd_fetch_parameters(zonemd_rrset, i, &serial, &scheme,
1990 &hashalgo, &hash, &hashlen)) {
1991 /* malformed RR */
1992 *reason = "ZONEMD rdata malformed";
1993 only_unsupported = 0;
1994 continue;
1995 }
1996 /* check for duplicates */
1997 if(zonemd_is_duplicate_scheme_hash(zonemd_rrset, i, scheme,
1998 hashalgo)) {
1999 /* duplicate hash of the same scheme,hash
2000 * is not allowed. */
2001 *reason = "ZONEMD RRSet contains more than one RR "
2002 "with the same scheme and hash algorithm";
2003 only_unsupported = 0;
2004 continue;
2005 }
2006 regional_free_all(region);
2007 if(serial != soa_serial) {
2008 *reason = "ZONEMD serial is wrong";
2009 only_unsupported = 0;
2010 continue;
2011 }
2012 *reason = NULL;
2013 if(auth_zone_generate_zonemd_check(z, scheme, hashalgo,
2014 hash, hashlen, region, buf, reason)) {
2015 /* success */
2016 if(*reason) {
2017 if(!unsupported_reason)
2018 unsupported_reason = *reason;
2019 /* continue to check for valid ZONEMD */
2020 if(verbosity >= VERB_ALGO) {
2021 char zstr[LDNS_MAX_DOMAINLEN];
2022 dname_str(z->name, zstr);
2023 verbose(VERB_ALGO, "auth-zone %s ZONEMD %d %d is unsupported: %s", zstr, (int)scheme, (int)hashalgo, *reason);
2024 }
2025 *reason = NULL;
2026 continue;
2027 }
2028 if(verbosity >= VERB_ALGO) {
2029 char zstr[LDNS_MAX_DOMAINLEN];
2030 dname_str(z->name, zstr);
2031 if(!*reason)
2032 verbose(VERB_ALGO, "auth-zone %s ZONEMD hash is correct", zstr);
2033 }
2034 return 1;
2035 }
2036 only_unsupported = 0;
2037 /* try next one */
2038 }
2039 /* have we seen no failures but only unsupported algo,
2040 * and one unsupported algorithm, or more. */
2041 if(only_unsupported && unsupported_reason) {
2042 /* only unsupported algorithms, with valid serial, not
2043 * malformed. Did not see supported algorithms, failed or
2044 * successful ones. */
2045 *reason = unsupported_reason;
2046 return 1;
2047 }
2048 /* fail, we may have reason */
2049 if(!*reason)
2050 *reason = "no ZONEMD records found";
2051 if(verbosity >= VERB_ALGO) {
2052 char zstr[LDNS_MAX_DOMAINLEN];
2053 dname_str(z->name, zstr);
2054 verbose(VERB_ALGO, "auth-zone %s ZONEMD failed: %s", zstr, *reason);
2055 }
2056 return 0;
2057 }
2058
2059 /** find the apex SOA RRset, if it exists */
auth_zone_get_soa_rrset(struct auth_zone * z)2060 struct auth_rrset* auth_zone_get_soa_rrset(struct auth_zone* z)
2061 {
2062 struct auth_data* apex;
2063 struct auth_rrset* soa;
2064 apex = az_find_name(z, z->name, z->namelen);
2065 if(!apex) return NULL;
2066 soa = az_domain_rrset(apex, LDNS_RR_TYPE_SOA);
2067 return soa;
2068 }
2069
2070 /** find serial number of zone or false if none */
2071 int
auth_zone_get_serial(struct auth_zone * z,uint32_t * serial)2072 auth_zone_get_serial(struct auth_zone* z, uint32_t* serial)
2073 {
2074 struct auth_data* apex;
2075 struct auth_rrset* soa;
2076 struct packed_rrset_data* d;
2077 size_t primlen, mboxlen;
2078 apex = az_find_name(z, z->name, z->namelen);
2079 if(!apex) return 0;
2080 soa = az_domain_rrset(apex, LDNS_RR_TYPE_SOA);
2081 if(!soa || soa->data->count==0)
2082 return 0; /* no RRset or no RRs in rrset */
2083 if(soa->data->rr_len[0] < 2+4*5) return 0; /* SOA too short */
2084 if((primlen = dname_valid(soa->data->rr_data[0]+2,
2085 soa->data->rr_len[0]-2)) == 0)
2086 return 0; /* primary dname malformed */
2087 if((mboxlen = dname_valid(soa->data->rr_data[0]+2+primlen,
2088 soa->data->rr_len[0]-2-primlen)) == 0)
2089 return 0; /* mailbox dname malformed */
2090 if(2+primlen+mboxlen+4*5 != soa->data->rr_len[0])
2091 return 0; /* rdata malformed */
2092 d = soa->data;
2093 *serial = sldns_read_uint32(d->rr_data[0]+(d->rr_len[0]-20));
2094 return 1;
2095 }
2096
2097 /** Find auth_zone SOA and populate the values in xfr(soa values). */
2098 int
xfr_find_soa(struct auth_zone * z,struct auth_xfer * xfr)2099 xfr_find_soa(struct auth_zone* z, struct auth_xfer* xfr)
2100 {
2101 struct auth_data* apex;
2102 struct auth_rrset* soa;
2103 struct packed_rrset_data* d;
2104 size_t primlen, mboxlen;
2105 apex = az_find_name(z, z->name, z->namelen);
2106 if(!apex) return 0;
2107 soa = az_domain_rrset(apex, LDNS_RR_TYPE_SOA);
2108 if(!soa || soa->data->count==0)
2109 return 0; /* no RRset or no RRs in rrset */
2110 if(soa->data->rr_len[0] < 2+4*5) return 0; /* SOA too short */
2111 if((primlen = dname_valid(soa->data->rr_data[0]+2,
2112 soa->data->rr_len[0]-2)) == 0)
2113 return 0; /* primary dname malformed */
2114 if((mboxlen = dname_valid(soa->data->rr_data[0]+2+primlen,
2115 soa->data->rr_len[0]-2-primlen)) == 0)
2116 return 0; /* mailbox dname malformed */
2117 if(2+primlen+mboxlen+4*5 != soa->data->rr_len[0])
2118 return 0; /* rdata malformed */
2119 /* SOA record ends with serial, refresh, retry, expiry, minimum,
2120 * as 4 byte fields */
2121 d = soa->data;
2122 xfr->have_zone = 1;
2123 xfr->serial = sldns_read_uint32(d->rr_data[0]+(d->rr_len[0]-20));
2124 xfr->refresh = sldns_read_uint32(d->rr_data[0]+(d->rr_len[0]-16));
2125 xfr->retry = sldns_read_uint32(d->rr_data[0]+(d->rr_len[0]-12));
2126 xfr->expiry = sldns_read_uint32(d->rr_data[0]+(d->rr_len[0]-8));
2127 /* soa minimum at d->rr_len[0]-4 */
2128 return 1;
2129 }
2130
2131 /**
2132 * Setup auth_xfer zone
2133 * This populates the have_zone, soa values, and so on times.
2134 * Doesn't do network traffic yet, can set option flags.
2135 * @param z: locked by caller, and modified for setup
2136 * @param x: locked by caller, and modified.
2137 * @return false on failure.
2138 */
2139 static int
auth_xfer_setup(struct auth_zone * z,struct auth_xfer * x)2140 auth_xfer_setup(struct auth_zone* z, struct auth_xfer* x)
2141 {
2142 /* for a zone without zone transfers, x==NULL, so skip them,
2143 * i.e. the zone config is fixed with no masters or urls */
2144 if(!z || !x) return 1;
2145 if(!xfr_find_soa(z, x)) {
2146 return 1;
2147 }
2148 x->is_rpz = (z->rpz!=NULL);
2149 /* nothing for probe, nextprobe and transfer tasks */
2150 return 1;
2151 }
2152
2153 /**
2154 * Setup all zones
2155 * @param az: auth zones structure
2156 * @return false on failure.
2157 */
2158 static int
auth_zones_setup_zones(struct auth_zones * az)2159 auth_zones_setup_zones(struct auth_zones* az)
2160 {
2161 struct auth_zone* z;
2162 struct auth_xfer* x;
2163 lock_rw_wrlock(&az->lock);
2164 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
2165 lock_rw_wrlock(&z->lock);
2166 x = auth_xfer_find(az, z->name, z->namelen, z->dclass);
2167 if(x) {
2168 lock_basic_lock(&x->lock);
2169 }
2170 if(!auth_xfer_setup(z, x)) {
2171 if(x) {
2172 lock_basic_unlock(&x->lock);
2173 }
2174 lock_rw_unlock(&z->lock);
2175 lock_rw_unlock(&az->lock);
2176 return 0;
2177 }
2178 if(x) {
2179 lock_basic_unlock(&x->lock);
2180 }
2181 lock_rw_unlock(&z->lock);
2182 }
2183 lock_rw_unlock(&az->lock);
2184 return 1;
2185 }
2186
2187 /** set config items and create zones */
2188 static int
auth_zones_cfg(struct auth_zones * az,struct config_auth * c)2189 auth_zones_cfg(struct auth_zones* az, struct config_auth* c)
2190 {
2191 struct auth_zone* z;
2192 struct auth_xfer* x = NULL;
2193
2194 /* create zone */
2195 if(c->isrpz) {
2196 /* if the rpz lock is needed, grab it before the other
2197 * locks to avoid a lock dependency cycle */
2198 lock_rw_wrlock(&az->rpz_lock);
2199 }
2200 lock_rw_wrlock(&az->lock);
2201 if(!(z=auth_zones_find_or_add_zone(az, c->name))) {
2202 lock_rw_unlock(&az->lock);
2203 if(c->isrpz) {
2204 lock_rw_unlock(&az->rpz_lock);
2205 }
2206 return 0;
2207 }
2208 /* Populate the xfer related options early since we may create one now */
2209 z->max_transfer_size = c->max_transfer_size;
2210 z->max_transfer_time = c->max_transfer_time;
2211 if(c->masters || c->urls) {
2212 if(!(x=auth_zones_find_or_add_xfer(az, z))) {
2213 lock_rw_unlock(&az->lock);
2214 lock_rw_unlock(&z->lock);
2215 if(c->isrpz) {
2216 lock_rw_unlock(&az->rpz_lock);
2217 }
2218 return 0;
2219 }
2220 }
2221 if(c->for_downstream)
2222 az->have_downstream = 1;
2223 lock_rw_unlock(&az->lock);
2224
2225 /* set options */
2226 z->zone_deleted = 0;
2227 if(!auth_zone_set_zonefile(z, c->zonefile)) {
2228 if(x) {
2229 lock_basic_unlock(&x->lock);
2230 }
2231 lock_rw_unlock(&z->lock);
2232 if(c->isrpz) {
2233 lock_rw_unlock(&az->rpz_lock);
2234 }
2235 return 0;
2236 }
2237 z->for_downstream = c->for_downstream;
2238 z->for_upstream = c->for_upstream;
2239 z->fallback_enabled = c->fallback_enabled;
2240 z->zonemd_check = c->zonemd_check;
2241 z->zonemd_reject_absence = c->zonemd_reject_absence;
2242 if(c->isrpz && !z->rpz){
2243 if(!(z->rpz = rpz_create(c))){
2244 log_err("Could not setup RPZ zones");
2245 if(x) {
2246 lock_basic_unlock(&x->lock);
2247 }
2248 lock_rw_unlock(&z->lock);
2249 lock_rw_unlock(&az->rpz_lock);
2250 return 0;
2251 }
2252 lock_protect(&z->lock, &z->rpz->local_zones, sizeof(*z->rpz));
2253 /* the az->rpz_lock is locked above */
2254 z->rpz_az_next = az->rpz_first;
2255 if(az->rpz_first)
2256 az->rpz_first->rpz_az_prev = z;
2257 az->rpz_first = z;
2258 } else if(c->isrpz && z->rpz) {
2259 if(!rpz_config(z->rpz, c)) {
2260 log_err("Could not change rpz config");
2261 if(x) {
2262 lock_basic_unlock(&x->lock);
2263 }
2264 lock_rw_unlock(&z->lock);
2265 lock_rw_unlock(&az->rpz_lock);
2266 return 0;
2267 }
2268 }
2269 if(c->isrpz) {
2270 lock_rw_unlock(&az->rpz_lock);
2271 }
2272
2273 /* xfer zone */
2274 if(x) {
2275 z->zone_is_slave = 1;
2276 /* set options on xfer zone */
2277 if(!xfer_set_masters(&x->task_probe->masters, c, 0)) {
2278 lock_basic_unlock(&x->lock);
2279 lock_rw_unlock(&z->lock);
2280 return 0;
2281 }
2282 if(!xfer_set_masters(&x->task_transfer->masters, c, 1)) {
2283 lock_basic_unlock(&x->lock);
2284 lock_rw_unlock(&z->lock);
2285 return 0;
2286 }
2287 /* Pick up allow notify entries, early. This works for
2288 * addresses and netblocks. */
2289 if(!x->allow_notify_list)
2290 probe_copy_masters_for_allow_notify(x);
2291 lock_basic_unlock(&x->lock);
2292 }
2293
2294 lock_rw_unlock(&z->lock);
2295 return 1;
2296 }
2297
2298 /** set all auth zones deleted, then in auth_zones_cfg, it marks them
2299 * as nondeleted (if they are still in the config), and then later
2300 * we can find deleted zones */
2301 static void
az_setall_deleted(struct auth_zones * az)2302 az_setall_deleted(struct auth_zones* az)
2303 {
2304 struct auth_zone* z;
2305 lock_rw_wrlock(&az->lock);
2306 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
2307 lock_rw_wrlock(&z->lock);
2308 z->zone_deleted = 1;
2309 lock_rw_unlock(&z->lock);
2310 }
2311 lock_rw_unlock(&az->lock);
2312 }
2313
2314 /** find zones that are marked deleted and delete them.
2315 * This is called from apply_cfg, and there are no threads and no
2316 * workers, so the xfr can just be deleted. */
2317 static void
az_delete_deleted_zones(struct auth_zones * az)2318 az_delete_deleted_zones(struct auth_zones* az)
2319 {
2320 struct auth_zone* z;
2321 struct auth_zone* delete_list = NULL, *next;
2322 struct auth_xfer* xfr;
2323 lock_rw_wrlock(&az->lock);
2324 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
2325 lock_rw_wrlock(&z->lock);
2326 if(z->zone_deleted) {
2327 /* we cannot alter the rbtree right now, but
2328 * we can put it on a linked list and then
2329 * delete it */
2330 z->delete_next = delete_list;
2331 delete_list = z;
2332 }
2333 lock_rw_unlock(&z->lock);
2334 }
2335 /* now we are out of the tree loop and we can loop and delete
2336 * the zones */
2337 z = delete_list;
2338 while(z) {
2339 next = z->delete_next;
2340 xfr = auth_xfer_find(az, z->name, z->namelen, z->dclass);
2341 if(xfr) {
2342 (void)rbtree_delete(&az->xtree, &xfr->node);
2343 auth_xfer_delete(xfr);
2344 }
2345 (void)rbtree_delete(&az->ztree, &z->node);
2346 auth_zone_delete(z, az);
2347 z = next;
2348 }
2349 lock_rw_unlock(&az->lock);
2350 }
2351
auth_zones_apply_cfg(struct auth_zones * az,struct config_file * cfg,int setup,int * is_rpz,struct module_env * env,struct module_stack * mods)2352 int auth_zones_apply_cfg(struct auth_zones* az, struct config_file* cfg,
2353 int setup, int* is_rpz, struct module_env* env,
2354 struct module_stack* mods)
2355 {
2356 struct config_auth* p;
2357 az_setall_deleted(az);
2358 for(p = cfg->auths; p; p = p->next) {
2359 if(!p->name || p->name[0] == 0) {
2360 log_warn("auth-zone without a name, skipped");
2361 continue;
2362 }
2363 *is_rpz = (*is_rpz || p->isrpz);
2364 if(!auth_zones_cfg(az, p)) {
2365 log_err("cannot config auth zone %s", p->name);
2366 return 0;
2367 }
2368 }
2369 az_delete_deleted_zones(az);
2370 if(!auth_zones_read_zones(az, cfg, env, mods))
2371 return 0;
2372 if(setup) {
2373 if(!auth_zones_setup_zones(az))
2374 return 0;
2375 }
2376 return 1;
2377 }
2378
2379 /** delete chunks
2380 * @param at: transfer structure with chunks list. The chunks and their
2381 * data are freed.
2382 */
2383 static void
auth_chunks_delete(struct auth_transfer * at)2384 auth_chunks_delete(struct auth_transfer* at)
2385 {
2386 if(at->chunks_first) {
2387 auth_chunk_list_delete(at->chunks_first);
2388 }
2389 at->chunks_first = NULL;
2390 at->chunks_last = NULL;
2391 at->chunks_total = 0;
2392 }
2393
2394 /** free master addr list */
2395 static void
auth_free_master_addrs(struct auth_addr * list)2396 auth_free_master_addrs(struct auth_addr* list)
2397 {
2398 struct auth_addr *n;
2399 while(list) {
2400 n = list->next;
2401 free(list);
2402 list = n;
2403 }
2404 }
2405
2406 /** free the masters list */
2407 static void
auth_free_masters(struct auth_master * list)2408 auth_free_masters(struct auth_master* list)
2409 {
2410 struct auth_master* n;
2411 while(list) {
2412 n = list->next;
2413 auth_free_master_addrs(list->list);
2414 free(list->host);
2415 free(list->file);
2416 free(list);
2417 list = n;
2418 }
2419 }
2420
2421 void
auth_xfer_delete(struct auth_xfer * xfr)2422 auth_xfer_delete(struct auth_xfer* xfr)
2423 {
2424 if(!xfr) return;
2425 lock_basic_destroy(&xfr->lock);
2426 free(xfr->name);
2427 if(xfr->task_nextprobe) {
2428 comm_timer_delete(xfr->task_nextprobe->timer);
2429 free(xfr->task_nextprobe);
2430 }
2431 if(xfr->task_probe) {
2432 auth_free_masters(xfr->task_probe->masters);
2433 comm_point_delete(xfr->task_probe->cp);
2434 comm_timer_delete(xfr->task_probe->timer);
2435 free(xfr->task_probe);
2436 }
2437 if(xfr->task_transfer) {
2438 auth_free_masters(xfr->task_transfer->masters);
2439 comm_point_delete(xfr->task_transfer->cp);
2440 comm_timer_delete(xfr->task_transfer->timer);
2441 if(xfr->task_transfer->chunks_first) {
2442 auth_chunks_delete(xfr->task_transfer);
2443 }
2444 free(xfr->task_transfer);
2445 }
2446 auth_free_masters(xfr->allow_notify_list);
2447 free(xfr);
2448 }
2449
2450 /** helper traverse to delete zones */
2451 static void
auth_zone_del(rbnode_type * n,void * ATTR_UNUSED (arg))2452 auth_zone_del(rbnode_type* n, void* ATTR_UNUSED(arg))
2453 {
2454 struct auth_zone* z = (struct auth_zone*)n->key;
2455 auth_zone_delete(z, NULL);
2456 }
2457
2458 /** helper traverse to delete xfer zones */
2459 static void
auth_xfer_del(rbnode_type * n,void * ATTR_UNUSED (arg))2460 auth_xfer_del(rbnode_type* n, void* ATTR_UNUSED(arg))
2461 {
2462 struct auth_xfer* z = (struct auth_xfer*)n->key;
2463 auth_xfer_delete(z);
2464 }
2465
auth_zones_delete(struct auth_zones * az)2466 void auth_zones_delete(struct auth_zones* az)
2467 {
2468 if(!az) return;
2469 lock_rw_destroy(&az->lock);
2470 lock_rw_destroy(&az->rpz_lock);
2471 traverse_postorder(&az->ztree, auth_zone_del, NULL);
2472 traverse_postorder(&az->xtree, auth_xfer_del, NULL);
2473 free(az);
2474 }
2475
2476 /** true if domain has only nsec3 */
2477 static int
domain_has_only_nsec3(struct auth_data * n)2478 domain_has_only_nsec3(struct auth_data* n)
2479 {
2480 struct auth_rrset* rrset = n->rrsets;
2481 int nsec3_seen = 0;
2482 while(rrset) {
2483 if(rrset->type == LDNS_RR_TYPE_NSEC3) {
2484 nsec3_seen = 1;
2485 } else if(rrset->type != LDNS_RR_TYPE_RRSIG) {
2486 return 0;
2487 }
2488 rrset = rrset->next;
2489 }
2490 return nsec3_seen;
2491 }
2492
2493 /** see if the domain has a wildcard child '*.domain' */
2494 static struct auth_data*
az_find_wildcard_domain(struct auth_zone * z,uint8_t * nm,size_t nmlen)2495 az_find_wildcard_domain(struct auth_zone* z, uint8_t* nm, size_t nmlen)
2496 {
2497 uint8_t wc[LDNS_MAX_DOMAINLEN];
2498 if(nmlen+2 > sizeof(wc))
2499 return NULL; /* result would be too long */
2500 wc[0] = 1; /* length of wildcard label */
2501 wc[1] = (uint8_t)'*'; /* wildcard label */
2502 memmove(wc+2, nm, nmlen);
2503 return az_find_name(z, wc, nmlen+2);
2504 }
2505
2506 /** find wildcard between qname and cename */
2507 static struct auth_data*
az_find_wildcard(struct auth_zone * z,struct query_info * qinfo,struct auth_data * ce)2508 az_find_wildcard(struct auth_zone* z, struct query_info* qinfo,
2509 struct auth_data* ce)
2510 {
2511 uint8_t* nm = qinfo->qname;
2512 size_t nmlen = qinfo->qname_len;
2513 struct auth_data* node;
2514 if(!dname_subdomain_c(nm, z->name))
2515 return NULL; /* out of zone */
2516 while((node=az_find_wildcard_domain(z, nm, nmlen))==NULL) {
2517 if(nmlen == z->namelen)
2518 return NULL; /* top of zone reached */
2519 if(ce && nmlen == ce->namelen)
2520 return NULL; /* ce reached */
2521 if(!dname_remove_label_limit_len(&nm, &nmlen, z->namelen))
2522 return NULL; /* can't go up */
2523 }
2524 return node;
2525 }
2526
2527 /** domain is not exact, find first candidate ce (name that matches
2528 * a part of qname) in tree */
2529 static struct auth_data*
az_find_candidate_ce(struct auth_zone * z,struct query_info * qinfo,struct auth_data * n)2530 az_find_candidate_ce(struct auth_zone* z, struct query_info* qinfo,
2531 struct auth_data* n)
2532 {
2533 uint8_t* nm;
2534 size_t nmlen;
2535 if(n) {
2536 nm = dname_get_shared_topdomain(qinfo->qname, n->name);
2537 } else {
2538 nm = qinfo->qname;
2539 }
2540 dname_count_size_labels(nm, &nmlen);
2541 n = az_find_name(z, nm, nmlen);
2542 /* delete labels and go up on name */
2543 while(!n) {
2544 if(!dname_remove_label_limit_len(&nm, &nmlen, z->namelen))
2545 return NULL; /* can't go up */
2546 n = az_find_name(z, nm, nmlen);
2547 }
2548 return n;
2549 }
2550
2551 /** go up the auth tree to next existing name. */
2552 static struct auth_data*
az_domain_go_up(struct auth_zone * z,struct auth_data * n)2553 az_domain_go_up(struct auth_zone* z, struct auth_data* n)
2554 {
2555 uint8_t* nm = n->name;
2556 size_t nmlen = n->namelen;
2557 while(dname_remove_label_limit_len(&nm, &nmlen, z->namelen)) {
2558 if((n=az_find_name(z, nm, nmlen)) != NULL)
2559 return n;
2560 }
2561 return NULL;
2562 }
2563
2564 /** Find the closest encloser, an name that exists and is above the
2565 * qname.
2566 * return true if the node (param node) is existing, nonobscured and
2567 * can be used to generate answers from. It is then also node_exact.
2568 * returns false if the node is not good enough (or it wasn't node_exact)
2569 * in this case the ce can be filled.
2570 * if ce is NULL, no ce exists, and likely the zone is completely empty,
2571 * not even with a zone apex.
2572 * if ce is nonNULL it is the closest enclosing upper name (that exists
2573 * itself for answer purposes). That name may have DNAME, NS or wildcard
2574 * rrset is the closest DNAME or NS rrset that was found.
2575 */
2576 static int
az_find_ce(struct auth_zone * z,struct query_info * qinfo,struct auth_data * node,int node_exact,struct auth_data ** ce,struct auth_rrset ** rrset)2577 az_find_ce(struct auth_zone* z, struct query_info* qinfo,
2578 struct auth_data* node, int node_exact, struct auth_data** ce,
2579 struct auth_rrset** rrset)
2580 {
2581 struct auth_data* n = node;
2582 struct auth_rrset* lookrrset;
2583 *ce = NULL;
2584 *rrset = NULL;
2585 if(!node_exact) {
2586 /* if not exact, lookup closest exact match */
2587 n = az_find_candidate_ce(z, qinfo, n);
2588 } else {
2589 /* if exact, the node itself is the first candidate ce */
2590 *ce = n;
2591 }
2592
2593 /* no direct answer from nsec3-only domains */
2594 if(n && domain_has_only_nsec3(n)) {
2595 node_exact = 0;
2596 *ce = NULL;
2597 }
2598
2599 /* with exact matches, walk up the labels until we find the
2600 * delegation, or DNAME or zone end */
2601 while(n) {
2602 /* see if the current candidate has issues */
2603 /* not zone apex and has type NS */
2604 if(n->namelen != z->namelen &&
2605 (lookrrset=az_domain_rrset(n, LDNS_RR_TYPE_NS)) &&
2606 /* delegate here, but DS at exact the dp has notype */
2607 (qinfo->qtype != LDNS_RR_TYPE_DS ||
2608 n->namelen != qinfo->qname_len)) {
2609 /* referral */
2610 /* this is ce and the lowernode is nonexisting */
2611 *ce = n;
2612 *rrset = lookrrset;
2613 node_exact = 0;
2614 }
2615 /* not equal to qname and has type DNAME */
2616 if(n->namelen != qinfo->qname_len &&
2617 (lookrrset=az_domain_rrset(n, LDNS_RR_TYPE_DNAME))) {
2618 /* this is ce and the lowernode is nonexisting */
2619 *ce = n;
2620 *rrset = lookrrset;
2621 node_exact = 0;
2622 }
2623
2624 if(*ce == NULL && !domain_has_only_nsec3(n)) {
2625 /* if not found yet, this exact name must be
2626 * our lowest match (but not nsec3onlydomain) */
2627 *ce = n;
2628 }
2629
2630 /* walk up the tree by removing labels from name and lookup */
2631 n = az_domain_go_up(z, n);
2632 }
2633 /* found no problems, if it was an exact node, it is fine to use */
2634 return node_exact;
2635 }
2636
2637 /** add additional A/AAAA from domain names in rrset rdata (+offset)
2638 * offset is number of bytes in rdata where the dname is located. */
2639 static int
az_add_additionals_from(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_rrset * rrset,size_t offset)2640 az_add_additionals_from(struct auth_zone* z, struct regional* region,
2641 struct dns_msg* msg, struct auth_rrset* rrset, size_t offset)
2642 {
2643 struct packed_rrset_data* d = rrset->data;
2644 size_t i;
2645 if(!d) return 0;
2646 for(i=0; i<d->count; i++) {
2647 size_t dlen;
2648 struct auth_data* domain;
2649 struct auth_rrset* ref;
2650 if(d->rr_len[i] < 2+offset)
2651 continue; /* too short */
2652 if(!(dlen = dname_valid(d->rr_data[i]+2+offset,
2653 d->rr_len[i]-2-offset)))
2654 continue; /* malformed */
2655 domain = az_find_name(z, d->rr_data[i]+2+offset, dlen);
2656 if(!domain)
2657 continue;
2658 if((ref=az_domain_rrset(domain, LDNS_RR_TYPE_A)) != NULL) {
2659 if(!msg_add_rrset_ar(z, region, msg, domain, ref))
2660 return 0;
2661 }
2662 if((ref=az_domain_rrset(domain, LDNS_RR_TYPE_AAAA)) != NULL) {
2663 if(!msg_add_rrset_ar(z, region, msg, domain, ref))
2664 return 0;
2665 }
2666 }
2667 return 1;
2668 }
2669
2670 /** add negative SOA record (with negative TTL) */
2671 static int
az_add_negative_soa(struct auth_zone * z,struct regional * region,struct dns_msg * msg)2672 az_add_negative_soa(struct auth_zone* z, struct regional* region,
2673 struct dns_msg* msg)
2674 {
2675 time_t minimum;
2676 size_t i;
2677 struct packed_rrset_data* d;
2678 struct auth_rrset* soa;
2679 struct auth_data* apex = az_find_name(z, z->name, z->namelen);
2680 if(!apex) return 0;
2681 soa = az_domain_rrset(apex, LDNS_RR_TYPE_SOA);
2682 if(!soa) return 0;
2683 /* must be first to put in message; we want to fix the TTL with
2684 * one RRset here, otherwise we'd need to loop over the RRs to get
2685 * the resulting lower TTL */
2686 log_assert(msg->rep->rrset_count == 0);
2687 if(!msg_add_rrset_ns(z, region, msg, apex, soa)) return 0;
2688 /* fixup TTL */
2689 d = (struct packed_rrset_data*)msg->rep->rrsets[msg->rep->rrset_count-1]->entry.data;
2690 /* last 4 bytes are minimum ttl in network format */
2691 if(d->count == 0) return 0;
2692 if(d->rr_len[0] < 2+4) return 0;
2693 minimum = (time_t)sldns_read_uint32(d->rr_data[0]+(d->rr_len[0]-4));
2694 minimum = d->ttl<minimum?d->ttl:minimum;
2695 d->ttl = minimum;
2696 for(i=0; i < d->count + d->rrsig_count; i++)
2697 d->rr_ttl[i] = minimum;
2698 msg->rep->ttl = get_rrset_ttl(msg->rep->rrsets[0]);
2699 msg->rep->prefetch_ttl = PREFETCH_TTL_CALC(msg->rep->ttl);
2700 msg->rep->serve_expired_ttl = msg->rep->ttl + SERVE_EXPIRED_TTL;
2701 return 1;
2702 }
2703
2704 /** See if the query goes to empty nonterminal (that has no auth_data,
2705 * but there are nodes underneath. We already checked that there are
2706 * not NS, or DNAME above, so that we only need to check if some node
2707 * exists below (with nonempty rr list), return true if emptynonterminal */
2708 static int
az_empty_nonterminal(struct auth_zone * z,struct query_info * qinfo,struct auth_data * node)2709 az_empty_nonterminal(struct auth_zone* z, struct query_info* qinfo,
2710 struct auth_data* node)
2711 {
2712 struct auth_data* next;
2713 if(!node) {
2714 /* no smaller was found, use first (smallest) node as the
2715 * next one */
2716 next = (struct auth_data*)rbtree_first(&z->data);
2717 } else {
2718 next = (struct auth_data*)rbtree_next(&node->node);
2719 }
2720 while(next && (rbnode_type*)next != RBTREE_NULL && next->rrsets == NULL) {
2721 /* the next name has empty rrsets, is an empty nonterminal
2722 * itself, see if there exists something below it */
2723 next = (struct auth_data*)rbtree_next(&next->node);
2724 }
2725 if((rbnode_type*)next == RBTREE_NULL || !next) {
2726 /* there is no next node, so something below it cannot
2727 * exist */
2728 return 0;
2729 }
2730 /* a next node exists, if there was something below the query,
2731 * this node has to be it. See if it is below the query name */
2732 if(dname_strict_subdomain_c(next->name, qinfo->qname))
2733 return 1;
2734 return 0;
2735 }
2736
2737 /** create synth cname target name in buffer, or fail if too long */
2738 static size_t
synth_cname_buf(uint8_t * qname,size_t qname_len,size_t dname_len,uint8_t * dtarg,size_t dtarglen,uint8_t * buf,size_t buflen)2739 synth_cname_buf(uint8_t* qname, size_t qname_len, size_t dname_len,
2740 uint8_t* dtarg, size_t dtarglen, uint8_t* buf, size_t buflen)
2741 {
2742 size_t newlen = qname_len + dtarglen - dname_len;
2743 if(newlen > buflen) {
2744 /* YXDOMAIN error */
2745 return 0;
2746 }
2747 /* new name is concatenation of qname front (without DNAME owner)
2748 * and DNAME target name */
2749 memcpy(buf, qname, qname_len-dname_len);
2750 memmove(buf+(qname_len-dname_len), dtarg, dtarglen);
2751 return newlen;
2752 }
2753
2754 /** create synthetic CNAME rrset for in a DNAME answer in region,
2755 * false on alloc failure, cname==NULL when name too long. */
2756 static int
create_synth_cname(uint8_t * qname,size_t qname_len,struct regional * region,struct auth_data * node,struct auth_rrset * dname,uint16_t dclass,struct ub_packed_rrset_key ** cname)2757 create_synth_cname(uint8_t* qname, size_t qname_len, struct regional* region,
2758 struct auth_data* node, struct auth_rrset* dname, uint16_t dclass,
2759 struct ub_packed_rrset_key** cname)
2760 {
2761 uint8_t buf[LDNS_MAX_DOMAINLEN];
2762 uint8_t* dtarg;
2763 size_t dtarglen, newlen;
2764 struct packed_rrset_data* d;
2765
2766 /* get DNAME target name */
2767 if(dname->data->count < 1) return 0;
2768 if(dname->data->rr_len[0] < 3) return 0; /* at least rdatalen +1 */
2769 dtarg = dname->data->rr_data[0]+2;
2770 dtarglen = dname->data->rr_len[0]-2;
2771 if(sldns_read_uint16(dname->data->rr_data[0]) != dtarglen)
2772 return 0; /* rdatalen in DNAME rdata is malformed */
2773 if(dname_valid(dtarg, dtarglen) != dtarglen)
2774 return 0; /* DNAME RR has malformed rdata */
2775 if(qname_len == 0)
2776 return 0; /* too short */
2777 if(qname_len <= node->namelen)
2778 return 0; /* qname too short for dname removal */
2779
2780 /* synthesize a CNAME */
2781 newlen = synth_cname_buf(qname, qname_len, node->namelen,
2782 dtarg, dtarglen, buf, sizeof(buf));
2783 if(newlen == 0) {
2784 /* YXDOMAIN error */
2785 *cname = NULL;
2786 return 1;
2787 }
2788 *cname = (struct ub_packed_rrset_key*)regional_alloc(region,
2789 sizeof(struct ub_packed_rrset_key));
2790 if(!*cname)
2791 return 0; /* out of memory */
2792 memset(&(*cname)->entry, 0, sizeof((*cname)->entry));
2793 (*cname)->entry.key = (*cname);
2794 (*cname)->rk.type = htons(LDNS_RR_TYPE_CNAME);
2795 (*cname)->rk.rrset_class = htons(dclass);
2796 (*cname)->rk.flags = 0;
2797 (*cname)->rk.dname = regional_alloc_init(region, qname, qname_len);
2798 if(!(*cname)->rk.dname)
2799 return 0; /* out of memory */
2800 (*cname)->rk.dname_len = qname_len;
2801 (*cname)->entry.hash = rrset_key_hash(&(*cname)->rk);
2802 d = (struct packed_rrset_data*)regional_alloc_zero(region,
2803 sizeof(struct packed_rrset_data) + sizeof(size_t) +
2804 sizeof(uint8_t*) + sizeof(time_t) + sizeof(uint16_t)
2805 + newlen);
2806 if(!d)
2807 return 0; /* out of memory */
2808 (*cname)->entry.data = d;
2809 d->ttl = dname->data->ttl; /* RFC6672: synth CNAME TTL == DNAME TTL */
2810 d->count = 1;
2811 d->rrsig_count = 0;
2812 d->trust = rrset_trust_ans_noAA;
2813 d->rr_len = (size_t*)((uint8_t*)d +
2814 sizeof(struct packed_rrset_data));
2815 d->rr_len[0] = newlen + sizeof(uint16_t);
2816 packed_rrset_ptr_fixup(d);
2817 d->rr_ttl[0] = d->ttl;
2818 sldns_write_uint16(d->rr_data[0], newlen);
2819 memmove(d->rr_data[0] + sizeof(uint16_t), buf, newlen);
2820 return 1;
2821 }
2822
2823 /** add a synthesized CNAME to the answer section */
2824 static int
add_synth_cname(struct auth_zone * z,uint8_t * qname,size_t qname_len,struct regional * region,struct dns_msg * msg,struct auth_data * dname,struct auth_rrset * rrset)2825 add_synth_cname(struct auth_zone* z, uint8_t* qname, size_t qname_len,
2826 struct regional* region, struct dns_msg* msg, struct auth_data* dname,
2827 struct auth_rrset* rrset)
2828 {
2829 struct ub_packed_rrset_key* cname;
2830 /* synthesize a CNAME */
2831 if(!create_synth_cname(qname, qname_len, region, dname, rrset,
2832 z->dclass, &cname)) {
2833 /* out of memory */
2834 return 0;
2835 }
2836 if(!cname) {
2837 /* cname cannot be create because of YXDOMAIN */
2838 msg->rep->flags |= LDNS_RCODE_YXDOMAIN;
2839 return 1;
2840 }
2841 /* add cname to message */
2842 if(!msg_grow_array(region, msg))
2843 return 0;
2844 msg->rep->rrsets[msg->rep->rrset_count] = cname;
2845 msg->rep->rrset_count++;
2846 msg->rep->an_numrrsets++;
2847 msg_ttl(msg);
2848 return 1;
2849 }
2850
2851 /** Change a dname to a different one, for wildcard namechange */
2852 static void
az_change_dnames(struct dns_msg * msg,uint8_t * oldname,uint8_t * newname,size_t newlen,int an_only)2853 az_change_dnames(struct dns_msg* msg, uint8_t* oldname, uint8_t* newname,
2854 size_t newlen, int an_only)
2855 {
2856 size_t i;
2857 size_t start = 0, end = msg->rep->rrset_count;
2858 if(!an_only) start = msg->rep->an_numrrsets;
2859 if(an_only) end = msg->rep->an_numrrsets;
2860 for(i=start; i<end; i++) {
2861 /* allocated in region so we can change the ptrs */
2862 if(query_dname_compare(msg->rep->rrsets[i]->rk.dname, oldname)
2863 == 0) {
2864 msg->rep->rrsets[i]->rk.dname = newname;
2865 msg->rep->rrsets[i]->rk.dname_len = newlen;
2866 msg->rep->rrsets[i]->entry.hash = rrset_key_hash(&msg->rep->rrsets[i]->rk);
2867 }
2868 }
2869 }
2870
2871 /** find NSEC record covering the query, with the given node in the zone */
2872 static struct auth_rrset*
az_find_nsec_cover(struct auth_zone * z,struct auth_data ** node)2873 az_find_nsec_cover(struct auth_zone* z, struct auth_data** node)
2874 {
2875 uint8_t* nm;
2876 size_t nmlen;
2877 struct auth_rrset* rrset;
2878 log_assert(*node); /* we already have a node when calling this */
2879 nm = (*node)->name;
2880 nmlen = (*node)->namelen;
2881 /* find the NSEC for the smallest-or-equal node */
2882 /* But there could be glue, and then it has no NSEC.
2883 * Go up to find nonglue (previous) NSEC-holding nodes */
2884 while((rrset=az_domain_rrset(*node, LDNS_RR_TYPE_NSEC)) == NULL) {
2885 if(nmlen == z->namelen) return NULL;
2886 if(!dname_remove_label_limit_len(&nm, &nmlen, z->namelen))
2887 return NULL; /* can't go up */
2888 /* adjust *node for the nsec rrset to find in */
2889 *node = az_find_name(z, nm, nmlen);
2890 }
2891 return rrset;
2892 }
2893
2894 /** Find NSEC and add for wildcard denial */
2895 static int
az_nsec_wildcard_denial(struct auth_zone * z,struct regional * region,struct dns_msg * msg,uint8_t * cenm,size_t cenmlen)2896 az_nsec_wildcard_denial(struct auth_zone* z, struct regional* region,
2897 struct dns_msg* msg, uint8_t* cenm, size_t cenmlen)
2898 {
2899 struct query_info qinfo;
2900 int node_exact;
2901 struct auth_data* node;
2902 struct auth_rrset* nsec;
2903 uint8_t wc[LDNS_MAX_DOMAINLEN];
2904 if(cenmlen+2 > sizeof(wc))
2905 return 0; /* result would be too long */
2906 wc[0] = 1; /* length of wildcard label */
2907 wc[1] = (uint8_t)'*'; /* wildcard label */
2908 memmove(wc+2, cenm, cenmlen);
2909
2910 /* we have '*.ce' in wc wildcard name buffer */
2911 /* get nsec cover for that */
2912 qinfo.qname = wc;
2913 qinfo.qname_len = cenmlen+2;
2914 qinfo.qtype = 0;
2915 qinfo.qclass = 0;
2916 az_find_domain(z, &qinfo, &node_exact, &node);
2917 if((nsec=az_find_nsec_cover(z, &node)) != NULL) {
2918 if(!msg_add_rrset_ns(z, region, msg, node, nsec)) return 0;
2919 }
2920 return 1;
2921 }
2922
2923 /** Find the NSEC3PARAM rrset (if any) and if true you have the parameters */
2924 static int
az_nsec3_param(struct auth_zone * z,int * algo,size_t * iter,uint8_t ** salt,size_t * saltlen)2925 az_nsec3_param(struct auth_zone* z, int* algo, size_t* iter, uint8_t** salt,
2926 size_t* saltlen)
2927 {
2928 struct auth_data* apex;
2929 struct auth_rrset* param;
2930 size_t i;
2931 apex = az_find_name(z, z->name, z->namelen);
2932 if(!apex) return 0;
2933 param = az_domain_rrset(apex, LDNS_RR_TYPE_NSEC3PARAM);
2934 if(!param || param->data->count==0)
2935 return 0; /* no RRset or no RRs in rrset */
2936 /* find out which NSEC3PARAM RR has supported parameters */
2937 /* skip unknown flags (dynamic signer is recalculating nsec3 chain) */
2938 for(i=0; i<param->data->count; i++) {
2939 uint8_t* rdata = param->data->rr_data[i]+2;
2940 size_t rdatalen = param->data->rr_len[i];
2941 if(rdatalen < 2+5)
2942 continue; /* too short */
2943 if(!nsec3_hash_algo_size_supported((int)(rdata[0])))
2944 continue; /* unsupported algo */
2945 if(rdatalen < (size_t)(2+5+(size_t)rdata[4]))
2946 continue; /* salt missing */
2947 if((rdata[1]&NSEC3_UNKNOWN_FLAGS)!=0)
2948 continue; /* unknown flags */
2949 *algo = (int)(rdata[0]);
2950 *iter = sldns_read_uint16(rdata+2);
2951 *saltlen = rdata[4];
2952 if(*saltlen == 0)
2953 *salt = NULL;
2954 else *salt = rdata+5;
2955 return 1;
2956 }
2957 /* no supported params */
2958 return 0;
2959 }
2960
2961 /** Hash a name with nsec3param into buffer, it has zone name appended.
2962 * return length of hash */
2963 static size_t
az_nsec3_hash(uint8_t * buf,size_t buflen,uint8_t * nm,size_t nmlen,int algo,size_t iter,uint8_t * salt,size_t saltlen)2964 az_nsec3_hash(uint8_t* buf, size_t buflen, uint8_t* nm, size_t nmlen,
2965 int algo, size_t iter, uint8_t* salt, size_t saltlen)
2966 {
2967 size_t hlen = nsec3_hash_algo_size_supported(algo);
2968 /* buffer has domain name, nsec3hash, and 256 is for max saltlen
2969 * (salt has 0-255 length) */
2970 unsigned char p[LDNS_MAX_DOMAINLEN+1+N3HASHBUFLEN+256];
2971 size_t i;
2972 if(nmlen+saltlen > sizeof(p) || hlen+saltlen > sizeof(p))
2973 return 0;
2974 if(hlen > buflen)
2975 return 0; /* somehow too large for destination buffer */
2976 /* hashfunc(name, salt) */
2977 memmove(p, nm, nmlen);
2978 query_dname_tolower(p);
2979 if(salt && saltlen > 0)
2980 memmove(p+nmlen, salt, saltlen);
2981 (void)secalgo_nsec3_hash(algo, p, nmlen+saltlen, (unsigned char*)buf);
2982 for(i=0; i<iter; i++) {
2983 /* hashfunc(hash, salt) */
2984 memmove(p, buf, hlen);
2985 if(salt && saltlen > 0)
2986 memmove(p+hlen, salt, saltlen);
2987 (void)secalgo_nsec3_hash(algo, p, hlen+saltlen,
2988 (unsigned char*)buf);
2989 }
2990 return hlen;
2991 }
2992
2993 /** Hash name and return b32encoded hashname for lookup, zone name appended */
2994 static int
az_nsec3_hashname(struct auth_zone * z,uint8_t * hashname,size_t * hashnmlen,uint8_t * nm,size_t nmlen,int algo,size_t iter,uint8_t * salt,size_t saltlen)2995 az_nsec3_hashname(struct auth_zone* z, uint8_t* hashname, size_t* hashnmlen,
2996 uint8_t* nm, size_t nmlen, int algo, size_t iter, uint8_t* salt,
2997 size_t saltlen)
2998 {
2999 uint8_t hash[N3HASHBUFLEN];
3000 size_t hlen;
3001 int ret;
3002 hlen = az_nsec3_hash(hash, sizeof(hash), nm, nmlen, algo, iter,
3003 salt, saltlen);
3004 if(!hlen) return 0;
3005 /* b32 encode */
3006 if(*hashnmlen < hlen*2+1+z->namelen) /* approx b32 as hexb16 */
3007 return 0;
3008 ret = sldns_b32_ntop_extended_hex(hash, hlen, (char*)(hashname+1),
3009 (*hashnmlen)-1);
3010 if(ret<1)
3011 return 0;
3012 hashname[0] = (uint8_t)ret;
3013 ret++;
3014 if((*hashnmlen) - ret < z->namelen)
3015 return 0;
3016 memmove(hashname+ret, z->name, z->namelen);
3017 *hashnmlen = z->namelen+(size_t)ret;
3018 return 1;
3019 }
3020
3021 /** Find the datanode that covers the nsec3hash-name */
3022 static struct auth_data*
az_nsec3_findnode(struct auth_zone * z,uint8_t * hashnm,size_t hashnmlen)3023 az_nsec3_findnode(struct auth_zone* z, uint8_t* hashnm, size_t hashnmlen)
3024 {
3025 struct query_info qinfo;
3026 struct auth_data* node;
3027 int node_exact;
3028 qinfo.qclass = 0;
3029 qinfo.qtype = 0;
3030 qinfo.qname = hashnm;
3031 qinfo.qname_len = hashnmlen;
3032 /* because canonical ordering and b32 nsec3 ordering are the same.
3033 * this is a good lookup to find the nsec3 name. */
3034 az_find_domain(z, &qinfo, &node_exact, &node);
3035 /* but we may have to skip non-nsec3 nodes */
3036 /* this may be a lot, the way to speed that up is to have a
3037 * separate nsec3 tree with nsec3 nodes */
3038 while(node && (rbnode_type*)node != RBTREE_NULL &&
3039 !az_domain_rrset(node, LDNS_RR_TYPE_NSEC3)) {
3040 node = (struct auth_data*)rbtree_previous(&node->node);
3041 }
3042 if((rbnode_type*)node == RBTREE_NULL)
3043 node = NULL;
3044 return node;
3045 }
3046
3047 /** Find cover for hashed(nm, nmlen) (or NULL) */
3048 static struct auth_data*
az_nsec3_find_cover(struct auth_zone * z,uint8_t * nm,size_t nmlen,int algo,size_t iter,uint8_t * salt,size_t saltlen)3049 az_nsec3_find_cover(struct auth_zone* z, uint8_t* nm, size_t nmlen,
3050 int algo, size_t iter, uint8_t* salt, size_t saltlen)
3051 {
3052 struct auth_data* node;
3053 uint8_t hname[LDNS_MAX_DOMAINLEN];
3054 size_t hlen = sizeof(hname);
3055 if(!az_nsec3_hashname(z, hname, &hlen, nm, nmlen, algo, iter,
3056 salt, saltlen))
3057 return NULL;
3058 node = az_nsec3_findnode(z, hname, hlen);
3059 if(node)
3060 return node;
3061 /* we did not find any, perhaps because the NSEC3 hash is before
3062 * the first hash, we have to find the 'last hash' in the zone */
3063 node = (struct auth_data*)rbtree_last(&z->data);
3064 while(node && (rbnode_type*)node != RBTREE_NULL &&
3065 !az_domain_rrset(node, LDNS_RR_TYPE_NSEC3)) {
3066 node = (struct auth_data*)rbtree_previous(&node->node);
3067 }
3068 if((rbnode_type*)node == RBTREE_NULL)
3069 node = NULL;
3070 return node;
3071 }
3072
3073 /** Find exact match for hashed(nm, nmlen) NSEC3 record or NULL */
3074 static struct auth_data*
az_nsec3_find_exact(struct auth_zone * z,uint8_t * nm,size_t nmlen,int algo,size_t iter,uint8_t * salt,size_t saltlen)3075 az_nsec3_find_exact(struct auth_zone* z, uint8_t* nm, size_t nmlen,
3076 int algo, size_t iter, uint8_t* salt, size_t saltlen)
3077 {
3078 struct auth_data* node;
3079 uint8_t hname[LDNS_MAX_DOMAINLEN];
3080 size_t hlen = sizeof(hname);
3081 if(!az_nsec3_hashname(z, hname, &hlen, nm, nmlen, algo, iter,
3082 salt, saltlen))
3083 return NULL;
3084 node = az_find_name(z, hname, hlen);
3085 if(az_domain_rrset(node, LDNS_RR_TYPE_NSEC3))
3086 return node;
3087 return NULL;
3088 }
3089
3090 /** Return nextcloser name (as a ref into the qname). This is one label
3091 * more than the cenm (cename must be a suffix of qname) */
3092 static void
az_nsec3_get_nextcloser(uint8_t * cenm,uint8_t * qname,size_t qname_len,uint8_t ** nx,size_t * nxlen)3093 az_nsec3_get_nextcloser(uint8_t* cenm, uint8_t* qname, size_t qname_len,
3094 uint8_t** nx, size_t* nxlen)
3095 {
3096 int celabs = dname_count_labels(cenm);
3097 int qlabs = dname_count_labels(qname);
3098 int strip = qlabs - celabs -1;
3099 log_assert(dname_strict_subdomain(qname, qlabs, cenm, celabs));
3100 *nx = qname;
3101 *nxlen = qname_len;
3102 if(strip>0)
3103 dname_remove_labels(nx, nxlen, strip);
3104 }
3105
3106 /** Find the closest encloser that has exact NSEC3.
3107 * updated cenm to the new name. If it went up no-exact-ce is true. */
3108 static struct auth_data*
az_nsec3_find_ce(struct auth_zone * z,uint8_t ** cenm,size_t * cenmlen,int * no_exact_ce,int algo,size_t iter,uint8_t * salt,size_t saltlen)3109 az_nsec3_find_ce(struct auth_zone* z, uint8_t** cenm, size_t* cenmlen,
3110 int* no_exact_ce, int algo, size_t iter, uint8_t* salt, size_t saltlen)
3111 {
3112 struct auth_data* node;
3113 while((node = az_nsec3_find_exact(z, *cenm, *cenmlen,
3114 algo, iter, salt, saltlen)) == NULL) {
3115 if(!dname_remove_label_limit_len(cenm, cenmlen, z->namelen))
3116 return NULL; /* can't go up */
3117 *no_exact_ce = 1;
3118 }
3119 return node;
3120 }
3121
3122 /* Insert NSEC3 record in authority section, if NULL does nothing */
3123 static int
az_nsec3_insert(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node)3124 az_nsec3_insert(struct auth_zone* z, struct regional* region,
3125 struct dns_msg* msg, struct auth_data* node)
3126 {
3127 struct auth_rrset* nsec3;
3128 if(!node) return 1; /* no node, skip this */
3129 nsec3 = az_domain_rrset(node, LDNS_RR_TYPE_NSEC3);
3130 if(!nsec3) return 1; /* if no nsec3 RR, skip it */
3131 if(!msg_add_rrset_ns(z, region, msg, node, nsec3)) return 0;
3132 return 1;
3133 }
3134
3135 /** add NSEC3 records to the zone for the nsec3 proof.
3136 * Specify with the flags with parts of the proof are required.
3137 * the ce is the exact matching name (for notype) but also delegation points.
3138 * qname is the one where the nextcloser name can be derived from.
3139 * If NSEC3 is not properly there (in the zone) nothing is added.
3140 * always enabled: include nsec3 proving about the Closest Encloser.
3141 * that is an exact match that should exist for it.
3142 * If that does not exist, a higher exact match + nxproof is enabled
3143 * (for some sort of opt-out empty nonterminal cases).
3144 * nodataproof: search for exact match and include that instead.
3145 * ceproof: include ce proof NSEC3 (omitted for wildcard replies).
3146 * nxproof: include denial of the qname.
3147 * wcproof: include denial of wildcard (wildcard.ce).
3148 */
3149 static int
az_add_nsec3_proof(struct auth_zone * z,struct regional * region,struct dns_msg * msg,uint8_t * cenm,size_t cenmlen,uint8_t * qname,size_t qname_len,int nodataproof,int ceproof,int nxproof,int wcproof)3150 az_add_nsec3_proof(struct auth_zone* z, struct regional* region,
3151 struct dns_msg* msg, uint8_t* cenm, size_t cenmlen, uint8_t* qname,
3152 size_t qname_len, int nodataproof, int ceproof, int nxproof,
3153 int wcproof)
3154 {
3155 int algo;
3156 size_t iter, saltlen;
3157 uint8_t* salt;
3158 int no_exact_ce = 0;
3159 struct auth_data* node;
3160
3161 /* find parameters of nsec3 proof */
3162 if(!az_nsec3_param(z, &algo, &iter, &salt, &saltlen))
3163 return 1; /* no nsec3 */
3164 if(nodataproof) {
3165 /* see if the node has a hash of itself for the nodata
3166 * proof nsec3, this has to be an exact match nsec3. */
3167 struct auth_data* match;
3168 match = az_nsec3_find_exact(z, qname, qname_len, algo,
3169 iter, salt, saltlen);
3170 if(match) {
3171 if(!az_nsec3_insert(z, region, msg, match))
3172 return 0;
3173 /* only nodata NSEC3 needed, no CE or others. */
3174 return 1;
3175 }
3176 }
3177 /* find ce that has an NSEC3 */
3178 if(ceproof) {
3179 node = az_nsec3_find_ce(z, &cenm, &cenmlen, &no_exact_ce,
3180 algo, iter, salt, saltlen);
3181 if(no_exact_ce) nxproof = 1;
3182 if(!az_nsec3_insert(z, region, msg, node))
3183 return 0;
3184 }
3185
3186 if(nxproof) {
3187 uint8_t* nx;
3188 size_t nxlen;
3189 /* create nextcloser domain name */
3190 az_nsec3_get_nextcloser(cenm, qname, qname_len, &nx, &nxlen);
3191 /* find nsec3 that matches or covers it */
3192 node = az_nsec3_find_cover(z, nx, nxlen, algo, iter, salt,
3193 saltlen);
3194 if(!az_nsec3_insert(z, region, msg, node))
3195 return 0;
3196 }
3197 if(wcproof) {
3198 /* create wildcard name *.ce */
3199 uint8_t wc[LDNS_MAX_DOMAINLEN];
3200 size_t wclen;
3201 if(cenmlen+2 > sizeof(wc))
3202 return 0; /* result would be too long */
3203 wc[0] = 1; /* length of wildcard label */
3204 wc[1] = (uint8_t)'*'; /* wildcard label */
3205 memmove(wc+2, cenm, cenmlen);
3206 wclen = cenmlen+2;
3207 /* find nsec3 that matches or covers it */
3208 node = az_nsec3_find_cover(z, wc, wclen, algo, iter, salt,
3209 saltlen);
3210 if(!az_nsec3_insert(z, region, msg, node))
3211 return 0;
3212 }
3213 return 1;
3214 }
3215
3216 /** generate answer for positive answer */
3217 static int
az_generate_positive_answer(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node,struct auth_rrset * rrset)3218 az_generate_positive_answer(struct auth_zone* z, struct regional* region,
3219 struct dns_msg* msg, struct auth_data* node, struct auth_rrset* rrset)
3220 {
3221 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3222 /* see if we want additional rrs */
3223 if(rrset->type == LDNS_RR_TYPE_MX) {
3224 if(!az_add_additionals_from(z, region, msg, rrset, 2))
3225 return 0;
3226 } else if(rrset->type == LDNS_RR_TYPE_SRV) {
3227 if(!az_add_additionals_from(z, region, msg, rrset, 6))
3228 return 0;
3229 } else if(rrset->type == LDNS_RR_TYPE_NS) {
3230 if(!az_add_additionals_from(z, region, msg, rrset, 0))
3231 return 0;
3232 }
3233 return 1;
3234 }
3235
3236 /** generate answer for type ANY answer */
3237 static int
az_generate_any_answer(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node)3238 az_generate_any_answer(struct auth_zone* z, struct regional* region,
3239 struct dns_msg* msg, struct auth_data* node)
3240 {
3241 struct auth_rrset* rrset;
3242 int added = 0;
3243 /* add a couple (at least one) RRs */
3244 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_SOA)) != NULL) {
3245 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3246 added++;
3247 }
3248 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_MX)) != NULL) {
3249 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3250 added++;
3251 }
3252 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_A)) != NULL) {
3253 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3254 added++;
3255 }
3256 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_AAAA)) != NULL) {
3257 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3258 added++;
3259 }
3260 if(added == 0 && node && node->rrsets) {
3261 if(!msg_add_rrset_an(z, region, msg, node,
3262 node->rrsets)) return 0;
3263 }
3264 return 1;
3265 }
3266
3267 /** follow cname chain and add more data to the answer section */
3268 static int
follow_cname_chain(struct auth_zone * z,uint16_t qtype,struct regional * region,struct dns_msg * msg,struct packed_rrset_data * d)3269 follow_cname_chain(struct auth_zone* z, uint16_t qtype,
3270 struct regional* region, struct dns_msg* msg,
3271 struct packed_rrset_data* d)
3272 {
3273 int maxchain = 0;
3274 /* see if we can add the target of the CNAME into the answer */
3275 while(maxchain++ < MAX_CNAME_CHAIN) {
3276 struct auth_data* node;
3277 struct auth_rrset* rrset;
3278 size_t clen;
3279 /* d has cname rdata */
3280 if(d->count == 0) break; /* no CNAME */
3281 if(d->rr_len[0] < 2+1) break; /* too small */
3282 if((clen=dname_valid(d->rr_data[0]+2, d->rr_len[0]-2))==0)
3283 break; /* malformed */
3284 if(!dname_subdomain_c(d->rr_data[0]+2, z->name))
3285 break; /* target out of zone */
3286 if((node = az_find_name(z, d->rr_data[0]+2, clen))==NULL)
3287 break; /* no such target name */
3288 if((rrset=az_domain_rrset(node, qtype))!=NULL) {
3289 /* done we found the target */
3290 if(!msg_add_rrset_an(z, region, msg, node, rrset))
3291 return 0;
3292 break;
3293 }
3294 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_CNAME))==NULL)
3295 break; /* no further CNAME chain, notype */
3296 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3297 d = rrset->data;
3298 }
3299 return 1;
3300 }
3301
3302 /** generate answer for cname answer */
3303 static int
az_generate_cname_answer(struct auth_zone * z,struct query_info * qinfo,struct regional * region,struct dns_msg * msg,struct auth_data * node,struct auth_rrset * rrset)3304 az_generate_cname_answer(struct auth_zone* z, struct query_info* qinfo,
3305 struct regional* region, struct dns_msg* msg,
3306 struct auth_data* node, struct auth_rrset* rrset)
3307 {
3308 if(!msg_add_rrset_an(z, region, msg, node, rrset)) return 0;
3309 if(!rrset) return 1;
3310 if(!follow_cname_chain(z, qinfo->qtype, region, msg, rrset->data))
3311 return 0;
3312 return 1;
3313 }
3314
3315 /** generate answer for notype answer */
3316 static int
az_generate_notype_answer(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * node)3317 az_generate_notype_answer(struct auth_zone* z, struct regional* region,
3318 struct dns_msg* msg, struct auth_data* node)
3319 {
3320 struct auth_rrset* rrset;
3321 if(!az_add_negative_soa(z, region, msg)) return 0;
3322 /* DNSSEC denial NSEC */
3323 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_NSEC))!=NULL) {
3324 if(!msg_add_rrset_ns(z, region, msg, node, rrset)) return 0;
3325 } else if(node) {
3326 /* DNSSEC denial NSEC3 */
3327 if(!az_add_nsec3_proof(z, region, msg, node->name,
3328 node->namelen, msg->qinfo.qname,
3329 msg->qinfo.qname_len, 1, 1, 0, 0))
3330 return 0;
3331 }
3332 return 1;
3333 }
3334
3335 /** generate answer for referral answer */
3336 static int
az_generate_referral_answer(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * ce,struct auth_rrset * rrset)3337 az_generate_referral_answer(struct auth_zone* z, struct regional* region,
3338 struct dns_msg* msg, struct auth_data* ce, struct auth_rrset* rrset)
3339 {
3340 struct auth_rrset* ds, *nsec;
3341 /* turn off AA flag, referral is nonAA because it leaves the zone */
3342 log_assert(ce);
3343 msg->rep->flags &= ~BIT_AA;
3344 if(!msg_add_rrset_ns(z, region, msg, ce, rrset)) return 0;
3345 /* add DS or deny it */
3346 if((ds=az_domain_rrset(ce, LDNS_RR_TYPE_DS))!=NULL) {
3347 if(!msg_add_rrset_ns(z, region, msg, ce, ds)) return 0;
3348 } else {
3349 /* deny the DS */
3350 if((nsec=az_domain_rrset(ce, LDNS_RR_TYPE_NSEC))!=NULL) {
3351 if(!msg_add_rrset_ns(z, region, msg, ce, nsec))
3352 return 0;
3353 } else {
3354 if(!az_add_nsec3_proof(z, region, msg, ce->name,
3355 ce->namelen, msg->qinfo.qname,
3356 msg->qinfo.qname_len, 1, 1, 0, 0))
3357 return 0;
3358 }
3359 }
3360 /* add additional rrs for type NS */
3361 if(!az_add_additionals_from(z, region, msg, rrset, 0)) return 0;
3362 return 1;
3363 }
3364
3365 /** generate answer for DNAME answer */
3366 static int
az_generate_dname_answer(struct auth_zone * z,struct query_info * qinfo,struct regional * region,struct dns_msg * msg,struct auth_data * ce,struct auth_rrset * rrset)3367 az_generate_dname_answer(struct auth_zone* z, struct query_info* qinfo,
3368 struct regional* region, struct dns_msg* msg, struct auth_data* ce,
3369 struct auth_rrset* rrset)
3370 {
3371 log_assert(ce);
3372 /* add the DNAME and then a CNAME */
3373 if(!msg_add_rrset_an(z, region, msg, ce, rrset)) return 0;
3374 if(!add_synth_cname(z, qinfo->qname, qinfo->qname_len, region,
3375 msg, ce, rrset)) return 0;
3376 if(FLAGS_GET_RCODE(msg->rep->flags) == LDNS_RCODE_YXDOMAIN)
3377 return 1;
3378 if(msg->rep->rrset_count == 0 ||
3379 !msg->rep->rrsets[msg->rep->rrset_count-1])
3380 return 0;
3381 if(!follow_cname_chain(z, qinfo->qtype, region, msg,
3382 (struct packed_rrset_data*)msg->rep->rrsets[
3383 msg->rep->rrset_count-1]->entry.data))
3384 return 0;
3385 return 1;
3386 }
3387
3388 /** generate answer for wildcard answer */
3389 static int
az_generate_wildcard_answer(struct auth_zone * z,struct query_info * qinfo,struct regional * region,struct dns_msg * msg,struct auth_data * ce,struct auth_data * wildcard,struct auth_data * node)3390 az_generate_wildcard_answer(struct auth_zone* z, struct query_info* qinfo,
3391 struct regional* region, struct dns_msg* msg, struct auth_data* ce,
3392 struct auth_data* wildcard, struct auth_data* node)
3393 {
3394 struct auth_rrset* rrset, *nsec;
3395 int insert_ce = 0;
3396 if((rrset=az_domain_rrset(wildcard, qinfo->qtype)) != NULL) {
3397 /* wildcard has type, add it */
3398 if(!msg_add_rrset_an(z, region, msg, wildcard, rrset))
3399 return 0;
3400 az_change_dnames(msg, wildcard->name, msg->qinfo.qname,
3401 msg->qinfo.qname_len, 1);
3402 } else if((rrset=az_domain_rrset(wildcard, LDNS_RR_TYPE_CNAME))!=NULL) {
3403 /* wildcard has cname instead, do that */
3404 if(!msg_add_rrset_an(z, region, msg, wildcard, rrset))
3405 return 0;
3406 az_change_dnames(msg, wildcard->name, msg->qinfo.qname,
3407 msg->qinfo.qname_len, 1);
3408 if(!follow_cname_chain(z, qinfo->qtype, region, msg,
3409 rrset->data))
3410 return 0;
3411 } else if(qinfo->qtype == LDNS_RR_TYPE_ANY && wildcard->rrsets) {
3412 /* add ANY rrsets from wildcard node */
3413 if(!az_generate_any_answer(z, region, msg, wildcard))
3414 return 0;
3415 az_change_dnames(msg, wildcard->name, msg->qinfo.qname,
3416 msg->qinfo.qname_len, 1);
3417 } else {
3418 /* wildcard has nodata, notype answer */
3419 /* call other notype routine for dnssec notype denials */
3420 if(!az_generate_notype_answer(z, region, msg, wildcard))
3421 return 0;
3422 /* because the notype, there is no positive data with an
3423 * RRSIG that indicates the wildcard position. Thus the
3424 * wildcard qname denial needs to have a CE nsec3. */
3425 insert_ce = 1;
3426 }
3427
3428 /* ce and node for dnssec denial of wildcard original name */
3429 if((nsec=az_find_nsec_cover(z, &node)) != NULL) {
3430 if(!msg_add_rrset_ns(z, region, msg, node, nsec)) return 0;
3431 } else if(ce) {
3432 uint8_t* wildup = wildcard->name;
3433 size_t wilduplen= wildcard->namelen;
3434 if(!dname_remove_label_limit_len(&wildup, &wilduplen, z->namelen))
3435 return 0; /* can't go up */
3436 if(!az_add_nsec3_proof(z, region, msg, wildup,
3437 wilduplen, msg->qinfo.qname,
3438 msg->qinfo.qname_len, 0, insert_ce, 1, 0))
3439 return 0;
3440 }
3441
3442 /* fixup name of wildcard from *.zone to qname, use already allocated
3443 * pointer to msg qname */
3444 az_change_dnames(msg, wildcard->name, msg->qinfo.qname,
3445 msg->qinfo.qname_len, 0);
3446 return 1;
3447 }
3448
3449 /** generate answer for nxdomain answer */
3450 static int
az_generate_nxdomain_answer(struct auth_zone * z,struct regional * region,struct dns_msg * msg,struct auth_data * ce,struct auth_data * node)3451 az_generate_nxdomain_answer(struct auth_zone* z, struct regional* region,
3452 struct dns_msg* msg, struct auth_data* ce, struct auth_data* node)
3453 {
3454 struct auth_rrset* nsec;
3455 msg->rep->flags |= LDNS_RCODE_NXDOMAIN;
3456 if(!az_add_negative_soa(z, region, msg)) return 0;
3457 if((nsec=az_find_nsec_cover(z, &node)) != NULL) {
3458 if(!msg_add_rrset_ns(z, region, msg, node, nsec)) return 0;
3459 if(ce && !az_nsec_wildcard_denial(z, region, msg, ce->name,
3460 ce->namelen)) return 0;
3461 } else if(ce) {
3462 if(!az_add_nsec3_proof(z, region, msg, ce->name,
3463 ce->namelen, msg->qinfo.qname,
3464 msg->qinfo.qname_len, 0, 1, 1, 1))
3465 return 0;
3466 }
3467 return 1;
3468 }
3469
3470 /** Create answers when an exact match exists for the domain name */
3471 static int
az_generate_answer_with_node(struct auth_zone * z,struct query_info * qinfo,struct regional * region,struct dns_msg * msg,struct auth_data * node)3472 az_generate_answer_with_node(struct auth_zone* z, struct query_info* qinfo,
3473 struct regional* region, struct dns_msg* msg, struct auth_data* node)
3474 {
3475 struct auth_rrset* rrset;
3476 /* positive answer, rrset we are looking for exists */
3477 if((rrset=az_domain_rrset(node, qinfo->qtype)) != NULL) {
3478 return az_generate_positive_answer(z, region, msg, node, rrset);
3479 }
3480 /* CNAME? */
3481 if((rrset=az_domain_rrset(node, LDNS_RR_TYPE_CNAME)) != NULL) {
3482 return az_generate_cname_answer(z, qinfo, region, msg,
3483 node, rrset);
3484 }
3485 /* type ANY ? */
3486 if(qinfo->qtype == LDNS_RR_TYPE_ANY) {
3487 return az_generate_any_answer(z, region, msg, node);
3488 }
3489 /* NOERROR/NODATA (no such type at domain name) */
3490 return az_generate_notype_answer(z, region, msg, node);
3491 }
3492
3493 /** Generate answer without an existing-node that we can use.
3494 * So it'll be a referral, DNAME, notype, wildcard or nxdomain */
3495 static int
az_generate_answer_nonexistnode(struct auth_zone * z,struct query_info * qinfo,struct regional * region,struct dns_msg * msg,struct auth_data * ce,struct auth_rrset * rrset,struct auth_data * node)3496 az_generate_answer_nonexistnode(struct auth_zone* z, struct query_info* qinfo,
3497 struct regional* region, struct dns_msg* msg, struct auth_data* ce,
3498 struct auth_rrset* rrset, struct auth_data* node)
3499 {
3500 struct auth_data* wildcard;
3501
3502 /* we do not have an exact matching name (that exists) */
3503 /* see if we have a NS or DNAME in the ce */
3504 if(ce && rrset && rrset->type == LDNS_RR_TYPE_NS) {
3505 return az_generate_referral_answer(z, region, msg, ce, rrset);
3506 }
3507 if(ce && rrset && rrset->type == LDNS_RR_TYPE_DNAME) {
3508 return az_generate_dname_answer(z, qinfo, region, msg, ce,
3509 rrset);
3510 }
3511 /* if there is an empty nonterminal, wildcard and nxdomain don't
3512 * happen, it is a notype answer */
3513 if(az_empty_nonterminal(z, qinfo, node)) {
3514 return az_generate_notype_answer(z, region, msg, node);
3515 }
3516 /* see if we have a wildcard under the ce */
3517 if((wildcard=az_find_wildcard(z, qinfo, ce)) != NULL) {
3518 return az_generate_wildcard_answer(z, qinfo, region, msg,
3519 ce, wildcard, node);
3520 }
3521 /* generate nxdomain answer */
3522 return az_generate_nxdomain_answer(z, region, msg, ce, node);
3523 }
3524
3525 /** Lookup answer in a zone. */
3526 static int
auth_zone_generate_answer(struct auth_zone * z,struct query_info * qinfo,struct regional * region,struct dns_msg ** msg,int * fallback)3527 auth_zone_generate_answer(struct auth_zone* z, struct query_info* qinfo,
3528 struct regional* region, struct dns_msg** msg, int* fallback)
3529 {
3530 struct auth_data* node, *ce;
3531 struct auth_rrset* rrset;
3532 int node_exact, node_exists;
3533 /* does the zone want fallback in case of failure? */
3534 *fallback = z->fallback_enabled;
3535 if(!(*msg=msg_create(region, qinfo))) return 0;
3536
3537 /* lookup if there is a matching domain name for the query */
3538 az_find_domain(z, qinfo, &node_exact, &node);
3539
3540 /* see if node exists for generating answers from (i.e. not glue and
3541 * obscured by NS or DNAME or NSEC3-only), and also return the
3542 * closest-encloser from that, closest node that should be used
3543 * to generate answers from that is above the query */
3544 node_exists = az_find_ce(z, qinfo, node, node_exact, &ce, &rrset);
3545
3546 if(verbosity >= VERB_ALGO) {
3547 char zname[256], qname[256], nname[256], cename[256],
3548 tpstr[32], rrstr[32];
3549 sldns_wire2str_dname_buf(qinfo->qname, qinfo->qname_len, qname,
3550 sizeof(qname));
3551 sldns_wire2str_type_buf(qinfo->qtype, tpstr, sizeof(tpstr));
3552 sldns_wire2str_dname_buf(z->name, z->namelen, zname,
3553 sizeof(zname));
3554 if(node)
3555 sldns_wire2str_dname_buf(node->name, node->namelen,
3556 nname, sizeof(nname));
3557 else snprintf(nname, sizeof(nname), "NULL");
3558 if(ce)
3559 sldns_wire2str_dname_buf(ce->name, ce->namelen,
3560 cename, sizeof(cename));
3561 else snprintf(cename, sizeof(cename), "NULL");
3562 if(rrset) sldns_wire2str_type_buf(rrset->type, rrstr,
3563 sizeof(rrstr));
3564 else snprintf(rrstr, sizeof(rrstr), "NULL");
3565 log_info("auth_zone %s query %s %s, domain %s %s %s, "
3566 "ce %s, rrset %s", zname, qname, tpstr, nname,
3567 (node_exact?"exact":"notexact"),
3568 (node_exists?"exist":"notexist"), cename, rrstr);
3569 }
3570
3571 if(node_exists) {
3572 /* the node is fine, generate answer from node */
3573 return az_generate_answer_with_node(z, qinfo, region, *msg,
3574 node);
3575 }
3576 return az_generate_answer_nonexistnode(z, qinfo, region, *msg,
3577 ce, rrset, node);
3578 }
3579
auth_zones_lookup(struct auth_zones * az,struct query_info * qinfo,struct regional * region,struct dns_msg ** msg,int * fallback,uint8_t * dp_nm,size_t dp_nmlen)3580 int auth_zones_lookup(struct auth_zones* az, struct query_info* qinfo,
3581 struct regional* region, struct dns_msg** msg, int* fallback,
3582 uint8_t* dp_nm, size_t dp_nmlen)
3583 {
3584 int r;
3585 struct auth_zone* z;
3586 /* find the zone that should contain the answer. */
3587 lock_rw_rdlock(&az->lock);
3588 z = auth_zone_find(az, dp_nm, dp_nmlen, qinfo->qclass);
3589 if(!z) {
3590 lock_rw_unlock(&az->lock);
3591 /* no auth zone, fallback to internet */
3592 *fallback = 1;
3593 return 0;
3594 }
3595 lock_rw_rdlock(&z->lock);
3596 lock_rw_unlock(&az->lock);
3597
3598 /* if not for upstream queries, fallback */
3599 if(!z->for_upstream) {
3600 lock_rw_unlock(&z->lock);
3601 *fallback = 1;
3602 return 0;
3603 }
3604 if(z->zone_expired || (z->zonemd_check && z->zonemd_callback_env)) {
3605 /* Do not serve from a zonemd-check zone while its ZONEMD
3606 * verification is still pending: the content is not yet known
3607 * to pass the configured check. The pending marker
3608 * (zonemd_callback_env) is set under z->lock when the async
3609 * lookup is spawned and cleared by the callback under z->lock,
3610 * so this test is race-free. */
3611 *fallback = z->fallback_enabled;
3612 lock_rw_unlock(&z->lock);
3613 return 0;
3614 }
3615 /* see what answer that zone would generate */
3616 r = auth_zone_generate_answer(z, qinfo, region, msg, fallback);
3617 lock_rw_unlock(&z->lock);
3618 return r;
3619 }
3620
3621 /** encode auth answer */
3622 static void
auth_answer_encode(struct query_info * qinfo,struct module_env * env,struct edns_data * edns,struct comm_reply * repinfo,sldns_buffer * buf,struct regional * temp,struct dns_msg * msg)3623 auth_answer_encode(struct query_info* qinfo, struct module_env* env,
3624 struct edns_data* edns, struct comm_reply* repinfo, sldns_buffer* buf,
3625 struct regional* temp, struct dns_msg* msg)
3626 {
3627 uint16_t udpsize;
3628 udpsize = edns->udp_size;
3629 edns->edns_version = EDNS_ADVERTISED_VERSION;
3630 edns->udp_size = EDNS_ADVERTISED_SIZE;
3631 edns->ext_rcode = 0;
3632 edns->bits &= EDNS_DO;
3633
3634 if(!inplace_cb_reply_local_call(env, qinfo, NULL, msg->rep,
3635 (int)FLAGS_GET_RCODE(msg->rep->flags), edns, repinfo, temp, env->now_tv)
3636 || !reply_info_answer_encode(qinfo, msg->rep,
3637 *(uint16_t*)sldns_buffer_begin(buf),
3638 sldns_buffer_read_u16_at(buf, 2),
3639 buf, 0, 0, temp, udpsize, edns,
3640 (int)(edns->bits&EDNS_DO), 0)) {
3641 error_encode(buf, (LDNS_RCODE_SERVFAIL|BIT_AA), qinfo,
3642 *(uint16_t*)sldns_buffer_begin(buf),
3643 sldns_buffer_read_u16_at(buf, 2), edns);
3644 }
3645 }
3646
3647 /** encode auth error answer */
3648 static void
auth_error_encode(struct query_info * qinfo,struct module_env * env,struct edns_data * edns,struct comm_reply * repinfo,sldns_buffer * buf,struct regional * temp,int rcode)3649 auth_error_encode(struct query_info* qinfo, struct module_env* env,
3650 struct edns_data* edns, struct comm_reply* repinfo, sldns_buffer* buf,
3651 struct regional* temp, int rcode)
3652 {
3653 edns->edns_version = EDNS_ADVERTISED_VERSION;
3654 edns->udp_size = EDNS_ADVERTISED_SIZE;
3655 edns->ext_rcode = 0;
3656 edns->bits &= EDNS_DO;
3657
3658 if(!inplace_cb_reply_local_call(env, qinfo, NULL, NULL,
3659 rcode, edns, repinfo, temp, env->now_tv))
3660 edns->opt_list_inplace_cb_out = NULL;
3661 error_encode(buf, rcode|BIT_AA, qinfo,
3662 *(uint16_t*)sldns_buffer_begin(buf),
3663 sldns_buffer_read_u16_at(buf, 2), edns);
3664 }
3665
auth_zones_downstream_answer(struct auth_zones * az,struct module_env * env,struct query_info * qinfo,struct edns_data * edns,struct comm_reply * repinfo,struct sldns_buffer * buf,struct regional * temp)3666 int auth_zones_downstream_answer(struct auth_zones* az, struct module_env* env,
3667 struct query_info* qinfo, struct edns_data* edns,
3668 struct comm_reply* repinfo, struct sldns_buffer* buf,
3669 struct regional* temp)
3670 {
3671 struct dns_msg* msg = NULL;
3672 struct auth_zone* z;
3673 int r;
3674 int fallback = 0;
3675 /* Copy the qinfo in case of cname aliasing from local-zone */
3676 struct query_info zqinfo = *qinfo;
3677
3678 lock_rw_rdlock(&az->lock);
3679 if(!az->have_downstream) {
3680 /* no downstream auth zones */
3681 lock_rw_unlock(&az->lock);
3682 return 0;
3683 }
3684
3685 if(qinfo->qtype == LDNS_RR_TYPE_DS) {
3686 uint8_t* delname = qinfo->qname;
3687 size_t delnamelen = qinfo->qname_len;
3688 dname_remove_label(&delname, &delnamelen);
3689 z = auth_zones_find_zone(az, delname, delnamelen,
3690 qinfo->qclass);
3691 } else {
3692 if(zqinfo.local_alias && !local_alias_shallow_copy_qname(
3693 zqinfo.local_alias, &zqinfo.qname,
3694 &zqinfo.qname_len)) {
3695 lock_rw_unlock(&az->lock);
3696 return 0;
3697 }
3698 z = auth_zones_find_zone(az, zqinfo.qname, zqinfo.qname_len,
3699 zqinfo.qclass);
3700 }
3701 if(!z) {
3702 /* no zone above it */
3703 lock_rw_unlock(&az->lock);
3704 return 0;
3705 }
3706 lock_rw_rdlock(&z->lock);
3707 lock_rw_unlock(&az->lock);
3708 if(!z->for_downstream) {
3709 lock_rw_unlock(&z->lock);
3710 return 0;
3711 }
3712 if(z->zone_expired || (z->zonemd_check && z->zonemd_callback_env)) {
3713 /* see auth_zones_lookup: a pending ZONEMD verification is
3714 * treated like expiry - the zone content is not yet known
3715 * to pass the configured check. */
3716 if(z->fallback_enabled) {
3717 lock_rw_unlock(&z->lock);
3718 return 0;
3719 }
3720 lock_rw_unlock(&z->lock);
3721 env->mesh->num_query_authzone_down++;
3722 auth_error_encode(qinfo, env, edns, repinfo, buf, temp,
3723 LDNS_RCODE_SERVFAIL);
3724 return 1;
3725 }
3726
3727 /* answer it from zone z */
3728 r = auth_zone_generate_answer(z, &zqinfo, temp, &msg, &fallback);
3729 lock_rw_unlock(&z->lock);
3730 if(!r && fallback) {
3731 /* fallback to regular answering (recursive) */
3732 return 0;
3733 }
3734 env->mesh->num_query_authzone_down++;
3735
3736 /* encode answer */
3737 if(!r)
3738 auth_error_encode(qinfo, env, edns, repinfo, buf, temp,
3739 LDNS_RCODE_SERVFAIL);
3740 else auth_answer_encode(qinfo, env, edns, repinfo, buf, temp, msg);
3741
3742 return 1;
3743 }
3744
auth_zones_can_fallback(struct auth_zones * az,uint8_t * nm,size_t nmlen,uint16_t dclass)3745 int auth_zones_can_fallback(struct auth_zones* az, uint8_t* nm, size_t nmlen,
3746 uint16_t dclass)
3747 {
3748 int r;
3749 struct auth_zone* z;
3750 lock_rw_rdlock(&az->lock);
3751 z = auth_zone_find(az, nm, nmlen, dclass);
3752 if(!z) {
3753 lock_rw_unlock(&az->lock);
3754 /* no such auth zone, fallback */
3755 return 1;
3756 }
3757 lock_rw_rdlock(&z->lock);
3758 lock_rw_unlock(&az->lock);
3759 r = z->fallback_enabled || (!z->for_upstream);
3760 lock_rw_unlock(&z->lock);
3761 return r;
3762 }
3763
3764 int
auth_zone_parse_notify_serial(sldns_buffer * pkt,uint32_t * serial)3765 auth_zone_parse_notify_serial(sldns_buffer* pkt, uint32_t *serial)
3766 {
3767 struct query_info q;
3768 uint16_t rdlen;
3769 memset(&q, 0, sizeof(q));
3770 sldns_buffer_set_position(pkt, 0);
3771 if(!query_info_parse(&q, pkt)) return 0;
3772 if(LDNS_ANCOUNT(sldns_buffer_begin(pkt)) == 0) return 0;
3773 /* skip name of RR in answer section */
3774 if(sldns_buffer_remaining(pkt) < 1) return 0;
3775 if(pkt_dname_len(pkt) == 0) return 0;
3776 /* check type */
3777 if(sldns_buffer_remaining(pkt) < 10 /* type,class,ttl,rdatalen*/)
3778 return 0;
3779 if(sldns_buffer_read_u16(pkt) != LDNS_RR_TYPE_SOA) return 0;
3780 sldns_buffer_skip(pkt, 2); /* class */
3781 sldns_buffer_skip(pkt, 4); /* ttl */
3782 rdlen = sldns_buffer_read_u16(pkt); /* rdatalen */
3783 if(sldns_buffer_remaining(pkt) < rdlen) return 0;
3784 if(rdlen < 22) return 0; /* bad soa length */
3785 sldns_buffer_skip(pkt, (ssize_t)(rdlen-20));
3786 *serial = sldns_buffer_read_u32(pkt);
3787 /* return true when has serial in answer section */
3788 return 1;
3789 }
3790
3791 /** print addr to str, and if not 53, append "@port_number", for logs. */
addr_port_to_str(struct sockaddr_storage * addr,socklen_t addrlen,char * buf,size_t len)3792 static void addr_port_to_str(struct sockaddr_storage* addr, socklen_t addrlen,
3793 char* buf, size_t len)
3794 {
3795 uint16_t port = 0;
3796 if(addr_is_ip6(addr, addrlen)) {
3797 struct sockaddr_in6* sa = (struct sockaddr_in6*)addr;
3798 port = ntohs((uint16_t)sa->sin6_port);
3799 } else {
3800 struct sockaddr_in* sa = (struct sockaddr_in*)addr;
3801 port = ntohs((uint16_t)sa->sin_port);
3802 }
3803 if(port == UNBOUND_DNS_PORT) {
3804 /* If it is port 53, print it plainly. */
3805 addr_to_str(addr, addrlen, buf, len);
3806 } else {
3807 char a[256];
3808 a[0]=0;
3809 addr_to_str(addr, addrlen, a, sizeof(a));
3810 snprintf(buf, len, "%s@%d", a, (int)port);
3811 }
3812 }
3813
3814 /** see if addr appears in the list */
3815 static int
addr_in_list(struct auth_addr * list,struct sockaddr_storage * addr,socklen_t addrlen)3816 addr_in_list(struct auth_addr* list, struct sockaddr_storage* addr,
3817 socklen_t addrlen)
3818 {
3819 struct auth_addr* p;
3820 for(p=list; p; p=p->next) {
3821 if(sockaddr_cmp_addr(addr, addrlen, &p->addr, p->addrlen)==0)
3822 return 1;
3823 }
3824 return 0;
3825 }
3826
3827 /** check if an address matches a master specification (or one of its
3828 * addresses in the addr list) */
3829 static int
addr_matches_master(struct auth_master * master,struct sockaddr_storage * addr,socklen_t addrlen,struct auth_master ** fromhost)3830 addr_matches_master(struct auth_master* master, struct sockaddr_storage* addr,
3831 socklen_t addrlen, struct auth_master** fromhost)
3832 {
3833 struct sockaddr_storage a;
3834 socklen_t alen = 0;
3835 int net = 0;
3836 if(addr_in_list(master->list, addr, addrlen)) {
3837 *fromhost = master;
3838 return 1;
3839 }
3840 /* compare address (but not port number, that is the destination
3841 * port of the master, the port number of the received notify is
3842 * allowed to by any port on that master) */
3843 if(extstrtoaddr(master->host, &a, &alen, UNBOUND_DNS_PORT) &&
3844 sockaddr_cmp_addr(addr, addrlen, &a, alen)==0) {
3845 *fromhost = master;
3846 return 1;
3847 }
3848 /* prefixes, addr/len, like 10.0.0.0/8 */
3849 /* not http and has a / and there is one / */
3850 if(master->allow_notify && !master->http &&
3851 strchr(master->host, '/') != NULL &&
3852 strchr(master->host, '/') == strrchr(master->host, '/') &&
3853 netblockstrtoaddr(master->host, UNBOUND_DNS_PORT, &a, &alen,
3854 &net) && alen == addrlen) {
3855 if(addr_in_common(addr, (addr_is_ip6(addr, addrlen)?128:32),
3856 &a, net, alen) >= net) {
3857 *fromhost = NULL; /* prefix does not have destination
3858 to send the probe or transfer with */
3859 return 1; /* matches the netblock */
3860 }
3861 }
3862 return 0;
3863 }
3864
3865 /** check access list for notifies */
3866 static int
az_xfr_allowed_notify(struct auth_xfer * xfr,struct sockaddr_storage * addr,socklen_t addrlen,struct auth_master ** fromhost)3867 az_xfr_allowed_notify(struct auth_xfer* xfr, struct sockaddr_storage* addr,
3868 socklen_t addrlen, struct auth_master** fromhost)
3869 {
3870 struct auth_master* p;
3871 for(p=xfr->allow_notify_list; p; p=p->next) {
3872 if(addr_matches_master(p, addr, addrlen, fromhost)) {
3873 return 1;
3874 }
3875 }
3876 return 0;
3877 }
3878
3879 /** see if the serial means the zone has to be updated, i.e. the serial
3880 * is newer than the zone serial, or we have no zone */
3881 static int
xfr_serial_means_update(struct auth_xfer * xfr,uint32_t serial)3882 xfr_serial_means_update(struct auth_xfer* xfr, uint32_t serial)
3883 {
3884 if(!xfr->have_zone)
3885 return 1; /* no zone, anything is better */
3886 if(xfr->zone_expired)
3887 return 1; /* expired, the sent serial is better than expired
3888 data */
3889 if(compare_serial(xfr->serial, serial) < 0)
3890 return 1; /* our serial is smaller than the sent serial,
3891 the data is newer, fetch it */
3892 return 0;
3893 }
3894
3895 /** note notify serial, updates the notify information in the xfr struct */
3896 static void
xfr_note_notify_serial(struct auth_xfer * xfr,int has_serial,uint32_t serial)3897 xfr_note_notify_serial(struct auth_xfer* xfr, int has_serial, uint32_t serial)
3898 {
3899 if(xfr->notify_received && xfr->notify_has_serial && has_serial) {
3900 /* see if this serial is newer */
3901 if(compare_serial(xfr->notify_serial, serial) < 0)
3902 xfr->notify_serial = serial;
3903 } else if(xfr->notify_received && xfr->notify_has_serial &&
3904 !has_serial) {
3905 /* remove serial, we have notify without serial */
3906 xfr->notify_has_serial = 0;
3907 xfr->notify_serial = 0;
3908 } else if(xfr->notify_received && !xfr->notify_has_serial) {
3909 /* we already have notify without serial, keep it
3910 * that way; no serial check when current operation
3911 * is done */
3912 } else {
3913 xfr->notify_received = 1;
3914 xfr->notify_has_serial = has_serial;
3915 xfr->notify_serial = serial;
3916 }
3917 }
3918
3919 /** process a notify serial, start new probe or note serial. xfr is locked */
3920 static void
xfr_process_notify(struct auth_xfer * xfr,struct module_env * env,int has_serial,uint32_t serial,struct auth_master * fromhost)3921 xfr_process_notify(struct auth_xfer* xfr, struct module_env* env,
3922 int has_serial, uint32_t serial, struct auth_master* fromhost)
3923 {
3924 /* if the serial of notify is older than we have, don't fetch
3925 * a zone, we already have it */
3926 if(has_serial && !xfr_serial_means_update(xfr, serial)) {
3927 lock_basic_unlock(&xfr->lock);
3928 return;
3929 }
3930 /* start new probe with this addr src, or note serial */
3931 if(!xfr_start_probe(xfr, env, fromhost)) {
3932 /* not started because already in progress, note the serial */
3933 xfr_note_notify_serial(xfr, has_serial, serial);
3934 lock_basic_unlock(&xfr->lock);
3935 }
3936 /* successful end of start_probe unlocked xfr->lock */
3937 }
3938
auth_zones_notify(struct auth_zones * az,struct module_env * env,uint8_t * nm,size_t nmlen,uint16_t dclass,struct sockaddr_storage * addr,socklen_t addrlen,int has_serial,uint32_t serial,int * refused)3939 int auth_zones_notify(struct auth_zones* az, struct module_env* env,
3940 uint8_t* nm, size_t nmlen, uint16_t dclass,
3941 struct sockaddr_storage* addr, socklen_t addrlen, int has_serial,
3942 uint32_t serial, int* refused)
3943 {
3944 struct auth_xfer* xfr;
3945 struct auth_master* fromhost = NULL;
3946 /* see which zone this is */
3947 lock_rw_rdlock(&az->lock);
3948 xfr = auth_xfer_find(az, nm, nmlen, dclass);
3949 if(!xfr) {
3950 lock_rw_unlock(&az->lock);
3951 /* no such zone, refuse the notify */
3952 *refused = 1;
3953 return 0;
3954 }
3955 lock_basic_lock(&xfr->lock);
3956 lock_rw_unlock(&az->lock);
3957
3958 /* check access list for notifies */
3959 if(!az_xfr_allowed_notify(xfr, addr, addrlen, &fromhost)) {
3960 lock_basic_unlock(&xfr->lock);
3961 /* notify not allowed, refuse the notify */
3962 *refused = 1;
3963 return 0;
3964 }
3965
3966 /* process the notify */
3967 xfr_process_notify(xfr, env, has_serial, serial, fromhost);
3968 return 1;
3969 }
3970
auth_zones_startprobesequence(struct auth_zones * az,struct module_env * env,uint8_t * nm,size_t nmlen,uint16_t dclass)3971 int auth_zones_startprobesequence(struct auth_zones* az,
3972 struct module_env* env, uint8_t* nm, size_t nmlen, uint16_t dclass)
3973 {
3974 struct auth_xfer* xfr;
3975 lock_rw_rdlock(&az->lock);
3976 xfr = auth_xfer_find(az, nm, nmlen, dclass);
3977 if(!xfr) {
3978 lock_rw_unlock(&az->lock);
3979 return 0;
3980 }
3981 lock_basic_lock(&xfr->lock);
3982 lock_rw_unlock(&az->lock);
3983
3984 xfr_process_notify(xfr, env, 0, 0, NULL);
3985 return 1;
3986 }
3987
3988 /** set a zone expired */
3989 static void
auth_xfer_set_expired(struct auth_xfer * xfr,struct module_env * env,int expired)3990 auth_xfer_set_expired(struct auth_xfer* xfr, struct module_env* env,
3991 int expired)
3992 {
3993 struct auth_zone* z;
3994
3995 /* expire xfr */
3996 lock_basic_lock(&xfr->lock);
3997 xfr->zone_expired = expired;
3998 lock_basic_unlock(&xfr->lock);
3999
4000 /* find auth_zone */
4001 lock_rw_rdlock(&env->auth_zones->lock);
4002 z = auth_zone_find(env->auth_zones, xfr->name, xfr->namelen,
4003 xfr->dclass);
4004 if(!z) {
4005 lock_rw_unlock(&env->auth_zones->lock);
4006 return;
4007 }
4008 lock_rw_wrlock(&z->lock);
4009 lock_rw_unlock(&env->auth_zones->lock);
4010
4011 /* expire auth_zone */
4012 z->zone_expired = expired;
4013 lock_rw_unlock(&z->lock);
4014 }
4015
4016 /** find master (from notify or probe) in list of masters */
4017 static struct auth_master*
find_master_by_host(struct auth_master * list,char * host)4018 find_master_by_host(struct auth_master* list, char* host)
4019 {
4020 struct auth_master* p;
4021 for(p=list; p; p=p->next) {
4022 if(strcmp(p->host, host) == 0)
4023 return p;
4024 }
4025 return NULL;
4026 }
4027
4028 /** delete the looked up auth_addrs for all the masters in the list */
4029 static void
xfr_masterlist_free_addrs(struct auth_master * list)4030 xfr_masterlist_free_addrs(struct auth_master* list)
4031 {
4032 struct auth_master* m;
4033 for(m=list; m; m=m->next) {
4034 if(m->list) {
4035 auth_free_master_addrs(m->list);
4036 m->list = NULL;
4037 }
4038 }
4039 }
4040
4041 /** copy a list of auth_addrs */
4042 static struct auth_addr*
auth_addr_list_copy(struct auth_addr * source)4043 auth_addr_list_copy(struct auth_addr* source)
4044 {
4045 struct auth_addr* list = NULL, *last = NULL;
4046 struct auth_addr* p;
4047 for(p=source; p; p=p->next) {
4048 struct auth_addr* a = (struct auth_addr*)memdup(p, sizeof(*p));
4049 if(!a) {
4050 log_err("malloc failure");
4051 auth_free_master_addrs(list);
4052 return NULL;
4053 }
4054 a->next = NULL;
4055 if(last) last->next = a;
4056 if(!list) list = a;
4057 last = a;
4058 }
4059 return list;
4060 }
4061
4062 /** copy a master to a new structure, NULL on alloc failure */
4063 static struct auth_master*
auth_master_copy(struct auth_master * o)4064 auth_master_copy(struct auth_master* o)
4065 {
4066 struct auth_master* m;
4067 if(!o) return NULL;
4068 m = (struct auth_master*)memdup(o, sizeof(*o));
4069 if(!m) {
4070 log_err("malloc failure");
4071 return NULL;
4072 }
4073 m->next = NULL;
4074 if(m->host) {
4075 m->host = strdup(m->host);
4076 if(!m->host) {
4077 free(m);
4078 log_err("malloc failure");
4079 return NULL;
4080 }
4081 }
4082 if(m->file) {
4083 m->file = strdup(m->file);
4084 if(!m->file) {
4085 free(m->host);
4086 free(m);
4087 log_err("malloc failure");
4088 return NULL;
4089 }
4090 }
4091 if(m->list) {
4092 m->list = auth_addr_list_copy(m->list);
4093 if(!m->list) {
4094 free(m->file);
4095 free(m->host);
4096 free(m);
4097 return NULL;
4098 }
4099 }
4100 return m;
4101 }
4102
4103 /** append the master to the copied list. */
4104 static int
auth_master_copy_and_append(struct auth_master * p,struct auth_master ** list,struct auth_master ** last)4105 auth_master_copy_and_append(struct auth_master* p, struct auth_master** list,
4106 struct auth_master** last)
4107 {
4108 struct auth_master* m = auth_master_copy(p);
4109 if(!m) {
4110 return 0;
4111 }
4112 m->next = NULL;
4113 if(*last) (*last)->next = m;
4114 if(!*list) *list = m;
4115 *last = m;
4116 return 1;
4117 }
4118
4119 /** copy the master addresses from the task_probe lookups to the allow_notify
4120 * list of masters */
4121 static void
probe_copy_masters_for_allow_notify(struct auth_xfer * xfr)4122 probe_copy_masters_for_allow_notify(struct auth_xfer* xfr)
4123 {
4124 struct auth_master* list = NULL, *last = NULL;
4125 struct auth_master* p;
4126 /* build up new list with copies */
4127 /* The list in task probe has been looked up before the list in
4128 * task transfer. */
4129 for(p = xfr->task_probe->masters; p; p=p->next) {
4130 if(!auth_master_copy_and_append(p, &list, &last)) {
4131 auth_free_masters(list);
4132 /* failed because of malloc failure, use old list */
4133 return;
4134 }
4135 }
4136 /* The list in task transfer also contains the http entries. */
4137 for(p = xfr->task_transfer->masters; p; p=p->next) {
4138 /* Copy the http entries from this lookup. The allow_notify
4139 * entries are not looked up from this list. The other
4140 * ones are already in from the probe lookups. */
4141 if(!p->http)
4142 continue;
4143 if(!auth_master_copy_and_append(p, &list, &last)) {
4144 auth_free_masters(list);
4145 /* failed because of malloc failure, use old list */
4146 return;
4147 }
4148 }
4149 /* success, replace list */
4150 auth_free_masters(xfr->allow_notify_list);
4151 xfr->allow_notify_list = list;
4152 }
4153
4154 /** start the lookups for task_transfer */
4155 static void
xfr_transfer_start_lookups(struct auth_xfer * xfr)4156 xfr_transfer_start_lookups(struct auth_xfer* xfr)
4157 {
4158 /* delete all the looked up addresses in the list */
4159 xfr->task_transfer->scan_addr = NULL;
4160 xfr_masterlist_free_addrs(xfr->task_transfer->masters);
4161
4162 /* start lookup at the first master */
4163 xfr->task_transfer->lookup_target = xfr->task_transfer->masters;
4164 xfr->task_transfer->lookup_aaaa = 0;
4165 }
4166
4167 /** move to the next lookup of hostname for task_transfer */
4168 static void
xfr_transfer_move_to_next_lookup(struct auth_xfer * xfr,struct module_env * env)4169 xfr_transfer_move_to_next_lookup(struct auth_xfer* xfr, struct module_env* env)
4170 {
4171 if(!xfr->task_transfer->lookup_target)
4172 return; /* already at end of list */
4173 if(!xfr->task_transfer->lookup_aaaa && env->cfg->do_ip6) {
4174 /* move to lookup AAAA */
4175 xfr->task_transfer->lookup_aaaa = 1;
4176 return;
4177 }
4178 xfr->task_transfer->lookup_target =
4179 xfr->task_transfer->lookup_target->next;
4180 xfr->task_transfer->lookup_aaaa = 0;
4181 if(!env->cfg->do_ip4 && xfr->task_transfer->lookup_target!=NULL)
4182 xfr->task_transfer->lookup_aaaa = 1;
4183 }
4184
4185 /** start the lookups for task_probe */
4186 static void
xfr_probe_start_lookups(struct auth_xfer * xfr)4187 xfr_probe_start_lookups(struct auth_xfer* xfr)
4188 {
4189 /* delete all the looked up addresses in the list */
4190 xfr->task_probe->scan_addr = NULL;
4191 xfr_masterlist_free_addrs(xfr->task_probe->masters);
4192
4193 /* start lookup at the first master */
4194 xfr->task_probe->lookup_target = xfr->task_probe->masters;
4195 xfr->task_probe->lookup_aaaa = 0;
4196 }
4197
4198 /** move to the next lookup of hostname for task_probe */
4199 static void
xfr_probe_move_to_next_lookup(struct auth_xfer * xfr,struct module_env * env)4200 xfr_probe_move_to_next_lookup(struct auth_xfer* xfr, struct module_env* env)
4201 {
4202 if(!xfr->task_probe->lookup_target)
4203 return; /* already at end of list */
4204 if(!xfr->task_probe->lookup_aaaa && env->cfg->do_ip6) {
4205 /* move to lookup AAAA */
4206 xfr->task_probe->lookup_aaaa = 1;
4207 return;
4208 }
4209 xfr->task_probe->lookup_target = xfr->task_probe->lookup_target->next;
4210 xfr->task_probe->lookup_aaaa = 0;
4211 if(!env->cfg->do_ip4 && xfr->task_probe->lookup_target!=NULL)
4212 xfr->task_probe->lookup_aaaa = 1;
4213 }
4214
4215 /** start the iteration of the task_transfer list of masters */
4216 static void
xfr_transfer_start_list(struct auth_xfer * xfr,struct auth_master * spec)4217 xfr_transfer_start_list(struct auth_xfer* xfr, struct auth_master* spec)
4218 {
4219 if(spec) {
4220 xfr->task_transfer->scan_specific = find_master_by_host(
4221 xfr->task_transfer->masters, spec->host);
4222 if(xfr->task_transfer->scan_specific) {
4223 xfr->task_transfer->scan_target = NULL;
4224 xfr->task_transfer->scan_addr = NULL;
4225 if(xfr->task_transfer->scan_specific->list)
4226 xfr->task_transfer->scan_addr =
4227 xfr->task_transfer->scan_specific->list;
4228 return;
4229 }
4230 }
4231 /* no specific (notified) host to scan */
4232 xfr->task_transfer->scan_specific = NULL;
4233 xfr->task_transfer->scan_addr = NULL;
4234 /* pick up first scan target */
4235 xfr->task_transfer->scan_target = xfr->task_transfer->masters;
4236 if(xfr->task_transfer->scan_target && xfr->task_transfer->
4237 scan_target->list)
4238 xfr->task_transfer->scan_addr =
4239 xfr->task_transfer->scan_target->list;
4240 }
4241
4242 /** start the iteration of the task_probe list of masters */
4243 static void
xfr_probe_start_list(struct auth_xfer * xfr,struct auth_master * spec)4244 xfr_probe_start_list(struct auth_xfer* xfr, struct auth_master* spec)
4245 {
4246 if(spec) {
4247 xfr->task_probe->scan_specific = find_master_by_host(
4248 xfr->task_probe->masters, spec->host);
4249 if(xfr->task_probe->scan_specific) {
4250 xfr->task_probe->scan_target = NULL;
4251 xfr->task_probe->scan_addr = NULL;
4252 if(xfr->task_probe->scan_specific->list)
4253 xfr->task_probe->scan_addr =
4254 xfr->task_probe->scan_specific->list;
4255 return;
4256 }
4257 }
4258 /* no specific (notified) host to scan */
4259 xfr->task_probe->scan_specific = NULL;
4260 xfr->task_probe->scan_addr = NULL;
4261 /* pick up first scan target */
4262 xfr->task_probe->scan_target = xfr->task_probe->masters;
4263 if(xfr->task_probe->scan_target && xfr->task_probe->scan_target->list)
4264 xfr->task_probe->scan_addr =
4265 xfr->task_probe->scan_target->list;
4266 }
4267
4268 /** pick up the master that is being scanned right now, task_transfer */
4269 static struct auth_master*
xfr_transfer_current_master(struct auth_xfer * xfr)4270 xfr_transfer_current_master(struct auth_xfer* xfr)
4271 {
4272 if(xfr->task_transfer->scan_specific)
4273 return xfr->task_transfer->scan_specific;
4274 return xfr->task_transfer->scan_target;
4275 }
4276
4277 /** pick up the master that is being scanned right now, task_probe */
4278 static struct auth_master*
xfr_probe_current_master(struct auth_xfer * xfr)4279 xfr_probe_current_master(struct auth_xfer* xfr)
4280 {
4281 if(xfr->task_probe->scan_specific)
4282 return xfr->task_probe->scan_specific;
4283 return xfr->task_probe->scan_target;
4284 }
4285
4286 /** true if at end of list, task_transfer */
4287 static int
xfr_transfer_end_of_list(struct auth_xfer * xfr)4288 xfr_transfer_end_of_list(struct auth_xfer* xfr)
4289 {
4290 return !xfr->task_transfer->scan_specific &&
4291 !xfr->task_transfer->scan_target;
4292 }
4293
4294 /** true if at end of list, task_probe */
4295 static int
xfr_probe_end_of_list(struct auth_xfer * xfr)4296 xfr_probe_end_of_list(struct auth_xfer* xfr)
4297 {
4298 return !xfr->task_probe->scan_specific && !xfr->task_probe->scan_target;
4299 }
4300
4301 /** move to next master in list, task_transfer */
4302 static void
xfr_transfer_nextmaster(struct auth_xfer * xfr)4303 xfr_transfer_nextmaster(struct auth_xfer* xfr)
4304 {
4305 if(!xfr->task_transfer->scan_specific &&
4306 !xfr->task_transfer->scan_target)
4307 return;
4308 if(xfr->task_transfer->scan_addr) {
4309 xfr->task_transfer->scan_addr =
4310 xfr->task_transfer->scan_addr->next;
4311 if(xfr->task_transfer->scan_addr)
4312 return;
4313 }
4314 if(xfr->task_transfer->scan_specific) {
4315 xfr->task_transfer->scan_specific = NULL;
4316 xfr->task_transfer->scan_target = xfr->task_transfer->masters;
4317 if(xfr->task_transfer->scan_target && xfr->task_transfer->
4318 scan_target->list)
4319 xfr->task_transfer->scan_addr =
4320 xfr->task_transfer->scan_target->list;
4321 return;
4322 }
4323 if(!xfr->task_transfer->scan_target)
4324 return;
4325 xfr->task_transfer->scan_target = xfr->task_transfer->scan_target->next;
4326 if(xfr->task_transfer->scan_target && xfr->task_transfer->
4327 scan_target->list)
4328 xfr->task_transfer->scan_addr =
4329 xfr->task_transfer->scan_target->list;
4330 return;
4331 }
4332
4333 /** move to next master in list, task_probe */
4334 static void
xfr_probe_nextmaster(struct auth_xfer * xfr)4335 xfr_probe_nextmaster(struct auth_xfer* xfr)
4336 {
4337 if(!xfr->task_probe->scan_specific && !xfr->task_probe->scan_target)
4338 return;
4339 if(xfr->task_probe->scan_addr) {
4340 xfr->task_probe->scan_addr = xfr->task_probe->scan_addr->next;
4341 if(xfr->task_probe->scan_addr)
4342 return;
4343 }
4344 if(xfr->task_probe->scan_specific) {
4345 xfr->task_probe->scan_specific = NULL;
4346 xfr->task_probe->scan_target = xfr->task_probe->masters;
4347 if(xfr->task_probe->scan_target && xfr->task_probe->
4348 scan_target->list)
4349 xfr->task_probe->scan_addr =
4350 xfr->task_probe->scan_target->list;
4351 return;
4352 }
4353 if(!xfr->task_probe->scan_target)
4354 return;
4355 xfr->task_probe->scan_target = xfr->task_probe->scan_target->next;
4356 if(xfr->task_probe->scan_target && xfr->task_probe->
4357 scan_target->list)
4358 xfr->task_probe->scan_addr =
4359 xfr->task_probe->scan_target->list;
4360 return;
4361 }
4362
4363 /** create SOA probe packet for xfr */
4364 static void
xfr_create_soa_probe_packet(struct auth_xfer * xfr,sldns_buffer * buf,uint16_t id)4365 xfr_create_soa_probe_packet(struct auth_xfer* xfr, sldns_buffer* buf,
4366 uint16_t id)
4367 {
4368 struct query_info qinfo;
4369
4370 memset(&qinfo, 0, sizeof(qinfo));
4371 qinfo.qname = xfr->name;
4372 qinfo.qname_len = xfr->namelen;
4373 qinfo.qtype = LDNS_RR_TYPE_SOA;
4374 qinfo.qclass = xfr->dclass;
4375 qinfo_query_encode(buf, &qinfo);
4376 sldns_buffer_write_u16_at(buf, 0, id);
4377 }
4378
4379 /** create IXFR/AXFR packet for xfr */
4380 static void
xfr_create_ixfr_packet(struct auth_xfer * xfr,sldns_buffer * buf,uint16_t id,struct auth_master * master)4381 xfr_create_ixfr_packet(struct auth_xfer* xfr, sldns_buffer* buf, uint16_t id,
4382 struct auth_master* master)
4383 {
4384 struct query_info qinfo;
4385 uint32_t serial;
4386 int have_zone, get_full = 0;
4387 have_zone = xfr->have_zone;
4388 serial = xfr->serial;
4389
4390 memset(&qinfo, 0, sizeof(qinfo));
4391 qinfo.qname = xfr->name;
4392 qinfo.qname_len = xfr->namelen;
4393 xfr->task_transfer->got_xfr_serial = 0;
4394 xfr->task_transfer->rr_scan_num = 0;
4395 xfr->task_transfer->incoming_xfr_serial = 0;
4396 xfr->task_transfer->on_ixfr_is_axfr = 0;
4397 xfr->task_transfer->on_ixfr = 1;
4398 qinfo.qtype = LDNS_RR_TYPE_IXFR;
4399 if(xfr->num_ixfrs >= NUM_IXFR_BEFORE_AXFR && xfr->is_rpz) {
4400 /* For the RPZ, an IXFR is going to grow regions, and a
4401 * full transfer, zonefile read, AXFR and HTTP clear the
4402 * region, but IXFR does not. That memory keeps growing,
4403 * and getting a full transfer with AXFR here resets that.
4404 * The rpz->client_set->region, rpz->ns_set->region and
4405 * rpz->respip_set->region need to be reset, they are for
4406 * rpz-client-ip, rpz-nsip and rpz-ip. */
4407 get_full = 1;
4408 }
4409 if(!have_zone || xfr->task_transfer->ixfr_fail || !master->ixfr
4410 || get_full) {
4411 qinfo.qtype = LDNS_RR_TYPE_AXFR;
4412 xfr->task_transfer->ixfr_fail = 0;
4413 xfr->task_transfer->on_ixfr = 0;
4414 }
4415
4416 qinfo.qclass = xfr->dclass;
4417 qinfo_query_encode(buf, &qinfo);
4418 sldns_buffer_write_u16_at(buf, 0, id);
4419
4420 /* append serial for IXFR */
4421 if(qinfo.qtype == LDNS_RR_TYPE_IXFR) {
4422 size_t end = sldns_buffer_limit(buf);
4423 sldns_buffer_clear(buf);
4424 sldns_buffer_set_position(buf, end);
4425 /* auth section count 1 */
4426 sldns_buffer_write_u16_at(buf, LDNS_NSCOUNT_OFF, 1);
4427 /* write SOA */
4428 sldns_buffer_write_u8(buf, 0xC0); /* compressed ptr to qname */
4429 sldns_buffer_write_u8(buf, 0x0C);
4430 sldns_buffer_write_u16(buf, LDNS_RR_TYPE_SOA);
4431 sldns_buffer_write_u16(buf, qinfo.qclass);
4432 sldns_buffer_write_u32(buf, 0); /* ttl */
4433 sldns_buffer_write_u16(buf, 22); /* rdata length */
4434 sldns_buffer_write_u8(buf, 0); /* . */
4435 sldns_buffer_write_u8(buf, 0); /* . */
4436 sldns_buffer_write_u32(buf, serial); /* serial */
4437 sldns_buffer_write_u32(buf, 0); /* refresh */
4438 sldns_buffer_write_u32(buf, 0); /* retry */
4439 sldns_buffer_write_u32(buf, 0); /* expire */
4440 sldns_buffer_write_u32(buf, 0); /* minimum */
4441 sldns_buffer_flip(buf);
4442 }
4443 }
4444
4445 /** check if returned packet is OK */
4446 static int
check_packet_ok(sldns_buffer * pkt,uint16_t qtype,struct auth_xfer * xfr,uint32_t * serial)4447 check_packet_ok(sldns_buffer* pkt, uint16_t qtype, struct auth_xfer* xfr,
4448 uint32_t* serial)
4449 {
4450 /* parse to see if packet worked, valid reply */
4451
4452 /* check serial number of SOA */
4453 if(sldns_buffer_limit(pkt) < LDNS_HEADER_SIZE)
4454 return 0;
4455
4456 /* check ID */
4457 if(LDNS_ID_WIRE(sldns_buffer_begin(pkt)) != xfr->task_probe->id)
4458 return 0;
4459
4460 /* check flag bits and rcode */
4461 if(!LDNS_QR_WIRE(sldns_buffer_begin(pkt)))
4462 return 0;
4463 if(LDNS_OPCODE_WIRE(sldns_buffer_begin(pkt)) != LDNS_PACKET_QUERY)
4464 return 0;
4465 if(LDNS_RCODE_WIRE(sldns_buffer_begin(pkt)) != LDNS_RCODE_NOERROR)
4466 return 0;
4467
4468 /* check qname */
4469 if(LDNS_QDCOUNT(sldns_buffer_begin(pkt)) != 1)
4470 return 0;
4471 sldns_buffer_skip(pkt, LDNS_HEADER_SIZE);
4472 if(sldns_buffer_remaining(pkt) < xfr->namelen)
4473 return 0;
4474 if(query_dname_compare(sldns_buffer_current(pkt), xfr->name) != 0)
4475 return 0;
4476 sldns_buffer_skip(pkt, (ssize_t)xfr->namelen);
4477
4478 /* check qtype, qclass */
4479 if(sldns_buffer_remaining(pkt) < 4)
4480 return 0;
4481 if(sldns_buffer_read_u16(pkt) != qtype)
4482 return 0;
4483 if(sldns_buffer_read_u16(pkt) != xfr->dclass)
4484 return 0;
4485
4486 if(serial) {
4487 uint16_t rdlen;
4488 /* read serial number, from answer section SOA */
4489 if(LDNS_ANCOUNT(sldns_buffer_begin(pkt)) == 0)
4490 return 0;
4491 /* read from first record SOA record */
4492 if(sldns_buffer_remaining(pkt) < 1)
4493 return 0;
4494 if(dname_pkt_compare(pkt, sldns_buffer_current(pkt),
4495 xfr->name) != 0)
4496 return 0;
4497 if(!pkt_dname_len(pkt))
4498 return 0;
4499 /* type, class, ttl, rdatalen */
4500 if(sldns_buffer_remaining(pkt) < 4+4+2)
4501 return 0;
4502 if(sldns_buffer_read_u16(pkt) != qtype)
4503 return 0;
4504 if(sldns_buffer_read_u16(pkt) != xfr->dclass)
4505 return 0;
4506 sldns_buffer_skip(pkt, 4); /* ttl */
4507 rdlen = sldns_buffer_read_u16(pkt);
4508 if(sldns_buffer_remaining(pkt) < rdlen)
4509 return 0;
4510 if(sldns_buffer_remaining(pkt) < 1)
4511 return 0;
4512 if(!pkt_dname_len(pkt)) /* soa name */
4513 return 0;
4514 if(sldns_buffer_remaining(pkt) < 1)
4515 return 0;
4516 if(!pkt_dname_len(pkt)) /* soa name */
4517 return 0;
4518 if(sldns_buffer_remaining(pkt) < 20)
4519 return 0;
4520 *serial = sldns_buffer_read_u32(pkt);
4521 }
4522 return 1;
4523 }
4524
4525 /** read one line from chunks into buffer at current position */
4526 static int
chunkline_get_line(struct auth_chunk ** chunk,size_t * chunk_pos,sldns_buffer * buf)4527 chunkline_get_line(struct auth_chunk** chunk, size_t* chunk_pos,
4528 sldns_buffer* buf)
4529 {
4530 int readsome = 0;
4531 while(*chunk) {
4532 /* more text in this chunk? */
4533 if(*chunk_pos < (*chunk)->len) {
4534 readsome = 1;
4535 while(*chunk_pos < (*chunk)->len) {
4536 char c = (char)((*chunk)->data[*chunk_pos]);
4537 (*chunk_pos)++;
4538 if(sldns_buffer_remaining(buf) < 2) {
4539 /* buffer too short */
4540 verbose(VERB_ALGO, "http chunkline, "
4541 "line too long");
4542 return 0;
4543 }
4544 sldns_buffer_write_u8(buf, (uint8_t)c);
4545 if(c == '\n') {
4546 /* we are done */
4547 return 1;
4548 }
4549 }
4550 }
4551 /* move to next chunk */
4552 *chunk = (*chunk)->next;
4553 *chunk_pos = 0;
4554 }
4555 /* no more text */
4556 if(readsome) return 1;
4557 return 0;
4558 }
4559
4560 /** count number of open and closed parenthesis in a chunkline */
4561 int
chunkline_count_parens(sldns_buffer * buf,size_t start)4562 chunkline_count_parens(sldns_buffer* buf, size_t start)
4563 {
4564 size_t end = sldns_buffer_position(buf);
4565 size_t i;
4566 int count = 0;
4567 int dquote = 0;
4568 char prev_c = 0;
4569 for(i=start; i<end; i++) {
4570 char c = (char)sldns_buffer_read_u8_at(buf, i);
4571 if(dquote && !(c == '"' && prev_c != '\\')) {
4572 prev_c = (prev_c == '\\' && c == '\\') ? 0 : c;
4573 continue;
4574 }
4575 if(c == '"' && prev_c != '\\')
4576 dquote = !dquote; /* skip quoted part */
4577 else if(c == '(' && prev_c != '\\')
4578 count ++;
4579 else if(c == ')' && prev_c != '\\')
4580 count --;
4581 else if(c == ';' && prev_c != '\\') {
4582 /* rest is a comment */
4583 return count;
4584 }
4585 prev_c = (prev_c == '\\' && c == '\\') ? 0 : c;
4586 }
4587 return count;
4588 }
4589
4590 /** remove trailing ;... comment from a line in the chunkline buffer */
4591 static void
chunkline_remove_trailcomment(sldns_buffer * buf,size_t start)4592 chunkline_remove_trailcomment(sldns_buffer* buf, size_t start)
4593 {
4594 size_t end = sldns_buffer_position(buf);
4595 size_t i;
4596 int dquote = 0;
4597 char prev_c = 0;
4598 for(i=start; i<end; i++) {
4599 char c = (char)sldns_buffer_read_u8_at(buf, i);
4600 if(dquote && !(c == '"' && prev_c != '\\')) {
4601 prev_c = (prev_c == '\\' && c == '\\') ? 0 : c;
4602 continue;
4603 }
4604 if(c == '"' && prev_c != '\\')
4605 dquote = !dquote; /* skip quoted part */
4606 else if(c == ';' && prev_c != '\\') {
4607 /* rest is a comment */
4608 sldns_buffer_set_position(buf, i);
4609 return;
4610 }
4611 prev_c = (prev_c == '\\' && c == '\\') ? 0 : c;
4612 }
4613 /* nothing to remove */
4614 }
4615
4616 /** see if a chunkline is a comment line (or empty line) */
4617 static int
chunkline_is_comment_line_or_empty(sldns_buffer * buf)4618 chunkline_is_comment_line_or_empty(sldns_buffer* buf)
4619 {
4620 size_t i, end = sldns_buffer_limit(buf);
4621 for(i=0; i<end; i++) {
4622 char c = (char)sldns_buffer_read_u8_at(buf, i);
4623 if(c == ';')
4624 return 1; /* comment */
4625 else if(c != ' ' && c != '\t' && c != '\r' && c != '\n')
4626 return 0; /* not a comment */
4627 }
4628 return 1; /* empty */
4629 }
4630
4631 /** find a line with ( ) collated */
4632 static int
chunkline_get_line_collated(struct auth_chunk ** chunk,size_t * chunk_pos,sldns_buffer * buf)4633 chunkline_get_line_collated(struct auth_chunk** chunk, size_t* chunk_pos,
4634 sldns_buffer* buf)
4635 {
4636 size_t pos;
4637 int parens = 0;
4638 sldns_buffer_clear(buf);
4639 pos = sldns_buffer_position(buf);
4640 if(!chunkline_get_line(chunk, chunk_pos, buf)) {
4641 if(sldns_buffer_position(buf) < sldns_buffer_limit(buf))
4642 sldns_buffer_write_u8_at(buf, sldns_buffer_position(buf), 0);
4643 else sldns_buffer_write_u8_at(buf, sldns_buffer_position(buf)-1, 0);
4644 sldns_buffer_flip(buf);
4645 return 0;
4646 }
4647 parens += chunkline_count_parens(buf, pos);
4648 while(parens > 0) {
4649 chunkline_remove_trailcomment(buf, pos);
4650 pos = sldns_buffer_position(buf);
4651 if(!chunkline_get_line(chunk, chunk_pos, buf)) {
4652 if(sldns_buffer_position(buf) < sldns_buffer_limit(buf))
4653 sldns_buffer_write_u8_at(buf, sldns_buffer_position(buf), 0);
4654 else sldns_buffer_write_u8_at(buf, sldns_buffer_position(buf)-1, 0);
4655 sldns_buffer_flip(buf);
4656 return 0;
4657 }
4658 parens += chunkline_count_parens(buf, pos);
4659 }
4660
4661 if(sldns_buffer_remaining(buf) < 1) {
4662 verbose(VERB_ALGO, "http chunkline: "
4663 "line too long");
4664 return 0;
4665 }
4666 sldns_buffer_write_u8_at(buf, sldns_buffer_position(buf), 0);
4667 sldns_buffer_flip(buf);
4668 return 1;
4669 }
4670
4671 /** process $ORIGIN for http, 0 nothing, 1 done, 2 error */
4672 static int
http_parse_origin(sldns_buffer * buf,struct sldns_file_parse_state * pstate)4673 http_parse_origin(sldns_buffer* buf, struct sldns_file_parse_state* pstate)
4674 {
4675 char* line = (char*)sldns_buffer_begin(buf);
4676 if(strncmp(line, "$ORIGIN", 7) == 0 &&
4677 isspace((unsigned char)line[7])) {
4678 int s;
4679 pstate->origin_len = sizeof(pstate->origin);
4680 s = sldns_str2wire_dname_buf(sldns_strip_ws(line+8),
4681 pstate->origin, &pstate->origin_len);
4682 if(s) {
4683 pstate->origin_len = 0;
4684 return 2;
4685 }
4686 return 1;
4687 }
4688 return 0;
4689 }
4690
4691 /** process $TTL for http, 0 nothing, 1 done, 2 error */
4692 static int
http_parse_ttl(sldns_buffer * buf,struct sldns_file_parse_state * pstate)4693 http_parse_ttl(sldns_buffer* buf, struct sldns_file_parse_state* pstate)
4694 {
4695 char* line = (char*)sldns_buffer_begin(buf);
4696 if(strncmp(line, "$TTL", 4) == 0 &&
4697 isspace((unsigned char)line[4])) {
4698 const char* end = NULL;
4699 int overflow = 0;
4700 pstate->default_ttl = sldns_str2period(
4701 sldns_strip_ws(line+5), &end, &overflow);
4702 if(overflow) {
4703 return 2;
4704 }
4705 return 1;
4706 }
4707 return 0;
4708 }
4709
4710 /** remove newlines from collated line */
4711 static void
chunkline_newline_removal(sldns_buffer * buf)4712 chunkline_newline_removal(sldns_buffer* buf)
4713 {
4714 size_t i, end=sldns_buffer_limit(buf);
4715 for(i=0; i<end; i++) {
4716 char c = (char)sldns_buffer_read_u8_at(buf, i);
4717 if(c == '\n' && i==end-1) {
4718 sldns_buffer_write_u8_at(buf, i, 0);
4719 sldns_buffer_set_limit(buf, end-1);
4720 return;
4721 }
4722 if(c == '\n')
4723 sldns_buffer_write_u8_at(buf, i, (uint8_t)' ');
4724 }
4725 }
4726
4727 /** find noncomment RR line in chunks, collates lines if ( ) format */
4728 static int
chunkline_non_comment_RR(struct auth_chunk ** chunk,size_t * chunk_pos,sldns_buffer * buf,struct sldns_file_parse_state * pstate)4729 chunkline_non_comment_RR(struct auth_chunk** chunk, size_t* chunk_pos,
4730 sldns_buffer* buf, struct sldns_file_parse_state* pstate)
4731 {
4732 int ret;
4733 while(chunkline_get_line_collated(chunk, chunk_pos, buf)) {
4734 chunkline_newline_removal(buf);
4735 if(chunkline_is_comment_line_or_empty(buf)) {
4736 /* a comment, go to next line */
4737 continue;
4738 }
4739 if((ret=http_parse_origin(buf, pstate))!=0) {
4740 if(ret == 2)
4741 return 0;
4742 continue; /* $ORIGIN has been handled */
4743 }
4744 if((ret=http_parse_ttl(buf, pstate))!=0) {
4745 if(ret == 2)
4746 return 0;
4747 continue; /* $TTL has been handled */
4748 }
4749 return 1;
4750 }
4751 /* no noncomments, fail */
4752 return 0;
4753 }
4754
4755 /** check syntax of chunklist zonefile, parse first RR, return false on
4756 * failure and return a string in the scratch buffer (first RR string)
4757 * on failure. */
4758 static int
http_zonefile_syntax_check(struct auth_xfer * xfr,sldns_buffer * buf)4759 http_zonefile_syntax_check(struct auth_xfer* xfr, sldns_buffer* buf)
4760 {
4761 uint8_t rr[LDNS_RR_BUF_SIZE];
4762 size_t rr_len, dname_len = 0;
4763 struct sldns_file_parse_state pstate;
4764 struct auth_chunk* chunk;
4765 size_t chunk_pos;
4766 int e;
4767 memset(&pstate, 0, sizeof(pstate));
4768 pstate.default_ttl = 3600;
4769 if(xfr->namelen < sizeof(pstate.origin)) {
4770 pstate.origin_len = xfr->namelen;
4771 memmove(pstate.origin, xfr->name, xfr->namelen);
4772 }
4773 chunk = xfr->task_transfer->chunks_first;
4774 chunk_pos = 0;
4775 if(!chunkline_non_comment_RR(&chunk, &chunk_pos, buf, &pstate)) {
4776 return 0;
4777 }
4778 rr_len = sizeof(rr);
4779 e=sldns_str2wire_rr_buf((char*)sldns_buffer_begin(buf), rr, &rr_len,
4780 &dname_len, pstate.default_ttl,
4781 pstate.origin_len?pstate.origin:NULL, pstate.origin_len,
4782 pstate.prev_rr_len?pstate.prev_rr:NULL, pstate.prev_rr_len);
4783 if(e != 0) {
4784 log_err("parse failure on first RR[%d]: %s",
4785 LDNS_WIREPARSE_OFFSET(e),
4786 sldns_get_errorstr_parse(LDNS_WIREPARSE_ERROR(e)));
4787 return 0;
4788 }
4789 /* check that class is correct */
4790 if(sldns_wirerr_get_class(rr, rr_len, dname_len) != xfr->dclass) {
4791 log_err("parse failure: first record in downloaded zonefile "
4792 "from wrong RR class");
4793 return 0;
4794 }
4795 return 1;
4796 }
4797
4798 /** sum sizes of chunklist */
4799 static size_t
chunklist_sum(struct auth_chunk * list)4800 chunklist_sum(struct auth_chunk* list)
4801 {
4802 struct auth_chunk* p;
4803 size_t s = 0;
4804 for(p=list; p; p=p->next) {
4805 s += p->len;
4806 }
4807 return s;
4808 }
4809
4810 /** for http download, parse and add RR to zone */
4811 static int
http_parse_add_rr(struct auth_xfer * xfr,struct auth_zone * z,sldns_buffer * buf,struct sldns_file_parse_state * pstate)4812 http_parse_add_rr(struct auth_xfer* xfr, struct auth_zone* z,
4813 sldns_buffer* buf, struct sldns_file_parse_state* pstate)
4814 {
4815 uint8_t rr[LDNS_RR_BUF_SIZE];
4816 size_t rr_len, dname_len = 0;
4817 int e;
4818 char* line = (char*)sldns_buffer_begin(buf);
4819 rr_len = sizeof(rr);
4820 e = sldns_str2wire_rr_buf(line, rr, &rr_len, &dname_len,
4821 pstate->default_ttl,
4822 pstate->origin_len?pstate->origin:NULL, pstate->origin_len,
4823 pstate->prev_rr_len?pstate->prev_rr:NULL, pstate->prev_rr_len);
4824 if(e != 0) {
4825 log_err("%s/%s parse failure RR[%d]: %s in '%s'",
4826 xfr->task_transfer->master->host,
4827 xfr->task_transfer->master->file,
4828 LDNS_WIREPARSE_OFFSET(e),
4829 sldns_get_errorstr_parse(LDNS_WIREPARSE_ERROR(e)),
4830 line);
4831 return 0;
4832 }
4833 if(rr_len == 0)
4834 return 1; /* empty line or so */
4835
4836 /* set prev */
4837 if(dname_len < sizeof(pstate->prev_rr)) {
4838 memmove(pstate->prev_rr, rr, dname_len);
4839 pstate->prev_rr_len = dname_len;
4840 }
4841
4842 return az_insert_rr(z, rr, rr_len, dname_len, NULL);
4843 }
4844
4845 /** RR list iterator, returns RRs from answer section one by one from the
4846 * dns packets in the chunklist */
4847 static void
chunk_rrlist_start(struct auth_xfer * xfr,struct auth_chunk ** rr_chunk,int * rr_num,size_t * rr_pos)4848 chunk_rrlist_start(struct auth_xfer* xfr, struct auth_chunk** rr_chunk,
4849 int* rr_num, size_t* rr_pos)
4850 {
4851 *rr_chunk = xfr->task_transfer->chunks_first;
4852 *rr_num = 0;
4853 *rr_pos = 0;
4854 }
4855
4856 /** RR list iterator, see if we are at the end of the list */
4857 static int
chunk_rrlist_end(struct auth_chunk * rr_chunk,int rr_num)4858 chunk_rrlist_end(struct auth_chunk* rr_chunk, int rr_num)
4859 {
4860 while(rr_chunk) {
4861 if(rr_chunk->len < LDNS_HEADER_SIZE)
4862 return 1;
4863 if(rr_num < (int)LDNS_ANCOUNT(rr_chunk->data))
4864 return 0;
4865 /* no more RRs in this chunk */
4866 /* continue with next chunk, see if it has RRs */
4867 rr_chunk = rr_chunk->next;
4868 rr_num = 0;
4869 }
4870 return 1;
4871 }
4872
4873 /** RR list iterator, move to next RR */
4874 static void
chunk_rrlist_gonext(struct auth_chunk ** rr_chunk,int * rr_num,size_t * rr_pos,size_t rr_nextpos)4875 chunk_rrlist_gonext(struct auth_chunk** rr_chunk, int* rr_num,
4876 size_t* rr_pos, size_t rr_nextpos)
4877 {
4878 /* already at end of chunks? */
4879 if(!*rr_chunk)
4880 return;
4881 /* move within this chunk */
4882 if((*rr_chunk)->len >= LDNS_HEADER_SIZE &&
4883 (*rr_num)+1 < (int)LDNS_ANCOUNT((*rr_chunk)->data)) {
4884 (*rr_num) += 1;
4885 *rr_pos = rr_nextpos;
4886 return;
4887 }
4888 /* no more RRs in this chunk */
4889 /* continue with next chunk, see if it has RRs */
4890 if(*rr_chunk)
4891 *rr_chunk = (*rr_chunk)->next;
4892 while(*rr_chunk) {
4893 *rr_num = 0;
4894 *rr_pos = 0;
4895 if((*rr_chunk)->len >= LDNS_HEADER_SIZE &&
4896 LDNS_ANCOUNT((*rr_chunk)->data) > 0) {
4897 return;
4898 }
4899 *rr_chunk = (*rr_chunk)->next;
4900 }
4901 }
4902
4903 /** RR iterator, get current RR information, false on parse error */
4904 static int
chunk_rrlist_get_current(struct auth_chunk * rr_chunk,int rr_num,size_t rr_pos,uint8_t ** rr_dname,uint16_t * rr_type,uint16_t * rr_class,uint32_t * rr_ttl,uint16_t * rr_rdlen,uint8_t ** rr_rdata,size_t * rr_nextpos)4905 chunk_rrlist_get_current(struct auth_chunk* rr_chunk, int rr_num,
4906 size_t rr_pos, uint8_t** rr_dname, uint16_t* rr_type,
4907 uint16_t* rr_class, uint32_t* rr_ttl, uint16_t* rr_rdlen,
4908 uint8_t** rr_rdata, size_t* rr_nextpos)
4909 {
4910 sldns_buffer pkt;
4911 /* integrity checks on position */
4912 if(!rr_chunk) return 0;
4913 if(rr_chunk->len < LDNS_HEADER_SIZE) return 0;
4914 if(rr_num >= (int)LDNS_ANCOUNT(rr_chunk->data)) return 0;
4915 if(rr_pos >= rr_chunk->len) return 0;
4916
4917 /* fetch rr information */
4918 sldns_buffer_init_frm_data(&pkt, rr_chunk->data, rr_chunk->len);
4919 if(rr_pos == 0) {
4920 size_t i;
4921 /* skip question section */
4922 sldns_buffer_set_position(&pkt, LDNS_HEADER_SIZE);
4923 for(i=0; i<LDNS_QDCOUNT(rr_chunk->data); i++) {
4924 if(pkt_dname_len(&pkt) == 0) return 0;
4925 if(sldns_buffer_remaining(&pkt) < 4) return 0;
4926 sldns_buffer_skip(&pkt, 4); /* type and class */
4927 }
4928 } else {
4929 sldns_buffer_set_position(&pkt, rr_pos);
4930 }
4931 *rr_dname = sldns_buffer_current(&pkt);
4932 if(pkt_dname_len(&pkt) == 0) return 0;
4933 if(sldns_buffer_remaining(&pkt) < 10) return 0;
4934 *rr_type = sldns_buffer_read_u16(&pkt);
4935 *rr_class = sldns_buffer_read_u16(&pkt);
4936 *rr_ttl = sldns_buffer_read_u32(&pkt);
4937 *rr_rdlen = sldns_buffer_read_u16(&pkt);
4938 if(sldns_buffer_remaining(&pkt) < (*rr_rdlen)) return 0;
4939 *rr_rdata = sldns_buffer_current(&pkt);
4940 sldns_buffer_skip(&pkt, (ssize_t)(*rr_rdlen));
4941 *rr_nextpos = sldns_buffer_position(&pkt);
4942 return 1;
4943 }
4944
4945 /** print log message where we are in parsing the zone transfer */
4946 static void
log_rrlist_position(const char * label,struct auth_chunk * rr_chunk,uint8_t * rr_dname,uint16_t rr_type,size_t rr_counter)4947 log_rrlist_position(const char* label, struct auth_chunk* rr_chunk,
4948 uint8_t* rr_dname, uint16_t rr_type, size_t rr_counter)
4949 {
4950 sldns_buffer pkt;
4951 size_t dlen;
4952 uint8_t buf[LDNS_MAX_DOMAINLEN];
4953 char str[LDNS_MAX_DOMAINLEN];
4954 char typestr[32];
4955 sldns_buffer_init_frm_data(&pkt, rr_chunk->data, rr_chunk->len);
4956 sldns_buffer_set_position(&pkt, (size_t)(rr_dname -
4957 sldns_buffer_begin(&pkt)));
4958 if((dlen=pkt_dname_len(&pkt)) == 0) return;
4959 if(dlen >= sizeof(buf)) return;
4960 dname_pkt_copy(&pkt, buf, rr_dname);
4961 dname_str(buf, str);
4962 (void)sldns_wire2str_type_buf(rr_type, typestr, sizeof(typestr));
4963 verbose(VERB_ALGO, "%s at[%d] %s %s", label, (int)rr_counter,
4964 str, typestr);
4965 }
4966
4967 /** check that start serial is OK for ixfr. we are at rr_counter == 0,
4968 * and we are going to check rr_counter == 1 (has to be type SOA) serial */
4969 static int
ixfr_start_serial(struct auth_chunk * rr_chunk,int rr_num,size_t rr_pos,uint8_t * rr_dname,uint16_t rr_type,uint16_t rr_class,uint32_t rr_ttl,uint16_t rr_rdlen,uint8_t * rr_rdata,size_t rr_nextpos,uint32_t transfer_serial,uint32_t xfr_serial)4970 ixfr_start_serial(struct auth_chunk* rr_chunk, int rr_num, size_t rr_pos,
4971 uint8_t* rr_dname, uint16_t rr_type, uint16_t rr_class,
4972 uint32_t rr_ttl, uint16_t rr_rdlen, uint8_t* rr_rdata,
4973 size_t rr_nextpos, uint32_t transfer_serial, uint32_t xfr_serial)
4974 {
4975 uint32_t startserial;
4976 /* move forward on RR */
4977 chunk_rrlist_gonext(&rr_chunk, &rr_num, &rr_pos, rr_nextpos);
4978 if(chunk_rrlist_end(rr_chunk, rr_num)) {
4979 /* no second SOA */
4980 verbose(VERB_OPS, "IXFR has no second SOA record");
4981 return 0;
4982 }
4983 if(!chunk_rrlist_get_current(rr_chunk, rr_num, rr_pos,
4984 &rr_dname, &rr_type, &rr_class, &rr_ttl, &rr_rdlen,
4985 &rr_rdata, &rr_nextpos)) {
4986 verbose(VERB_OPS, "IXFR cannot parse second SOA record");
4987 /* failed to parse RR */
4988 return 0;
4989 }
4990 if(rr_type != LDNS_RR_TYPE_SOA) {
4991 verbose(VERB_OPS, "IXFR second record is not type SOA");
4992 return 0;
4993 }
4994 if(rr_rdlen < 22) {
4995 verbose(VERB_OPS, "IXFR, second SOA has short rdlength");
4996 return 0; /* bad SOA rdlen */
4997 }
4998 startserial = sldns_read_uint32(rr_rdata+rr_rdlen-20);
4999 if(startserial == transfer_serial) {
5000 /* empty AXFR, not an IXFR */
5001 verbose(VERB_OPS, "IXFR second serial same as first");
5002 return 0;
5003 }
5004 if(startserial != xfr_serial) {
5005 /* wrong start serial, it does not match the serial in
5006 * memory */
5007 verbose(VERB_OPS, "IXFR is from serial %u to %u but %u "
5008 "in memory, rejecting the zone transfer",
5009 (unsigned)startserial, (unsigned)transfer_serial,
5010 (unsigned)xfr_serial);
5011 return 0;
5012 }
5013 /* everything OK in second SOA serial */
5014 return 1;
5015 }
5016
5017 /** apply IXFR to zone in memory. z is locked. false on failure(mallocfail) */
5018 static int
apply_ixfr(struct auth_xfer * xfr,struct auth_zone * z,struct sldns_buffer * scratch_buffer)5019 apply_ixfr(struct auth_xfer* xfr, struct auth_zone* z,
5020 struct sldns_buffer* scratch_buffer)
5021 {
5022 struct auth_chunk* rr_chunk;
5023 int rr_num;
5024 size_t rr_pos;
5025 uint8_t* rr_dname, *rr_rdata;
5026 uint16_t rr_type, rr_class, rr_rdlen;
5027 uint32_t rr_ttl;
5028 size_t rr_nextpos;
5029 int have_transfer_serial = 0;
5030 uint32_t transfer_serial = 0;
5031 size_t rr_counter = 0;
5032 int delmode = 0;
5033 int softfail = 0;
5034
5035 xfr->num_ixfrs++;
5036
5037 /* start RR iterator over chunklist of packets */
5038 chunk_rrlist_start(xfr, &rr_chunk, &rr_num, &rr_pos);
5039 while(!chunk_rrlist_end(rr_chunk, rr_num)) {
5040 if(!chunk_rrlist_get_current(rr_chunk, rr_num, rr_pos,
5041 &rr_dname, &rr_type, &rr_class, &rr_ttl, &rr_rdlen,
5042 &rr_rdata, &rr_nextpos)) {
5043 /* failed to parse RR */
5044 return 0;
5045 }
5046 if(verbosity>=7) log_rrlist_position("apply ixfr",
5047 rr_chunk, rr_dname, rr_type, rr_counter);
5048 /* twiddle add/del mode and check for start and end */
5049 if(rr_counter == 0 && rr_type != LDNS_RR_TYPE_SOA)
5050 return 0;
5051 if(rr_counter == 1 && rr_type != LDNS_RR_TYPE_SOA) {
5052 /* this is an AXFR returned from the IXFR master */
5053 /* but that should already have been detected, by
5054 * on_ixfr_is_axfr */
5055 return 0;
5056 }
5057 if(rr_type == LDNS_RR_TYPE_SOA) {
5058 uint32_t serial;
5059 if(rr_rdlen < 22) return 0; /* bad SOA rdlen */
5060 serial = sldns_read_uint32(rr_rdata+rr_rdlen-20);
5061 if(have_transfer_serial == 0) {
5062 have_transfer_serial = 1;
5063 transfer_serial = serial;
5064 delmode = 1; /* gets negated below */
5065 /* check second RR before going any further */
5066 if(!ixfr_start_serial(rr_chunk, rr_num, rr_pos,
5067 rr_dname, rr_type, rr_class, rr_ttl,
5068 rr_rdlen, rr_rdata, rr_nextpos,
5069 transfer_serial, xfr->serial)) {
5070 return 0;
5071 }
5072 } else if(transfer_serial == serial) {
5073 have_transfer_serial++;
5074 if(rr_counter == 1) {
5075 /* empty AXFR, with SOA; SOA; */
5076 /* should have been detected by
5077 * on_ixfr_is_axfr */
5078 return 0;
5079 }
5080 if(have_transfer_serial == 3) {
5081 /* see serial three times for end */
5082 /* eg. IXFR:
5083 * SOA 3 start
5084 * SOA 1 second RR, followed by del
5085 * SOA 2 followed by add
5086 * SOA 2 followed by del
5087 * SOA 3 followed by add
5088 * SOA 3 end */
5089 /* ended by SOA record */
5090 xfr->serial = transfer_serial;
5091 break;
5092 }
5093 }
5094 /* twiddle add/del mode */
5095 /* switch from delete part to add part and back again
5096 * just before the soa, it gets deleted and added too
5097 * this means we switch to delete mode for the final
5098 * SOA(so skip that one) */
5099 delmode = !delmode;
5100 }
5101 /* process this RR */
5102 /* if the RR is deleted twice or added twice, then we
5103 * softfail, and continue with the rest of the IXFR, so
5104 * that we serve something fairly nice during the refetch */
5105 if(verbosity>=7) log_rrlist_position((delmode?"del":"add"),
5106 rr_chunk, rr_dname, rr_type, rr_counter);
5107 if(delmode) {
5108 /* delete this RR */
5109 int nonexist = 0;
5110 if(!az_remove_rr_decompress(z, rr_chunk->data,
5111 rr_chunk->len, scratch_buffer, rr_dname,
5112 rr_type, rr_class, rr_ttl, rr_rdata, rr_rdlen,
5113 &nonexist)) {
5114 /* failed, malloc error or so */
5115 return 0;
5116 }
5117 if(nonexist) {
5118 /* it was removal of a nonexisting RR */
5119 if(verbosity>=4) log_rrlist_position(
5120 "IXFR error nonexistent RR",
5121 rr_chunk, rr_dname, rr_type, rr_counter);
5122 softfail = 1;
5123 }
5124 } else if(rr_counter != 0) {
5125 /* skip first SOA RR for addition, it is added in
5126 * the addition part near the end of the ixfr, when
5127 * that serial is seen the second time. */
5128 int duplicate = 0;
5129 /* add this RR */
5130 if(!az_insert_rr_decompress(z, rr_chunk->data,
5131 rr_chunk->len, scratch_buffer, rr_dname,
5132 rr_type, rr_class, rr_ttl, rr_rdata, rr_rdlen,
5133 &duplicate)) {
5134 /* failed, malloc error or so */
5135 return 0;
5136 }
5137 if(duplicate) {
5138 /* it was a duplicate */
5139 if(verbosity>=4) log_rrlist_position(
5140 "IXFR error duplicate RR",
5141 rr_chunk, rr_dname, rr_type, rr_counter);
5142 softfail = 1;
5143 }
5144 }
5145
5146 rr_counter++;
5147 chunk_rrlist_gonext(&rr_chunk, &rr_num, &rr_pos, rr_nextpos);
5148 }
5149 if(softfail) {
5150 verbose(VERB_ALGO, "IXFR did not apply cleanly, fetching full zone");
5151 return 0;
5152 }
5153 return 1;
5154 }
5155
5156 /** apply AXFR to zone in memory. z is locked. false on failure(mallocfail) */
5157 static int
apply_axfr(struct auth_xfer * xfr,struct auth_zone * z,struct sldns_buffer * scratch_buffer)5158 apply_axfr(struct auth_xfer* xfr, struct auth_zone* z,
5159 struct sldns_buffer* scratch_buffer)
5160 {
5161 struct auth_chunk* rr_chunk;
5162 int rr_num;
5163 size_t rr_pos;
5164 uint8_t* rr_dname, *rr_rdata;
5165 uint16_t rr_type, rr_class, rr_rdlen;
5166 uint32_t rr_ttl;
5167 uint32_t serial = 0;
5168 size_t rr_nextpos;
5169 size_t rr_counter = 0;
5170 int have_end_soa = 0;
5171
5172 auth_zone_clear_data(z);
5173 xfr->have_zone = 0;
5174 xfr->serial = 0;
5175 xfr->soa_zone_acquired = 0;
5176 xfr->num_ixfrs = 0;
5177
5178 /* insert all RRs in to the zone */
5179 /* insert the SOA only once, skip the last one */
5180 /* start RR iterator over chunklist of packets */
5181 chunk_rrlist_start(xfr, &rr_chunk, &rr_num, &rr_pos);
5182 while(!chunk_rrlist_end(rr_chunk, rr_num)) {
5183 if(!chunk_rrlist_get_current(rr_chunk, rr_num, rr_pos,
5184 &rr_dname, &rr_type, &rr_class, &rr_ttl, &rr_rdlen,
5185 &rr_rdata, &rr_nextpos)) {
5186 /* failed to parse RR */
5187 return 0;
5188 }
5189 if(verbosity>=7) log_rrlist_position("apply_axfr",
5190 rr_chunk, rr_dname, rr_type, rr_counter);
5191 if(rr_type == LDNS_RR_TYPE_SOA) {
5192 if(rr_counter != 0) {
5193 /* end of the axfr */
5194 have_end_soa = 1;
5195 break;
5196 }
5197 if(rr_rdlen < 22) return 0; /* bad SOA rdlen */
5198 serial = sldns_read_uint32(rr_rdata+rr_rdlen-20);
5199 }
5200
5201 /* add this RR */
5202 if(!az_insert_rr_decompress(z, rr_chunk->data, rr_chunk->len,
5203 scratch_buffer, rr_dname, rr_type, rr_class, rr_ttl,
5204 rr_rdata, rr_rdlen, NULL)) {
5205 /* failed, malloc error or so */
5206 return 0;
5207 }
5208
5209 rr_counter++;
5210 chunk_rrlist_gonext(&rr_chunk, &rr_num, &rr_pos, rr_nextpos);
5211 }
5212 if(!have_end_soa) {
5213 log_err("no end SOA record for AXFR");
5214 return 0;
5215 }
5216
5217 xfr->serial = serial;
5218 xfr->have_zone = 1;
5219 return 1;
5220 }
5221
5222 /** apply HTTP to zone in memory. z is locked. false on failure(mallocfail) */
5223 static int
apply_http(struct auth_xfer * xfr,struct auth_zone * z,struct sldns_buffer * scratch_buffer)5224 apply_http(struct auth_xfer* xfr, struct auth_zone* z,
5225 struct sldns_buffer* scratch_buffer)
5226 {
5227 /* parse data in chunks */
5228 /* parse RR's and read into memory. ignore $INCLUDE from the
5229 * downloaded file*/
5230 struct sldns_file_parse_state pstate;
5231 struct auth_chunk* chunk;
5232 size_t chunk_pos;
5233 int ret;
5234 memset(&pstate, 0, sizeof(pstate));
5235 pstate.default_ttl = 3600;
5236 if(xfr->namelen < sizeof(pstate.origin)) {
5237 pstate.origin_len = xfr->namelen;
5238 memmove(pstate.origin, xfr->name, xfr->namelen);
5239 }
5240
5241 if(verbosity >= VERB_ALGO)
5242 verbose(VERB_ALGO, "http download %s of size %d",
5243 xfr->task_transfer->master->file,
5244 (int)chunklist_sum(xfr->task_transfer->chunks_first));
5245 if(xfr->task_transfer->chunks_first && verbosity >= VERB_ALGO) {
5246 char preview[1024];
5247 if(xfr->task_transfer->chunks_first->len+1 > sizeof(preview)) {
5248 memmove(preview, xfr->task_transfer->chunks_first->data,
5249 sizeof(preview)-1);
5250 preview[sizeof(preview)-1]=0;
5251 } else {
5252 memmove(preview, xfr->task_transfer->chunks_first->data,
5253 xfr->task_transfer->chunks_first->len);
5254 preview[xfr->task_transfer->chunks_first->len]=0;
5255 }
5256 log_info("auth zone http downloaded content preview: %s",
5257 preview);
5258 }
5259
5260 /* perhaps a little syntax check before we try to apply the data? */
5261 if(!http_zonefile_syntax_check(xfr, scratch_buffer)) {
5262 log_err("http download %s/%s does not contain a zonefile, "
5263 "but got '%s'", xfr->task_transfer->master->host,
5264 xfr->task_transfer->master->file,
5265 sldns_buffer_begin(scratch_buffer));
5266 return 0;
5267 }
5268
5269 auth_zone_clear_data(z);
5270 xfr->have_zone = 0;
5271 xfr->serial = 0;
5272 xfr->soa_zone_acquired = 0;
5273 xfr->num_ixfrs = 0;
5274
5275 chunk = xfr->task_transfer->chunks_first;
5276 chunk_pos = 0;
5277 pstate.lineno = 0;
5278 while(chunkline_get_line_collated(&chunk, &chunk_pos, scratch_buffer)) {
5279 /* process this line */
5280 pstate.lineno++;
5281 chunkline_newline_removal(scratch_buffer);
5282 if(chunkline_is_comment_line_or_empty(scratch_buffer)) {
5283 continue;
5284 }
5285 /* parse line and add RR */
5286 if((ret=http_parse_origin(scratch_buffer, &pstate))!=0) {
5287 if(ret == 2) {
5288 verbose(VERB_ALGO, "error parsing ORIGIN on line [%s:%d] %s",
5289 xfr->task_transfer->master->file,
5290 pstate.lineno,
5291 sldns_buffer_begin(scratch_buffer));
5292 return 0;
5293 }
5294 continue; /* $ORIGIN has been handled */
5295 }
5296 if((ret=http_parse_ttl(scratch_buffer, &pstate))!=0) {
5297 if(ret == 2) {
5298 verbose(VERB_ALGO, "error parsing TTL on line [%s:%d] %s",
5299 xfr->task_transfer->master->file,
5300 pstate.lineno,
5301 sldns_buffer_begin(scratch_buffer));
5302 return 0;
5303 }
5304 continue; /* $TTL has been handled */
5305 }
5306 if(!http_parse_add_rr(xfr, z, scratch_buffer, &pstate)) {
5307 verbose(VERB_ALGO, "error parsing line [%s:%d] %s",
5308 xfr->task_transfer->master->file,
5309 pstate.lineno,
5310 sldns_buffer_begin(scratch_buffer));
5311 return 0;
5312 }
5313 }
5314 return 1;
5315 }
5316
5317 /** write http chunks to zonefile to create downloaded file */
5318 static int
auth_zone_write_chunks(struct auth_chunk * chunk_list,const char * fname)5319 auth_zone_write_chunks(struct auth_chunk* chunk_list, const char* fname)
5320 {
5321 FILE* out;
5322 struct auth_chunk* p;
5323 out = fopen(fname, "w");
5324 if(!out) {
5325 log_err("could not open %s: %s", fname, strerror(errno));
5326 return 0;
5327 }
5328 for(p = chunk_list; p ; p = p->next) {
5329 if(!write_out(out, (char*)p->data, p->len)) {
5330 log_err("could not write http download to %s", fname);
5331 fclose(out);
5332 return 0;
5333 }
5334 }
5335 fclose(out);
5336 return 1;
5337 }
5338
5339 /** write to zonefile after zone has been updated, z has rdlock by caller. */
5340 static void
zone_write_after_update(struct auth_zone * z,struct module_env * env,struct auth_chunk * chunk_list)5341 zone_write_after_update(struct auth_zone* z, struct module_env* env,
5342 struct auth_chunk* chunk_list)
5343 {
5344 struct config_file* cfg = env->cfg;
5345 char tmpfile[1024];
5346 char* zfilename;
5347
5348 if(z->zonefile == NULL || z->zonefile[0] == 0) {
5349 /* no write needed, no zonefile set */
5350 auth_chunk_list_delete(chunk_list);
5351 return;
5352 }
5353 zfilename = z->zonefile;
5354 if(cfg->chrootdir && cfg->chrootdir[0] && strncmp(zfilename,
5355 cfg->chrootdir, strlen(cfg->chrootdir)) == 0)
5356 zfilename += strlen(cfg->chrootdir);
5357 if(verbosity >= VERB_ALGO) {
5358 char nm[LDNS_MAX_DOMAINLEN];
5359 dname_str(z->name, nm);
5360 verbose(VERB_ALGO, "write zonefile %s for %s", zfilename, nm);
5361 }
5362
5363 /* write to tempfile first */
5364 if((size_t)strlen(zfilename) + 16 > sizeof(tmpfile)) {
5365 verbose(VERB_ALGO, "tmpfilename too long, cannot update "
5366 " zonefile %s", zfilename);
5367 auth_chunk_list_delete(chunk_list);
5368 return;
5369 }
5370 snprintf(tmpfile, sizeof(tmpfile), "%s.tmp%u", zfilename,
5371 (unsigned)getpid());
5372 if(chunk_list) {
5373 /* use the stored chunk list to write them */
5374 if(!auth_zone_write_chunks(chunk_list, tmpfile)) {
5375 unlink(tmpfile);
5376 auth_chunk_list_delete(chunk_list);
5377 return;
5378 }
5379 auth_chunk_list_delete(chunk_list);
5380 } else if(!auth_zone_write_file(z, tmpfile)) {
5381 unlink(tmpfile);
5382 return;
5383 }
5384 #ifdef UB_ON_WINDOWS
5385 (void)unlink(zfilename); /* windows does not replace file with rename() */
5386 #endif
5387 if(rename(tmpfile, zfilename) < 0) {
5388 log_err("could not rename(%s, %s): %s", tmpfile, zfilename,
5389 strerror(errno));
5390 unlink(tmpfile);
5391 return;
5392 }
5393 }
5394
5395 /** write to zonefile after zone has updated, reacquires z readlock. */
5396 static void
zone_write_after_update_reacq(uint8_t * bakname,size_t baknamelen,uint16_t bakdclass,struct module_env * env,struct auth_chunk * chunk_list)5397 zone_write_after_update_reacq(uint8_t* bakname, size_t baknamelen,
5398 uint16_t bakdclass, struct module_env* env,
5399 struct auth_chunk* chunk_list)
5400 {
5401 struct auth_zone* z;
5402 /* get lock again, so it is a readlock and concurrently queries
5403 * can be answered */
5404 lock_rw_rdlock(&env->auth_zones->lock);
5405 z = auth_zone_find(env->auth_zones, bakname, baknamelen, bakdclass);
5406 if(!z) {
5407 lock_rw_unlock(&env->auth_zones->lock);
5408 /* the zone is gone, ignore xfr results */
5409 return;
5410 }
5411 lock_rw_rdlock(&z->lock);
5412 lock_rw_unlock(&env->auth_zones->lock);
5413
5414 zone_write_after_update(z, env, chunk_list);
5415 lock_rw_unlock(&z->lock);
5416 }
5417
5418 /** write to zonefile after zone has been updated */
5419 static void
xfr_write_after_update(struct auth_xfer * xfr,struct module_env * env,struct auth_chunk * chunk_list)5420 xfr_write_after_update(struct auth_xfer* xfr, struct module_env* env,
5421 struct auth_chunk* chunk_list)
5422 {
5423 struct auth_zone* z;
5424 lock_basic_unlock(&xfr->lock);
5425
5426 /* get lock again, so it is a readlock and concurrently queries
5427 * can be answered */
5428 lock_rw_rdlock(&env->auth_zones->lock);
5429 z = auth_zone_find(env->auth_zones, xfr->name, xfr->namelen,
5430 xfr->dclass);
5431 if(!z) {
5432 lock_rw_unlock(&env->auth_zones->lock);
5433 /* the zone is gone, ignore xfr results */
5434 lock_basic_lock(&xfr->lock);
5435 return;
5436 }
5437 lock_rw_rdlock(&z->lock);
5438 lock_basic_lock(&xfr->lock);
5439 lock_rw_unlock(&env->auth_zones->lock);
5440
5441 zone_write_after_update(z, env, chunk_list);
5442 lock_rw_unlock(&z->lock);
5443 }
5444
5445 /** reacquire locks and structures. Starts with no locks, ends
5446 * with xfr and z locks, if fail, no z lock */
xfr_process_reacquire_locks(struct auth_xfer * xfr,struct module_env * env,struct auth_zone ** z)5447 static int xfr_process_reacquire_locks(struct auth_xfer* xfr,
5448 struct module_env* env, struct auth_zone** z)
5449 {
5450 /* release xfr lock, then, while holding az->lock grab both
5451 * z->lock and xfr->lock */
5452 lock_rw_rdlock(&env->auth_zones->lock);
5453 *z = auth_zone_find(env->auth_zones, xfr->name, xfr->namelen,
5454 xfr->dclass);
5455 if(!*z) {
5456 lock_rw_unlock(&env->auth_zones->lock);
5457 lock_basic_lock(&xfr->lock);
5458 *z = NULL;
5459 return 0;
5460 }
5461 lock_rw_wrlock(&(*z)->lock);
5462 lock_basic_lock(&xfr->lock);
5463 lock_rw_unlock(&env->auth_zones->lock);
5464 return 1;
5465 }
5466
5467 /** process chunk list and update zone in memory,
5468 * return false if it did not work */
5469 static int
xfr_process_chunk_list(struct auth_xfer * xfr,struct module_env * env,int * ixfr_fail)5470 xfr_process_chunk_list(struct auth_xfer* xfr, struct module_env* env,
5471 int* ixfr_fail)
5472 {
5473 struct auth_zone* z;
5474 int zonemd_in_progress;
5475 struct auth_chunk* current_chunk_list = NULL;
5476
5477 /* obtain locks and structures */
5478 lock_basic_unlock(&xfr->lock);
5479 if(!xfr_process_reacquire_locks(xfr, env, &z)) {
5480 /* the zone is gone, ignore xfr results */
5481 return 0;
5482 }
5483 /* holding xfr and z locks */
5484
5485 /* apply data */
5486 if(xfr->task_transfer->master->http) {
5487 if(!apply_http(xfr, z, env->scratch_buffer)) {
5488 auth_zone_clear_data(z);
5489 lock_rw_unlock(&z->lock);
5490 verbose(VERB_ALGO, "http from %s: could not store data",
5491 xfr->task_transfer->master->host);
5492 return 0;
5493 }
5494 } else if(xfr->task_transfer->on_ixfr &&
5495 !xfr->task_transfer->on_ixfr_is_axfr) {
5496 if(!apply_ixfr(xfr, z, env->scratch_buffer)) {
5497 auth_zone_clear_data(z);
5498 lock_rw_unlock(&z->lock);
5499 verbose(VERB_ALGO, "xfr from %s: could not store IXFR"
5500 " data", xfr->task_transfer->master->host);
5501 *ixfr_fail = 1;
5502 return 0;
5503 }
5504 } else {
5505 if(!apply_axfr(xfr, z, env->scratch_buffer)) {
5506 auth_zone_clear_data(z);
5507 lock_rw_unlock(&z->lock);
5508 verbose(VERB_ALGO, "xfr from %s: could not store AXFR"
5509 " data", xfr->task_transfer->master->host);
5510 return 0;
5511 }
5512 }
5513 xfr->zone_expired = 0;
5514 z->zone_expired = 0;
5515 if(!xfr_find_soa(z, xfr)) {
5516 lock_rw_unlock(&z->lock);
5517 verbose(VERB_ALGO, "xfr from %s: no SOA in zone after update"
5518 " (or malformed RR)", xfr->task_transfer->master->host);
5519 return 0;
5520 }
5521 z->soa_zone_acquired = *env->now;
5522 xfr->soa_zone_acquired = *env->now;
5523 xfr->is_rpz = (z->rpz!=NULL);
5524
5525 /* release xfr lock while verifying zonemd because it may have
5526 * to spawn lookups in the state machines */
5527 lock_basic_unlock(&xfr->lock);
5528 /* holding z lock */
5529 auth_zone_verify_zonemd(z, env, &env->mesh->mods, NULL, 0, 0);
5530 if(z->zone_expired) {
5531 char zname[LDNS_MAX_DOMAINLEN];
5532 /* ZONEMD must have failed */
5533 /* reacquire locks, so we hold xfr lock on exit of routine,
5534 * and both xfr and z again after releasing xfr for potential
5535 * state machine mesh callbacks */
5536 lock_rw_unlock(&z->lock);
5537 if(!xfr_process_reacquire_locks(xfr, env, &z))
5538 return 0;
5539 dname_str(xfr->name, zname);
5540 verbose(VERB_ALGO, "xfr from %s: ZONEMD failed for %s, transfer is failed", xfr->task_transfer->master->host, zname);
5541 xfr->zone_expired = 1;
5542 lock_rw_unlock(&z->lock);
5543 return 0;
5544 }
5545 /* reacquire locks, so we hold xfr lock on exit of routine,
5546 * and both xfr and z again after releasing xfr for potential
5547 * state machine mesh callbacks */
5548 lock_rw_unlock(&z->lock);
5549 if(!xfr_process_reacquire_locks(xfr, env, &z))
5550 return 0;
5551 /* holding xfr and z locks */
5552
5553 if(xfr->have_zone)
5554 xfr->lease_time = *env->now;
5555
5556 if(z->rpz)
5557 rpz_finish_config(z->rpz);
5558
5559 if(z->zonemd_check && z->zonemd_callback_env) {
5560 zonemd_in_progress = 1;
5561 z->zonemd_callback_perform_write = 1;
5562 auth_chunk_list_delete(z->perform_write_chunk_list);
5563 z->perform_write_chunk_list = NULL;
5564 if(xfr->task_transfer->master->http) {
5565 z->perform_write_chunk_list = xfr->task_transfer->chunks_first;
5566 xfr->task_transfer->chunks_first = NULL;
5567 auth_chunks_delete(xfr->task_transfer);
5568 }
5569 } else {
5570 zonemd_in_progress = 0;
5571 z->zonemd_callback_perform_write = 0;
5572 if(xfr->task_transfer->master->http) {
5573 current_chunk_list = xfr->task_transfer->chunks_first;
5574 xfr->task_transfer->chunks_first = NULL;
5575 auth_chunks_delete(xfr->task_transfer);
5576 }
5577 }
5578 /* unlock */
5579 lock_rw_unlock(&z->lock);
5580
5581 if(verbosity >= VERB_QUERY && xfr->have_zone) {
5582 char zname[LDNS_MAX_DOMAINLEN];
5583 dname_str(xfr->name, zname);
5584 verbose(VERB_QUERY, "auth zone %s updated to serial %u", zname,
5585 (unsigned)xfr->serial);
5586 }
5587 /* see if we need to write to a zonefile */
5588 if(!zonemd_in_progress) {
5589 xfr_write_after_update(xfr, env, current_chunk_list);
5590 }
5591 return 1;
5592 }
5593
5594 /** Stop lookup using callback */
5595 static void
xfr_stop_lookup(struct auth_master ** lookup_target,void * lookup_unique_info,int lookup_aaaa,uint16_t dclass,struct mesh_area * mesh,mesh_cb_func_type cb,void * cb_arg)5596 xfr_stop_lookup(struct auth_master** lookup_target, void* lookup_unique_info,
5597 int lookup_aaaa, uint16_t dclass, struct mesh_area* mesh,
5598 mesh_cb_func_type cb, void* cb_arg)
5599 {
5600 struct query_info qinfo;
5601 uint8_t dname[LDNS_MAX_DOMAINLEN+1];
5602 if(!*lookup_target) return;
5603 qinfo.qname_len = sizeof(dname);
5604 if(sldns_str2wire_dname_buf((*lookup_target)->host, dname,
5605 &qinfo.qname_len) != 0) {
5606 *lookup_target = NULL;
5607 return;
5608 }
5609 qinfo.qname = dname;
5610 qinfo.qclass = dclass;
5611 qinfo.qtype = lookup_aaaa ? LDNS_RR_TYPE_AAAA : LDNS_RR_TYPE_A;
5612 qinfo.local_alias = NULL;
5613 log_query_info(VERB_ALGO, "removing xfr callback", &qinfo);
5614
5615 mesh_remove_callback(mesh, &qinfo, BIT_RD, cb, cb_arg,
5616 lookup_unique_info);
5617 *lookup_target = NULL;
5618 }
5619
5620 /** disown task_transfer. caller must hold xfr.lock */
5621 static void
xfr_transfer_disown(struct auth_xfer * xfr)5622 xfr_transfer_disown(struct auth_xfer* xfr)
5623 {
5624 /* remove data chunks */
5625 auth_chunks_delete(xfr->task_transfer);
5626 /* remove timer (from this worker's event base) */
5627 comm_timer_delete(xfr->task_transfer->timer);
5628 xfr->task_transfer->timer = NULL;
5629 /* remove the commpoint */
5630 comm_point_delete(xfr->task_transfer->cp);
5631 xfr->task_transfer->cp = NULL;
5632 if(xfr->task_transfer->env)
5633 xfr_stop_lookup(&xfr->task_transfer->lookup_target,
5634 xfr->task_transfer->lookup_unique_info,
5635 xfr->task_transfer->lookup_aaaa, xfr->dclass,
5636 xfr->task_transfer->env->mesh,
5637 &auth_xfer_transfer_lookup_callback, xfr);
5638 /* we don't own this item anymore */
5639 xfr->task_transfer->worker = NULL;
5640 xfr->task_transfer->env = NULL;
5641 }
5642
5643 /** lookup a host name for its addresses, if needed */
5644 static int
xfr_transfer_lookup_host(struct auth_xfer * xfr,struct module_env * env)5645 xfr_transfer_lookup_host(struct auth_xfer* xfr, struct module_env* env)
5646 {
5647 struct sockaddr_storage addr;
5648 socklen_t addrlen = 0;
5649 struct auth_master* master = xfr->task_transfer->lookup_target;
5650 struct query_info qinfo;
5651 uint16_t qflags = BIT_RD;
5652 uint8_t dname[LDNS_MAX_DOMAINLEN+1];
5653 struct edns_data edns;
5654 sldns_buffer* buf = env->scratch_buffer;
5655 if(!master) return 0;
5656 if(extstrtoaddr(master->host, &addr, &addrlen, UNBOUND_DNS_PORT)) {
5657 /* not needed, host is in IP addr format */
5658 return 0;
5659 }
5660 if(master->allow_notify)
5661 return 0; /* allow-notifies are not transferred from, no
5662 lookup is needed */
5663
5664 /* use mesh_new_callback to probe for non-addr hosts,
5665 * and then wait for them to be looked up (in cache, or query) */
5666 qinfo.qname_len = sizeof(dname);
5667 if(sldns_str2wire_dname_buf(master->host, dname, &qinfo.qname_len)
5668 != 0) {
5669 log_err("cannot parse host name of master %s", master->host);
5670 return 0;
5671 }
5672 qinfo.qname = dname;
5673 qinfo.qclass = xfr->dclass;
5674 qinfo.qtype = LDNS_RR_TYPE_A;
5675 if(xfr->task_transfer->lookup_aaaa)
5676 qinfo.qtype = LDNS_RR_TYPE_AAAA;
5677 qinfo.local_alias = NULL;
5678 if(verbosity >= VERB_ALGO) {
5679 char buf1[512];
5680 char buf2[LDNS_MAX_DOMAINLEN];
5681 dname_str(xfr->name, buf2);
5682 snprintf(buf1, sizeof(buf1), "auth zone %s: master lookup"
5683 " for task_transfer", buf2);
5684 log_query_info(VERB_ALGO, buf1, &qinfo);
5685 }
5686 edns.edns_present = 1;
5687 edns.ext_rcode = 0;
5688 edns.edns_version = 0;
5689 edns.bits = EDNS_DO;
5690 edns.opt_list_in = NULL;
5691 edns.opt_list_out = NULL;
5692 edns.opt_list_inplace_cb_out = NULL;
5693 edns.padding_block_size = 0;
5694 edns.cookie_present = 0;
5695 edns.cookie_valid = 0;
5696 if(sldns_buffer_capacity(buf) < 65535)
5697 edns.udp_size = (uint16_t)sldns_buffer_capacity(buf);
5698 else edns.udp_size = 65535;
5699
5700 /* unlock xfr during mesh_new_callback() because the callback can be
5701 * called straight away */
5702 lock_basic_unlock(&xfr->lock);
5703 if(!mesh_new_callback(env->mesh, &qinfo, qflags, &edns, buf, 0,
5704 &auth_xfer_transfer_lookup_callback, xfr, 0,
5705 &xfr->task_transfer->lookup_unique_info)) {
5706 lock_basic_lock(&xfr->lock);
5707 log_err("out of memory lookup up master %s", master->host);
5708 return 0;
5709 }
5710 lock_basic_lock(&xfr->lock);
5711 return 1;
5712 }
5713
5714 /** initiate TCP to the target and fetch zone.
5715 * returns true if that was successfully started, and timeout setup. */
5716 static int
xfr_transfer_init_fetch(struct auth_xfer * xfr,struct module_env * env)5717 xfr_transfer_init_fetch(struct auth_xfer* xfr, struct module_env* env)
5718 {
5719 struct sockaddr_storage addr;
5720 socklen_t addrlen = 0;
5721 struct auth_master* master = xfr->task_transfer->master;
5722 char *auth_name = NULL;
5723 struct timeval t;
5724 int timeout;
5725 if(!master) return 0;
5726 if(master->allow_notify) return 0; /* only for notify */
5727
5728 /* get master addr */
5729 if(xfr->task_transfer->scan_addr) {
5730 addrlen = xfr->task_transfer->scan_addr->addrlen;
5731 memmove(&addr, &xfr->task_transfer->scan_addr->addr, addrlen);
5732 } else {
5733 if(!authextstrtoaddr(master->host, &addr, &addrlen, &auth_name)) {
5734 /* the ones that are not in addr format are supposed
5735 * to be looked up. The lookup has failed however,
5736 * so skip them */
5737 char zname[LDNS_MAX_DOMAINLEN];
5738 dname_str(xfr->name, zname);
5739 log_err("%s: failed lookup, cannot transfer from master %s",
5740 zname, master->host);
5741 return 0;
5742 }
5743 }
5744
5745 /* remove previous TCP connection (if any) */
5746 if(xfr->task_transfer->cp) {
5747 comm_point_delete(xfr->task_transfer->cp);
5748 xfr->task_transfer->cp = NULL;
5749 }
5750 if(!xfr->task_transfer->timer) {
5751 xfr->task_transfer->timer = comm_timer_create(env->worker_base,
5752 auth_xfer_transfer_timer_callback, xfr);
5753 if(!xfr->task_transfer->timer) {
5754 log_err("malloc failure");
5755 return 0;
5756 }
5757 }
5758 timeout = AUTH_TRANSFER_TIMEOUT;
5759 #ifndef S_SPLINT_S
5760 t.tv_sec = timeout/1000;
5761 t.tv_usec = (timeout%1000)*1000;
5762 #endif
5763 xfr->task_transfer->start_time = *env->now_tv;
5764
5765 if(master->http) {
5766 /* perform http fetch */
5767 /* store http port number into sockaddr,
5768 * unless someone used unbound's host@port notation */
5769 xfr->task_transfer->on_ixfr = 0;
5770 if(strchr(master->host, '@') == NULL)
5771 sockaddr_store_port(&addr, addrlen, master->port);
5772 xfr->task_transfer->cp = outnet_comm_point_for_http(
5773 env->outnet, auth_xfer_transfer_http_callback, xfr,
5774 &addr, addrlen, -1, master->ssl, master->host,
5775 master->file, env->cfg);
5776 if(!xfr->task_transfer->cp) {
5777 char zname[LDNS_MAX_DOMAINLEN], as[256];
5778 dname_str(xfr->name, zname);
5779 addr_port_to_str(&addr, addrlen, as, sizeof(as));
5780 verbose(VERB_ALGO, "cannot create http cp "
5781 "connection for %s to %s", zname, as);
5782 return 0;
5783 }
5784 comm_timer_set(xfr->task_transfer->timer, &t);
5785 if(verbosity >= VERB_ALGO) {
5786 char zname[LDNS_MAX_DOMAINLEN], as[256];
5787 dname_str(xfr->name, zname);
5788 addr_port_to_str(&addr, addrlen, as, sizeof(as));
5789 verbose(VERB_ALGO, "auth zone %s transfer next HTTP fetch from %s started", zname, as);
5790 }
5791 /* Create or refresh the list of allow_notify addrs */
5792 probe_copy_masters_for_allow_notify(xfr);
5793 return 1;
5794 }
5795
5796 /* perform AXFR/IXFR */
5797 /* set the packet to be written */
5798 /* create new ID */
5799 xfr->task_transfer->id = GET_RANDOM_ID(env->rnd);
5800 xfr_create_ixfr_packet(xfr, env->scratch_buffer,
5801 xfr->task_transfer->id, master);
5802
5803 /* connect on fd */
5804 xfr->task_transfer->cp = outnet_comm_point_for_tcp(env->outnet,
5805 auth_xfer_transfer_tcp_callback, xfr, &addr, addrlen,
5806 env->scratch_buffer, -1,
5807 auth_name != NULL, auth_name);
5808 if(!xfr->task_transfer->cp) {
5809 char zname[LDNS_MAX_DOMAINLEN], as[256];
5810 dname_str(xfr->name, zname);
5811 addr_port_to_str(&addr, addrlen, as, sizeof(as));
5812 verbose(VERB_ALGO, "cannot create tcp cp connection for "
5813 "xfr %s to %s", zname, as);
5814 return 0;
5815 }
5816 comm_timer_set(xfr->task_transfer->timer, &t);
5817 if(verbosity >= VERB_ALGO) {
5818 char zname[LDNS_MAX_DOMAINLEN], as[256];
5819 dname_str(xfr->name, zname);
5820 addr_port_to_str(&addr, addrlen, as, sizeof(as));
5821 verbose(VERB_ALGO, "auth zone %s transfer next %s fetch from %s started", zname,
5822 (xfr->task_transfer->on_ixfr?"IXFR":"AXFR"), as);
5823 }
5824 return 1;
5825 }
5826
5827 /** perform next lookup, next transfer TCP, or end and resume wait time task */
5828 static void
xfr_transfer_nexttarget_or_end(struct auth_xfer * xfr,struct module_env * env)5829 xfr_transfer_nexttarget_or_end(struct auth_xfer* xfr, struct module_env* env)
5830 {
5831 log_assert(xfr->task_transfer->worker == env->worker);
5832
5833 /* are we performing lookups? */
5834 while(xfr->task_transfer->lookup_target) {
5835 if(xfr_transfer_lookup_host(xfr, env)) {
5836 /* wait for lookup to finish,
5837 * note that the hostname may be in unbound's cache
5838 * and we may then get an instant cache response,
5839 * and that calls the callback just like a full
5840 * lookup and lookup failures also call callback */
5841 if(verbosity >= VERB_ALGO) {
5842 char zname[LDNS_MAX_DOMAINLEN];
5843 dname_str(xfr->name, zname);
5844 verbose(VERB_ALGO, "auth zone %s transfer next target lookup", zname);
5845 }
5846 lock_basic_unlock(&xfr->lock);
5847 return;
5848 }
5849 xfr_transfer_move_to_next_lookup(xfr, env);
5850 }
5851
5852 /* initiate TCP and fetch the zone from the master */
5853 /* and set timeout on it */
5854 while(!xfr_transfer_end_of_list(xfr)) {
5855 xfr->task_transfer->master = xfr_transfer_current_master(xfr);
5856 if(xfr_transfer_init_fetch(xfr, env)) {
5857 /* successfully started, wait for callback */
5858 lock_basic_unlock(&xfr->lock);
5859 return;
5860 }
5861 /* failed to fetch, next master */
5862 xfr_transfer_nextmaster(xfr);
5863 }
5864 if(verbosity >= VERB_ALGO) {
5865 char zname[LDNS_MAX_DOMAINLEN];
5866 dname_str(xfr->name, zname);
5867 verbose(VERB_ALGO, "auth zone %s transfer failed, wait", zname);
5868 }
5869
5870 /* we failed to fetch the zone, move to wait task
5871 * use the shorter retry timeout */
5872 xfr_transfer_disown(xfr);
5873
5874 /* pick up the nextprobe task and wait */
5875 if(xfr->task_nextprobe->worker == NULL)
5876 xfr_set_timeout(xfr, env, 1, 0);
5877 lock_basic_unlock(&xfr->lock);
5878 }
5879
5880 /** add addrs from A or AAAA rrset to the master */
5881 static void
xfr_master_add_addrs(struct auth_master * m,struct ub_packed_rrset_key * rrset,uint16_t rrtype)5882 xfr_master_add_addrs(struct auth_master* m, struct ub_packed_rrset_key* rrset,
5883 uint16_t rrtype)
5884 {
5885 size_t i;
5886 struct packed_rrset_data* data;
5887 if(!m || !rrset) return;
5888 if(rrtype != LDNS_RR_TYPE_A && rrtype != LDNS_RR_TYPE_AAAA)
5889 return;
5890 data = (struct packed_rrset_data*)rrset->entry.data;
5891 for(i=0; i<data->count; i++) {
5892 struct auth_addr* a;
5893 size_t len = data->rr_len[i] - 2;
5894 uint8_t* rdata = data->rr_data[i]+2;
5895 if(rrtype == LDNS_RR_TYPE_A && len != INET_SIZE)
5896 continue; /* wrong length for A */
5897 if(rrtype == LDNS_RR_TYPE_AAAA && len != INET6_SIZE)
5898 continue; /* wrong length for AAAA */
5899
5900 /* add and alloc it */
5901 a = (struct auth_addr*)calloc(1, sizeof(*a));
5902 if(!a) {
5903 log_err("out of memory");
5904 return;
5905 }
5906 if(rrtype == LDNS_RR_TYPE_A) {
5907 struct sockaddr_in* sa;
5908 a->addrlen = (socklen_t)sizeof(*sa);
5909 sa = (struct sockaddr_in*)&a->addr;
5910 sa->sin_family = AF_INET;
5911 sa->sin_port = (in_port_t)htons(UNBOUND_DNS_PORT);
5912 memmove(&sa->sin_addr, rdata, INET_SIZE);
5913 } else {
5914 struct sockaddr_in6* sa;
5915 a->addrlen = (socklen_t)sizeof(*sa);
5916 sa = (struct sockaddr_in6*)&a->addr;
5917 sa->sin6_family = AF_INET6;
5918 sa->sin6_port = (in_port_t)htons(UNBOUND_DNS_PORT);
5919 memmove(&sa->sin6_addr, rdata, INET6_SIZE);
5920 }
5921 if(verbosity >= VERB_ALGO) {
5922 char s[64];
5923 addr_port_to_str(&a->addr, a->addrlen, s, sizeof(s));
5924 verbose(VERB_ALGO, "auth host %s lookup %s",
5925 m->host, s);
5926 }
5927 /* append to list */
5928 a->next = m->list;
5929 m->list = a;
5930 }
5931 }
5932
5933 /** check if the lookup target name equals the found answer name. */
5934 static int
xfer_target_equals_answer_name(struct auth_master * lookup_target,struct ub_packed_rrset_key * answer,struct query_info * rq,struct reply_info * rep)5935 xfer_target_equals_answer_name(struct auth_master* lookup_target,
5936 struct ub_packed_rrset_key* answer, struct query_info* rq,
5937 struct reply_info* rep)
5938 {
5939 uint8_t qname[LDNS_MAX_DOMAINLEN+1];
5940 size_t qname_len;
5941 if(!lookup_target) return 0;
5942 if(!answer) return 0;
5943 qname_len = sizeof(qname);
5944 if(sldns_str2wire_dname_buf(lookup_target->host, qname, &qname_len)
5945 != 0) {
5946 verbose(VERB_ALGO, "xfer_target_equals_answer_name: could not parse auth host name");
5947 return 0;
5948 }
5949 if(query_dname_compare(answer->rk.dname, qname) == 0)
5950 return 1;
5951 /* It could be a CNAME. */
5952 if(reply_find_rrset_section_an(rep, qname, qname_len,
5953 LDNS_RR_TYPE_CNAME, rq->qclass))
5954 return 1;
5955 return 0;
5956 }
5957
5958 /** callback for task_transfer lookup of host name, of A or AAAA */
auth_xfer_transfer_lookup_callback(void * arg,int rcode,sldns_buffer * buf,enum sec_status sec,char * why_bogus,int ATTR_UNUSED (was_ratelimited))5959 void auth_xfer_transfer_lookup_callback(void* arg, int rcode, sldns_buffer* buf,
5960 enum sec_status sec, char* why_bogus, int ATTR_UNUSED(was_ratelimited))
5961 {
5962 struct auth_xfer* xfr = (struct auth_xfer*)arg;
5963 struct module_env* env;
5964 log_assert(xfr->task_transfer);
5965 lock_basic_lock(&xfr->lock);
5966 env = xfr->task_transfer->env;
5967 if(!env || env->outnet->want_to_quit) {
5968 lock_basic_unlock(&xfr->lock);
5969 return; /* stop on quit */
5970 }
5971
5972 /* process result */
5973 if(sec == sec_status_bogus || sec == sec_status_secure_sentinel_fail) {
5974 if(verbosity >= VERB_OPS) {
5975 char zname[LDNS_MAX_DOMAINLEN];
5976 dname_str(xfr->name, zname);
5977 verbose(VERB_OPS, "auth zone %s: primary %s address lookup is DNSSEC bogus: %s",
5978 zname, xfr->task_transfer->lookup_target->host,
5979 (why_bogus?why_bogus:""));
5980 }
5981 /* fall through to next-lookup / next-master */
5982 } else if(rcode == LDNS_RCODE_NOERROR) {
5983 uint16_t wanted_qtype = LDNS_RR_TYPE_A;
5984 struct regional* temp = env->scratch;
5985 struct query_info rq;
5986 struct reply_info* rep;
5987 if(xfr->task_transfer->lookup_aaaa)
5988 wanted_qtype = LDNS_RR_TYPE_AAAA;
5989 memset(&rq, 0, sizeof(rq));
5990 rep = parse_reply_in_temp_region(buf, temp, &rq);
5991 if(rep && rq.qtype == wanted_qtype &&
5992 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NOERROR) {
5993 /* parsed successfully */
5994 struct ub_packed_rrset_key* answer =
5995 reply_find_answer_rrset(&rq, rep);
5996 if(answer && xfer_target_equals_answer_name(
5997 xfr->task_transfer->lookup_target, answer,
5998 &rq, rep)) {
5999 xfr_master_add_addrs(xfr->task_transfer->
6000 lookup_target, answer, wanted_qtype);
6001 } else if(answer) {
6002 if(verbosity >= VERB_ALGO) {
6003 char zname[LDNS_MAX_DOMAINLEN];
6004 dname_str(xfr->name, zname);
6005 verbose(VERB_ALGO, "auth zone %s host %s type %s transfer lookup has mismatch in answer name", zname, ((xfr->task_transfer->lookup_target && xfr->task_transfer->lookup_target->host) ? xfr->task_transfer->lookup_target->host : "null"), (xfr->task_transfer->lookup_aaaa?"AAAA":"A"));
6006 }
6007 } else {
6008 if(verbosity >= VERB_ALGO) {
6009 char zname[LDNS_MAX_DOMAINLEN];
6010 dname_str(xfr->name, zname);
6011 verbose(VERB_ALGO, "auth zone %s host %s type %s transfer lookup has nodata", zname, ((xfr->task_transfer->lookup_target && xfr->task_transfer->lookup_target->host) ? xfr->task_transfer->lookup_target->host : "null"), (xfr->task_transfer->lookup_aaaa?"AAAA":"A"));
6012 }
6013 }
6014 } else {
6015 if(verbosity >= VERB_ALGO) {
6016 char zname[LDNS_MAX_DOMAINLEN];
6017 dname_str(xfr->name, zname);
6018 verbose(VERB_ALGO, "auth zone %s host %s type %s transfer lookup has no answer", zname, ((xfr->task_transfer->lookup_target && xfr->task_transfer->lookup_target->host) ? xfr->task_transfer->lookup_target->host : "null"), (xfr->task_transfer->lookup_aaaa?"AAAA":"A"));
6019 }
6020 }
6021 regional_free_all(temp);
6022 } else {
6023 if(verbosity >= VERB_ALGO) {
6024 char zname[LDNS_MAX_DOMAINLEN];
6025 dname_str(xfr->name, zname);
6026 verbose(VERB_ALGO, "auth zone %s host %s type %s transfer lookup failed", zname, ((xfr->task_transfer->lookup_target && xfr->task_transfer->lookup_target->host) ? xfr->task_transfer->lookup_target->host : "null"), (xfr->task_transfer->lookup_aaaa?"AAAA":"A"));
6027 }
6028 }
6029 if(xfr->task_transfer->lookup_target &&
6030 xfr->task_transfer->lookup_target->list &&
6031 xfr->task_transfer->lookup_target == xfr_transfer_current_master(xfr))
6032 xfr->task_transfer->scan_addr = xfr->task_transfer->lookup_target->list;
6033
6034 /* move to lookup AAAA after A lookup, move to next hostname lookup,
6035 * or move to fetch the zone, or, if nothing to do, end task_transfer */
6036 xfr_transfer_move_to_next_lookup(xfr, env);
6037 xfr_transfer_nexttarget_or_end(xfr, env);
6038 }
6039
6040 /** check if xfer (AXFR or IXFR) packet is OK.
6041 * return false if we lost connection (SERVFAIL, or unreadable).
6042 * return false if we need to move from IXFR to AXFR, with gonextonfail
6043 * set to false, so the same master is tried again, but with AXFR.
6044 * return true if fine to link into data.
6045 * return true with transferdone=true when the transfer has ended.
6046 */
6047 static int
check_xfer_packet(sldns_buffer * pkt,struct auth_xfer * xfr,int * gonextonfail,int * transferdone)6048 check_xfer_packet(sldns_buffer* pkt, struct auth_xfer* xfr,
6049 int* gonextonfail, int* transferdone)
6050 {
6051 uint8_t* wire = sldns_buffer_begin(pkt);
6052 int i;
6053 if(sldns_buffer_limit(pkt) < LDNS_HEADER_SIZE) {
6054 verbose(VERB_ALGO, "xfr to %s failed, packet too small",
6055 xfr->task_transfer->master->host);
6056 return 0;
6057 }
6058 if(!LDNS_QR_WIRE(wire)) {
6059 verbose(VERB_ALGO, "xfr to %s failed, packet has no QR flag",
6060 xfr->task_transfer->master->host);
6061 return 0;
6062 }
6063 if(LDNS_TC_WIRE(wire)) {
6064 verbose(VERB_ALGO, "xfr to %s failed, packet has TC flag",
6065 xfr->task_transfer->master->host);
6066 return 0;
6067 }
6068 /* check ID */
6069 if(LDNS_ID_WIRE(wire) != xfr->task_transfer->id) {
6070 verbose(VERB_ALGO, "xfr to %s failed, packet wrong ID",
6071 xfr->task_transfer->master->host);
6072 return 0;
6073 }
6074 if(LDNS_RCODE_WIRE(wire) != LDNS_RCODE_NOERROR) {
6075 char rcode[32];
6076 sldns_wire2str_rcode_buf((int)LDNS_RCODE_WIRE(wire), rcode,
6077 sizeof(rcode));
6078 /* if we are doing IXFR, check for fallback */
6079 if(xfr->task_transfer->on_ixfr) {
6080 if(LDNS_RCODE_WIRE(wire) == LDNS_RCODE_NOTIMPL ||
6081 LDNS_RCODE_WIRE(wire) == LDNS_RCODE_SERVFAIL ||
6082 LDNS_RCODE_WIRE(wire) == LDNS_RCODE_REFUSED ||
6083 LDNS_RCODE_WIRE(wire) == LDNS_RCODE_FORMERR) {
6084 verbose(VERB_ALGO, "xfr to %s, fallback "
6085 "from IXFR to AXFR (with rcode %s)",
6086 xfr->task_transfer->master->host,
6087 rcode);
6088 xfr->task_transfer->ixfr_fail = 1;
6089 *gonextonfail = 0;
6090 return 0;
6091 }
6092 }
6093 verbose(VERB_ALGO, "xfr to %s failed, packet with rcode %s",
6094 xfr->task_transfer->master->host, rcode);
6095 return 0;
6096 }
6097 if(LDNS_OPCODE_WIRE(wire) != LDNS_PACKET_QUERY) {
6098 verbose(VERB_ALGO, "xfr to %s failed, packet with bad opcode",
6099 xfr->task_transfer->master->host);
6100 return 0;
6101 }
6102 if(LDNS_QDCOUNT(wire) > 1) {
6103 verbose(VERB_ALGO, "xfr to %s failed, packet has qdcount %d",
6104 xfr->task_transfer->master->host,
6105 (int)LDNS_QDCOUNT(wire));
6106 return 0;
6107 }
6108
6109 /* check qname */
6110 sldns_buffer_set_position(pkt, LDNS_HEADER_SIZE);
6111 for(i=0; i<(int)LDNS_QDCOUNT(wire); i++) {
6112 size_t pos = sldns_buffer_position(pkt);
6113 uint16_t qtype, qclass;
6114 if(pkt_dname_len(pkt) == 0) {
6115 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6116 "malformed dname",
6117 xfr->task_transfer->master->host);
6118 return 0;
6119 }
6120 if(dname_pkt_compare(pkt, sldns_buffer_at(pkt, pos),
6121 xfr->name) != 0) {
6122 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6123 "wrong qname",
6124 xfr->task_transfer->master->host);
6125 return 0;
6126 }
6127 if(sldns_buffer_remaining(pkt) < 4) {
6128 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6129 "truncated query RR",
6130 xfr->task_transfer->master->host);
6131 return 0;
6132 }
6133 qtype = sldns_buffer_read_u16(pkt);
6134 qclass = sldns_buffer_read_u16(pkt);
6135 if(qclass != xfr->dclass) {
6136 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6137 "wrong qclass",
6138 xfr->task_transfer->master->host);
6139 return 0;
6140 }
6141 if(xfr->task_transfer->on_ixfr) {
6142 if(qtype != LDNS_RR_TYPE_IXFR) {
6143 verbose(VERB_ALGO, "xfr to %s failed, packet "
6144 "with wrong qtype, expected IXFR",
6145 xfr->task_transfer->master->host);
6146 return 0;
6147 }
6148 } else {
6149 if(qtype != LDNS_RR_TYPE_AXFR) {
6150 verbose(VERB_ALGO, "xfr to %s failed, packet "
6151 "with wrong qtype, expected AXFR",
6152 xfr->task_transfer->master->host);
6153 return 0;
6154 }
6155 }
6156 }
6157
6158 /* check parse of RRs in packet, store first SOA serial
6159 * to be able to detect last SOA (with that serial) to see if done */
6160 /* also check for IXFR 'zone up to date' reply */
6161 for(i=0; i<(int)LDNS_ANCOUNT(wire); i++) {
6162 size_t pos = sldns_buffer_position(pkt);
6163 uint16_t tp, rdlen;
6164 if(pkt_dname_len(pkt) == 0) {
6165 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6166 "malformed dname in answer section",
6167 xfr->task_transfer->master->host);
6168 return 0;
6169 }
6170 if(sldns_buffer_remaining(pkt) < 10) {
6171 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6172 "truncated RR",
6173 xfr->task_transfer->master->host);
6174 return 0;
6175 }
6176 tp = sldns_buffer_read_u16(pkt);
6177 (void)sldns_buffer_read_u16(pkt); /* class */
6178 (void)sldns_buffer_read_u32(pkt); /* ttl */
6179 rdlen = sldns_buffer_read_u16(pkt);
6180 if(sldns_buffer_remaining(pkt) < rdlen) {
6181 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6182 "truncated RR rdata",
6183 xfr->task_transfer->master->host);
6184 return 0;
6185 }
6186
6187 /* RR parses (haven't checked rdata itself), now look at
6188 * SOA records to see serial number */
6189 if(xfr->task_transfer->rr_scan_num == 0 &&
6190 tp != LDNS_RR_TYPE_SOA) {
6191 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6192 "malformed zone transfer, no start SOA",
6193 xfr->task_transfer->master->host);
6194 return 0;
6195 }
6196 if(xfr->task_transfer->rr_scan_num == 1 &&
6197 tp != LDNS_RR_TYPE_SOA) {
6198 /* second RR is not a SOA record, this is not an IXFR
6199 * the master is replying with an AXFR */
6200 xfr->task_transfer->on_ixfr_is_axfr = 1;
6201 }
6202 if(tp == LDNS_RR_TYPE_SOA) {
6203 uint32_t serial;
6204 if(rdlen < 22) {
6205 verbose(VERB_ALGO, "xfr to %s failed, packet "
6206 "with SOA with malformed rdata",
6207 xfr->task_transfer->master->host);
6208 return 0;
6209 }
6210 if(dname_pkt_compare(pkt, sldns_buffer_at(pkt, pos),
6211 xfr->name) != 0) {
6212 verbose(VERB_ALGO, "xfr to %s failed, packet "
6213 "with SOA with wrong dname",
6214 xfr->task_transfer->master->host);
6215 return 0;
6216 }
6217
6218 /* read serial number of SOA */
6219 serial = sldns_buffer_read_u32_at(pkt,
6220 sldns_buffer_position(pkt)+rdlen-20);
6221
6222 /* check for IXFR 'zone has SOA x' reply */
6223 if(xfr->task_transfer->on_ixfr &&
6224 xfr->task_transfer->rr_scan_num == 0 &&
6225 LDNS_ANCOUNT(wire)==1) {
6226 verbose(VERB_ALGO, "xfr to %s ended, "
6227 "IXFR reply that zone has serial %u,"
6228 " fallback from IXFR to AXFR",
6229 xfr->task_transfer->master->host,
6230 (unsigned)serial);
6231 xfr->task_transfer->ixfr_fail = 1;
6232 *gonextonfail = 0;
6233 return 0;
6234 }
6235
6236 /* if first SOA, store serial number */
6237 if(xfr->task_transfer->got_xfr_serial == 0) {
6238 xfr->task_transfer->got_xfr_serial = 1;
6239 xfr->task_transfer->incoming_xfr_serial =
6240 serial;
6241 verbose(VERB_ALGO, "xfr %s: contains "
6242 "SOA serial %u",
6243 xfr->task_transfer->master->host,
6244 (unsigned)serial);
6245 /* see if end of AXFR */
6246 } else if(!xfr->task_transfer->on_ixfr ||
6247 xfr->task_transfer->on_ixfr_is_axfr) {
6248 /* second SOA with serial is the end
6249 * for AXFR */
6250 *transferdone = 1;
6251 verbose(VERB_ALGO, "xfr %s: last AXFR packet",
6252 xfr->task_transfer->master->host);
6253 /* for IXFR, count SOA records with that serial */
6254 } else if(xfr->task_transfer->incoming_xfr_serial ==
6255 serial && xfr->task_transfer->got_xfr_serial
6256 == 1) {
6257 xfr->task_transfer->got_xfr_serial++;
6258 /* if not first soa, if serial==firstserial, the
6259 * third time we are at the end, for IXFR */
6260 } else if(xfr->task_transfer->incoming_xfr_serial ==
6261 serial && xfr->task_transfer->got_xfr_serial
6262 == 2) {
6263 verbose(VERB_ALGO, "xfr %s: last IXFR packet",
6264 xfr->task_transfer->master->host);
6265 *transferdone = 1;
6266 /* continue parse check, if that succeeds,
6267 * transfer is done */
6268 }
6269 }
6270 xfr->task_transfer->rr_scan_num++;
6271
6272 /* skip over RR rdata to go to the next RR */
6273 sldns_buffer_skip(pkt, (ssize_t)rdlen);
6274 }
6275
6276 /* check authority section */
6277 /* we skip over the RRs checking packet format */
6278 for(i=0; i<(int)LDNS_NSCOUNT(wire); i++) {
6279 uint16_t rdlen;
6280 if(pkt_dname_len(pkt) == 0) {
6281 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6282 "malformed dname in authority section",
6283 xfr->task_transfer->master->host);
6284 return 0;
6285 }
6286 if(sldns_buffer_remaining(pkt) < 10) {
6287 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6288 "truncated RR",
6289 xfr->task_transfer->master->host);
6290 return 0;
6291 }
6292 (void)sldns_buffer_read_u16(pkt); /* type */
6293 (void)sldns_buffer_read_u16(pkt); /* class */
6294 (void)sldns_buffer_read_u32(pkt); /* ttl */
6295 rdlen = sldns_buffer_read_u16(pkt);
6296 if(sldns_buffer_remaining(pkt) < rdlen) {
6297 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6298 "truncated RR rdata",
6299 xfr->task_transfer->master->host);
6300 return 0;
6301 }
6302 /* skip over RR rdata to go to the next RR */
6303 sldns_buffer_skip(pkt, (ssize_t)rdlen);
6304 }
6305
6306 /* check additional section */
6307 for(i=0; i<(int)LDNS_ARCOUNT(wire); i++) {
6308 uint16_t rdlen;
6309 if(pkt_dname_len(pkt) == 0) {
6310 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6311 "malformed dname in additional section",
6312 xfr->task_transfer->master->host);
6313 return 0;
6314 }
6315 if(sldns_buffer_remaining(pkt) < 10) {
6316 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6317 "truncated RR",
6318 xfr->task_transfer->master->host);
6319 return 0;
6320 }
6321 (void)sldns_buffer_read_u16(pkt); /* type */
6322 (void)sldns_buffer_read_u16(pkt); /* class */
6323 (void)sldns_buffer_read_u32(pkt); /* ttl */
6324 rdlen = sldns_buffer_read_u16(pkt);
6325 if(sldns_buffer_remaining(pkt) < rdlen) {
6326 verbose(VERB_ALGO, "xfr to %s failed, packet with "
6327 "truncated RR rdata",
6328 xfr->task_transfer->master->host);
6329 return 0;
6330 }
6331 /* skip over RR rdata to go to the next RR */
6332 sldns_buffer_skip(pkt, (ssize_t)rdlen);
6333 }
6334
6335 return 1;
6336 }
6337
6338 /** Link the data from this packet into the worklist of transferred data */
6339 static int
xfer_link_data(sldns_buffer * pkt,struct auth_xfer * xfr)6340 xfer_link_data(sldns_buffer* pkt, struct auth_xfer* xfr)
6341 {
6342 /* alloc it */
6343 struct auth_chunk* e;
6344 e = (struct auth_chunk*)calloc(1, sizeof(*e));
6345 if(!e) return 0;
6346 e->next = NULL;
6347 e->len = sldns_buffer_limit(pkt);
6348 e->data = memdup(sldns_buffer_begin(pkt), e->len);
6349 if(!e->data) {
6350 free(e);
6351 return 0;
6352 }
6353
6354 /* alloc succeeded, link into list */
6355 if(!xfr->task_transfer->chunks_first)
6356 xfr->task_transfer->chunks_first = e;
6357 if(xfr->task_transfer->chunks_last)
6358 xfr->task_transfer->chunks_last->next = e;
6359 xfr->task_transfer->chunks_last = e;
6360 xfr->task_transfer->chunks_total += e->len;
6361 return 1;
6362 }
6363
6364 /** task transfer. the list of data is complete. process it and if failed
6365 * move to next master, if succeeded, end the task transfer */
6366 static void
process_list_end_transfer(struct auth_xfer * xfr,struct module_env * env)6367 process_list_end_transfer(struct auth_xfer* xfr, struct module_env* env)
6368 {
6369 int ixfr_fail = 0;
6370 if(xfr_process_chunk_list(xfr, env, &ixfr_fail)) {
6371 /* it worked! */
6372 auth_chunks_delete(xfr->task_transfer);
6373
6374 /* we fetched the zone, move to wait task */
6375 xfr_transfer_disown(xfr);
6376
6377 if(xfr->notify_received && (!xfr->notify_has_serial ||
6378 (xfr->notify_has_serial &&
6379 xfr_serial_means_update(xfr, xfr->notify_serial)))) {
6380 uint32_t sr = xfr->notify_serial;
6381 int has_sr = xfr->notify_has_serial;
6382 /* we received a notify while probe/transfer was
6383 * in progress. start a new probe and transfer */
6384 xfr->notify_received = 0;
6385 xfr->notify_has_serial = 0;
6386 xfr->notify_serial = 0;
6387 if(!xfr_start_probe(xfr, env, NULL)) {
6388 /* if we couldn't start it, already in
6389 * progress; restore notify serial,
6390 * while xfr still locked */
6391 xfr->notify_received = 1;
6392 xfr->notify_has_serial = has_sr;
6393 xfr->notify_serial = sr;
6394 lock_basic_unlock(&xfr->lock);
6395 }
6396 return;
6397 } else {
6398 /* pick up the nextprobe task and wait (normail wait time) */
6399 if(xfr->task_nextprobe->worker == NULL)
6400 xfr_set_timeout(xfr, env, 0, 0);
6401 }
6402 lock_basic_unlock(&xfr->lock);
6403 return;
6404 }
6405 /* processing failed */
6406 /* when done, delete data from list */
6407 auth_chunks_delete(xfr->task_transfer);
6408 if(ixfr_fail) {
6409 xfr->task_transfer->ixfr_fail = 1;
6410 } else {
6411 xfr_transfer_nextmaster(xfr);
6412 }
6413 xfr_transfer_nexttarget_or_end(xfr, env);
6414 }
6415
6416 /** callback for the task_transfer timer */
6417 void
auth_xfer_transfer_timer_callback(void * arg)6418 auth_xfer_transfer_timer_callback(void* arg)
6419 {
6420 struct auth_xfer* xfr = (struct auth_xfer*)arg;
6421 struct module_env* env;
6422 int gonextonfail = 1;
6423 log_assert(xfr->task_transfer);
6424 lock_basic_lock(&xfr->lock);
6425 env = xfr->task_transfer->env;
6426 if(!env || env->outnet->want_to_quit) {
6427 lock_basic_unlock(&xfr->lock);
6428 return; /* stop on quit */
6429 }
6430
6431 verbose(VERB_ALGO, "xfr stopped, connection timeout to %s",
6432 xfr->task_transfer->master->host);
6433
6434 /* see if IXFR caused the failure, if so, try AXFR */
6435 if(xfr->task_transfer->on_ixfr) {
6436 xfr->task_transfer->ixfr_possible_timeout_count++;
6437 if(xfr->task_transfer->ixfr_possible_timeout_count >=
6438 NUM_TIMEOUTS_FALLBACK_IXFR) {
6439 verbose(VERB_ALGO, "xfr to %s, fallback "
6440 "from IXFR to AXFR (because of timeouts)",
6441 xfr->task_transfer->master->host);
6442 xfr->task_transfer->ixfr_fail = 1;
6443 gonextonfail = 0;
6444 }
6445 }
6446
6447 /* delete transferred data from list */
6448 auth_chunks_delete(xfr->task_transfer);
6449 comm_point_delete(xfr->task_transfer->cp);
6450 xfr->task_transfer->cp = NULL;
6451 if(gonextonfail)
6452 xfr_transfer_nextmaster(xfr);
6453 xfr_transfer_nexttarget_or_end(xfr, env);
6454 }
6455
6456 /** return the time taken by the transfer */
6457 static int
auth_xfer_transfer_time_taken(struct auth_xfer * xfr,struct module_env * env)6458 auth_xfer_transfer_time_taken(struct auth_xfer* xfr, struct module_env* env)
6459 {
6460 struct timeval delta;
6461 timeval_subtract(&delta, env->now_tv, &xfr->task_transfer->start_time);
6462 return ((int)delta.tv_sec)*1000 + ((int)delta.tv_usec)/1000;
6463 }
6464
6465 /** callback for task_transfer tcp connections */
6466 int
auth_xfer_transfer_tcp_callback(struct comm_point * c,void * arg,int err,struct comm_reply * ATTR_UNUSED (repinfo))6467 auth_xfer_transfer_tcp_callback(struct comm_point* c, void* arg, int err,
6468 struct comm_reply* ATTR_UNUSED(repinfo))
6469 {
6470 struct auth_xfer* xfr = (struct auth_xfer*)arg;
6471 struct module_env* env;
6472 int gonextonfail = 1;
6473 int transferdone = 0;
6474 log_assert(xfr->task_transfer);
6475 lock_basic_lock(&xfr->lock);
6476 env = xfr->task_transfer->env;
6477 if(!env || env->outnet->want_to_quit) {
6478 lock_basic_unlock(&xfr->lock);
6479 return 0; /* stop on quit */
6480 }
6481 /* stop the timer */
6482 comm_timer_disable(xfr->task_transfer->timer);
6483
6484 if(err != NETEVENT_NOERROR) {
6485 /* connection failed, closed, or timeout */
6486 /* stop this transfer, cleanup
6487 * and continue task_transfer*/
6488 verbose(VERB_ALGO, "xfr stopped, connection lost to %s",
6489 xfr->task_transfer->master->host);
6490
6491 /* see if IXFR caused the failure, if so, try AXFR */
6492 if(xfr->task_transfer->on_ixfr) {
6493 xfr->task_transfer->ixfr_possible_timeout_count++;
6494 if(xfr->task_transfer->ixfr_possible_timeout_count >=
6495 NUM_TIMEOUTS_FALLBACK_IXFR) {
6496 verbose(VERB_ALGO, "xfr to %s, fallback "
6497 "from IXFR to AXFR (because of timeouts)",
6498 xfr->task_transfer->master->host);
6499 xfr->task_transfer->ixfr_fail = 1;
6500 gonextonfail = 0;
6501 }
6502 }
6503
6504 failed:
6505 /* delete transferred data from list */
6506 auth_chunks_delete(xfr->task_transfer);
6507 comm_point_delete(xfr->task_transfer->cp);
6508 xfr->task_transfer->cp = NULL;
6509 if(gonextonfail)
6510 xfr_transfer_nextmaster(xfr);
6511 xfr_transfer_nexttarget_or_end(xfr, env);
6512 return 0;
6513 }
6514 /* note that IXFR worked without timeout */
6515 if(xfr->task_transfer->on_ixfr)
6516 xfr->task_transfer->ixfr_possible_timeout_count = 0;
6517
6518 /* handle returned packet */
6519 /* if it fails, cleanup and end this transfer */
6520 /* if it needs to fallback from IXFR to AXFR, do that */
6521 if(!check_xfer_packet(c->buffer, xfr, &gonextonfail, &transferdone)) {
6522 goto failed;
6523 }
6524 /* if it is good, link it into the list of data */
6525 /* if the link into list of data fails (malloc fail) cleanup and end */
6526 if(!xfer_link_data(c->buffer, xfr)) {
6527 verbose(VERB_ALGO, "xfr stopped to %s, malloc failed",
6528 xfr->task_transfer->master->host);
6529 goto failed;
6530 }
6531 if(xfr->max_transfer_size > 0 &&
6532 xfr->task_transfer->chunks_total > xfr->max_transfer_size) {
6533 char zname[LDNS_MAX_DOMAINLEN];
6534 dname_str(xfr->name, zname);
6535 log_err("auth zone %s transfer from %s exceeded %u bytes, aborting",
6536 zname, xfr->task_transfer->master->host,
6537 (unsigned)xfr->max_transfer_size);
6538 goto failed;
6539 }
6540 /* if the transfer is done now, disconnect and process the list */
6541 if(transferdone) {
6542 comm_point_delete(xfr->task_transfer->cp);
6543 xfr->task_transfer->cp = NULL;
6544 process_list_end_transfer(xfr, env);
6545 return 0;
6546 }
6547
6548 if(xfr->max_transfer_time > 0 &&
6549 auth_xfer_transfer_time_taken(xfr, env) > xfr->max_transfer_time) {
6550 char zname[LDNS_MAX_DOMAINLEN];
6551 dname_str(xfr->name, zname);
6552 log_err("auth zone %s transfer from %s exceeded %u msec total running time, aborting",
6553 zname, xfr->task_transfer->master->host,
6554 (unsigned)xfr->max_transfer_time);
6555 goto failed;
6556 }
6557
6558 /* if we want to read more messages, setup the commpoint to read
6559 * a DNS packet, and the timeout */
6560 lock_basic_unlock(&xfr->lock);
6561 c->tcp_is_reading = 1;
6562 sldns_buffer_clear(c->buffer);
6563 comm_point_start_listening(c, -1, AUTH_TRANSFER_TIMEOUT);
6564 return 0;
6565 }
6566
6567 /** callback for task_transfer http connections */
6568 int
auth_xfer_transfer_http_callback(struct comm_point * c,void * arg,int err,struct comm_reply * repinfo)6569 auth_xfer_transfer_http_callback(struct comm_point* c, void* arg, int err,
6570 struct comm_reply* repinfo)
6571 {
6572 struct auth_xfer* xfr = (struct auth_xfer*)arg;
6573 struct module_env* env;
6574 log_assert(xfr->task_transfer);
6575 lock_basic_lock(&xfr->lock);
6576 env = xfr->task_transfer->env;
6577 if(!env || env->outnet->want_to_quit) {
6578 lock_basic_unlock(&xfr->lock);
6579 return 0; /* stop on quit */
6580 }
6581 verbose(VERB_ALGO, "auth zone transfer http callback");
6582 /* stop the timer */
6583 comm_timer_disable(xfr->task_transfer->timer);
6584
6585 if(err != NETEVENT_NOERROR && err != NETEVENT_DONE) {
6586 /* connection failed, closed, or timeout */
6587 /* stop this transfer, cleanup
6588 * and continue task_transfer*/
6589 verbose(VERB_ALGO, "http stopped, connection lost to %s",
6590 xfr->task_transfer->master->host);
6591 failed:
6592 /* delete transferred data from list */
6593 auth_chunks_delete(xfr->task_transfer);
6594 if(repinfo) repinfo->c = NULL; /* signal cp deleted to
6595 the routine calling this callback */
6596 comm_point_delete(xfr->task_transfer->cp);
6597 xfr->task_transfer->cp = NULL;
6598 xfr_transfer_nextmaster(xfr);
6599 xfr_transfer_nexttarget_or_end(xfr, env);
6600 return 0;
6601 }
6602
6603 /* if it is good, link it into the list of data */
6604 /* if the link into list of data fails (malloc fail) cleanup and end */
6605 if(sldns_buffer_limit(c->buffer) > 0) {
6606 verbose(VERB_ALGO, "auth zone http queued up %d bytes",
6607 (int)sldns_buffer_limit(c->buffer));
6608 if(!xfer_link_data(c->buffer, xfr)) {
6609 verbose(VERB_ALGO, "http stopped to %s, malloc failed",
6610 xfr->task_transfer->master->host);
6611 goto failed;
6612 }
6613 if(xfr->max_transfer_size > 0 &&
6614 xfr->task_transfer->chunks_total > xfr->max_transfer_size) {
6615 char zname[LDNS_MAX_DOMAINLEN];
6616 dname_str(xfr->name, zname);
6617 log_err("auth zone %s http %s/%s exceeded %u bytes, aborting",
6618 zname, xfr->task_transfer->master->host,
6619 xfr->task_transfer->master->file,
6620 (unsigned)xfr->max_transfer_size);
6621 goto failed;
6622 }
6623 }
6624 /* if the transfer is done now, disconnect and process the list */
6625 if(err == NETEVENT_DONE) {
6626 if(repinfo) repinfo->c = NULL; /* signal cp deleted to
6627 the routine calling this callback */
6628 comm_point_delete(xfr->task_transfer->cp);
6629 xfr->task_transfer->cp = NULL;
6630 process_list_end_transfer(xfr, env);
6631 return 0;
6632 }
6633
6634 if(xfr->max_transfer_time > 0 &&
6635 auth_xfer_transfer_time_taken(xfr, env) > xfr->max_transfer_time) {
6636 char zname[LDNS_MAX_DOMAINLEN];
6637 dname_str(xfr->name, zname);
6638 log_err("auth zone %s transfer http %s/%s exceeded %u msec total running time, aborting",
6639 zname, xfr->task_transfer->master->host,
6640 xfr->task_transfer->master->file,
6641 (unsigned)xfr->max_transfer_time);
6642 goto failed;
6643 }
6644
6645 /* if we want to read more messages, setup the commpoint to read
6646 * a DNS packet, and the timeout */
6647 lock_basic_unlock(&xfr->lock);
6648 c->tcp_is_reading = 1;
6649 sldns_buffer_clear(c->buffer);
6650 comm_point_start_listening(c, -1, AUTH_TRANSFER_TIMEOUT);
6651 return 0;
6652 }
6653
6654
6655 /** start transfer task by this worker , xfr is locked. */
6656 static void
xfr_start_transfer(struct auth_xfer * xfr,struct module_env * env,struct auth_master * master)6657 xfr_start_transfer(struct auth_xfer* xfr, struct module_env* env,
6658 struct auth_master* master)
6659 {
6660 log_assert(xfr->task_transfer != NULL);
6661 log_assert(xfr->task_transfer->worker == NULL);
6662 log_assert(xfr->task_transfer->chunks_first == NULL);
6663 log_assert(xfr->task_transfer->chunks_last == NULL);
6664 xfr->task_transfer->worker = env->worker;
6665 xfr->task_transfer->env = env;
6666
6667 /* init transfer process */
6668 /* find that master in the transfer's list of masters? */
6669 xfr_transfer_start_list(xfr, master);
6670 /* start lookup for hostnames in transfer master list */
6671 xfr_transfer_start_lookups(xfr);
6672
6673 /* initiate TCP, and set timeout on it */
6674 xfr_transfer_nexttarget_or_end(xfr, env);
6675 }
6676
6677 /** disown task_probe. caller must hold xfr.lock */
6678 static void
xfr_probe_disown(struct auth_xfer * xfr)6679 xfr_probe_disown(struct auth_xfer* xfr)
6680 {
6681 /* remove timer (from this worker's event base) */
6682 comm_timer_delete(xfr->task_probe->timer);
6683 xfr->task_probe->timer = NULL;
6684 /* remove the commpoint */
6685 comm_point_delete(xfr->task_probe->cp);
6686 xfr->task_probe->cp = NULL;
6687 if(xfr->task_probe->env)
6688 xfr_stop_lookup(&xfr->task_probe->lookup_target,
6689 xfr->task_probe->lookup_unique_info,
6690 xfr->task_probe->lookup_aaaa, xfr->dclass,
6691 xfr->task_probe->env->mesh,
6692 &auth_xfer_probe_lookup_callback, xfr);
6693 /* we don't own this item anymore */
6694 xfr->task_probe->worker = NULL;
6695 xfr->task_probe->env = NULL;
6696 }
6697
6698 /** send the UDP probe to the master, this is part of task_probe */
6699 static int
xfr_probe_send_probe(struct auth_xfer * xfr,struct module_env * env,int timeout)6700 xfr_probe_send_probe(struct auth_xfer* xfr, struct module_env* env,
6701 int timeout)
6702 {
6703 struct sockaddr_storage addr;
6704 socklen_t addrlen = 0;
6705 struct timeval t;
6706 /* pick master */
6707 struct auth_master* master = xfr_probe_current_master(xfr);
6708 char *auth_name = NULL;
6709 if(!master) return 0;
6710 if(master->allow_notify) return 0; /* only for notify */
6711 if(master->http) return 0; /* only masters get SOA UDP probe,
6712 not urls, if those are in this list */
6713
6714 /* get master addr */
6715 if(xfr->task_probe->scan_addr) {
6716 addrlen = xfr->task_probe->scan_addr->addrlen;
6717 memmove(&addr, &xfr->task_probe->scan_addr->addr, addrlen);
6718 } else {
6719 if(!authextstrtoaddr(master->host, &addr, &addrlen, &auth_name)) {
6720 /* the ones that are not in addr format are supposed
6721 * to be looked up. The lookup has failed however,
6722 * so skip them */
6723 char zname[LDNS_MAX_DOMAINLEN];
6724 dname_str(xfr->name, zname);
6725 log_err("%s: failed lookup, cannot probe to master %s",
6726 zname, master->host);
6727 return 0;
6728 }
6729 if (auth_name != NULL) {
6730 if (addr.ss_family == AF_INET
6731 && (int)ntohs(((struct sockaddr_in *)&addr)->sin_port)
6732 == env->cfg->ssl_port)
6733 ((struct sockaddr_in *)&addr)->sin_port
6734 = htons((uint16_t)env->cfg->port);
6735 else if (addr.ss_family == AF_INET6
6736 && (int)ntohs(((struct sockaddr_in6 *)&addr)->sin6_port)
6737 == env->cfg->ssl_port)
6738 ((struct sockaddr_in6 *)&addr)->sin6_port
6739 = htons((uint16_t)env->cfg->port);
6740 }
6741 }
6742
6743 /* create packet */
6744 /* create new ID for new probes, but not on timeout retries,
6745 * this means we'll accept replies to previous retries to same ip */
6746 if(timeout == AUTH_PROBE_TIMEOUT)
6747 xfr->task_probe->id = GET_RANDOM_ID(env->rnd);
6748 xfr_create_soa_probe_packet(xfr, env->scratch_buffer,
6749 xfr->task_probe->id);
6750 /* we need to remove the cp if we have a different ip4/ip6 type now */
6751 if(xfr->task_probe->cp &&
6752 ((xfr->task_probe->cp_is_ip6 && !addr_is_ip6(&addr, addrlen)) ||
6753 (!xfr->task_probe->cp_is_ip6 && addr_is_ip6(&addr, addrlen)))
6754 ) {
6755 comm_point_delete(xfr->task_probe->cp);
6756 xfr->task_probe->cp = NULL;
6757 }
6758 if(!xfr->task_probe->cp) {
6759 if(addr_is_ip6(&addr, addrlen))
6760 xfr->task_probe->cp_is_ip6 = 1;
6761 else xfr->task_probe->cp_is_ip6 = 0;
6762 xfr->task_probe->cp = outnet_comm_point_for_udp(env->outnet,
6763 auth_xfer_probe_udp_callback, xfr, &addr, addrlen);
6764 if(!xfr->task_probe->cp) {
6765 char zname[LDNS_MAX_DOMAINLEN], as[256];
6766 dname_str(xfr->name, zname);
6767 addr_port_to_str(&addr, addrlen, as, sizeof(as));
6768 verbose(VERB_ALGO, "cannot create udp cp for "
6769 "probe %s to %s", zname, as);
6770 return 0;
6771 }
6772 }
6773 if(!xfr->task_probe->timer) {
6774 xfr->task_probe->timer = comm_timer_create(env->worker_base,
6775 auth_xfer_probe_timer_callback, xfr);
6776 if(!xfr->task_probe->timer) {
6777 log_err("malloc failure");
6778 return 0;
6779 }
6780 }
6781
6782 /* send udp packet */
6783 if(!comm_point_send_udp_msg(xfr->task_probe->cp, env->scratch_buffer,
6784 (struct sockaddr*)&addr, addrlen, 0)) {
6785 char zname[LDNS_MAX_DOMAINLEN], as[256];
6786 dname_str(xfr->name, zname);
6787 addr_port_to_str(&addr, addrlen, as, sizeof(as));
6788 verbose(VERB_ALGO, "failed to send soa probe for %s to %s",
6789 zname, as);
6790 return 0;
6791 }
6792 if(verbosity >= VERB_ALGO) {
6793 char zname[LDNS_MAX_DOMAINLEN], as[256];
6794 dname_str(xfr->name, zname);
6795 addr_port_to_str(&addr, addrlen, as, sizeof(as));
6796 verbose(VERB_ALGO, "auth zone %s soa probe sent to %s", zname,
6797 as);
6798 }
6799 xfr->task_probe->timeout = timeout;
6800 #ifndef S_SPLINT_S
6801 t.tv_sec = timeout/1000;
6802 t.tv_usec = (timeout%1000)*1000;
6803 #endif
6804 comm_timer_set(xfr->task_probe->timer, &t);
6805
6806 return 1;
6807 }
6808
6809 /** callback for task_probe timer */
6810 void
auth_xfer_probe_timer_callback(void * arg)6811 auth_xfer_probe_timer_callback(void* arg)
6812 {
6813 struct auth_xfer* xfr = (struct auth_xfer*)arg;
6814 struct module_env* env;
6815 log_assert(xfr->task_probe);
6816 lock_basic_lock(&xfr->lock);
6817 env = xfr->task_probe->env;
6818 if(!env || env->outnet->want_to_quit) {
6819 lock_basic_unlock(&xfr->lock);
6820 return; /* stop on quit */
6821 }
6822
6823 if(verbosity >= VERB_ALGO) {
6824 char zname[LDNS_MAX_DOMAINLEN];
6825 dname_str(xfr->name, zname);
6826 verbose(VERB_ALGO, "auth zone %s soa probe timeout", zname);
6827 }
6828 if(xfr->task_probe->timeout <= AUTH_PROBE_TIMEOUT_STOP) {
6829 /* try again with bigger timeout */
6830 if(xfr_probe_send_probe(xfr, env, xfr->task_probe->timeout*2)) {
6831 lock_basic_unlock(&xfr->lock);
6832 return;
6833 }
6834 }
6835 /* delete commpoint so a new one is created, with a fresh port nr */
6836 comm_point_delete(xfr->task_probe->cp);
6837 xfr->task_probe->cp = NULL;
6838
6839 /* too many timeouts (or fail to send), move to next or end */
6840 xfr_probe_nextmaster(xfr);
6841 xfr_probe_send_or_end(xfr, env);
6842 }
6843
6844 /** callback for task_probe udp packets */
6845 int
auth_xfer_probe_udp_callback(struct comm_point * c,void * arg,int err,struct comm_reply * repinfo)6846 auth_xfer_probe_udp_callback(struct comm_point* c, void* arg, int err,
6847 struct comm_reply* repinfo)
6848 {
6849 struct auth_xfer* xfr = (struct auth_xfer*)arg;
6850 struct module_env* env;
6851 log_assert(xfr->task_probe);
6852 lock_basic_lock(&xfr->lock);
6853 env = xfr->task_probe->env;
6854 if(!env || env->outnet->want_to_quit) {
6855 lock_basic_unlock(&xfr->lock);
6856 return 0; /* stop on quit */
6857 }
6858
6859 /* the comm_point_udp_callback is in a for loop for NUM_UDP_PER_SELECT
6860 * and we set rep.c=NULL to stop if from looking inside the commpoint*/
6861 repinfo->c = NULL;
6862 /* stop the timer */
6863 comm_timer_disable(xfr->task_probe->timer);
6864
6865 /* see if we got a packet and what that means */
6866 if(err == NETEVENT_NOERROR) {
6867 uint32_t serial = 0;
6868 if(check_packet_ok(c->buffer, LDNS_RR_TYPE_SOA, xfr,
6869 &serial)) {
6870 /* successful lookup */
6871 if(verbosity >= VERB_ALGO) {
6872 char buf[LDNS_MAX_DOMAINLEN];
6873 dname_str(xfr->name, buf);
6874 verbose(VERB_ALGO, "auth zone %s: soa probe "
6875 "serial is %u", buf, (unsigned)serial);
6876 }
6877 /* see if this serial indicates that the zone has
6878 * to be updated */
6879 if(xfr_serial_means_update(xfr, serial)) {
6880 /* if updated, start the transfer task, if needed */
6881 verbose(VERB_ALGO, "auth_zone updated, start transfer");
6882 if(xfr->task_transfer->worker == NULL) {
6883 struct auth_master* master =
6884 xfr_probe_current_master(xfr);
6885 /* if we have download URLs use them
6886 * in preference to this master we
6887 * just probed the SOA from */
6888 if(xfr->task_transfer->masters &&
6889 xfr->task_transfer->masters->http)
6890 master = NULL;
6891 xfr_probe_disown(xfr);
6892 xfr_start_transfer(xfr, env, master);
6893 return 0;
6894
6895 }
6896 /* other tasks are running, we don't do this anymore */
6897 xfr_probe_disown(xfr);
6898 lock_basic_unlock(&xfr->lock);
6899 /* return, we don't sent a reply to this udp packet,
6900 * and we setup the tasks to do next */
6901 return 0;
6902 } else {
6903 verbose(VERB_ALGO, "auth_zone master reports unchanged soa serial");
6904 /* we if cannot find updates amongst the
6905 * masters, this means we then have a new lease
6906 * on the zone */
6907 xfr->task_probe->have_new_lease = 1;
6908 }
6909 } else {
6910 if(verbosity >= VERB_ALGO) {
6911 char buf[LDNS_MAX_DOMAINLEN];
6912 dname_str(xfr->name, buf);
6913 verbose(VERB_ALGO, "auth zone %s: bad reply to soa probe", buf);
6914 }
6915 }
6916 } else {
6917 if(verbosity >= VERB_ALGO) {
6918 char buf[LDNS_MAX_DOMAINLEN];
6919 dname_str(xfr->name, buf);
6920 verbose(VERB_ALGO, "auth zone %s: soa probe failed", buf);
6921 }
6922 }
6923
6924 /* failed lookup or not an update */
6925 /* delete commpoint so a new one is created, with a fresh port nr */
6926 comm_point_delete(xfr->task_probe->cp);
6927 xfr->task_probe->cp = NULL;
6928
6929 /* if the result was not a successful probe, we need
6930 * to send the next one */
6931 xfr_probe_nextmaster(xfr);
6932 xfr_probe_send_or_end(xfr, env);
6933 return 0;
6934 }
6935
6936 /** lookup a host name for its addresses, if needed */
6937 static int
xfr_probe_lookup_host(struct auth_xfer * xfr,struct module_env * env)6938 xfr_probe_lookup_host(struct auth_xfer* xfr, struct module_env* env)
6939 {
6940 struct sockaddr_storage addr;
6941 socklen_t addrlen = 0;
6942 struct auth_master* master = xfr->task_probe->lookup_target;
6943 struct query_info qinfo;
6944 uint16_t qflags = BIT_RD;
6945 uint8_t dname[LDNS_MAX_DOMAINLEN+1];
6946 struct edns_data edns;
6947 sldns_buffer* buf = env->scratch_buffer;
6948 if(!master) return 0;
6949 if(extstrtoaddr(master->host, &addr, &addrlen, UNBOUND_DNS_PORT)) {
6950 /* not needed, host is in IP addr format */
6951 return 0;
6952 }
6953 if(master->allow_notify && !master->http &&
6954 strchr(master->host, '/') != NULL &&
6955 strchr(master->host, '/') == strrchr(master->host, '/')) {
6956 return 0; /* is IP/prefix format, not something to look up */
6957 }
6958
6959 /* use mesh_new_callback to probe for non-addr hosts,
6960 * and then wait for them to be looked up (in cache, or query) */
6961 qinfo.qname_len = sizeof(dname);
6962 if(sldns_str2wire_dname_buf(master->host, dname, &qinfo.qname_len)
6963 != 0) {
6964 log_err("cannot parse host name of master %s", master->host);
6965 return 0;
6966 }
6967 qinfo.qname = dname;
6968 qinfo.qclass = xfr->dclass;
6969 qinfo.qtype = LDNS_RR_TYPE_A;
6970 if(xfr->task_probe->lookup_aaaa)
6971 qinfo.qtype = LDNS_RR_TYPE_AAAA;
6972 qinfo.local_alias = NULL;
6973 if(verbosity >= VERB_ALGO) {
6974 char buf1[512];
6975 char buf2[LDNS_MAX_DOMAINLEN];
6976 dname_str(xfr->name, buf2);
6977 snprintf(buf1, sizeof(buf1), "auth zone %s: master lookup"
6978 " for task_probe", buf2);
6979 log_query_info(VERB_ALGO, buf1, &qinfo);
6980 }
6981 edns.edns_present = 1;
6982 edns.ext_rcode = 0;
6983 edns.edns_version = 0;
6984 edns.bits = EDNS_DO;
6985 edns.opt_list_in = NULL;
6986 edns.opt_list_out = NULL;
6987 edns.opt_list_inplace_cb_out = NULL;
6988 edns.padding_block_size = 0;
6989 edns.cookie_present = 0;
6990 edns.cookie_valid = 0;
6991 if(sldns_buffer_capacity(buf) < 65535)
6992 edns.udp_size = (uint16_t)sldns_buffer_capacity(buf);
6993 else edns.udp_size = 65535;
6994
6995 /* unlock xfr during mesh_new_callback() because the callback can be
6996 * called straight away */
6997 lock_basic_unlock(&xfr->lock);
6998 if(!mesh_new_callback(env->mesh, &qinfo, qflags, &edns, buf, 0,
6999 &auth_xfer_probe_lookup_callback, xfr, 0,
7000 &xfr->task_probe->lookup_unique_info)) {
7001 lock_basic_lock(&xfr->lock);
7002 log_err("out of memory lookup up master %s", master->host);
7003 return 0;
7004 }
7005 lock_basic_lock(&xfr->lock);
7006 return 1;
7007 }
7008
7009 /** return true if there are probe (SOA UDP query) targets in the master list*/
7010 static int
have_probe_targets(struct auth_master * list)7011 have_probe_targets(struct auth_master* list)
7012 {
7013 struct auth_master* p;
7014 for(p=list; p; p = p->next) {
7015 if(!p->allow_notify && p->host)
7016 return 1;
7017 }
7018 return 0;
7019 }
7020
7021 /** move to sending the probe packets, next if fails. task_probe */
7022 static void
xfr_probe_send_or_end(struct auth_xfer * xfr,struct module_env * env)7023 xfr_probe_send_or_end(struct auth_xfer* xfr, struct module_env* env)
7024 {
7025 /* are we doing hostname lookups? */
7026 while(xfr->task_probe->lookup_target) {
7027 if(xfr_probe_lookup_host(xfr, env)) {
7028 /* wait for lookup to finish,
7029 * note that the hostname may be in unbound's cache
7030 * and we may then get an instant cache response,
7031 * and that calls the callback just like a full
7032 * lookup and lookup failures also call callback */
7033 if(verbosity >= VERB_ALGO) {
7034 char zname[LDNS_MAX_DOMAINLEN];
7035 dname_str(xfr->name, zname);
7036 verbose(VERB_ALGO, "auth zone %s probe next target lookup", zname);
7037 }
7038 lock_basic_unlock(&xfr->lock);
7039 return;
7040 }
7041 xfr_probe_move_to_next_lookup(xfr, env);
7042 }
7043 /* probe of list has ended. Create or refresh the list of of
7044 * allow_notify addrs */
7045 probe_copy_masters_for_allow_notify(xfr);
7046 if(verbosity >= VERB_ALGO) {
7047 char zname[LDNS_MAX_DOMAINLEN];
7048 dname_str(xfr->name, zname);
7049 verbose(VERB_ALGO, "auth zone %s probe: notify addrs updated", zname);
7050 }
7051 if(xfr->task_probe->only_lookup) {
7052 /* only wanted lookups for copy, stop probe and start wait */
7053 xfr->task_probe->only_lookup = 0;
7054 if(verbosity >= VERB_ALGO) {
7055 char zname[LDNS_MAX_DOMAINLEN];
7056 dname_str(xfr->name, zname);
7057 verbose(VERB_ALGO, "auth zone %s probe: finished only_lookup", zname);
7058 }
7059 xfr_probe_disown(xfr);
7060 if(!have_probe_targets(xfr->task_probe->masters)) {
7061 /* If there are no masters to probe, go to transfer. */
7062 if(xfr->task_transfer->worker == NULL) {
7063 xfr_start_transfer(xfr, env, NULL);
7064 return;
7065 }
7066 /* The transfer is already in progress. */
7067 lock_basic_unlock(&xfr->lock);
7068 return;
7069 }
7070 if(xfr->task_nextprobe->worker == NULL)
7071 xfr_set_timeout(xfr, env, 0, 0);
7072 lock_basic_unlock(&xfr->lock);
7073 return;
7074 }
7075
7076 /* send probe packets */
7077 while(!xfr_probe_end_of_list(xfr)) {
7078 if(xfr_probe_send_probe(xfr, env, AUTH_PROBE_TIMEOUT)) {
7079 /* successfully sent probe, wait for callback */
7080 lock_basic_unlock(&xfr->lock);
7081 return;
7082 }
7083 /* failed to send probe, next master */
7084 xfr_probe_nextmaster(xfr);
7085 }
7086
7087 /* done with probe sequence, wait */
7088 if(xfr->task_probe->have_new_lease) {
7089 /* if zone not updated, start the wait timer again */
7090 if(verbosity >= VERB_ALGO) {
7091 char zname[LDNS_MAX_DOMAINLEN];
7092 dname_str(xfr->name, zname);
7093 verbose(VERB_ALGO, "auth_zone %s unchanged, new lease, wait", zname);
7094 }
7095 xfr_probe_disown(xfr);
7096 if(xfr->have_zone)
7097 xfr->lease_time = *env->now;
7098 if(xfr->task_nextprobe->worker == NULL)
7099 xfr_set_timeout(xfr, env, 0, 0);
7100 } else {
7101 if(verbosity >= VERB_ALGO) {
7102 char zname[LDNS_MAX_DOMAINLEN];
7103 dname_str(xfr->name, zname);
7104 verbose(VERB_ALGO, "auth zone %s soa probe failed, wait to retry", zname);
7105 }
7106 /* we failed to send this as well, move to the wait task,
7107 * use the shorter retry timeout */
7108 xfr_probe_disown(xfr);
7109 /* pick up the nextprobe task and wait */
7110 if(xfr->task_nextprobe->worker == NULL)
7111 xfr_set_timeout(xfr, env, 1, 0);
7112 }
7113
7114 lock_basic_unlock(&xfr->lock);
7115 }
7116
7117 /** callback for task_probe lookup of host name, of A or AAAA */
auth_xfer_probe_lookup_callback(void * arg,int rcode,sldns_buffer * buf,enum sec_status sec,char * why_bogus,int ATTR_UNUSED (was_ratelimited))7118 void auth_xfer_probe_lookup_callback(void* arg, int rcode, sldns_buffer* buf,
7119 enum sec_status sec, char* why_bogus, int ATTR_UNUSED(was_ratelimited))
7120 {
7121 struct auth_xfer* xfr = (struct auth_xfer*)arg;
7122 struct module_env* env;
7123 log_assert(xfr->task_probe);
7124 lock_basic_lock(&xfr->lock);
7125 env = xfr->task_probe->env;
7126 if(!env || env->outnet->want_to_quit) {
7127 lock_basic_unlock(&xfr->lock);
7128 return; /* stop on quit */
7129 }
7130
7131 /* process result */
7132 if(sec == sec_status_bogus || sec == sec_status_secure_sentinel_fail) {
7133 if(verbosity >= VERB_OPS) {
7134 char zname[LDNS_MAX_DOMAINLEN];
7135 dname_str(xfr->name, zname);
7136 verbose(VERB_OPS, "auth zone %s: primary %s address probe lookup is DNSSEC bogus: %s",
7137 zname, xfr->task_probe->lookup_target->host,
7138 (why_bogus?why_bogus:""));
7139 }
7140 /* fall through to next-lookup / next-master */
7141 } else if(rcode == LDNS_RCODE_NOERROR) {
7142 uint16_t wanted_qtype = LDNS_RR_TYPE_A;
7143 struct regional* temp = env->scratch;
7144 struct query_info rq;
7145 struct reply_info* rep;
7146 if(xfr->task_probe->lookup_aaaa)
7147 wanted_qtype = LDNS_RR_TYPE_AAAA;
7148 memset(&rq, 0, sizeof(rq));
7149 rep = parse_reply_in_temp_region(buf, temp, &rq);
7150 if(rep && rq.qtype == wanted_qtype &&
7151 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NOERROR) {
7152 /* parsed successfully */
7153 struct ub_packed_rrset_key* answer =
7154 reply_find_answer_rrset(&rq, rep);
7155 if(answer && xfer_target_equals_answer_name(
7156 xfr->task_probe->lookup_target, answer,
7157 &rq, rep)) {
7158 xfr_master_add_addrs(xfr->task_probe->
7159 lookup_target, answer, wanted_qtype);
7160 } else if(answer) {
7161 if(verbosity >= VERB_ALGO) {
7162 char zname[LDNS_MAX_DOMAINLEN];
7163 dname_str(xfr->name, zname);
7164 verbose(VERB_ALGO, "auth zone %s host %s type %s probe lookup has mismatch in answer name", zname, ((xfr->task_probe->lookup_target && xfr->task_probe->lookup_target->host) ? xfr->task_probe->lookup_target->host : "null"), (xfr->task_probe->lookup_aaaa?"AAAA":"A"));
7165 }
7166 } else {
7167 if(verbosity >= VERB_ALGO) {
7168 char zname[LDNS_MAX_DOMAINLEN];
7169 dname_str(xfr->name, zname);
7170 verbose(VERB_ALGO, "auth zone %s host %s type %s probe lookup has nodata", zname, ((xfr->task_probe->lookup_target && xfr->task_probe->lookup_target->host) ? xfr->task_probe->lookup_target->host : "null"), (xfr->task_probe->lookup_aaaa?"AAAA":"A"));
7171 }
7172 }
7173 } else {
7174 if(verbosity >= VERB_ALGO) {
7175 char zname[LDNS_MAX_DOMAINLEN];
7176 dname_str(xfr->name, zname);
7177 verbose(VERB_ALGO, "auth zone %s host %s type %s probe lookup has no address", zname, ((xfr->task_probe->lookup_target && xfr->task_probe->lookup_target->host) ? xfr->task_probe->lookup_target->host : "null"), (xfr->task_probe->lookup_aaaa?"AAAA":"A"));
7178 }
7179 }
7180 regional_free_all(temp);
7181 } else {
7182 if(verbosity >= VERB_ALGO) {
7183 char zname[LDNS_MAX_DOMAINLEN];
7184 dname_str(xfr->name, zname);
7185 verbose(VERB_ALGO, "auth zone %s host %s type %s probe lookup failed", zname, ((xfr->task_probe->lookup_target && xfr->task_probe->lookup_target->host) ? xfr->task_probe->lookup_target->host : "null"), (xfr->task_probe->lookup_aaaa?"AAAA":"A"));
7186 }
7187 }
7188 if(xfr->task_probe->lookup_target &&
7189 xfr->task_probe->lookup_target->list &&
7190 xfr->task_probe->lookup_target == xfr_probe_current_master(xfr))
7191 xfr->task_probe->scan_addr = xfr->task_probe->lookup_target->list;
7192
7193 /* move to lookup AAAA after A lookup, move to next hostname lookup,
7194 * or move to send the probes, or, if nothing to do, end task_probe */
7195 xfr_probe_move_to_next_lookup(xfr, env);
7196 xfr_probe_send_or_end(xfr, env);
7197 }
7198
7199 /** disown task_nextprobe. caller must hold xfr.lock */
7200 static void
xfr_nextprobe_disown(struct auth_xfer * xfr)7201 xfr_nextprobe_disown(struct auth_xfer* xfr)
7202 {
7203 /* delete the timer, because the next worker to pick this up may
7204 * not have the same event base */
7205 comm_timer_delete(xfr->task_nextprobe->timer);
7206 xfr->task_nextprobe->timer = NULL;
7207 xfr->task_nextprobe->next_probe = 0;
7208 /* we don't own this item anymore */
7209 xfr->task_nextprobe->worker = NULL;
7210 xfr->task_nextprobe->env = NULL;
7211 }
7212
7213 /** xfer nextprobe timeout callback, this is part of task_nextprobe */
7214 void
auth_xfer_timer(void * arg)7215 auth_xfer_timer(void* arg)
7216 {
7217 struct auth_xfer* xfr = (struct auth_xfer*)arg;
7218 struct module_env* env;
7219 log_assert(xfr->task_nextprobe);
7220 lock_basic_lock(&xfr->lock);
7221 env = xfr->task_nextprobe->env;
7222 if(!env || env->outnet->want_to_quit) {
7223 lock_basic_unlock(&xfr->lock);
7224 return; /* stop on quit */
7225 }
7226
7227 /* see if zone has expired, and if so, also set auth_zone expired */
7228 if(xfr->have_zone && !xfr->zone_expired &&
7229 *env->now >= xfr->lease_time + xfr->expiry) {
7230 lock_basic_unlock(&xfr->lock);
7231 auth_xfer_set_expired(xfr, env, 1);
7232 lock_basic_lock(&xfr->lock);
7233 }
7234
7235 xfr_nextprobe_disown(xfr);
7236
7237 if(!xfr_start_probe(xfr, env, NULL)) {
7238 /* not started because already in progress */
7239 lock_basic_unlock(&xfr->lock);
7240 }
7241 }
7242
7243 /** start task_probe if possible, if no masters for probe start task_transfer
7244 * returns true if task has been started, and false if the task is already
7245 * in progress. */
7246 static int
xfr_start_probe(struct auth_xfer * xfr,struct module_env * env,struct auth_master * spec)7247 xfr_start_probe(struct auth_xfer* xfr, struct module_env* env,
7248 struct auth_master* spec)
7249 {
7250 /* see if we need to start a probe (or maybe it is already in
7251 * progress (due to notify)) */
7252 if(xfr->task_probe->worker == NULL) {
7253 if(!have_probe_targets(xfr->task_probe->masters) &&
7254 xfr->task_probe->masters != NULL)
7255 xfr->task_probe->only_lookup = 1;
7256 if(!xfr->task_probe->only_lookup &&
7257 !have_probe_targets(xfr->task_probe->masters)) {
7258 /* useless to pick up task_probe, no masters to
7259 * probe. Instead attempt to pick up task transfer */
7260 if(xfr->task_transfer->worker == NULL) {
7261 xfr_start_transfer(xfr, env, spec);
7262 return 1;
7263 }
7264 /* task transfer already in progress */
7265 return 0;
7266 }
7267
7268 /* pick up the probe task ourselves */
7269 xfr->task_probe->worker = env->worker;
7270 xfr->task_probe->env = env;
7271 xfr->task_probe->cp = NULL;
7272
7273 /* start the task */
7274 /* have not seen a new lease yet, this scan */
7275 xfr->task_probe->have_new_lease = 0;
7276 /* if this was a timeout, no specific first master to scan */
7277 /* otherwise, spec is nonNULL the notified master, scan
7278 * first and also transfer first from it */
7279 xfr_probe_start_list(xfr, spec);
7280 /* setup to start the lookup of hostnames of masters afresh */
7281 xfr_probe_start_lookups(xfr);
7282 /* send the probe packet or next send, or end task */
7283 xfr_probe_send_or_end(xfr, env);
7284 return 1;
7285 }
7286 return 0;
7287 }
7288
7289 /** for task_nextprobe.
7290 * determine next timeout for auth_xfer. Also (re)sets timer.
7291 * @param xfr: task structure
7292 * @param env: module environment, with worker and time.
7293 * @param failure: set true if timer should be set for failure retry.
7294 * @param lookup_only: only perform lookups when timer done, 0 sec timeout
7295 */
7296 static void
xfr_set_timeout(struct auth_xfer * xfr,struct module_env * env,int failure,int lookup_only)7297 xfr_set_timeout(struct auth_xfer* xfr, struct module_env* env,
7298 int failure, int lookup_only)
7299 {
7300 struct timeval tv;
7301 log_assert(xfr->task_nextprobe != NULL);
7302 log_assert(xfr->task_nextprobe->worker == NULL ||
7303 xfr->task_nextprobe->worker == env->worker);
7304 /* normally, nextprobe = startoflease + refresh,
7305 * but if expiry is sooner, use that one.
7306 * after a failure, use the retry timer instead. */
7307 xfr->task_nextprobe->next_probe = *env->now;
7308 if(xfr->lease_time && !failure)
7309 xfr->task_nextprobe->next_probe = xfr->lease_time;
7310
7311 if(!failure) {
7312 xfr->task_nextprobe->backoff = 0;
7313 } else {
7314 if(xfr->task_nextprobe->backoff == 0)
7315 xfr->task_nextprobe->backoff = 3;
7316 else xfr->task_nextprobe->backoff *= 2;
7317 if(xfr->task_nextprobe->backoff > AUTH_TRANSFER_MAX_BACKOFF)
7318 xfr->task_nextprobe->backoff =
7319 AUTH_TRANSFER_MAX_BACKOFF;
7320 }
7321
7322 if(xfr->have_zone) {
7323 time_t wait = xfr->refresh;
7324 if(failure) wait = xfr->retry;
7325 if(xfr->expiry < wait)
7326 xfr->task_nextprobe->next_probe += xfr->expiry;
7327 else xfr->task_nextprobe->next_probe += wait;
7328 if(failure)
7329 xfr->task_nextprobe->next_probe +=
7330 xfr->task_nextprobe->backoff;
7331 /* put the timer exactly on expiry, if possible */
7332 if(xfr->lease_time && xfr->lease_time+xfr->expiry <
7333 xfr->task_nextprobe->next_probe &&
7334 xfr->lease_time+xfr->expiry > *env->now)
7335 xfr->task_nextprobe->next_probe =
7336 xfr->lease_time+xfr->expiry;
7337 } else {
7338 xfr->task_nextprobe->next_probe +=
7339 xfr->task_nextprobe->backoff;
7340 }
7341
7342 if(!xfr->task_nextprobe->timer) {
7343 xfr->task_nextprobe->timer = comm_timer_create(
7344 env->worker_base, auth_xfer_timer, xfr);
7345 if(!xfr->task_nextprobe->timer) {
7346 /* failed to malloc memory. likely zone transfer
7347 * also fails for that. skip the timeout */
7348 char zname[LDNS_MAX_DOMAINLEN];
7349 dname_str(xfr->name, zname);
7350 log_err("cannot allocate timer, no refresh for %s",
7351 zname);
7352 return;
7353 }
7354 }
7355 xfr->task_nextprobe->worker = env->worker;
7356 xfr->task_nextprobe->env = env;
7357 if(*(xfr->task_nextprobe->env->now) <= xfr->task_nextprobe->next_probe)
7358 tv.tv_sec = xfr->task_nextprobe->next_probe -
7359 *(xfr->task_nextprobe->env->now);
7360 else tv.tv_sec = 0;
7361 if(tv.tv_sec != 0 && lookup_only && xfr->task_probe->masters) {
7362 /* don't lookup_only, if lookup timeout is 0 anyway,
7363 * or if we don't have masters to lookup */
7364 tv.tv_sec = 0;
7365 if(xfr->task_probe->worker == NULL)
7366 xfr->task_probe->only_lookup = 1;
7367 }
7368 if(verbosity >= VERB_ALGO) {
7369 char zname[LDNS_MAX_DOMAINLEN];
7370 dname_str(xfr->name, zname);
7371 verbose(VERB_ALGO, "auth zone %s timeout in %d seconds",
7372 zname, (int)tv.tv_sec);
7373 }
7374 tv.tv_usec = 0;
7375 comm_timer_set(xfr->task_nextprobe->timer, &tv);
7376 }
7377
auth_zone_pickup_initial_zone(struct auth_zone * z,struct module_env * env)7378 void auth_zone_pickup_initial_zone(struct auth_zone* z, struct module_env* env)
7379 {
7380 /* Set the time, because we now have timestamp in env,
7381 * (not earlier during startup and apply_cfg), and this
7382 * notes the start time when the data was acquired. */
7383 z->soa_zone_acquired = *env->now;
7384 }
7385
auth_xfer_pickup_initial_zone(struct auth_xfer * x,struct module_env * env)7386 void auth_xfer_pickup_initial_zone(struct auth_xfer* x, struct module_env* env)
7387 {
7388 /* set lease_time, because we now have timestamp in env,
7389 * (not earlier during startup and apply_cfg), and this
7390 * notes the start time when the data was acquired */
7391 if(x->have_zone) {
7392 x->lease_time = *env->now;
7393 x->soa_zone_acquired = *env->now;
7394 }
7395 if(x->task_nextprobe && x->task_nextprobe->worker == NULL) {
7396 xfr_set_timeout(x, env, 0, 1);
7397 }
7398 }
7399
7400 /** initial pick up of worker timeouts, ties events to worker event loop */
7401 void
auth_xfer_pickup_initial(struct auth_zones * az,struct module_env * env)7402 auth_xfer_pickup_initial(struct auth_zones* az, struct module_env* env)
7403 {
7404 struct auth_xfer* x;
7405 struct auth_zone* z;
7406 lock_rw_wrlock(&az->lock);
7407 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
7408 lock_rw_wrlock(&z->lock);
7409 auth_zone_pickup_initial_zone(z, env);
7410 lock_rw_unlock(&z->lock);
7411 }
7412 RBTREE_FOR(x, struct auth_xfer*, &az->xtree) {
7413 lock_basic_lock(&x->lock);
7414 auth_xfer_pickup_initial_zone(x, env);
7415 lock_basic_unlock(&x->lock);
7416 }
7417 lock_rw_unlock(&az->lock);
7418 }
7419
auth_zones_cleanup(struct auth_zones * az)7420 void auth_zones_cleanup(struct auth_zones* az)
7421 {
7422 struct auth_xfer* x;
7423 lock_rw_wrlock(&az->lock);
7424 RBTREE_FOR(x, struct auth_xfer*, &az->xtree) {
7425 lock_basic_lock(&x->lock);
7426 if(x->task_nextprobe && x->task_nextprobe->worker != NULL) {
7427 xfr_nextprobe_disown(x);
7428 }
7429 if(x->task_probe && x->task_probe->worker != NULL) {
7430 xfr_probe_disown(x);
7431 }
7432 if(x->task_transfer && x->task_transfer->worker != NULL) {
7433 auth_chunks_delete(x->task_transfer);
7434 xfr_transfer_disown(x);
7435 }
7436 lock_basic_unlock(&x->lock);
7437 }
7438 lock_rw_unlock(&az->lock);
7439 }
7440
7441 /**
7442 * malloc the xfer and tasks
7443 * @param z: auth_zone with name of zone.
7444 */
7445 static struct auth_xfer*
auth_xfer_new(struct auth_zone * z)7446 auth_xfer_new(struct auth_zone* z)
7447 {
7448 struct auth_xfer* xfr;
7449 xfr = (struct auth_xfer*)calloc(1, sizeof(*xfr));
7450 if(!xfr) return NULL;
7451 xfr->name = memdup(z->name, z->namelen);
7452 if(!xfr->name) {
7453 free(xfr);
7454 return NULL;
7455 }
7456 xfr->node.key = xfr;
7457 xfr->namelen = z->namelen;
7458 xfr->namelabs = z->namelabs;
7459 xfr->dclass = z->dclass;
7460 xfr->max_transfer_size = z->max_transfer_size;
7461 xfr->max_transfer_time = z->max_transfer_time;
7462
7463 xfr->task_nextprobe = (struct auth_nextprobe*)calloc(1,
7464 sizeof(struct auth_nextprobe));
7465 if(!xfr->task_nextprobe) {
7466 free(xfr->name);
7467 free(xfr);
7468 return NULL;
7469 }
7470 xfr->task_probe = (struct auth_probe*)calloc(1,
7471 sizeof(struct auth_probe));
7472 if(!xfr->task_probe) {
7473 free(xfr->task_nextprobe);
7474 free(xfr->name);
7475 free(xfr);
7476 return NULL;
7477 }
7478 xfr->task_transfer = (struct auth_transfer*)calloc(1,
7479 sizeof(struct auth_transfer));
7480 if(!xfr->task_transfer) {
7481 free(xfr->task_probe);
7482 free(xfr->task_nextprobe);
7483 free(xfr->name);
7484 free(xfr);
7485 return NULL;
7486 }
7487
7488 lock_basic_init(&xfr->lock);
7489 lock_protect(&xfr->lock, &xfr->name, sizeof(xfr->name));
7490 lock_protect(&xfr->lock, &xfr->namelen, sizeof(xfr->namelen));
7491 lock_protect(&xfr->lock, xfr->name, xfr->namelen);
7492 lock_protect(&xfr->lock, &xfr->namelabs, sizeof(xfr->namelabs));
7493 lock_protect(&xfr->lock, &xfr->dclass, sizeof(xfr->dclass));
7494 lock_protect(&xfr->lock, &xfr->notify_received, sizeof(xfr->notify_received));
7495 lock_protect(&xfr->lock, &xfr->notify_serial, sizeof(xfr->notify_serial));
7496 lock_protect(&xfr->lock, &xfr->zone_expired, sizeof(xfr->zone_expired));
7497 lock_protect(&xfr->lock, &xfr->have_zone, sizeof(xfr->have_zone));
7498 lock_protect(&xfr->lock, &xfr->soa_zone_acquired, sizeof(xfr->soa_zone_acquired));
7499 lock_protect(&xfr->lock, &xfr->serial, sizeof(xfr->serial));
7500 lock_protect(&xfr->lock, &xfr->retry, sizeof(xfr->retry));
7501 lock_protect(&xfr->lock, &xfr->refresh, sizeof(xfr->refresh));
7502 lock_protect(&xfr->lock, &xfr->expiry, sizeof(xfr->expiry));
7503 lock_protect(&xfr->lock, &xfr->lease_time, sizeof(xfr->lease_time));
7504 lock_protect(&xfr->lock, &xfr->task_nextprobe->worker,
7505 sizeof(xfr->task_nextprobe->worker));
7506 lock_protect(&xfr->lock, &xfr->task_probe->worker,
7507 sizeof(xfr->task_probe->worker));
7508 lock_protect(&xfr->lock, &xfr->task_transfer->worker,
7509 sizeof(xfr->task_transfer->worker));
7510 lock_basic_lock(&xfr->lock);
7511 return xfr;
7512 }
7513
7514 /** Create auth_xfer structure.
7515 * This populates the have_zone, soa values, and so on times.
7516 * and sets the timeout, if a zone transfer is needed a short timeout is set.
7517 * For that the auth_zone itself must exist (and read in zonefile)
7518 * returns false on alloc failure. */
7519 struct auth_xfer*
auth_xfer_create(struct auth_zones * az,struct auth_zone * z)7520 auth_xfer_create(struct auth_zones* az, struct auth_zone* z)
7521 {
7522 struct auth_xfer* xfr;
7523
7524 /* malloc it */
7525 xfr = auth_xfer_new(z);
7526 if(!xfr) {
7527 log_err("malloc failure");
7528 return NULL;
7529 }
7530 /* insert in tree */
7531 (void)rbtree_insert(&az->xtree, &xfr->node);
7532 return xfr;
7533 }
7534
7535 /** create new auth_master structure */
7536 static struct auth_master*
auth_master_new(struct auth_master *** list)7537 auth_master_new(struct auth_master*** list)
7538 {
7539 struct auth_master *m;
7540 m = (struct auth_master*)calloc(1, sizeof(*m));
7541 if(!m) {
7542 log_err("malloc failure");
7543 return NULL;
7544 }
7545 /* set first pointer to m, or next pointer of previous element to m */
7546 (**list) = m;
7547 /* store m's next pointer as future point to store at */
7548 (*list) = &(m->next);
7549 return m;
7550 }
7551
7552 /** dup_prefix : create string from initial part of other string, malloced */
7553 static char*
dup_prefix(char * str,size_t num)7554 dup_prefix(char* str, size_t num)
7555 {
7556 char* result;
7557 size_t len = strlen(str);
7558 if(len < num) num = len; /* not more than strlen */
7559 result = (char*)malloc(num+1);
7560 if(!result) {
7561 log_err("malloc failure");
7562 return result;
7563 }
7564 memmove(result, str, num);
7565 result[num] = 0;
7566 return result;
7567 }
7568
7569 /** dup string and print error on error */
7570 static char*
dup_all(char * str)7571 dup_all(char* str)
7572 {
7573 char* result = strdup(str);
7574 if(!result) {
7575 log_err("malloc failure");
7576 return NULL;
7577 }
7578 return result;
7579 }
7580
7581 /** find first of two characters */
7582 static char*
str_find_first_of_chars(char * s,char a,char b)7583 str_find_first_of_chars(char* s, char a, char b)
7584 {
7585 char* ra = strchr(s, a);
7586 char* rb = strchr(s, b);
7587 if(!ra) return rb;
7588 if(!rb) return ra;
7589 if(ra < rb) return ra;
7590 return rb;
7591 }
7592
7593 /** parse URL into host and file parts, false on malloc or parse error */
7594 static int
parse_url(char * url,char ** host,char ** file,int * port,int * ssl)7595 parse_url(char* url, char** host, char** file, int* port, int* ssl)
7596 {
7597 char* p = url;
7598 /* parse http://www.example.com/file.htm
7599 * or http://127.0.0.1 (index.html)
7600 * or https://[::1@1234]/a/b/c/d */
7601 *ssl = 1;
7602 *port = AUTH_HTTPS_PORT;
7603
7604 /* parse http:// or https:// */
7605 if(strncmp(p, "http://", 7) == 0) {
7606 p += 7;
7607 *ssl = 0;
7608 *port = AUTH_HTTP_PORT;
7609 } else if(strncmp(p, "https://", 8) == 0) {
7610 p += 8;
7611 } else if(strstr(p, "://") && strchr(p, '/') > strstr(p, "://") &&
7612 strchr(p, ':') >= strstr(p, "://")) {
7613 char* uri = dup_prefix(p, (size_t)(strstr(p, "://")-p));
7614 log_err("protocol %s:// not supported (for url %s)",
7615 uri?uri:"", p);
7616 free(uri);
7617 return 0;
7618 }
7619
7620 /* parse hostname part */
7621 if(p[0] == '[') {
7622 char* end = strchr(p, ']');
7623 p++; /* skip over [ */
7624 if(end) {
7625 *host = dup_prefix(p, (size_t)(end-p));
7626 if(!*host) return 0;
7627 p = end+1; /* skip over ] */
7628 } else {
7629 *host = dup_all(p);
7630 if(!*host) return 0;
7631 p = end;
7632 }
7633 } else {
7634 char* end = str_find_first_of_chars(p, ':', '/');
7635 if(end) {
7636 *host = dup_prefix(p, (size_t)(end-p));
7637 if(!*host) return 0;
7638 } else {
7639 *host = dup_all(p);
7640 if(!*host) return 0;
7641 }
7642 p = end; /* at next : or / or NULL */
7643 }
7644
7645 /* parse port number */
7646 if(p && p[0] == ':') {
7647 char* end = NULL;
7648 *port = strtol(p+1, &end, 10);
7649 p = end;
7650 }
7651
7652 /* parse filename part */
7653 while(p && *p == '/')
7654 p++;
7655 if(!p || p[0] == 0)
7656 *file = strdup("/");
7657 else *file = strdup(p);
7658 if(!*file) {
7659 log_err("malloc failure");
7660 return 0;
7661 }
7662 return 1;
7663 }
7664
7665 int
xfer_set_masters(struct auth_master ** list,struct config_auth * c,int with_http)7666 xfer_set_masters(struct auth_master** list, struct config_auth* c,
7667 int with_http)
7668 {
7669 struct auth_master* m;
7670 struct config_strlist* p;
7671 struct auth_master** tail;
7672 /* list points to the first, or next pointer for the new element */
7673 while(*list) {
7674 list = &( (*list)->next );
7675 }
7676 if(with_http)
7677 for(p = c->urls; p; p = p->next) {
7678 tail = list;
7679 m = auth_master_new(&list);
7680 if(!m) return 0;
7681 m->http = 1;
7682 if(!parse_url(p->str, &m->host, &m->file, &m->port, &m->ssl)) {
7683 free(m->host);
7684 free(m->file);
7685 free(m);
7686 *tail = NULL;
7687 return 0;
7688 }
7689 }
7690 for(p = c->masters; p; p = p->next) {
7691 tail = list;
7692 m = auth_master_new(&list);
7693 if(!m) return 0;
7694 m->ixfr = 1; /* this flag is not configurable */
7695 m->host = strdup(p->str);
7696 if(!m->host) {
7697 log_err("malloc failure");
7698 free(m);
7699 *tail = NULL;
7700 return 0;
7701 }
7702 }
7703 for(p = c->allow_notify; p; p = p->next) {
7704 tail = list;
7705 m = auth_master_new(&list);
7706 if(!m) return 0;
7707 m->allow_notify = 1;
7708 m->host = strdup(p->str);
7709 if(!m->host) {
7710 log_err("malloc failure");
7711 free(m);
7712 *tail = NULL;
7713 return 0;
7714 }
7715 }
7716 return 1;
7717 }
7718
7719 #define SERIAL_BITS 32
7720 int
compare_serial(uint32_t a,uint32_t b)7721 compare_serial(uint32_t a, uint32_t b)
7722 {
7723 const uint32_t cutoff = ((uint32_t) 1 << (SERIAL_BITS - 1));
7724
7725 if (a == b) {
7726 return 0;
7727 } else if ((a < b && b - a < cutoff) || (a > b && a - b > cutoff)) {
7728 return -1;
7729 } else {
7730 return 1;
7731 }
7732 }
7733
zonemd_hashalgo_supported(int hashalgo)7734 int zonemd_hashalgo_supported(int hashalgo)
7735 {
7736 if(hashalgo == ZONEMD_ALGO_SHA384) return 1;
7737 if(hashalgo == ZONEMD_ALGO_SHA512) return 1;
7738 return 0;
7739 }
7740
zonemd_scheme_supported(int scheme)7741 int zonemd_scheme_supported(int scheme)
7742 {
7743 if(scheme == ZONEMD_SCHEME_SIMPLE) return 1;
7744 return 0;
7745 }
7746
7747 /** initialize hash for hashing with zonemd hash algo */
zonemd_digest_init(int hashalgo,char ** reason)7748 static struct secalgo_hash* zonemd_digest_init(int hashalgo, char** reason)
7749 {
7750 struct secalgo_hash *h;
7751 if(hashalgo == ZONEMD_ALGO_SHA384) {
7752 /* sha384 */
7753 h = secalgo_hash_create_sha384();
7754 if(!h)
7755 *reason = "digest sha384 could not be created";
7756 return h;
7757 } else if(hashalgo == ZONEMD_ALGO_SHA512) {
7758 /* sha512 */
7759 h = secalgo_hash_create_sha512();
7760 if(!h)
7761 *reason = "digest sha512 could not be created";
7762 return h;
7763 }
7764 /* unknown hash algo */
7765 *reason = "unsupported algorithm";
7766 return NULL;
7767 }
7768
7769 /** update the hash for zonemd */
zonemd_digest_update(int hashalgo,struct secalgo_hash * h,uint8_t * data,size_t len,char ** reason)7770 static int zonemd_digest_update(int hashalgo, struct secalgo_hash* h,
7771 uint8_t* data, size_t len, char** reason)
7772 {
7773 if(hashalgo == ZONEMD_ALGO_SHA384) {
7774 if(!secalgo_hash_update(h, data, len)) {
7775 *reason = "digest sha384 failed";
7776 return 0;
7777 }
7778 return 1;
7779 } else if(hashalgo == ZONEMD_ALGO_SHA512) {
7780 if(!secalgo_hash_update(h, data, len)) {
7781 *reason = "digest sha512 failed";
7782 return 0;
7783 }
7784 return 1;
7785 }
7786 /* unknown hash algo */
7787 *reason = "unsupported algorithm";
7788 return 0;
7789 }
7790
7791 /** finish the hash for zonemd */
zonemd_digest_finish(int hashalgo,struct secalgo_hash * h,uint8_t * result,size_t hashlen,size_t * resultlen,char ** reason)7792 static int zonemd_digest_finish(int hashalgo, struct secalgo_hash* h,
7793 uint8_t* result, size_t hashlen, size_t* resultlen, char** reason)
7794 {
7795 if(hashalgo == ZONEMD_ALGO_SHA384) {
7796 if(hashlen < 384/8) {
7797 *reason = "digest buffer too small for sha384";
7798 return 0;
7799 }
7800 if(!secalgo_hash_final(h, result, hashlen, resultlen)) {
7801 *reason = "digest sha384 finish failed";
7802 return 0;
7803 }
7804 return 1;
7805 } else if(hashalgo == ZONEMD_ALGO_SHA512) {
7806 if(hashlen < 512/8) {
7807 *reason = "digest buffer too small for sha512";
7808 return 0;
7809 }
7810 if(!secalgo_hash_final(h, result, hashlen, resultlen)) {
7811 *reason = "digest sha512 finish failed";
7812 return 0;
7813 }
7814 return 1;
7815 }
7816 /* unknown algo */
7817 *reason = "unsupported algorithm";
7818 return 0;
7819 }
7820
7821 /** add rrsets from node to the list */
authdata_rrsets_to_list(struct auth_rrset ** array,size_t arraysize,struct auth_rrset * first)7822 static size_t authdata_rrsets_to_list(struct auth_rrset** array,
7823 size_t arraysize, struct auth_rrset* first)
7824 {
7825 struct auth_rrset* rrset = first;
7826 size_t num = 0;
7827 while(rrset) {
7828 if(num >= arraysize)
7829 return num;
7830 array[num] = rrset;
7831 num++;
7832 rrset = rrset->next;
7833 }
7834 return num;
7835 }
7836
7837 /** compare rr list entries */
rrlist_compare(const void * arg1,const void * arg2)7838 static int rrlist_compare(const void* arg1, const void* arg2)
7839 {
7840 struct auth_rrset* r1 = *(struct auth_rrset**)arg1;
7841 struct auth_rrset* r2 = *(struct auth_rrset**)arg2;
7842 uint16_t t1, t2;
7843 if(r1 == NULL) t1 = LDNS_RR_TYPE_RRSIG;
7844 else t1 = r1->type;
7845 if(r2 == NULL) t2 = LDNS_RR_TYPE_RRSIG;
7846 else t2 = r2->type;
7847 if(t1 < t2)
7848 return -1;
7849 if(t1 > t2)
7850 return 1;
7851 return 0;
7852 }
7853
7854 /** add type RRSIG to rr list if not one there already,
7855 * this is to perform RRSIG collate processing at that point. */
addrrsigtype_if_needed(struct auth_rrset ** array,size_t arraysize,size_t * rrnum,struct auth_data * node)7856 static void addrrsigtype_if_needed(struct auth_rrset** array,
7857 size_t arraysize, size_t* rrnum, struct auth_data* node)
7858 {
7859 if(az_domain_rrset(node, LDNS_RR_TYPE_RRSIG))
7860 return; /* already one there */
7861 if((*rrnum) >= arraysize)
7862 return; /* array too small? */
7863 array[*rrnum] = NULL; /* nothing there, but need entry in list */
7864 (*rrnum)++;
7865 }
7866
7867 /** collate the RRs in an RRset using the simple scheme */
zonemd_simple_rrset(struct auth_zone * z,int hashalgo,struct secalgo_hash * h,struct auth_data * node,struct auth_rrset * rrset,struct regional * region,struct sldns_buffer * buf,char ** reason)7868 static int zonemd_simple_rrset(struct auth_zone* z, int hashalgo,
7869 struct secalgo_hash* h, struct auth_data* node,
7870 struct auth_rrset* rrset, struct regional* region,
7871 struct sldns_buffer* buf, char** reason)
7872 {
7873 /* canonicalize */
7874 struct ub_packed_rrset_key key;
7875 memset(&key, 0, sizeof(key));
7876 key.entry.key = &key;
7877 key.entry.data = rrset->data;
7878 key.rk.dname = node->name;
7879 key.rk.dname_len = node->namelen;
7880 key.rk.type = htons(rrset->type);
7881 key.rk.rrset_class = htons(z->dclass);
7882 if(!rrset_canonicalize_to_buffer(region, buf, &key)) {
7883 *reason = "out of memory";
7884 return 0;
7885 }
7886 regional_free_all(region);
7887
7888 /* hash */
7889 if(!zonemd_digest_update(hashalgo, h, sldns_buffer_begin(buf),
7890 sldns_buffer_limit(buf), reason)) {
7891 return 0;
7892 }
7893 return 1;
7894 }
7895
7896 /** count number of RRSIGs in a domain name rrset list */
zonemd_simple_count_rrsig(struct auth_rrset * rrset,struct auth_rrset ** rrlist,size_t rrnum,struct auth_zone * z,struct auth_data * node)7897 static size_t zonemd_simple_count_rrsig(struct auth_rrset* rrset,
7898 struct auth_rrset** rrlist, size_t rrnum,
7899 struct auth_zone* z, struct auth_data* node)
7900 {
7901 size_t i, count = 0;
7902 if(rrset) {
7903 size_t j;
7904 for(j = 0; j<rrset->data->count; j++) {
7905 if(rrsig_rdata_get_type_covered(rrset->data->
7906 rr_data[j], rrset->data->rr_len[j]) ==
7907 LDNS_RR_TYPE_ZONEMD &&
7908 query_dname_compare(z->name, node->name)==0) {
7909 /* omit RRSIGs over type ZONEMD at apex */
7910 continue;
7911 }
7912 count++;
7913 }
7914 }
7915 for(i=0; i<rrnum; i++) {
7916 if(rrlist[i] && rrlist[i]->type == LDNS_RR_TYPE_ZONEMD &&
7917 query_dname_compare(z->name, node->name)==0) {
7918 /* omit RRSIGs over type ZONEMD at apex */
7919 continue;
7920 }
7921 count += (rrlist[i]?rrlist[i]->data->rrsig_count:0);
7922 }
7923 return count;
7924 }
7925
7926 /** allocate sparse rrset data for the number of entries in tepm region */
zonemd_simple_rrsig_allocs(struct regional * region,struct packed_rrset_data * data,size_t count)7927 static int zonemd_simple_rrsig_allocs(struct regional* region,
7928 struct packed_rrset_data* data, size_t count)
7929 {
7930 data->rr_len = regional_alloc(region, sizeof(*data->rr_len) * count);
7931 if(!data->rr_len) {
7932 return 0;
7933 }
7934 data->rr_ttl = regional_alloc(region, sizeof(*data->rr_ttl) * count);
7935 if(!data->rr_ttl) {
7936 return 0;
7937 }
7938 data->rr_data = regional_alloc(region, sizeof(*data->rr_data) * count);
7939 if(!data->rr_data) {
7940 return 0;
7941 }
7942 return 1;
7943 }
7944
7945 /** add the RRSIGs from the rrs in the domain into the data */
add_rrlist_rrsigs_into_data(struct packed_rrset_data * data,size_t * done,struct auth_rrset ** rrlist,size_t rrnum,struct auth_zone * z,struct auth_data * node)7946 static void add_rrlist_rrsigs_into_data(struct packed_rrset_data* data,
7947 size_t* done, struct auth_rrset** rrlist, size_t rrnum,
7948 struct auth_zone* z, struct auth_data* node)
7949 {
7950 size_t i;
7951 for(i=0; i<rrnum; i++) {
7952 size_t j;
7953 if(!rrlist[i])
7954 continue;
7955 if(rrlist[i]->type == LDNS_RR_TYPE_ZONEMD &&
7956 query_dname_compare(z->name, node->name)==0) {
7957 /* omit RRSIGs over type ZONEMD at apex */
7958 continue;
7959 }
7960 for(j = 0; j<rrlist[i]->data->rrsig_count; j++) {
7961 data->rr_len[*done] = rrlist[i]->data->rr_len[rrlist[i]->data->count + j];
7962 data->rr_ttl[*done] = rrlist[i]->data->rr_ttl[rrlist[i]->data->count + j];
7963 /* reference the rdata in the rrset, no need to
7964 * copy it, it is no longer needed at the end of
7965 * the routine */
7966 data->rr_data[*done] = rrlist[i]->data->rr_data[rrlist[i]->data->count + j];
7967 (*done)++;
7968 }
7969 }
7970 }
7971
add_rrset_into_data(struct packed_rrset_data * data,size_t * done,struct auth_rrset * rrset,struct auth_zone * z,struct auth_data * node)7972 static void add_rrset_into_data(struct packed_rrset_data* data,
7973 size_t* done, struct auth_rrset* rrset,
7974 struct auth_zone* z, struct auth_data* node)
7975 {
7976 if(rrset) {
7977 size_t j;
7978 for(j = 0; j<rrset->data->count; j++) {
7979 if(rrsig_rdata_get_type_covered(rrset->data->
7980 rr_data[j], rrset->data->rr_len[j]) ==
7981 LDNS_RR_TYPE_ZONEMD &&
7982 query_dname_compare(z->name, node->name)==0) {
7983 /* omit RRSIGs over type ZONEMD at apex */
7984 continue;
7985 }
7986 data->rr_len[*done] = rrset->data->rr_len[j];
7987 data->rr_ttl[*done] = rrset->data->rr_ttl[j];
7988 /* reference the rdata in the rrset, no need to
7989 * copy it, it is no longer need at the end of
7990 * the routine */
7991 data->rr_data[*done] = rrset->data->rr_data[j];
7992 (*done)++;
7993 }
7994 }
7995 }
7996
7997 /** collate the RRSIGs using the simple scheme */
zonemd_simple_rrsig(struct auth_zone * z,int hashalgo,struct secalgo_hash * h,struct auth_data * node,struct auth_rrset * rrset,struct auth_rrset ** rrlist,size_t rrnum,struct regional * region,struct sldns_buffer * buf,char ** reason)7998 static int zonemd_simple_rrsig(struct auth_zone* z, int hashalgo,
7999 struct secalgo_hash* h, struct auth_data* node,
8000 struct auth_rrset* rrset, struct auth_rrset** rrlist, size_t rrnum,
8001 struct regional* region, struct sldns_buffer* buf, char** reason)
8002 {
8003 /* the rrset pointer can be NULL, this means it is type RRSIG and
8004 * there is no ordinary type RRSIG there. The RRSIGs are stored
8005 * with the RRsets in their data.
8006 *
8007 * The RRset pointer can be nonNULL. This happens if there is
8008 * no RR that is covered by the RRSIG for the domain. Then this
8009 * RRSIG RR is stored in an rrset of type RRSIG. The other RRSIGs
8010 * are stored in the rrset entries for the RRs in the rr list for
8011 * the domain node. We need to collate the rrset's data, if any, and
8012 * the rrlist's rrsigs */
8013 /* if this is the apex, omit RRSIGs that cover type ZONEMD */
8014 /* build rrsig rrset */
8015 size_t done = 0;
8016 struct ub_packed_rrset_key key;
8017 struct packed_rrset_data data;
8018 memset(&key, 0, sizeof(key));
8019 memset(&data, 0, sizeof(data));
8020 key.entry.key = &key;
8021 key.entry.data = &data;
8022 key.rk.dname = node->name;
8023 key.rk.dname_len = node->namelen;
8024 key.rk.type = htons(LDNS_RR_TYPE_RRSIG);
8025 key.rk.rrset_class = htons(z->dclass);
8026 data.count = zonemd_simple_count_rrsig(rrset, rrlist, rrnum, z, node);
8027 if(!zonemd_simple_rrsig_allocs(region, &data, data.count)) {
8028 *reason = "out of memory";
8029 regional_free_all(region);
8030 return 0;
8031 }
8032 /* all the RRSIGs stored in the other rrsets for this domain node */
8033 add_rrlist_rrsigs_into_data(&data, &done, rrlist, rrnum, z, node);
8034 /* plus the RRSIGs stored in an rrset of type RRSIG for this node */
8035 add_rrset_into_data(&data, &done, rrset, z, node);
8036
8037 /* canonicalize */
8038 if(!rrset_canonicalize_to_buffer(region, buf, &key)) {
8039 *reason = "out of memory";
8040 regional_free_all(region);
8041 return 0;
8042 }
8043 regional_free_all(region);
8044
8045 /* hash */
8046 if(!zonemd_digest_update(hashalgo, h, sldns_buffer_begin(buf),
8047 sldns_buffer_limit(buf), reason)) {
8048 return 0;
8049 }
8050 return 1;
8051 }
8052
8053 /** collate a domain's rrsets using the simple scheme */
zonemd_simple_domain(struct auth_zone * z,int hashalgo,struct secalgo_hash * h,struct auth_data * node,struct regional * region,struct sldns_buffer * buf,char ** reason)8054 static int zonemd_simple_domain(struct auth_zone* z, int hashalgo,
8055 struct secalgo_hash* h, struct auth_data* node,
8056 struct regional* region, struct sldns_buffer* buf, char** reason)
8057 {
8058 const size_t rrlistsize = 65536;
8059 struct auth_rrset* rrlist[rrlistsize];
8060 size_t i, rrnum = 0;
8061 /* see if the domain is out of scope, the zone origin,
8062 * that would be omitted */
8063 if(!dname_subdomain_c(node->name, z->name))
8064 return 1; /* continue */
8065 /* loop over the rrsets in ascending order. */
8066 rrnum = authdata_rrsets_to_list(rrlist, rrlistsize, node->rrsets);
8067 addrrsigtype_if_needed(rrlist, rrlistsize, &rrnum, node);
8068 qsort(rrlist, rrnum, sizeof(*rrlist), rrlist_compare);
8069 for(i=0; i<rrnum; i++) {
8070 if(rrlist[i] && rrlist[i]->type == LDNS_RR_TYPE_ZONEMD &&
8071 query_dname_compare(z->name, node->name) == 0) {
8072 /* omit type ZONEMD at apex */
8073 continue;
8074 }
8075 if(rrlist[i] == NULL || rrlist[i]->type ==
8076 LDNS_RR_TYPE_RRSIG) {
8077 if(!zonemd_simple_rrsig(z, hashalgo, h, node,
8078 rrlist[i], rrlist, rrnum, region, buf, reason))
8079 return 0;
8080 } else if(!zonemd_simple_rrset(z, hashalgo, h, node,
8081 rrlist[i], region, buf, reason)) {
8082 return 0;
8083 }
8084 }
8085 return 1;
8086 }
8087
8088 /** collate the zone using the simple scheme */
zonemd_simple_collate(struct auth_zone * z,int hashalgo,struct secalgo_hash * h,struct regional * region,struct sldns_buffer * buf,char ** reason)8089 static int zonemd_simple_collate(struct auth_zone* z, int hashalgo,
8090 struct secalgo_hash* h, struct regional* region,
8091 struct sldns_buffer* buf, char** reason)
8092 {
8093 /* our tree is sorted in canonical order, so we can just loop over
8094 * the tree */
8095 struct auth_data* n;
8096 RBTREE_FOR(n, struct auth_data*, &z->data) {
8097 if(!zonemd_simple_domain(z, hashalgo, h, n, region, buf,
8098 reason))
8099 return 0;
8100 }
8101 return 1;
8102 }
8103
auth_zone_generate_zonemd_hash(struct auth_zone * z,int scheme,int hashalgo,uint8_t * hash,size_t hashlen,size_t * resultlen,struct regional * region,struct sldns_buffer * buf,char ** reason)8104 int auth_zone_generate_zonemd_hash(struct auth_zone* z, int scheme,
8105 int hashalgo, uint8_t* hash, size_t hashlen, size_t* resultlen,
8106 struct regional* region, struct sldns_buffer* buf, char** reason)
8107 {
8108 struct secalgo_hash* h = zonemd_digest_init(hashalgo, reason);
8109 if(!h) {
8110 if(!*reason)
8111 *reason = "digest init fail";
8112 return 0;
8113 }
8114 if(scheme == ZONEMD_SCHEME_SIMPLE) {
8115 if(!zonemd_simple_collate(z, hashalgo, h, region, buf, reason)) {
8116 if(!*reason) *reason = "scheme simple collate fail";
8117 secalgo_hash_delete(h);
8118 return 0;
8119 }
8120 }
8121 if(!zonemd_digest_finish(hashalgo, h, hash, hashlen, resultlen,
8122 reason)) {
8123 secalgo_hash_delete(h);
8124 *reason = "digest finish fail";
8125 return 0;
8126 }
8127 secalgo_hash_delete(h);
8128 return 1;
8129 }
8130
auth_zone_generate_zonemd_check(struct auth_zone * z,int scheme,int hashalgo,uint8_t * hash,size_t hashlen,struct regional * region,struct sldns_buffer * buf,char ** reason)8131 int auth_zone_generate_zonemd_check(struct auth_zone* z, int scheme,
8132 int hashalgo, uint8_t* hash, size_t hashlen, struct regional* region,
8133 struct sldns_buffer* buf, char** reason)
8134 {
8135 uint8_t gen[512];
8136 size_t genlen = 0;
8137 *reason = NULL;
8138 if(!zonemd_hashalgo_supported(hashalgo)) {
8139 /* allow it */
8140 *reason = "unsupported algorithm";
8141 return 1;
8142 }
8143 if(!zonemd_scheme_supported(scheme)) {
8144 /* allow it */
8145 *reason = "unsupported scheme";
8146 return 1;
8147 }
8148 if(hashlen < 12) {
8149 /* the ZONEMD draft requires digests to fail if too small */
8150 *reason = "digest length too small, less than 12";
8151 return 0;
8152 }
8153 /* generate digest */
8154 if(!auth_zone_generate_zonemd_hash(z, scheme, hashalgo, gen,
8155 sizeof(gen), &genlen, region, buf, reason)) {
8156 /* reason filled in by zonemd hash routine */
8157 return 0;
8158 }
8159 /* check digest length */
8160 if(hashlen != genlen) {
8161 *reason = "incorrect digest length";
8162 if(verbosity >= VERB_ALGO) {
8163 verbose(VERB_ALGO, "zonemd scheme=%d hashalgo=%d",
8164 scheme, hashalgo);
8165 log_hex("ZONEMD should be ", gen, genlen);
8166 log_hex("ZONEMD to check is", hash, hashlen);
8167 }
8168 return 0;
8169 }
8170 /* check digest */
8171 if(memcmp(hash, gen, genlen) != 0) {
8172 *reason = "incorrect digest";
8173 if(verbosity >= VERB_ALGO) {
8174 verbose(VERB_ALGO, "zonemd scheme=%d hashalgo=%d",
8175 scheme, hashalgo);
8176 log_hex("ZONEMD should be ", gen, genlen);
8177 log_hex("ZONEMD to check is", hash, hashlen);
8178 }
8179 return 0;
8180 }
8181 return 1;
8182 }
8183
8184 /** log auth zone message with zone name in front. */
8185 static void auth_zone_log(uint8_t* name, enum verbosity_value level,
8186 const char* format, ...) ATTR_FORMAT(printf, 3, 4);
auth_zone_log(uint8_t * name,enum verbosity_value level,const char * format,...)8187 static void auth_zone_log(uint8_t* name, enum verbosity_value level,
8188 const char* format, ...)
8189 {
8190 va_list args;
8191 va_start(args, format);
8192 if(verbosity >= level) {
8193 char str[LDNS_MAX_DOMAINLEN];
8194 char msg[MAXSYSLOGMSGLEN];
8195 dname_str(name, str);
8196 vsnprintf(msg, sizeof(msg), format, args);
8197 verbose(level, "auth zone %s %s", str, msg);
8198 }
8199 va_end(args);
8200 }
8201
8202 /** ZONEMD, dnssec verify the rrset with the dnskey */
zonemd_dnssec_verify_rrset(struct auth_zone * z,struct module_env * env,struct module_stack * mods,struct ub_packed_rrset_key * dnskey,struct auth_data * node,struct auth_rrset * rrset,char ** why_bogus,uint8_t * sigalg,char * reasonbuf,size_t reasonlen)8203 static int zonemd_dnssec_verify_rrset(struct auth_zone* z,
8204 struct module_env* env, struct module_stack* mods,
8205 struct ub_packed_rrset_key* dnskey, struct auth_data* node,
8206 struct auth_rrset* rrset, char** why_bogus, uint8_t* sigalg,
8207 char* reasonbuf, size_t reasonlen)
8208 {
8209 struct ub_packed_rrset_key pk;
8210 enum sec_status sec;
8211 struct val_env* ve;
8212 int m;
8213 int verified = 0;
8214 m = modstack_find(mods, "validator");
8215 if(m == -1) {
8216 auth_zone_log(z->name, VERB_ALGO, "zonemd dnssec verify: have "
8217 "DNSKEY chain of trust, but no validator module");
8218 return 0;
8219 }
8220 ve = (struct val_env*)env->modinfo[m];
8221
8222 memset(&pk, 0, sizeof(pk));
8223 pk.entry.key = &pk;
8224 pk.entry.data = rrset->data;
8225 pk.rk.dname = node->name;
8226 pk.rk.dname_len = node->namelen;
8227 pk.rk.type = htons(rrset->type);
8228 pk.rk.rrset_class = htons(z->dclass);
8229 if(verbosity >= VERB_ALGO) {
8230 char typestr[32];
8231 typestr[0]=0;
8232 sldns_wire2str_type_buf(rrset->type, typestr, sizeof(typestr));
8233 auth_zone_log(z->name, VERB_ALGO,
8234 "zonemd: verify %s RRset with DNSKEY", typestr);
8235 }
8236 sec = dnskeyset_verify_rrset(env, ve, &pk, dnskey, sigalg, why_bogus, NULL,
8237 LDNS_SECTION_ANSWER, NULL, NULL, &verified, reasonbuf,
8238 reasonlen);
8239 if(sec == sec_status_secure) {
8240 return 1;
8241 }
8242 if(why_bogus)
8243 auth_zone_log(z->name, VERB_ALGO, "DNSSEC verify was bogus: %s", *why_bogus);
8244 return 0;
8245 }
8246
8247 /** check for nsec3, the RR with params equal, if bitmap has the type */
nsec3_of_param_has_type(struct auth_rrset * nsec3,int algo,size_t iter,uint8_t * salt,size_t saltlen,uint16_t rrtype)8248 static int nsec3_of_param_has_type(struct auth_rrset* nsec3, int algo,
8249 size_t iter, uint8_t* salt, size_t saltlen, uint16_t rrtype)
8250 {
8251 int i, count = (int)nsec3->data->count;
8252 struct ub_packed_rrset_key pk;
8253 memset(&pk, 0, sizeof(pk));
8254 pk.entry.data = nsec3->data;
8255 for(i=0; i<count; i++) {
8256 int rralgo;
8257 size_t rriter, rrsaltlen;
8258 uint8_t* rrsalt;
8259 if(!nsec3_get_params(&pk, i, &rralgo, &rriter, &rrsalt,
8260 &rrsaltlen))
8261 continue; /* no parameters, malformed */
8262 if(rralgo != algo || rriter != iter || rrsaltlen != saltlen)
8263 continue; /* different parameters */
8264 if(saltlen != 0) {
8265 if(rrsalt == NULL || salt == NULL)
8266 continue;
8267 if(memcmp(rrsalt, salt, saltlen) != 0)
8268 continue; /* different salt parameters */
8269 }
8270 if(nsec3_has_type(&pk, i, rrtype))
8271 return 1;
8272 }
8273 return 0;
8274 }
8275
8276 /** Verify the absence of ZONEMD with DNSSEC by checking NSEC, NSEC3 type flag.
8277 * return false on failure, reason contains description of failure. */
zonemd_check_dnssec_absence(struct auth_zone * z,struct module_env * env,struct module_stack * mods,struct ub_packed_rrset_key * dnskey,struct auth_data * apex,char ** reason,char ** why_bogus,uint8_t * sigalg,char * reasonbuf,size_t reasonlen)8278 static int zonemd_check_dnssec_absence(struct auth_zone* z,
8279 struct module_env* env, struct module_stack* mods,
8280 struct ub_packed_rrset_key* dnskey, struct auth_data* apex,
8281 char** reason, char** why_bogus, uint8_t* sigalg, char* reasonbuf,
8282 size_t reasonlen)
8283 {
8284 struct auth_rrset* nsec = NULL;
8285 if(!apex) {
8286 *reason = "zone has no apex domain but ZONEMD missing";
8287 return 0;
8288 }
8289 nsec = az_domain_rrset(apex, LDNS_RR_TYPE_NSEC);
8290 if(nsec) {
8291 struct ub_packed_rrset_key pk;
8292 /* dnssec verify the NSEC */
8293 if(!zonemd_dnssec_verify_rrset(z, env, mods, dnskey, apex,
8294 nsec, why_bogus, sigalg, reasonbuf, reasonlen)) {
8295 *reason = "DNSSEC verify failed for NSEC RRset";
8296 return 0;
8297 }
8298 /* check type bitmap */
8299 memset(&pk, 0, sizeof(pk));
8300 pk.entry.data = nsec->data;
8301 if(nsec_has_type(&pk, LDNS_RR_TYPE_ZONEMD)) {
8302 *reason = "DNSSEC NSEC bitmap says type ZONEMD exists";
8303 return 0;
8304 }
8305 auth_zone_log(z->name, VERB_ALGO, "zonemd DNSSEC NSEC verification of absence of ZONEMD secure");
8306 } else {
8307 /* NSEC3 perhaps ? */
8308 int algo;
8309 size_t iter, saltlen;
8310 uint8_t* salt;
8311 struct auth_rrset* nsec3param = az_domain_rrset(apex,
8312 LDNS_RR_TYPE_NSEC3PARAM);
8313 struct auth_data* match;
8314 struct auth_rrset* nsec3;
8315 if(!nsec3param) {
8316 *reason = "zone has no NSEC information but ZONEMD missing";
8317 return 0;
8318 }
8319 if(!az_nsec3_param(z, &algo, &iter, &salt, &saltlen)) {
8320 *reason = "zone has no NSEC information but ZONEMD missing";
8321 return 0;
8322 }
8323 /* find the NSEC3 record */
8324 match = az_nsec3_find_exact(z, z->name, z->namelen, algo,
8325 iter, salt, saltlen);
8326 if(!match) {
8327 *reason = "zone has no NSEC3 domain for the apex but ZONEMD missing";
8328 return 0;
8329 }
8330 nsec3 = az_domain_rrset(match, LDNS_RR_TYPE_NSEC3);
8331 if(!nsec3) {
8332 *reason = "zone has no NSEC3 RRset for the apex but ZONEMD missing";
8333 return 0;
8334 }
8335 /* dnssec verify the NSEC3 */
8336 if(!zonemd_dnssec_verify_rrset(z, env, mods, dnskey, match,
8337 nsec3, why_bogus, sigalg, reasonbuf, reasonlen)) {
8338 *reason = "DNSSEC verify failed for NSEC3 RRset";
8339 return 0;
8340 }
8341 /* check type bitmap */
8342 if(nsec3_of_param_has_type(nsec3, algo, iter, salt, saltlen,
8343 LDNS_RR_TYPE_ZONEMD)) {
8344 *reason = "DNSSEC NSEC3 bitmap says type ZONEMD exists";
8345 return 0;
8346 }
8347 auth_zone_log(z->name, VERB_ALGO, "zonemd DNSSEC NSEC3 verification of absence of ZONEMD secure");
8348 }
8349
8350 return 1;
8351 }
8352
8353 /** Verify the SOA and ZONEMD DNSSEC signatures.
8354 * return false on failure, reason contains description of failure. */
zonemd_check_dnssec_soazonemd(struct auth_zone * z,struct module_env * env,struct module_stack * mods,struct ub_packed_rrset_key * dnskey,struct auth_data * apex,struct auth_rrset * zonemd_rrset,char ** reason,char ** why_bogus,uint8_t * sigalg,char * reasonbuf,size_t reasonlen)8355 static int zonemd_check_dnssec_soazonemd(struct auth_zone* z,
8356 struct module_env* env, struct module_stack* mods,
8357 struct ub_packed_rrset_key* dnskey, struct auth_data* apex,
8358 struct auth_rrset* zonemd_rrset, char** reason, char** why_bogus,
8359 uint8_t* sigalg, char* reasonbuf, size_t reasonlen)
8360 {
8361 struct auth_rrset* soa;
8362 if(!apex) {
8363 *reason = "zone has no apex domain";
8364 return 0;
8365 }
8366 soa = az_domain_rrset(apex, LDNS_RR_TYPE_SOA);
8367 if(!soa) {
8368 *reason = "zone has no SOA RRset";
8369 return 0;
8370 }
8371 if(!zonemd_dnssec_verify_rrset(z, env, mods, dnskey, apex, soa,
8372 why_bogus, sigalg, reasonbuf, reasonlen)) {
8373 *reason = "DNSSEC verify failed for SOA RRset";
8374 return 0;
8375 }
8376 if(!zonemd_dnssec_verify_rrset(z, env, mods, dnskey, apex,
8377 zonemd_rrset, why_bogus, sigalg, reasonbuf, reasonlen)) {
8378 *reason = "DNSSEC verify failed for ZONEMD RRset";
8379 return 0;
8380 }
8381 auth_zone_log(z->name, VERB_ALGO, "zonemd DNSSEC verification of SOA and ZONEMD RRsets secure");
8382 return 1;
8383 }
8384
8385 /**
8386 * Fail the ZONEMD verification.
8387 * @param z: auth zone that fails.
8388 * @param env: environment with config, to ignore failure or not.
8389 * @param reason: failure string description.
8390 * @param why_bogus: failure string for DNSSEC verification failure.
8391 * @param result: strdup result in here if not NULL.
8392 */
auth_zone_zonemd_fail(struct auth_zone * z,struct module_env * env,char * reason,char * why_bogus,char ** result)8393 static void auth_zone_zonemd_fail(struct auth_zone* z, struct module_env* env,
8394 char* reason, char* why_bogus, char** result)
8395 {
8396 char zstr[LDNS_MAX_DOMAINLEN];
8397 /* if fail: log reason, and depending on config also take action
8398 * and drop the zone, eg. it is gone from memory, set zone_expired */
8399 dname_str(z->name, zstr);
8400 if(!reason) reason = "verification failed";
8401 if(result) {
8402 if(why_bogus) {
8403 char res[1024];
8404 snprintf(res, sizeof(res), "%s: %s", reason,
8405 why_bogus);
8406 *result = strdup(res);
8407 } else {
8408 *result = strdup(reason);
8409 }
8410 if(!*result) log_err("out of memory");
8411 } else {
8412 log_warn("auth zone %s: ZONEMD verification failed: %s", zstr, reason);
8413 }
8414
8415 if(env->cfg->zonemd_permissive_mode) {
8416 verbose(VERB_ALGO, "zonemd-permissive-mode enabled, "
8417 "not blocking zone %s", zstr);
8418 return;
8419 }
8420
8421 /* expired means the zone gives servfail and is not used by
8422 * lookup if fallback_enabled*/
8423 z->zone_expired = 1;
8424 }
8425
8426 /**
8427 * Verify the zonemd with DNSSEC and hash check, with given key.
8428 * @param z: auth zone.
8429 * @param env: environment with config and temp buffers.
8430 * @param mods: module stack with validator env for verification.
8431 * @param dnskey: dnskey that we can use, or NULL. If nonnull, the key
8432 * has been verified and is the start of the chain of trust.
8433 * @param is_insecure: if true, the dnskey is not used, the zone is insecure.
8434 * And dnssec is not used. It is DNSSEC secure insecure or not under
8435 * a trust anchor.
8436 * @param sigalg: if nonNULL provide algorithm downgrade protection.
8437 * Otherwise one algorithm is enough. Must have space of ALGO_NEEDS_MAX+1.
8438 * @param result: if not NULL result reason copied here.
8439 */
8440 static void
auth_zone_verify_zonemd_with_key(struct auth_zone * z,struct module_env * env,struct module_stack * mods,struct ub_packed_rrset_key * dnskey,int is_insecure,char ** result,uint8_t * sigalg)8441 auth_zone_verify_zonemd_with_key(struct auth_zone* z, struct module_env* env,
8442 struct module_stack* mods, struct ub_packed_rrset_key* dnskey,
8443 int is_insecure, char** result, uint8_t* sigalg)
8444 {
8445 char reasonbuf[256];
8446 char* reason = NULL, *why_bogus = NULL;
8447 struct auth_data* apex = NULL;
8448 struct auth_rrset* zonemd_rrset = NULL;
8449 int zonemd_absent = 0, zonemd_absence_dnssecok = 0;
8450
8451 /* see if ZONEMD is present or absent. */
8452 apex = az_find_name(z, z->name, z->namelen);
8453 if(!apex) {
8454 zonemd_absent = 1;
8455 } else {
8456 zonemd_rrset = az_domain_rrset(apex, LDNS_RR_TYPE_ZONEMD);
8457 if(!zonemd_rrset || zonemd_rrset->data->count==0) {
8458 zonemd_absent = 1;
8459 zonemd_rrset = NULL;
8460 }
8461 }
8462
8463 /* if no DNSSEC, done. */
8464 /* if no ZONEMD, and DNSSEC, use DNSKEY to verify NSEC or NSEC3 for
8465 * zone apex. Check ZONEMD bit is turned off or else fail */
8466 /* if ZONEMD, and DNSSEC, check DNSSEC signature on SOA and ZONEMD,
8467 * or else fail */
8468 if(!dnskey && !is_insecure) {
8469 auth_zone_zonemd_fail(z, env, "DNSKEY missing", NULL, result);
8470 return;
8471 } else if(!zonemd_rrset && dnskey && !is_insecure) {
8472 /* fetch, DNSSEC verify, and check NSEC/NSEC3 */
8473 if(!zonemd_check_dnssec_absence(z, env, mods, dnskey, apex,
8474 &reason, &why_bogus, sigalg, reasonbuf,
8475 sizeof(reasonbuf))) {
8476 auth_zone_zonemd_fail(z, env, reason, why_bogus, result);
8477 return;
8478 }
8479 zonemd_absence_dnssecok = 1;
8480 } else if(zonemd_rrset && dnskey && !is_insecure) {
8481 /* check DNSSEC verify of SOA and ZONEMD */
8482 if(!zonemd_check_dnssec_soazonemd(z, env, mods, dnskey, apex,
8483 zonemd_rrset, &reason, &why_bogus, sigalg, reasonbuf,
8484 sizeof(reasonbuf))) {
8485 auth_zone_zonemd_fail(z, env, reason, why_bogus, result);
8486 return;
8487 }
8488 }
8489
8490 if(zonemd_absent && z->zonemd_reject_absence) {
8491 auth_zone_zonemd_fail(z, env, "ZONEMD absent and that is not allowed by config", NULL, result);
8492 return;
8493 }
8494 if(zonemd_absent && zonemd_absence_dnssecok) {
8495 auth_zone_log(z->name, VERB_ALGO, "DNSSEC verified nonexistence of ZONEMD");
8496 if(result) {
8497 *result = strdup("DNSSEC verified nonexistence of ZONEMD");
8498 if(!*result) log_err("out of memory");
8499 }
8500 return;
8501 }
8502 if(zonemd_absent) {
8503 auth_zone_log(z->name, VERB_ALGO, "no ZONEMD present");
8504 if(result) {
8505 *result = strdup("no ZONEMD present");
8506 if(!*result) log_err("out of memory");
8507 }
8508 return;
8509 }
8510
8511 /* check ZONEMD checksum and report or else fail. */
8512 if(!auth_zone_zonemd_check_hash(z, env, &reason)) {
8513 auth_zone_zonemd_fail(z, env, reason, NULL, result);
8514 return;
8515 }
8516
8517 /* success! log the success */
8518 if(reason)
8519 auth_zone_log(z->name, VERB_ALGO, "ZONEMD %s", reason);
8520 else auth_zone_log(z->name, VERB_ALGO, "ZONEMD verification successful");
8521 if(result) {
8522 if(reason)
8523 *result = strdup(reason);
8524 else *result = strdup("ZONEMD verification successful");
8525 if(!*result) log_err("out of memory");
8526 }
8527 }
8528
8529 /**
8530 * verify the zone DNSKEY rrset from the trust anchor
8531 * This is possible because the anchor is for the zone itself, and can
8532 * thus apply straight to the zone DNSKEY set.
8533 * @param z: the auth zone.
8534 * @param env: environment with time and temp buffers.
8535 * @param mods: module stack for validator environment for dnssec validation.
8536 * @param anchor: trust anchor to use
8537 * @param is_insecure: returned, true if the zone is securely insecure.
8538 * @param why_bogus: if the routine fails, returns the failure reason.
8539 * @param keystorage: where to store the ub_packed_rrset_key that is created
8540 * on success. A pointer to it is returned on success.
8541 * @param reasonbuf: buffer to use for fail reason string print.
8542 * @param reasonlen: length of reasonbuf.
8543 * @return the dnskey RRset, reference to zone data and keystorage, or
8544 * NULL on failure.
8545 */
8546 static struct ub_packed_rrset_key*
zonemd_get_dnskey_from_anchor(struct auth_zone * z,struct module_env * env,struct module_stack * mods,struct trust_anchor * anchor,int * is_insecure,char ** why_bogus,struct ub_packed_rrset_key * keystorage,char * reasonbuf,size_t reasonlen)8547 zonemd_get_dnskey_from_anchor(struct auth_zone* z, struct module_env* env,
8548 struct module_stack* mods, struct trust_anchor* anchor,
8549 int* is_insecure, char** why_bogus,
8550 struct ub_packed_rrset_key* keystorage, char* reasonbuf,
8551 size_t reasonlen)
8552 {
8553 struct auth_data* apex;
8554 struct auth_rrset* dnskey_rrset;
8555 enum sec_status sec;
8556 struct val_env* ve;
8557 int m;
8558
8559 apex = az_find_name(z, z->name, z->namelen);
8560 if(!apex) {
8561 *why_bogus = "have trust anchor, but zone has no apex domain for DNSKEY";
8562 return 0;
8563 }
8564 dnskey_rrset = az_domain_rrset(apex, LDNS_RR_TYPE_DNSKEY);
8565 if(!dnskey_rrset || dnskey_rrset->data->count==0) {
8566 *why_bogus = "have trust anchor, but zone has no DNSKEY";
8567 return 0;
8568 }
8569
8570 m = modstack_find(mods, "validator");
8571 if(m == -1) {
8572 *why_bogus = "have trust anchor, but no validator module";
8573 return 0;
8574 }
8575 ve = (struct val_env*)env->modinfo[m];
8576
8577 memset(keystorage, 0, sizeof(*keystorage));
8578 keystorage->entry.key = keystorage;
8579 keystorage->entry.data = dnskey_rrset->data;
8580 keystorage->rk.dname = apex->name;
8581 keystorage->rk.dname_len = apex->namelen;
8582 keystorage->rk.type = htons(LDNS_RR_TYPE_DNSKEY);
8583 keystorage->rk.rrset_class = htons(z->dclass);
8584 auth_zone_log(z->name, VERB_QUERY,
8585 "zonemd: verify DNSKEY RRset with trust anchor");
8586 sec = val_verify_DNSKEY_with_TA(env, ve, keystorage, anchor->ds_rrset,
8587 anchor->dnskey_rrset, NULL, why_bogus, NULL, NULL, NULL,
8588 reasonbuf, reasonlen);
8589 regional_free_all(env->scratch);
8590 if(sec == sec_status_secure) {
8591 /* success */
8592 *is_insecure = 0;
8593 return keystorage;
8594 } else if(sec == sec_status_insecure) {
8595 /* insecure */
8596 *is_insecure = 1;
8597 } else {
8598 /* bogus */
8599 *is_insecure = 0;
8600 auth_zone_log(z->name, VERB_ALGO,
8601 "zonemd: verify DNSKEY RRset with trust anchor failed: %s", *why_bogus);
8602 }
8603 return NULL;
8604 }
8605
8606 /** verify the DNSKEY from the zone with looked up DS record */
8607 static struct ub_packed_rrset_key*
auth_zone_verify_zonemd_key_with_ds(struct auth_zone * z,struct module_env * env,struct module_stack * mods,struct ub_packed_rrset_key * ds,int * is_insecure,char ** why_bogus,struct ub_packed_rrset_key * keystorage,uint8_t * sigalg,char * reasonbuf,size_t reasonlen)8608 auth_zone_verify_zonemd_key_with_ds(struct auth_zone* z,
8609 struct module_env* env, struct module_stack* mods,
8610 struct ub_packed_rrset_key* ds, int* is_insecure, char** why_bogus,
8611 struct ub_packed_rrset_key* keystorage, uint8_t* sigalg,
8612 char* reasonbuf, size_t reasonlen)
8613 {
8614 struct auth_data* apex;
8615 struct auth_rrset* dnskey_rrset;
8616 enum sec_status sec;
8617 struct val_env* ve;
8618 int m;
8619
8620 /* fetch DNSKEY from zone data */
8621 apex = az_find_name(z, z->name, z->namelen);
8622 if(!apex) {
8623 *why_bogus = "in verifywithDS, zone has no apex";
8624 return NULL;
8625 }
8626 dnskey_rrset = az_domain_rrset(apex, LDNS_RR_TYPE_DNSKEY);
8627 if(!dnskey_rrset || dnskey_rrset->data->count==0) {
8628 *why_bogus = "in verifywithDS, zone has no DNSKEY";
8629 return NULL;
8630 }
8631
8632 m = modstack_find(mods, "validator");
8633 if(m == -1) {
8634 *why_bogus = "in verifywithDS, have no validator module";
8635 return NULL;
8636 }
8637 ve = (struct val_env*)env->modinfo[m];
8638
8639 memset(keystorage, 0, sizeof(*keystorage));
8640 keystorage->entry.key = keystorage;
8641 keystorage->entry.data = dnskey_rrset->data;
8642 keystorage->rk.dname = apex->name;
8643 keystorage->rk.dname_len = apex->namelen;
8644 keystorage->rk.type = htons(LDNS_RR_TYPE_DNSKEY);
8645 keystorage->rk.rrset_class = htons(z->dclass);
8646 auth_zone_log(z->name, VERB_QUERY, "zonemd: verify zone DNSKEY with DS");
8647 sec = val_verify_DNSKEY_with_DS(env, ve, keystorage, ds, sigalg,
8648 why_bogus, NULL, NULL, NULL, reasonbuf, reasonlen);
8649 regional_free_all(env->scratch);
8650 if(sec == sec_status_secure) {
8651 /* success */
8652 return keystorage;
8653 } else if(sec == sec_status_insecure) {
8654 /* insecure */
8655 *is_insecure = 1;
8656 } else {
8657 /* bogus */
8658 *is_insecure = 0;
8659 if(*why_bogus == NULL)
8660 *why_bogus = "verify failed";
8661 auth_zone_log(z->name, VERB_ALGO,
8662 "zonemd: verify DNSKEY RRset with DS failed: %s",
8663 *why_bogus);
8664 }
8665 return NULL;
8666 }
8667
8668 /** callback for ZONEMD lookup of DNSKEY */
auth_zonemd_dnskey_lookup_callback(void * arg,int rcode,sldns_buffer * buf,enum sec_status sec,char * why_bogus,int ATTR_UNUSED (was_ratelimited))8669 void auth_zonemd_dnskey_lookup_callback(void* arg, int rcode, sldns_buffer* buf,
8670 enum sec_status sec, char* why_bogus, int ATTR_UNUSED(was_ratelimited))
8671 {
8672 struct auth_zone* z = (struct auth_zone*)arg;
8673 struct module_env* env;
8674 char reasonbuf[256];
8675 char* reason = NULL, *ds_bogus = NULL, *typestr="DNSKEY";
8676 struct ub_packed_rrset_key* dnskey = NULL, *ds = NULL;
8677 int is_insecure = 0, downprot, perform_write = 0;
8678 struct ub_packed_rrset_key keystorage;
8679 uint8_t sigalg[ALGO_NEEDS_MAX+1];
8680 uint8_t bakname[LDNS_MAX_DOMAINLEN];
8681 size_t baknamelen;
8682 uint16_t bakdclass;
8683 struct auth_chunk* chunk_list = NULL;
8684
8685 lock_rw_wrlock(&z->lock);
8686 env = z->zonemd_callback_env;
8687 /* release the env variable so another worker can pick up the
8688 * ZONEMD verification task if it wants to */
8689 z->zonemd_callback_env = NULL;
8690 if(!env || env->outnet->want_to_quit || z->zone_deleted) {
8691 lock_rw_unlock(&z->lock);
8692 return; /* stop on quit */
8693 }
8694 if(z->zonemd_callback_qtype == LDNS_RR_TYPE_DS)
8695 typestr = "DS";
8696 downprot = env->cfg->harden_algo_downgrade;
8697
8698 /* process result */
8699 if(sec == sec_status_bogus) {
8700 reason = why_bogus;
8701 if(!reason) {
8702 if(z->zonemd_callback_qtype == LDNS_RR_TYPE_DNSKEY)
8703 reason = "lookup of DNSKEY was bogus";
8704 else reason = "lookup of DS was bogus";
8705 }
8706 auth_zone_log(z->name, VERB_ALGO,
8707 "zonemd lookup of %s was bogus: %s", typestr, reason);
8708 } else if(rcode == LDNS_RCODE_NOERROR) {
8709 uint16_t wanted_qtype = z->zonemd_callback_qtype;
8710 struct regional* temp = env->scratch;
8711 struct query_info rq;
8712 struct reply_info* rep;
8713 memset(&rq, 0, sizeof(rq));
8714 rep = parse_reply_in_temp_region(buf, temp, &rq);
8715 if(rep && rq.qtype == wanted_qtype &&
8716 query_dname_compare(z->name, rq.qname) == 0 &&
8717 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NOERROR) {
8718 /* parsed successfully */
8719 struct ub_packed_rrset_key* answer =
8720 reply_find_answer_rrset(&rq, rep);
8721 if(answer && sec == sec_status_secure) {
8722 if(z->zonemd_callback_qtype == LDNS_RR_TYPE_DNSKEY)
8723 dnskey = answer;
8724 else ds = answer;
8725 auth_zone_log(z->name, VERB_ALGO,
8726 "zonemd lookup of %s was secure", typestr);
8727 } else if(sec == sec_status_secure && !answer) {
8728 is_insecure = 1;
8729 auth_zone_log(z->name, VERB_ALGO,
8730 "zonemd lookup of %s has no content, but is secure, treat as insecure", typestr);
8731 } else if(sec == sec_status_insecure) {
8732 is_insecure = 1;
8733 auth_zone_log(z->name, VERB_ALGO,
8734 "zonemd lookup of %s was insecure", typestr);
8735 } else if(sec == sec_status_indeterminate) {
8736 is_insecure = 1;
8737 auth_zone_log(z->name, VERB_ALGO,
8738 "zonemd lookup of %s was indeterminate, treat as insecure", typestr);
8739 } else {
8740 auth_zone_log(z->name, VERB_ALGO,
8741 "zonemd lookup of %s has nodata", typestr);
8742 if(z->zonemd_callback_qtype == LDNS_RR_TYPE_DNSKEY)
8743 reason = "lookup of DNSKEY has nodata";
8744 else reason = "lookup of DS has nodata";
8745 }
8746 } else if(rep && rq.qtype == wanted_qtype &&
8747 query_dname_compare(z->name, rq.qname) == 0 &&
8748 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NXDOMAIN &&
8749 sec == sec_status_secure) {
8750 /* secure nxdomain, so the zone is like some RPZ zone
8751 * that does not exist in the wider internet, with
8752 * a secure nxdomain answer outside of it. So we
8753 * treat the zonemd zone without a dnssec chain of
8754 * trust, as insecure. */
8755 is_insecure = 1;
8756 auth_zone_log(z->name, VERB_ALGO,
8757 "zonemd lookup of %s was secure NXDOMAIN, treat as insecure", typestr);
8758 } else if(rep && rq.qtype == wanted_qtype &&
8759 query_dname_compare(z->name, rq.qname) == 0 &&
8760 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NXDOMAIN &&
8761 sec == sec_status_insecure) {
8762 is_insecure = 1;
8763 auth_zone_log(z->name, VERB_ALGO,
8764 "zonemd lookup of %s was insecure NXDOMAIN, treat as insecure", typestr);
8765 } else if(rep && rq.qtype == wanted_qtype &&
8766 query_dname_compare(z->name, rq.qname) == 0 &&
8767 FLAGS_GET_RCODE(rep->flags) == LDNS_RCODE_NXDOMAIN &&
8768 sec == sec_status_indeterminate) {
8769 is_insecure = 1;
8770 auth_zone_log(z->name, VERB_ALGO,
8771 "zonemd lookup of %s was indeterminate NXDOMAIN, treat as insecure", typestr);
8772 } else {
8773 auth_zone_log(z->name, VERB_ALGO,
8774 "zonemd lookup of %s has no answer", typestr);
8775 if(z->zonemd_callback_qtype == LDNS_RR_TYPE_DNSKEY)
8776 reason = "lookup of DNSKEY has no answer";
8777 else reason = "lookup of DS has no answer";
8778 }
8779 } else {
8780 auth_zone_log(z->name, VERB_ALGO,
8781 "zonemd lookup of %s failed", typestr);
8782 if(z->zonemd_callback_qtype == LDNS_RR_TYPE_DNSKEY)
8783 reason = "lookup of DNSKEY failed";
8784 else reason = "lookup of DS failed";
8785 }
8786
8787 if(!reason && !is_insecure && !dnskey && ds) {
8788 dnskey = auth_zone_verify_zonemd_key_with_ds(z, env,
8789 &env->mesh->mods, ds, &is_insecure, &ds_bogus,
8790 &keystorage, downprot?sigalg:NULL, reasonbuf,
8791 sizeof(reasonbuf));
8792 if(!dnskey && !is_insecure && !reason)
8793 reason = "DNSKEY verify with DS failed";
8794 }
8795
8796 if(reason) {
8797 auth_zone_zonemd_fail(z, env, reason, ds_bogus, NULL);
8798 lock_rw_unlock(&z->lock);
8799 regional_free_all(env->scratch);
8800 return;
8801 }
8802
8803 auth_zone_verify_zonemd_with_key(z, env, &env->mesh->mods, dnskey,
8804 is_insecure, NULL, downprot?sigalg:NULL);
8805 regional_free_all(env->scratch);
8806
8807 if(z->zonemd_callback_perform_write) {
8808 if(!z->zone_expired) {
8809 /* Write to zonefile if the ZONEMD is okay. */
8810 perform_write = 1;
8811 /* copy the key to lookup the z structure.
8812 * The new lookup is readonly so concurrent
8813 * queries can continue. */
8814 if(z->namelen > sizeof(bakname)) {
8815 perform_write = 0;
8816 auth_chunk_list_delete(z->perform_write_chunk_list);
8817 z->perform_write_chunk_list = NULL;
8818 } else {
8819 memcpy(bakname, z->name, z->namelen);
8820 baknamelen = z->namelen;
8821 bakdclass = z->dclass;
8822 chunk_list = z->perform_write_chunk_list;
8823 z->perform_write_chunk_list = NULL;
8824 }
8825 } else {
8826 auth_chunk_list_delete(z->perform_write_chunk_list);
8827 z->perform_write_chunk_list = NULL;
8828 }
8829 z->zonemd_callback_perform_write = 0;
8830 }
8831 lock_rw_unlock(&z->lock);
8832
8833 if(perform_write) {
8834 zone_write_after_update_reacq(bakname, baknamelen, bakdclass,
8835 env, chunk_list);
8836 }
8837 }
8838
8839 /** lookup DNSKEY for ZONEMD verification */
8840 static int
zonemd_lookup_dnskey(struct auth_zone * z,struct module_env * env)8841 zonemd_lookup_dnskey(struct auth_zone* z, struct module_env* env)
8842 {
8843 struct query_info qinfo;
8844 uint16_t qflags = BIT_RD;
8845 struct edns_data edns;
8846 sldns_buffer* buf = env->scratch_buffer;
8847 int fetch_ds = 0;
8848
8849 if(!z->fallback_enabled) {
8850 /* we cannot actually get the DNSKEY, because it is in the
8851 * zone we have ourselves, and it is not served yet
8852 * (possibly), so fetch type DS */
8853 fetch_ds = 1;
8854 }
8855 if(z->zonemd_callback_env) {
8856 /* another worker is already working on the callback
8857 * for the DNSKEY lookup for ZONEMD verification.
8858 * We do not also have to do ZONEMD verification, let that
8859 * worker do it */
8860 auth_zone_log(z->name, VERB_ALGO,
8861 "zonemd needs lookup of %s and that already is worked on by another worker", (fetch_ds?"DS":"DNSKEY"));
8862 return 1;
8863 }
8864
8865 /* use mesh_new_callback to lookup the DNSKEY,
8866 * and then wait for them to be looked up (in cache, or query) */
8867 qinfo.qname_len = z->namelen;
8868 qinfo.qname = z->name;
8869 qinfo.qclass = z->dclass;
8870 if(fetch_ds)
8871 qinfo.qtype = LDNS_RR_TYPE_DS;
8872 else qinfo.qtype = LDNS_RR_TYPE_DNSKEY;
8873 qinfo.local_alias = NULL;
8874 if(verbosity >= VERB_ALGO) {
8875 char buf1[512];
8876 char buf2[LDNS_MAX_DOMAINLEN];
8877 dname_str(z->name, buf2);
8878 snprintf(buf1, sizeof(buf1), "auth zone %s: lookup %s "
8879 "for zonemd verification", buf2,
8880 (fetch_ds?"DS":"DNSKEY"));
8881 log_query_info(VERB_ALGO, buf1, &qinfo);
8882 }
8883 edns.edns_present = 1;
8884 edns.ext_rcode = 0;
8885 edns.edns_version = 0;
8886 edns.bits = EDNS_DO;
8887 edns.opt_list_in = NULL;
8888 edns.opt_list_out = NULL;
8889 edns.opt_list_inplace_cb_out = NULL;
8890 if(sldns_buffer_capacity(buf) < 65535)
8891 edns.udp_size = (uint16_t)sldns_buffer_capacity(buf);
8892 else edns.udp_size = 65535;
8893
8894 /* store the worker-specific module env for the callback.
8895 * We can then reference this when the callback executes */
8896 z->zonemd_callback_env = env;
8897 z->zonemd_callback_qtype = qinfo.qtype;
8898 /* the callback can be called straight away */
8899 lock_rw_unlock(&z->lock);
8900 if(!mesh_new_callback(env->mesh, &qinfo, qflags, &edns, buf, 0,
8901 &auth_zonemd_dnskey_lookup_callback, z, 0,
8902 &z->zonemd_callback_unique_info)) {
8903 lock_rw_wrlock(&z->lock);
8904 /* no callback will run; do not leave the pending
8905 * marker set */
8906 z->zonemd_callback_env = NULL;
8907 log_err("out of memory lookup of %s for zonemd",
8908 (fetch_ds?"DS":"DNSKEY"));
8909 return 0;
8910 }
8911 lock_rw_wrlock(&z->lock);
8912 return 1;
8913 }
8914
auth_zone_verify_zonemd(struct auth_zone * z,struct module_env * env,struct module_stack * mods,char ** result,int offline,int only_online)8915 void auth_zone_verify_zonemd(struct auth_zone* z, struct module_env* env,
8916 struct module_stack* mods, char** result, int offline, int only_online)
8917 {
8918 char reasonbuf[256];
8919 char* reason = NULL, *why_bogus = NULL;
8920 struct trust_anchor* anchor = NULL;
8921 struct ub_packed_rrset_key* dnskey = NULL;
8922 struct ub_packed_rrset_key keystorage;
8923 int is_insecure = 0;
8924 /* verify the ZONEMD if present.
8925 * If not present check if absence is allowed by DNSSEC */
8926 if(!z->zonemd_check)
8927 return;
8928 if(z->data.count == 0)
8929 return; /* no data */
8930
8931 /* if zone is under a trustanchor */
8932 /* is it equal to trustanchor - get dnskey's verified */
8933 /* else, find chain of trust by fetching DNSKEYs lookup for zone */
8934 /* result if that, if insecure, means no DNSSEC for the ZONEMD,
8935 * otherwise we have the zone DNSKEY for the DNSSEC verification. */
8936 if(env->anchors)
8937 anchor = anchors_lookup(env->anchors, z->name, z->namelen,
8938 z->dclass);
8939 if(anchor && anchor->numDS == 0 && anchor->numDNSKEY == 0) {
8940 /* domain-insecure trust anchor for unsigned zones */
8941 lock_basic_unlock(&anchor->lock);
8942 if(only_online)
8943 return;
8944 dnskey = NULL;
8945 is_insecure = 1;
8946 } else if(anchor && query_dname_compare(z->name, anchor->name) == 0) {
8947 if(only_online) {
8948 lock_basic_unlock(&anchor->lock);
8949 return;
8950 }
8951 /* equal to trustanchor, no need for online lookups */
8952 dnskey = zonemd_get_dnskey_from_anchor(z, env, mods, anchor,
8953 &is_insecure, &why_bogus, &keystorage, reasonbuf,
8954 sizeof(reasonbuf));
8955 lock_basic_unlock(&anchor->lock);
8956 if(!dnskey && !reason && !is_insecure) {
8957 reason = "verify DNSKEY RRset with trust anchor failed";
8958 }
8959 } else if(anchor) {
8960 lock_basic_unlock(&anchor->lock);
8961 /* perform online lookups */
8962 if(offline)
8963 return;
8964 /* setup online lookups, and wait for them */
8965 if(zonemd_lookup_dnskey(z, env)) {
8966 /* wait for the lookup */
8967 return;
8968 }
8969 reason = "could not lookup DNSKEY for chain of trust";
8970 } else {
8971 /* the zone is not under a trust anchor */
8972 if(only_online)
8973 return;
8974 dnskey = NULL;
8975 is_insecure = 1;
8976 }
8977
8978 if(reason) {
8979 auth_zone_zonemd_fail(z, env, reason, why_bogus, result);
8980 regional_free_all(env->scratch);
8981 return;
8982 }
8983
8984 auth_zone_verify_zonemd_with_key(z, env, mods, dnskey, is_insecure,
8985 result, NULL);
8986 regional_free_all(env->scratch);
8987 }
8988
auth_zones_pickup_zonemd_verify(struct auth_zones * az,struct module_env * env)8989 void auth_zones_pickup_zonemd_verify(struct auth_zones* az,
8990 struct module_env* env)
8991 {
8992 struct auth_zone key;
8993 uint8_t savezname[255+1];
8994 size_t savezname_len;
8995 struct auth_zone* z;
8996 key.node.key = &key;
8997 lock_rw_rdlock(&az->lock);
8998 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
8999 lock_rw_wrlock(&z->lock);
9000 if(!z->zonemd_check) {
9001 lock_rw_unlock(&z->lock);
9002 continue;
9003 }
9004 key.dclass = z->dclass;
9005 key.namelabs = z->namelabs;
9006 if(z->namelen > sizeof(savezname)) {
9007 lock_rw_unlock(&z->lock);
9008 log_err("auth_zones_pickup_zonemd_verify: zone name too long");
9009 continue;
9010 }
9011 savezname_len = z->namelen;
9012 memmove(savezname, z->name, z->namelen);
9013 lock_rw_unlock(&az->lock);
9014 auth_zone_verify_zonemd(z, env, &env->mesh->mods, NULL, 0, 1);
9015 lock_rw_unlock(&z->lock);
9016 lock_rw_rdlock(&az->lock);
9017 /* find the zone we had before, it is not deleted,
9018 * because we have a flag for that that is processed at
9019 * apply_cfg time */
9020 key.namelen = savezname_len;
9021 key.name = savezname;
9022 z = (struct auth_zone*)rbtree_search(&az->ztree, &key);
9023 if(!z)
9024 break;
9025 }
9026 lock_rw_unlock(&az->lock);
9027 }
9028
9029 /** Get memory usage of auth rrset */
9030 static size_t
auth_rrset_get_mem(struct auth_rrset * rrset)9031 auth_rrset_get_mem(struct auth_rrset* rrset)
9032 {
9033 size_t m = sizeof(*rrset) + packed_rrset_sizeof(rrset->data);
9034 return m;
9035 }
9036
9037 /** Get memory usage of auth data */
9038 static size_t
auth_data_get_mem(struct auth_data * node)9039 auth_data_get_mem(struct auth_data* node)
9040 {
9041 size_t m = sizeof(*node) + node->namelen;
9042 struct auth_rrset* rrset;
9043 for(rrset = node->rrsets; rrset; rrset = rrset->next) {
9044 m += auth_rrset_get_mem(rrset);
9045 }
9046 return m;
9047 }
9048
9049 /** Get memory usage of auth zone */
9050 static size_t
auth_zone_get_mem(struct auth_zone * z)9051 auth_zone_get_mem(struct auth_zone* z)
9052 {
9053 size_t m = sizeof(*z) + z->namelen;
9054 struct auth_data* node;
9055 if(z->zonefile)
9056 m += strlen(z->zonefile)+1;
9057 RBTREE_FOR(node, struct auth_data*, &z->data) {
9058 m += auth_data_get_mem(node);
9059 }
9060 if(z->rpz)
9061 m += rpz_get_mem(z->rpz);
9062 return m;
9063 }
9064
9065 /** Get memory usage of list of auth addr */
9066 static size_t
auth_addrs_get_mem(struct auth_addr * list)9067 auth_addrs_get_mem(struct auth_addr* list)
9068 {
9069 size_t m = 0;
9070 struct auth_addr* a;
9071 for(a = list; a; a = a->next) {
9072 m += sizeof(*a);
9073 }
9074 return m;
9075 }
9076
9077 /** Get memory usage of list of primaries for auth xfer */
9078 static size_t
auth_primaries_get_mem(struct auth_master * list)9079 auth_primaries_get_mem(struct auth_master* list)
9080 {
9081 size_t m = 0;
9082 struct auth_master* n;
9083 for(n = list; n; n = n->next) {
9084 m += sizeof(*n);
9085 m += auth_addrs_get_mem(n->list);
9086 if(n->host)
9087 m += strlen(n->host)+1;
9088 if(n->file)
9089 m += strlen(n->file)+1;
9090 }
9091 return m;
9092 }
9093
9094 /** Get memory usage or list of auth chunks */
9095 static size_t
auth_chunks_get_mem(struct auth_chunk * list)9096 auth_chunks_get_mem(struct auth_chunk* list)
9097 {
9098 size_t m = 0;
9099 struct auth_chunk* chunk;
9100 for(chunk = list; chunk; chunk = chunk->next) {
9101 m += sizeof(*chunk) + chunk->len;
9102 }
9103 return m;
9104 }
9105
9106 /** Get memory usage of auth xfer */
9107 static size_t
auth_xfer_get_mem(struct auth_xfer * xfr)9108 auth_xfer_get_mem(struct auth_xfer* xfr)
9109 {
9110 size_t m = sizeof(*xfr) + xfr->namelen;
9111
9112 /* auth_nextprobe */
9113 m += comm_timer_get_mem(xfr->task_nextprobe->timer);
9114
9115 /* auth_probe */
9116 m += auth_primaries_get_mem(xfr->task_probe->masters);
9117 m += comm_point_get_mem(xfr->task_probe->cp);
9118 m += comm_timer_get_mem(xfr->task_probe->timer);
9119
9120 /* auth_transfer */
9121 m += auth_chunks_get_mem(xfr->task_transfer->chunks_first);
9122 m += auth_primaries_get_mem(xfr->task_transfer->masters);
9123 m += comm_point_get_mem(xfr->task_transfer->cp);
9124 m += comm_timer_get_mem(xfr->task_transfer->timer);
9125
9126 /* allow_notify_list */
9127 m += auth_primaries_get_mem(xfr->allow_notify_list);
9128
9129 return m;
9130 }
9131
9132 /** Get memory usage of auth zones ztree */
9133 static size_t
az_ztree_get_mem(struct auth_zones * az)9134 az_ztree_get_mem(struct auth_zones* az)
9135 {
9136 size_t m = 0;
9137 struct auth_zone* z;
9138 RBTREE_FOR(z, struct auth_zone*, &az->ztree) {
9139 lock_rw_rdlock(&z->lock);
9140 m += auth_zone_get_mem(z);
9141 lock_rw_unlock(&z->lock);
9142 }
9143 return m;
9144 }
9145
9146 /** Get memory usage of auth zones xtree */
9147 static size_t
az_xtree_get_mem(struct auth_zones * az)9148 az_xtree_get_mem(struct auth_zones* az)
9149 {
9150 size_t m = 0;
9151 struct auth_xfer* xfr;
9152 RBTREE_FOR(xfr, struct auth_xfer*, &az->xtree) {
9153 lock_basic_lock(&xfr->lock);
9154 m += auth_xfer_get_mem(xfr);
9155 lock_basic_unlock(&xfr->lock);
9156 }
9157 return m;
9158 }
9159
auth_zones_get_mem(struct auth_zones * zones)9160 size_t auth_zones_get_mem(struct auth_zones* zones)
9161 {
9162 size_t m;
9163 if(!zones) return 0;
9164 m = sizeof(*zones);
9165 lock_rw_rdlock(&zones->rpz_lock);
9166 lock_rw_rdlock(&zones->lock);
9167 m += az_ztree_get_mem(zones);
9168 m += az_xtree_get_mem(zones);
9169 lock_rw_unlock(&zones->lock);
9170 lock_rw_unlock(&zones->rpz_lock);
9171 return m;
9172 }
9173
xfr_disown_tasks(struct auth_xfer * xfr,struct worker * worker)9174 void xfr_disown_tasks(struct auth_xfer* xfr, struct worker* worker)
9175 {
9176 if(xfr->task_nextprobe->worker == worker) {
9177 xfr_nextprobe_disown(xfr);
9178 }
9179 if(xfr->task_probe->worker == worker) {
9180 xfr_probe_disown(xfr);
9181 }
9182 if(xfr->task_transfer->worker == worker) {
9183 xfr_transfer_disown(xfr);
9184 }
9185 }
9186