1 /*
2 * respip/respip.c - filtering response IP module
3 */
4
5 /**
6 * \file
7 *
8 * This file contains a module that inspects a result of recursive resolution
9 * to see if any IP address record should trigger a special action.
10 * If applicable these actions can modify the original response.
11 */
12 #include "config.h"
13
14 #include "services/localzone.h"
15 #include "services/authzone.h"
16 #include "services/cache/dns.h"
17 #include "sldns/str2wire.h"
18 #include "util/config_file.h"
19 #include "util/fptr_wlist.h"
20 #include "util/module.h"
21 #include "util/net_help.h"
22 #include "util/regional.h"
23 #include "util/data/msgreply.h"
24 #include "util/storage/dnstree.h"
25 #include "respip/respip.h"
26 #include "services/view.h"
27 #include "sldns/rrdef.h"
28
29
30 /** Subset of resp_addr.node, used for inform-variant logging */
31 struct respip_addr_info {
32 struct sockaddr_storage addr;
33 socklen_t addrlen;
34 int net;
35 };
36
37 /** Query state regarding the response-ip module. */
38 enum respip_state {
39 /**
40 * The general state. Unless CNAME chasing takes place, all processing
41 * is completed in this state without any other asynchronous event.
42 */
43 RESPIP_INIT = 0,
44
45 /**
46 * A subquery for CNAME chasing is completed.
47 */
48 RESPIP_SUBQUERY_FINISHED
49 };
50
51 /** Per query state for the response-ip module. */
52 struct respip_qstate {
53 enum respip_state state;
54 };
55
56 struct respip_set*
respip_set_create(void)57 respip_set_create(void)
58 {
59 struct respip_set* set = calloc(1, sizeof(*set));
60 if(!set)
61 return NULL;
62 set->region = regional_create();
63 if(!set->region) {
64 free(set);
65 return NULL;
66 }
67 addr_tree_init(&set->ip_tree);
68 lock_rw_init(&set->lock);
69 return set;
70 }
71
72 /** helper traverse to delete resp_addr nodes */
73 static void
resp_addr_del(rbnode_type * n,void * ATTR_UNUSED (arg))74 resp_addr_del(rbnode_type* n, void* ATTR_UNUSED(arg))
75 {
76 struct resp_addr* r = (struct resp_addr*)n->key;
77 lock_rw_destroy(&r->lock);
78 #ifdef THREADS_DISABLED
79 (void)r;
80 #endif
81 }
82
83 void
respip_set_delete(struct respip_set * set)84 respip_set_delete(struct respip_set* set)
85 {
86 if(!set)
87 return;
88 lock_rw_destroy(&set->lock);
89 traverse_postorder(&set->ip_tree, resp_addr_del, NULL);
90 regional_destroy(set->region);
91 free(set);
92 }
93
94 struct rbtree_type*
respip_set_get_tree(struct respip_set * set)95 respip_set_get_tree(struct respip_set* set)
96 {
97 if(!set)
98 return NULL;
99 return &set->ip_tree;
100 }
101
102 struct resp_addr*
respip_sockaddr_find_or_create(struct respip_set * set,struct sockaddr_storage * addr,socklen_t addrlen,int net,int create,const char * ipstr)103 respip_sockaddr_find_or_create(struct respip_set* set, struct sockaddr_storage* addr,
104 socklen_t addrlen, int net, int create, const char* ipstr)
105 {
106 struct resp_addr* node;
107 node = (struct resp_addr*)addr_tree_find(&set->ip_tree, addr, addrlen, net);
108 if(!node && create) {
109 node = regional_alloc_zero(set->region, sizeof(*node));
110 if(!node) {
111 log_err("out of memory");
112 return NULL;
113 }
114 lock_rw_init(&node->lock);
115 node->action = respip_none;
116 if(!addr_tree_insert(&set->ip_tree, &node->node, addr,
117 addrlen, net)) {
118 /* We know we didn't find it, so this should be
119 * impossible. */
120 log_warn("unexpected: duplicate address: %s", ipstr);
121 }
122 }
123 return node;
124 }
125
126 void
respip_sockaddr_delete(struct respip_set * set,struct resp_addr * node)127 respip_sockaddr_delete(struct respip_set* set, struct resp_addr* node)
128 {
129 struct resp_addr* prev;
130 prev = (struct resp_addr*)rbtree_previous((struct rbnode_type*)node);
131 lock_rw_destroy(&node->lock);
132 rbtree_delete(&set->ip_tree, node);
133 /* no free'ing, all allocated in region */
134 if(!prev)
135 addr_tree_init_parents((rbtree_type*)set);
136 else
137 addr_tree_init_parents_node(&prev->node);
138 }
139
140 /** returns the node in the address tree for the specified netblock string;
141 * non-existent node will be created if 'create' is true */
142 static struct resp_addr*
respip_find_or_create(struct respip_set * set,const char * ipstr,int create)143 respip_find_or_create(struct respip_set* set, const char* ipstr, int create)
144 {
145 struct sockaddr_storage addr;
146 int net;
147 socklen_t addrlen;
148
149 if(!netblockstrtoaddr(ipstr, 0, &addr, &addrlen, &net)) {
150 log_err("cannot parse netblock: '%s'", ipstr);
151 return NULL;
152 }
153 return respip_sockaddr_find_or_create(set, &addr, addrlen, net, create,
154 ipstr);
155 }
156
157 static int
respip_tag_cfg(struct respip_set * set,const char * ipstr,const uint8_t * taglist,size_t taglen)158 respip_tag_cfg(struct respip_set* set, const char* ipstr,
159 const uint8_t* taglist, size_t taglen)
160 {
161 struct resp_addr* node;
162
163 if(!(node=respip_find_or_create(set, ipstr, 1)))
164 return 0;
165 if(node->taglist) {
166 log_warn("duplicate response-address-tag for '%s', overridden.",
167 ipstr);
168 }
169 node->taglist = regional_alloc_init(set->region, taglist, taglen);
170 if(!node->taglist) {
171 log_err("out of memory");
172 return 0;
173 }
174 node->taglen = taglen;
175 return 1;
176 }
177
178 /** set action for the node specified by the netblock string */
179 static int
respip_action_cfg(struct respip_set * set,const char * ipstr,const char * actnstr)180 respip_action_cfg(struct respip_set* set, const char* ipstr,
181 const char* actnstr)
182 {
183 struct resp_addr* node;
184 enum respip_action action;
185
186 if(!(node=respip_find_or_create(set, ipstr, 1)))
187 return 0;
188 if(node->action != respip_none) {
189 verbose(VERB_QUERY, "duplicate response-ip action for '%s', overridden.",
190 ipstr);
191 }
192 if(strcmp(actnstr, "deny") == 0)
193 action = respip_deny;
194 else if(strcmp(actnstr, "redirect") == 0)
195 action = respip_redirect;
196 else if(strcmp(actnstr, "inform") == 0)
197 action = respip_inform;
198 else if(strcmp(actnstr, "inform_deny") == 0)
199 action = respip_inform_deny;
200 else if(strcmp(actnstr, "inform_redirect") == 0)
201 action = respip_inform_redirect;
202 else if(strcmp(actnstr, "always_transparent") == 0)
203 action = respip_always_transparent;
204 else if(strcmp(actnstr, "always_refuse") == 0)
205 action = respip_always_refuse;
206 else if(strcmp(actnstr, "always_nxdomain") == 0)
207 action = respip_always_nxdomain;
208 else if(strcmp(actnstr, "always_nodata") == 0)
209 action = respip_always_nodata;
210 else if(strcmp(actnstr, "always_deny") == 0)
211 action = respip_always_deny;
212 else {
213 log_err("unknown response-ip action %s", actnstr);
214 return 0;
215 }
216 node->action = action;
217 return 1;
218 }
219
220 /** allocate and initialize an rrset structure; this function is based
221 * on new_local_rrset() from the localzone.c module */
222 static struct ub_packed_rrset_key*
new_rrset(struct regional * region,uint16_t rrtype,uint16_t rrclass)223 new_rrset(struct regional* region, uint16_t rrtype, uint16_t rrclass)
224 {
225 struct packed_rrset_data* pd;
226 struct ub_packed_rrset_key* rrset = regional_alloc_zero(
227 region, sizeof(*rrset));
228 if(!rrset) {
229 log_err("out of memory");
230 return NULL;
231 }
232 rrset->entry.key = rrset;
233 pd = regional_alloc_zero(region, sizeof(*pd));
234 if(!pd) {
235 log_err("out of memory");
236 return NULL;
237 }
238 pd->trust = rrset_trust_prim_noglue;
239 pd->security = sec_status_insecure;
240 rrset->entry.data = pd;
241 rrset->rk.dname = regional_alloc_zero(region, 1);
242 if(!rrset->rk.dname) {
243 log_err("out of memory");
244 return NULL;
245 }
246 rrset->rk.dname_len = 1;
247 rrset->rk.type = htons(rrtype);
248 rrset->rk.rrset_class = htons(rrclass);
249 return rrset;
250 }
251
252 /** enter local data as resource records into a response-ip node */
253
254 int
respip_enter_rr(struct regional * region,struct resp_addr * raddr,uint16_t rrtype,uint16_t rrclass,time_t ttl,uint8_t * rdata,size_t rdata_len,const char * rrstr,const char * netblockstr)255 respip_enter_rr(struct regional* region, struct resp_addr* raddr,
256 uint16_t rrtype, uint16_t rrclass, time_t ttl, uint8_t* rdata,
257 size_t rdata_len, const char* rrstr, const char* netblockstr)
258 {
259 struct packed_rrset_data* pd;
260 struct sockaddr* sa;
261 sa = (struct sockaddr*)&raddr->node.addr;
262 if (rrtype == LDNS_RR_TYPE_CNAME && raddr->data) {
263 log_err("CNAME response-ip data (%s) can not co-exist with other "
264 "response-ip data for netblock %s", rrstr, netblockstr);
265 return 0;
266 } else if (raddr->data &&
267 raddr->data->rk.type == htons(LDNS_RR_TYPE_CNAME)) {
268 log_err("response-ip data (%s) can not be added; CNAME response-ip "
269 "data already in place for netblock %s", rrstr, netblockstr);
270 return 0;
271 } else if((rrtype != LDNS_RR_TYPE_CNAME) &&
272 ((sa->sa_family == AF_INET && rrtype != LDNS_RR_TYPE_A) ||
273 (sa->sa_family == AF_INET6 && rrtype != LDNS_RR_TYPE_AAAA))) {
274 log_err("response-ip data %s record type does not correspond "
275 "to netblock %s address family", rrstr, netblockstr);
276 return 0;
277 }
278
279 if(!raddr->data) {
280 raddr->data = new_rrset(region, rrtype, rrclass);
281 if(!raddr->data)
282 return 0;
283 }
284 pd = raddr->data->entry.data;
285 return rrset_insert_rr(region, pd, rdata, rdata_len, ttl, rrstr);
286 }
287
288 static int
respip_enter_rrstr(struct regional * region,struct resp_addr * raddr,const char * rrstr,const char * netblock)289 respip_enter_rrstr(struct regional* region, struct resp_addr* raddr,
290 const char* rrstr, const char* netblock)
291 {
292 uint8_t* nm;
293 uint16_t rrtype = 0, rrclass = 0;
294 time_t ttl = 0;
295 uint8_t rr[LDNS_RR_BUF_SIZE];
296 uint8_t* rdata = NULL;
297 size_t rdata_len = 0;
298 char buf[65536];
299 char bufshort[64];
300 int ret;
301 if(raddr->action != respip_redirect
302 && raddr->action != respip_inform_redirect) {
303 log_err("cannot parse response-ip-data %s: response-ip "
304 "action for %s is not redirect", rrstr, netblock);
305 return 0;
306 }
307 ret = snprintf(buf, sizeof(buf), ". %s", rrstr);
308 if(ret < 0 || ret >= (int)sizeof(buf)) {
309 strlcpy(bufshort, rrstr, sizeof(bufshort));
310 log_err("bad response-ip-data: %s...", bufshort);
311 return 0;
312 }
313 if(!rrstr_get_rr_content(buf, &nm, &rrtype, &rrclass, &ttl, rr, sizeof(rr),
314 &rdata, &rdata_len)) {
315 log_err("bad response-ip-data: %s", rrstr);
316 return 0;
317 }
318 free(nm);
319 return respip_enter_rr(region, raddr, rrtype, rrclass, ttl, rdata,
320 rdata_len, rrstr, netblock);
321 }
322
323 static int
respip_data_cfg(struct respip_set * set,const char * ipstr,const char * rrstr)324 respip_data_cfg(struct respip_set* set, const char* ipstr, const char* rrstr)
325 {
326 struct resp_addr* node;
327
328 node=respip_find_or_create(set, ipstr, 0);
329 if(!node || node->action == respip_none) {
330 log_err("cannot parse response-ip-data %s: "
331 "response-ip node for %s not found", rrstr, ipstr);
332 return 0;
333 }
334 return respip_enter_rrstr(set->region, node, rrstr, ipstr);
335 }
336
337 static int
respip_set_apply_cfg(struct respip_set * set,char * const * tagname,int num_tags,struct config_strbytelist * respip_tags,struct config_str2list * respip_actions,struct config_str2list * respip_data)338 respip_set_apply_cfg(struct respip_set* set, char* const* tagname, int num_tags,
339 struct config_strbytelist* respip_tags,
340 struct config_str2list* respip_actions,
341 struct config_str2list* respip_data)
342 {
343 struct config_strbytelist* p;
344 struct config_str2list* pa;
345 struct config_str2list* pd;
346
347 set->tagname = tagname;
348 set->num_tags = num_tags;
349
350 p = respip_tags;
351 while(p) {
352 struct config_strbytelist* np = p->next;
353
354 log_assert(p->str && p->str2);
355 if(!respip_tag_cfg(set, p->str, p->str2, p->str2len)) {
356 config_del_strbytelist(p);
357 return 0;
358 }
359 free(p->str);
360 free(p->str2);
361 free(p);
362 p = np;
363 }
364
365 pa = respip_actions;
366 while(pa) {
367 struct config_str2list* np = pa->next;
368 log_assert(pa->str && pa->str2);
369 if(!respip_action_cfg(set, pa->str, pa->str2)) {
370 config_deldblstrlist(pa);
371 return 0;
372 }
373 free(pa->str);
374 free(pa->str2);
375 free(pa);
376 pa = np;
377 }
378
379 pd = respip_data;
380 while(pd) {
381 struct config_str2list* np = pd->next;
382 log_assert(pd->str && pd->str2);
383 if(!respip_data_cfg(set, pd->str, pd->str2)) {
384 config_deldblstrlist(pd);
385 return 0;
386 }
387 free(pd->str);
388 free(pd->str2);
389 free(pd);
390 pd = np;
391 }
392 addr_tree_init_parents(&set->ip_tree);
393
394 return 1;
395 }
396
397 int
respip_global_apply_cfg(struct respip_set * set,struct config_file * cfg)398 respip_global_apply_cfg(struct respip_set* set, struct config_file* cfg)
399 {
400 int ret = respip_set_apply_cfg(set, cfg->tagname, cfg->num_tags,
401 cfg->respip_tags, cfg->respip_actions, cfg->respip_data);
402 cfg->respip_data = NULL;
403 cfg->respip_actions = NULL;
404 cfg->respip_tags = NULL;
405 return ret;
406 }
407
408 /** Iterate through raw view data and apply the view-specific respip
409 * configuration; at this point we should have already seen all the views,
410 * so if any of the views that respip data refer to does not exist, that's
411 * an error. This additional iteration through view configuration data
412 * is expected to not have significant performance impact (or rather, its
413 * performance impact is not expected to be prohibitive in the configuration
414 * processing phase).
415 */
416 int
respip_views_apply_cfg(struct views * vs,struct config_file * cfg,int * have_view_respip_cfg)417 respip_views_apply_cfg(struct views* vs, struct config_file* cfg,
418 int* have_view_respip_cfg)
419 {
420 struct config_view* cv;
421 struct view* v;
422 int ret;
423
424 for(cv = cfg->views; cv; cv = cv->next) {
425
426 /** if no respip config for this view then there's
427 * nothing to do; note that even though respip data must go
428 * with respip action, we're checking for both here because
429 * we want to catch the case where the respip action is missing
430 * while the data is present */
431 if(!cv->respip_actions && !cv->respip_data)
432 continue;
433
434 if(!(v = views_find_view(vs, cv->name, 1))) {
435 log_err("view '%s' unexpectedly missing", cv->name);
436 return 0;
437 }
438 if(!v->respip_set) {
439 v->respip_set = respip_set_create();
440 if(!v->respip_set) {
441 log_err("out of memory");
442 lock_rw_unlock(&v->lock);
443 return 0;
444 }
445 }
446 ret = respip_set_apply_cfg(v->respip_set, NULL, 0, NULL,
447 cv->respip_actions, cv->respip_data);
448 lock_rw_unlock(&v->lock);
449 if(!ret) {
450 log_err("Error while applying respip configuration "
451 "for view '%s'", cv->name);
452 return 0;
453 }
454 *have_view_respip_cfg = (*have_view_respip_cfg ||
455 v->respip_set->ip_tree.count);
456 cv->respip_actions = NULL;
457 cv->respip_data = NULL;
458 }
459 return 1;
460 }
461
462 /**
463 * make a deep copy of 'key' in 'region'.
464 * This is largely derived from packed_rrset_copy_region() and
465 * packed_rrset_ptr_fixup(), but differs in the following points:
466 *
467 * - It doesn't assume all data in 'key' are in a contiguous memory region.
468 * Although that would be the case in most cases, 'key' can be passed from
469 * a lower-level module and it might not build the rrset to meet the
470 * assumption. In fact, an rrset specified as response-ip-data or generated
471 * in local_data_find_tag_datas() breaks the assumption. So it would be
472 * safer not to naively rely on the assumption. On the other hand, this
473 * function ensures the copied rrset data are in a contiguous region so
474 * that it won't cause a disruption even if an upper layer module naively
475 * assumes the memory layout.
476 * - It doesn't copy RRSIGs (if any) in 'key'. The rrset will be used in
477 * a reply that was already faked, so it doesn't make much sense to provide
478 * partial sigs even if they are valid themselves.
479 * - It doesn't adjust TTLs as it basically has to be a verbatim copy of 'key'
480 * just allocated in 'region' (the assumption is necessary TTL adjustment
481 * has been already done in 'key').
482 *
483 * This function returns the copied rrset key on success, and NULL on memory
484 * allocation failure.
485 */
486 static struct ub_packed_rrset_key*
copy_rrset(const struct ub_packed_rrset_key * key,struct regional * region)487 copy_rrset(const struct ub_packed_rrset_key* key, struct regional* region)
488 {
489 struct ub_packed_rrset_key* ck = regional_alloc(region,
490 sizeof(struct ub_packed_rrset_key));
491 struct packed_rrset_data* d;
492 struct packed_rrset_data* data = key->entry.data;
493 size_t dsize, i;
494 uint8_t* nextrdata;
495
496 /* derived from packed_rrset_copy_region(), but don't use
497 * packed_rrset_sizeof() and do exclude RRSIGs */
498 if(!ck)
499 return NULL;
500 ck->id = key->id;
501 memset(&ck->entry, 0, sizeof(ck->entry));
502 ck->entry.hash = key->entry.hash;
503 ck->entry.key = ck;
504 ck->rk = key->rk;
505 ck->rk.dname = regional_alloc_init(region, key->rk.dname,
506 key->rk.dname_len);
507 if(!ck->rk.dname)
508 return NULL;
509
510 if((unsigned)data->count >= 0xffff00U)
511 return NULL; /* guard against integer overflow in dsize */
512 dsize = sizeof(struct packed_rrset_data) + data->count *
513 (sizeof(size_t)+sizeof(uint8_t*)+sizeof(time_t));
514 for(i=0; i<data->count; i++) {
515 if((unsigned)dsize >= 0x0fffffffU ||
516 (unsigned)data->rr_len[i] >= 0x0fffffffU)
517 return NULL; /* guard against integer overflow */
518 dsize += data->rr_len[i];
519 }
520 d = regional_alloc(region, dsize);
521 if(!d)
522 return NULL;
523 *d = *data;
524 d->rrsig_count = 0;
525 ck->entry.data = d;
526
527 /* derived from packed_rrset_ptr_fixup() with copying the data */
528 d->rr_len = (size_t*)((uint8_t*)d + sizeof(struct packed_rrset_data));
529 d->rr_data = (uint8_t**)&(d->rr_len[d->count]);
530 d->rr_ttl = (time_t*)&(d->rr_data[d->count]);
531 nextrdata = (uint8_t*)&(d->rr_ttl[d->count]);
532 for(i=0; i<d->count; i++) {
533 d->rr_len[i] = data->rr_len[i];
534 d->rr_ttl[i] = data->rr_ttl[i];
535 d->rr_data[i] = nextrdata;
536 memcpy(d->rr_data[i], data->rr_data[i], data->rr_len[i]);
537 nextrdata += d->rr_len[i];
538 }
539
540 return ck;
541 }
542
543 int
respip_init(struct module_env * env,int id)544 respip_init(struct module_env* env, int id)
545 {
546 (void)env;
547 (void)id;
548 return 1;
549 }
550
551 void
respip_deinit(struct module_env * env,int id)552 respip_deinit(struct module_env* env, int id)
553 {
554 (void)env;
555 (void)id;
556 }
557
558 /** Convert a packed AAAA or A RRset to sockaddr. */
559 static int
rdata2sockaddr(const struct packed_rrset_data * rd,uint16_t rtype,size_t i,struct sockaddr_storage * ss,socklen_t * addrlenp)560 rdata2sockaddr(const struct packed_rrset_data* rd, uint16_t rtype, size_t i,
561 struct sockaddr_storage* ss, socklen_t* addrlenp)
562 {
563 /* unbound can accept and cache odd-length AAAA/A records, so we have
564 * to validate the length. */
565 if(rtype == LDNS_RR_TYPE_A && rd->rr_len[i] == 6) {
566 struct sockaddr_in* sa4 = (struct sockaddr_in*)ss;
567
568 memset(sa4, 0, sizeof(*sa4));
569 sa4->sin_family = AF_INET;
570 memcpy(&sa4->sin_addr, rd->rr_data[i] + 2,
571 sizeof(sa4->sin_addr));
572 *addrlenp = sizeof(*sa4);
573 return 1;
574 } else if(rtype == LDNS_RR_TYPE_AAAA && rd->rr_len[i] == 18) {
575 struct sockaddr_in6* sa6 = (struct sockaddr_in6*)ss;
576
577 memset(sa6, 0, sizeof(*sa6));
578 sa6->sin6_family = AF_INET6;
579 memcpy(&sa6->sin6_addr, rd->rr_data[i] + 2,
580 sizeof(sa6->sin6_addr));
581 *addrlenp = sizeof(*sa6);
582 return 1;
583 }
584 return 0;
585 }
586
587 /**
588 * Search the given 'iptree' for response address information that matches
589 * any of the IP addresses in an AAAA or A in the answer section of the
590 * response (stored in 'rep'). If found, a pointer to the matched resp_addr
591 * structure will be returned, and '*rrset_id' is set to the index in
592 * rep->rrsets for the RRset that contains the matching IP address record
593 * (the index is normally 0, but can be larger than that if this is a CNAME
594 * chain or type-ANY response).
595 * Returns resp_addr holding read lock.
596 */
597 static struct resp_addr*
respip_addr_lookup(const struct reply_info * rep,struct respip_set * rs,size_t * rrset_id)598 respip_addr_lookup(const struct reply_info *rep, struct respip_set* rs,
599 size_t* rrset_id)
600 {
601 size_t i;
602 struct resp_addr* ra;
603 struct sockaddr_storage ss;
604 socklen_t addrlen;
605
606 lock_rw_rdlock(&rs->lock);
607 for(i=0; i<rep->an_numrrsets; i++) {
608 size_t j;
609 const struct packed_rrset_data* rd;
610 uint16_t rtype = ntohs(rep->rrsets[i]->rk.type);
611
612 if(rtype != LDNS_RR_TYPE_A && rtype != LDNS_RR_TYPE_AAAA)
613 continue;
614 rd = rep->rrsets[i]->entry.data;
615 for(j = 0; j < rd->count; j++) {
616 if(!rdata2sockaddr(rd, rtype, j, &ss, &addrlen))
617 continue;
618 ra = (struct resp_addr*)addr_tree_lookup(&rs->ip_tree,
619 &ss, addrlen);
620 if(ra) {
621 *rrset_id = i;
622 lock_rw_rdlock(&ra->lock);
623 lock_rw_unlock(&rs->lock);
624 return ra;
625 }
626 }
627 }
628 lock_rw_unlock(&rs->lock);
629 return NULL;
630 }
631
632 /*
633 * Create a new reply_info based on 'rep'. The new info is based on
634 * the passed 'rep', but ignores any rrsets except for the first 'an_numrrsets'
635 * RRsets in the answer section. These answer rrsets are copied to the
636 * new info, up to 'copy_rrsets' rrsets (which must not be larger than
637 * 'an_numrrsets'). If an_numrrsets > copy_rrsets, the remaining rrsets array
638 * entries will be kept empty so the caller can fill them later. When rrsets
639 * are copied, they are shallow copied. The caller must ensure that the
640 * copied rrsets are valid throughout its lifetime and must provide appropriate
641 * mutex if it can be shared by multiple threads.
642 */
643 static struct reply_info *
make_new_reply_info(const struct reply_info * rep,struct regional * region,size_t an_numrrsets,size_t copy_rrsets)644 make_new_reply_info(const struct reply_info* rep, struct regional* region,
645 size_t an_numrrsets, size_t copy_rrsets)
646 {
647 struct reply_info* new_rep;
648 size_t i;
649
650 /* create a base struct. we specify 'insecure' security status as
651 * the modified response won't be DNSSEC-valid. In our faked response
652 * the authority and additional sections will be empty (except possible
653 * EDNS0 OPT RR in the additional section appended on sending it out),
654 * so the total number of RRsets is an_numrrsets. */
655 new_rep = construct_reply_info_base(region, rep->flags,
656 rep->qdcount, rep->ttl, rep->prefetch_ttl,
657 rep->serve_expired_ttl, an_numrrsets, 0, 0, an_numrrsets,
658 sec_status_insecure);
659 if(!new_rep)
660 return NULL;
661 if(!reply_info_alloc_rrset_keys(new_rep, NULL, region))
662 return NULL;
663 for(i=0; i<copy_rrsets; i++)
664 new_rep->rrsets[i] = rep->rrsets[i];
665
666 return new_rep;
667 }
668
669 /**
670 * See if response-ip or tag data should override the original answer rrset
671 * (which is rep->rrsets[rrset_id]) and if so override it.
672 * This is (mostly) equivalent to localzone.c:local_data_answer() but for
673 * response-ip actions.
674 * Note that this function distinguishes error conditions from "success but
675 * not overridden". This is because we want to avoid accidentally applying
676 * the "no data" action in case of error.
677 * @param action: action to apply
678 * @param data: RRset to use for override
679 * @param qtype: original query type
680 * @param rep: original reply message
681 * @param rrset_id: the rrset ID in 'rep' to which the action should apply
682 * @param new_repp: see respip_rewrite_reply
683 * @param tag: if >= 0 the tag ID used to determine the action and data
684 * @param tag_datas: data corresponding to 'tag'.
685 * @param tag_datas_size: size of 'tag_datas'
686 * @param tagname: array of tag names, used for logging
687 * @param num_tags: size of 'tagname', used for logging
688 * @param redirect_rrsetp: ptr to redirect record
689 * @param region: region for building new reply
690 * @return 1 if overridden, 0 if not overridden, -1 on error.
691 */
692 static int
respip_data_answer(enum respip_action action,struct ub_packed_rrset_key * data,uint16_t qtype,const struct reply_info * rep,size_t rrset_id,struct reply_info ** new_repp,int tag,struct config_strlist ** tag_datas,size_t tag_datas_size,char * const * tagname,int num_tags,struct ub_packed_rrset_key ** redirect_rrsetp,struct regional * region)693 respip_data_answer(enum respip_action action,
694 struct ub_packed_rrset_key* data,
695 uint16_t qtype, const struct reply_info* rep,
696 size_t rrset_id, struct reply_info** new_repp, int tag,
697 struct config_strlist** tag_datas, size_t tag_datas_size,
698 char* const* tagname, int num_tags,
699 struct ub_packed_rrset_key** redirect_rrsetp, struct regional* region)
700 {
701 struct ub_packed_rrset_key* rp = data;
702 struct reply_info* new_rep;
703 *redirect_rrsetp = NULL;
704
705 if(action == respip_redirect && tag != -1 &&
706 (size_t)tag<tag_datas_size && tag_datas[tag]) {
707 struct query_info dataqinfo;
708 struct ub_packed_rrset_key r;
709
710 /* Extract parameters of the original answer rrset that can be
711 * rewritten below, in the form of query_info. Note that these
712 * can be different from the info of the original query if the
713 * rrset is a CNAME target.*/
714 memset(&dataqinfo, 0, sizeof(dataqinfo));
715 dataqinfo.qname = rep->rrsets[rrset_id]->rk.dname;
716 dataqinfo.qname_len = rep->rrsets[rrset_id]->rk.dname_len;
717 dataqinfo.qtype = ntohs(rep->rrsets[rrset_id]->rk.type);
718 dataqinfo.qclass = ntohs(rep->rrsets[rrset_id]->rk.rrset_class);
719
720 memset(&r, 0, sizeof(r));
721 if(local_data_find_tag_datas(&dataqinfo, tag_datas[tag], &r,
722 region)) {
723 verbose(VERB_ALGO,
724 "response-ip redirect with tag data [%d] %s",
725 tag, (tag<num_tags?tagname[tag]:"null"));
726 /* use copy_rrset() to 'normalize' memory layout */
727 rp = copy_rrset(&r, region);
728 if(!rp)
729 return -1;
730 }
731 }
732 if(!rp)
733 return 0;
734
735 /* If we are using response-ip-data, we need to make a copy of rrset
736 * to replace the rrset's dname. Note that, unlike local data, we
737 * rename the dname for other actions than redirect. This is because
738 * response-ip-data isn't associated to any specific name. */
739 if(rp == data) {
740 rp = copy_rrset(rp, region);
741 if(!rp)
742 return -1;
743 rp->rk.dname = rep->rrsets[rrset_id]->rk.dname;
744 rp->rk.dname_len = rep->rrsets[rrset_id]->rk.dname_len;
745 }
746
747 /* Build a new reply with redirect rrset. We keep any preceding CNAMEs
748 * and replace the address rrset that triggers the action. If it's
749 * type ANY query, however, no other answer records should be kept
750 * (note that it can't be a CNAME chain in this case due to
751 * sanitizing). */
752 if(qtype == LDNS_RR_TYPE_ANY)
753 rrset_id = 0;
754 new_rep = make_new_reply_info(rep, region, rrset_id + 1, rrset_id);
755 if(!new_rep)
756 return -1;
757 rp->rk.flags |= PACKED_RRSET_FIXEDTTL; /* avoid adjusting TTL */
758 new_rep->rrsets[rrset_id] = rp;
759
760 *redirect_rrsetp = rp;
761 *new_repp = new_rep;
762 return 1;
763 }
764
765 /**
766 * apply response ip action in case where no action data is provided.
767 * this is similar to localzone.c:lz_zone_answer() but simplified due to
768 * the characteristics of response ip:
769 * - 'deny' variants will be handled at the caller side
770 * - no specific processing for 'transparent' variants: unlike local zones,
771 * there is no such a case of 'no data but name existing'. so all variants
772 * just mean 'transparent if no data'.
773 * @param qtype: query type
774 * @param action: found action
775 * @param rep:
776 * @param new_repp
777 * @param rrset_id
778 * @param region: region for building new reply
779 * @return 1 on success, 0 on error.
780 */
781 static int
respip_nodata_answer(uint16_t qtype,enum respip_action action,const struct reply_info * rep,size_t rrset_id,struct reply_info ** new_repp,struct regional * region)782 respip_nodata_answer(uint16_t qtype, enum respip_action action,
783 const struct reply_info *rep, size_t rrset_id,
784 struct reply_info** new_repp, struct regional* region)
785 {
786 struct reply_info* new_rep;
787
788 if(action == respip_refuse || action == respip_always_refuse) {
789 new_rep = make_new_reply_info(rep, region, 0, 0);
790 if(!new_rep)
791 return 0;
792 FLAGS_SET_RCODE(new_rep->flags, LDNS_RCODE_REFUSED);
793 *new_repp = new_rep;
794 return 1;
795 } else if(action == respip_static || action == respip_redirect ||
796 action == respip_always_nxdomain ||
797 action == respip_always_nodata ||
798 action == respip_inform_redirect) {
799 /* Since we don't know about other types of the owner name,
800 * we generally return NOERROR/NODATA unless an NXDOMAIN action
801 * is explicitly specified. */
802 int rcode = (action == respip_always_nxdomain)?
803 LDNS_RCODE_NXDOMAIN:LDNS_RCODE_NOERROR;
804
805 /* We should empty the answer section except for any preceding
806 * CNAMEs (in that case rrset_id > 0). Type-ANY case is
807 * special as noted in respip_data_answer(). */
808 if(qtype == LDNS_RR_TYPE_ANY)
809 rrset_id = 0;
810 new_rep = make_new_reply_info(rep, region, rrset_id, rrset_id);
811 if(!new_rep)
812 return 0;
813 FLAGS_SET_RCODE(new_rep->flags, rcode);
814 *new_repp = new_rep;
815 return 1;
816 }
817
818 return 1;
819 }
820
821 /** Populate action info structure with the results of response-ip action
822 * processing, iff as the result of response-ip processing we are actually
823 * taking some action. Only action is set if action_only is true.
824 * Returns true on success, false on failure.
825 */
826 static int
populate_action_info(struct respip_action_info * actinfo,enum respip_action action,const struct resp_addr * raddr,const struct ub_packed_rrset_key * ATTR_UNUSED (rrset),int ATTR_UNUSED (tag),const struct respip_set * ATTR_UNUSED (ipset),int ATTR_UNUSED (action_only),struct regional * region,int rpz_used,int rpz_log,char * log_name,int rpz_cname_override)827 populate_action_info(struct respip_action_info* actinfo,
828 enum respip_action action, const struct resp_addr* raddr,
829 const struct ub_packed_rrset_key* ATTR_UNUSED(rrset),
830 int ATTR_UNUSED(tag), const struct respip_set* ATTR_UNUSED(ipset),
831 int ATTR_UNUSED(action_only), struct regional* region, int rpz_used,
832 int rpz_log, char* log_name, int rpz_cname_override)
833 {
834 if(action == respip_none || !raddr)
835 return 1;
836 actinfo->action = action;
837 actinfo->rpz_used = rpz_used;
838 actinfo->rpz_log = rpz_log;
839 actinfo->log_name = log_name;
840 actinfo->rpz_cname_override = rpz_cname_override;
841
842 /* for inform variants, make a copy of the matched address block for
843 * later logging. We make a copy to proactively avoid disruption if
844 * and when we allow a dynamic update to the respip tree. */
845 if(action == respip_inform || action == respip_inform_deny ||
846 rpz_used) {
847 struct respip_addr_info* a =
848 regional_alloc_zero(region, sizeof(*a));
849 if(!a) {
850 log_err("out of memory");
851 return 0;
852 }
853 a->addr = raddr->node.addr;
854 a->addrlen = raddr->node.addrlen;
855 a->net = raddr->node.net;
856 actinfo->addrinfo = a;
857 }
858
859 return 1;
860 }
861
862 static int
respip_use_rpz(struct resp_addr * raddr,struct rpz * r,enum respip_action * action,struct ub_packed_rrset_key ** data,int * rpz_log,char ** log_name,int * rpz_cname_override,struct regional * region,int * is_rpz)863 respip_use_rpz(struct resp_addr* raddr, struct rpz* r,
864 enum respip_action* action,
865 struct ub_packed_rrset_key** data, int* rpz_log, char** log_name,
866 int* rpz_cname_override, struct regional* region, int* is_rpz)
867 {
868 if(r->action_override == RPZ_DISABLED_ACTION) {
869 *is_rpz = 0;
870 return 1;
871 }
872 else if(r->action_override == RPZ_NO_OVERRIDE_ACTION)
873 *action = raddr->action;
874 else
875 *action = rpz_action_to_respip_action(r->action_override);
876 if(r->action_override == RPZ_CNAME_OVERRIDE_ACTION &&
877 r->cname_override) {
878 *data = r->cname_override;
879 *rpz_cname_override = 1;
880 }
881 *rpz_log = r->log;
882 if(r->log_name)
883 if(!(*log_name = regional_strdup(region, r->log_name)))
884 return 0;
885 *is_rpz = 1;
886 return 1;
887 }
888
889 int
respip_rewrite_reply(const struct query_info * qinfo,const struct respip_client_info * cinfo,const struct reply_info * rep,struct reply_info ** new_repp,struct respip_action_info * actinfo,struct ub_packed_rrset_key ** alias_rrset,int search_only,struct regional * region,struct auth_zones * az)890 respip_rewrite_reply(const struct query_info* qinfo,
891 const struct respip_client_info* cinfo, const struct reply_info* rep,
892 struct reply_info** new_repp, struct respip_action_info* actinfo,
893 struct ub_packed_rrset_key** alias_rrset, int search_only,
894 struct regional* region, struct auth_zones* az)
895 {
896 const uint8_t* ctaglist;
897 size_t ctaglen;
898 const uint8_t* tag_actions;
899 size_t tag_actions_size;
900 struct config_strlist** tag_datas;
901 size_t tag_datas_size;
902 struct view* view = NULL;
903 struct respip_set* ipset = NULL;
904 size_t rrset_id = 0;
905 enum respip_action action = respip_none;
906 int tag = -1;
907 struct resp_addr* raddr = NULL;
908 int ret = 1;
909 struct ub_packed_rrset_key* redirect_rrset = NULL;
910 struct rpz* r;
911 struct ub_packed_rrset_key* data = NULL;
912 int rpz_used = 0;
913 int rpz_log = 0;
914 int rpz_cname_override = 0;
915 char* log_name = NULL;
916
917 if(!cinfo)
918 goto done;
919 ctaglist = cinfo->taglist;
920 ctaglen = cinfo->taglen;
921 tag_actions = cinfo->tag_actions;
922 tag_actions_size = cinfo->tag_actions_size;
923 tag_datas = cinfo->tag_datas;
924 tag_datas_size = cinfo->tag_datas_size;
925 view = cinfo->view;
926 ipset = cinfo->respip_set;
927
928 log_assert(ipset);
929
930 /** Try to use response-ip config from the view first; use
931 * global response-ip config if we don't have the view or we don't
932 * have the matching per-view config (and the view allows the use
933 * of global data in this case).
934 * Note that we lock the view even if we only use view members that
935 * currently don't change after creation. This is for safety for
936 * future possible changes as the view documentation seems to expect
937 * any of its member can change in the view's lifetime.
938 * Note also that we assume 'view' is valid in this function, which
939 * should be safe (see unbound bug #1191) */
940 if(view) {
941 lock_rw_rdlock(&view->lock);
942 if(view->respip_set) {
943 if((raddr = respip_addr_lookup(rep,
944 view->respip_set, &rrset_id))) {
945 /** for per-view respip directives the action
946 * can only be direct (i.e. not tag-based) */
947 action = raddr->action;
948 }
949 }
950 if(!raddr && !view->isfirst)
951 goto done;
952 }
953 if(!raddr && (raddr = respip_addr_lookup(rep, ipset,
954 &rrset_id))) {
955 action = (enum respip_action)local_data_find_tag_action(
956 raddr->taglist, raddr->taglen, ctaglist, ctaglen,
957 tag_actions, tag_actions_size,
958 (enum localzone_type)raddr->action, &tag,
959 ipset->tagname, ipset->num_tags);
960 }
961 lock_rw_rdlock(&az->rpz_lock);
962 for(r = az->rpz_first; r && !raddr; r = r->next) {
963 if(!r->taglist || taglist_intersect(r->taglist,
964 r->taglistlen, ctaglist, ctaglen)) {
965 if((raddr = respip_addr_lookup(rep,
966 r->respip_set, &rrset_id))) {
967 if(!respip_use_rpz(raddr, r, &action, &data,
968 &rpz_log, &log_name, &rpz_cname_override,
969 region, &rpz_used)) {
970 log_err("out of memory");
971 lock_rw_unlock(&raddr->lock);
972 lock_rw_unlock(&az->rpz_lock);
973 return 0;
974 }
975 if(!rpz_used) {
976 lock_rw_unlock(&raddr->lock);
977 raddr = NULL;
978 actinfo->rpz_disabled++;
979 }
980 }
981 }
982 }
983 lock_rw_unlock(&az->rpz_lock);
984 if(raddr && !search_only) {
985 int result = 0;
986
987 /* first, see if we have response-ip or tag action for the
988 * action except for 'always' variants. */
989 if(action != respip_always_refuse
990 && action != respip_always_transparent
991 && action != respip_always_nxdomain
992 && action != respip_always_nodata
993 && action != respip_always_deny
994 && (result = respip_data_answer(action,
995 (data) ? data : raddr->data, qinfo->qtype, rep,
996 rrset_id, new_repp, tag, tag_datas, tag_datas_size,
997 ipset->tagname, ipset->num_tags, &redirect_rrset,
998 region)) < 0) {
999 ret = 0;
1000 goto done;
1001 }
1002
1003 /* if no action data applied, take action specific to the
1004 * action without data. */
1005 if(!result && !respip_nodata_answer(qinfo->qtype, action, rep,
1006 rrset_id, new_repp, region)) {
1007 ret = 0;
1008 goto done;
1009 }
1010 }
1011 done:
1012 if(view) {
1013 lock_rw_unlock(&view->lock);
1014 }
1015 if(ret) {
1016 /* If we're redirecting the original answer to a
1017 * CNAME, record the CNAME rrset so the caller can take
1018 * the appropriate action. Note that we don't check the
1019 * action type; it should normally be 'redirect', but it
1020 * can be of other type when a data-dependent tag action
1021 * uses redirect response-ip data.
1022 */
1023 if(redirect_rrset &&
1024 redirect_rrset->rk.type == ntohs(LDNS_RR_TYPE_CNAME) &&
1025 qinfo->qtype != LDNS_RR_TYPE_ANY)
1026 *alias_rrset = redirect_rrset;
1027 /* on success, populate respip result structure */
1028 ret = populate_action_info(actinfo, action, raddr,
1029 redirect_rrset, tag, ipset, search_only, region,
1030 rpz_used, rpz_log, log_name, rpz_cname_override);
1031 }
1032 if(raddr) {
1033 lock_rw_unlock(&raddr->lock);
1034 }
1035 return ret;
1036 }
1037
1038 static int
generate_cname_request(struct module_qstate * qstate,struct ub_packed_rrset_key * alias_rrset)1039 generate_cname_request(struct module_qstate* qstate,
1040 struct ub_packed_rrset_key* alias_rrset)
1041 {
1042 struct module_qstate* subq = NULL;
1043 struct query_info subqi;
1044
1045 memset(&subqi, 0, sizeof(subqi));
1046 get_cname_target(alias_rrset, &subqi.qname, &subqi.qname_len);
1047 if(!subqi.qname)
1048 return 0; /* unexpected: not a valid CNAME RDATA */
1049 subqi.qtype = qstate->qinfo.qtype;
1050 subqi.qclass = qstate->qinfo.qclass;
1051 fptr_ok(fptr_whitelist_modenv_attach_sub(qstate->env->attach_sub));
1052 return (*qstate->env->attach_sub)(qstate, &subqi, BIT_RD, 0, 0, &subq);
1053 }
1054
1055 void
respip_operate(struct module_qstate * qstate,enum module_ev event,int id,struct outbound_entry * outbound)1056 respip_operate(struct module_qstate* qstate, enum module_ev event, int id,
1057 struct outbound_entry* outbound)
1058 {
1059 struct respip_qstate* rq = (struct respip_qstate*)qstate->minfo[id];
1060
1061 log_query_info(VERB_QUERY, "respip operate: query", &qstate->qinfo);
1062 (void)outbound;
1063
1064 if(event == module_event_new || event == module_event_pass) {
1065 if(!rq) {
1066 rq = regional_alloc_zero(qstate->region, sizeof(*rq));
1067 if(!rq)
1068 goto servfail;
1069 rq->state = RESPIP_INIT;
1070 qstate->minfo[id] = rq;
1071 }
1072 if(rq->state == RESPIP_SUBQUERY_FINISHED) {
1073 qstate->ext_state[id] = module_finished;
1074 return;
1075 }
1076 verbose(VERB_ALGO, "respip: pass to next module");
1077 qstate->ext_state[id] = module_wait_module;
1078 } else if(event == module_event_moddone) {
1079 /* If the reply may be subject to response-ip rewriting
1080 * according to the query type, check the actions. If a
1081 * rewrite is necessary, we'll replace the reply in qstate
1082 * with the new one. */
1083 enum module_ext_state next_state = module_finished;
1084
1085 if((qstate->qinfo.qtype == LDNS_RR_TYPE_A ||
1086 qstate->qinfo.qtype == LDNS_RR_TYPE_AAAA ||
1087 qstate->qinfo.qtype == LDNS_RR_TYPE_ANY) &&
1088 qstate->return_msg && qstate->return_msg->rep) {
1089 struct reply_info* new_rep = qstate->return_msg->rep;
1090 struct ub_packed_rrset_key* alias_rrset = NULL;
1091 struct respip_action_info actinfo = {0};
1092 actinfo.action = respip_none;
1093
1094 if(!respip_rewrite_reply(&qstate->qinfo,
1095 qstate->client_info, qstate->return_msg->rep,
1096 &new_rep, &actinfo, &alias_rrset, 0,
1097 qstate->region, qstate->env->auth_zones)) {
1098 goto servfail;
1099 }
1100 if(actinfo.action != respip_none) {
1101 /* save action info for logging on a
1102 * per-front-end-query basis */
1103 if(!(qstate->respip_action_info =
1104 regional_alloc_init(qstate->region,
1105 &actinfo, sizeof(actinfo))))
1106 {
1107 log_err("out of memory");
1108 goto servfail;
1109 }
1110 } else {
1111 qstate->respip_action_info = NULL;
1112 }
1113 if (actinfo.action == respip_always_deny ||
1114 (new_rep == qstate->return_msg->rep &&
1115 (actinfo.action == respip_deny ||
1116 actinfo.action == respip_inform_deny))) {
1117 /* for deny-variant actions (unless response-ip
1118 * data is applied), mark the query state so
1119 * the response will be dropped for all
1120 * clients. */
1121 qstate->is_drop = 1;
1122 } else if(alias_rrset) {
1123 if(!generate_cname_request(qstate, alias_rrset))
1124 goto servfail;
1125 next_state = module_wait_subquery;
1126 }
1127 qstate->return_msg->rep = new_rep;
1128 }
1129 qstate->ext_state[id] = next_state;
1130 } else
1131 qstate->ext_state[id] = module_finished;
1132
1133 return;
1134
1135 servfail:
1136 qstate->return_rcode = LDNS_RCODE_SERVFAIL;
1137 qstate->return_msg = NULL;
1138 }
1139
1140 int
respip_merge_cname(struct reply_info * base_rep,const struct query_info * qinfo,const struct reply_info * tgt_rep,const struct respip_client_info * cinfo,int must_validate,struct reply_info ** new_repp,struct regional * region,struct auth_zones * az)1141 respip_merge_cname(struct reply_info* base_rep,
1142 const struct query_info* qinfo, const struct reply_info* tgt_rep,
1143 const struct respip_client_info* cinfo, int must_validate,
1144 struct reply_info** new_repp, struct regional* region,
1145 struct auth_zones* az)
1146 {
1147 struct reply_info* new_rep;
1148 struct reply_info* tmp_rep = NULL; /* just a placeholder */
1149 struct ub_packed_rrset_key* alias_rrset = NULL; /* ditto */
1150 uint16_t tgt_rcode;
1151 size_t i, j;
1152 struct respip_action_info actinfo = {0};
1153 actinfo.action = respip_none;
1154
1155 /* If the query for the CNAME target would result in an unusual rcode,
1156 * we generally translate it as a failure for the base query
1157 * (which would then be translated into SERVFAIL). The only exception
1158 * is NXDOMAIN and YXDOMAIN, which are passed to the end client(s).
1159 * The YXDOMAIN case would be rare but still possible (when
1160 * DNSSEC-validated DNAME has been cached but synthesizing CNAME
1161 * can't be generated due to length limitation) */
1162 tgt_rcode = FLAGS_GET_RCODE(tgt_rep->flags);
1163 if((tgt_rcode != LDNS_RCODE_NOERROR &&
1164 tgt_rcode != LDNS_RCODE_NXDOMAIN &&
1165 tgt_rcode != LDNS_RCODE_YXDOMAIN) ||
1166 (must_validate && tgt_rep->security <= sec_status_bogus)) {
1167 return 0;
1168 }
1169
1170 /* see if the target reply would be subject to a response-ip action. */
1171 if(!respip_rewrite_reply(qinfo, cinfo, tgt_rep, &tmp_rep, &actinfo,
1172 &alias_rrset, 1, region, az))
1173 return 0;
1174 if(actinfo.action != respip_none) {
1175 log_info("CNAME target of redirect response-ip action would "
1176 "be subject to response-ip action, too; stripped");
1177 *new_repp = base_rep;
1178 return 1;
1179 }
1180
1181 /* Append target reply to the base. Since we cannot assume
1182 * tgt_rep->rrsets is valid throughout the lifetime of new_rep
1183 * or it can be safely shared by multiple threads, we need to make a
1184 * deep copy. */
1185 new_rep = make_new_reply_info(base_rep, region,
1186 base_rep->an_numrrsets + tgt_rep->an_numrrsets,
1187 base_rep->an_numrrsets);
1188 if(!new_rep)
1189 return 0;
1190 for(i=0,j=base_rep->an_numrrsets; i<tgt_rep->an_numrrsets; i++,j++) {
1191 new_rep->rrsets[j] = copy_rrset(tgt_rep->rrsets[i], region);
1192 if(!new_rep->rrsets[j])
1193 return 0;
1194 }
1195
1196 FLAGS_SET_RCODE(new_rep->flags, tgt_rcode);
1197 *new_repp = new_rep;
1198 return 1;
1199 }
1200
1201 void
respip_inform_super(struct module_qstate * qstate,int id,struct module_qstate * super)1202 respip_inform_super(struct module_qstate* qstate, int id,
1203 struct module_qstate* super)
1204 {
1205 struct respip_qstate* rq = (struct respip_qstate*)super->minfo[id];
1206 struct reply_info* new_rep = NULL;
1207
1208 rq->state = RESPIP_SUBQUERY_FINISHED;
1209
1210 /* respip subquery should have always been created with a valid reply
1211 * in super. */
1212 log_assert(super->return_msg && super->return_msg->rep);
1213
1214 /* return_msg can be NULL when, e.g., the sub query resulted in
1215 * SERVFAIL, in which case we regard it as a failure of the original
1216 * query. Other checks are probably redundant, but we check them
1217 * for safety. */
1218 if(!qstate->return_msg || !qstate->return_msg->rep ||
1219 qstate->return_rcode != LDNS_RCODE_NOERROR)
1220 goto fail;
1221
1222 if(!respip_merge_cname(super->return_msg->rep, &qstate->qinfo,
1223 qstate->return_msg->rep, super->client_info,
1224 super->env->need_to_validate, &new_rep, super->region,
1225 qstate->env->auth_zones))
1226 goto fail;
1227 super->return_msg->rep = new_rep;
1228 return;
1229
1230 fail:
1231 super->return_rcode = LDNS_RCODE_SERVFAIL;
1232 super->return_msg = NULL;
1233 return;
1234 }
1235
1236 void
respip_clear(struct module_qstate * qstate,int id)1237 respip_clear(struct module_qstate* qstate, int id)
1238 {
1239 qstate->minfo[id] = NULL;
1240 }
1241
1242 size_t
respip_get_mem(struct module_env * env,int id)1243 respip_get_mem(struct module_env* env, int id)
1244 {
1245 (void)env;
1246 (void)id;
1247 return 0;
1248 }
1249
1250 /**
1251 * The response-ip function block
1252 */
1253 static struct module_func_block respip_block = {
1254 "respip",
1255 &respip_init, &respip_deinit, &respip_operate, &respip_inform_super,
1256 &respip_clear, &respip_get_mem
1257 };
1258
1259 struct module_func_block*
respip_get_funcblock(void)1260 respip_get_funcblock(void)
1261 {
1262 return &respip_block;
1263 }
1264
1265 enum respip_action
resp_addr_get_action(const struct resp_addr * addr)1266 resp_addr_get_action(const struct resp_addr* addr)
1267 {
1268 return addr ? addr->action : respip_none;
1269 }
1270
1271 struct ub_packed_rrset_key*
resp_addr_get_rrset(struct resp_addr * addr)1272 resp_addr_get_rrset(struct resp_addr* addr)
1273 {
1274 return addr ? addr->data : NULL;
1275 }
1276
1277 int
respip_set_is_empty(const struct respip_set * set)1278 respip_set_is_empty(const struct respip_set* set)
1279 {
1280 return set ? set->ip_tree.count == 0 : 1;
1281 }
1282
1283 void
respip_inform_print(struct respip_action_info * respip_actinfo,uint8_t * qname,uint16_t qtype,uint16_t qclass,struct local_rrset * local_alias,struct comm_reply * repinfo)1284 respip_inform_print(struct respip_action_info* respip_actinfo, uint8_t* qname,
1285 uint16_t qtype, uint16_t qclass, struct local_rrset* local_alias,
1286 struct comm_reply* repinfo)
1287 {
1288 char srcip[128], respip[128], txt[512];
1289 unsigned port;
1290 struct respip_addr_info* respip_addr = respip_actinfo->addrinfo;
1291 size_t txtlen = 0;
1292 const char* actionstr = NULL;
1293
1294 if(local_alias)
1295 qname = local_alias->rrset->rk.dname;
1296 port = (unsigned)((repinfo->addr.ss_family == AF_INET) ?
1297 ntohs(((struct sockaddr_in*)&repinfo->addr)->sin_port) :
1298 ntohs(((struct sockaddr_in6*)&repinfo->addr)->sin6_port));
1299 addr_to_str(&repinfo->addr, repinfo->addrlen, srcip, sizeof(srcip));
1300 addr_to_str(&respip_addr->addr, respip_addr->addrlen,
1301 respip, sizeof(respip));
1302 if(respip_actinfo->rpz_log) {
1303 txtlen += snprintf(txt+txtlen, sizeof(txt)-txtlen, "%s",
1304 "RPZ applied ");
1305 if(respip_actinfo->rpz_cname_override)
1306 actionstr = rpz_action_to_string(
1307 RPZ_CNAME_OVERRIDE_ACTION);
1308 else
1309 actionstr = rpz_action_to_string(
1310 respip_action_to_rpz_action(
1311 respip_actinfo->action));
1312 }
1313 if(respip_actinfo->log_name) {
1314 txtlen += snprintf(txt+txtlen, sizeof(txt)-txtlen,
1315 "[%s] ", respip_actinfo->log_name);
1316 }
1317 snprintf(txt+txtlen, sizeof(txt)-txtlen,
1318 "%s/%d %s %s@%u", respip, respip_addr->net,
1319 (actionstr) ? actionstr : "inform", srcip, port);
1320 log_nametypeclass(NO_VERBOSE, txt, qname, qtype, qclass);
1321 }
1322