1 /* 2 * validator/val_anchor.c - validator trust anchor storage. 3 * 4 * Copyright (c) 2007, NLnet Labs. All rights reserved. 5 * 6 * This software is open source. 7 * 8 * Redistribution and use in source and binary forms, with or without 9 * modification, are permitted provided that the following conditions 10 * are met: 11 * 12 * Redistributions of source code must retain the above copyright notice, 13 * this list of conditions and the following disclaimer. 14 * 15 * Redistributions in binary form must reproduce the above copyright notice, 16 * this list of conditions and the following disclaimer in the documentation 17 * and/or other materials provided with the distribution. 18 * 19 * Neither the name of the NLNET LABS nor the names of its contributors may 20 * be used to endorse or promote products derived from this software without 21 * specific prior written permission. 22 * 23 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS 24 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT 25 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR 26 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT 27 * HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 28 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED 29 * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR 30 * PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF 31 * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING 32 * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS 33 * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 34 */ 35 36 /** 37 * \file 38 * 39 * This file contains storage for the trust anchors for the validator. 40 */ 41 #include "config.h" 42 #include <ctype.h> 43 #include "validator/val_anchor.h" 44 #include "validator/val_sigcrypt.h" 45 #include "validator/autotrust.h" 46 #include "util/data/packed_rrset.h" 47 #include "util/data/dname.h" 48 #include "util/log.h" 49 #include "util/net_help.h" 50 #include "util/config_file.h" 51 #include "util/as112.h" 52 #include "sldns/sbuffer.h" 53 #include "sldns/rrdef.h" 54 #include "sldns/str2wire.h" 55 #ifdef HAVE_GLOB_H 56 #include <glob.h> 57 #endif 58 59 int 60 anchor_cmp(const void* k1, const void* k2) 61 { 62 int m; 63 struct trust_anchor* n1 = (struct trust_anchor*)k1; 64 struct trust_anchor* n2 = (struct trust_anchor*)k2; 65 /* no need to ntohs(class) because sort order is irrelevant */ 66 if(n1->dclass != n2->dclass) { 67 if(n1->dclass < n2->dclass) 68 return -1; 69 return 1; 70 } 71 return dname_lab_cmp(n1->name, n1->namelabs, n2->name, n2->namelabs, 72 &m); 73 } 74 75 struct val_anchors* 76 anchors_create(void) 77 { 78 struct val_anchors* a = (struct val_anchors*)calloc(1, sizeof(*a)); 79 if(!a) 80 return NULL; 81 a->tree = rbtree_create(anchor_cmp); 82 if(!a->tree) { 83 anchors_delete(a); 84 return NULL; 85 } 86 a->autr = autr_global_create(); 87 if(!a->autr) { 88 anchors_delete(a); 89 return NULL; 90 } 91 lock_basic_init(&a->lock); 92 lock_protect(&a->lock, a, sizeof(*a)); 93 lock_protect(&a->lock, a->autr, sizeof(*a->autr)); 94 return a; 95 } 96 97 /** delete assembled rrset */ 98 static void 99 assembled_rrset_delete(struct ub_packed_rrset_key* pkey) 100 { 101 if(!pkey) return; 102 if(pkey->entry.data) { 103 struct packed_rrset_data* pd = (struct packed_rrset_data*) 104 pkey->entry.data; 105 free(pd->rr_data); 106 free(pd->rr_ttl); 107 free(pd->rr_len); 108 free(pd); 109 } 110 free(pkey->rk.dname); 111 free(pkey); 112 } 113 114 /** destroy locks in tree and delete autotrust anchors */ 115 static void 116 anchors_delfunc(rbnode_type* elem, void* ATTR_UNUSED(arg)) 117 { 118 struct trust_anchor* ta = (struct trust_anchor*)elem; 119 if(!ta) return; 120 if(ta->autr) { 121 autr_point_delete(ta); 122 } else { 123 struct ta_key* p, *np; 124 lock_basic_destroy(&ta->lock); 125 free(ta->name); 126 p = ta->keylist; 127 while(p) { 128 np = p->next; 129 free(p->data); 130 free(p); 131 p = np; 132 } 133 assembled_rrset_delete(ta->ds_rrset); 134 assembled_rrset_delete(ta->dnskey_rrset); 135 free(ta); 136 } 137 } 138 139 void 140 anchors_delete(struct val_anchors* anchors) 141 { 142 if(!anchors) 143 return; 144 lock_unprotect(&anchors->lock, anchors->autr); 145 lock_unprotect(&anchors->lock, anchors); 146 lock_basic_destroy(&anchors->lock); 147 if(anchors->tree) 148 traverse_postorder(anchors->tree, anchors_delfunc, NULL); 149 free(anchors->tree); 150 autr_global_delete(anchors->autr); 151 free(anchors); 152 } 153 154 void 155 anchors_init_parents_locked(struct val_anchors* anchors) 156 { 157 struct trust_anchor* node, *prev = NULL, *p; 158 int m; 159 /* nobody else can grab locks because we hold the main lock. 160 * Thus the previous items, after unlocked, are not deleted */ 161 RBTREE_FOR(node, struct trust_anchor*, anchors->tree) { 162 lock_basic_lock(&node->lock); 163 node->parent = NULL; 164 if(!prev || prev->dclass != node->dclass) { 165 prev = node; 166 lock_basic_unlock(&node->lock); 167 continue; 168 } 169 (void)dname_lab_cmp(prev->name, prev->namelabs, node->name, 170 node->namelabs, &m); /* we know prev is smaller */ 171 /* sort order like: . com. bla.com. zwb.com. net. */ 172 /* find the previous, or parent-parent-parent */ 173 for(p = prev; p; p = p->parent) 174 /* looking for name with few labels, a parent */ 175 if(p->namelabs <= m) { 176 /* ==: since prev matched m, this is closest*/ 177 /* <: prev matches more, but is not a parent, 178 * this one is a (grand)parent */ 179 node->parent = p; 180 break; 181 } 182 lock_basic_unlock(&node->lock); 183 prev = node; 184 } 185 } 186 187 /** initialise parent pointers in the tree */ 188 static void 189 init_parents(struct val_anchors* anchors) 190 { 191 lock_basic_lock(&anchors->lock); 192 anchors_init_parents_locked(anchors); 193 lock_basic_unlock(&anchors->lock); 194 } 195 196 struct trust_anchor* 197 anchor_find(struct val_anchors* anchors, uint8_t* name, int namelabs, 198 size_t namelen, uint16_t dclass) 199 { 200 struct trust_anchor key; 201 rbnode_type* n; 202 if(!name) return NULL; 203 key.node.key = &key; 204 key.name = name; 205 key.namelabs = namelabs; 206 key.namelen = namelen; 207 key.dclass = dclass; 208 lock_basic_lock(&anchors->lock); 209 n = rbtree_search(anchors->tree, &key); 210 if(n) { 211 lock_basic_lock(&((struct trust_anchor*)n->key)->lock); 212 } 213 lock_basic_unlock(&anchors->lock); 214 if(!n) 215 return NULL; 216 return (struct trust_anchor*)n->key; 217 } 218 219 /** create new trust anchor object */ 220 static struct trust_anchor* 221 anchor_new_ta(struct val_anchors* anchors, uint8_t* name, int namelabs, 222 size_t namelen, uint16_t dclass, int lockit) 223 { 224 #ifdef UNBOUND_DEBUG 225 rbnode_type* r; 226 #endif 227 struct trust_anchor* ta = (struct trust_anchor*)malloc( 228 sizeof(struct trust_anchor)); 229 if(!ta) 230 return NULL; 231 memset(ta, 0, sizeof(*ta)); 232 ta->node.key = ta; 233 ta->name = memdup(name, namelen); 234 if(!ta->name) { 235 free(ta); 236 return NULL; 237 } 238 ta->namelabs = namelabs; 239 ta->namelen = namelen; 240 ta->dclass = dclass; 241 lock_basic_init(&ta->lock); 242 if(lockit) { 243 lock_basic_lock(&anchors->lock); 244 } 245 #ifdef UNBOUND_DEBUG 246 r = 247 #else 248 (void) 249 #endif 250 rbtree_insert(anchors->tree, &ta->node); 251 if(lockit) { 252 lock_basic_unlock(&anchors->lock); 253 } 254 log_assert(r != NULL); 255 return ta; 256 } 257 258 /** find trustanchor key by exact data match */ 259 static struct ta_key* 260 anchor_find_key(struct trust_anchor* ta, uint8_t* rdata, size_t rdata_len, 261 uint16_t type) 262 { 263 struct ta_key* k; 264 for(k = ta->keylist; k; k = k->next) { 265 if(k->type == type && k->len == rdata_len && 266 memcmp(k->data, rdata, rdata_len) == 0) 267 return k; 268 } 269 return NULL; 270 } 271 272 /** create new trustanchor key */ 273 static struct ta_key* 274 anchor_new_ta_key(uint8_t* rdata, size_t rdata_len, uint16_t type) 275 { 276 struct ta_key* k = (struct ta_key*)malloc(sizeof(*k)); 277 if(!k) 278 return NULL; 279 memset(k, 0, sizeof(*k)); 280 k->data = memdup(rdata, rdata_len); 281 if(!k->data) { 282 free(k); 283 return NULL; 284 } 285 k->len = rdata_len; 286 k->type = type; 287 return k; 288 } 289 290 /** 291 * This routine adds a new RR to a trust anchor. The trust anchor may not 292 * exist yet, and is created if not. The RR can be DS or DNSKEY. 293 * This routine will also remove duplicates; storing them only once. 294 * @param anchors: anchor storage. 295 * @param name: name of trust anchor (wireformat) 296 * @param type: type or RR 297 * @param dclass: class of RR 298 * @param rdata: rdata wireformat, starting with rdlength. 299 * If NULL, nothing is stored, but an entry is created. 300 * @param rdata_len: length of rdata including rdlength. 301 * @return: NULL on error, else the trust anchor. 302 */ 303 static struct trust_anchor* 304 anchor_store_new_key(struct val_anchors* anchors, uint8_t* name, uint16_t type, 305 uint16_t dclass, uint8_t* rdata, size_t rdata_len) 306 { 307 struct ta_key* k; 308 struct trust_anchor* ta; 309 int namelabs; 310 size_t namelen; 311 namelabs = dname_count_size_labels(name, &namelen); 312 if(type != LDNS_RR_TYPE_DS && type != LDNS_RR_TYPE_DNSKEY) { 313 log_err("Bad type for trust anchor"); 314 return 0; 315 } 316 /* lookup or create trustanchor */ 317 ta = anchor_find(anchors, name, namelabs, namelen, dclass); 318 if(!ta) { 319 ta = anchor_new_ta(anchors, name, namelabs, namelen, dclass, 1); 320 if(!ta) 321 return NULL; 322 lock_basic_lock(&ta->lock); 323 } 324 if(!rdata) { 325 lock_basic_unlock(&ta->lock); 326 return ta; 327 } 328 /* look for duplicates */ 329 if(anchor_find_key(ta, rdata, rdata_len, type)) { 330 lock_basic_unlock(&ta->lock); 331 return ta; 332 } 333 k = anchor_new_ta_key(rdata, rdata_len, type); 334 if(!k) { 335 lock_basic_unlock(&ta->lock); 336 return NULL; 337 } 338 /* add new key */ 339 if(type == LDNS_RR_TYPE_DS) 340 ta->numDS++; 341 else ta->numDNSKEY++; 342 k->next = ta->keylist; 343 ta->keylist = k; 344 lock_basic_unlock(&ta->lock); 345 return ta; 346 } 347 348 /** 349 * Add new RR. It converts ldns RR to wire format. 350 * @param anchors: anchor storage. 351 * @param rr: the wirerr. 352 * @param rl: length of rr. 353 * @param dl: length of dname. 354 * @return NULL on error, else the trust anchor. 355 */ 356 static struct trust_anchor* 357 anchor_store_new_rr(struct val_anchors* anchors, uint8_t* rr, size_t rl, 358 size_t dl) 359 { 360 struct trust_anchor* ta; 361 if(!(ta=anchor_store_new_key(anchors, rr, 362 sldns_wirerr_get_type(rr, rl, dl), 363 sldns_wirerr_get_class(rr, rl, dl), 364 sldns_wirerr_get_rdatawl(rr, rl, dl), 365 sldns_wirerr_get_rdatalen(rr, rl, dl)+2))) { 366 return NULL; 367 } 368 log_nametypeclass(VERB_QUERY, "adding trusted key", 369 rr, sldns_wirerr_get_type(rr, rl, dl), 370 sldns_wirerr_get_class(rr, rl, dl)); 371 return ta; 372 } 373 374 /** 375 * Insert insecure anchor 376 * @param anchors: anchor storage. 377 * @param str: the domain name. 378 * @return NULL on error, Else last trust anchor point 379 */ 380 static struct trust_anchor* 381 anchor_insert_insecure(struct val_anchors* anchors, const char* str) 382 { 383 struct trust_anchor* ta; 384 size_t dname_len = 0; 385 uint8_t* nm = sldns_str2wire_dname(str, &dname_len); 386 if(!nm) { 387 log_err("parse error in domain name '%s'", str); 388 return NULL; 389 } 390 ta = anchor_store_new_key(anchors, nm, LDNS_RR_TYPE_DS, 391 LDNS_RR_CLASS_IN, NULL, 0); 392 free(nm); 393 return ta; 394 } 395 396 struct trust_anchor* 397 anchor_store_str(struct val_anchors* anchors, sldns_buffer* buffer, 398 const char* str) 399 { 400 struct trust_anchor* ta; 401 uint8_t* rr = sldns_buffer_begin(buffer); 402 size_t len = sldns_buffer_capacity(buffer), dname_len = 0; 403 int status = sldns_str2wire_rr_buf(str, rr, &len, &dname_len, 404 0, NULL, 0, NULL, 0); 405 if(status != 0) { 406 log_err("error parsing trust anchor %s: at %d: %s", 407 str, LDNS_WIREPARSE_OFFSET(status), 408 sldns_get_errorstr_parse(status)); 409 return NULL; 410 } 411 if(!(ta=anchor_store_new_rr(anchors, rr, len, dname_len))) { 412 log_err("out of memory"); 413 return NULL; 414 } 415 return ta; 416 } 417 418 /** 419 * Read a file with trust anchors 420 * @param anchors: anchor storage. 421 * @param buffer: parsing buffer. 422 * @param fname: string. 423 * @param onlyone: only one trust anchor allowed in file. 424 * @return NULL on error. Else last trust-anchor point. 425 */ 426 static struct trust_anchor* 427 anchor_read_file(struct val_anchors* anchors, sldns_buffer* buffer, 428 const char* fname, int onlyone) 429 { 430 struct trust_anchor* ta = NULL, *tanew; 431 struct sldns_file_parse_state pst; 432 int status; 433 size_t len, dname_len; 434 uint8_t* rr = sldns_buffer_begin(buffer); 435 int ok = 1; 436 FILE* in = fopen(fname, "r"); 437 if(!in) { 438 log_err("error opening file %s: %s", fname, strerror(errno)); 439 return 0; 440 } 441 memset(&pst, 0, sizeof(pst)); 442 pst.default_ttl = 3600; 443 pst.lineno = 1; 444 while(!feof(in)) { 445 len = sldns_buffer_capacity(buffer); 446 dname_len = 0; 447 status = sldns_fp2wire_rr_buf(in, rr, &len, &dname_len, &pst); 448 if(len == 0) /* empty, $TTL, $ORIGIN */ 449 continue; 450 if(status != 0) { 451 log_err("parse error in %s:%d:%d : %s", fname, 452 pst.lineno, LDNS_WIREPARSE_OFFSET(status), 453 sldns_get_errorstr_parse(status)); 454 ok = 0; 455 break; 456 } 457 if(sldns_wirerr_get_type(rr, len, dname_len) != 458 LDNS_RR_TYPE_DS && sldns_wirerr_get_type(rr, len, 459 dname_len) != LDNS_RR_TYPE_DNSKEY) { 460 continue; 461 } 462 if(!(tanew=anchor_store_new_rr(anchors, rr, len, dname_len))) { 463 log_err("mem error at %s line %d", fname, pst.lineno); 464 ok = 0; 465 break; 466 } 467 if(onlyone && ta && ta != tanew) { 468 log_err("error at %s line %d: no multiple anchor " 469 "domains allowed (you can have multiple " 470 "keys, but they must have the same name).", 471 fname, pst.lineno); 472 ok = 0; 473 break; 474 } 475 ta = tanew; 476 } 477 fclose(in); 478 if(!ok) return NULL; 479 /* empty file is OK when multiple anchors are allowed */ 480 if(!onlyone && !ta) return (struct trust_anchor*)1; 481 return ta; 482 } 483 484 /** skip file to end of line */ 485 static void 486 skip_to_eol(FILE* in, int *c) 487 { 488 while((*c = getc(in)) != EOF ) { 489 if(*c == '\n') 490 return; 491 } 492 } 493 494 /** true for special characters in bind configs */ 495 static int 496 is_bind_special(int c) 497 { 498 switch(c) { 499 case '{': 500 case '}': 501 case '"': 502 case ';': 503 return 1; 504 } 505 return 0; 506 } 507 508 /** 509 * Read a keyword skipping bind comments; spaces, specials, restkeywords. 510 * The file is split into the following tokens: 511 * * special characters, on their own, rdlen=1, { } doublequote ; 512 * * whitespace becomes a single ' ' or tab. Newlines become spaces. 513 * * other words ('keywords') 514 * * comments are skipped if desired 515 * / / C++ style comment to end of line 516 * # to end of line 517 * / * C style comment * / 518 * @param in: file to read from. 519 * @param buf: buffer, what is read is stored after current buffer position. 520 * Space is left in the buffer to write a terminating 0. 521 * @param line: line number is increased per line, for error reports. 522 * @param comments: if 0, comments are not possible and become text. 523 * if 1, comments are skipped entirely. 524 * In BIND files, this is when reading quoted strings, for example 525 * " base 64 text with / / in there " 526 * @return the number of character written to the buffer. 527 * 0 on end of file. 528 */ 529 static int 530 readkeyword_bindfile(FILE* in, sldns_buffer* buf, int* line, int comments) 531 { 532 int c; 533 int numdone = 0; 534 while((c = getc(in)) != EOF ) { 535 if(comments && c == '#') { /* # blabla */ 536 skip_to_eol(in, &c); 537 if(c == EOF) { 538 log_err("trusted-keys, %d, got EOF", *line); 539 return 0; 540 } 541 (*line)++; 542 continue; 543 } else if(comments && c=='/' && numdone>0 && /* /_/ bla*/ 544 sldns_buffer_read_u8_at(buf, 545 sldns_buffer_position(buf)-1) == '/') { 546 sldns_buffer_skip(buf, -1); 547 numdone--; 548 skip_to_eol(in, &c); 549 if(c == EOF) { 550 log_err("trusted-keys, %d, got EOF", *line); 551 return 0; 552 } 553 (*line)++; 554 continue; 555 } else if(comments && c=='*' && numdone>0 && /* /_* bla *_/ */ 556 sldns_buffer_read_u8_at(buf, 557 sldns_buffer_position(buf)-1) == '/') { 558 sldns_buffer_skip(buf, -1); 559 numdone--; 560 /* skip to end of comment */ 561 while(c != EOF && (c=getc(in)) != EOF ) { 562 if(c == '*') { 563 if((c=getc(in)) == '/') 564 break; 565 } 566 if(c == '\n') 567 (*line)++; 568 } 569 if(c == EOF) { 570 log_err("trusted-keys, %d, got EOF", *line); 571 return 0; 572 } 573 continue; 574 } 575 /* not a comment, complete the keyword */ 576 if(numdone > 0) { 577 /* check same type */ 578 if(isspace((unsigned char)c)) { 579 ungetc(c, in); 580 return numdone; 581 } 582 if(is_bind_special(c)) { 583 ungetc(c, in); 584 return numdone; 585 } 586 } 587 if(c == '\n') { 588 c = ' '; 589 (*line)++; 590 } 591 /* space for 1 char + 0 string terminator */ 592 if(sldns_buffer_remaining(buf) < 2) { 593 log_err("trusted-keys, %d, string too long", *line); 594 return 0; 595 } 596 sldns_buffer_write_u8(buf, (uint8_t)c); 597 numdone++; 598 if(isspace((unsigned char)c)) { 599 /* collate whitespace into ' ' */ 600 while((c = getc(in)) != EOF ) { 601 if(c == '\n') 602 (*line)++; 603 if(!isspace((unsigned char)c)) { 604 ungetc(c, in); 605 break; 606 } 607 } 608 if(c == EOF) { 609 log_err("trusted-keys, %d, got EOF", *line); 610 return 0; 611 } 612 return numdone; 613 } 614 if(is_bind_special(c)) 615 return numdone; 616 } 617 return numdone; 618 } 619 620 /** skip through file to { or ; */ 621 static int 622 skip_to_special(FILE* in, sldns_buffer* buf, int* line, int spec) 623 { 624 int rdlen; 625 sldns_buffer_clear(buf); 626 while((rdlen=readkeyword_bindfile(in, buf, line, 1))) { 627 if(rdlen == 1 && isspace((unsigned char)*sldns_buffer_begin(buf))) { 628 sldns_buffer_clear(buf); 629 continue; 630 } 631 if(rdlen != 1 || *sldns_buffer_begin(buf) != (uint8_t)spec) { 632 sldns_buffer_write_u8(buf, 0); 633 log_err("trusted-keys, line %d, expected %c", 634 *line, spec); 635 return 0; 636 } 637 return 1; 638 } 639 log_err("trusted-keys, line %d, expected %c, read failed", *line, spec); 640 return 0; 641 } 642 643 /** 644 * read contents of trusted-keys{ ... ; clauses and insert keys into storage. 645 * @param anchors: where to store keys 646 * @param buf: buffer to use 647 * @param line: line number in file 648 * @param in: file to read from. 649 * @return 0 on error. 650 */ 651 static int 652 process_bind_contents(struct val_anchors* anchors, sldns_buffer* buf, 653 int* line, FILE* in) 654 { 655 /* loop over contents, collate strings before ; */ 656 /* contents is (numbered): 0 1 2 3 4 5 6 7 8 */ 657 /* name. 257 3 5 base64 base64 */ 658 /* quoted value: 0 "111" 0 0 0 0 0 0 0 */ 659 /* comments value: 1 "000" 1 1 1 "0 0 0 0" 1 */ 660 int contnum = 0; 661 int quoted = 0; 662 int comments = 1; 663 int rdlen; 664 char* str = 0; 665 sldns_buffer_clear(buf); 666 while((rdlen=readkeyword_bindfile(in, buf, line, comments))) { 667 if(rdlen == 1 && sldns_buffer_position(buf) == 1 668 && isspace((unsigned char)*sldns_buffer_begin(buf))) { 669 /* starting whitespace is removed */ 670 sldns_buffer_clear(buf); 671 continue; 672 } else if(rdlen == 1 && sldns_buffer_current(buf)[-1] == '"') { 673 /* remove " from the string */ 674 if(contnum == 0) { 675 quoted = 1; 676 comments = 0; 677 } 678 sldns_buffer_skip(buf, -1); 679 if(contnum > 0 && quoted) { 680 if(sldns_buffer_remaining(buf) < 8+1) { 681 log_err("line %d, too long", *line); 682 return 0; 683 } 684 sldns_buffer_write(buf, " DNSKEY ", 8); 685 quoted = 0; 686 comments = 1; 687 } else if(contnum > 0) 688 comments = !comments; 689 continue; 690 } else if(rdlen == 1 && sldns_buffer_current(buf)[-1] == ';') { 691 692 if(contnum < 5) { 693 sldns_buffer_write_u8(buf, 0); 694 log_err("line %d, bad key", *line); 695 return 0; 696 } 697 sldns_buffer_skip(buf, -1); 698 sldns_buffer_write_u8(buf, 0); 699 str = strdup((char*)sldns_buffer_begin(buf)); 700 if(!str) { 701 log_err("line %d, allocation failure", *line); 702 return 0; 703 } 704 if(!anchor_store_str(anchors, buf, str)) { 705 log_err("line %d, bad key", *line); 706 free(str); 707 return 0; 708 } 709 free(str); 710 sldns_buffer_clear(buf); 711 contnum = 0; 712 quoted = 0; 713 comments = 1; 714 continue; 715 } else if(rdlen == 1 && sldns_buffer_current(buf)[-1] == '}') { 716 if(contnum > 0) { 717 sldns_buffer_write_u8(buf, 0); 718 log_err("line %d, bad key before }", *line); 719 return 0; 720 } 721 return 1; 722 } else if(rdlen == 1 && 723 isspace((unsigned char)sldns_buffer_current(buf)[-1])) { 724 /* leave whitespace here */ 725 } else { 726 /* not space or whatnot, so actual content */ 727 contnum ++; 728 if(contnum == 1 && !quoted) { 729 if(sldns_buffer_remaining(buf) < 8+1) { 730 log_err("line %d, too long", *line); 731 return 0; 732 } 733 sldns_buffer_write(buf, " DNSKEY ", 8); 734 } 735 } 736 } 737 738 log_err("line %d, EOF before }", *line); 739 return 0; 740 } 741 742 /** 743 * Read a BIND9 like file with trust anchors in named.conf format. 744 * @param anchors: anchor storage. 745 * @param buffer: parsing buffer. 746 * @param fname: string. 747 * @return false on error. 748 */ 749 static int 750 anchor_read_bind_file(struct val_anchors* anchors, sldns_buffer* buffer, 751 const char* fname) 752 { 753 int line_nr = 1; 754 FILE* in = fopen(fname, "r"); 755 int rdlen = 0; 756 if(!in) { 757 log_err("error opening file %s: %s", fname, strerror(errno)); 758 return 0; 759 } 760 verbose(VERB_QUERY, "reading in bind-compat-mode: '%s'", fname); 761 /* scan for trusted-keys keyword, ignore everything else */ 762 sldns_buffer_clear(buffer); 763 while((rdlen=readkeyword_bindfile(in, buffer, &line_nr, 1)) != 0) { 764 if(rdlen != 12 || strncmp((char*)sldns_buffer_begin(buffer), 765 "trusted-keys", 12) != 0) { 766 sldns_buffer_clear(buffer); 767 /* ignore everything but trusted-keys */ 768 continue; 769 } 770 if(!skip_to_special(in, buffer, &line_nr, '{')) { 771 log_err("error in trusted key: \"%s\"", fname); 772 fclose(in); 773 return 0; 774 } 775 /* process contents */ 776 if(!process_bind_contents(anchors, buffer, &line_nr, in)) { 777 log_err("error in trusted key: \"%s\"", fname); 778 fclose(in); 779 return 0; 780 } 781 if(!skip_to_special(in, buffer, &line_nr, ';')) { 782 log_err("error in trusted key: \"%s\"", fname); 783 fclose(in); 784 return 0; 785 } 786 sldns_buffer_clear(buffer); 787 } 788 fclose(in); 789 return 1; 790 } 791 792 /** 793 * Read a BIND9 like files with trust anchors in named.conf format. 794 * Performs wildcard processing of name. 795 * @param anchors: anchor storage. 796 * @param buffer: parsing buffer. 797 * @param pat: pattern string. (can be wildcarded) 798 * @return false on error. 799 */ 800 static int 801 anchor_read_bind_file_wild(struct val_anchors* anchors, sldns_buffer* buffer, 802 const char* pat) 803 { 804 #ifdef HAVE_GLOB 805 glob_t g; 806 size_t i; 807 int r, flags; 808 if(!strchr(pat, '*') && !strchr(pat, '?') && !strchr(pat, '[') && 809 !strchr(pat, '{') && !strchr(pat, '~')) { 810 return anchor_read_bind_file(anchors, buffer, pat); 811 } 812 verbose(VERB_QUERY, "wildcard found, processing %s", pat); 813 flags = 0 814 #ifdef GLOB_ERR 815 | GLOB_ERR 816 #endif 817 #ifdef GLOB_NOSORT 818 | GLOB_NOSORT 819 #endif 820 #ifdef GLOB_BRACE 821 | GLOB_BRACE 822 #endif 823 #ifdef GLOB_TILDE 824 | GLOB_TILDE 825 #endif 826 ; 827 memset(&g, 0, sizeof(g)); 828 r = glob(pat, flags, NULL, &g); 829 if(r) { 830 /* some error */ 831 if(r == GLOB_NOMATCH) { 832 verbose(VERB_QUERY, "trusted-keys-file: " 833 "no matches for %s", pat); 834 return 1; 835 } else if(r == GLOB_NOSPACE) { 836 log_err("wildcard trusted-keys-file %s: " 837 "pattern out of memory", pat); 838 } else if(r == GLOB_ABORTED) { 839 log_err("wildcard trusted-keys-file %s: expansion " 840 "aborted (%s)", pat, strerror(errno)); 841 } else { 842 log_err("wildcard trusted-keys-file %s: expansion " 843 "failed (%s)", pat, strerror(errno)); 844 } 845 /* ignore globs that yield no files */ 846 return 1; 847 } 848 /* process files found, if any */ 849 for(i=0; i<(size_t)g.gl_pathc; i++) { 850 if(!anchor_read_bind_file(anchors, buffer, g.gl_pathv[i])) { 851 log_err("error reading wildcard " 852 "trusted-keys-file: %s", g.gl_pathv[i]); 853 globfree(&g); 854 return 0; 855 } 856 } 857 globfree(&g); 858 return 1; 859 #else /* not HAVE_GLOB */ 860 return anchor_read_bind_file(anchors, buffer, pat); 861 #endif /* HAVE_GLOB */ 862 } 863 864 /** 865 * Assemble an rrset structure for the type 866 * @param ta: trust anchor. 867 * @param num: number of items to fetch from list. 868 * @param type: fetch only items of this type. 869 * @return rrset or NULL on error. 870 */ 871 static struct ub_packed_rrset_key* 872 assemble_it(struct trust_anchor* ta, size_t num, uint16_t type) 873 { 874 struct ub_packed_rrset_key* pkey = (struct ub_packed_rrset_key*) 875 malloc(sizeof(*pkey)); 876 struct packed_rrset_data* pd; 877 struct ta_key* tk; 878 size_t i; 879 if(!pkey) 880 return NULL; 881 memset(pkey, 0, sizeof(*pkey)); 882 pkey->rk.dname = memdup(ta->name, ta->namelen); 883 if(!pkey->rk.dname) { 884 free(pkey); 885 return NULL; 886 } 887 888 pkey->rk.dname_len = ta->namelen; 889 pkey->rk.type = htons(type); 890 pkey->rk.rrset_class = htons(ta->dclass); 891 /* The rrset is build in an uncompressed way. This means it 892 * cannot be copied in the normal way. */ 893 pd = (struct packed_rrset_data*)malloc(sizeof(*pd)); 894 if(!pd) { 895 free(pkey->rk.dname); 896 free(pkey); 897 return NULL; 898 } 899 memset(pd, 0, sizeof(*pd)); 900 pd->count = num; 901 pd->trust = rrset_trust_ultimate; 902 pd->rr_len = (size_t*)reallocarray(NULL, num, sizeof(size_t)); 903 if(!pd->rr_len) { 904 free(pd); 905 free(pkey->rk.dname); 906 free(pkey); 907 return NULL; 908 } 909 pd->rr_ttl = (time_t*)reallocarray(NULL, num, sizeof(time_t)); 910 if(!pd->rr_ttl) { 911 free(pd->rr_len); 912 free(pd); 913 free(pkey->rk.dname); 914 free(pkey); 915 return NULL; 916 } 917 pd->rr_data = (uint8_t**)reallocarray(NULL, num, sizeof(uint8_t*)); 918 if(!pd->rr_data) { 919 free(pd->rr_ttl); 920 free(pd->rr_len); 921 free(pd); 922 free(pkey->rk.dname); 923 free(pkey); 924 return NULL; 925 } 926 /* fill in rrs */ 927 i=0; 928 for(tk = ta->keylist; tk; tk = tk->next) { 929 if(tk->type != type) 930 continue; 931 pd->rr_len[i] = tk->len; 932 /* reuse data ptr to allocation in talist */ 933 pd->rr_data[i] = tk->data; 934 pd->rr_ttl[i] = 0; 935 i++; 936 } 937 pkey->entry.data = (void*)pd; 938 return pkey; 939 } 940 941 /** 942 * Assemble structures for the trust DS and DNSKEY rrsets. 943 * @param ta: trust anchor 944 * @return: false on error. 945 */ 946 static int 947 anchors_assemble(struct trust_anchor* ta) 948 { 949 if(ta->numDS > 0) { 950 ta->ds_rrset = assemble_it(ta, ta->numDS, LDNS_RR_TYPE_DS); 951 if(!ta->ds_rrset) 952 return 0; 953 } 954 if(ta->numDNSKEY > 0) { 955 ta->dnskey_rrset = assemble_it(ta, ta->numDNSKEY, 956 LDNS_RR_TYPE_DNSKEY); 957 if(!ta->dnskey_rrset) 958 return 0; 959 } 960 return 1; 961 } 962 963 /** 964 * Check DS algos for support, warn if not. 965 * @param ta: trust anchor 966 * @return number of DS anchors with unsupported algorithms. 967 */ 968 static size_t 969 anchors_ds_unsupported(struct trust_anchor* ta) 970 { 971 size_t i, num = 0; 972 for(i=0; i<ta->numDS; i++) { 973 if(!ds_digest_algo_is_supported(ta->ds_rrset, i) || 974 !ds_key_algo_is_supported(ta->ds_rrset, i)) 975 num++; 976 } 977 return num; 978 } 979 980 /** 981 * Check DNSKEY algos for support, warn if not. 982 * @param ta: trust anchor 983 * @return number of DNSKEY anchors with unsupported algorithms. 984 */ 985 static size_t 986 anchors_dnskey_unsupported(struct trust_anchor* ta) 987 { 988 size_t i, num = 0; 989 for(i=0; i<ta->numDNSKEY; i++) { 990 if(!dnskey_algo_is_supported(ta->dnskey_rrset, i) || 991 !dnskey_size_is_supported(ta->dnskey_rrset, i)) 992 num++; 993 } 994 return num; 995 } 996 997 /** 998 * Assemble the rrsets in the anchors, ready for use by validator. 999 * @param anchors: trust anchor storage. 1000 * @return: false on error. 1001 */ 1002 static int 1003 anchors_assemble_rrsets(struct val_anchors* anchors) 1004 { 1005 struct trust_anchor* ta; 1006 struct trust_anchor* next; 1007 size_t nods, nokey; 1008 lock_basic_lock(&anchors->lock); 1009 ta=(struct trust_anchor*)rbtree_first(anchors->tree); 1010 while((rbnode_type*)ta != RBTREE_NULL) { 1011 next = (struct trust_anchor*)rbtree_next(&ta->node); 1012 lock_basic_lock(&ta->lock); 1013 if(ta->autr || (ta->numDS == 0 && ta->numDNSKEY == 0)) { 1014 lock_basic_unlock(&ta->lock); 1015 ta = next; /* skip */ 1016 continue; 1017 } 1018 if(!anchors_assemble(ta)) { 1019 log_err("out of memory"); 1020 lock_basic_unlock(&ta->lock); 1021 lock_basic_unlock(&anchors->lock); 1022 return 0; 1023 } 1024 nods = anchors_ds_unsupported(ta); 1025 nokey = anchors_dnskey_unsupported(ta); 1026 if(nods) { 1027 log_nametypeclass(NO_VERBOSE, "warning: unsupported " 1028 "algorithm for trust anchor", 1029 ta->name, LDNS_RR_TYPE_DS, ta->dclass); 1030 } 1031 if(nokey) { 1032 log_nametypeclass(NO_VERBOSE, "warning: unsupported " 1033 "algorithm for trust anchor", 1034 ta->name, LDNS_RR_TYPE_DNSKEY, ta->dclass); 1035 } 1036 if(nods == ta->numDS && nokey == ta->numDNSKEY) { 1037 char b[LDNS_MAX_DOMAINLEN]; 1038 dname_str(ta->name, b); 1039 log_warn("trust anchor %s has no supported algorithms," 1040 " the anchor is ignored (check if you need to" 1041 " upgrade unbound and " 1042 #ifdef HAVE_LIBRESSL 1043 "libressl" 1044 #else 1045 "openssl" 1046 #endif 1047 ")", b); 1048 (void)rbtree_delete(anchors->tree, &ta->node); 1049 lock_basic_unlock(&ta->lock); 1050 anchors_delfunc(&ta->node, NULL); 1051 ta = next; 1052 continue; 1053 } 1054 lock_basic_unlock(&ta->lock); 1055 ta = next; 1056 } 1057 lock_basic_unlock(&anchors->lock); 1058 return 1; 1059 } 1060 1061 int 1062 anchors_apply_cfg(struct val_anchors* anchors, struct config_file* cfg) 1063 { 1064 struct config_strlist* f; 1065 const char** zstr; 1066 char* nm; 1067 sldns_buffer* parsebuf = sldns_buffer_new(65535); 1068 if(!parsebuf) { 1069 log_err("malloc error in anchors_apply_cfg."); 1070 return 0; 1071 } 1072 if(cfg->insecure_lan_zones) { 1073 for(zstr = as112_zones; *zstr; zstr++) { 1074 if(!anchor_insert_insecure(anchors, *zstr)) { 1075 log_err("error in insecure-lan-zones: %s", *zstr); 1076 sldns_buffer_free(parsebuf); 1077 return 0; 1078 } 1079 } 1080 } 1081 for(f = cfg->domain_insecure; f; f = f->next) { 1082 if(!f->str || f->str[0] == 0) /* empty "" */ 1083 continue; 1084 if(!anchor_insert_insecure(anchors, f->str)) { 1085 log_err("error in domain-insecure: %s", f->str); 1086 sldns_buffer_free(parsebuf); 1087 return 0; 1088 } 1089 } 1090 for(f = cfg->trust_anchor_file_list; f; f = f->next) { 1091 if(!f->str || f->str[0] == 0) /* empty "" */ 1092 continue; 1093 nm = f->str; 1094 if(cfg->chrootdir && cfg->chrootdir[0] && strncmp(nm, 1095 cfg->chrootdir, strlen(cfg->chrootdir)) == 0) 1096 nm += strlen(cfg->chrootdir); 1097 if(!anchor_read_file(anchors, parsebuf, nm, 0)) { 1098 log_err("error reading trust-anchor-file: %s", f->str); 1099 sldns_buffer_free(parsebuf); 1100 return 0; 1101 } 1102 } 1103 for(f = cfg->trusted_keys_file_list; f; f = f->next) { 1104 if(!f->str || f->str[0] == 0) /* empty "" */ 1105 continue; 1106 nm = f->str; 1107 if(cfg->chrootdir && cfg->chrootdir[0] && strncmp(nm, 1108 cfg->chrootdir, strlen(cfg->chrootdir)) == 0) 1109 nm += strlen(cfg->chrootdir); 1110 if(!anchor_read_bind_file_wild(anchors, parsebuf, nm)) { 1111 log_err("error reading trusted-keys-file: %s", f->str); 1112 sldns_buffer_free(parsebuf); 1113 return 0; 1114 } 1115 } 1116 for(f = cfg->trust_anchor_list; f; f = f->next) { 1117 if(!f->str || f->str[0] == 0) /* empty "" */ 1118 continue; 1119 if(!anchor_store_str(anchors, parsebuf, f->str)) { 1120 log_err("error in trust-anchor: \"%s\"", f->str); 1121 sldns_buffer_free(parsebuf); 1122 return 0; 1123 } 1124 } 1125 /* do autr last, so that it sees what anchors are filled by other 1126 * means can can print errors about double config for the name */ 1127 for(f = cfg->auto_trust_anchor_file_list; f; f = f->next) { 1128 if(!f->str || f->str[0] == 0) /* empty "" */ 1129 continue; 1130 nm = f->str; 1131 if(cfg->chrootdir && cfg->chrootdir[0] && strncmp(nm, 1132 cfg->chrootdir, strlen(cfg->chrootdir)) == 0) 1133 nm += strlen(cfg->chrootdir); 1134 if(!autr_read_file(anchors, nm)) { 1135 log_err("error reading auto-trust-anchor-file: %s", 1136 f->str); 1137 sldns_buffer_free(parsebuf); 1138 return 0; 1139 } 1140 } 1141 /* first assemble, since it may delete useless anchors */ 1142 anchors_assemble_rrsets(anchors); 1143 init_parents(anchors); 1144 sldns_buffer_free(parsebuf); 1145 if(verbosity >= VERB_ALGO) autr_debug_print(anchors); 1146 return 1; 1147 } 1148 1149 struct trust_anchor* 1150 anchors_lookup(struct val_anchors* anchors, 1151 uint8_t* qname, size_t qname_len, uint16_t qclass) 1152 { 1153 struct trust_anchor key; 1154 struct trust_anchor* result; 1155 rbnode_type* res = NULL; 1156 key.node.key = &key; 1157 key.name = qname; 1158 key.namelabs = dname_count_labels(qname); 1159 key.namelen = qname_len; 1160 key.dclass = qclass; 1161 lock_basic_lock(&anchors->lock); 1162 if(rbtree_find_less_equal(anchors->tree, &key, &res)) { 1163 /* exact */ 1164 result = (struct trust_anchor*)res; 1165 } else { 1166 /* smaller element (or no element) */ 1167 int m; 1168 result = (struct trust_anchor*)res; 1169 if(!result || result->dclass != qclass) { 1170 lock_basic_unlock(&anchors->lock); 1171 return NULL; 1172 } 1173 /* count number of labels matched */ 1174 (void)dname_lab_cmp(result->name, result->namelabs, key.name, 1175 key.namelabs, &m); 1176 while(result) { /* go up until qname is subdomain of stub */ 1177 if(result->namelabs <= m) 1178 break; 1179 result = result->parent; 1180 } 1181 } 1182 if(result) { 1183 lock_basic_lock(&result->lock); 1184 } 1185 lock_basic_unlock(&anchors->lock); 1186 return result; 1187 } 1188 1189 /** Get memory usage of assembled key rrset */ 1190 static size_t 1191 assembled_rrset_get_mem(struct ub_packed_rrset_key* pkey) 1192 { 1193 size_t s; 1194 if(!pkey) 1195 return 0; 1196 s = sizeof(*pkey) + pkey->rk.dname_len; 1197 if(pkey->entry.data) { 1198 struct packed_rrset_data* pd = (struct packed_rrset_data*) 1199 pkey->entry.data; 1200 s += sizeof(*pd) + pd->count * (sizeof(size_t)+sizeof(time_t)+ 1201 sizeof(uint8_t*)); 1202 } 1203 return s; 1204 } 1205 1206 size_t 1207 anchors_get_mem(struct val_anchors* anchors) 1208 { 1209 struct trust_anchor *ta; 1210 struct ta_key *k; 1211 size_t s; 1212 if(!anchors) return 0; 1213 s = sizeof(*anchors); 1214 lock_basic_lock(&anchors->lock); 1215 RBTREE_FOR(ta, struct trust_anchor*, anchors->tree) { 1216 lock_basic_lock(&ta->lock); 1217 s += sizeof(*ta) + ta->namelen; 1218 /* keys and so on */ 1219 for(k = ta->keylist; k; k = k->next) { 1220 s += sizeof(*k) + k->len; 1221 } 1222 s += assembled_rrset_get_mem(ta->ds_rrset); 1223 s += assembled_rrset_get_mem(ta->dnskey_rrset); 1224 if(ta->autr) { 1225 struct autr_ta* p; 1226 s += sizeof(*ta->autr); 1227 if(ta->autr->file) 1228 s += strlen(ta->autr->file); 1229 for(p = ta->autr->keys; p; p=p->next) { 1230 s += sizeof(*p) + p->rr_len; 1231 } 1232 } 1233 lock_basic_unlock(&ta->lock); 1234 } 1235 lock_basic_unlock(&anchors->lock); 1236 return s; 1237 } 1238 1239 int 1240 anchors_add_insecure(struct val_anchors* anchors, uint16_t c, uint8_t* nm) 1241 { 1242 struct trust_anchor key; 1243 key.node.key = &key; 1244 key.name = nm; 1245 key.namelabs = dname_count_size_labels(nm, &key.namelen); 1246 key.dclass = c; 1247 lock_basic_lock(&anchors->lock); 1248 if(rbtree_search(anchors->tree, &key)) { 1249 lock_basic_unlock(&anchors->lock); 1250 /* nothing to do, already an anchor or insecure point */ 1251 return 1; 1252 } 1253 if(!anchor_new_ta(anchors, nm, key.namelabs, key.namelen, c, 0)) { 1254 log_err("out of memory"); 1255 lock_basic_unlock(&anchors->lock); 1256 return 0; 1257 } 1258 /* no other contents in new ta, because it is insecure point */ 1259 anchors_init_parents_locked(anchors); 1260 lock_basic_unlock(&anchors->lock); 1261 return 1; 1262 } 1263 1264 void 1265 anchors_delete_insecure(struct val_anchors* anchors, uint16_t c, 1266 uint8_t* nm) 1267 { 1268 struct trust_anchor key; 1269 struct trust_anchor* ta; 1270 key.node.key = &key; 1271 key.name = nm; 1272 key.namelabs = dname_count_size_labels(nm, &key.namelen); 1273 key.dclass = c; 1274 lock_basic_lock(&anchors->lock); 1275 if(!(ta=(struct trust_anchor*)rbtree_search(anchors->tree, &key))) { 1276 lock_basic_unlock(&anchors->lock); 1277 /* nothing there */ 1278 return; 1279 } 1280 /* lock it to drive away other threads that use it */ 1281 lock_basic_lock(&ta->lock); 1282 /* see if its really an insecure point */ 1283 if(ta->keylist || ta->autr || ta->numDS || ta->numDNSKEY) { 1284 lock_basic_unlock(&anchors->lock); 1285 lock_basic_unlock(&ta->lock); 1286 /* its not an insecure point, do not remove it */ 1287 return; 1288 } 1289 1290 /* remove from tree */ 1291 (void)rbtree_delete(anchors->tree, &ta->node); 1292 anchors_init_parents_locked(anchors); 1293 lock_basic_unlock(&anchors->lock); 1294 1295 /* actual free of data */ 1296 lock_basic_unlock(&ta->lock); 1297 anchors_delfunc(&ta->node, NULL); 1298 } 1299 1300 /** compare two keytags, return -1, 0 or 1 */ 1301 static int 1302 keytag_compare(const void* x, const void* y) 1303 { 1304 if(*(uint16_t*)x == *(uint16_t*)y) 1305 return 0; 1306 if(*(uint16_t*)x > *(uint16_t*)y) 1307 return 1; 1308 return -1; 1309 } 1310 1311 size_t 1312 anchor_list_keytags(struct trust_anchor* ta, uint16_t* list, size_t num) 1313 { 1314 size_t i, ret = 0; 1315 if(ta->numDS == 0 && ta->numDNSKEY == 0) 1316 return 0; /* insecure point */ 1317 if(ta->numDS != 0 && ta->ds_rrset) { 1318 struct packed_rrset_data* d=(struct packed_rrset_data*) 1319 ta->ds_rrset->entry.data; 1320 for(i=0; i<d->count; i++) { 1321 if(ret == num) continue; 1322 list[ret++] = ds_get_keytag(ta->ds_rrset, i); 1323 } 1324 } 1325 if(ta->numDNSKEY != 0 && ta->dnskey_rrset) { 1326 struct packed_rrset_data* d=(struct packed_rrset_data*) 1327 ta->dnskey_rrset->entry.data; 1328 for(i=0; i<d->count; i++) { 1329 if(ret == num) continue; 1330 list[ret++] = dnskey_calc_keytag(ta->dnskey_rrset, i); 1331 } 1332 } 1333 qsort(list, ret, sizeof(*list), keytag_compare); 1334 return ret; 1335 } 1336 1337 int 1338 anchor_has_keytag(struct val_anchors* anchors, uint8_t* name, int namelabs, 1339 size_t namelen, uint16_t dclass, uint16_t keytag) 1340 { 1341 uint16_t* taglist; 1342 uint16_t* tl; 1343 size_t numtag, i; 1344 struct trust_anchor* anchor = anchor_find(anchors, 1345 name, namelabs, namelen, dclass); 1346 if(!anchor) 1347 return 0; 1348 if(!anchor->numDS && !anchor->numDNSKEY) { 1349 lock_basic_unlock(&anchor->lock); 1350 return 0; 1351 } 1352 1353 taglist = calloc(anchor->numDS + anchor->numDNSKEY, sizeof(*taglist)); 1354 if(!taglist) { 1355 lock_basic_unlock(&anchor->lock); 1356 return 0; 1357 } 1358 1359 numtag = anchor_list_keytags(anchor, taglist, 1360 anchor->numDS+anchor->numDNSKEY); 1361 lock_basic_unlock(&anchor->lock); 1362 if(!numtag) { 1363 free(taglist); 1364 return 0; 1365 } 1366 tl = taglist; 1367 for(i=0; i<numtag; i++) { 1368 if(*tl == keytag) { 1369 free(taglist); 1370 return 1; 1371 } 1372 tl++; 1373 } 1374 free(taglist); 1375 return 0; 1376 } 1377 1378 struct trust_anchor* 1379 anchors_find_any_noninsecure(struct val_anchors* anchors) 1380 { 1381 struct trust_anchor* ta, *next; 1382 lock_basic_lock(&anchors->lock); 1383 ta=(struct trust_anchor*)rbtree_first(anchors->tree); 1384 while((rbnode_type*)ta != RBTREE_NULL) { 1385 next = (struct trust_anchor*)rbtree_next(&ta->node); 1386 lock_basic_lock(&ta->lock); 1387 if(ta->numDS != 0 || ta->numDNSKEY != 0) { 1388 /* not an insecurepoint */ 1389 lock_basic_unlock(&anchors->lock); 1390 return ta; 1391 } 1392 lock_basic_unlock(&ta->lock); 1393 ta = next; 1394 } 1395 lock_basic_unlock(&anchors->lock); 1396 return NULL; 1397 } 1398 1399 void 1400 anchors_swap_tree(struct val_anchors* anchors, struct val_anchors* data) 1401 { 1402 rbtree_type* oldtree; 1403 rbtree_type oldprobe; 1404 1405 if(!anchors || !data) 1406 return; /* If anchors is NULL, there is no validation. */ 1407 1408 oldtree = anchors->tree; 1409 oldprobe = anchors->autr->probe; 1410 1411 anchors->tree = data->tree; 1412 anchors->autr->probe = data->autr->probe; 1413 1414 data->tree = oldtree; 1415 data->autr->probe = oldprobe; 1416 } 1417