1 /* 2 * validator/autotrust.c - RFC5011 trust anchor management for unbound. 3 * 4 * Copyright (c) 2009, 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 * Contains autotrust implementation. The implementation was taken from 40 * the autotrust daemon (BSD licensed), written by Matthijs Mekking. 41 * It was modified to fit into unbound. The state table process is the same. 42 */ 43 #include "config.h" 44 #include "validator/autotrust.h" 45 #include "validator/val_anchor.h" 46 #include "validator/val_utils.h" 47 #include "validator/val_sigcrypt.h" 48 #include "util/data/dname.h" 49 #include "util/data/packed_rrset.h" 50 #include "util/log.h" 51 #include "util/module.h" 52 #include "util/net_help.h" 53 #include "util/config_file.h" 54 #include "util/regional.h" 55 #include "util/random.h" 56 #include "util/data/msgparse.h" 57 #include "services/mesh.h" 58 #include "services/cache/rrset.h" 59 #include "validator/val_kcache.h" 60 #include "sldns/sbuffer.h" 61 #include "sldns/wire2str.h" 62 #include "sldns/str2wire.h" 63 #include "sldns/keyraw.h" 64 #include "sldns/rrdef.h" 65 #include <stdarg.h> 66 #include <ctype.h> 67 68 /** number of times a key must be seen before it can become valid */ 69 #define MIN_PENDINGCOUNT 2 70 71 /** Event: Revoked */ 72 static void do_revoked(struct module_env* env, struct autr_ta* anchor, int* c); 73 74 struct autr_global_data* autr_global_create(void) 75 { 76 struct autr_global_data* global; 77 global = (struct autr_global_data*)malloc(sizeof(*global)); 78 if(!global) 79 return NULL; 80 rbtree_init(&global->probe, &probetree_cmp); 81 return global; 82 } 83 84 void autr_global_delete(struct autr_global_data* global) 85 { 86 if(!global) 87 return; 88 /* elements deleted by parent */ 89 free(global); 90 } 91 92 int probetree_cmp(const void* x, const void* y) 93 { 94 struct trust_anchor* a = (struct trust_anchor*)x; 95 struct trust_anchor* b = (struct trust_anchor*)y; 96 log_assert(a->autr && b->autr); 97 if(a->autr->next_probe_time < b->autr->next_probe_time) 98 return -1; 99 if(a->autr->next_probe_time > b->autr->next_probe_time) 100 return 1; 101 /* time is equal, sort on trust point identity */ 102 return anchor_cmp(x, y); 103 } 104 105 size_t 106 autr_get_num_anchors(struct val_anchors* anchors) 107 { 108 size_t res = 0; 109 if(!anchors) 110 return 0; 111 lock_basic_lock(&anchors->lock); 112 if(anchors->autr) 113 res = anchors->autr->probe.count; 114 lock_basic_unlock(&anchors->lock); 115 return res; 116 } 117 118 /** Position in string */ 119 static int 120 position_in_string(char *str, const char* sub) 121 { 122 char* pos = strstr(str, sub); 123 if(pos) 124 return (int)(pos-str)+(int)strlen(sub); 125 return -1; 126 } 127 128 /** Debug routine to print pretty key information */ 129 static void 130 verbose_key(struct autr_ta* ta, enum verbosity_value level, 131 const char* format, ...) ATTR_FORMAT(printf, 3, 4); 132 133 /** 134 * Implementation of debug pretty key print 135 * @param ta: trust anchor key with DNSKEY data. 136 * @param level: verbosity level to print at. 137 * @param format: printf style format string. 138 */ 139 static void 140 verbose_key(struct autr_ta* ta, enum verbosity_value level, 141 const char* format, ...) 142 { 143 va_list args; 144 va_start(args, format); 145 if(verbosity >= level) { 146 char* str = sldns_wire2str_dname(ta->rr, ta->dname_len); 147 int keytag = (int)sldns_calc_keytag_raw(sldns_wirerr_get_rdata( 148 ta->rr, ta->rr_len, ta->dname_len), 149 sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len, 150 ta->dname_len)); 151 char msg[MAXSYSLOGMSGLEN]; 152 vsnprintf(msg, sizeof(msg), format, args); 153 verbose(level, "%s key %d %s", str?str:"??", keytag, msg); 154 free(str); 155 } 156 va_end(args); 157 } 158 159 /** 160 * Parse comments 161 * @param str: to parse 162 * @param ta: trust key autotrust metadata 163 * @param header_seen: if an autotrust file header was seen. 164 * Without such a header it is a list of resource records. 165 * @return false on failure. 166 */ 167 static int 168 parse_comments(char* str, struct autr_ta* ta, int header_seen) 169 { 170 int len = (int)strlen(str), pos = 0, timestamp = 0; 171 char* comment = (char*) malloc(sizeof(char)*len+1); 172 char* comments = comment; 173 if(!comment) { 174 log_err("malloc failure in parse"); 175 return 0; 176 } 177 /* skip over whitespace and data at start of line */ 178 while (*str != '\0' && *str != ';') 179 str++; 180 if (*str == ';') 181 str++; 182 /* copy comments */ 183 while (*str != '\0') 184 { 185 *comments = *str; 186 comments++; 187 str++; 188 } 189 *comments = '\0'; 190 191 comments = comment; 192 193 /* read state */ 194 pos = position_in_string(comments, "state="); 195 if (pos >= (int) strlen(comments)) 196 { 197 log_err("parse error"); 198 free(comment); 199 return 0; 200 } 201 if (pos <= 0) { 202 if(header_seen) { 203 /* There was an autotrust trust anchor file header, 204 * with a ;; id=.. line, so the entries 205 * have to have ;;state= annotations. */ 206 log_err("trust anchor in state file has no ;;state= " 207 "annotation, ignoring"); 208 free(comment); 209 return 0; 210 } 211 ta->s = AUTR_STATE_VALID; 212 } else { 213 int s = (int) comments[pos] - '0'; 214 switch(s) 215 { 216 case AUTR_STATE_START: 217 case AUTR_STATE_ADDPEND: 218 case AUTR_STATE_VALID: 219 case AUTR_STATE_MISSING: 220 case AUTR_STATE_REVOKED: 221 case AUTR_STATE_REMOVED: 222 ta->s = s; 223 break; 224 default: 225 verbose_key(ta, VERB_OPS, "has undefined " 226 "state, considered NewKey"); 227 ta->s = AUTR_STATE_START; 228 break; 229 } 230 } 231 /* read pending count */ 232 pos = position_in_string(comments, "count="); 233 if (pos >= (int) strlen(comments)) 234 { 235 log_err("parse error"); 236 free(comment); 237 return 0; 238 } 239 if (pos <= 0) 240 ta->pending_count = 0; 241 else 242 { 243 comments += pos; 244 ta->pending_count = (uint8_t)atoi(comments); 245 } 246 247 /* read last change */ 248 pos = position_in_string(comments, "lastchange="); 249 if (pos >= (int) strlen(comments)) 250 { 251 log_err("parse error"); 252 free(comment); 253 return 0; 254 } 255 if (pos >= 0) 256 { 257 comments += pos; 258 timestamp = atoi(comments); 259 } 260 if (pos < 0 || !timestamp) 261 ta->last_change = 0; 262 else 263 ta->last_change = (time_t)timestamp; 264 265 free(comment); 266 return 1; 267 } 268 269 /** Check if a line contains data (besides comments) */ 270 static int 271 str_contains_data(char* str, char comment) 272 { 273 while (*str != '\0') { 274 if (*str == comment || *str == '\n') 275 return 0; 276 if (*str != ' ' && *str != '\t') 277 return 1; 278 str++; 279 } 280 return 0; 281 } 282 283 /** Get DNSKEY flags 284 * rdata without rdatalen in front of it. */ 285 static int 286 dnskey_flags(uint16_t t, uint8_t* rdata, size_t len) 287 { 288 uint16_t f; 289 if(t != LDNS_RR_TYPE_DNSKEY) 290 return 0; 291 if(len < 2) 292 return 0; 293 memmove(&f, rdata, 2); 294 f = ntohs(f); 295 return (int)f; 296 } 297 298 /** Check if KSK DNSKEY. 299 * pass rdata without rdatalen in front of it */ 300 static int 301 rr_is_dnskey_sep(uint16_t t, uint8_t* rdata, size_t len) 302 { 303 return (dnskey_flags(t, rdata, len)&DNSKEY_BIT_SEP); 304 } 305 306 /** Check if TA is KSK DNSKEY */ 307 static int 308 ta_is_dnskey_sep(struct autr_ta* ta) 309 { 310 return (dnskey_flags( 311 sldns_wirerr_get_type(ta->rr, ta->rr_len, ta->dname_len), 312 sldns_wirerr_get_rdata(ta->rr, ta->rr_len, ta->dname_len), 313 sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len, ta->dname_len) 314 ) & DNSKEY_BIT_SEP); 315 } 316 317 /** Check if REVOKED DNSKEY 318 * pass rdata without rdatalen in front of it */ 319 static int 320 rr_is_dnskey_revoked(uint16_t t, uint8_t* rdata, size_t len) 321 { 322 return (dnskey_flags(t, rdata, len)&LDNS_KEY_REVOKE_KEY); 323 } 324 325 /** create ta */ 326 static struct autr_ta* 327 autr_ta_create(uint8_t* rr, size_t rr_len, size_t dname_len) 328 { 329 struct autr_ta* ta = (struct autr_ta*)calloc(1, sizeof(*ta)); 330 if(!ta) { 331 free(rr); 332 return NULL; 333 } 334 ta->rr = rr; 335 ta->rr_len = rr_len; 336 ta->dname_len = dname_len; 337 return ta; 338 } 339 340 /** create tp */ 341 static struct trust_anchor* 342 autr_tp_create(struct val_anchors* anchors, uint8_t* own, size_t own_len, 343 uint16_t dc) 344 { 345 struct trust_anchor* tp = (struct trust_anchor*)calloc(1, sizeof(*tp)); 346 if(!tp) return NULL; 347 tp->name = memdup(own, own_len); 348 if(!tp->name) { 349 free(tp); 350 return NULL; 351 } 352 tp->namelen = own_len; 353 tp->namelabs = dname_count_labels(tp->name); 354 tp->node.key = tp; 355 tp->dclass = dc; 356 tp->autr = (struct autr_point_data*)calloc(1, sizeof(*tp->autr)); 357 if(!tp->autr) { 358 free(tp->name); 359 free(tp); 360 return NULL; 361 } 362 tp->autr->pnode.key = tp; 363 364 lock_basic_lock(&anchors->lock); 365 if(!rbtree_insert(anchors->tree, &tp->node)) { 366 char buf[LDNS_MAX_DOMAINLEN]; 367 lock_basic_unlock(&anchors->lock); 368 dname_str(tp->name, buf); 369 log_err("trust anchor for '%s' presented twice", buf); 370 free(tp->name); 371 free(tp->autr); 372 free(tp); 373 return NULL; 374 } 375 if(!rbtree_insert(&anchors->autr->probe, &tp->autr->pnode)) { 376 char buf[LDNS_MAX_DOMAINLEN]; 377 (void)rbtree_delete(anchors->tree, tp); 378 lock_basic_unlock(&anchors->lock); 379 dname_str(tp->name, buf); 380 log_err("trust anchor for '%s' in probetree twice", buf); 381 free(tp->name); 382 free(tp->autr); 383 free(tp); 384 return NULL; 385 } 386 lock_basic_init(&tp->lock); 387 lock_protect(&tp->lock, tp, sizeof(*tp)); 388 lock_protect(&tp->lock, tp->autr, sizeof(*tp->autr)); 389 lock_basic_unlock(&anchors->lock); 390 return tp; 391 } 392 393 /** delete assembled rrsets */ 394 static void 395 autr_rrset_delete(struct ub_packed_rrset_key* r) 396 { 397 if(r) { 398 free(r->rk.dname); 399 free(r->entry.data); 400 free(r); 401 } 402 } 403 404 /** delete autotrust key data */ 405 static void 406 autr_ta_delete(struct autr_ta* ta) 407 { 408 if(!ta) return; 409 free(ta->rr); 410 free(ta); 411 } 412 413 void autr_point_delete(struct trust_anchor* tp) 414 { 415 if(!tp) 416 return; 417 lock_unprotect(&tp->lock, tp); 418 lock_unprotect(&tp->lock, tp->autr); 419 lock_basic_destroy(&tp->lock); 420 autr_rrset_delete(tp->ds_rrset); 421 autr_rrset_delete(tp->dnskey_rrset); 422 if(tp->autr) { 423 struct autr_ta* p = tp->autr->keys, *np; 424 while(p) { 425 np = p->next; 426 autr_ta_delete(p); 427 p = np; 428 } 429 free(tp->autr->file); 430 free(tp->autr); 431 } 432 free(tp->name); 433 free(tp); 434 } 435 436 /** find or add a new trust point for autotrust */ 437 static struct trust_anchor* 438 find_add_tp(struct val_anchors* anchors, uint8_t* rr, size_t rr_len, 439 size_t dname_len) 440 { 441 struct trust_anchor* tp; 442 tp = anchor_find(anchors, rr, dname_count_labels(rr), dname_len, 443 sldns_wirerr_get_class(rr, rr_len, dname_len)); 444 if(tp) { 445 if(!tp->autr) { 446 log_err("anchor cannot be with and without autotrust"); 447 lock_basic_unlock(&tp->lock); 448 return NULL; 449 } 450 return tp; 451 } 452 tp = autr_tp_create(anchors, rr, dname_len, sldns_wirerr_get_class(rr, 453 rr_len, dname_len)); 454 if(!tp) 455 return NULL; 456 lock_basic_lock(&tp->lock); 457 return tp; 458 } 459 460 /** Add trust anchor from RR */ 461 static struct autr_ta* 462 add_trustanchor_frm_rr(struct val_anchors* anchors, uint8_t* rr, size_t rr_len, 463 size_t dname_len, struct trust_anchor** tp) 464 { 465 struct autr_ta* ta = autr_ta_create(rr, rr_len, dname_len); 466 if(!ta) 467 return NULL; 468 *tp = find_add_tp(anchors, rr, rr_len, dname_len); 469 if(!*tp) { 470 autr_ta_delete(ta); 471 return NULL; 472 } 473 /* add ta to tp */ 474 ta->next = (*tp)->autr->keys; 475 (*tp)->autr->keys = ta; 476 lock_basic_unlock(&(*tp)->lock); 477 return ta; 478 } 479 480 /** 481 * Add new trust anchor from a string in file. 482 * @param anchors: all anchors 483 * @param str: string with anchor and comments, if any comments. 484 * @param tp: trust point returned. 485 * @param origin: what to use for @ 486 * @param origin_len: length of origin 487 * @param prev: previous rr name 488 * @param prev_len: length of prev 489 * @param skip: if true, the result is NULL, but not an error, skip it. 490 * @return new key in trust point. 491 */ 492 static struct autr_ta* 493 add_trustanchor_frm_str(struct val_anchors* anchors, char* str, 494 struct trust_anchor** tp, uint8_t* origin, size_t origin_len, 495 uint8_t** prev, size_t* prev_len, int* skip) 496 { 497 uint8_t rr[LDNS_RR_BUF_SIZE]; 498 size_t rr_len = sizeof(rr), dname_len; 499 uint8_t* drr; 500 int lstatus; 501 if (!str_contains_data(str, ';')) { 502 *skip = 1; 503 return NULL; /* empty line */ 504 } 505 if(0 != (lstatus = sldns_str2wire_rr_buf(str, rr, &rr_len, &dname_len, 506 0, origin, origin_len, *prev, *prev_len))) 507 { 508 log_err("ldns error while converting string to RR at%d: %s: %s", 509 LDNS_WIREPARSE_OFFSET(lstatus), 510 sldns_get_errorstr_parse(lstatus), str); 511 return NULL; 512 } 513 free(*prev); 514 *prev = memdup(rr, dname_len); 515 *prev_len = dname_len; 516 if(!*prev) { 517 log_err("malloc failure in add_trustanchor"); 518 return NULL; 519 } 520 if(sldns_wirerr_get_type(rr, rr_len, dname_len)!=LDNS_RR_TYPE_DNSKEY && 521 sldns_wirerr_get_type(rr, rr_len, dname_len)!=LDNS_RR_TYPE_DS) { 522 *skip = 1; 523 return NULL; /* only DS and DNSKEY allowed */ 524 } 525 drr = memdup(rr, rr_len); 526 if(!drr) { 527 log_err("malloc failure in add trustanchor"); 528 return NULL; 529 } 530 return add_trustanchor_frm_rr(anchors, drr, rr_len, dname_len, tp); 531 } 532 533 /** 534 * Load single anchor 535 * @param anchors: all points. 536 * @param str: comments line 537 * @param fname: filename 538 * @param origin: the $ORIGIN. 539 * @param origin_len: length of origin 540 * @param prev: passed to ldns. 541 * @param prev_len: length of prev 542 * @param skip: if true, the result is NULL, but not an error, skip it. 543 * @param header_seen: if an autotrust file header was seen. 544 * Without such a header it is a list of resource records. 545 * @return false on failure, otherwise the tp read. 546 */ 547 static struct trust_anchor* 548 load_trustanchor(struct val_anchors* anchors, char* str, const char* fname, 549 uint8_t* origin, size_t origin_len, uint8_t** prev, size_t* prev_len, 550 int* skip, int header_seen) 551 { 552 struct autr_ta* ta = NULL; 553 struct trust_anchor* tp = NULL; 554 555 ta = add_trustanchor_frm_str(anchors, str, &tp, origin, origin_len, 556 prev, prev_len, skip); 557 if(!ta) 558 return NULL; 559 lock_basic_lock(&tp->lock); 560 if(!parse_comments(str, ta, header_seen)) { 561 /* ta was already linked into the list of keys, unlink it */ 562 log_assert(tp->autr->keys == ta); 563 tp->autr->keys = ta->next; 564 autr_ta_delete(ta); 565 lock_basic_unlock(&tp->lock); 566 return NULL; 567 } 568 if(!tp->autr->file) { 569 tp->autr->file = strdup(fname); 570 if(!tp->autr->file) { 571 lock_basic_unlock(&tp->lock); 572 log_err("malloc failure"); 573 return NULL; 574 } 575 } 576 lock_basic_unlock(&tp->lock); 577 return tp; 578 } 579 580 /** iterator for DSes from keylist. return true if a next element exists */ 581 static int 582 assemble_iterate_ds(struct autr_ta** list, uint8_t** rr, size_t* rr_len, 583 size_t* dname_len) 584 { 585 while(*list) { 586 if(sldns_wirerr_get_type((*list)->rr, (*list)->rr_len, 587 (*list)->dname_len) == LDNS_RR_TYPE_DS) { 588 *rr = (*list)->rr; 589 *rr_len = (*list)->rr_len; 590 *dname_len = (*list)->dname_len; 591 *list = (*list)->next; 592 return 1; 593 } 594 *list = (*list)->next; 595 } 596 return 0; 597 } 598 599 /** iterator for DNSKEYs from keylist. return true if a next element exists */ 600 static int 601 assemble_iterate_dnskey(struct autr_ta** list, uint8_t** rr, size_t* rr_len, 602 size_t* dname_len) 603 { 604 while(*list) { 605 if(sldns_wirerr_get_type((*list)->rr, (*list)->rr_len, 606 (*list)->dname_len) != LDNS_RR_TYPE_DS && 607 ((*list)->s == AUTR_STATE_VALID || 608 (*list)->s == AUTR_STATE_MISSING)) { 609 *rr = (*list)->rr; 610 *rr_len = (*list)->rr_len; 611 *dname_len = (*list)->dname_len; 612 *list = (*list)->next; 613 return 1; 614 } 615 *list = (*list)->next; 616 } 617 return 0; 618 } 619 620 /** see if iterator-list has any elements in it, or it is empty */ 621 static int 622 assemble_iterate_hasfirst(int iter(struct autr_ta**, uint8_t**, size_t*, 623 size_t*), struct autr_ta* list) 624 { 625 uint8_t* rr = NULL; 626 size_t rr_len = 0, dname_len = 0; 627 return iter(&list, &rr, &rr_len, &dname_len); 628 } 629 630 /** number of elements in iterator list */ 631 static size_t 632 assemble_iterate_count(int iter(struct autr_ta**, uint8_t**, size_t*, 633 size_t*), struct autr_ta* list) 634 { 635 uint8_t* rr = NULL; 636 size_t i = 0, rr_len = 0, dname_len = 0; 637 while(iter(&list, &rr, &rr_len, &dname_len)) { 638 i++; 639 } 640 return i; 641 } 642 643 /** 644 * Create a ub_packed_rrset_key allocated on the heap. 645 * It therefore does not have the correct ID value, and cannot be used 646 * inside the cache. It can be used in storage outside of the cache. 647 * Keys for the cache have to be obtained from alloc.h . 648 * @param iter: iterator over the elements in the list. It filters elements. 649 * @param list: the list. 650 * @return key allocated or NULL on failure. 651 */ 652 static struct ub_packed_rrset_key* 653 ub_packed_rrset_heap_key(int iter(struct autr_ta**, uint8_t**, size_t*, 654 size_t*), struct autr_ta* list) 655 { 656 uint8_t* rr = NULL; 657 size_t rr_len = 0, dname_len = 0; 658 struct ub_packed_rrset_key* k; 659 if(!iter(&list, &rr, &rr_len, &dname_len)) 660 return NULL; 661 k = (struct ub_packed_rrset_key*)calloc(1, sizeof(*k)); 662 if(!k) 663 return NULL; 664 k->rk.type = htons(sldns_wirerr_get_type(rr, rr_len, dname_len)); 665 k->rk.rrset_class = htons(sldns_wirerr_get_class(rr, rr_len, dname_len)); 666 k->rk.dname_len = dname_len; 667 k->rk.dname = memdup(rr, dname_len); 668 if(!k->rk.dname) { 669 free(k); 670 return NULL; 671 } 672 return k; 673 } 674 675 /** 676 * Create packed_rrset data on the heap. 677 * @param iter: iterator over the elements in the list. It filters elements. 678 * @param list: the list. 679 * @return data allocated or NULL on failure. 680 */ 681 static struct packed_rrset_data* 682 packed_rrset_heap_data(int iter(struct autr_ta**, uint8_t**, size_t*, 683 size_t*), struct autr_ta* list) 684 { 685 uint8_t* rr = NULL; 686 size_t rr_len = 0, dname_len = 0; 687 struct packed_rrset_data* data; 688 size_t count=0, rrsig_count=0, len=0, i, total; 689 uint8_t* nextrdata; 690 struct autr_ta* list_i; 691 time_t ttl = 0; 692 693 list_i = list; 694 while(iter(&list_i, &rr, &rr_len, &dname_len)) { 695 if(sldns_wirerr_get_type(rr, rr_len, dname_len) == 696 LDNS_RR_TYPE_RRSIG) 697 rrsig_count++; 698 else count++; 699 /* sizeof the rdlength + rdatalen */ 700 len += 2 + sldns_wirerr_get_rdatalen(rr, rr_len, dname_len); 701 ttl = (time_t)sldns_wirerr_get_ttl(rr, rr_len, dname_len); 702 } 703 if(count == 0 && rrsig_count == 0) 704 return NULL; 705 706 /* allocate */ 707 total = count + rrsig_count; 708 len += sizeof(*data) + total*(sizeof(size_t) + sizeof(time_t) + 709 sizeof(uint8_t*)); 710 data = (struct packed_rrset_data*)calloc(1, len); 711 if(!data) 712 return NULL; 713 714 /* fill it */ 715 data->ttl = ttl; 716 data->count = count; 717 data->rrsig_count = rrsig_count; 718 data->rr_len = (size_t*)((uint8_t*)data + 719 sizeof(struct packed_rrset_data)); 720 data->rr_data = (uint8_t**)&(data->rr_len[total]); 721 data->rr_ttl = (time_t*)&(data->rr_data[total]); 722 nextrdata = (uint8_t*)&(data->rr_ttl[total]); 723 724 /* fill out len, ttl, fields */ 725 list_i = list; 726 i = 0; 727 while(iter(&list_i, &rr, &rr_len, &dname_len)) { 728 data->rr_ttl[i] = (time_t)sldns_wirerr_get_ttl(rr, rr_len, 729 dname_len); 730 if(data->rr_ttl[i] < data->ttl) 731 data->ttl = data->rr_ttl[i]; 732 data->rr_len[i] = 2 /* the rdlength */ + 733 sldns_wirerr_get_rdatalen(rr, rr_len, dname_len); 734 i++; 735 } 736 737 /* fixup rest of ptrs */ 738 for(i=0; i<total; i++) { 739 data->rr_data[i] = nextrdata; 740 nextrdata += data->rr_len[i]; 741 } 742 743 /* copy data in there */ 744 list_i = list; 745 i = 0; 746 while(iter(&list_i, &rr, &rr_len, &dname_len)) { 747 log_assert(data->rr_data[i]); 748 memmove(data->rr_data[i], 749 sldns_wirerr_get_rdatawl(rr, rr_len, dname_len), 750 data->rr_len[i]); 751 i++; 752 } 753 754 if(data->rrsig_count && data->count == 0) { 755 data->count = data->rrsig_count; /* rrset type is RRSIG */ 756 data->rrsig_count = 0; 757 } 758 return data; 759 } 760 761 /** 762 * Assemble the trust anchors into DS and DNSKEY packed rrsets. 763 * Uses only VALID and MISSING DNSKEYs. 764 * Read the sldns_rrs and builds packed rrsets 765 * @param tp: the trust point. Must be locked. 766 * @return false on malloc failure. 767 */ 768 static int 769 autr_assemble(struct trust_anchor* tp) 770 { 771 struct ub_packed_rrset_key* ubds=NULL, *ubdnskey=NULL; 772 773 /* make packed rrset keys - malloced with no ID number, they 774 * are not in the cache */ 775 /* make packed rrset data (if there is a key) */ 776 if(assemble_iterate_hasfirst(assemble_iterate_ds, tp->autr->keys)) { 777 ubds = ub_packed_rrset_heap_key( 778 assemble_iterate_ds, tp->autr->keys); 779 if(!ubds) 780 goto error_cleanup; 781 ubds->entry.data = packed_rrset_heap_data( 782 assemble_iterate_ds, tp->autr->keys); 783 if(!ubds->entry.data) 784 goto error_cleanup; 785 } 786 787 /* make packed DNSKEY data */ 788 if(assemble_iterate_hasfirst(assemble_iterate_dnskey, tp->autr->keys)) { 789 ubdnskey = ub_packed_rrset_heap_key( 790 assemble_iterate_dnskey, tp->autr->keys); 791 if(!ubdnskey) 792 goto error_cleanup; 793 ubdnskey->entry.data = packed_rrset_heap_data( 794 assemble_iterate_dnskey, tp->autr->keys); 795 if(!ubdnskey->entry.data) { 796 error_cleanup: 797 autr_rrset_delete(ubds); 798 autr_rrset_delete(ubdnskey); 799 return 0; 800 } 801 } 802 803 /* we have prepared the new keys so nothing can go wrong any more. 804 * And we are sure we cannot be left without trustanchor after 805 * any errors. Put in the new keys and remove old ones. */ 806 807 /* free the old data */ 808 autr_rrset_delete(tp->ds_rrset); 809 autr_rrset_delete(tp->dnskey_rrset); 810 811 /* assign the data to replace the old */ 812 tp->ds_rrset = ubds; 813 tp->dnskey_rrset = ubdnskey; 814 tp->numDS = assemble_iterate_count(assemble_iterate_ds, 815 tp->autr->keys); 816 tp->numDNSKEY = assemble_iterate_count(assemble_iterate_dnskey, 817 tp->autr->keys); 818 return 1; 819 } 820 821 /** parse integer */ 822 static unsigned int 823 parse_int(char* line, int* ret) 824 { 825 char *e; 826 unsigned int x = (unsigned int)strtol(line, &e, 10); 827 if(line == e) { 828 *ret = -1; /* parse error */ 829 return 0; 830 } 831 *ret = 1; /* matched */ 832 return x; 833 } 834 835 /** parse id sequence for anchor */ 836 static struct trust_anchor* 837 parse_id(struct val_anchors* anchors, char* line) 838 { 839 struct trust_anchor *tp; 840 int r; 841 uint16_t dclass; 842 uint8_t* dname; 843 size_t dname_len; 844 /* read the owner name */ 845 char* next = strchr(line, ' '); 846 if(!next) 847 return NULL; 848 next[0] = 0; 849 dname = sldns_str2wire_dname(line, &dname_len); 850 if(!dname) 851 return NULL; 852 853 /* read the class */ 854 dclass = parse_int(next+1, &r); 855 if(r == -1) { 856 free(dname); 857 return NULL; 858 } 859 860 /* find the trust point */ 861 tp = autr_tp_create(anchors, dname, dname_len, dclass); 862 free(dname); 863 return tp; 864 } 865 866 /** 867 * Parse variable from trustanchor header 868 * @param line: to parse 869 * @param anchors: the anchor is added to this, if "id:" is seen. 870 * @param anchor: the anchor as result value or previously returned anchor 871 * value to read the variable lines into. 872 * @param header_seen: if a header ';;id: example.com.' was seen. 873 * @param nm: file name. 874 * @return: 0 no match, -1 failed syntax error, +1 success line read. 875 * +2 revoked trust anchor file. 876 */ 877 static int 878 parse_var_line(char* line, struct val_anchors* anchors, 879 struct trust_anchor** anchor, int* header_seen, const char* nm) 880 { 881 struct trust_anchor* tp = *anchor; 882 int r = 0; 883 if(strncmp(line, ";;id: ", 6) == 0) { 884 *header_seen = 1; 885 *anchor = parse_id(anchors, line+6); 886 if(!*anchor) return -1; 887 lock_basic_lock(&(*anchor)->lock); 888 if(*anchor && !(*anchor)->autr->file) { 889 (*anchor)->autr->file = strdup(nm); 890 if(!(*anchor)->autr->file) { 891 lock_basic_unlock(&(*anchor)->lock); 892 log_err("malloc failure"); 893 return -1; 894 } 895 } 896 lock_basic_unlock(&(*anchor)->lock); 897 if(*anchor) return 1; 898 } else if(strncmp(line, ";;REVOKED", 9) == 0) { 899 if(tp) { 900 log_err("REVOKED statement must be at start of file"); 901 return -1; 902 } 903 return 2; 904 } else if(strncmp(line, ";;last_queried: ", 16) == 0) { 905 if(!tp) return -1; 906 lock_basic_lock(&tp->lock); 907 tp->autr->last_queried = (time_t)parse_int(line+16, &r); 908 lock_basic_unlock(&tp->lock); 909 } else if(strncmp(line, ";;last_success: ", 16) == 0) { 910 if(!tp) return -1; 911 lock_basic_lock(&tp->lock); 912 tp->autr->last_success = (time_t)parse_int(line+16, &r); 913 lock_basic_unlock(&tp->lock); 914 } else if(strncmp(line, ";;next_probe_time: ", 19) == 0) { 915 if(!tp) return -1; 916 lock_basic_lock(&anchors->lock); 917 lock_basic_lock(&tp->lock); 918 (void)rbtree_delete(&anchors->autr->probe, tp); 919 tp->autr->next_probe_time = (time_t)parse_int(line+19, &r); 920 (void)rbtree_insert(&anchors->autr->probe, &tp->autr->pnode); 921 lock_basic_unlock(&tp->lock); 922 lock_basic_unlock(&anchors->lock); 923 } else if(strncmp(line, ";;query_failed: ", 16) == 0) { 924 if(!tp) return -1; 925 lock_basic_lock(&tp->lock); 926 tp->autr->query_failed = (uint8_t)parse_int(line+16, &r); 927 lock_basic_unlock(&tp->lock); 928 } else if(strncmp(line, ";;query_interval: ", 18) == 0) { 929 if(!tp) return -1; 930 lock_basic_lock(&tp->lock); 931 tp->autr->query_interval = (time_t)parse_int(line+18, &r); 932 lock_basic_unlock(&tp->lock); 933 } else if(strncmp(line, ";;retry_time: ", 14) == 0) { 934 if(!tp) return -1; 935 lock_basic_lock(&tp->lock); 936 tp->autr->retry_time = (time_t)parse_int(line+14, &r); 937 lock_basic_unlock(&tp->lock); 938 } 939 return r; 940 } 941 942 /** handle origin lines */ 943 static int 944 handle_origin(char* line, uint8_t** origin, size_t* origin_len) 945 { 946 size_t len = 0; 947 while(isspace((unsigned char)*line)) 948 line++; 949 if(strncmp(line, "$ORIGIN", 7) != 0) 950 return 0; 951 free(*origin); 952 line += 7; 953 while(isspace((unsigned char)*line)) 954 line++; 955 *origin = sldns_str2wire_dname(line, &len); 956 *origin_len = len; 957 if(!*origin) 958 log_warn("malloc failure or parse error in $ORIGIN"); 959 return 1; 960 } 961 962 /** Read one line and put multiline RRs onto one line string */ 963 static int 964 read_multiline(char* buf, size_t len, FILE* in, int* linenr) 965 { 966 char* pos = buf; 967 size_t left = len; 968 int depth = 0; 969 buf[len-1] = 0; 970 while(left > 0 && fgets(pos, (int)left, in) != NULL) { 971 size_t i, poslen = strlen(pos); 972 (*linenr)++; 973 974 /* check what the new depth is after the line */ 975 /* this routine cannot handle braces inside quotes, 976 say for TXT records, but this routine only has to read keys */ 977 for(i=0; i<poslen; i++) { 978 if(pos[i] == '(') { 979 depth++; 980 } else if(pos[i] == ')') { 981 if(depth == 0) { 982 log_err("mismatch: too many ')'"); 983 return -1; 984 } 985 depth--; 986 } else if(pos[i] == ';') { 987 break; 988 } 989 } 990 991 /* normal oneline or last line: keeps newline and comments */ 992 if(depth == 0) { 993 return 1; 994 } 995 996 /* more lines expected, snip off comments and newline */ 997 if(poslen>0) 998 pos[poslen-1] = 0; /* strip newline */ 999 if(strchr(pos, ';')) 1000 strchr(pos, ';')[0] = 0; /* strip comments */ 1001 1002 /* move to paste other lines behind this one */ 1003 poslen = strlen(pos); 1004 pos += poslen; 1005 left -= poslen; 1006 /* the newline is changed into a space */ 1007 if(left <= 2 /* space and eos */) { 1008 log_err("line too long"); 1009 return -1; 1010 } 1011 pos[0] = ' '; 1012 pos[1] = 0; 1013 pos += 1; 1014 left -= 1; 1015 } 1016 if(depth != 0) { 1017 log_err("mismatch: too many '('"); 1018 return -1; 1019 } 1020 if(pos != buf) 1021 return 1; 1022 return 0; 1023 } 1024 1025 int autr_read_file(struct val_anchors* anchors, const char* nm) 1026 { 1027 /* the file descriptor */ 1028 FILE* fd; 1029 /* keep track of line numbers */ 1030 int line_nr = 0; 1031 /* single line, enough space for large DNSKEY, 64K, in hex and dname */ 1032 char line[10240+65536*2]; 1033 /* trust point being read */ 1034 struct trust_anchor *tp = NULL, *tp2; 1035 int r; 1036 /* for $ORIGIN parsing */ 1037 uint8_t *origin=NULL, *prev=NULL; 1038 size_t origin_len=0, prev_len=0; 1039 int header_seen = 0; 1040 1041 if (!(fd = fopen(nm, "r"))) { 1042 log_err("unable to open %s for reading: %s", 1043 nm, strerror(errno)); 1044 return 0; 1045 } 1046 verbose(VERB_ALGO, "reading autotrust anchor file %s", nm); 1047 while ( (r=read_multiline(line, sizeof(line), fd, &line_nr)) != 0) { 1048 if(r == -1 || (r = parse_var_line(line, anchors, &tp, &header_seen, nm)) == -1) { 1049 log_err("could not parse auto-trust-anchor-file " 1050 "%s line %d", nm, line_nr); 1051 fclose(fd); 1052 free(origin); 1053 free(prev); 1054 return 0; 1055 } else if(r == 1) { 1056 continue; 1057 } else if(r == 2) { 1058 log_warn("trust anchor %s has been revoked", nm); 1059 fclose(fd); 1060 free(origin); 1061 free(prev); 1062 return 1; 1063 } 1064 if (!str_contains_data(line, ';')) 1065 continue; /* empty lines allowed */ 1066 if(handle_origin(line, &origin, &origin_len)) 1067 continue; 1068 r = 0; 1069 if(!(tp2=load_trustanchor(anchors, line, nm, origin, 1070 origin_len, &prev, &prev_len, &r, header_seen))) { 1071 if(!r) log_err("failed to load trust anchor from %s " 1072 "at line %i, skipping", nm, line_nr); 1073 /* try to do the rest */ 1074 continue; 1075 } 1076 if(tp && tp != tp2) { 1077 log_err("file %s has mismatching data inside: " 1078 "the file may only contain keys for one name, " 1079 "remove keys for other domain names", nm); 1080 fclose(fd); 1081 free(origin); 1082 free(prev); 1083 return 0; 1084 } 1085 tp = tp2; 1086 } 1087 fclose(fd); 1088 free(origin); 1089 free(prev); 1090 if(!tp) { 1091 log_err("failed to read %s", nm); 1092 return 0; 1093 } 1094 1095 /* now assemble the data into DNSKEY and DS packed rrsets */ 1096 lock_basic_lock(&tp->lock); 1097 if(!autr_assemble(tp)) { 1098 lock_basic_unlock(&tp->lock); 1099 log_err("malloc failure assembling %s", nm); 1100 return 0; 1101 } 1102 lock_basic_unlock(&tp->lock); 1103 return 1; 1104 } 1105 1106 /** string for a trustanchor state */ 1107 static const char* 1108 trustanchor_state2str(autr_state_type s) 1109 { 1110 switch (s) { 1111 case AUTR_STATE_START: return " START "; 1112 case AUTR_STATE_ADDPEND: return " ADDPEND "; 1113 case AUTR_STATE_VALID: return " VALID "; 1114 case AUTR_STATE_MISSING: return " MISSING "; 1115 case AUTR_STATE_REVOKED: return " REVOKED "; 1116 case AUTR_STATE_REMOVED: return " REMOVED "; 1117 } 1118 return " UNKNOWN "; 1119 } 1120 1121 /** ctime r for autotrust */ 1122 static char* autr_ctime_r(time_t* t, char* s) 1123 { 1124 ctime_r(t, s); 1125 #ifdef USE_WINSOCK 1126 if(strlen(s) > 10 && s[7]==' ' && s[8]=='0') 1127 s[8]=' '; /* fix error in windows ctime */ 1128 #endif 1129 return s; 1130 } 1131 1132 /** print ID to file */ 1133 static int 1134 print_id(FILE* out, char* fname, uint8_t* nm, size_t nmlen, uint16_t dclass) 1135 { 1136 char* s = sldns_wire2str_dname(nm, nmlen); 1137 if(!s) { 1138 log_err("malloc failure in write to %s", fname); 1139 return 0; 1140 } 1141 if(fprintf(out, ";;id: %s %d\n", s, (int)dclass) < 0) { 1142 log_err("could not write to %s: %s", fname, strerror(errno)); 1143 free(s); 1144 return 0; 1145 } 1146 free(s); 1147 return 1; 1148 } 1149 1150 static int 1151 autr_write_contents(FILE* out, char* fn, struct trust_anchor* tp) 1152 { 1153 char tmi[32]; 1154 struct autr_ta* ta; 1155 char* str; 1156 1157 /* write pretty header */ 1158 if(fprintf(out, "; autotrust trust anchor file\n") < 0) { 1159 log_err("could not write to %s: %s", fn, strerror(errno)); 1160 return 0; 1161 } 1162 if(tp->autr->revoked) { 1163 if(fprintf(out, ";;REVOKED\n") < 0 || 1164 fprintf(out, "; The zone has all keys revoked, and is\n" 1165 "; considered as if it has no trust anchors.\n" 1166 "; the remainder of the file is the last probe.\n" 1167 "; to restart the trust anchor, overwrite this file.\n" 1168 "; with one containing valid DNSKEYs or DSes.\n") < 0) { 1169 log_err("could not write to %s: %s", fn, strerror(errno)); 1170 return 0; 1171 } 1172 } 1173 if(!print_id(out, fn, tp->name, tp->namelen, tp->dclass)) { 1174 return 0; 1175 } 1176 if(fprintf(out, ";;last_queried: %u ;;%s", 1177 (unsigned int)tp->autr->last_queried, 1178 autr_ctime_r(&(tp->autr->last_queried), tmi)) < 0 || 1179 fprintf(out, ";;last_success: %u ;;%s", 1180 (unsigned int)tp->autr->last_success, 1181 autr_ctime_r(&(tp->autr->last_success), tmi)) < 0 || 1182 fprintf(out, ";;next_probe_time: %u ;;%s", 1183 (unsigned int)tp->autr->next_probe_time, 1184 autr_ctime_r(&(tp->autr->next_probe_time), tmi)) < 0 || 1185 fprintf(out, ";;query_failed: %d\n", (int)tp->autr->query_failed)<0 1186 || fprintf(out, ";;query_interval: %d\n", 1187 (int)tp->autr->query_interval) < 0 || 1188 fprintf(out, ";;retry_time: %d\n", (int)tp->autr->retry_time) < 0) { 1189 log_err("could not write to %s: %s", fn, strerror(errno)); 1190 return 0; 1191 } 1192 1193 /* write anchors */ 1194 for(ta=tp->autr->keys; ta; ta=ta->next) { 1195 /* by default do not store START and REMOVED keys */ 1196 if(ta->s == AUTR_STATE_START) 1197 continue; 1198 if(ta->s == AUTR_STATE_REMOVED) 1199 continue; 1200 /* only store keys */ 1201 if(sldns_wirerr_get_type(ta->rr, ta->rr_len, ta->dname_len) 1202 != LDNS_RR_TYPE_DNSKEY) 1203 continue; 1204 str = sldns_wire2str_rr(ta->rr, ta->rr_len); 1205 if(!str || !str[0]) { 1206 free(str); 1207 log_err("malloc failure writing %s", fn); 1208 return 0; 1209 } 1210 str[strlen(str)-1] = 0; /* remove newline */ 1211 if(fprintf(out, "%s ;;state=%d [%s] ;;count=%d " 1212 ";;lastchange=%u ;;%s", str, (int)ta->s, 1213 trustanchor_state2str(ta->s), (int)ta->pending_count, 1214 (unsigned int)ta->last_change, 1215 autr_ctime_r(&(ta->last_change), tmi)) < 0) { 1216 log_err("could not write to %s: %s", fn, strerror(errno)); 1217 free(str); 1218 return 0; 1219 } 1220 free(str); 1221 } 1222 return 1; 1223 } 1224 1225 void autr_write_file(struct module_env* env, struct trust_anchor* tp) 1226 { 1227 FILE* out; 1228 char* fname = tp->autr->file; 1229 #ifndef S_SPLINT_S 1230 long long llvalue; 1231 #endif 1232 char tempf[2048]; 1233 log_assert(tp->autr); 1234 if(!fname) { 1235 log_err("autotrust: trust point has no backing file, " 1236 "skipping write"); 1237 return; 1238 } 1239 if(!env) { 1240 log_err("autr_write_file: Module environment is NULL."); 1241 return; 1242 } 1243 /* unique name with pid number, thread number, and struct pointer 1244 * (the pointer uniquifies for multiple libunbound contexts) */ 1245 #ifndef S_SPLINT_S 1246 #if defined(SIZE_MAX) && defined(UINT32_MAX) && (UINT32_MAX == SIZE_MAX || INT32_MAX == SIZE_MAX) 1247 /* avoid warning about upcast on 32bit systems */ 1248 llvalue = (unsigned long)tp; 1249 #else 1250 llvalue = (unsigned long long)tp; 1251 #endif 1252 snprintf(tempf, sizeof(tempf), "%s.%d-%d-" ARG_LL "x", fname, (int)getpid(), 1253 env->worker?*(int*)env->worker:0, llvalue); 1254 #endif /* S_SPLINT_S */ 1255 verbose(VERB_ALGO, "autotrust: write to disk: %s", tempf); 1256 out = fopen(tempf, "w"); 1257 if(!out) { 1258 fatal_exit("could not open autotrust file for writing, %s: %s", 1259 tempf, strerror(errno)); 1260 return; 1261 } 1262 if(!autr_write_contents(out, tempf, tp)) { 1263 /* failed to write contents (completely) */ 1264 fclose(out); 1265 unlink(tempf); 1266 fatal_exit("could not completely write: %s", fname); 1267 return; 1268 } 1269 if(fflush(out) != 0) 1270 log_err("could not fflush(%s): %s", fname, strerror(errno)); 1271 #ifdef HAVE_FSYNC 1272 if(fsync(fileno(out)) != 0) 1273 log_err("could not fsync(%s): %s", fname, strerror(errno)); 1274 #else 1275 FlushFileBuffers((HANDLE)_get_osfhandle(_fileno(out))); 1276 #endif 1277 if(fclose(out) != 0) { 1278 fatal_exit("could not complete write: %s: %s", 1279 fname, strerror(errno)); 1280 unlink(tempf); 1281 return; 1282 } 1283 /* success; overwrite actual file */ 1284 verbose(VERB_ALGO, "autotrust: replaced %s", fname); 1285 #ifdef UB_ON_WINDOWS 1286 (void)unlink(fname); /* windows does not replace file with rename() */ 1287 #endif 1288 if(rename(tempf, fname) < 0) { 1289 fatal_exit("rename(%s to %s): %s", tempf, fname, strerror(errno)); 1290 } 1291 } 1292 1293 /** 1294 * Verify if dnskey works for trust point 1295 * @param env: environment (with time) for verification 1296 * @param ve: validator environment (with options) for verification. 1297 * @param tp: trust point to verify with 1298 * @param rrset: DNSKEY rrset to verify. 1299 * @param qstate: qstate with region. 1300 * @param vq: validator query state. 1301 * @return false on failure, true if verification successful. 1302 */ 1303 static int 1304 verify_dnskey(struct module_env* env, struct val_env* ve, 1305 struct trust_anchor* tp, struct ub_packed_rrset_key* rrset, 1306 struct module_qstate* qstate, struct val_qstate* vq) 1307 { 1308 char reasonbuf[256]; 1309 char* reason = NULL; 1310 uint8_t sigalg[ALGO_NEEDS_MAX+1]; 1311 int downprot = env->cfg->harden_algo_downgrade; 1312 enum sec_status sec = val_verify_DNSKEY_with_TA(env, ve, rrset, 1313 tp->ds_rrset, tp->dnskey_rrset, downprot?sigalg:NULL, &reason, 1314 NULL, qstate, vq, reasonbuf, sizeof(reasonbuf)); 1315 /* sigalg is ignored, it returns algorithms signalled to exist, but 1316 * in 5011 there are no other rrsets to check. if downprot is 1317 * enabled, then it checks that the DNSKEY is signed with all 1318 * algorithms available in the trust store. */ 1319 verbose(VERB_ALGO, "autotrust: validate DNSKEY with anchor: %s", 1320 sec_status_to_string(sec)); 1321 return sec == sec_status_secure; 1322 } 1323 1324 static int32_t 1325 rrsig_get_expiry(uint8_t* d, size_t len) 1326 { 1327 /* rrsig: 2(rdlen), 2(type) 1(alg) 1(v) 4(origttl), then 4(expi), (4)incep) */ 1328 if(len < 2+8+4) 1329 return 0; 1330 return sldns_read_uint32(d+2+8); 1331 } 1332 1333 /** Find minimum expiration interval from signatures */ 1334 static time_t 1335 min_expiry(struct module_env* env, struct packed_rrset_data* dd) 1336 { 1337 size_t i; 1338 int32_t t, r = 15 * 24 * 3600; /* 15 days max */ 1339 for(i=dd->count; i<dd->count+dd->rrsig_count; i++) { 1340 t = rrsig_get_expiry(dd->rr_data[i], dd->rr_len[i]); 1341 if((int32_t)t - (int32_t)*env->now > 0) { 1342 t -= (int32_t)*env->now; 1343 if(t < r) 1344 r = t; 1345 } 1346 } 1347 return (time_t)r; 1348 } 1349 1350 /** Is rr self-signed revoked key */ 1351 static int 1352 rr_is_selfsigned_revoked(struct module_env* env, struct val_env* ve, 1353 struct ub_packed_rrset_key* dnskey_rrset, size_t i, 1354 struct module_qstate* qstate, struct val_qstate* vq) 1355 { 1356 enum sec_status sec; 1357 char* reason = NULL; 1358 size_t num_tagmatches = 0; 1359 verbose(VERB_ALGO, "seen REVOKE flag, check self-signed, rr %d", 1360 (int)i); 1361 /* no algorithm downgrade protection necessary, if it is selfsigned 1362 * revoked it can be removed. */ 1363 sec = dnskey_verify_rrset(env, ve, dnskey_rrset, dnskey_rrset, i, 1364 &reason, NULL, LDNS_SECTION_ANSWER, qstate, vq, 1365 &num_tagmatches); 1366 return (sec == sec_status_secure); 1367 } 1368 1369 /** Set fetched value */ 1370 static void 1371 seen_trustanchor(struct autr_ta* ta, uint8_t seen) 1372 { 1373 ta->fetched = seen; 1374 if(ta->pending_count < 250) /* no numerical overflow, please */ 1375 ta->pending_count++; 1376 } 1377 1378 /** set revoked value */ 1379 static void 1380 seen_revoked_trustanchor(struct autr_ta* ta, uint8_t revoked) 1381 { 1382 ta->revoked = revoked; 1383 } 1384 1385 /** revoke a trust anchor */ 1386 static void 1387 revoke_dnskey(struct autr_ta* ta, int off) 1388 { 1389 uint16_t flags; 1390 uint8_t* data; 1391 if(sldns_wirerr_get_type(ta->rr, ta->rr_len, ta->dname_len) != 1392 LDNS_RR_TYPE_DNSKEY) 1393 return; 1394 if(sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len, ta->dname_len) < 2) 1395 return; 1396 data = sldns_wirerr_get_rdata(ta->rr, ta->rr_len, ta->dname_len); 1397 flags = sldns_read_uint16(data); 1398 if (off && (flags&LDNS_KEY_REVOKE_KEY)) 1399 flags ^= LDNS_KEY_REVOKE_KEY; /* flip */ 1400 else 1401 flags |= LDNS_KEY_REVOKE_KEY; 1402 sldns_write_uint16(data, flags); 1403 } 1404 1405 /** Compare two RRs skipping the REVOKED bit. Pass rdata(no len) */ 1406 static int 1407 dnskey_compare_skip_revbit(uint8_t* a, size_t a_len, uint8_t* b, size_t b_len) 1408 { 1409 size_t i; 1410 if(a_len != b_len) 1411 return -1; 1412 /* compare RRs RDATA byte for byte. */ 1413 for(i = 0; i < a_len; i++) 1414 { 1415 uint8_t rdf1, rdf2; 1416 rdf1 = a[i]; 1417 rdf2 = b[i]; 1418 if(i==1) { 1419 /* this is the second part of the flags field */ 1420 rdf1 |= LDNS_KEY_REVOKE_KEY; 1421 rdf2 |= LDNS_KEY_REVOKE_KEY; 1422 } 1423 if (rdf1 < rdf2) return -1; 1424 else if (rdf1 > rdf2) return 1; 1425 } 1426 return 0; 1427 } 1428 1429 1430 /** compare trust anchor with rdata, 0 if equal. Pass rdata(no len) */ 1431 static int 1432 ta_compare(struct autr_ta* a, uint16_t t, uint8_t* b, size_t b_len) 1433 { 1434 if(!a) return -1; 1435 else if(!b) return -1; 1436 else if(sldns_wirerr_get_type(a->rr, a->rr_len, a->dname_len) != t) 1437 return (int)sldns_wirerr_get_type(a->rr, a->rr_len, 1438 a->dname_len) - (int)t; 1439 else if(t == LDNS_RR_TYPE_DNSKEY) { 1440 return dnskey_compare_skip_revbit( 1441 sldns_wirerr_get_rdata(a->rr, a->rr_len, a->dname_len), 1442 sldns_wirerr_get_rdatalen(a->rr, a->rr_len, 1443 a->dname_len), b, b_len); 1444 } 1445 else if(t == LDNS_RR_TYPE_DS) { 1446 if(sldns_wirerr_get_rdatalen(a->rr, a->rr_len, a->dname_len) != 1447 b_len) 1448 return -1; 1449 return memcmp(sldns_wirerr_get_rdata(a->rr, 1450 a->rr_len, a->dname_len), b, b_len); 1451 } 1452 return -1; 1453 } 1454 1455 /** 1456 * Find key 1457 * @param tp: to search in 1458 * @param t: rr type of the rdata. 1459 * @param rdata: to look for (no rdatalen in it) 1460 * @param rdata_len: length of rdata 1461 * @param result: returns NULL or the ta key looked for. 1462 * @return false on malloc failure during search. if true examine result. 1463 */ 1464 static int 1465 find_key(struct trust_anchor* tp, uint16_t t, uint8_t* rdata, size_t rdata_len, 1466 struct autr_ta** result) 1467 { 1468 struct autr_ta* ta; 1469 if(!tp || !rdata) { 1470 *result = NULL; 1471 return 0; 1472 } 1473 for(ta=tp->autr->keys; ta; ta=ta->next) { 1474 if(ta_compare(ta, t, rdata, rdata_len) == 0) { 1475 *result = ta; 1476 return 1; 1477 } 1478 } 1479 *result = NULL; 1480 return 1; 1481 } 1482 1483 /** add key and clone RR and tp already locked. rdata without rdlen. */ 1484 static struct autr_ta* 1485 add_key(struct trust_anchor* tp, uint32_t ttl, uint8_t* rdata, size_t rdata_len) 1486 { 1487 struct autr_ta* ta; 1488 uint8_t* rr; 1489 size_t rr_len, dname_len; 1490 uint16_t rrtype = htons(LDNS_RR_TYPE_DNSKEY); 1491 uint16_t rrclass = htons(LDNS_RR_CLASS_IN); 1492 uint16_t rdlen = htons(rdata_len); 1493 dname_len = tp->namelen; 1494 ttl = htonl(ttl); 1495 rr_len = dname_len + 10 /* type,class,ttl,rdatalen */ + rdata_len; 1496 rr = (uint8_t*)malloc(rr_len); 1497 if(!rr) return NULL; 1498 memmove(rr, tp->name, tp->namelen); 1499 memmove(rr+dname_len, &rrtype, 2); 1500 memmove(rr+dname_len+2, &rrclass, 2); 1501 memmove(rr+dname_len+4, &ttl, 4); 1502 memmove(rr+dname_len+8, &rdlen, 2); 1503 memmove(rr+dname_len+10, rdata, rdata_len); 1504 ta = autr_ta_create(rr, rr_len, dname_len); 1505 if(!ta) { 1506 /* rr freed in autr_ta_create */ 1507 return NULL; 1508 } 1509 /* link in, tp already locked */ 1510 ta->next = tp->autr->keys; 1511 tp->autr->keys = ta; 1512 return ta; 1513 } 1514 1515 /** get TTL from DNSKEY rrset */ 1516 static time_t 1517 key_ttl(struct ub_packed_rrset_key* k) 1518 { 1519 struct packed_rrset_data* d = (struct packed_rrset_data*)k->entry.data; 1520 return d->ttl; 1521 } 1522 1523 /** update the time values for the trustpoint */ 1524 static void 1525 set_tp_times(struct trust_anchor* tp, time_t rrsig_exp_interval, 1526 time_t origttl, int* changed) 1527 { 1528 time_t x, qi = tp->autr->query_interval, rt = tp->autr->retry_time; 1529 1530 /* x = MIN(15days, ttl/2, expire/2) */ 1531 x = 15 * 24 * 3600; 1532 if(origttl/2 < x) 1533 x = origttl/2; 1534 if(rrsig_exp_interval/2 < x) 1535 x = rrsig_exp_interval/2; 1536 /* MAX(1hr, x) */ 1537 if(!autr_permit_small_holddown) { 1538 if(x < 3600) 1539 tp->autr->query_interval = 3600; 1540 else tp->autr->query_interval = x; 1541 } else tp->autr->query_interval = x; 1542 1543 /* x= MIN(1day, ttl/10, expire/10) */ 1544 x = 24 * 3600; 1545 if(origttl/10 < x) 1546 x = origttl/10; 1547 if(rrsig_exp_interval/10 < x) 1548 x = rrsig_exp_interval/10; 1549 /* MAX(1hr, x) */ 1550 if(!autr_permit_small_holddown) { 1551 if(x < 3600) 1552 tp->autr->retry_time = 3600; 1553 else tp->autr->retry_time = x; 1554 } else tp->autr->retry_time = x; 1555 1556 if(qi != tp->autr->query_interval || rt != tp->autr->retry_time) { 1557 *changed = 1; 1558 verbose(VERB_ALGO, "orig_ttl is %d", (int)origttl); 1559 verbose(VERB_ALGO, "rrsig_exp_interval is %d", 1560 (int)rrsig_exp_interval); 1561 verbose(VERB_ALGO, "query_interval: %d, retry_time: %d", 1562 (int)tp->autr->query_interval, 1563 (int)tp->autr->retry_time); 1564 } 1565 } 1566 1567 /** init events to zero */ 1568 static void 1569 init_events(struct trust_anchor* tp) 1570 { 1571 struct autr_ta* ta; 1572 for(ta=tp->autr->keys; ta; ta=ta->next) { 1573 ta->fetched = 0; 1574 } 1575 } 1576 1577 /** check for revoked keys without trusting any other information */ 1578 static void 1579 check_contains_revoked(struct module_env* env, struct val_env* ve, 1580 struct trust_anchor* tp, struct ub_packed_rrset_key* dnskey_rrset, 1581 int* changed, struct module_qstate* qstate, struct val_qstate* vq) 1582 { 1583 struct packed_rrset_data* dd = (struct packed_rrset_data*) 1584 dnskey_rrset->entry.data; 1585 size_t i; 1586 log_assert(ntohs(dnskey_rrset->rk.type) == LDNS_RR_TYPE_DNSKEY); 1587 for(i=0; i<dd->count; i++) { 1588 struct autr_ta* ta = NULL; 1589 if(!rr_is_dnskey_sep(ntohs(dnskey_rrset->rk.type), 1590 dd->rr_data[i]+2, dd->rr_len[i]-2) || 1591 !rr_is_dnskey_revoked(ntohs(dnskey_rrset->rk.type), 1592 dd->rr_data[i]+2, dd->rr_len[i]-2)) 1593 continue; /* not a revoked KSK */ 1594 if(!find_key(tp, ntohs(dnskey_rrset->rk.type), 1595 dd->rr_data[i]+2, dd->rr_len[i]-2, &ta)) { 1596 log_err("malloc failure"); 1597 continue; /* malloc fail in compare*/ 1598 } 1599 if(!ta) 1600 continue; /* key not found */ 1601 if(rr_is_selfsigned_revoked(env, ve, dnskey_rrset, i, qstate, 1602 vq)) { 1603 /* checked if there is an rrsig signed by this key. */ 1604 /* same keytag, but stored can be revoked already, so 1605 * compare keytags, with +0 or +128(REVOKE flag) */ 1606 log_assert(dnskey_calc_keytag(dnskey_rrset, i)-128 == 1607 sldns_calc_keytag_raw(sldns_wirerr_get_rdata( 1608 ta->rr, ta->rr_len, ta->dname_len), 1609 sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len, 1610 ta->dname_len)) || 1611 dnskey_calc_keytag(dnskey_rrset, i) == 1612 sldns_calc_keytag_raw(sldns_wirerr_get_rdata( 1613 ta->rr, ta->rr_len, ta->dname_len), 1614 sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len, 1615 ta->dname_len))); /* checks conversion*/ 1616 verbose_key(ta, VERB_ALGO, "is self-signed revoked"); 1617 if(!ta->revoked) 1618 *changed = 1; 1619 seen_revoked_trustanchor(ta, 1); 1620 do_revoked(env, ta, changed); 1621 } 1622 } 1623 } 1624 1625 /** See if a DNSKEY is verified by one of the DSes */ 1626 static int 1627 key_matches_a_ds(struct module_env* env, struct val_env* ve, 1628 struct ub_packed_rrset_key* dnskey_rrset, size_t key_idx, 1629 struct ub_packed_rrset_key* ds_rrset) 1630 { 1631 struct packed_rrset_data* dd = (struct packed_rrset_data*) 1632 ds_rrset->entry.data; 1633 size_t ds_idx, num = dd->count; 1634 int d = val_favorite_ds_algo(ds_rrset); 1635 char* reason = ""; 1636 for(ds_idx=0; ds_idx<num; ds_idx++) { 1637 if(!ds_digest_algo_is_supported(ds_rrset, ds_idx) || 1638 !ds_key_algo_is_supported(ds_rrset, ds_idx) || 1639 !dnskey_size_is_supported(dnskey_rrset, key_idx) || 1640 ds_get_digest_algo(ds_rrset, ds_idx) != d) 1641 continue; 1642 if(ds_get_key_algo(ds_rrset, ds_idx) 1643 != dnskey_get_algo(dnskey_rrset, key_idx) 1644 || dnskey_calc_keytag(dnskey_rrset, key_idx) 1645 != ds_get_keytag(ds_rrset, ds_idx)) { 1646 continue; 1647 } 1648 if(!ds_digest_match_dnskey(env, dnskey_rrset, key_idx, 1649 ds_rrset, ds_idx)) { 1650 verbose(VERB_ALGO, "DS match attempt failed"); 1651 continue; 1652 } 1653 /* match of hash is sufficient for bootstrap of trust point */ 1654 (void)reason; 1655 (void)ve; 1656 return 1; 1657 /* no need to check RRSIG, DS hash already matched with source 1658 if(dnskey_verify_rrset(env, ve, dnskey_rrset, 1659 dnskey_rrset, key_idx, &reason) == sec_status_secure) { 1660 return 1; 1661 } else { 1662 verbose(VERB_ALGO, "DS match failed because the key " 1663 "does not verify the keyset: %s", reason); 1664 } 1665 */ 1666 } 1667 return 0; 1668 } 1669 1670 /** Set update events */ 1671 static int 1672 update_events(struct module_env* env, struct val_env* ve, 1673 struct trust_anchor* tp, struct ub_packed_rrset_key* dnskey_rrset, 1674 int* changed) 1675 { 1676 struct packed_rrset_data* dd = (struct packed_rrset_data*) 1677 dnskey_rrset->entry.data; 1678 size_t i; 1679 log_assert(ntohs(dnskey_rrset->rk.type) == LDNS_RR_TYPE_DNSKEY); 1680 init_events(tp); 1681 for(i=0; i<dd->count; i++) { 1682 struct autr_ta* ta = NULL; 1683 if(!rr_is_dnskey_sep(ntohs(dnskey_rrset->rk.type), 1684 dd->rr_data[i]+2, dd->rr_len[i]-2)) 1685 continue; 1686 if(rr_is_dnskey_revoked(ntohs(dnskey_rrset->rk.type), 1687 dd->rr_data[i]+2, dd->rr_len[i]-2)) { 1688 /* self-signed revoked keys already detected before, 1689 * other revoked keys are not 'added' again */ 1690 continue; 1691 } 1692 /* is a key of this type supported?. Note rr_list and 1693 * packed_rrset are in the same order. */ 1694 if(!dnskey_algo_is_supported(dnskey_rrset, i) || 1695 !dnskey_size_is_supported(dnskey_rrset, i)) { 1696 /* skip unknown algorithm key, it is useless to us */ 1697 log_nametypeclass(VERB_DETAIL, "trust point has " 1698 "unsupported algorithm at", 1699 tp->name, LDNS_RR_TYPE_DNSKEY, tp->dclass); 1700 continue; 1701 } 1702 1703 /* is it new? if revocation bit set, find the unrevoked key */ 1704 if(!find_key(tp, ntohs(dnskey_rrset->rk.type), 1705 dd->rr_data[i]+2, dd->rr_len[i]-2, &ta)) { 1706 return 0; 1707 } 1708 if(!ta) { 1709 ta = add_key(tp, (uint32_t)dd->rr_ttl[i], 1710 dd->rr_data[i]+2, dd->rr_len[i]-2); 1711 *changed = 1; 1712 /* first time seen, do we have DSes? if match: VALID */ 1713 if(ta && tp->ds_rrset && key_matches_a_ds(env, ve, 1714 dnskey_rrset, i, tp->ds_rrset)) { 1715 verbose_key(ta, VERB_ALGO, "verified by DS"); 1716 ta->s = AUTR_STATE_VALID; 1717 } 1718 } 1719 if(!ta) { 1720 return 0; 1721 } 1722 seen_trustanchor(ta, 1); 1723 verbose_key(ta, VERB_ALGO, "in DNS response"); 1724 } 1725 set_tp_times(tp, min_expiry(env, dd), key_ttl(dnskey_rrset), changed); 1726 return 1; 1727 } 1728 1729 /** 1730 * Check if the holddown time has already exceeded 1731 * setting: add-holddown: add holddown timer 1732 * setting: del-holddown: del holddown timer 1733 * @param env: environment with current time 1734 * @param ta: trust anchor to check for. 1735 * @param holddown: the timer value 1736 * @return number of seconds the holddown has passed. 1737 */ 1738 static time_t 1739 check_holddown(struct module_env* env, struct autr_ta* ta, 1740 unsigned int holddown) 1741 { 1742 time_t elapsed; 1743 if(*env->now < ta->last_change) { 1744 log_warn("time goes backwards. delaying key holddown"); 1745 return 0; 1746 } 1747 elapsed = *env->now - ta->last_change; 1748 if (elapsed > (time_t)holddown) { 1749 return elapsed-(time_t)holddown; 1750 } 1751 verbose_key(ta, VERB_ALGO, "holddown time " ARG_LL "d seconds to go", 1752 (long long) ((time_t)holddown-elapsed)); 1753 return 0; 1754 } 1755 1756 1757 /** Set last_change to now */ 1758 static void 1759 reset_holddown(struct module_env* env, struct autr_ta* ta, int* changed) 1760 { 1761 ta->last_change = *env->now; 1762 *changed = 1; 1763 } 1764 1765 /** Set the state for this trust anchor */ 1766 static void 1767 set_trustanchor_state(struct module_env* env, struct autr_ta* ta, int* changed, 1768 autr_state_type s) 1769 { 1770 verbose_key(ta, VERB_ALGO, "update: %s to %s", 1771 trustanchor_state2str(ta->s), trustanchor_state2str(s)); 1772 ta->s = s; 1773 reset_holddown(env, ta, changed); 1774 } 1775 1776 1777 /** Event: NewKey */ 1778 static void 1779 do_newkey(struct module_env* env, struct autr_ta* anchor, int* c) 1780 { 1781 if (anchor->s == AUTR_STATE_START) 1782 set_trustanchor_state(env, anchor, c, AUTR_STATE_ADDPEND); 1783 } 1784 1785 /** Event: AddTime */ 1786 static void 1787 do_addtime(struct module_env* env, struct autr_ta* anchor, int* c) 1788 { 1789 /* This not according to RFC, this is 30 days, but the RFC demands 1790 * MAX(30days, TTL expire time of first DNSKEY set with this key), 1791 * The value may be too small if a very large TTL was used. */ 1792 time_t exceeded = check_holddown(env, anchor, env->cfg->add_holddown); 1793 if (exceeded && anchor->s == AUTR_STATE_ADDPEND) { 1794 verbose_key(anchor, VERB_ALGO, "add-holddown time exceeded " 1795 ARG_LL "d seconds ago, and pending-count %d", 1796 (long long)exceeded, anchor->pending_count); 1797 if(anchor->pending_count >= MIN_PENDINGCOUNT) { 1798 set_trustanchor_state(env, anchor, c, AUTR_STATE_VALID); 1799 anchor->pending_count = 0; 1800 return; 1801 } 1802 verbose_key(anchor, VERB_ALGO, "add-holddown time sanity check " 1803 "failed (pending count: %d)", anchor->pending_count); 1804 } 1805 } 1806 1807 /** Event: RemTime */ 1808 static void 1809 do_remtime(struct module_env* env, struct autr_ta* anchor, int* c) 1810 { 1811 time_t exceeded = check_holddown(env, anchor, env->cfg->del_holddown); 1812 if(exceeded && anchor->s == AUTR_STATE_REVOKED) { 1813 verbose_key(anchor, VERB_ALGO, "del-holddown time exceeded " 1814 ARG_LL "d seconds ago", (long long)exceeded); 1815 set_trustanchor_state(env, anchor, c, AUTR_STATE_REMOVED); 1816 } 1817 } 1818 1819 /** Event: KeyRem */ 1820 static void 1821 do_keyrem(struct module_env* env, struct autr_ta* anchor, int* c) 1822 { 1823 if(anchor->s == AUTR_STATE_ADDPEND) { 1824 set_trustanchor_state(env, anchor, c, AUTR_STATE_START); 1825 anchor->pending_count = 0; 1826 } else if(anchor->s == AUTR_STATE_VALID) 1827 set_trustanchor_state(env, anchor, c, AUTR_STATE_MISSING); 1828 } 1829 1830 /** Event: KeyPres */ 1831 static void 1832 do_keypres(struct module_env* env, struct autr_ta* anchor, int* c) 1833 { 1834 if(anchor->s == AUTR_STATE_MISSING) 1835 set_trustanchor_state(env, anchor, c, AUTR_STATE_VALID); 1836 } 1837 1838 /* Event: Revoked */ 1839 static void 1840 do_revoked(struct module_env* env, struct autr_ta* anchor, int* c) 1841 { 1842 if(anchor->s == AUTR_STATE_VALID || anchor->s == AUTR_STATE_MISSING) { 1843 set_trustanchor_state(env, anchor, c, AUTR_STATE_REVOKED); 1844 verbose_key(anchor, VERB_ALGO, "old id, prior to revocation"); 1845 revoke_dnskey(anchor, 0); 1846 verbose_key(anchor, VERB_ALGO, "new id, after revocation"); 1847 } 1848 } 1849 1850 /** Do statestable transition matrix for anchor */ 1851 static void 1852 anchor_state_update(struct module_env* env, struct autr_ta* anchor, int* c) 1853 { 1854 log_assert(anchor); 1855 switch(anchor->s) { 1856 /* START */ 1857 case AUTR_STATE_START: 1858 /* NewKey: ADDPEND */ 1859 if (anchor->fetched) 1860 do_newkey(env, anchor, c); 1861 break; 1862 /* ADDPEND */ 1863 case AUTR_STATE_ADDPEND: 1864 /* KeyRem: START */ 1865 if (!anchor->fetched) 1866 do_keyrem(env, anchor, c); 1867 /* AddTime: VALID */ 1868 else do_addtime(env, anchor, c); 1869 break; 1870 /* VALID */ 1871 case AUTR_STATE_VALID: 1872 /* RevBit: REVOKED */ 1873 if (anchor->revoked) 1874 do_revoked(env, anchor, c); 1875 /* KeyRem: MISSING */ 1876 else if (!anchor->fetched) 1877 do_keyrem(env, anchor, c); 1878 else if(!anchor->last_change) { 1879 verbose_key(anchor, VERB_ALGO, "first seen"); 1880 reset_holddown(env, anchor, c); 1881 } 1882 break; 1883 /* MISSING */ 1884 case AUTR_STATE_MISSING: 1885 /* RevBit: REVOKED */ 1886 if (anchor->revoked) 1887 do_revoked(env, anchor, c); 1888 /* KeyPres */ 1889 else if (anchor->fetched) 1890 do_keypres(env, anchor, c); 1891 break; 1892 /* REVOKED */ 1893 case AUTR_STATE_REVOKED: 1894 if (anchor->fetched) 1895 reset_holddown(env, anchor, c); 1896 /* RemTime: REMOVED */ 1897 else do_remtime(env, anchor, c); 1898 break; 1899 /* REMOVED */ 1900 case AUTR_STATE_REMOVED: 1901 default: 1902 break; 1903 } 1904 } 1905 1906 /** if ZSK init then trust KSKs */ 1907 static int 1908 init_zsk_to_ksk(struct module_env* env, struct trust_anchor* tp, int* changed) 1909 { 1910 /* search for VALID ZSKs */ 1911 struct autr_ta* anchor; 1912 int validzsk = 0; 1913 int validksk = 0; 1914 for(anchor = tp->autr->keys; anchor; anchor = anchor->next) { 1915 /* last_change test makes sure it was manually configured */ 1916 if(sldns_wirerr_get_type(anchor->rr, anchor->rr_len, 1917 anchor->dname_len) == LDNS_RR_TYPE_DNSKEY && 1918 anchor->last_change == 0 && 1919 !ta_is_dnskey_sep(anchor) && 1920 anchor->s == AUTR_STATE_VALID) 1921 validzsk++; 1922 } 1923 if(validzsk == 0) 1924 return 0; 1925 for(anchor = tp->autr->keys; anchor; anchor = anchor->next) { 1926 if (ta_is_dnskey_sep(anchor) && 1927 anchor->s == AUTR_STATE_ADDPEND) { 1928 verbose_key(anchor, VERB_ALGO, "trust KSK from " 1929 "ZSK(config)"); 1930 set_trustanchor_state(env, anchor, changed, 1931 AUTR_STATE_VALID); 1932 validksk++; 1933 } 1934 } 1935 return validksk; 1936 } 1937 1938 /** Remove missing trustanchors so the list does not grow forever */ 1939 static void 1940 remove_missing_trustanchors(struct module_env* env, struct trust_anchor* tp, 1941 int* changed) 1942 { 1943 struct autr_ta* anchor; 1944 time_t exceeded; 1945 int valid = 0; 1946 /* see if we have anchors that are valid */ 1947 for(anchor = tp->autr->keys; anchor; anchor = anchor->next) { 1948 /* Only do KSKs */ 1949 if (!ta_is_dnskey_sep(anchor)) 1950 continue; 1951 if (anchor->s == AUTR_STATE_VALID) 1952 valid++; 1953 } 1954 /* if there are no SEP Valid anchors, see if we started out with 1955 * a ZSK (last-change=0) anchor, which is VALID and there are KSKs 1956 * now that can be made valid. Do this immediately because there 1957 * is no guarantee that the ZSKs get announced long enough. Usually 1958 * this is immediately after init with a ZSK trusted, unless the domain 1959 * was not advertising any KSKs at all. In which case we perfectly 1960 * track the zero number of KSKs. */ 1961 if(valid == 0) { 1962 valid = init_zsk_to_ksk(env, tp, changed); 1963 if(valid == 0) 1964 return; 1965 } 1966 1967 for(anchor = tp->autr->keys; anchor; anchor = anchor->next) { 1968 /* ignore ZSKs if newly added */ 1969 if(anchor->s == AUTR_STATE_START) 1970 continue; 1971 /* remove ZSKs if a KSK is present */ 1972 if (!ta_is_dnskey_sep(anchor)) { 1973 if(valid > 0) { 1974 verbose_key(anchor, VERB_ALGO, "remove ZSK " 1975 "[%d key(s) VALID]", valid); 1976 set_trustanchor_state(env, anchor, changed, 1977 AUTR_STATE_REMOVED); 1978 } 1979 continue; 1980 } 1981 /* Only do MISSING keys */ 1982 if (anchor->s != AUTR_STATE_MISSING) 1983 continue; 1984 if(env->cfg->keep_missing == 0) 1985 continue; /* keep forever */ 1986 1987 exceeded = check_holddown(env, anchor, env->cfg->keep_missing); 1988 /* If keep_missing has exceeded and we still have more than 1989 * one valid KSK: remove missing trust anchor */ 1990 if (exceeded && valid > 0) { 1991 verbose_key(anchor, VERB_ALGO, "keep-missing time " 1992 "exceeded " ARG_LL "d seconds ago, [%d key(s) VALID]", 1993 (long long)exceeded, valid); 1994 set_trustanchor_state(env, anchor, changed, 1995 AUTR_STATE_REMOVED); 1996 } 1997 } 1998 } 1999 2000 /** Do the statetable from RFC5011 transition matrix */ 2001 static int 2002 do_statetable(struct module_env* env, struct trust_anchor* tp, int* changed) 2003 { 2004 struct autr_ta* anchor; 2005 for(anchor = tp->autr->keys; anchor; anchor = anchor->next) { 2006 /* Only do KSKs */ 2007 if(!ta_is_dnskey_sep(anchor)) 2008 continue; 2009 anchor_state_update(env, anchor, changed); 2010 } 2011 remove_missing_trustanchors(env, tp, changed); 2012 return 1; 2013 } 2014 2015 /** See if time alone makes ADDPEND to VALID transition */ 2016 static void 2017 autr_holddown_exceed(struct module_env* env, struct trust_anchor* tp, int* c) 2018 { 2019 struct autr_ta* anchor; 2020 for(anchor = tp->autr->keys; anchor; anchor = anchor->next) { 2021 if(ta_is_dnskey_sep(anchor) && 2022 anchor->s == AUTR_STATE_ADDPEND) 2023 do_addtime(env, anchor, c); 2024 } 2025 } 2026 2027 /** cleanup key list */ 2028 static void 2029 autr_cleanup_keys(struct trust_anchor* tp) 2030 { 2031 struct autr_ta* p, **prevp; 2032 prevp = &tp->autr->keys; 2033 p = tp->autr->keys; 2034 while(p) { 2035 /* do we want to remove this key? */ 2036 if(p->s == AUTR_STATE_START || p->s == AUTR_STATE_REMOVED || 2037 sldns_wirerr_get_type(p->rr, p->rr_len, p->dname_len) 2038 != LDNS_RR_TYPE_DNSKEY) { 2039 struct autr_ta* np = p->next; 2040 /* remove */ 2041 autr_ta_delete(p); 2042 /* snip and go to next item */ 2043 *prevp = np; 2044 p = np; 2045 continue; 2046 } 2047 /* remove pending counts if no longer pending */ 2048 if(p->s != AUTR_STATE_ADDPEND) 2049 p->pending_count = 0; 2050 prevp = &p->next; 2051 p = p->next; 2052 } 2053 } 2054 2055 /** calculate next probe time */ 2056 static time_t 2057 calc_next_probe(struct module_env* env, time_t wait) 2058 { 2059 /* make it random, 90-100% */ 2060 time_t rnd, rest; 2061 if(!autr_permit_small_holddown) { 2062 if(wait < 3600) 2063 wait = 3600; 2064 } else { 2065 if(wait == 0) wait = 1; 2066 } 2067 rnd = wait/10; 2068 rest = wait-rnd; 2069 rnd = (time_t)ub_random_max(env->rnd, (long int)rnd); 2070 return (time_t)(*env->now + rest + rnd); 2071 } 2072 2073 /** what is first probe time (anchors must be locked) */ 2074 static time_t 2075 wait_probe_time(struct val_anchors* anchors) 2076 { 2077 rbnode_type* t = rbtree_first(&anchors->autr->probe); 2078 if(t != RBTREE_NULL) 2079 return ((struct trust_anchor*)t->key)->autr->next_probe_time; 2080 return 0; 2081 } 2082 2083 /** reset worker timer, at the time from wait_probe_time. */ 2084 static void 2085 reset_worker_timer_at(struct module_env* env, time_t next) 2086 { 2087 struct timeval tv; 2088 #ifndef S_SPLINT_S 2089 /* in case this is libunbound, no timer */ 2090 if(!env->probe_timer) 2091 return; 2092 if(next > *env->now) 2093 tv.tv_sec = (time_t)(next - *env->now); 2094 else tv.tv_sec = 0; 2095 #else 2096 (void)next; 2097 #endif 2098 tv.tv_usec = 0; 2099 comm_timer_set(env->probe_timer, &tv); 2100 verbose(VERB_ALGO, "scheduled next probe in " ARG_LL "d sec", (long long)tv.tv_sec); 2101 } 2102 2103 /** reset worker timer. This routine manages the locks on acquiring the 2104 * next time for the timer. */ 2105 static void 2106 reset_worker_timer(struct module_env* env) 2107 { 2108 time_t next; 2109 if(!env->anchors) 2110 return; 2111 lock_basic_lock(&env->anchors->lock); 2112 next = wait_probe_time(env->anchors); 2113 lock_basic_unlock(&env->anchors->lock); 2114 reset_worker_timer_at(env, next); 2115 } 2116 2117 /** set next probe for trust anchor */ 2118 static int 2119 set_next_probe(struct module_env* env, struct trust_anchor* tp, 2120 struct ub_packed_rrset_key* dnskey_rrset) 2121 { 2122 struct trust_anchor key, *tp2; 2123 time_t mold, mnew; 2124 /* use memory allocated in rrset for temporary name storage */ 2125 key.node.key = &key; 2126 key.name = dnskey_rrset->rk.dname; 2127 key.namelen = dnskey_rrset->rk.dname_len; 2128 key.namelabs = dname_count_labels(key.name); 2129 key.dclass = tp->dclass; 2130 lock_basic_unlock(&tp->lock); 2131 2132 /* fetch tp again and lock anchors, so that we can modify the trees */ 2133 lock_basic_lock(&env->anchors->lock); 2134 tp2 = (struct trust_anchor*)rbtree_search(env->anchors->tree, &key); 2135 if(!tp2) { 2136 verbose(VERB_ALGO, "trustpoint was deleted in set_next_probe"); 2137 lock_basic_unlock(&env->anchors->lock); 2138 return 0; 2139 } 2140 log_assert(tp == tp2); 2141 lock_basic_lock(&tp->lock); 2142 2143 /* schedule */ 2144 mold = wait_probe_time(env->anchors); 2145 (void)rbtree_delete(&env->anchors->autr->probe, tp); 2146 tp->autr->next_probe_time = calc_next_probe(env, 2147 tp->autr->query_interval); 2148 (void)rbtree_insert(&env->anchors->autr->probe, &tp->autr->pnode); 2149 mnew = wait_probe_time(env->anchors); 2150 2151 lock_basic_unlock(&env->anchors->lock); 2152 verbose(VERB_ALGO, "next probe set in %d seconds", 2153 (int)tp->autr->next_probe_time - (int)*env->now); 2154 if(mold != mnew) { 2155 reset_worker_timer_at(env, mnew); 2156 } 2157 return 1; 2158 } 2159 2160 /** Revoke and Delete a trust point */ 2161 static void 2162 autr_tp_remove(struct module_env* env, struct trust_anchor* tp, 2163 struct ub_packed_rrset_key* dnskey_rrset) 2164 { 2165 struct trust_anchor* del_tp; 2166 struct trust_anchor key; 2167 struct autr_point_data pd; 2168 time_t mold, mnew; 2169 2170 log_nametypeclass(VERB_OPS, "trust point was revoked", 2171 tp->name, LDNS_RR_TYPE_DNSKEY, tp->dclass); 2172 tp->autr->revoked = 1; 2173 2174 /* use space allocated for dnskey_rrset to save name of anchor */ 2175 memset(&key, 0, sizeof(key)); 2176 memset(&pd, 0, sizeof(pd)); 2177 key.autr = &pd; 2178 key.node.key = &key; 2179 pd.pnode.key = &key; 2180 pd.next_probe_time = tp->autr->next_probe_time; 2181 key.name = dnskey_rrset->rk.dname; 2182 key.namelen = tp->namelen; 2183 key.namelabs = tp->namelabs; 2184 key.dclass = tp->dclass; 2185 2186 /* unlock */ 2187 lock_basic_unlock(&tp->lock); 2188 2189 /* take from tree. It could be deleted by someone else,hence (void). */ 2190 lock_basic_lock(&env->anchors->lock); 2191 del_tp = (struct trust_anchor*)rbtree_delete(env->anchors->tree, &key); 2192 mold = wait_probe_time(env->anchors); 2193 (void)rbtree_delete(&env->anchors->autr->probe, &key); 2194 mnew = wait_probe_time(env->anchors); 2195 anchors_init_parents_locked(env->anchors); 2196 lock_basic_unlock(&env->anchors->lock); 2197 2198 /* if !del_tp then the trust point is no longer present in the tree, 2199 * it was deleted by someone else, who will write the zonefile and 2200 * clean up the structure */ 2201 if(del_tp) { 2202 /* save on disk */ 2203 del_tp->autr->next_probe_time = 0; /* no more probing for it */ 2204 autr_write_file(env, del_tp); 2205 2206 /* delete */ 2207 autr_point_delete(del_tp); 2208 } 2209 if(mold != mnew) { 2210 reset_worker_timer_at(env, mnew); 2211 } 2212 } 2213 2214 int autr_process_prime(struct module_env* env, struct val_env* ve, 2215 struct trust_anchor* tp, struct ub_packed_rrset_key* dnskey_rrset, 2216 struct module_qstate* qstate, struct val_qstate* vq) 2217 { 2218 int changed = 0; 2219 log_assert(tp && tp->autr); 2220 /* autotrust update trust anchors */ 2221 /* the tp is locked, and stays locked unless it is deleted */ 2222 2223 /* we could just catch the anchor here while another thread 2224 * is busy deleting it. Just unlock and let the other do its job */ 2225 if(tp->autr->revoked) { 2226 log_nametypeclass(VERB_ALGO, "autotrust not processed, " 2227 "trust point revoked", tp->name, 2228 LDNS_RR_TYPE_DNSKEY, tp->dclass); 2229 lock_basic_unlock(&tp->lock); 2230 return 0; /* it is revoked */ 2231 } 2232 2233 /* query_dnskeys(): */ 2234 tp->autr->last_queried = *env->now; 2235 2236 log_nametypeclass(VERB_ALGO, "autotrust process for", 2237 tp->name, LDNS_RR_TYPE_DNSKEY, tp->dclass); 2238 /* see if time alone makes some keys valid */ 2239 autr_holddown_exceed(env, tp, &changed); 2240 if(changed) { 2241 verbose(VERB_ALGO, "autotrust: morekeys, reassemble"); 2242 if(!autr_assemble(tp)) { 2243 log_err("malloc failure assembling autotrust keys"); 2244 return 1; /* unchanged */ 2245 } 2246 } 2247 /* did we get any data? */ 2248 if(!dnskey_rrset) { 2249 verbose(VERB_ALGO, "autotrust: no dnskey rrset"); 2250 /* no update of query_failed, because then we would have 2251 * to write to disk. But we cannot because we maybe are 2252 * still 'initializing' with DS records, that we cannot write 2253 * in the full format (which only contains KSKs). */ 2254 return 1; /* trust point exists */ 2255 } 2256 /* check for revoked keys to remove immediately */ 2257 check_contains_revoked(env, ve, tp, dnskey_rrset, &changed, qstate, vq); 2258 if(changed) { 2259 verbose(VERB_ALGO, "autotrust: revokedkeys, reassemble"); 2260 if(!autr_assemble(tp)) { 2261 log_err("malloc failure assembling autotrust keys"); 2262 return 1; /* unchanged */ 2263 } 2264 if(!tp->ds_rrset && !tp->dnskey_rrset) { 2265 /* no more keys, all are revoked */ 2266 /* this is a success for this probe attempt */ 2267 tp->autr->last_success = *env->now; 2268 autr_tp_remove(env, tp, dnskey_rrset); 2269 return 0; /* trust point removed */ 2270 } 2271 } 2272 /* verify the dnskey rrset and see if it is valid. */ 2273 if(!verify_dnskey(env, ve, tp, dnskey_rrset, qstate, vq)) { 2274 verbose(VERB_ALGO, "autotrust: dnskey did not verify."); 2275 /* only increase failure count if this is not the first prime, 2276 * this means there was a previous successful probe */ 2277 if(tp->autr->last_success) { 2278 tp->autr->query_failed += 1; 2279 autr_write_file(env, tp); 2280 } 2281 return 1; /* trust point exists */ 2282 } 2283 2284 tp->autr->last_success = *env->now; 2285 tp->autr->query_failed = 0; 2286 2287 /* Add new trust anchors to the data structure 2288 * - note which trust anchors are seen this probe. 2289 * Set trustpoint query_interval and retry_time. 2290 * - find minimum rrsig expiration interval 2291 */ 2292 if(!update_events(env, ve, tp, dnskey_rrset, &changed)) { 2293 log_err("malloc failure in autotrust update_events. " 2294 "trust point unchanged."); 2295 return 1; /* trust point unchanged, so exists */ 2296 } 2297 2298 /* - for every SEP key do the 5011 statetable. 2299 * - remove missing trustanchors (if veryold and we have new anchors). 2300 */ 2301 if(!do_statetable(env, tp, &changed)) { 2302 log_err("malloc failure in autotrust do_statetable. " 2303 "trust point unchanged."); 2304 return 1; /* trust point unchanged, so exists */ 2305 } 2306 2307 autr_cleanup_keys(tp); 2308 if(!set_next_probe(env, tp, dnskey_rrset)) 2309 return 0; /* trust point does not exist */ 2310 autr_write_file(env, tp); 2311 if(changed) { 2312 verbose(VERB_ALGO, "autotrust: changed, reassemble"); 2313 if(!autr_assemble(tp)) { 2314 log_err("malloc failure assembling autotrust keys"); 2315 return 1; /* unchanged */ 2316 } 2317 if(!tp->ds_rrset && !tp->dnskey_rrset) { 2318 /* no more keys, all are revoked */ 2319 autr_tp_remove(env, tp, dnskey_rrset); 2320 return 0; /* trust point removed */ 2321 } 2322 } else verbose(VERB_ALGO, "autotrust: no changes"); 2323 2324 return 1; /* trust point exists */ 2325 } 2326 2327 /** debug print a trust anchor key */ 2328 static void 2329 autr_debug_print_ta(struct autr_ta* ta) 2330 { 2331 char buf[32]; 2332 char* str = sldns_wire2str_rr(ta->rr, ta->rr_len); 2333 if(!str) { 2334 log_info("out of memory in debug_print_ta"); 2335 return; 2336 } 2337 if(str[0]) str[strlen(str)-1]=0; /* remove newline */ 2338 (void)autr_ctime_r(&ta->last_change, buf); 2339 if(buf[0]) buf[strlen(buf)-1]=0; /* remove newline */ 2340 log_info("[%s] %s ;;state:%d ;;pending_count:%d%s%s last:%s", 2341 trustanchor_state2str(ta->s), str, ta->s, ta->pending_count, 2342 ta->fetched?" fetched":"", ta->revoked?" revoked":"", buf); 2343 free(str); 2344 } 2345 2346 /** debug print a trust point */ 2347 static void 2348 autr_debug_print_tp(struct trust_anchor* tp) 2349 { 2350 struct autr_ta* ta; 2351 /* Note: buf is also used for autr_ctime_r but that only needs a size 2352 * of 26, so LDNS_MAX_DOMAINLEN is enough. */ 2353 char buf[LDNS_MAX_DOMAINLEN]; 2354 if(!tp->autr) 2355 return; 2356 dname_str(tp->name, buf); 2357 log_info("trust point %s : %d", buf, (int)tp->dclass); 2358 log_info("assembled %d DS and %d DNSKEYs", 2359 (int)tp->numDS, (int)tp->numDNSKEY); 2360 if(tp->ds_rrset) { 2361 log_packed_rrset(NO_VERBOSE, "DS:", tp->ds_rrset); 2362 } 2363 if(tp->dnskey_rrset) { 2364 log_packed_rrset(NO_VERBOSE, "DNSKEY:", tp->dnskey_rrset); 2365 } 2366 log_info("file %s", (tp->autr->file?tp->autr->file:"null")); 2367 (void)autr_ctime_r(&tp->autr->last_queried, buf); 2368 if(buf[0]) buf[strlen(buf)-1]=0; /* remove newline */ 2369 log_info("last_queried: %u %s", (unsigned)tp->autr->last_queried, buf); 2370 (void)autr_ctime_r(&tp->autr->last_success, buf); 2371 if(buf[0]) buf[strlen(buf)-1]=0; /* remove newline */ 2372 log_info("last_success: %u %s", (unsigned)tp->autr->last_success, buf); 2373 (void)autr_ctime_r(&tp->autr->next_probe_time, buf); 2374 if(buf[0]) buf[strlen(buf)-1]=0; /* remove newline */ 2375 log_info("next_probe_time: %u %s", (unsigned)tp->autr->next_probe_time, 2376 buf); 2377 log_info("query_interval: %u", (unsigned)tp->autr->query_interval); 2378 log_info("retry_time: %u", (unsigned)tp->autr->retry_time); 2379 log_info("query_failed: %u", (unsigned)tp->autr->query_failed); 2380 2381 for(ta=tp->autr->keys; ta; ta=ta->next) { 2382 autr_debug_print_ta(ta); 2383 } 2384 } 2385 2386 void 2387 autr_debug_print(struct val_anchors* anchors) 2388 { 2389 struct trust_anchor* tp; 2390 lock_basic_lock(&anchors->lock); 2391 RBTREE_FOR(tp, struct trust_anchor*, anchors->tree) { 2392 lock_basic_lock(&tp->lock); 2393 autr_debug_print_tp(tp); 2394 lock_basic_unlock(&tp->lock); 2395 } 2396 lock_basic_unlock(&anchors->lock); 2397 } 2398 2399 void probe_answer_cb(void* arg, int ATTR_UNUSED(rcode), 2400 sldns_buffer* ATTR_UNUSED(buf), enum sec_status ATTR_UNUSED(sec), 2401 char* ATTR_UNUSED(why_bogus), int ATTR_UNUSED(was_ratelimited)) 2402 { 2403 /* retry was set before the query was done, 2404 * re-querytime is set when query succeeded, but that may not 2405 * have reset this timer because the query could have been 2406 * handled by another thread. In that case, this callback would 2407 * get called after the original timeout is done. 2408 * By not resetting the timer, it may probe more often, but not 2409 * less often. 2410 * Unless the new lookup resulted in smaller TTLs and thus smaller 2411 * timeout values. In that case one old TTL could be mistakenly done. 2412 */ 2413 struct module_env* env = (struct module_env*)arg; 2414 verbose(VERB_ALGO, "autotrust probe answer cb"); 2415 reset_worker_timer(env); 2416 } 2417 2418 /** probe a trust anchor DNSKEY and unlocks tp */ 2419 static void 2420 probe_anchor(struct module_env* env, struct trust_anchor* tp) 2421 { 2422 struct query_info qinfo; 2423 uint16_t qflags = BIT_RD; 2424 struct edns_data edns; 2425 sldns_buffer* buf = env->scratch_buffer; 2426 qinfo.qname = regional_alloc_init(env->scratch, tp->name, tp->namelen); 2427 if(!qinfo.qname) { 2428 log_err("out of memory making 5011 probe"); 2429 return; 2430 } 2431 qinfo.qname_len = tp->namelen; 2432 qinfo.qtype = LDNS_RR_TYPE_DNSKEY; 2433 qinfo.qclass = tp->dclass; 2434 qinfo.local_alias = NULL; 2435 log_query_info(VERB_ALGO, "autotrust probe", &qinfo); 2436 verbose(VERB_ALGO, "retry probe set in %d seconds", 2437 (int)tp->autr->next_probe_time - (int)*env->now); 2438 edns.edns_present = 1; 2439 edns.ext_rcode = 0; 2440 edns.edns_version = 0; 2441 edns.bits = EDNS_DO; 2442 edns.opt_list_in = NULL; 2443 edns.opt_list_out = NULL; 2444 edns.opt_list_inplace_cb_out = NULL; 2445 edns.padding_block_size = 0; 2446 edns.cookie_present = 0; 2447 edns.cookie_valid = 0; 2448 if(sldns_buffer_capacity(buf) < 65535) 2449 edns.udp_size = (uint16_t)sldns_buffer_capacity(buf); 2450 else edns.udp_size = 65535; 2451 2452 /* can't hold the lock while mesh_run is processing */ 2453 lock_basic_unlock(&tp->lock); 2454 2455 /* delete the DNSKEY from rrset and key cache so an active probe 2456 * is done. First the rrset so another thread does not use it 2457 * to recreate the key entry in a race condition. */ 2458 rrset_cache_remove(env->rrset_cache, qinfo.qname, qinfo.qname_len, 2459 qinfo.qtype, qinfo.qclass, 0); 2460 key_cache_remove(env->key_cache, qinfo.qname, qinfo.qname_len, 2461 qinfo.qclass); 2462 2463 if(!mesh_new_callback(env->mesh, &qinfo, qflags, &edns, buf, 0, 2464 &probe_answer_cb, env, 0, NULL)) { 2465 log_err("out of memory making 5011 probe"); 2466 } 2467 } 2468 2469 /** fetch first to-probe trust-anchor and lock it and set retrytime */ 2470 static struct trust_anchor* 2471 todo_probe(struct module_env* env, time_t* next) 2472 { 2473 struct trust_anchor* tp; 2474 rbnode_type* el; 2475 /* get first one */ 2476 lock_basic_lock(&env->anchors->lock); 2477 if( (el=rbtree_first(&env->anchors->autr->probe)) == RBTREE_NULL) { 2478 /* in case of revoked anchors */ 2479 lock_basic_unlock(&env->anchors->lock); 2480 /* signal that there are no anchors to probe */ 2481 *next = 0; 2482 return NULL; 2483 } 2484 tp = (struct trust_anchor*)el->key; 2485 lock_basic_lock(&tp->lock); 2486 2487 /* is it eligible? */ 2488 if((time_t)tp->autr->next_probe_time > *env->now) { 2489 /* no more to probe */ 2490 *next = (time_t)tp->autr->next_probe_time - *env->now; 2491 lock_basic_unlock(&tp->lock); 2492 lock_basic_unlock(&env->anchors->lock); 2493 return NULL; 2494 } 2495 2496 /* reset its next probe time */ 2497 (void)rbtree_delete(&env->anchors->autr->probe, tp); 2498 tp->autr->next_probe_time = calc_next_probe(env, tp->autr->retry_time); 2499 (void)rbtree_insert(&env->anchors->autr->probe, &tp->autr->pnode); 2500 lock_basic_unlock(&env->anchors->lock); 2501 2502 return tp; 2503 } 2504 2505 time_t 2506 autr_probe_timer(struct module_env* env) 2507 { 2508 struct trust_anchor* tp; 2509 time_t next_probe = 3600; 2510 int num = 0; 2511 if(autr_permit_small_holddown) next_probe = 1; 2512 verbose(VERB_ALGO, "autotrust probe timer callback"); 2513 /* while there are still anchors to probe */ 2514 while( (tp = todo_probe(env, &next_probe)) ) { 2515 /* make a probe for this anchor */ 2516 probe_anchor(env, tp); 2517 num++; 2518 } 2519 regional_free_all(env->scratch); 2520 if(next_probe == 0) 2521 return 0; /* no trust points to probe */ 2522 verbose(VERB_ALGO, "autotrust probe timer %d callbacks done", num); 2523 return next_probe; 2524 } 2525