1 /* 2 * CDDL HEADER START 3 * 4 * The contents of this file are subject to the terms of the 5 * Common Development and Distribution License (the "License"). 6 * You may not use this file except in compliance with the License. 7 * 8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9 * or http://www.opensolaris.org/os/licensing. 10 * See the License for the specific language governing permissions 11 * and limitations under the License. 12 * 13 * When distributing Covered Code, include this CDDL HEADER in each 14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15 * If applicable, add the following below this CDDL HEADER, with the 16 * fields enclosed by brackets "[]" replaced with your own identifying 17 * information: Portions Copyright [yyyy] [name of copyright owner] 18 * 19 * CDDL HEADER END 20 */ 21 /* 22 * Copyright 2009 Sun Microsystems, Inc. All rights reserved. 23 * Use is subject to license terms. 24 */ 25 26 #include <sys/types.h> 27 #include <sys/stream.h> 28 #include <sys/strsubr.h> 29 #include <sys/stropts.h> 30 #include <sys/sunddi.h> 31 #include <sys/cred.h> 32 #include <sys/debug.h> 33 #include <sys/kmem.h> 34 #include <sys/errno.h> 35 #include <sys/disp.h> 36 #include <netinet/in.h> 37 #include <netinet/in_systm.h> 38 #include <netinet/ip.h> 39 #include <netinet/ip_icmp.h> 40 #include <netinet/tcp.h> 41 #include <inet/common.h> 42 #include <inet/ipclassifier.h> 43 #include <inet/ip.h> 44 #include <inet/mib2.h> 45 #include <inet/nd.h> 46 #include <inet/tcp.h> 47 #include <inet/ip_rts.h> 48 #include <inet/ip_ire.h> 49 #include <inet/ip_if.h> 50 #include <sys/modhash.h> 51 52 #include <sys/tsol/label.h> 53 #include <sys/tsol/label_macro.h> 54 #include <sys/tsol/tnet.h> 55 #include <sys/tsol/tndb.h> 56 #include <sys/strsun.h> 57 58 /* tunable for strict error-reply behavior (TCP RST and ICMP Unreachable) */ 59 int tsol_strict_error; 60 61 /* 62 * Some notes on the Trusted Solaris IRE gateway security attributes: 63 * 64 * When running in Trusted mode, the routing subsystem determines whether or 65 * not a packet can be delivered to an off-link host (not directly reachable 66 * through an interface) based on the accreditation checks of the packet's 67 * security attributes against those associated with the next-hop gateway. 68 * 69 * The next-hop gateway's security attributes can be derived from two sources 70 * (in order of preference): route-related and the host database. A Trusted 71 * system must be configured with at least the host database containing an 72 * entry for the next-hop gateway, or otherwise no accreditation checks can 73 * be performed, which may result in the inability to send packets to any 74 * off-link destination host. 75 * 76 * The major differences between the two sources are the number and type of 77 * security attributes used for accreditation checks. A host database entry 78 * can contain at most one set of security attributes, specific only to the 79 * next-hop gateway. On contrast, route-related security attributes are made 80 * up of a collection of security attributes for the distant networks, and 81 * are grouped together per next-hop gateway used to reach those networks. 82 * This is the preferred method, and the routing subsystem will fallback to 83 * the host database entry only if there are no route-related attributes 84 * associated with the next-hop gateway. 85 * 86 * In Trusted mode, all of the IRE entries (except LOCAL/LOOPBACK/BROADCAST/ 87 * INTERFACE type) are initialized to contain a placeholder to store this 88 * information. The ire_gw_secattr structure gets allocated, initialized 89 * and associated with the IRE during the time of the IRE creation. The 90 * initialization process also includes resolving the host database entry 91 * of the next-hop gateway for fallback purposes. It does not include any 92 * route-related attribute setup, as that process comes separately as part 93 * of the route requests (add/change) made to the routing subsystem. 94 * 95 * The underlying logic which involves associating IREs with the gateway 96 * security attributes are represented by the following data structures: 97 * 98 * tsol_gcdb_t, or "gcdb" 99 * 100 * - This is a system-wide collection of records containing the 101 * currently used route-related security attributes, which are fed 102 * through the routing socket interface, e.g. "route add/change". 103 * 104 * tsol_gc_t, or "gc" 105 * 106 * - This is the gateway credential structure, and it provides for the 107 * only mechanism to access the contents of gcdb. More than one gc 108 * entries may refer to the same gcdb record. gc's in the system are 109 * grouped according to the next-hop gateway address. 110 * 111 * tsol_gcgrp_t, or "gcgrp" 112 * 113 * - Group of gateway credentials, and is unique per next-hop gateway 114 * address. When the group is not empty, i.e. when gcgrp_count is 115 * greater than zero, it contains one or more gc's, each pointing to 116 * a gcdb record which indicates the gateway security attributes 117 * associated with the next-hop gateway. 118 * 119 * The fields of the tsol_ire_gw_secattr_t used from within the IRE are: 120 * 121 * igsa_lock 122 * 123 * - Lock that protects all fields within tsol_ire_gw_secattr_t. 124 * 125 * igsa_rhc 126 * 127 * - Remote host cache database entry of next-hop gateway. This is 128 * used in the case when there are no route-related attributes 129 * configured for the IRE. 130 * 131 * igsa_gc 132 * 133 * - A set of route-related attributes that only get set for prefix 134 * IREs. If this is non-NULL, the prefix IRE has been associated 135 * with a set of gateway security attributes by way of route add/ 136 * change functionality. This field stays NULL for IRE_CACHEs. 137 * 138 * igsa_gcgrp 139 * 140 * - Group of gc's which only gets set for IRE_CACHEs. Each of the gc 141 * points to a gcdb record that contains the security attributes 142 * used to perform the credential checks of the packet which uses 143 * the IRE. If the group is not empty, the list of gc's can be 144 * traversed starting at gcgrp_head. This field stays NULL for 145 * prefix IREs. 146 */ 147 148 static kmem_cache_t *ire_gw_secattr_cache; 149 150 #define GCDB_HASH_SIZE 101 151 #define GCGRP_HASH_SIZE 101 152 153 #define GCDB_REFRELE(p) { \ 154 mutex_enter(&gcdb_lock); \ 155 ASSERT((p)->gcdb_refcnt > 0); \ 156 if (--((p)->gcdb_refcnt) == 0) \ 157 gcdb_inactive(p); \ 158 ASSERT(MUTEX_HELD(&gcdb_lock)); \ 159 mutex_exit(&gcdb_lock); \ 160 } 161 162 static int gcdb_hash_size = GCDB_HASH_SIZE; 163 static int gcgrp_hash_size = GCGRP_HASH_SIZE; 164 static mod_hash_t *gcdb_hash; 165 static mod_hash_t *gcgrp4_hash; 166 static mod_hash_t *gcgrp6_hash; 167 168 static kmutex_t gcdb_lock; 169 kmutex_t gcgrp_lock; 170 171 static uint_t gcdb_hash_by_secattr(void *, mod_hash_key_t); 172 static int gcdb_hash_cmp(mod_hash_key_t, mod_hash_key_t); 173 static tsol_gcdb_t *gcdb_lookup(struct rtsa_s *, boolean_t); 174 static void gcdb_inactive(tsol_gcdb_t *); 175 176 static uint_t gcgrp_hash_by_addr(void *, mod_hash_key_t); 177 static int gcgrp_hash_cmp(mod_hash_key_t, mod_hash_key_t); 178 179 static int ire_gw_secattr_constructor(void *, void *, int); 180 static void ire_gw_secattr_destructor(void *, void *); 181 182 void 183 tnet_init(void) 184 { 185 ire_gw_secattr_cache = kmem_cache_create("ire_gw_secattr_cache", 186 sizeof (tsol_ire_gw_secattr_t), 64, ire_gw_secattr_constructor, 187 ire_gw_secattr_destructor, NULL, NULL, NULL, 0); 188 189 gcdb_hash = mod_hash_create_extended("gcdb_hash", 190 gcdb_hash_size, mod_hash_null_keydtor, mod_hash_null_valdtor, 191 gcdb_hash_by_secattr, NULL, gcdb_hash_cmp, KM_SLEEP); 192 193 gcgrp4_hash = mod_hash_create_extended("gcgrp4_hash", 194 gcgrp_hash_size, mod_hash_null_keydtor, mod_hash_null_valdtor, 195 gcgrp_hash_by_addr, NULL, gcgrp_hash_cmp, KM_SLEEP); 196 197 gcgrp6_hash = mod_hash_create_extended("gcgrp6_hash", 198 gcgrp_hash_size, mod_hash_null_keydtor, mod_hash_null_valdtor, 199 gcgrp_hash_by_addr, NULL, gcgrp_hash_cmp, KM_SLEEP); 200 201 mutex_init(&gcdb_lock, NULL, MUTEX_DEFAULT, NULL); 202 mutex_init(&gcgrp_lock, NULL, MUTEX_DEFAULT, NULL); 203 } 204 205 void 206 tnet_fini(void) 207 { 208 kmem_cache_destroy(ire_gw_secattr_cache); 209 mod_hash_destroy_hash(gcdb_hash); 210 mod_hash_destroy_hash(gcgrp4_hash); 211 mod_hash_destroy_hash(gcgrp6_hash); 212 mutex_destroy(&gcdb_lock); 213 mutex_destroy(&gcgrp_lock); 214 } 215 216 /* ARGSUSED */ 217 static int 218 ire_gw_secattr_constructor(void *buf, void *cdrarg, int kmflags) 219 { 220 tsol_ire_gw_secattr_t *attrp = buf; 221 222 mutex_init(&attrp->igsa_lock, NULL, MUTEX_DEFAULT, NULL); 223 224 attrp->igsa_rhc = NULL; 225 attrp->igsa_gc = NULL; 226 attrp->igsa_gcgrp = NULL; 227 228 return (0); 229 } 230 231 /* ARGSUSED */ 232 static void 233 ire_gw_secattr_destructor(void *buf, void *cdrarg) 234 { 235 tsol_ire_gw_secattr_t *attrp = (tsol_ire_gw_secattr_t *)buf; 236 237 mutex_destroy(&attrp->igsa_lock); 238 } 239 240 tsol_ire_gw_secattr_t * 241 ire_gw_secattr_alloc(int kmflags) 242 { 243 return (kmem_cache_alloc(ire_gw_secattr_cache, kmflags)); 244 } 245 246 void 247 ire_gw_secattr_free(tsol_ire_gw_secattr_t *attrp) 248 { 249 ASSERT(MUTEX_NOT_HELD(&attrp->igsa_lock)); 250 251 if (attrp->igsa_rhc != NULL) { 252 TNRHC_RELE(attrp->igsa_rhc); 253 attrp->igsa_rhc = NULL; 254 } 255 256 if (attrp->igsa_gc != NULL) { 257 GC_REFRELE(attrp->igsa_gc); 258 attrp->igsa_gc = NULL; 259 } 260 if (attrp->igsa_gcgrp != NULL) { 261 GCGRP_REFRELE(attrp->igsa_gcgrp); 262 attrp->igsa_gcgrp = NULL; 263 } 264 265 ASSERT(attrp->igsa_rhc == NULL); 266 ASSERT(attrp->igsa_gc == NULL); 267 ASSERT(attrp->igsa_gcgrp == NULL); 268 269 kmem_cache_free(ire_gw_secattr_cache, attrp); 270 } 271 272 /* ARGSUSED */ 273 static uint_t 274 gcdb_hash_by_secattr(void *hash_data, mod_hash_key_t key) 275 { 276 const struct rtsa_s *rp = (struct rtsa_s *)key; 277 const uint32_t *up, *ue; 278 uint_t hash; 279 int i; 280 281 ASSERT(rp != NULL); 282 283 /* See comments in hash_bylabel in zone.c for details */ 284 hash = rp->rtsa_doi + (rp->rtsa_doi << 1); 285 up = (const uint32_t *)&rp->rtsa_slrange; 286 ue = up + sizeof (rp->rtsa_slrange) / sizeof (*up); 287 i = 1; 288 while (up < ue) { 289 /* using 2^n + 1, 1 <= n <= 16 as source of many primes */ 290 hash += *up + (*up << ((i % 16) + 1)); 291 up++; 292 i++; 293 } 294 return (hash); 295 } 296 297 static int 298 gcdb_hash_cmp(mod_hash_key_t key1, mod_hash_key_t key2) 299 { 300 struct rtsa_s *rp1 = (struct rtsa_s *)key1; 301 struct rtsa_s *rp2 = (struct rtsa_s *)key2; 302 303 ASSERT(rp1 != NULL && rp2 != NULL); 304 305 if (blequal(&rp1->rtsa_slrange.lower_bound, 306 &rp2->rtsa_slrange.lower_bound) && 307 blequal(&rp1->rtsa_slrange.upper_bound, 308 &rp2->rtsa_slrange.upper_bound) && 309 rp1->rtsa_doi == rp2->rtsa_doi) 310 return (0); 311 312 /* No match; not found */ 313 return (-1); 314 } 315 316 /* ARGSUSED */ 317 static uint_t 318 gcgrp_hash_by_addr(void *hash_data, mod_hash_key_t key) 319 { 320 tsol_gcgrp_addr_t *ga = (tsol_gcgrp_addr_t *)key; 321 uint_t idx = 0; 322 uint32_t *ap; 323 324 ASSERT(ga != NULL); 325 ASSERT(ga->ga_af == AF_INET || ga->ga_af == AF_INET6); 326 327 ap = (uint32_t *)&ga->ga_addr.s6_addr32[0]; 328 idx ^= *ap++; 329 idx ^= *ap++; 330 idx ^= *ap++; 331 idx ^= *ap; 332 333 return (idx); 334 } 335 336 static int 337 gcgrp_hash_cmp(mod_hash_key_t key1, mod_hash_key_t key2) 338 { 339 tsol_gcgrp_addr_t *ga1 = (tsol_gcgrp_addr_t *)key1; 340 tsol_gcgrp_addr_t *ga2 = (tsol_gcgrp_addr_t *)key2; 341 342 ASSERT(ga1 != NULL && ga2 != NULL); 343 344 /* Address family must match */ 345 if (ga1->ga_af != ga2->ga_af) 346 return (-1); 347 348 if (ga1->ga_addr.s6_addr32[0] == ga2->ga_addr.s6_addr32[0] && 349 ga1->ga_addr.s6_addr32[1] == ga2->ga_addr.s6_addr32[1] && 350 ga1->ga_addr.s6_addr32[2] == ga2->ga_addr.s6_addr32[2] && 351 ga1->ga_addr.s6_addr32[3] == ga2->ga_addr.s6_addr32[3]) 352 return (0); 353 354 /* No match; not found */ 355 return (-1); 356 } 357 358 #define RTSAFLAGS "\20\11cipso\3doi\2max_sl\1min_sl" 359 360 int 361 rtsa_validate(const struct rtsa_s *rp) 362 { 363 uint32_t mask = rp->rtsa_mask; 364 365 /* RTSA_CIPSO must be set, and DOI must not be zero */ 366 if ((mask & RTSA_CIPSO) == 0 || rp->rtsa_doi == 0) { 367 DTRACE_PROBE2(tx__gcdb__log__error__rtsa__validate, char *, 368 "rtsa(1) lacks flag or has 0 doi.", 369 rtsa_s *, rp); 370 return (EINVAL); 371 } 372 /* 373 * SL range must be specified, and it must have its 374 * upper bound dominating its lower bound. 375 */ 376 if ((mask & RTSA_SLRANGE) != RTSA_SLRANGE || 377 !bldominates(&rp->rtsa_slrange.upper_bound, 378 &rp->rtsa_slrange.lower_bound)) { 379 DTRACE_PROBE2(tx__gcdb__log__error__rtsa__validate, char *, 380 "rtsa(1) min_sl and max_sl not set or max_sl is " 381 "not dominating.", rtsa_s *, rp); 382 return (EINVAL); 383 } 384 return (0); 385 } 386 387 /* 388 * A brief explanation of the reference counting scheme: 389 * 390 * Prefix IREs have a non-NULL igsa_gc and a NULL igsa_gcgrp; 391 * IRE_CACHEs have it vice-versa. 392 * 393 * Apart from dynamic references due to to reference holds done 394 * actively by threads, we have the following references: 395 * 396 * gcdb_refcnt: 397 * - Every tsol_gc_t pointing to a tsol_gcdb_t contributes a reference 398 * to the gcdb_refcnt. 399 * 400 * gc_refcnt: 401 * - A prefix IRE that points to an igsa_gc contributes a reference 402 * to the gc_refcnt. 403 * 404 * gcgrp_refcnt: 405 * - An IRE_CACHE that points to an igsa_gcgrp contributes a reference 406 * to the gcgrp_refcnt of the associated tsol_gcgrp_t. 407 * - Every tsol_gc_t in the chain headed by tsol_gcgrp_t contributes 408 * a reference to the gcgrp_refcnt. 409 */ 410 static tsol_gcdb_t * 411 gcdb_lookup(struct rtsa_s *rp, boolean_t alloc) 412 { 413 tsol_gcdb_t *gcdb = NULL; 414 415 if (rtsa_validate(rp) != 0) 416 return (NULL); 417 418 mutex_enter(&gcdb_lock); 419 /* Find a copy in the cache; otherwise, create one and cache it */ 420 if (mod_hash_find(gcdb_hash, (mod_hash_key_t)rp, 421 (mod_hash_val_t *)&gcdb) == 0) { 422 gcdb->gcdb_refcnt++; 423 ASSERT(gcdb->gcdb_refcnt != 0); 424 425 DTRACE_PROBE2(tx__gcdb__log__info__gcdb__lookup, char *, 426 "gcdb(1) is in gcdb_hash(global)", tsol_gcdb_t *, gcdb); 427 } else if (alloc) { 428 gcdb = kmem_zalloc(sizeof (*gcdb), KM_NOSLEEP); 429 if (gcdb != NULL) { 430 gcdb->gcdb_refcnt = 1; 431 gcdb->gcdb_mask = rp->rtsa_mask; 432 gcdb->gcdb_doi = rp->rtsa_doi; 433 gcdb->gcdb_slrange = rp->rtsa_slrange; 434 435 if (mod_hash_insert(gcdb_hash, 436 (mod_hash_key_t)&gcdb->gcdb_attr, 437 (mod_hash_val_t)gcdb) != 0) { 438 mutex_exit(&gcdb_lock); 439 kmem_free(gcdb, sizeof (*gcdb)); 440 return (NULL); 441 } 442 443 DTRACE_PROBE2(tx__gcdb__log__info__gcdb__insert, char *, 444 "gcdb(1) inserted in gcdb_hash(global)", 445 tsol_gcdb_t *, gcdb); 446 } 447 } 448 mutex_exit(&gcdb_lock); 449 return (gcdb); 450 } 451 452 static void 453 gcdb_inactive(tsol_gcdb_t *gcdb) 454 { 455 ASSERT(MUTEX_HELD(&gcdb_lock)); 456 ASSERT(gcdb != NULL && gcdb->gcdb_refcnt == 0); 457 458 (void) mod_hash_remove(gcdb_hash, (mod_hash_key_t)&gcdb->gcdb_attr, 459 (mod_hash_val_t *)&gcdb); 460 461 DTRACE_PROBE2(tx__gcdb__log__info__gcdb__remove, char *, 462 "gcdb(1) removed from gcdb_hash(global)", 463 tsol_gcdb_t *, gcdb); 464 kmem_free(gcdb, sizeof (*gcdb)); 465 } 466 467 tsol_gc_t * 468 gc_create(struct rtsa_s *rp, tsol_gcgrp_t *gcgrp, boolean_t *gcgrp_xtrarefp) 469 { 470 tsol_gc_t *gc; 471 tsol_gcdb_t *gcdb; 472 473 *gcgrp_xtrarefp = B_TRUE; 474 475 rw_enter(&gcgrp->gcgrp_rwlock, RW_WRITER); 476 if ((gcdb = gcdb_lookup(rp, B_TRUE)) == NULL) { 477 rw_exit(&gcgrp->gcgrp_rwlock); 478 return (NULL); 479 } 480 481 for (gc = gcgrp->gcgrp_head; gc != NULL; gc = gc->gc_next) { 482 if (gc->gc_db == gcdb) { 483 ASSERT(gc->gc_grp == gcgrp); 484 485 gc->gc_refcnt++; 486 ASSERT(gc->gc_refcnt != 0); 487 488 GCDB_REFRELE(gcdb); 489 490 DTRACE_PROBE3(tx__gcdb__log__info__gc__create, 491 char *, "found gc(1) in gcgrp(2)", 492 tsol_gc_t *, gc, tsol_gcgrp_t *, gcgrp); 493 rw_exit(&gcgrp->gcgrp_rwlock); 494 return (gc); 495 } 496 } 497 498 gc = kmem_zalloc(sizeof (*gc), KM_NOSLEEP); 499 if (gc != NULL) { 500 if (gcgrp->gcgrp_head == NULL) { 501 gcgrp->gcgrp_head = gcgrp->gcgrp_tail = gc; 502 } else { 503 gcgrp->gcgrp_tail->gc_next = gc; 504 gc->gc_prev = gcgrp->gcgrp_tail; 505 gcgrp->gcgrp_tail = gc; 506 } 507 gcgrp->gcgrp_count++; 508 ASSERT(gcgrp->gcgrp_count != 0); 509 510 /* caller has incremented gcgrp reference for us */ 511 gc->gc_grp = gcgrp; 512 513 gc->gc_db = gcdb; 514 gc->gc_refcnt = 1; 515 516 DTRACE_PROBE3(tx__gcdb__log__info__gc__create, char *, 517 "added gc(1) to gcgrp(2)", tsol_gc_t *, gc, 518 tsol_gcgrp_t *, gcgrp); 519 520 *gcgrp_xtrarefp = B_FALSE; 521 } 522 rw_exit(&gcgrp->gcgrp_rwlock); 523 524 return (gc); 525 } 526 527 void 528 gc_inactive(tsol_gc_t *gc) 529 { 530 tsol_gcgrp_t *gcgrp = gc->gc_grp; 531 532 ASSERT(gcgrp != NULL); 533 ASSERT(RW_WRITE_HELD(&gcgrp->gcgrp_rwlock)); 534 ASSERT(gc->gc_refcnt == 0); 535 536 if (gc->gc_prev != NULL) 537 gc->gc_prev->gc_next = gc->gc_next; 538 else 539 gcgrp->gcgrp_head = gc->gc_next; 540 if (gc->gc_next != NULL) 541 gc->gc_next->gc_prev = gc->gc_prev; 542 else 543 gcgrp->gcgrp_tail = gc->gc_prev; 544 ASSERT(gcgrp->gcgrp_count > 0); 545 gcgrp->gcgrp_count--; 546 547 /* drop lock before it's destroyed */ 548 rw_exit(&gcgrp->gcgrp_rwlock); 549 550 DTRACE_PROBE3(tx__gcdb__log__info__gc__remove, char *, 551 "removed inactive gc(1) from gcgrp(2)", 552 tsol_gc_t *, gc, tsol_gcgrp_t *, gcgrp); 553 554 GCGRP_REFRELE(gcgrp); 555 556 gc->gc_grp = NULL; 557 gc->gc_prev = gc->gc_next = NULL; 558 559 if (gc->gc_db != NULL) 560 GCDB_REFRELE(gc->gc_db); 561 562 kmem_free(gc, sizeof (*gc)); 563 } 564 565 tsol_gcgrp_t * 566 gcgrp_lookup(tsol_gcgrp_addr_t *ga, boolean_t alloc) 567 { 568 tsol_gcgrp_t *gcgrp = NULL; 569 mod_hash_t *hashp; 570 571 ASSERT(ga->ga_af == AF_INET || ga->ga_af == AF_INET6); 572 573 hashp = (ga->ga_af == AF_INET) ? gcgrp4_hash : gcgrp6_hash; 574 575 mutex_enter(&gcgrp_lock); 576 if (mod_hash_find(hashp, (mod_hash_key_t)ga, 577 (mod_hash_val_t *)&gcgrp) == 0) { 578 gcgrp->gcgrp_refcnt++; 579 ASSERT(gcgrp->gcgrp_refcnt != 0); 580 581 DTRACE_PROBE3(tx__gcdb__log__info__gcgrp__lookup, char *, 582 "found gcgrp(1) in hash(2)", tsol_gcgrp_t *, gcgrp, 583 mod_hash_t *, hashp); 584 585 } else if (alloc) { 586 gcgrp = kmem_zalloc(sizeof (*gcgrp), KM_NOSLEEP); 587 if (gcgrp != NULL) { 588 gcgrp->gcgrp_refcnt = 1; 589 rw_init(&gcgrp->gcgrp_rwlock, NULL, RW_DEFAULT, NULL); 590 bcopy(ga, &gcgrp->gcgrp_addr, sizeof (*ga)); 591 592 if (mod_hash_insert(hashp, 593 (mod_hash_key_t)&gcgrp->gcgrp_addr, 594 (mod_hash_val_t)gcgrp) != 0) { 595 mutex_exit(&gcgrp_lock); 596 kmem_free(gcgrp, sizeof (*gcgrp)); 597 return (NULL); 598 } 599 600 DTRACE_PROBE3(tx__gcdb__log__info__gcgrp__insert, 601 char *, "inserted gcgrp(1) in hash(2)", 602 tsol_gcgrp_t *, gcgrp, mod_hash_t *, hashp); 603 } 604 } 605 mutex_exit(&gcgrp_lock); 606 return (gcgrp); 607 } 608 609 void 610 gcgrp_inactive(tsol_gcgrp_t *gcgrp) 611 { 612 tsol_gcgrp_addr_t *ga; 613 mod_hash_t *hashp; 614 615 ASSERT(MUTEX_HELD(&gcgrp_lock)); 616 ASSERT(!RW_LOCK_HELD(&gcgrp->gcgrp_rwlock)); 617 ASSERT(gcgrp != NULL && gcgrp->gcgrp_refcnt == 0); 618 ASSERT(gcgrp->gcgrp_head == NULL && gcgrp->gcgrp_count == 0); 619 620 ga = &gcgrp->gcgrp_addr; 621 ASSERT(ga->ga_af == AF_INET || ga->ga_af == AF_INET6); 622 623 hashp = (ga->ga_af == AF_INET) ? gcgrp4_hash : gcgrp6_hash; 624 (void) mod_hash_remove(hashp, (mod_hash_key_t)ga, 625 (mod_hash_val_t *)&gcgrp); 626 rw_destroy(&gcgrp->gcgrp_rwlock); 627 628 DTRACE_PROBE3(tx__gcdb__log__info__gcgrp__remove, char *, 629 "removed inactive gcgrp(1) from hash(2)", 630 tsol_gcgrp_t *, gcgrp, mod_hash_t *, hashp); 631 632 kmem_free(gcgrp, sizeof (*gcgrp)); 633 } 634 635 /* 636 * Converts CIPSO option to sensitivity label. 637 * Validity checks based on restrictions defined in 638 * COMMERCIAL IP SECURITY OPTION (CIPSO 2.2) (draft-ietf-cipso-ipsecurity) 639 */ 640 static boolean_t 641 cipso_to_sl(const uchar_t *option, bslabel_t *sl) 642 { 643 const struct cipso_option *co = (const struct cipso_option *)option; 644 const struct cipso_tag_type_1 *tt1; 645 646 tt1 = (struct cipso_tag_type_1 *)&co->cipso_tag_type[0]; 647 if (tt1->tag_type != 1 || 648 tt1->tag_length < TSOL_TT1_MIN_LENGTH || 649 tt1->tag_length > TSOL_TT1_MAX_LENGTH || 650 tt1->tag_length + TSOL_CIPSO_TAG_OFFSET > co->cipso_length) 651 return (B_FALSE); 652 653 bsllow(sl); /* assumed: sets compartments to all zeroes */ 654 LCLASS_SET((_bslabel_impl_t *)sl, tt1->tag_sl); 655 bcopy(tt1->tag_cat, &((_bslabel_impl_t *)sl)->compartments, 656 tt1->tag_length - TSOL_TT1_MIN_LENGTH); 657 return (B_TRUE); 658 } 659 660 /* 661 * Parse the CIPSO label in the incoming packet and construct a ts_label_t 662 * that reflects the CIPSO label and attach it to the dblk cred. Later as 663 * the mblk flows up through the stack any code that needs to examine the 664 * packet label can inspect the label from the dblk cred. This function is 665 * called right in ip_rput for all packets, i.e. locally destined and 666 * to be forwarded packets. The forwarding path needs to examine the label 667 * to determine how to forward the packet. 668 * 669 * For IPv4, IP header options have been pulled up, but other headers might not 670 * have been. For IPv6, any hop-by-hop options have been pulled up, but any 671 * other headers might not be present. 672 */ 673 boolean_t 674 tsol_get_pkt_label(mblk_t *mp, int version) 675 { 676 tsol_tpc_t *src_rhtp; 677 uchar_t *opt_ptr = NULL; 678 const ipha_t *ipha; 679 bslabel_t sl; 680 uint32_t doi; 681 tsol_ip_label_t label_type; 682 const cipso_option_t *co; 683 const void *src; 684 const ip6_t *ip6h; 685 cred_t *credp; 686 pid_t cpid; 687 688 ASSERT(DB_TYPE(mp) == M_DATA); 689 690 if (version == IPV4_VERSION) { 691 ipha = (const ipha_t *)mp->b_rptr; 692 src = &ipha->ipha_src; 693 label_type = tsol_get_option(mp, &opt_ptr); 694 } else { 695 uchar_t *after_secopt; 696 boolean_t hbh_needed; 697 const uchar_t *ip6hbh; 698 size_t optlen; 699 700 label_type = OPT_NONE; 701 ip6h = (const ip6_t *)mp->b_rptr; 702 src = &ip6h->ip6_src; 703 if (ip6h->ip6_nxt == IPPROTO_HOPOPTS) { 704 ip6hbh = (const uchar_t *)&ip6h[1]; 705 optlen = (ip6hbh[1] + 1) << 3; 706 ASSERT(ip6hbh + optlen <= mp->b_wptr); 707 opt_ptr = tsol_find_secopt_v6(ip6hbh, optlen, 708 &after_secopt, &hbh_needed); 709 /* tsol_find_secopt_v6 guarantees some sanity */ 710 if (opt_ptr != NULL && 711 (optlen = opt_ptr[1]) >= 8) { 712 opt_ptr += 2; 713 bcopy(opt_ptr, &doi, sizeof (doi)); 714 doi = ntohl(doi); 715 if (doi == IP6LS_DOI_V4 && 716 opt_ptr[4] == IP6LS_TT_V4 && 717 opt_ptr[5] <= optlen - 4 && 718 opt_ptr[7] <= optlen - 6) { 719 opt_ptr += sizeof (doi) + 2; 720 label_type = OPT_CIPSO; 721 } 722 } 723 } 724 } 725 726 switch (label_type) { 727 case OPT_CIPSO: 728 /* 729 * Convert the CIPSO label to the internal format 730 * and attach it to the dblk cred. 731 * Validity checks based on restrictions defined in 732 * COMMERCIAL IP SECURITY OPTION (CIPSO 2.2) 733 * (draft-ietf-cipso-ipsecurity) 734 */ 735 if (version == IPV6_VERSION && ip6opt_ls == 0) 736 return (B_FALSE); 737 co = (const struct cipso_option *)opt_ptr; 738 if ((co->cipso_length < 739 TSOL_CIPSO_TAG_OFFSET + TSOL_TT1_MIN_LENGTH) || 740 (co->cipso_length > IP_MAX_OPT_LENGTH)) 741 return (B_FALSE); 742 bcopy(co->cipso_doi, &doi, sizeof (doi)); 743 doi = ntohl(doi); 744 if (!cipso_to_sl(opt_ptr, &sl)) 745 return (B_FALSE); 746 setbltype(&sl, SUN_SL_ID); 747 break; 748 749 case OPT_NONE: 750 /* 751 * Handle special cases that are not currently labeled, even 752 * though the sending system may otherwise be configured as 753 * labeled. 754 * - IGMP 755 * - IPv4 ICMP Router Discovery 756 * - IPv6 Neighbor Discovery 757 */ 758 if (version == IPV4_VERSION) { 759 if (ipha->ipha_protocol == IPPROTO_IGMP) 760 return (B_TRUE); 761 if (ipha->ipha_protocol == IPPROTO_ICMP) { 762 const struct icmp *icmp = (const struct icmp *) 763 (mp->b_rptr + IPH_HDR_LENGTH(ipha)); 764 765 if ((uchar_t *)icmp > mp->b_wptr) { 766 if (!pullupmsg(mp, 767 (uchar_t *)icmp - mp->b_rptr + 1)) 768 return (B_FALSE); 769 icmp = (const struct icmp *) 770 (mp->b_rptr + 771 IPH_HDR_LENGTH(ipha)); 772 } 773 if (icmp->icmp_type == ICMP_ROUTERADVERT || 774 icmp->icmp_type == ICMP_ROUTERSOLICIT) 775 return (B_TRUE); 776 } 777 src = &ipha->ipha_src; 778 } else { 779 if (ip6h->ip6_nxt == IPPROTO_ICMPV6) { 780 const icmp6_t *icmp6 = (const icmp6_t *) 781 (mp->b_rptr + IPV6_HDR_LEN); 782 783 if ((uchar_t *)icmp6 + ICMP6_MINLEN > 784 mp->b_wptr) { 785 if (!pullupmsg(mp, 786 (uchar_t *)icmp6 - mp->b_rptr + 787 ICMP6_MINLEN)) 788 return (B_FALSE); 789 icmp6 = (const icmp6_t *) 790 (mp->b_rptr + IPV6_HDR_LEN); 791 } 792 if (icmp6->icmp6_type >= MLD_LISTENER_QUERY && 793 icmp6->icmp6_type <= ICMP6_MAX_INFO_TYPE) 794 return (B_TRUE); 795 } 796 src = &ip6h->ip6_src; 797 } 798 799 /* 800 * Look up the tnrhtp database and get the implicit label 801 * that is associated with this unlabeled host and attach 802 * it to the packet. 803 */ 804 if ((src_rhtp = find_tpc(src, version, B_FALSE)) == NULL) 805 return (B_FALSE); 806 807 /* If the sender is labeled, drop the unlabeled packet. */ 808 if (src_rhtp->tpc_tp.host_type != UNLABELED) { 809 TPC_RELE(src_rhtp); 810 pr_addr_dbg("unlabeled packet forged from %s\n", 811 version == IPV4_VERSION ? AF_INET : AF_INET6, src); 812 return (B_FALSE); 813 } 814 815 sl = src_rhtp->tpc_tp.tp_def_label; 816 setbltype(&sl, SUN_SL_ID); 817 doi = src_rhtp->tpc_tp.tp_doi; 818 TPC_RELE(src_rhtp); 819 break; 820 821 default: 822 return (B_FALSE); 823 } 824 825 /* Make sure no other thread is messing with this mblk */ 826 ASSERT(DB_REF(mp) == 1); 827 /* Preserve db_cpid */ 828 credp = msg_extractcred(mp, &cpid); 829 if (credp == NULL) { 830 credp = newcred_from_bslabel(&sl, doi, KM_NOSLEEP); 831 } else { 832 cred_t *newcr; 833 834 newcr = copycred_from_bslabel(credp, &sl, doi, 835 KM_NOSLEEP); 836 crfree(credp); 837 credp = newcr; 838 } 839 if (credp == NULL) 840 return (B_FALSE); 841 mblk_setcred(mp, credp, cpid); 842 crfree(credp); /* mblk has ref on cred */ 843 844 /* 845 * If the source was unlabeled, then flag as such, 846 * while remembering that CIPSO routers add headers. 847 */ 848 if (label_type == OPT_NONE) { 849 crgetlabel(credp)->tsl_flags |= TSLF_UNLABELED; 850 } else if (label_type == OPT_CIPSO) { 851 if ((src_rhtp = find_tpc(src, version, B_FALSE)) == NULL) 852 return (B_FALSE); 853 if (src_rhtp->tpc_tp.host_type == UNLABELED) 854 crgetlabel(credp)->tsl_flags |= TSLF_UNLABELED; 855 TPC_RELE(src_rhtp); 856 } 857 858 return (B_TRUE); 859 } 860 861 /* 862 * This routine determines whether the given packet should be accepted locally. 863 * It does a range/set check on the packet's label by looking up the given 864 * address in the remote host database. 865 */ 866 boolean_t 867 tsol_receive_local(const mblk_t *mp, const void *addr, uchar_t version, 868 boolean_t shared_addr, const conn_t *connp) 869 { 870 const cred_t *credp; 871 ts_label_t *plabel, *conn_plabel; 872 tsol_tpc_t *tp; 873 boolean_t retv; 874 const bslabel_t *label, *conn_label; 875 876 /* 877 * The cases in which this can happen are: 878 * - IPv6 Router Alert, where ip_rput_data_v6 deliberately skips 879 * over the label attachment process. 880 * - MLD output looped-back to ourselves. 881 * - IPv4 Router Discovery, where tsol_get_pkt_label intentionally 882 * avoids the labeling process. 883 * We trust that all valid paths in the code set the cred pointer when 884 * needed. 885 */ 886 if ((credp = msg_getcred(mp, NULL)) == NULL) 887 return (B_TRUE); 888 889 /* 890 * If this packet is from the inside (not a remote host) and has the 891 * same zoneid as the selected destination, then no checks are 892 * necessary. Membership in the zone is enough proof. This is 893 * intended to be a hot path through this function. 894 */ 895 if (!crisremote(credp) && 896 crgetzone(credp) == crgetzone(connp->conn_cred)) 897 return (B_TRUE); 898 899 plabel = crgetlabel(credp); 900 conn_plabel = crgetlabel(connp->conn_cred); 901 ASSERT(plabel != NULL && conn_plabel != NULL); 902 903 label = label2bslabel(plabel); 904 conn_label = label2bslabel(crgetlabel(connp->conn_cred)); 905 906 /* 907 * MLPs are always validated using the range and set of the local 908 * address, even when the remote host is unlabeled. 909 */ 910 if (connp->conn_mlp_type == mlptBoth || 911 /* LINTED: no consequent */ 912 connp->conn_mlp_type == (shared_addr ? mlptShared : mlptPrivate)) { 913 ; 914 915 /* 916 * If this is a packet from an unlabeled sender, then we must apply 917 * different rules. If the label is equal to the zone's label, then 918 * it's allowed. If it's not equal, but the zone is either the global 919 * zone or the label is dominated by the zone's label, then allow it 920 * as long as it's in the range configured for the destination. 921 */ 922 } else if (plabel->tsl_flags & TSLF_UNLABELED) { 923 if (plabel->tsl_doi == conn_plabel->tsl_doi && 924 blequal(label, conn_label)) 925 return (B_TRUE); 926 927 /* 928 * conn_zoneid is global for an exclusive stack, thus we use 929 * conn_cred to get the zoneid 930 */ 931 if (!connp->conn_mac_exempt || 932 (crgetzoneid(connp->conn_cred) != GLOBAL_ZONEID && 933 (plabel->tsl_doi != conn_plabel->tsl_doi || 934 !bldominates(conn_label, label)))) { 935 DTRACE_PROBE3( 936 tx__ip__log__drop__receivelocal__mac_unl, 937 char *, 938 "unlabeled packet mp(1) fails mac for conn(2)", 939 mblk_t *, mp, conn_t *, connp); 940 return (B_FALSE); 941 } 942 943 /* 944 * If this is a packet from a labeled sender, verify the 945 * label on the packet matches the connection label. 946 */ 947 } else { 948 if (plabel->tsl_doi != conn_plabel->tsl_doi || 949 !blequal(label, conn_label)) { 950 DTRACE_PROBE3(tx__ip__log__drop__receivelocal__mac__slp, 951 char *, 952 "packet mp(1) failed label match to SLP conn(2)", 953 mblk_t *, mp, conn_t *, connp); 954 return (B_FALSE); 955 } 956 /* 957 * No further checks will be needed if this is a zone- 958 * specific address because (1) The process for bringing up 959 * the interface ensures the zone's label is within the zone- 960 * specific address's valid label range; (2) For cases where 961 * the conn is bound to the unspecified addresses, ip fanout 962 * logic ensures conn's zoneid equals the dest addr's zoneid; 963 * (3) Mac-exempt and mlp logic above already handle all 964 * cases where the zone label may not be the same as the 965 * conn label. 966 */ 967 if (!shared_addr) 968 return (B_TRUE); 969 } 970 971 tp = find_tpc(addr, version, B_FALSE); 972 if (tp == NULL) { 973 DTRACE_PROBE3(tx__ip__log__drop__receivelocal__no__tnr, 974 char *, "dropping mp(1), host(2) lacks entry", 975 mblk_t *, mp, void *, addr); 976 return (B_FALSE); 977 } 978 979 /* 980 * The local host address should not be unlabeled at this point. The 981 * only way this can happen is that the destination isn't unicast. We 982 * assume that the packet should not have had a label, and thus should 983 * have been handled by the TSLF_UNLABELED logic above. 984 */ 985 if (tp->tpc_tp.host_type == UNLABELED) { 986 retv = B_FALSE; 987 DTRACE_PROBE3(tx__ip__log__drop__receivelocal__flag, char *, 988 "mp(1) unlabeled source, but tp is not unlabeled.", 989 mblk_t *, mp, tsol_tpc_t *, tp); 990 991 } else if (tp->tpc_tp.host_type != SUN_CIPSO) { 992 retv = B_FALSE; 993 DTRACE_PROBE3(tx__ip__log__drop__receivelocal__tptype, char *, 994 "delivering mp(1), found unrecognized tpc(2) type.", 995 mblk_t *, mp, tsol_tpc_t *, tp); 996 997 } else if (plabel->tsl_doi != tp->tpc_tp.tp_doi) { 998 retv = B_FALSE; 999 DTRACE_PROBE3(tx__ip__log__drop__receivelocal__mac, char *, 1000 "mp(1) could not be delievered to tp(2), doi mismatch", 1001 mblk_t *, mp, tsol_tpc_t *, tp); 1002 1003 } else if (!_blinrange(label, &tp->tpc_tp.tp_sl_range_cipso) && 1004 !blinlset(label, tp->tpc_tp.tp_sl_set_cipso)) { 1005 retv = B_FALSE; 1006 DTRACE_PROBE3(tx__ip__log__drop__receivelocal__mac, char *, 1007 "mp(1) could not be delievered to tp(2), bad mac", 1008 mblk_t *, mp, tsol_tpc_t *, tp); 1009 } else { 1010 retv = B_TRUE; 1011 } 1012 1013 TPC_RELE(tp); 1014 1015 return (retv); 1016 } 1017 1018 boolean_t 1019 tsol_can_accept_raw(mblk_t *mp, boolean_t check_host) 1020 { 1021 ts_label_t *plabel = NULL; 1022 tsol_tpc_t *src_rhtp, *dst_rhtp; 1023 boolean_t retv; 1024 cred_t *credp; 1025 1026 credp = msg_getcred(mp, NULL); 1027 if (credp != NULL) 1028 plabel = crgetlabel(credp); 1029 1030 /* We are bootstrapping or the internal template was never deleted */ 1031 if (plabel == NULL) 1032 return (B_TRUE); 1033 1034 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 1035 ipha_t *ipha = (ipha_t *)mp->b_rptr; 1036 1037 src_rhtp = find_tpc(&ipha->ipha_src, IPV4_VERSION, 1038 B_FALSE); 1039 if (src_rhtp == NULL) 1040 return (B_FALSE); 1041 dst_rhtp = find_tpc(&ipha->ipha_dst, IPV4_VERSION, 1042 B_FALSE); 1043 } else { 1044 ip6_t *ip6h = (ip6_t *)mp->b_rptr; 1045 1046 src_rhtp = find_tpc(&ip6h->ip6_src, IPV6_VERSION, 1047 B_FALSE); 1048 if (src_rhtp == NULL) 1049 return (B_FALSE); 1050 dst_rhtp = find_tpc(&ip6h->ip6_dst, IPV6_VERSION, 1051 B_FALSE); 1052 } 1053 if (dst_rhtp == NULL) { 1054 TPC_RELE(src_rhtp); 1055 return (B_FALSE); 1056 } 1057 1058 if (label2doi(plabel) != src_rhtp->tpc_tp.tp_doi) { 1059 retv = B_FALSE; 1060 1061 /* 1062 * Check that the packet's label is in the correct range for labeled 1063 * sender, or is equal to the default label for unlabeled sender. 1064 */ 1065 } else if ((src_rhtp->tpc_tp.host_type != UNLABELED && 1066 !_blinrange(label2bslabel(plabel), 1067 &src_rhtp->tpc_tp.tp_sl_range_cipso) && 1068 !blinlset(label2bslabel(plabel), 1069 src_rhtp->tpc_tp.tp_sl_set_cipso)) || 1070 (src_rhtp->tpc_tp.host_type == UNLABELED && 1071 !blequal(&plabel->tsl_label, &src_rhtp->tpc_tp.tp_def_label))) { 1072 retv = B_FALSE; 1073 1074 } else if (check_host) { 1075 retv = B_TRUE; 1076 1077 /* 1078 * Until we have SL range in the Zone structure, pass it 1079 * when our own address lookup returned an internal entry. 1080 */ 1081 } else switch (dst_rhtp->tpc_tp.host_type) { 1082 case UNLABELED: 1083 retv = B_TRUE; 1084 break; 1085 1086 case SUN_CIPSO: 1087 retv = _blinrange(label2bslabel(plabel), 1088 &dst_rhtp->tpc_tp.tp_sl_range_cipso) || 1089 blinlset(label2bslabel(plabel), 1090 dst_rhtp->tpc_tp.tp_sl_set_cipso); 1091 break; 1092 1093 default: 1094 retv = B_FALSE; 1095 } 1096 TPC_RELE(src_rhtp); 1097 TPC_RELE(dst_rhtp); 1098 return (retv); 1099 } 1100 1101 /* 1102 * This routine determines whether a response to a failed packet delivery or 1103 * connection should be sent back. By default, the policy is to allow such 1104 * messages to be sent at all times, as these messages reveal little useful 1105 * information and are healthy parts of TCP/IP networking. 1106 * 1107 * If tsol_strict_error is set, then we do strict tests: if the packet label is 1108 * within the label range/set of this host/zone, return B_TRUE; otherwise 1109 * return B_FALSE, which causes the packet to be dropped silently. 1110 * 1111 * Note that tsol_get_pkt_label will cause the packet to drop if the sender is 1112 * marked as labeled in the remote host database, but the packet lacks a label. 1113 * This means that we don't need to do a lookup on the source; the 1114 * TSLF_UNLABELED flag is sufficient. 1115 */ 1116 boolean_t 1117 tsol_can_reply_error(const mblk_t *mp) 1118 { 1119 ts_label_t *plabel = NULL; 1120 tsol_tpc_t *rhtp; 1121 const ipha_t *ipha; 1122 const ip6_t *ip6h; 1123 boolean_t retv; 1124 bslabel_t *pktbs; 1125 cred_t *credp; 1126 1127 /* Caller must pull up at least the IP header */ 1128 ASSERT(MBLKL(mp) >= (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION ? 1129 sizeof (*ipha) : sizeof (*ip6h))); 1130 1131 if (!tsol_strict_error) 1132 return (B_TRUE); 1133 1134 credp = msg_getcred(mp, NULL); 1135 if (credp != NULL) 1136 plabel = crgetlabel(credp); 1137 1138 /* We are bootstrapping or the internal template was never deleted */ 1139 if (plabel == NULL) 1140 return (B_TRUE); 1141 1142 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 1143 ipha = (const ipha_t *)mp->b_rptr; 1144 rhtp = find_tpc(&ipha->ipha_dst, IPV4_VERSION, B_FALSE); 1145 } else { 1146 ip6h = (const ip6_t *)mp->b_rptr; 1147 rhtp = find_tpc(&ip6h->ip6_dst, IPV6_VERSION, B_FALSE); 1148 } 1149 1150 if (rhtp == NULL || label2doi(plabel) != rhtp->tpc_tp.tp_doi) { 1151 retv = B_FALSE; 1152 } else { 1153 /* 1154 * If we're in the midst of forwarding, then the destination 1155 * address might not be labeled. In that case, allow unlabeled 1156 * packets through only if the default label is the same, and 1157 * labeled ones if they dominate. 1158 */ 1159 pktbs = label2bslabel(plabel); 1160 switch (rhtp->tpc_tp.host_type) { 1161 case UNLABELED: 1162 if (plabel->tsl_flags & TSLF_UNLABELED) { 1163 retv = blequal(pktbs, 1164 &rhtp->tpc_tp.tp_def_label); 1165 } else { 1166 retv = bldominates(pktbs, 1167 &rhtp->tpc_tp.tp_def_label); 1168 } 1169 break; 1170 1171 case SUN_CIPSO: 1172 retv = _blinrange(pktbs, 1173 &rhtp->tpc_tp.tp_sl_range_cipso) || 1174 blinlset(pktbs, rhtp->tpc_tp.tp_sl_set_cipso); 1175 break; 1176 1177 default: 1178 retv = B_FALSE; 1179 break; 1180 } 1181 } 1182 1183 if (rhtp != NULL) 1184 TPC_RELE(rhtp); 1185 1186 return (retv); 1187 } 1188 1189 /* 1190 * Finds the zone associated with the given packet. Returns GLOBAL_ZONEID if 1191 * the zone cannot be located. 1192 * 1193 * This is used by the classifier when the packet matches an ALL_ZONES IRE, and 1194 * there's no MLP defined. 1195 * 1196 * Note that we assume that this is only invoked in the ALL_ZONES case. 1197 * Handling other cases would require handle exclusive stack zones where either 1198 * this routine or the callers would have to map from 1199 * the zoneid (zone->zone_id) to what IP uses in conn_zoneid etc. 1200 */ 1201 zoneid_t 1202 tsol_packet_to_zoneid(const mblk_t *mp) 1203 { 1204 cred_t *cr = msg_getcred(mp, NULL); 1205 zone_t *zone; 1206 ts_label_t *label; 1207 1208 if (cr != NULL) { 1209 if ((label = crgetlabel(cr)) != NULL) { 1210 zone = zone_find_by_label(label); 1211 if (zone != NULL) { 1212 zoneid_t zoneid = zone->zone_id; 1213 1214 zone_rele(zone); 1215 return (zoneid); 1216 } 1217 } 1218 } 1219 return (GLOBAL_ZONEID); 1220 } 1221 1222 int 1223 tsol_ire_match_gwattr(ire_t *ire, const ts_label_t *tsl) 1224 { 1225 int error = 0; 1226 tsol_ire_gw_secattr_t *attrp = NULL; 1227 tsol_tnrhc_t *gw_rhc = NULL; 1228 tsol_gcgrp_t *gcgrp = NULL; 1229 tsol_gc_t *gc = NULL; 1230 in_addr_t ga_addr4; 1231 void *paddr = NULL; 1232 1233 /* Not in Trusted mode or IRE is local/loopback/broadcast/interface */ 1234 if (!is_system_labeled() || 1235 (ire->ire_type & (IRE_LOCAL | IRE_LOOPBACK | IRE_BROADCAST | 1236 IRE_INTERFACE))) 1237 goto done; 1238 1239 /* 1240 * If we don't have a label to compare with, or the IRE does not 1241 * contain any gateway security attributes, there's not much that 1242 * we can do. We let the former case pass, and the latter fail, 1243 * since the IRE doesn't qualify for a match due to the lack of 1244 * security attributes. 1245 */ 1246 if (tsl == NULL || ire->ire_gw_secattr == NULL) { 1247 if (tsl != NULL) { 1248 DTRACE_PROBE3(tx__ip__log__drop__irematch__nogwsec, 1249 char *, 1250 "ire(1) lacks ire_gw_secattr matching label(2)", 1251 ire_t *, ire, ts_label_t *, tsl); 1252 error = EACCES; 1253 } 1254 goto done; 1255 } 1256 1257 attrp = ire->ire_gw_secattr; 1258 1259 /* 1260 * The possible lock order scenarios related to the tsol gateway 1261 * attribute locks are documented at the beginning of ip.c in the 1262 * lock order scenario section. 1263 */ 1264 mutex_enter(&attrp->igsa_lock); 1265 1266 /* 1267 * Depending on the IRE type (prefix vs. cache), we seek the group 1268 * structure which contains all security credentials of the gateway. 1269 * A prefix IRE is associated with at most one gateway credential, 1270 * while a cache IRE is associated with every credentials that the 1271 * gateway has. 1272 */ 1273 if ((gc = attrp->igsa_gc) != NULL) { /* prefix */ 1274 gcgrp = gc->gc_grp; 1275 ASSERT(gcgrp != NULL); 1276 rw_enter(&gcgrp->gcgrp_rwlock, RW_READER); 1277 } else if ((gcgrp = attrp->igsa_gcgrp) != NULL) { /* cache */ 1278 rw_enter(&gcgrp->gcgrp_rwlock, RW_READER); 1279 gc = gcgrp->gcgrp_head; 1280 if (gc == NULL) { 1281 /* gc group is empty, so the drop lock now */ 1282 ASSERT(gcgrp->gcgrp_count == 0); 1283 rw_exit(&gcgrp->gcgrp_rwlock); 1284 gcgrp = NULL; 1285 } 1286 } 1287 1288 if (gcgrp != NULL) 1289 GCGRP_REFHOLD(gcgrp); 1290 1291 if ((gw_rhc = attrp->igsa_rhc) != NULL) { 1292 /* 1293 * If our cached entry has grown stale, then discard it so we 1294 * can get a new one. 1295 */ 1296 if (gw_rhc->rhc_invalid || gw_rhc->rhc_tpc->tpc_invalid) { 1297 TNRHC_RELE(gw_rhc); 1298 attrp->igsa_rhc = gw_rhc = NULL; 1299 } else { 1300 TNRHC_HOLD(gw_rhc) 1301 } 1302 } 1303 1304 /* Last attempt at loading the template had failed; try again */ 1305 if (gw_rhc == NULL) { 1306 if (gcgrp != NULL) { 1307 tsol_gcgrp_addr_t *ga = &gcgrp->gcgrp_addr; 1308 1309 if (ire->ire_ipversion == IPV4_VERSION) { 1310 ASSERT(ga->ga_af == AF_INET); 1311 IN6_V4MAPPED_TO_IPADDR(&ga->ga_addr, ga_addr4); 1312 paddr = &ga_addr4; 1313 } else { 1314 ASSERT(ga->ga_af == AF_INET6); 1315 paddr = &ga->ga_addr; 1316 } 1317 } else if (ire->ire_ipversion == IPV6_VERSION && 1318 !IN6_IS_ADDR_UNSPECIFIED(&ire->ire_gateway_addr_v6)) { 1319 paddr = &ire->ire_gateway_addr_v6; 1320 } else if (ire->ire_ipversion == IPV4_VERSION && 1321 ire->ire_gateway_addr != INADDR_ANY) { 1322 paddr = &ire->ire_gateway_addr; 1323 } 1324 1325 /* We've found a gateway address to do the template lookup */ 1326 if (paddr != NULL) { 1327 ASSERT(gw_rhc == NULL); 1328 gw_rhc = find_rhc(paddr, ire->ire_ipversion, B_FALSE); 1329 if (gw_rhc != NULL) { 1330 /* 1331 * Note that if the lookup above returned an 1332 * internal template, we'll use it for the 1333 * time being, and do another lookup next 1334 * time around. 1335 */ 1336 /* Another thread has loaded the template? */ 1337 if (attrp->igsa_rhc != NULL) { 1338 TNRHC_RELE(gw_rhc) 1339 /* reload, it could be different */ 1340 gw_rhc = attrp->igsa_rhc; 1341 } else { 1342 attrp->igsa_rhc = gw_rhc; 1343 } 1344 /* 1345 * Hold an extra reference just like we did 1346 * above prior to dropping the igsa_lock. 1347 */ 1348 TNRHC_HOLD(gw_rhc) 1349 } 1350 } 1351 } 1352 1353 mutex_exit(&attrp->igsa_lock); 1354 /* Gateway template not found */ 1355 if (gw_rhc == NULL) { 1356 /* 1357 * If destination address is directly reachable through an 1358 * interface rather than through a learned route, pass it. 1359 */ 1360 if (paddr != NULL) { 1361 DTRACE_PROBE3( 1362 tx__ip__log__drop__irematch__nogwtmpl, char *, 1363 "ire(1), label(2) off-link with no gw_rhc", 1364 ire_t *, ire, ts_label_t *, tsl); 1365 error = EINVAL; 1366 } 1367 goto done; 1368 } 1369 1370 if (gc != NULL) { 1371 tsol_gcdb_t *gcdb; 1372 /* 1373 * In the case of IRE_CACHE we've got one or more gateway 1374 * security credentials to compare against the passed in label. 1375 * Perform label range comparison against each security 1376 * credential of the gateway. In the case of a prefix ire 1377 * we need to match against the security attributes of 1378 * just the route itself, so the loop is executed only once. 1379 */ 1380 ASSERT(gcgrp != NULL); 1381 do { 1382 gcdb = gc->gc_db; 1383 if (tsl->tsl_doi == gcdb->gcdb_doi && 1384 _blinrange(&tsl->tsl_label, &gcdb->gcdb_slrange)) 1385 break; 1386 if (ire->ire_type == IRE_CACHE) 1387 gc = gc->gc_next; 1388 else 1389 gc = NULL; 1390 } while (gc != NULL); 1391 1392 if (gc == NULL) { 1393 DTRACE_PROBE3( 1394 tx__ip__log__drop__irematch__nogcmatched, 1395 char *, "ire(1), tsl(2): all gc failed match", 1396 ire_t *, ire, ts_label_t *, tsl); 1397 error = EACCES; 1398 } 1399 } else { 1400 /* 1401 * We didn't find any gateway credentials in the IRE 1402 * attributes; fall back to the gateway's template for 1403 * label range checks, if we are required to do so. 1404 */ 1405 ASSERT(gw_rhc != NULL); 1406 switch (gw_rhc->rhc_tpc->tpc_tp.host_type) { 1407 case SUN_CIPSO: 1408 if (tsl->tsl_doi != gw_rhc->rhc_tpc->tpc_tp.tp_doi || 1409 (!_blinrange(&tsl->tsl_label, 1410 &gw_rhc->rhc_tpc->tpc_tp.tp_sl_range_cipso) && 1411 !blinlset(&tsl->tsl_label, 1412 gw_rhc->rhc_tpc->tpc_tp.tp_sl_set_cipso))) { 1413 error = EACCES; 1414 DTRACE_PROBE4( 1415 tx__ip__log__drop__irematch__deftmpl, 1416 char *, "ire(1), tsl(2), gw_rhc(3) " 1417 "failed match (cipso gw)", 1418 ire_t *, ire, ts_label_t *, tsl, 1419 tsol_tnrhc_t *, gw_rhc); 1420 } 1421 break; 1422 1423 case UNLABELED: 1424 if (tsl->tsl_doi != gw_rhc->rhc_tpc->tpc_tp.tp_doi || 1425 (!_blinrange(&tsl->tsl_label, 1426 &gw_rhc->rhc_tpc->tpc_tp.tp_gw_sl_range) && 1427 !blinlset(&tsl->tsl_label, 1428 gw_rhc->rhc_tpc->tpc_tp.tp_gw_sl_set))) { 1429 error = EACCES; 1430 DTRACE_PROBE4( 1431 tx__ip__log__drop__irematch__deftmpl, 1432 char *, "ire(1), tsl(2), gw_rhc(3) " 1433 "failed match (unlabeled gw)", 1434 ire_t *, ire, ts_label_t *, tsl, 1435 tsol_tnrhc_t *, gw_rhc); 1436 } 1437 break; 1438 } 1439 } 1440 1441 done: 1442 1443 if (gcgrp != NULL) { 1444 rw_exit(&gcgrp->gcgrp_rwlock); 1445 GCGRP_REFRELE(gcgrp); 1446 } 1447 1448 if (gw_rhc != NULL) 1449 TNRHC_RELE(gw_rhc) 1450 1451 return (error); 1452 } 1453 1454 /* 1455 * Performs label accreditation checks for packet forwarding. 1456 * 1457 * Returns a pointer to the modified mblk if allowed for forwarding, 1458 * or NULL if the packet must be dropped. 1459 */ 1460 mblk_t * 1461 tsol_ip_forward(ire_t *ire, mblk_t *mp) 1462 { 1463 tsol_ire_gw_secattr_t *attrp = NULL; 1464 ipha_t *ipha; 1465 ip6_t *ip6h; 1466 const void *pdst; 1467 const void *psrc; 1468 boolean_t off_link; 1469 tsol_tpc_t *dst_rhtp, *gw_rhtp; 1470 tsol_ip_label_t label_type; 1471 uchar_t *opt_ptr = NULL; 1472 ts_label_t *tsl; 1473 uint8_t proto; 1474 int af, adjust; 1475 uint16_t iplen; 1476 boolean_t need_tpc_rele = B_FALSE; 1477 ipaddr_t *gw; 1478 ip_stack_t *ipst = ire->ire_ipst; 1479 cred_t *credp; 1480 1481 ASSERT(ire != NULL && mp != NULL); 1482 ASSERT(ire->ire_stq != NULL); 1483 1484 af = (ire->ire_ipversion == IPV4_VERSION) ? AF_INET : AF_INET6; 1485 1486 if (IPH_HDR_VERSION(mp->b_rptr) == IPV4_VERSION) { 1487 ASSERT(ire->ire_ipversion == IPV4_VERSION); 1488 ipha = (ipha_t *)mp->b_rptr; 1489 psrc = &ipha->ipha_src; 1490 pdst = &ipha->ipha_dst; 1491 proto = ipha->ipha_protocol; 1492 1493 /* 1494 * off_link is TRUE if destination not directly reachable. 1495 * Surya note: we avoid creation of per-dst IRE_CACHE entries 1496 * for forwarded packets, so we set off_link to be TRUE 1497 * if the packet dst is different from the ire_addr of 1498 * the ire for the nexthop. 1499 */ 1500 off_link = ((ipha->ipha_dst != ire->ire_addr) || 1501 (ire->ire_gateway_addr != INADDR_ANY)); 1502 } else { 1503 ASSERT(ire->ire_ipversion == IPV6_VERSION); 1504 ip6h = (ip6_t *)mp->b_rptr; 1505 psrc = &ip6h->ip6_src; 1506 pdst = &ip6h->ip6_dst; 1507 proto = ip6h->ip6_nxt; 1508 1509 if (proto != IPPROTO_TCP && proto != IPPROTO_UDP && 1510 proto != IPPROTO_ICMPV6) { 1511 uint8_t *nexthdrp; 1512 uint16_t hdr_len; 1513 1514 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &hdr_len, 1515 &nexthdrp)) { 1516 /* malformed packet; drop it */ 1517 return (NULL); 1518 } 1519 proto = *nexthdrp; 1520 } 1521 1522 /* destination not directly reachable? */ 1523 off_link = !IN6_IS_ADDR_UNSPECIFIED(&ire->ire_gateway_addr_v6); 1524 } 1525 1526 if ((tsl = msg_getlabel(mp)) == NULL) 1527 return (mp); 1528 1529 label_type = tsol_get_option(mp, &opt_ptr); 1530 1531 ASSERT(psrc != NULL && pdst != NULL); 1532 dst_rhtp = find_tpc(pdst, ire->ire_ipversion, B_FALSE); 1533 1534 if (dst_rhtp == NULL) { 1535 /* 1536 * Without a template we do not know if forwarding 1537 * violates MAC 1538 */ 1539 DTRACE_PROBE3(tx__ip__log__drop__forward__nodst, char *, 1540 "mp(1) dropped, no template for destination ip4|6(2)", 1541 mblk_t *, mp, void *, pdst); 1542 return (NULL); 1543 } 1544 1545 /* 1546 * Gateway template must have existed for off-link destinations, 1547 * since tsol_ire_match_gwattr has ensured such condition. 1548 */ 1549 if (ire->ire_ipversion == IPV4_VERSION && off_link) { 1550 /* 1551 * Surya note: first check if we can get the gw_rhtp from 1552 * the ire_gw_secattr->igsa_rhc; if this is null, then 1553 * do a lookup based on the ire_addr (address of gw) 1554 */ 1555 if (ire->ire_gw_secattr != NULL && 1556 ire->ire_gw_secattr->igsa_rhc != NULL) { 1557 attrp = ire->ire_gw_secattr; 1558 gw_rhtp = attrp->igsa_rhc->rhc_tpc; 1559 } else { 1560 /* 1561 * use the ire_addr if this is the IRE_CACHE of nexthop 1562 */ 1563 gw = (ire->ire_gateway_addr == NULL? &ire->ire_addr : 1564 &ire->ire_gateway_addr); 1565 gw_rhtp = find_tpc(gw, ire->ire_ipversion, B_FALSE); 1566 need_tpc_rele = B_TRUE; 1567 } 1568 if (gw_rhtp == NULL) { 1569 DTRACE_PROBE3(tx__ip__log__drop__forward__nogw, char *, 1570 "mp(1) dropped, no gateway in ire attributes(2)", 1571 mblk_t *, mp, tsol_ire_gw_secattr_t *, attrp); 1572 mp = NULL; 1573 goto keep_label; 1574 } 1575 } 1576 if (ire->ire_ipversion == IPV6_VERSION && 1577 ((attrp = ire->ire_gw_secattr) == NULL || attrp->igsa_rhc == NULL || 1578 (gw_rhtp = attrp->igsa_rhc->rhc_tpc) == NULL) && off_link) { 1579 DTRACE_PROBE3(tx__ip__log__drop__forward__nogw, char *, 1580 "mp(1) dropped, no gateway in ire attributes(2)", 1581 mblk_t *, mp, tsol_ire_gw_secattr_t *, attrp); 1582 mp = NULL; 1583 goto keep_label; 1584 } 1585 1586 /* 1587 * Check that the label for the packet is acceptable 1588 * by destination host; otherwise, drop it. 1589 */ 1590 switch (dst_rhtp->tpc_tp.host_type) { 1591 case SUN_CIPSO: 1592 if (tsl->tsl_doi != dst_rhtp->tpc_tp.tp_doi || 1593 (!_blinrange(&tsl->tsl_label, 1594 &dst_rhtp->tpc_tp.tp_sl_range_cipso) && 1595 !blinlset(&tsl->tsl_label, 1596 dst_rhtp->tpc_tp.tp_sl_set_cipso))) { 1597 DTRACE_PROBE4(tx__ip__log__drop__forward__mac, char *, 1598 "labeled packet mp(1) dropped, label(2) fails " 1599 "destination(3) accredation check", 1600 mblk_t *, mp, ts_label_t *, tsl, 1601 tsol_tpc_t *, dst_rhtp); 1602 mp = NULL; 1603 goto keep_label; 1604 } 1605 break; 1606 1607 1608 case UNLABELED: 1609 if (tsl->tsl_doi != dst_rhtp->tpc_tp.tp_doi || 1610 !blequal(&dst_rhtp->tpc_tp.tp_def_label, 1611 &tsl->tsl_label)) { 1612 DTRACE_PROBE4(tx__ip__log__drop__forward__mac, char *, 1613 "unlabeled packet mp(1) dropped, label(2) fails " 1614 "destination(3) accredation check", 1615 mblk_t *, mp, ts_label_t *, tsl, 1616 tsol_tpc_t *, dst_rhtp); 1617 mp = NULL; 1618 goto keep_label; 1619 } 1620 break; 1621 } 1622 if (label_type == OPT_CIPSO) { 1623 /* 1624 * We keep the label on any of the following cases: 1625 * 1626 * 1. The destination is labeled (on/off-link). 1627 * 2. The unlabeled destination is off-link, 1628 * and the next hop gateway is labeled. 1629 */ 1630 if (dst_rhtp->tpc_tp.host_type != UNLABELED || 1631 (off_link && 1632 gw_rhtp->tpc_tp.host_type != UNLABELED)) 1633 goto keep_label; 1634 1635 /* 1636 * Strip off the CIPSO option from the packet because: the 1637 * unlabeled destination host is directly reachable through 1638 * an interface (on-link); or, the unlabeled destination host 1639 * is not directly reachable (off-link), and the next hop 1640 * gateway is unlabeled. 1641 */ 1642 adjust = (af == AF_INET) ? tsol_remove_secopt(ipha, MBLKL(mp)) : 1643 tsol_remove_secopt_v6(ip6h, MBLKL(mp)); 1644 1645 ASSERT(adjust <= 0); 1646 if (adjust != 0) { 1647 1648 /* adjust is negative */ 1649 ASSERT((mp->b_wptr + adjust) >= mp->b_rptr); 1650 mp->b_wptr += adjust; 1651 1652 if (af == AF_INET) { 1653 ipha = (ipha_t *)mp->b_rptr; 1654 iplen = ntohs(ipha->ipha_length) + adjust; 1655 ipha->ipha_length = htons(iplen); 1656 ipha->ipha_hdr_checksum = 0; 1657 ipha->ipha_hdr_checksum = ip_csum_hdr(ipha); 1658 } 1659 DTRACE_PROBE3(tx__ip__log__info__forward__adjust, 1660 char *, 1661 "mp(1) adjusted(2) for CIPSO option removal", 1662 mblk_t *, mp, int, adjust); 1663 } 1664 goto keep_label; 1665 } 1666 1667 ASSERT(label_type == OPT_NONE); 1668 ASSERT(dst_rhtp != NULL); 1669 1670 /* 1671 * We need to add CIPSO option if the destination or the next hop 1672 * gateway is labeled. Otherwise, pass the packet as is. 1673 */ 1674 if (dst_rhtp->tpc_tp.host_type == UNLABELED && 1675 (!off_link || gw_rhtp->tpc_tp.host_type == UNLABELED)) 1676 goto keep_label; 1677 1678 1679 credp = msg_getcred(mp, NULL); 1680 if ((af == AF_INET && 1681 tsol_check_label(credp, &mp, B_FALSE, ipst) != 0) || 1682 (af == AF_INET6 && 1683 tsol_check_label_v6(credp, &mp, B_FALSE, ipst) != 0)) { 1684 mp = NULL; 1685 goto keep_label; 1686 } 1687 1688 if (af == AF_INET) { 1689 ipha = (ipha_t *)mp->b_rptr; 1690 ipha->ipha_hdr_checksum = 0; 1691 ipha->ipha_hdr_checksum = ip_csum_hdr(ipha); 1692 } 1693 1694 keep_label: 1695 TPC_RELE(dst_rhtp); 1696 if (need_tpc_rele && gw_rhtp != NULL) 1697 TPC_RELE(gw_rhtp); 1698 return (mp); 1699 } 1700 1701 /* 1702 * Name: tsol_pmtu_adjust() 1703 * 1704 * Returns the adjusted mtu after removing security option. 1705 * Removes/subtracts the option if the packet's cred indicates an unlabeled 1706 * sender or if pkt_diff indicates this system enlarged the packet. 1707 */ 1708 uint32_t 1709 tsol_pmtu_adjust(mblk_t *mp, uint32_t mtu, int pkt_diff, int af) 1710 { 1711 int label_adj = 0; 1712 uint32_t min_mtu = IP_MIN_MTU; 1713 tsol_tpc_t *src_rhtp; 1714 void *src; 1715 1716 /* 1717 * Note: label_adj is non-positive, indicating the number of 1718 * bytes removed by removing the security option from the 1719 * header. 1720 */ 1721 if (af == AF_INET6) { 1722 ip6_t *ip6h; 1723 1724 min_mtu = IPV6_MIN_MTU; 1725 ip6h = (ip6_t *)mp->b_rptr; 1726 src = &ip6h->ip6_src; 1727 if ((src_rhtp = find_tpc(src, IPV6_VERSION, B_FALSE)) == NULL) 1728 return (mtu); 1729 if (pkt_diff > 0 || src_rhtp->tpc_tp.host_type == UNLABELED) { 1730 label_adj = tsol_remove_secopt_v6( 1731 (ip6_t *)mp->b_rptr, MBLKL(mp)); 1732 } 1733 } else { 1734 ipha_t *ipha; 1735 1736 ASSERT(af == AF_INET); 1737 ipha = (ipha_t *)mp->b_rptr; 1738 src = &ipha->ipha_src; 1739 if ((src_rhtp = find_tpc(src, IPV4_VERSION, B_FALSE)) == NULL) 1740 return (mtu); 1741 if (pkt_diff > 0 || src_rhtp->tpc_tp.host_type == UNLABELED) 1742 label_adj = tsol_remove_secopt( 1743 (ipha_t *)mp->b_rptr, MBLKL(mp)); 1744 } 1745 /* 1746 * Make pkt_diff non-negative and the larger of the bytes 1747 * previously added (if any) or just removed, since label 1748 * addition + subtraction may not be completely idempotent. 1749 */ 1750 if (pkt_diff < -label_adj) 1751 pkt_diff = -label_adj; 1752 if (pkt_diff > 0 && pkt_diff < mtu) 1753 mtu -= pkt_diff; 1754 1755 TPC_RELE(src_rhtp); 1756 return (MAX(mtu, min_mtu)); 1757 } 1758 1759 /* 1760 * Name: tsol_rtsa_init() 1761 * 1762 * Normal: Sanity checks on the route security attributes provided by 1763 * user. Convert it into a route security parameter list to 1764 * be returned to caller. 1765 * 1766 * Output: EINVAL if bad security attributes in the routing message 1767 * ENOMEM if unable to allocate data structures 1768 * 0 otherwise. 1769 * 1770 * Note: On input, cp must point to the end of any addresses in 1771 * the rt_msghdr_t structure. 1772 */ 1773 int 1774 tsol_rtsa_init(rt_msghdr_t *rtm, tsol_rtsecattr_t *sp, caddr_t cp) 1775 { 1776 uint_t sacnt; 1777 int err; 1778 caddr_t lim; 1779 tsol_rtsecattr_t *tp; 1780 1781 ASSERT((cp >= (caddr_t)&rtm[1]) && sp != NULL); 1782 1783 /* 1784 * In theory, we could accept as many security attributes configured 1785 * per route destination. However, the current design is limited 1786 * such that at most only one set security attributes is allowed to 1787 * be associated with a prefix IRE. We therefore assert for now. 1788 */ 1789 /* LINTED */ 1790 ASSERT(TSOL_RTSA_REQUEST_MAX == 1); 1791 1792 sp->rtsa_cnt = 0; 1793 lim = (caddr_t)rtm + rtm->rtm_msglen; 1794 ASSERT(cp <= lim); 1795 1796 if ((lim - cp) < sizeof (rtm_ext_t) || 1797 ((rtm_ext_t *)cp)->rtmex_type != RTMEX_GATEWAY_SECATTR) 1798 return (0); 1799 1800 if (((rtm_ext_t *)cp)->rtmex_len < sizeof (tsol_rtsecattr_t)) 1801 return (EINVAL); 1802 1803 cp += sizeof (rtm_ext_t); 1804 1805 if ((lim - cp) < sizeof (*tp) || 1806 (tp = (tsol_rtsecattr_t *)cp, (sacnt = tp->rtsa_cnt) == 0) || 1807 (lim - cp) < TSOL_RTSECATTR_SIZE(sacnt)) 1808 return (EINVAL); 1809 1810 /* 1811 * Trying to add route security attributes when system 1812 * labeling service is not available, or when user supllies 1813 * more than the maximum number of security attributes 1814 * allowed per request. 1815 */ 1816 if ((sacnt > 0 && !is_system_labeled()) || 1817 sacnt > TSOL_RTSA_REQUEST_MAX) 1818 return (EINVAL); 1819 1820 /* Ensure valid credentials */ 1821 if ((err = rtsa_validate(&((tsol_rtsecattr_t *)cp)-> 1822 rtsa_attr[0])) != 0) { 1823 cp += sizeof (*sp); 1824 return (err); 1825 } 1826 1827 bcopy(cp, sp, sizeof (*sp)); 1828 cp += sizeof (*sp); 1829 return (0); 1830 } 1831 1832 int 1833 tsol_ire_init_gwattr(ire_t *ire, uchar_t ipversion, tsol_gc_t *gc, 1834 tsol_gcgrp_t *gcgrp) 1835 { 1836 tsol_ire_gw_secattr_t *attrp; 1837 boolean_t exists = B_FALSE; 1838 in_addr_t ga_addr4; 1839 void *paddr = NULL; 1840 1841 ASSERT(ire != NULL); 1842 1843 /* 1844 * The only time that attrp can be NULL is when this routine is 1845 * called for the first time during the creation/initialization 1846 * of the corresponding IRE. It will only get cleared when the 1847 * IRE is deleted. 1848 */ 1849 if ((attrp = ire->ire_gw_secattr) == NULL) { 1850 attrp = ire_gw_secattr_alloc(KM_NOSLEEP); 1851 if (attrp == NULL) 1852 return (ENOMEM); 1853 ire->ire_gw_secattr = attrp; 1854 } else { 1855 exists = B_TRUE; 1856 mutex_enter(&attrp->igsa_lock); 1857 1858 if (attrp->igsa_rhc != NULL) { 1859 TNRHC_RELE(attrp->igsa_rhc); 1860 attrp->igsa_rhc = NULL; 1861 } 1862 1863 if (attrp->igsa_gc != NULL) 1864 GC_REFRELE(attrp->igsa_gc); 1865 if (attrp->igsa_gcgrp != NULL) 1866 GCGRP_REFRELE(attrp->igsa_gcgrp); 1867 } 1868 ASSERT(!exists || MUTEX_HELD(&attrp->igsa_lock)); 1869 1870 /* 1871 * References already held by caller and we keep them; 1872 * note that both gc and gcgrp may be set to NULL to 1873 * clear out igsa_gc and igsa_gcgrp, respectively. 1874 */ 1875 attrp->igsa_gc = gc; 1876 attrp->igsa_gcgrp = gcgrp; 1877 1878 if (gcgrp == NULL && gc != NULL) { 1879 gcgrp = gc->gc_grp; 1880 ASSERT(gcgrp != NULL); 1881 } 1882 1883 /* 1884 * Intialize the template for gateway; we use the gateway's 1885 * address found in either the passed in gateway credential 1886 * or group pointer, or the ire_gateway_addr{_v6} field. 1887 */ 1888 if (gcgrp != NULL) { 1889 tsol_gcgrp_addr_t *ga = &gcgrp->gcgrp_addr; 1890 1891 /* 1892 * Caller is holding a reference, and that we don't 1893 * need to hold any lock to access the address. 1894 */ 1895 if (ipversion == IPV4_VERSION) { 1896 ASSERT(ga->ga_af == AF_INET); 1897 IN6_V4MAPPED_TO_IPADDR(&ga->ga_addr, ga_addr4); 1898 paddr = &ga_addr4; 1899 } else { 1900 ASSERT(ga->ga_af == AF_INET6); 1901 paddr = &ga->ga_addr; 1902 } 1903 } else if (ipversion == IPV6_VERSION && 1904 !IN6_IS_ADDR_UNSPECIFIED(&ire->ire_gateway_addr_v6)) { 1905 paddr = &ire->ire_gateway_addr_v6; 1906 } else if (ipversion == IPV4_VERSION && 1907 ire->ire_gateway_addr != INADDR_ANY) { 1908 paddr = &ire->ire_gateway_addr; 1909 } 1910 1911 /* 1912 * Lookup the gateway template; note that we could get an internal 1913 * template here, which we cache anyway. During IRE matching, we'll 1914 * try to update this gateway template cache and hopefully get a 1915 * real one. 1916 */ 1917 if (paddr != NULL) { 1918 attrp->igsa_rhc = find_rhc(paddr, ipversion, B_FALSE); 1919 } 1920 1921 if (exists) 1922 mutex_exit(&attrp->igsa_lock); 1923 1924 return (0); 1925 } 1926 1927 /* 1928 * This function figures the type of MLP that we'll be using based on the 1929 * address that the user is binding and the zone. If the address is 1930 * unspecified, then we're looking at both private and shared. If it's one 1931 * of the zone's private addresses, then it's private only. If it's one 1932 * of the global addresses, then it's shared only. 1933 * 1934 * If we can't figure out what it is, then return mlptSingle. That's actually 1935 * an error case. 1936 * 1937 * The callers are assume to pass in zone->zone_id and not the zoneid that 1938 * is stored in a conn_t (since the latter will be GLOBAL_ZONEID in an 1939 * exclusive stack zone). 1940 */ 1941 mlp_type_t 1942 tsol_mlp_addr_type(zoneid_t zoneid, uchar_t version, const void *addr, 1943 ip_stack_t *ipst) 1944 { 1945 in_addr_t in4; 1946 ire_t *ire; 1947 ipif_t *ipif; 1948 zoneid_t addrzone; 1949 zoneid_t ip_zoneid; 1950 1951 ASSERT(addr != NULL); 1952 1953 /* 1954 * For exclusive stacks we set the zoneid to zero 1955 * to operate as if in the global zone for IRE and conn_t comparisons. 1956 */ 1957 if (ipst->ips_netstack->netstack_stackid != GLOBAL_NETSTACKID) 1958 ip_zoneid = GLOBAL_ZONEID; 1959 else 1960 ip_zoneid = zoneid; 1961 1962 if (version == IPV6_VERSION && 1963 IN6_IS_ADDR_V4MAPPED((const in6_addr_t *)addr)) { 1964 IN6_V4MAPPED_TO_IPADDR((const in6_addr_t *)addr, in4); 1965 addr = &in4; 1966 version = IPV4_VERSION; 1967 } 1968 1969 if (version == IPV4_VERSION) { 1970 in4 = *(const in_addr_t *)addr; 1971 if (in4 == INADDR_ANY) { 1972 return (mlptBoth); 1973 } 1974 ire = ire_cache_lookup(in4, ip_zoneid, NULL, ipst); 1975 } else { 1976 if (IN6_IS_ADDR_UNSPECIFIED((const in6_addr_t *)addr)) { 1977 return (mlptBoth); 1978 } 1979 ire = ire_cache_lookup_v6(addr, ip_zoneid, NULL, ipst); 1980 } 1981 /* 1982 * If we can't find the IRE, then we have to behave exactly like 1983 * ip_bind_laddr{,_v6}. That means looking up the IPIF so that users 1984 * can bind to addresses on "down" interfaces. 1985 * 1986 * If we can't find that either, then the bind is going to fail, so 1987 * just give up. Note that there's a miniscule chance that the address 1988 * is in transition, but we don't bother handling that. 1989 */ 1990 if (ire == NULL) { 1991 if (version == IPV4_VERSION) 1992 ipif = ipif_lookup_addr(*(const in_addr_t *)addr, NULL, 1993 ip_zoneid, NULL, NULL, NULL, NULL, ipst); 1994 else 1995 ipif = ipif_lookup_addr_v6((const in6_addr_t *)addr, 1996 NULL, ip_zoneid, NULL, NULL, NULL, NULL, ipst); 1997 if (ipif == NULL) { 1998 return (mlptSingle); 1999 } 2000 addrzone = ipif->ipif_zoneid; 2001 ipif_refrele(ipif); 2002 } else { 2003 addrzone = ire->ire_zoneid; 2004 ire_refrele(ire); 2005 } 2006 return (addrzone == ALL_ZONES ? mlptShared : mlptPrivate); 2007 } 2008 2009 /* 2010 * Since we are configuring local interfaces, and we know trusted 2011 * extension CDE requires local interfaces to be cipso host type in 2012 * order to function correctly, we'll associate a cipso template 2013 * to each local interface and let the interface come up. Configuring 2014 * a local interface to be "unlabeled" host type is a configuration error. 2015 * We'll override that error and make the interface host type to be cipso 2016 * here. 2017 * 2018 * The code is optimized for the usual "success" case and unwinds things on 2019 * error. We don't want to go to the trouble and expense of formatting the 2020 * interface name for the usual case where everything is configured correctly. 2021 */ 2022 boolean_t 2023 tsol_check_interface_address(const ipif_t *ipif) 2024 { 2025 tsol_tpc_t *tp; 2026 char addrbuf[INET6_ADDRSTRLEN]; 2027 int af; 2028 const void *addr; 2029 zone_t *zone; 2030 ts_label_t *plabel; 2031 const bslabel_t *label; 2032 char ifbuf[LIFNAMSIZ + 10]; 2033 const char *ifname; 2034 boolean_t retval; 2035 tsol_rhent_t rhent; 2036 netstack_t *ns = ipif->ipif_ill->ill_ipst->ips_netstack; 2037 2038 if (IN6_IS_ADDR_V4MAPPED(&ipif->ipif_v6lcl_addr)) { 2039 af = AF_INET; 2040 addr = &V4_PART_OF_V6(ipif->ipif_v6lcl_addr); 2041 } else { 2042 af = AF_INET6; 2043 addr = &ipif->ipif_v6lcl_addr; 2044 } 2045 2046 tp = find_tpc(&ipif->ipif_v6lcl_addr, IPV6_VERSION, B_FALSE); 2047 2048 /* assumes that ALL_ZONES implies that there is no exclusive stack */ 2049 if (ipif->ipif_zoneid == ALL_ZONES) { 2050 zone = NULL; 2051 } else if (ns->netstack_stackid == GLOBAL_NETSTACKID) { 2052 /* Shared stack case */ 2053 zone = zone_find_by_id(ipif->ipif_zoneid); 2054 } else { 2055 /* Exclusive stack case */ 2056 zone = zone_find_by_id(crgetzoneid(ipif->ipif_ill->ill_credp)); 2057 } 2058 if (zone != NULL) { 2059 plabel = zone->zone_slabel; 2060 ASSERT(plabel != NULL); 2061 label = label2bslabel(plabel); 2062 } 2063 2064 /* 2065 * If it's CIPSO and an all-zones address, then we're done. 2066 * If it's a CIPSO zone specific address, the zone's label 2067 * must be in the range or set specified in the template. 2068 * When the remote host entry is missing or the template 2069 * type is incorrect for this interface, we create a 2070 * CIPSO host entry in kernel and allow the interface to be 2071 * brought up as CIPSO type. 2072 */ 2073 if (tp != NULL && ( 2074 /* The all-zones case */ 2075 (tp->tpc_tp.host_type == SUN_CIPSO && 2076 tp->tpc_tp.tp_doi == default_doi && 2077 ipif->ipif_zoneid == ALL_ZONES) || 2078 /* The local-zone case */ 2079 (zone != NULL && plabel->tsl_doi == tp->tpc_tp.tp_doi && 2080 ((tp->tpc_tp.host_type == SUN_CIPSO && 2081 (_blinrange(label, &tp->tpc_tp.tp_sl_range_cipso) || 2082 blinlset(label, tp->tpc_tp.tp_sl_set_cipso))))))) { 2083 if (zone != NULL) 2084 zone_rele(zone); 2085 TPC_RELE(tp); 2086 return (B_TRUE); 2087 } 2088 2089 ifname = ipif->ipif_ill->ill_name; 2090 if (ipif->ipif_id != 0) { 2091 (void) snprintf(ifbuf, sizeof (ifbuf), "%s:%u", ifname, 2092 ipif->ipif_id); 2093 ifname = ifbuf; 2094 } 2095 (void) inet_ntop(af, addr, addrbuf, sizeof (addrbuf)); 2096 2097 if (tp == NULL) { 2098 cmn_err(CE_NOTE, "template entry for %s missing. Default to " 2099 "CIPSO type for %s", ifname, addrbuf); 2100 retval = B_TRUE; 2101 } else if (tp->tpc_tp.host_type == UNLABELED) { 2102 cmn_err(CE_NOTE, "template type for %s incorrectly configured. " 2103 "Change to CIPSO type for %s", ifname, addrbuf); 2104 retval = B_TRUE; 2105 } else if (ipif->ipif_zoneid == ALL_ZONES) { 2106 if (tp->tpc_tp.host_type != SUN_CIPSO) { 2107 cmn_err(CE_NOTE, "%s failed: %s isn't set to CIPSO for " 2108 "all-zones. Converted to CIPSO.", ifname, addrbuf); 2109 retval = B_TRUE; 2110 } else { 2111 cmn_err(CE_NOTE, "%s failed: %s has wrong DOI %d " 2112 "instead of %d", ifname, addrbuf, 2113 tp->tpc_tp.tp_doi, default_doi); 2114 retval = B_FALSE; 2115 } 2116 } else if (zone == NULL) { 2117 cmn_err(CE_NOTE, "%s failed: zoneid %d unknown", 2118 ifname, ipif->ipif_zoneid); 2119 retval = B_FALSE; 2120 } else if (plabel->tsl_doi != tp->tpc_tp.tp_doi) { 2121 cmn_err(CE_NOTE, "%s failed: zone %s has DOI %d but %s has " 2122 "DOI %d", ifname, zone->zone_name, plabel->tsl_doi, 2123 addrbuf, tp->tpc_tp.tp_doi); 2124 retval = B_FALSE; 2125 } else { 2126 cmn_err(CE_NOTE, "%s failed: zone %s label incompatible with " 2127 "%s", ifname, zone->zone_name, addrbuf); 2128 tsol_print_label(label, "zone label"); 2129 retval = B_FALSE; 2130 } 2131 2132 if (zone != NULL) 2133 zone_rele(zone); 2134 if (tp != NULL) 2135 TPC_RELE(tp); 2136 if (retval) { 2137 /* 2138 * we've corrected a config error and let the interface 2139 * come up as cipso. Need to insert an rhent. 2140 */ 2141 if ((rhent.rh_address.ta_family = af) == AF_INET) { 2142 rhent.rh_prefix = 32; 2143 rhent.rh_address.ta_addr_v4 = *(struct in_addr *)addr; 2144 } else { 2145 rhent.rh_prefix = 128; 2146 rhent.rh_address.ta_addr_v6 = *(in6_addr_t *)addr; 2147 } 2148 (void) strcpy(rhent.rh_template, "cipso"); 2149 if (tnrh_load(&rhent) != 0) { 2150 cmn_err(CE_NOTE, "%s failed: Cannot insert CIPSO " 2151 "template for local addr %s", ifname, addrbuf); 2152 retval = B_FALSE; 2153 } 2154 } 2155 return (retval); 2156 } 2157