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 /* 27 * IPsec Security Policy Database. 28 * 29 * This module maintains the SPD and provides routines used by ip and ip6 30 * to apply IPsec policy to inbound and outbound datagrams. 31 */ 32 33 #include <sys/types.h> 34 #include <sys/stream.h> 35 #include <sys/stropts.h> 36 #include <sys/sysmacros.h> 37 #include <sys/strsubr.h> 38 #include <sys/strsun.h> 39 #include <sys/strlog.h> 40 #include <sys/strsun.h> 41 #include <sys/cmn_err.h> 42 #include <sys/zone.h> 43 44 #include <sys/systm.h> 45 #include <sys/param.h> 46 #include <sys/kmem.h> 47 #include <sys/ddi.h> 48 49 #include <sys/crypto/api.h> 50 51 #include <inet/common.h> 52 #include <inet/mi.h> 53 54 #include <netinet/ip6.h> 55 #include <netinet/icmp6.h> 56 #include <netinet/udp.h> 57 58 #include <inet/ip.h> 59 #include <inet/ip6.h> 60 61 #include <net/pfkeyv2.h> 62 #include <net/pfpolicy.h> 63 #include <inet/sadb.h> 64 #include <inet/ipsec_impl.h> 65 66 #include <inet/ip_impl.h> /* For IP_MOD_ID */ 67 68 #include <inet/ipsecah.h> 69 #include <inet/ipsecesp.h> 70 #include <inet/ipdrop.h> 71 #include <inet/ipclassifier.h> 72 #include <inet/iptun.h> 73 #include <inet/iptun/iptun_impl.h> 74 75 static void ipsec_update_present_flags(ipsec_stack_t *); 76 static ipsec_act_t *ipsec_act_wildcard_expand(ipsec_act_t *, uint_t *, 77 netstack_t *); 78 static mblk_t *ipsec_check_ipsecin_policy(mblk_t *, ipsec_policy_t *, 79 ipha_t *, ip6_t *, uint64_t, ip_recv_attr_t *, netstack_t *); 80 static void ipsec_action_free_table(ipsec_action_t *); 81 static void ipsec_action_reclaim(void *); 82 static void ipsec_action_reclaim_stack(netstack_t *); 83 static void ipsid_init(netstack_t *); 84 static void ipsid_fini(netstack_t *); 85 86 /* sel_flags values for ipsec_init_inbound_sel(). */ 87 #define SEL_NONE 0x0000 88 #define SEL_PORT_POLICY 0x0001 89 #define SEL_IS_ICMP 0x0002 90 #define SEL_TUNNEL_MODE 0x0004 91 #define SEL_POST_FRAG 0x0008 92 93 /* Return values for ipsec_init_inbound_sel(). */ 94 typedef enum { SELRET_NOMEM, SELRET_BADPKT, SELRET_SUCCESS, SELRET_TUNFRAG} 95 selret_t; 96 97 static selret_t ipsec_init_inbound_sel(ipsec_selector_t *, mblk_t *, 98 ipha_t *, ip6_t *, uint8_t); 99 100 static boolean_t ipsec_check_ipsecin_action(ip_recv_attr_t *, mblk_t *, 101 struct ipsec_action_s *, ipha_t *ipha, ip6_t *ip6h, const char **, 102 kstat_named_t **, netstack_t *); 103 static void ipsec_unregister_prov_update(void); 104 static void ipsec_prov_update_callback_stack(uint32_t, void *, netstack_t *); 105 static boolean_t ipsec_compare_action(ipsec_policy_t *, ipsec_policy_t *); 106 static uint32_t selector_hash(ipsec_selector_t *, ipsec_policy_root_t *); 107 static boolean_t ipsec_kstat_init(ipsec_stack_t *); 108 static void ipsec_kstat_destroy(ipsec_stack_t *); 109 static int ipsec_free_tables(ipsec_stack_t *); 110 static int tunnel_compare(const void *, const void *); 111 static void ipsec_freemsg_chain(mblk_t *); 112 static void ip_drop_packet_chain(mblk_t *, boolean_t, ill_t *, 113 struct kstat_named *, ipdropper_t *); 114 static boolean_t ipsec_kstat_init(ipsec_stack_t *); 115 static void ipsec_kstat_destroy(ipsec_stack_t *); 116 static int ipsec_free_tables(ipsec_stack_t *); 117 static int tunnel_compare(const void *, const void *); 118 static void ipsec_freemsg_chain(mblk_t *); 119 120 /* 121 * Selector hash table is statically sized at module load time. 122 * we default to 251 buckets, which is the largest prime number under 255 123 */ 124 125 #define IPSEC_SPDHASH_DEFAULT 251 126 127 /* SPD hash-size tunable per tunnel. */ 128 #define TUN_SPDHASH_DEFAULT 5 129 130 uint32_t ipsec_spd_hashsize; 131 uint32_t tun_spd_hashsize; 132 133 #define IPSEC_SEL_NOHASH ((uint32_t)(~0)) 134 135 /* 136 * Handle global across all stack instances 137 */ 138 static crypto_notify_handle_t prov_update_handle = NULL; 139 140 static kmem_cache_t *ipsec_action_cache; 141 static kmem_cache_t *ipsec_sel_cache; 142 static kmem_cache_t *ipsec_pol_cache; 143 144 /* Frag cache prototypes */ 145 static void ipsec_fragcache_clean(ipsec_fragcache_t *, ipsec_stack_t *); 146 static ipsec_fragcache_entry_t *fragcache_delentry(int, 147 ipsec_fragcache_entry_t *, ipsec_fragcache_t *, ipsec_stack_t *); 148 boolean_t ipsec_fragcache_init(ipsec_fragcache_t *); 149 void ipsec_fragcache_uninit(ipsec_fragcache_t *, ipsec_stack_t *ipss); 150 mblk_t *ipsec_fragcache_add(ipsec_fragcache_t *, mblk_t *, mblk_t *, 151 int, ipsec_stack_t *); 152 153 int ipsec_hdr_pullup_needed = 0; 154 int ipsec_weird_null_inbound_policy = 0; 155 156 #define ALGBITS_ROUND_DOWN(x, align) (((x)/(align))*(align)) 157 #define ALGBITS_ROUND_UP(x, align) ALGBITS_ROUND_DOWN((x)+(align)-1, align) 158 159 /* 160 * Inbound traffic should have matching identities for both SA's. 161 */ 162 163 #define SA_IDS_MATCH(sa1, sa2) \ 164 (((sa1) == NULL) || ((sa2) == NULL) || \ 165 (((sa1)->ipsa_src_cid == (sa2)->ipsa_src_cid) && \ 166 (((sa1)->ipsa_dst_cid == (sa2)->ipsa_dst_cid)))) 167 168 /* 169 * IPv6 Fragments 170 */ 171 #define IS_V6_FRAGMENT(ipp) (ipp.ipp_fields & IPPF_FRAGHDR) 172 173 /* 174 * Policy failure messages. 175 */ 176 static char *ipsec_policy_failure_msgs[] = { 177 178 /* IPSEC_POLICY_NOT_NEEDED */ 179 "%s: Dropping the datagram because the incoming packet " 180 "is %s, but the recipient expects clear; Source %s, " 181 "Destination %s.\n", 182 183 /* IPSEC_POLICY_MISMATCH */ 184 "%s: Policy Failure for the incoming packet (%s); Source %s, " 185 "Destination %s.\n", 186 187 /* IPSEC_POLICY_AUTH_NOT_NEEDED */ 188 "%s: Authentication present while not expected in the " 189 "incoming %s packet; Source %s, Destination %s.\n", 190 191 /* IPSEC_POLICY_ENCR_NOT_NEEDED */ 192 "%s: Encryption present while not expected in the " 193 "incoming %s packet; Source %s, Destination %s.\n", 194 195 /* IPSEC_POLICY_SE_NOT_NEEDED */ 196 "%s: Self-Encapsulation present while not expected in the " 197 "incoming %s packet; Source %s, Destination %s.\n", 198 }; 199 200 /* 201 * General overviews: 202 * 203 * Locking: 204 * 205 * All of the system policy structures are protected by a single 206 * rwlock. These structures are threaded in a 207 * fairly complex fashion and are not expected to change on a 208 * regular basis, so this should not cause scaling/contention 209 * problems. As a result, policy checks should (hopefully) be MT-hot. 210 * 211 * Allocation policy: 212 * 213 * We use custom kmem cache types for the various 214 * bits & pieces of the policy data structures. All allocations 215 * use KM_NOSLEEP instead of KM_SLEEP for policy allocation. The 216 * policy table is of potentially unbounded size, so we don't 217 * want to provide a way to hog all system memory with policy 218 * entries.. 219 */ 220 221 /* Convenient functions for freeing or dropping a b_next linked mblk chain */ 222 223 /* Free all messages in an mblk chain */ 224 static void 225 ipsec_freemsg_chain(mblk_t *mp) 226 { 227 mblk_t *mpnext; 228 while (mp != NULL) { 229 ASSERT(mp->b_prev == NULL); 230 mpnext = mp->b_next; 231 mp->b_next = NULL; 232 freemsg(mp); 233 mp = mpnext; 234 } 235 } 236 237 /* 238 * ip_drop all messages in an mblk chain 239 * Can handle a b_next chain of ip_recv_attr_t mblks, or just a b_next chain 240 * of data. 241 */ 242 static void 243 ip_drop_packet_chain(mblk_t *mp, boolean_t inbound, ill_t *ill, 244 struct kstat_named *counter, ipdropper_t *who_called) 245 { 246 mblk_t *mpnext; 247 while (mp != NULL) { 248 ASSERT(mp->b_prev == NULL); 249 mpnext = mp->b_next; 250 mp->b_next = NULL; 251 if (ip_recv_attr_is_mblk(mp)) 252 mp = ip_recv_attr_free_mblk(mp); 253 ip_drop_packet(mp, inbound, ill, counter, who_called); 254 mp = mpnext; 255 } 256 } 257 258 /* 259 * AVL tree comparison function. 260 * the in-kernel avl assumes unique keys for all objects. 261 * Since sometimes policy will duplicate rules, we may insert 262 * multiple rules with the same rule id, so we need a tie-breaker. 263 */ 264 static int 265 ipsec_policy_cmpbyid(const void *a, const void *b) 266 { 267 const ipsec_policy_t *ipa, *ipb; 268 uint64_t idxa, idxb; 269 270 ipa = (const ipsec_policy_t *)a; 271 ipb = (const ipsec_policy_t *)b; 272 idxa = ipa->ipsp_index; 273 idxb = ipb->ipsp_index; 274 275 if (idxa < idxb) 276 return (-1); 277 if (idxa > idxb) 278 return (1); 279 /* 280 * Tie-breaker #1: All installed policy rules have a non-NULL 281 * ipsl_sel (selector set), so an entry with a NULL ipsp_sel is not 282 * actually in-tree but rather a template node being used in 283 * an avl_find query; see ipsec_policy_delete(). This gives us 284 * a placeholder in the ordering just before the first entry with 285 * a key >= the one we're looking for, so we can walk forward from 286 * that point to get the remaining entries with the same id. 287 */ 288 if ((ipa->ipsp_sel == NULL) && (ipb->ipsp_sel != NULL)) 289 return (-1); 290 if ((ipb->ipsp_sel == NULL) && (ipa->ipsp_sel != NULL)) 291 return (1); 292 /* 293 * At most one of the arguments to the comparison should have a 294 * NULL selector pointer; if not, the tree is broken. 295 */ 296 ASSERT(ipa->ipsp_sel != NULL); 297 ASSERT(ipb->ipsp_sel != NULL); 298 /* 299 * Tie-breaker #2: use the virtual address of the policy node 300 * to arbitrarily break ties. Since we use the new tree node in 301 * the avl_find() in ipsec_insert_always, the new node will be 302 * inserted into the tree in the right place in the sequence. 303 */ 304 if (ipa < ipb) 305 return (-1); 306 if (ipa > ipb) 307 return (1); 308 return (0); 309 } 310 311 /* 312 * Free what ipsec_alloc_table allocated. 313 */ 314 void 315 ipsec_polhead_free_table(ipsec_policy_head_t *iph) 316 { 317 int dir; 318 int i; 319 320 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 321 ipsec_policy_root_t *ipr = &iph->iph_root[dir]; 322 323 if (ipr->ipr_hash == NULL) 324 continue; 325 326 for (i = 0; i < ipr->ipr_nchains; i++) { 327 ASSERT(ipr->ipr_hash[i].hash_head == NULL); 328 } 329 kmem_free(ipr->ipr_hash, ipr->ipr_nchains * 330 sizeof (ipsec_policy_hash_t)); 331 ipr->ipr_hash = NULL; 332 } 333 } 334 335 void 336 ipsec_polhead_destroy(ipsec_policy_head_t *iph) 337 { 338 int dir; 339 340 avl_destroy(&iph->iph_rulebyid); 341 rw_destroy(&iph->iph_lock); 342 343 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 344 ipsec_policy_root_t *ipr = &iph->iph_root[dir]; 345 int chain; 346 347 for (chain = 0; chain < ipr->ipr_nchains; chain++) 348 mutex_destroy(&(ipr->ipr_hash[chain].hash_lock)); 349 350 } 351 ipsec_polhead_free_table(iph); 352 } 353 354 /* 355 * Free the IPsec stack instance. 356 */ 357 /* ARGSUSED */ 358 static void 359 ipsec_stack_fini(netstackid_t stackid, void *arg) 360 { 361 ipsec_stack_t *ipss = (ipsec_stack_t *)arg; 362 void *cookie; 363 ipsec_tun_pol_t *node; 364 netstack_t *ns = ipss->ipsec_netstack; 365 int i; 366 ipsec_algtype_t algtype; 367 368 ipsec_loader_destroy(ipss); 369 370 rw_enter(&ipss->ipsec_tunnel_policy_lock, RW_WRITER); 371 /* 372 * It's possible we can just ASSERT() the tree is empty. After all, 373 * we aren't called until IP is ready to unload (and presumably all 374 * tunnels have been unplumbed). But we'll play it safe for now, the 375 * loop will just exit immediately if it's empty. 376 */ 377 cookie = NULL; 378 while ((node = (ipsec_tun_pol_t *) 379 avl_destroy_nodes(&ipss->ipsec_tunnel_policies, 380 &cookie)) != NULL) { 381 ITP_REFRELE(node, ns); 382 } 383 avl_destroy(&ipss->ipsec_tunnel_policies); 384 rw_exit(&ipss->ipsec_tunnel_policy_lock); 385 rw_destroy(&ipss->ipsec_tunnel_policy_lock); 386 387 ipsec_config_flush(ns); 388 389 ipsec_kstat_destroy(ipss); 390 391 ip_drop_unregister(&ipss->ipsec_dropper); 392 393 ip_drop_unregister(&ipss->ipsec_spd_dropper); 394 ip_drop_destroy(ipss); 395 /* 396 * Globals start with ref == 1 to prevent IPPH_REFRELE() from 397 * attempting to free them, hence they should have 1 now. 398 */ 399 ipsec_polhead_destroy(&ipss->ipsec_system_policy); 400 ASSERT(ipss->ipsec_system_policy.iph_refs == 1); 401 ipsec_polhead_destroy(&ipss->ipsec_inactive_policy); 402 ASSERT(ipss->ipsec_inactive_policy.iph_refs == 1); 403 404 for (i = 0; i < IPSEC_ACTION_HASH_SIZE; i++) { 405 ipsec_action_free_table(ipss->ipsec_action_hash[i].hash_head); 406 ipss->ipsec_action_hash[i].hash_head = NULL; 407 mutex_destroy(&(ipss->ipsec_action_hash[i].hash_lock)); 408 } 409 410 for (i = 0; i < ipss->ipsec_spd_hashsize; i++) { 411 ASSERT(ipss->ipsec_sel_hash[i].hash_head == NULL); 412 mutex_destroy(&(ipss->ipsec_sel_hash[i].hash_lock)); 413 } 414 415 mutex_enter(&ipss->ipsec_alg_lock); 416 for (algtype = 0; algtype < IPSEC_NALGTYPES; algtype ++) { 417 int nalgs = ipss->ipsec_nalgs[algtype]; 418 419 for (i = 0; i < nalgs; i++) { 420 if (ipss->ipsec_alglists[algtype][i] != NULL) 421 ipsec_alg_unreg(algtype, i, ns); 422 } 423 } 424 mutex_exit(&ipss->ipsec_alg_lock); 425 mutex_destroy(&ipss->ipsec_alg_lock); 426 427 ipsid_gc(ns); 428 ipsid_fini(ns); 429 430 (void) ipsec_free_tables(ipss); 431 kmem_free(ipss, sizeof (*ipss)); 432 } 433 434 void 435 ipsec_policy_g_destroy(void) 436 { 437 kmem_cache_destroy(ipsec_action_cache); 438 kmem_cache_destroy(ipsec_sel_cache); 439 kmem_cache_destroy(ipsec_pol_cache); 440 441 ipsec_unregister_prov_update(); 442 443 netstack_unregister(NS_IPSEC); 444 } 445 446 447 /* 448 * Free what ipsec_alloc_tables allocated. 449 * Called when table allocation fails to free the table. 450 */ 451 static int 452 ipsec_free_tables(ipsec_stack_t *ipss) 453 { 454 int i; 455 456 if (ipss->ipsec_sel_hash != NULL) { 457 for (i = 0; i < ipss->ipsec_spd_hashsize; i++) { 458 ASSERT(ipss->ipsec_sel_hash[i].hash_head == NULL); 459 } 460 kmem_free(ipss->ipsec_sel_hash, ipss->ipsec_spd_hashsize * 461 sizeof (*ipss->ipsec_sel_hash)); 462 ipss->ipsec_sel_hash = NULL; 463 ipss->ipsec_spd_hashsize = 0; 464 } 465 ipsec_polhead_free_table(&ipss->ipsec_system_policy); 466 ipsec_polhead_free_table(&ipss->ipsec_inactive_policy); 467 468 return (ENOMEM); 469 } 470 471 /* 472 * Attempt to allocate the tables in a single policy head. 473 * Return nonzero on failure after cleaning up any work in progress. 474 */ 475 int 476 ipsec_alloc_table(ipsec_policy_head_t *iph, int nchains, int kmflag, 477 boolean_t global_cleanup, netstack_t *ns) 478 { 479 int dir; 480 481 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 482 ipsec_policy_root_t *ipr = &iph->iph_root[dir]; 483 484 ipr->ipr_nchains = nchains; 485 ipr->ipr_hash = kmem_zalloc(nchains * 486 sizeof (ipsec_policy_hash_t), kmflag); 487 if (ipr->ipr_hash == NULL) 488 return (global_cleanup ? 489 ipsec_free_tables(ns->netstack_ipsec) : 490 ENOMEM); 491 } 492 return (0); 493 } 494 495 /* 496 * Attempt to allocate the various tables. Return nonzero on failure 497 * after cleaning up any work in progress. 498 */ 499 static int 500 ipsec_alloc_tables(int kmflag, netstack_t *ns) 501 { 502 int error; 503 ipsec_stack_t *ipss = ns->netstack_ipsec; 504 505 error = ipsec_alloc_table(&ipss->ipsec_system_policy, 506 ipss->ipsec_spd_hashsize, kmflag, B_TRUE, ns); 507 if (error != 0) 508 return (error); 509 510 error = ipsec_alloc_table(&ipss->ipsec_inactive_policy, 511 ipss->ipsec_spd_hashsize, kmflag, B_TRUE, ns); 512 if (error != 0) 513 return (error); 514 515 ipss->ipsec_sel_hash = kmem_zalloc(ipss->ipsec_spd_hashsize * 516 sizeof (*ipss->ipsec_sel_hash), kmflag); 517 518 if (ipss->ipsec_sel_hash == NULL) 519 return (ipsec_free_tables(ipss)); 520 521 return (0); 522 } 523 524 /* 525 * After table allocation, initialize a policy head. 526 */ 527 void 528 ipsec_polhead_init(ipsec_policy_head_t *iph, int nchains) 529 { 530 int dir, chain; 531 532 rw_init(&iph->iph_lock, NULL, RW_DEFAULT, NULL); 533 avl_create(&iph->iph_rulebyid, ipsec_policy_cmpbyid, 534 sizeof (ipsec_policy_t), offsetof(ipsec_policy_t, ipsp_byid)); 535 536 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 537 ipsec_policy_root_t *ipr = &iph->iph_root[dir]; 538 ipr->ipr_nchains = nchains; 539 540 for (chain = 0; chain < nchains; chain++) { 541 mutex_init(&(ipr->ipr_hash[chain].hash_lock), 542 NULL, MUTEX_DEFAULT, NULL); 543 } 544 } 545 } 546 547 static boolean_t 548 ipsec_kstat_init(ipsec_stack_t *ipss) 549 { 550 ipss->ipsec_ksp = kstat_create_netstack("ip", 0, "ipsec_stat", "net", 551 KSTAT_TYPE_NAMED, sizeof (ipsec_kstats_t) / sizeof (kstat_named_t), 552 KSTAT_FLAG_PERSISTENT, ipss->ipsec_netstack->netstack_stackid); 553 554 if (ipss->ipsec_ksp == NULL || ipss->ipsec_ksp->ks_data == NULL) 555 return (B_FALSE); 556 557 ipss->ipsec_kstats = ipss->ipsec_ksp->ks_data; 558 559 #define KI(x) kstat_named_init(&ipss->ipsec_kstats->x, #x, KSTAT_DATA_UINT64) 560 KI(esp_stat_in_requests); 561 KI(esp_stat_in_discards); 562 KI(esp_stat_lookup_failure); 563 KI(ah_stat_in_requests); 564 KI(ah_stat_in_discards); 565 KI(ah_stat_lookup_failure); 566 KI(sadb_acquire_maxpackets); 567 KI(sadb_acquire_qhiwater); 568 #undef KI 569 570 kstat_install(ipss->ipsec_ksp); 571 return (B_TRUE); 572 } 573 574 static void 575 ipsec_kstat_destroy(ipsec_stack_t *ipss) 576 { 577 kstat_delete_netstack(ipss->ipsec_ksp, 578 ipss->ipsec_netstack->netstack_stackid); 579 ipss->ipsec_kstats = NULL; 580 581 } 582 583 /* 584 * Initialize the IPsec stack instance. 585 */ 586 /* ARGSUSED */ 587 static void * 588 ipsec_stack_init(netstackid_t stackid, netstack_t *ns) 589 { 590 ipsec_stack_t *ipss; 591 int i; 592 593 ipss = (ipsec_stack_t *)kmem_zalloc(sizeof (*ipss), KM_SLEEP); 594 ipss->ipsec_netstack = ns; 595 596 /* 597 * FIXME: netstack_ipsec is used by some of the routines we call 598 * below, but it isn't set until this routine returns. 599 * Either we introduce optional xxx_stack_alloc() functions 600 * that will be called by the netstack framework before xxx_stack_init, 601 * or we switch spd.c and sadb.c to operate on ipsec_stack_t 602 * (latter has some include file order issues for sadb.h, but makes 603 * sense if we merge some of the ipsec related stack_t's together. 604 */ 605 ns->netstack_ipsec = ipss; 606 607 /* 608 * Make two attempts to allocate policy hash tables; try it at 609 * the "preferred" size (may be set in /etc/system) first, 610 * then fall back to the default size. 611 */ 612 ipss->ipsec_spd_hashsize = (ipsec_spd_hashsize == 0) ? 613 IPSEC_SPDHASH_DEFAULT : ipsec_spd_hashsize; 614 615 if (ipsec_alloc_tables(KM_NOSLEEP, ns) != 0) { 616 cmn_err(CE_WARN, 617 "Unable to allocate %d entry IPsec policy hash table", 618 ipss->ipsec_spd_hashsize); 619 ipss->ipsec_spd_hashsize = IPSEC_SPDHASH_DEFAULT; 620 cmn_err(CE_WARN, "Falling back to %d entries", 621 ipss->ipsec_spd_hashsize); 622 (void) ipsec_alloc_tables(KM_SLEEP, ns); 623 } 624 625 /* Just set a default for tunnels. */ 626 ipss->ipsec_tun_spd_hashsize = (tun_spd_hashsize == 0) ? 627 TUN_SPDHASH_DEFAULT : tun_spd_hashsize; 628 629 ipsid_init(ns); 630 /* 631 * Globals need ref == 1 to prevent IPPH_REFRELE() from attempting 632 * to free them. 633 */ 634 ipss->ipsec_system_policy.iph_refs = 1; 635 ipss->ipsec_inactive_policy.iph_refs = 1; 636 ipsec_polhead_init(&ipss->ipsec_system_policy, 637 ipss->ipsec_spd_hashsize); 638 ipsec_polhead_init(&ipss->ipsec_inactive_policy, 639 ipss->ipsec_spd_hashsize); 640 rw_init(&ipss->ipsec_tunnel_policy_lock, NULL, RW_DEFAULT, NULL); 641 avl_create(&ipss->ipsec_tunnel_policies, tunnel_compare, 642 sizeof (ipsec_tun_pol_t), 0); 643 644 ipss->ipsec_next_policy_index = 1; 645 646 rw_init(&ipss->ipsec_system_policy.iph_lock, NULL, RW_DEFAULT, NULL); 647 rw_init(&ipss->ipsec_inactive_policy.iph_lock, NULL, RW_DEFAULT, NULL); 648 649 for (i = 0; i < IPSEC_ACTION_HASH_SIZE; i++) 650 mutex_init(&(ipss->ipsec_action_hash[i].hash_lock), 651 NULL, MUTEX_DEFAULT, NULL); 652 653 for (i = 0; i < ipss->ipsec_spd_hashsize; i++) 654 mutex_init(&(ipss->ipsec_sel_hash[i].hash_lock), 655 NULL, MUTEX_DEFAULT, NULL); 656 657 mutex_init(&ipss->ipsec_alg_lock, NULL, MUTEX_DEFAULT, NULL); 658 for (i = 0; i < IPSEC_NALGTYPES; i++) { 659 ipss->ipsec_nalgs[i] = 0; 660 } 661 662 ip_drop_init(ipss); 663 ip_drop_register(&ipss->ipsec_spd_dropper, "IPsec SPD"); 664 665 /* IP's IPsec code calls the packet dropper */ 666 ip_drop_register(&ipss->ipsec_dropper, "IP IPsec processing"); 667 668 (void) ipsec_kstat_init(ipss); 669 670 ipsec_loader_init(ipss); 671 ipsec_loader_start(ipss); 672 673 return (ipss); 674 } 675 676 /* Global across all stack instances */ 677 void 678 ipsec_policy_g_init(void) 679 { 680 ipsec_action_cache = kmem_cache_create("ipsec_actions", 681 sizeof (ipsec_action_t), _POINTER_ALIGNMENT, NULL, NULL, 682 ipsec_action_reclaim, NULL, NULL, 0); 683 ipsec_sel_cache = kmem_cache_create("ipsec_selectors", 684 sizeof (ipsec_sel_t), _POINTER_ALIGNMENT, NULL, NULL, 685 NULL, NULL, NULL, 0); 686 ipsec_pol_cache = kmem_cache_create("ipsec_policy", 687 sizeof (ipsec_policy_t), _POINTER_ALIGNMENT, NULL, NULL, 688 NULL, NULL, NULL, 0); 689 690 /* 691 * We want to be informed each time a stack is created or 692 * destroyed in the kernel, so we can maintain the 693 * set of ipsec_stack_t's. 694 */ 695 netstack_register(NS_IPSEC, ipsec_stack_init, NULL, ipsec_stack_fini); 696 } 697 698 /* 699 * Sort algorithm lists. 700 * 701 * I may need to split this based on 702 * authentication/encryption, and I may wish to have an administrator 703 * configure this list. Hold on to some NDD variables... 704 * 705 * XXX For now, sort on minimum key size (GAG!). While minimum key size is 706 * not the ideal metric, it's the only quantifiable measure available. 707 * We need a better metric for sorting algorithms by preference. 708 */ 709 static void 710 alg_insert_sortlist(enum ipsec_algtype at, uint8_t algid, netstack_t *ns) 711 { 712 ipsec_stack_t *ipss = ns->netstack_ipsec; 713 ipsec_alginfo_t *ai = ipss->ipsec_alglists[at][algid]; 714 uint8_t holder, swap; 715 uint_t i; 716 uint_t count = ipss->ipsec_nalgs[at]; 717 ASSERT(ai != NULL); 718 ASSERT(algid == ai->alg_id); 719 720 ASSERT(MUTEX_HELD(&ipss->ipsec_alg_lock)); 721 722 holder = algid; 723 724 for (i = 0; i < count - 1; i++) { 725 ipsec_alginfo_t *alt; 726 727 alt = ipss->ipsec_alglists[at][ipss->ipsec_sortlist[at][i]]; 728 /* 729 * If you want to give precedence to newly added algs, 730 * add the = in the > comparison. 731 */ 732 if ((holder != algid) || (ai->alg_minbits > alt->alg_minbits)) { 733 /* Swap sortlist[i] and holder. */ 734 swap = ipss->ipsec_sortlist[at][i]; 735 ipss->ipsec_sortlist[at][i] = holder; 736 holder = swap; 737 ai = alt; 738 } /* Else just continue. */ 739 } 740 741 /* Store holder in last slot. */ 742 ipss->ipsec_sortlist[at][i] = holder; 743 } 744 745 /* 746 * Remove an algorithm from a sorted algorithm list. 747 * This should be considerably easier, even with complex sorting. 748 */ 749 static void 750 alg_remove_sortlist(enum ipsec_algtype at, uint8_t algid, netstack_t *ns) 751 { 752 boolean_t copyback = B_FALSE; 753 int i; 754 ipsec_stack_t *ipss = ns->netstack_ipsec; 755 int newcount = ipss->ipsec_nalgs[at]; 756 757 ASSERT(MUTEX_HELD(&ipss->ipsec_alg_lock)); 758 759 for (i = 0; i <= newcount; i++) { 760 if (copyback) { 761 ipss->ipsec_sortlist[at][i-1] = 762 ipss->ipsec_sortlist[at][i]; 763 } else if (ipss->ipsec_sortlist[at][i] == algid) { 764 copyback = B_TRUE; 765 } 766 } 767 } 768 769 /* 770 * Add the specified algorithm to the algorithm tables. 771 * Must be called while holding the algorithm table writer lock. 772 */ 773 void 774 ipsec_alg_reg(ipsec_algtype_t algtype, ipsec_alginfo_t *alg, netstack_t *ns) 775 { 776 ipsec_stack_t *ipss = ns->netstack_ipsec; 777 778 ASSERT(MUTEX_HELD(&ipss->ipsec_alg_lock)); 779 780 ASSERT(ipss->ipsec_alglists[algtype][alg->alg_id] == NULL); 781 ipsec_alg_fix_min_max(alg, algtype, ns); 782 ipss->ipsec_alglists[algtype][alg->alg_id] = alg; 783 784 ipss->ipsec_nalgs[algtype]++; 785 alg_insert_sortlist(algtype, alg->alg_id, ns); 786 } 787 788 /* 789 * Remove the specified algorithm from the algorithm tables. 790 * Must be called while holding the algorithm table writer lock. 791 */ 792 void 793 ipsec_alg_unreg(ipsec_algtype_t algtype, uint8_t algid, netstack_t *ns) 794 { 795 ipsec_stack_t *ipss = ns->netstack_ipsec; 796 797 ASSERT(MUTEX_HELD(&ipss->ipsec_alg_lock)); 798 799 ASSERT(ipss->ipsec_alglists[algtype][algid] != NULL); 800 ipsec_alg_free(ipss->ipsec_alglists[algtype][algid]); 801 ipss->ipsec_alglists[algtype][algid] = NULL; 802 803 ipss->ipsec_nalgs[algtype]--; 804 alg_remove_sortlist(algtype, algid, ns); 805 } 806 807 /* 808 * Hooks for spdsock to get a grip on system policy. 809 */ 810 811 ipsec_policy_head_t * 812 ipsec_system_policy(netstack_t *ns) 813 { 814 ipsec_stack_t *ipss = ns->netstack_ipsec; 815 ipsec_policy_head_t *h = &ipss->ipsec_system_policy; 816 817 IPPH_REFHOLD(h); 818 return (h); 819 } 820 821 ipsec_policy_head_t * 822 ipsec_inactive_policy(netstack_t *ns) 823 { 824 ipsec_stack_t *ipss = ns->netstack_ipsec; 825 ipsec_policy_head_t *h = &ipss->ipsec_inactive_policy; 826 827 IPPH_REFHOLD(h); 828 return (h); 829 } 830 831 /* 832 * Lock inactive policy, then active policy, then exchange policy root 833 * pointers. 834 */ 835 void 836 ipsec_swap_policy(ipsec_policy_head_t *active, ipsec_policy_head_t *inactive, 837 netstack_t *ns) 838 { 839 int af, dir; 840 avl_tree_t r1, r2; 841 842 rw_enter(&inactive->iph_lock, RW_WRITER); 843 rw_enter(&active->iph_lock, RW_WRITER); 844 845 r1 = active->iph_rulebyid; 846 r2 = inactive->iph_rulebyid; 847 active->iph_rulebyid = r2; 848 inactive->iph_rulebyid = r1; 849 850 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 851 ipsec_policy_hash_t *h1, *h2; 852 853 h1 = active->iph_root[dir].ipr_hash; 854 h2 = inactive->iph_root[dir].ipr_hash; 855 active->iph_root[dir].ipr_hash = h2; 856 inactive->iph_root[dir].ipr_hash = h1; 857 858 for (af = 0; af < IPSEC_NAF; af++) { 859 ipsec_policy_t *t1, *t2; 860 861 t1 = active->iph_root[dir].ipr_nonhash[af]; 862 t2 = inactive->iph_root[dir].ipr_nonhash[af]; 863 active->iph_root[dir].ipr_nonhash[af] = t2; 864 inactive->iph_root[dir].ipr_nonhash[af] = t1; 865 if (t1 != NULL) { 866 t1->ipsp_hash.hash_pp = 867 &(inactive->iph_root[dir].ipr_nonhash[af]); 868 } 869 if (t2 != NULL) { 870 t2->ipsp_hash.hash_pp = 871 &(active->iph_root[dir].ipr_nonhash[af]); 872 } 873 874 } 875 } 876 active->iph_gen++; 877 inactive->iph_gen++; 878 ipsec_update_present_flags(ns->netstack_ipsec); 879 rw_exit(&active->iph_lock); 880 rw_exit(&inactive->iph_lock); 881 } 882 883 /* 884 * Swap global policy primary/secondary. 885 */ 886 void 887 ipsec_swap_global_policy(netstack_t *ns) 888 { 889 ipsec_stack_t *ipss = ns->netstack_ipsec; 890 891 ipsec_swap_policy(&ipss->ipsec_system_policy, 892 &ipss->ipsec_inactive_policy, ns); 893 } 894 895 /* 896 * Clone one policy rule.. 897 */ 898 static ipsec_policy_t * 899 ipsec_copy_policy(const ipsec_policy_t *src) 900 { 901 ipsec_policy_t *dst = kmem_cache_alloc(ipsec_pol_cache, KM_NOSLEEP); 902 903 if (dst == NULL) 904 return (NULL); 905 906 /* 907 * Adjust refcounts of cloned state. 908 */ 909 IPACT_REFHOLD(src->ipsp_act); 910 src->ipsp_sel->ipsl_refs++; 911 912 HASH_NULL(dst, ipsp_hash); 913 dst->ipsp_netstack = src->ipsp_netstack; 914 dst->ipsp_refs = 1; 915 dst->ipsp_sel = src->ipsp_sel; 916 dst->ipsp_act = src->ipsp_act; 917 dst->ipsp_prio = src->ipsp_prio; 918 dst->ipsp_index = src->ipsp_index; 919 920 return (dst); 921 } 922 923 void 924 ipsec_insert_always(avl_tree_t *tree, void *new_node) 925 { 926 void *node; 927 avl_index_t where; 928 929 node = avl_find(tree, new_node, &where); 930 ASSERT(node == NULL); 931 avl_insert(tree, new_node, where); 932 } 933 934 935 static int 936 ipsec_copy_chain(ipsec_policy_head_t *dph, ipsec_policy_t *src, 937 ipsec_policy_t **dstp) 938 { 939 for (; src != NULL; src = src->ipsp_hash.hash_next) { 940 ipsec_policy_t *dst = ipsec_copy_policy(src); 941 if (dst == NULL) 942 return (ENOMEM); 943 944 HASHLIST_INSERT(dst, ipsp_hash, *dstp); 945 ipsec_insert_always(&dph->iph_rulebyid, dst); 946 } 947 return (0); 948 } 949 950 951 952 /* 953 * Make one policy head look exactly like another. 954 * 955 * As with ipsec_swap_policy, we lock the destination policy head first, then 956 * the source policy head. Note that we only need to read-lock the source 957 * policy head as we are not changing it. 958 */ 959 int 960 ipsec_copy_polhead(ipsec_policy_head_t *sph, ipsec_policy_head_t *dph, 961 netstack_t *ns) 962 { 963 int af, dir, chain, nchains; 964 965 rw_enter(&dph->iph_lock, RW_WRITER); 966 967 ipsec_polhead_flush(dph, ns); 968 969 rw_enter(&sph->iph_lock, RW_READER); 970 971 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 972 ipsec_policy_root_t *dpr = &dph->iph_root[dir]; 973 ipsec_policy_root_t *spr = &sph->iph_root[dir]; 974 nchains = dpr->ipr_nchains; 975 976 ASSERT(dpr->ipr_nchains == spr->ipr_nchains); 977 978 for (af = 0; af < IPSEC_NAF; af++) { 979 if (ipsec_copy_chain(dph, spr->ipr_nonhash[af], 980 &dpr->ipr_nonhash[af])) 981 goto abort_copy; 982 } 983 984 for (chain = 0; chain < nchains; chain++) { 985 if (ipsec_copy_chain(dph, 986 spr->ipr_hash[chain].hash_head, 987 &dpr->ipr_hash[chain].hash_head)) 988 goto abort_copy; 989 } 990 } 991 992 dph->iph_gen++; 993 994 rw_exit(&sph->iph_lock); 995 rw_exit(&dph->iph_lock); 996 return (0); 997 998 abort_copy: 999 ipsec_polhead_flush(dph, ns); 1000 rw_exit(&sph->iph_lock); 1001 rw_exit(&dph->iph_lock); 1002 return (ENOMEM); 1003 } 1004 1005 /* 1006 * Clone currently active policy to the inactive policy list. 1007 */ 1008 int 1009 ipsec_clone_system_policy(netstack_t *ns) 1010 { 1011 ipsec_stack_t *ipss = ns->netstack_ipsec; 1012 1013 return (ipsec_copy_polhead(&ipss->ipsec_system_policy, 1014 &ipss->ipsec_inactive_policy, ns)); 1015 } 1016 1017 /* 1018 * Extract the string from ipsec_policy_failure_msgs[type] and 1019 * log it. 1020 * 1021 */ 1022 void 1023 ipsec_log_policy_failure(int type, char *func_name, ipha_t *ipha, ip6_t *ip6h, 1024 boolean_t secure, netstack_t *ns) 1025 { 1026 char sbuf[INET6_ADDRSTRLEN]; 1027 char dbuf[INET6_ADDRSTRLEN]; 1028 char *s; 1029 char *d; 1030 ipsec_stack_t *ipss = ns->netstack_ipsec; 1031 1032 ASSERT((ipha == NULL && ip6h != NULL) || 1033 (ip6h == NULL && ipha != NULL)); 1034 1035 if (ipha != NULL) { 1036 s = inet_ntop(AF_INET, &ipha->ipha_src, sbuf, sizeof (sbuf)); 1037 d = inet_ntop(AF_INET, &ipha->ipha_dst, dbuf, sizeof (dbuf)); 1038 } else { 1039 s = inet_ntop(AF_INET6, &ip6h->ip6_src, sbuf, sizeof (sbuf)); 1040 d = inet_ntop(AF_INET6, &ip6h->ip6_dst, dbuf, sizeof (dbuf)); 1041 1042 } 1043 1044 /* Always bump the policy failure counter. */ 1045 ipss->ipsec_policy_failure_count[type]++; 1046 1047 ipsec_rl_strlog(ns, IP_MOD_ID, 0, 0, SL_ERROR|SL_WARN|SL_CONSOLE, 1048 ipsec_policy_failure_msgs[type], func_name, 1049 (secure ? "secure" : "not secure"), s, d); 1050 } 1051 1052 /* 1053 * Rate-limiting front-end to strlog() for AH and ESP. Uses the ndd variables 1054 * in /dev/ip and the same rate-limiting clock so that there's a single 1055 * knob to turn to throttle the rate of messages. 1056 */ 1057 void 1058 ipsec_rl_strlog(netstack_t *ns, short mid, short sid, char level, ushort_t sl, 1059 char *fmt, ...) 1060 { 1061 va_list adx; 1062 hrtime_t current = gethrtime(); 1063 ip_stack_t *ipst = ns->netstack_ip; 1064 ipsec_stack_t *ipss = ns->netstack_ipsec; 1065 1066 sl |= SL_CONSOLE; 1067 /* 1068 * Throttle logging to stop syslog from being swamped. If variable 1069 * 'ipsec_policy_log_interval' is zero, don't log any messages at 1070 * all, otherwise log only one message every 'ipsec_policy_log_interval' 1071 * msec. Convert interval (in msec) to hrtime (in nsec). 1072 */ 1073 1074 if (ipst->ips_ipsec_policy_log_interval) { 1075 if (ipss->ipsec_policy_failure_last + 1076 ((hrtime_t)ipst->ips_ipsec_policy_log_interval * 1077 (hrtime_t)1000000) <= current) { 1078 va_start(adx, fmt); 1079 (void) vstrlog(mid, sid, level, sl, fmt, adx); 1080 va_end(adx); 1081 ipss->ipsec_policy_failure_last = current; 1082 } 1083 } 1084 } 1085 1086 void 1087 ipsec_config_flush(netstack_t *ns) 1088 { 1089 ipsec_stack_t *ipss = ns->netstack_ipsec; 1090 1091 rw_enter(&ipss->ipsec_system_policy.iph_lock, RW_WRITER); 1092 ipsec_polhead_flush(&ipss->ipsec_system_policy, ns); 1093 ipss->ipsec_next_policy_index = 1; 1094 rw_exit(&ipss->ipsec_system_policy.iph_lock); 1095 ipsec_action_reclaim_stack(ns); 1096 } 1097 1098 /* 1099 * Clip a policy's min/max keybits vs. the capabilities of the 1100 * algorithm. 1101 */ 1102 static void 1103 act_alg_adjust(uint_t algtype, uint_t algid, 1104 uint16_t *minbits, uint16_t *maxbits, netstack_t *ns) 1105 { 1106 ipsec_stack_t *ipss = ns->netstack_ipsec; 1107 ipsec_alginfo_t *algp = ipss->ipsec_alglists[algtype][algid]; 1108 1109 if (algp != NULL) { 1110 /* 1111 * If passed-in minbits is zero, we assume the caller trusts 1112 * us with setting the minimum key size. We pick the 1113 * algorithms DEFAULT key size for the minimum in this case. 1114 */ 1115 if (*minbits == 0) { 1116 *minbits = algp->alg_default_bits; 1117 ASSERT(*minbits >= algp->alg_minbits); 1118 } else { 1119 *minbits = MAX(MIN(*minbits, algp->alg_maxbits), 1120 algp->alg_minbits); 1121 } 1122 if (*maxbits == 0) 1123 *maxbits = algp->alg_maxbits; 1124 else 1125 *maxbits = MIN(MAX(*maxbits, algp->alg_minbits), 1126 algp->alg_maxbits); 1127 ASSERT(*minbits <= *maxbits); 1128 } else { 1129 *minbits = 0; 1130 *maxbits = 0; 1131 } 1132 } 1133 1134 /* 1135 * Check an action's requested algorithms against the algorithms currently 1136 * loaded in the system. 1137 */ 1138 boolean_t 1139 ipsec_check_action(ipsec_act_t *act, int *diag, netstack_t *ns) 1140 { 1141 ipsec_prot_t *ipp; 1142 ipsec_stack_t *ipss = ns->netstack_ipsec; 1143 1144 ipp = &act->ipa_apply; 1145 1146 if (ipp->ipp_use_ah && 1147 ipss->ipsec_alglists[IPSEC_ALG_AUTH][ipp->ipp_auth_alg] == NULL) { 1148 *diag = SPD_DIAGNOSTIC_UNSUPP_AH_ALG; 1149 return (B_FALSE); 1150 } 1151 if (ipp->ipp_use_espa && 1152 ipss->ipsec_alglists[IPSEC_ALG_AUTH][ipp->ipp_esp_auth_alg] == 1153 NULL) { 1154 *diag = SPD_DIAGNOSTIC_UNSUPP_ESP_AUTH_ALG; 1155 return (B_FALSE); 1156 } 1157 if (ipp->ipp_use_esp && 1158 ipss->ipsec_alglists[IPSEC_ALG_ENCR][ipp->ipp_encr_alg] == NULL) { 1159 *diag = SPD_DIAGNOSTIC_UNSUPP_ESP_ENCR_ALG; 1160 return (B_FALSE); 1161 } 1162 1163 act_alg_adjust(IPSEC_ALG_AUTH, ipp->ipp_auth_alg, 1164 &ipp->ipp_ah_minbits, &ipp->ipp_ah_maxbits, ns); 1165 act_alg_adjust(IPSEC_ALG_AUTH, ipp->ipp_esp_auth_alg, 1166 &ipp->ipp_espa_minbits, &ipp->ipp_espa_maxbits, ns); 1167 act_alg_adjust(IPSEC_ALG_ENCR, ipp->ipp_encr_alg, 1168 &ipp->ipp_espe_minbits, &ipp->ipp_espe_maxbits, ns); 1169 1170 if (ipp->ipp_ah_minbits > ipp->ipp_ah_maxbits) { 1171 *diag = SPD_DIAGNOSTIC_UNSUPP_AH_KEYSIZE; 1172 return (B_FALSE); 1173 } 1174 if (ipp->ipp_espa_minbits > ipp->ipp_espa_maxbits) { 1175 *diag = SPD_DIAGNOSTIC_UNSUPP_ESP_AUTH_KEYSIZE; 1176 return (B_FALSE); 1177 } 1178 if (ipp->ipp_espe_minbits > ipp->ipp_espe_maxbits) { 1179 *diag = SPD_DIAGNOSTIC_UNSUPP_ESP_ENCR_KEYSIZE; 1180 return (B_FALSE); 1181 } 1182 /* TODO: sanity check lifetimes */ 1183 return (B_TRUE); 1184 } 1185 1186 /* 1187 * Set up a single action during wildcard expansion.. 1188 */ 1189 static void 1190 ipsec_setup_act(ipsec_act_t *outact, ipsec_act_t *act, 1191 uint_t auth_alg, uint_t encr_alg, uint_t eauth_alg, netstack_t *ns) 1192 { 1193 ipsec_prot_t *ipp; 1194 1195 *outact = *act; 1196 ipp = &outact->ipa_apply; 1197 ipp->ipp_auth_alg = (uint8_t)auth_alg; 1198 ipp->ipp_encr_alg = (uint8_t)encr_alg; 1199 ipp->ipp_esp_auth_alg = (uint8_t)eauth_alg; 1200 1201 act_alg_adjust(IPSEC_ALG_AUTH, auth_alg, 1202 &ipp->ipp_ah_minbits, &ipp->ipp_ah_maxbits, ns); 1203 act_alg_adjust(IPSEC_ALG_AUTH, eauth_alg, 1204 &ipp->ipp_espa_minbits, &ipp->ipp_espa_maxbits, ns); 1205 act_alg_adjust(IPSEC_ALG_ENCR, encr_alg, 1206 &ipp->ipp_espe_minbits, &ipp->ipp_espe_maxbits, ns); 1207 } 1208 1209 /* 1210 * combinatoric expansion time: expand a wildcarded action into an 1211 * array of wildcarded actions; we return the exploded action list, 1212 * and return a count in *nact (output only). 1213 */ 1214 static ipsec_act_t * 1215 ipsec_act_wildcard_expand(ipsec_act_t *act, uint_t *nact, netstack_t *ns) 1216 { 1217 boolean_t use_ah, use_esp, use_espa; 1218 boolean_t wild_auth, wild_encr, wild_eauth; 1219 uint_t auth_alg, auth_idx, auth_min, auth_max; 1220 uint_t eauth_alg, eauth_idx, eauth_min, eauth_max; 1221 uint_t encr_alg, encr_idx, encr_min, encr_max; 1222 uint_t action_count, ai; 1223 ipsec_act_t *outact; 1224 ipsec_stack_t *ipss = ns->netstack_ipsec; 1225 1226 if (act->ipa_type != IPSEC_ACT_APPLY) { 1227 outact = kmem_alloc(sizeof (*act), KM_NOSLEEP); 1228 *nact = 1; 1229 if (outact != NULL) 1230 bcopy(act, outact, sizeof (*act)); 1231 return (outact); 1232 } 1233 /* 1234 * compute the combinatoric explosion.. 1235 * 1236 * we assume a request for encr if esp_req is PREF_REQUIRED 1237 * we assume a request for ah auth if ah_req is PREF_REQUIRED. 1238 * we assume a request for esp auth if !ah and esp_req is PREF_REQUIRED 1239 */ 1240 1241 use_ah = act->ipa_apply.ipp_use_ah; 1242 use_esp = act->ipa_apply.ipp_use_esp; 1243 use_espa = act->ipa_apply.ipp_use_espa; 1244 auth_alg = act->ipa_apply.ipp_auth_alg; 1245 eauth_alg = act->ipa_apply.ipp_esp_auth_alg; 1246 encr_alg = act->ipa_apply.ipp_encr_alg; 1247 1248 wild_auth = use_ah && (auth_alg == 0); 1249 wild_eauth = use_espa && (eauth_alg == 0); 1250 wild_encr = use_esp && (encr_alg == 0); 1251 1252 action_count = 1; 1253 auth_min = auth_max = auth_alg; 1254 eauth_min = eauth_max = eauth_alg; 1255 encr_min = encr_max = encr_alg; 1256 1257 /* 1258 * set up for explosion.. for each dimension, expand output 1259 * size by the explosion factor. 1260 * 1261 * Don't include the "any" algorithms, if defined, as no 1262 * kernel policies should be set for these algorithms. 1263 */ 1264 1265 #define SET_EXP_MINMAX(type, wild, alg, min, max, ipss) \ 1266 if (wild) { \ 1267 int nalgs = ipss->ipsec_nalgs[type]; \ 1268 if (ipss->ipsec_alglists[type][alg] != NULL) \ 1269 nalgs--; \ 1270 action_count *= nalgs; \ 1271 min = 0; \ 1272 max = ipss->ipsec_nalgs[type] - 1; \ 1273 } 1274 1275 SET_EXP_MINMAX(IPSEC_ALG_AUTH, wild_auth, SADB_AALG_NONE, 1276 auth_min, auth_max, ipss); 1277 SET_EXP_MINMAX(IPSEC_ALG_AUTH, wild_eauth, SADB_AALG_NONE, 1278 eauth_min, eauth_max, ipss); 1279 SET_EXP_MINMAX(IPSEC_ALG_ENCR, wild_encr, SADB_EALG_NONE, 1280 encr_min, encr_max, ipss); 1281 1282 #undef SET_EXP_MINMAX 1283 1284 /* 1285 * ok, allocate the whole mess.. 1286 */ 1287 1288 outact = kmem_alloc(sizeof (*outact) * action_count, KM_NOSLEEP); 1289 if (outact == NULL) 1290 return (NULL); 1291 1292 /* 1293 * Now compute all combinations. Note that non-wildcarded 1294 * dimensions just get a single value from auth_min, while 1295 * wildcarded dimensions indirect through the sortlist. 1296 * 1297 * We do encryption outermost since, at this time, there's 1298 * greater difference in security and performance between 1299 * encryption algorithms vs. authentication algorithms. 1300 */ 1301 1302 ai = 0; 1303 1304 #define WHICH_ALG(type, wild, idx, ipss) \ 1305 ((wild)?(ipss->ipsec_sortlist[type][idx]):(idx)) 1306 1307 for (encr_idx = encr_min; encr_idx <= encr_max; encr_idx++) { 1308 encr_alg = WHICH_ALG(IPSEC_ALG_ENCR, wild_encr, encr_idx, ipss); 1309 if (wild_encr && encr_alg == SADB_EALG_NONE) 1310 continue; 1311 for (auth_idx = auth_min; auth_idx <= auth_max; auth_idx++) { 1312 auth_alg = WHICH_ALG(IPSEC_ALG_AUTH, wild_auth, 1313 auth_idx, ipss); 1314 if (wild_auth && auth_alg == SADB_AALG_NONE) 1315 continue; 1316 for (eauth_idx = eauth_min; eauth_idx <= eauth_max; 1317 eauth_idx++) { 1318 eauth_alg = WHICH_ALG(IPSEC_ALG_AUTH, 1319 wild_eauth, eauth_idx, ipss); 1320 if (wild_eauth && eauth_alg == SADB_AALG_NONE) 1321 continue; 1322 1323 ipsec_setup_act(&outact[ai], act, 1324 auth_alg, encr_alg, eauth_alg, ns); 1325 ai++; 1326 } 1327 } 1328 } 1329 1330 #undef WHICH_ALG 1331 1332 ASSERT(ai == action_count); 1333 *nact = action_count; 1334 return (outact); 1335 } 1336 1337 /* 1338 * Extract the parts of an ipsec_prot_t from an old-style ipsec_req_t. 1339 */ 1340 static void 1341 ipsec_prot_from_req(const ipsec_req_t *req, ipsec_prot_t *ipp) 1342 { 1343 bzero(ipp, sizeof (*ipp)); 1344 /* 1345 * ipp_use_* are bitfields. Look at "!!" in the following as a 1346 * "boolean canonicalization" operator. 1347 */ 1348 ipp->ipp_use_ah = !!(req->ipsr_ah_req & IPSEC_PREF_REQUIRED); 1349 ipp->ipp_use_esp = !!(req->ipsr_esp_req & IPSEC_PREF_REQUIRED); 1350 ipp->ipp_use_espa = !!(req->ipsr_esp_auth_alg); 1351 ipp->ipp_use_se = !!(req->ipsr_self_encap_req & IPSEC_PREF_REQUIRED); 1352 ipp->ipp_use_unique = !!((req->ipsr_ah_req|req->ipsr_esp_req) & 1353 IPSEC_PREF_UNIQUE); 1354 ipp->ipp_encr_alg = req->ipsr_esp_alg; 1355 /* 1356 * SADB_AALG_ANY is a placeholder to distinguish "any" from 1357 * "none" above. If auth is required, as determined above, 1358 * SADB_AALG_ANY becomes 0, which is the representation 1359 * of "any" and "none" in PF_KEY v2. 1360 */ 1361 ipp->ipp_auth_alg = (req->ipsr_auth_alg != SADB_AALG_ANY) ? 1362 req->ipsr_auth_alg : 0; 1363 ipp->ipp_esp_auth_alg = (req->ipsr_esp_auth_alg != SADB_AALG_ANY) ? 1364 req->ipsr_esp_auth_alg : 0; 1365 } 1366 1367 /* 1368 * Extract a new-style action from a request. 1369 */ 1370 void 1371 ipsec_actvec_from_req(const ipsec_req_t *req, ipsec_act_t **actp, uint_t *nactp, 1372 netstack_t *ns) 1373 { 1374 struct ipsec_act act; 1375 1376 bzero(&act, sizeof (act)); 1377 if ((req->ipsr_ah_req & IPSEC_PREF_NEVER) && 1378 (req->ipsr_esp_req & IPSEC_PREF_NEVER)) { 1379 act.ipa_type = IPSEC_ACT_BYPASS; 1380 } else { 1381 act.ipa_type = IPSEC_ACT_APPLY; 1382 ipsec_prot_from_req(req, &act.ipa_apply); 1383 } 1384 *actp = ipsec_act_wildcard_expand(&act, nactp, ns); 1385 } 1386 1387 /* 1388 * Convert a new-style "prot" back to an ipsec_req_t (more backwards compat). 1389 * We assume caller has already zero'ed *req for us. 1390 */ 1391 static int 1392 ipsec_req_from_prot(ipsec_prot_t *ipp, ipsec_req_t *req) 1393 { 1394 req->ipsr_esp_alg = ipp->ipp_encr_alg; 1395 req->ipsr_auth_alg = ipp->ipp_auth_alg; 1396 req->ipsr_esp_auth_alg = ipp->ipp_esp_auth_alg; 1397 1398 if (ipp->ipp_use_unique) { 1399 req->ipsr_ah_req |= IPSEC_PREF_UNIQUE; 1400 req->ipsr_esp_req |= IPSEC_PREF_UNIQUE; 1401 } 1402 if (ipp->ipp_use_se) 1403 req->ipsr_self_encap_req |= IPSEC_PREF_REQUIRED; 1404 if (ipp->ipp_use_ah) 1405 req->ipsr_ah_req |= IPSEC_PREF_REQUIRED; 1406 if (ipp->ipp_use_esp) 1407 req->ipsr_esp_req |= IPSEC_PREF_REQUIRED; 1408 return (sizeof (*req)); 1409 } 1410 1411 /* 1412 * Convert a new-style action back to an ipsec_req_t (more backwards compat). 1413 * We assume caller has already zero'ed *req for us. 1414 */ 1415 static int 1416 ipsec_req_from_act(ipsec_action_t *ap, ipsec_req_t *req) 1417 { 1418 switch (ap->ipa_act.ipa_type) { 1419 case IPSEC_ACT_BYPASS: 1420 req->ipsr_ah_req = IPSEC_PREF_NEVER; 1421 req->ipsr_esp_req = IPSEC_PREF_NEVER; 1422 return (sizeof (*req)); 1423 case IPSEC_ACT_APPLY: 1424 return (ipsec_req_from_prot(&ap->ipa_act.ipa_apply, req)); 1425 } 1426 return (sizeof (*req)); 1427 } 1428 1429 /* 1430 * Convert a new-style action back to an ipsec_req_t (more backwards compat). 1431 * We assume caller has already zero'ed *req for us. 1432 */ 1433 int 1434 ipsec_req_from_head(ipsec_policy_head_t *ph, ipsec_req_t *req, int af) 1435 { 1436 ipsec_policy_t *p; 1437 1438 /* 1439 * FULL-PERSOCK: consult hash table, too? 1440 */ 1441 for (p = ph->iph_root[IPSEC_INBOUND].ipr_nonhash[af]; 1442 p != NULL; 1443 p = p->ipsp_hash.hash_next) { 1444 if ((p->ipsp_sel->ipsl_key.ipsl_valid & IPSL_WILDCARD) == 0) 1445 return (ipsec_req_from_act(p->ipsp_act, req)); 1446 } 1447 return (sizeof (*req)); 1448 } 1449 1450 /* 1451 * Based on per-socket or latched policy, convert to an appropriate 1452 * IP_SEC_OPT ipsec_req_t for the socket option; return size so we can 1453 * be tail-called from ip. 1454 */ 1455 int 1456 ipsec_req_from_conn(conn_t *connp, ipsec_req_t *req, int af) 1457 { 1458 ipsec_latch_t *ipl; 1459 int rv = sizeof (ipsec_req_t); 1460 1461 bzero(req, sizeof (*req)); 1462 1463 ASSERT(MUTEX_HELD(&connp->conn_lock)); 1464 ipl = connp->conn_latch; 1465 1466 /* 1467 * Find appropriate policy. First choice is latched action; 1468 * failing that, see latched policy; failing that, 1469 * look at configured policy. 1470 */ 1471 if (ipl != NULL) { 1472 if (connp->conn_latch_in_action != NULL) { 1473 rv = ipsec_req_from_act(connp->conn_latch_in_action, 1474 req); 1475 goto done; 1476 } 1477 if (connp->conn_latch_in_policy != NULL) { 1478 rv = ipsec_req_from_act( 1479 connp->conn_latch_in_policy->ipsp_act, req); 1480 goto done; 1481 } 1482 } 1483 if (connp->conn_policy != NULL) 1484 rv = ipsec_req_from_head(connp->conn_policy, req, af); 1485 done: 1486 return (rv); 1487 } 1488 1489 void 1490 ipsec_actvec_free(ipsec_act_t *act, uint_t nact) 1491 { 1492 kmem_free(act, nact * sizeof (*act)); 1493 } 1494 1495 /* 1496 * Consumes a reference to ipsp. 1497 */ 1498 static mblk_t * 1499 ipsec_check_loopback_policy(mblk_t *data_mp, ip_recv_attr_t *ira, 1500 ipsec_policy_t *ipsp) 1501 { 1502 if (!(ira->ira_flags & IRAF_IPSEC_SECURE)) 1503 return (data_mp); 1504 1505 ASSERT(ira->ira_flags & IRAF_LOOPBACK); 1506 1507 IPPOL_REFRELE(ipsp); 1508 1509 /* 1510 * We should do an actual policy check here. Revisit this 1511 * when we revisit the IPsec API. (And pass a conn_t in when we 1512 * get there.) 1513 */ 1514 1515 return (data_mp); 1516 } 1517 1518 /* 1519 * Check that packet's inbound ports & proto match the selectors 1520 * expected by the SAs it traversed on the way in. 1521 */ 1522 static boolean_t 1523 ipsec_check_ipsecin_unique(ip_recv_attr_t *ira, const char **reason, 1524 kstat_named_t **counter, uint64_t pkt_unique, netstack_t *ns) 1525 { 1526 uint64_t ah_mask, esp_mask; 1527 ipsa_t *ah_assoc; 1528 ipsa_t *esp_assoc; 1529 ipsec_stack_t *ipss = ns->netstack_ipsec; 1530 1531 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 1532 ASSERT(!(ira->ira_flags & IRAF_LOOPBACK)); 1533 1534 ah_assoc = ira->ira_ipsec_ah_sa; 1535 esp_assoc = ira->ira_ipsec_esp_sa; 1536 ASSERT((ah_assoc != NULL) || (esp_assoc != NULL)); 1537 1538 ah_mask = (ah_assoc != NULL) ? ah_assoc->ipsa_unique_mask : 0; 1539 esp_mask = (esp_assoc != NULL) ? esp_assoc->ipsa_unique_mask : 0; 1540 1541 if ((ah_mask == 0) && (esp_mask == 0)) 1542 return (B_TRUE); 1543 1544 /* 1545 * The pkt_unique check will also check for tunnel mode on the SA 1546 * vs. the tunneled_packet boolean. "Be liberal in what you receive" 1547 * should not apply in this case. ;) 1548 */ 1549 1550 if (ah_mask != 0 && 1551 ah_assoc->ipsa_unique_id != (pkt_unique & ah_mask)) { 1552 *reason = "AH inner header mismatch"; 1553 *counter = DROPPER(ipss, ipds_spd_ah_innermismatch); 1554 return (B_FALSE); 1555 } 1556 if (esp_mask != 0 && 1557 esp_assoc->ipsa_unique_id != (pkt_unique & esp_mask)) { 1558 *reason = "ESP inner header mismatch"; 1559 *counter = DROPPER(ipss, ipds_spd_esp_innermismatch); 1560 return (B_FALSE); 1561 } 1562 return (B_TRUE); 1563 } 1564 1565 static boolean_t 1566 ipsec_check_ipsecin_action(ip_recv_attr_t *ira, mblk_t *mp, ipsec_action_t *ap, 1567 ipha_t *ipha, ip6_t *ip6h, const char **reason, kstat_named_t **counter, 1568 netstack_t *ns) 1569 { 1570 boolean_t ret = B_TRUE; 1571 ipsec_prot_t *ipp; 1572 ipsa_t *ah_assoc; 1573 ipsa_t *esp_assoc; 1574 boolean_t decaps; 1575 ipsec_stack_t *ipss = ns->netstack_ipsec; 1576 1577 ASSERT((ipha == NULL && ip6h != NULL) || 1578 (ip6h == NULL && ipha != NULL)); 1579 1580 if (ira->ira_flags & IRAF_LOOPBACK) { 1581 /* 1582 * Besides accepting pointer-equivalent actions, we also 1583 * accept any ICMP errors we generated for ourselves, 1584 * regardless of policy. If we do not wish to make this 1585 * assumption in the future, check here, and where 1586 * IXAF_TRUSTED_ICMP is initialized in ip.c and ip6.c. 1587 */ 1588 if (ap == ira->ira_ipsec_action || 1589 (ira->ira_flags & IRAF_TRUSTED_ICMP)) 1590 return (B_TRUE); 1591 1592 /* Deep compare necessary here?? */ 1593 *counter = DROPPER(ipss, ipds_spd_loopback_mismatch); 1594 *reason = "loopback policy mismatch"; 1595 return (B_FALSE); 1596 } 1597 ASSERT(!(ira->ira_flags & IRAF_TRUSTED_ICMP)); 1598 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 1599 1600 ah_assoc = ira->ira_ipsec_ah_sa; 1601 esp_assoc = ira->ira_ipsec_esp_sa; 1602 1603 decaps = (ira->ira_flags & IRAF_IPSEC_DECAPS); 1604 1605 switch (ap->ipa_act.ipa_type) { 1606 case IPSEC_ACT_DISCARD: 1607 case IPSEC_ACT_REJECT: 1608 /* Should "fail hard" */ 1609 *counter = DROPPER(ipss, ipds_spd_explicit); 1610 *reason = "blocked by policy"; 1611 return (B_FALSE); 1612 1613 case IPSEC_ACT_BYPASS: 1614 case IPSEC_ACT_CLEAR: 1615 *counter = DROPPER(ipss, ipds_spd_got_secure); 1616 *reason = "expected clear, got protected"; 1617 return (B_FALSE); 1618 1619 case IPSEC_ACT_APPLY: 1620 ipp = &ap->ipa_act.ipa_apply; 1621 /* 1622 * As of now we do the simple checks of whether 1623 * the datagram has gone through the required IPSEC 1624 * protocol constraints or not. We might have more 1625 * in the future like sensitive levels, key bits, etc. 1626 * If it fails the constraints, check whether we would 1627 * have accepted this if it had come in clear. 1628 */ 1629 if (ipp->ipp_use_ah) { 1630 if (ah_assoc == NULL) { 1631 ret = ipsec_inbound_accept_clear(mp, ipha, 1632 ip6h); 1633 *counter = DROPPER(ipss, ipds_spd_got_clear); 1634 *reason = "unprotected not accepted"; 1635 break; 1636 } 1637 ASSERT(ah_assoc != NULL); 1638 ASSERT(ipp->ipp_auth_alg != 0); 1639 1640 if (ah_assoc->ipsa_auth_alg != 1641 ipp->ipp_auth_alg) { 1642 *counter = DROPPER(ipss, ipds_spd_bad_ahalg); 1643 *reason = "unacceptable ah alg"; 1644 ret = B_FALSE; 1645 break; 1646 } 1647 } else if (ah_assoc != NULL) { 1648 /* 1649 * Don't allow this. Check IPSEC NOTE above 1650 * ip_fanout_proto(). 1651 */ 1652 *counter = DROPPER(ipss, ipds_spd_got_ah); 1653 *reason = "unexpected AH"; 1654 ret = B_FALSE; 1655 break; 1656 } 1657 if (ipp->ipp_use_esp) { 1658 if (esp_assoc == NULL) { 1659 ret = ipsec_inbound_accept_clear(mp, ipha, 1660 ip6h); 1661 *counter = DROPPER(ipss, ipds_spd_got_clear); 1662 *reason = "unprotected not accepted"; 1663 break; 1664 } 1665 ASSERT(esp_assoc != NULL); 1666 ASSERT(ipp->ipp_encr_alg != 0); 1667 1668 if (esp_assoc->ipsa_encr_alg != 1669 ipp->ipp_encr_alg) { 1670 *counter = DROPPER(ipss, ipds_spd_bad_espealg); 1671 *reason = "unacceptable esp alg"; 1672 ret = B_FALSE; 1673 break; 1674 } 1675 /* 1676 * If the client does not need authentication, 1677 * we don't verify the alogrithm. 1678 */ 1679 if (ipp->ipp_use_espa) { 1680 if (esp_assoc->ipsa_auth_alg != 1681 ipp->ipp_esp_auth_alg) { 1682 *counter = DROPPER(ipss, 1683 ipds_spd_bad_espaalg); 1684 *reason = "unacceptable esp auth alg"; 1685 ret = B_FALSE; 1686 break; 1687 } 1688 } 1689 } else if (esp_assoc != NULL) { 1690 /* 1691 * Don't allow this. Check IPSEC NOTE above 1692 * ip_fanout_proto(). 1693 */ 1694 *counter = DROPPER(ipss, ipds_spd_got_esp); 1695 *reason = "unexpected ESP"; 1696 ret = B_FALSE; 1697 break; 1698 } 1699 if (ipp->ipp_use_se) { 1700 if (!decaps) { 1701 ret = ipsec_inbound_accept_clear(mp, ipha, 1702 ip6h); 1703 if (!ret) { 1704 /* XXX mutant? */ 1705 *counter = DROPPER(ipss, 1706 ipds_spd_bad_selfencap); 1707 *reason = "self encap not found"; 1708 break; 1709 } 1710 } 1711 } else if (decaps) { 1712 /* 1713 * XXX If the packet comes in tunneled and the 1714 * recipient does not expect it to be tunneled, it 1715 * is okay. But we drop to be consistent with the 1716 * other cases. 1717 */ 1718 *counter = DROPPER(ipss, ipds_spd_got_selfencap); 1719 *reason = "unexpected self encap"; 1720 ret = B_FALSE; 1721 break; 1722 } 1723 if (ira->ira_ipsec_action != NULL) { 1724 /* 1725 * This can happen if we do a double policy-check on 1726 * a packet 1727 * XXX XXX should fix this case! 1728 */ 1729 IPACT_REFRELE(ira->ira_ipsec_action); 1730 } 1731 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 1732 ASSERT(ira->ira_ipsec_action == NULL); 1733 IPACT_REFHOLD(ap); 1734 ira->ira_ipsec_action = ap; 1735 break; /* from switch */ 1736 } 1737 return (ret); 1738 } 1739 1740 static boolean_t 1741 spd_match_inbound_ids(ipsec_latch_t *ipl, ipsa_t *sa) 1742 { 1743 ASSERT(ipl->ipl_ids_latched == B_TRUE); 1744 return ipsid_equal(ipl->ipl_remote_cid, sa->ipsa_src_cid) && 1745 ipsid_equal(ipl->ipl_local_cid, sa->ipsa_dst_cid); 1746 } 1747 1748 /* 1749 * Takes a latched conn and an inbound packet and returns a unique_id suitable 1750 * for SA comparisons. Most of the time we will copy from the conn_t, but 1751 * there are cases when the conn_t is latched but it has wildcard selectors, 1752 * and then we need to fallback to scooping them out of the packet. 1753 * 1754 * Assume we'll never have 0 with a conn_t present, so use 0 as a failure. We 1755 * can get away with this because we only have non-zero ports/proto for 1756 * latched conn_ts. 1757 * 1758 * Ideal candidate for an "inline" keyword, as we're JUST convoluted enough 1759 * to not be a nice macro. 1760 */ 1761 static uint64_t 1762 conn_to_unique(conn_t *connp, mblk_t *data_mp, ipha_t *ipha, ip6_t *ip6h) 1763 { 1764 ipsec_selector_t sel; 1765 uint8_t ulp = connp->conn_proto; 1766 1767 ASSERT(connp->conn_latch_in_policy != NULL); 1768 1769 if ((ulp == IPPROTO_TCP || ulp == IPPROTO_UDP || ulp == IPPROTO_SCTP) && 1770 (connp->conn_fport == 0 || connp->conn_lport == 0)) { 1771 /* Slow path - we gotta grab from the packet. */ 1772 if (ipsec_init_inbound_sel(&sel, data_mp, ipha, ip6h, 1773 SEL_NONE) != SELRET_SUCCESS) { 1774 /* Failure -> have caller free packet with ENOMEM. */ 1775 return (0); 1776 } 1777 return (SA_UNIQUE_ID(sel.ips_remote_port, sel.ips_local_port, 1778 sel.ips_protocol, 0)); 1779 } 1780 1781 #ifdef DEBUG_NOT_UNTIL_6478464 1782 if (ipsec_init_inbound_sel(&sel, data_mp, ipha, ip6h, SEL_NONE) == 1783 SELRET_SUCCESS) { 1784 ASSERT(sel.ips_local_port == connp->conn_lport); 1785 ASSERT(sel.ips_remote_port == connp->conn_fport); 1786 ASSERT(sel.ips_protocol == connp->conn_proto); 1787 } 1788 ASSERT(connp->conn_proto != 0); 1789 #endif 1790 1791 return (SA_UNIQUE_ID(connp->conn_fport, connp->conn_lport, ulp, 0)); 1792 } 1793 1794 /* 1795 * Called to check policy on a latched connection. 1796 * Note that we don't dereference conn_latch or conn_ihere since the conn might 1797 * be closing. The caller passes a held ipsec_latch_t instead. 1798 */ 1799 static boolean_t 1800 ipsec_check_ipsecin_latch(ip_recv_attr_t *ira, mblk_t *mp, ipsec_latch_t *ipl, 1801 ipsec_action_t *ap, ipha_t *ipha, ip6_t *ip6h, const char **reason, 1802 kstat_named_t **counter, conn_t *connp, netstack_t *ns) 1803 { 1804 ipsec_stack_t *ipss = ns->netstack_ipsec; 1805 1806 ASSERT(ipl->ipl_ids_latched == B_TRUE); 1807 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 1808 1809 if (!(ira->ira_flags & IRAF_LOOPBACK)) { 1810 /* 1811 * Over loopback, there aren't real security associations, 1812 * so there are neither identities nor "unique" values 1813 * for us to check the packet against. 1814 */ 1815 if (ira->ira_ipsec_ah_sa != NULL) { 1816 if (!spd_match_inbound_ids(ipl, 1817 ira->ira_ipsec_ah_sa)) { 1818 *counter = DROPPER(ipss, ipds_spd_ah_badid); 1819 *reason = "AH identity mismatch"; 1820 return (B_FALSE); 1821 } 1822 } 1823 1824 if (ira->ira_ipsec_esp_sa != NULL) { 1825 if (!spd_match_inbound_ids(ipl, 1826 ira->ira_ipsec_esp_sa)) { 1827 *counter = DROPPER(ipss, ipds_spd_esp_badid); 1828 *reason = "ESP identity mismatch"; 1829 return (B_FALSE); 1830 } 1831 } 1832 1833 /* 1834 * Can fudge pkt_unique from connp because we're latched. 1835 * In DEBUG kernels (see conn_to_unique()'s implementation), 1836 * verify this even if it REALLY slows things down. 1837 */ 1838 if (!ipsec_check_ipsecin_unique(ira, reason, counter, 1839 conn_to_unique(connp, mp, ipha, ip6h), ns)) { 1840 return (B_FALSE); 1841 } 1842 } 1843 return (ipsec_check_ipsecin_action(ira, mp, ap, ipha, ip6h, reason, 1844 counter, ns)); 1845 } 1846 1847 /* 1848 * Check to see whether this secured datagram meets the policy 1849 * constraints specified in ipsp. 1850 * 1851 * Called from ipsec_check_global_policy, and ipsec_check_inbound_policy. 1852 * 1853 * Consumes a reference to ipsp. 1854 * Returns the mblk if ok. 1855 */ 1856 static mblk_t * 1857 ipsec_check_ipsecin_policy(mblk_t *data_mp, ipsec_policy_t *ipsp, 1858 ipha_t *ipha, ip6_t *ip6h, uint64_t pkt_unique, ip_recv_attr_t *ira, 1859 netstack_t *ns) 1860 { 1861 ipsec_action_t *ap; 1862 const char *reason = "no policy actions found"; 1863 ip_stack_t *ipst = ns->netstack_ip; 1864 ipsec_stack_t *ipss = ns->netstack_ipsec; 1865 kstat_named_t *counter; 1866 1867 counter = DROPPER(ipss, ipds_spd_got_secure); 1868 1869 ASSERT(ipsp != NULL); 1870 1871 ASSERT((ipha == NULL && ip6h != NULL) || 1872 (ip6h == NULL && ipha != NULL)); 1873 1874 if (ira->ira_flags & IRAF_LOOPBACK) 1875 return (ipsec_check_loopback_policy(data_mp, ira, ipsp)); 1876 1877 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 1878 1879 if (ira->ira_ipsec_action != NULL) { 1880 /* 1881 * this can happen if we do a double policy-check on a packet 1882 * Would be nice to be able to delete this test.. 1883 */ 1884 IPACT_REFRELE(ira->ira_ipsec_action); 1885 } 1886 ASSERT(ira->ira_ipsec_action == NULL); 1887 1888 if (!SA_IDS_MATCH(ira->ira_ipsec_ah_sa, ira->ira_ipsec_esp_sa)) { 1889 reason = "inbound AH and ESP identities differ"; 1890 counter = DROPPER(ipss, ipds_spd_ahesp_diffid); 1891 goto drop; 1892 } 1893 1894 if (!ipsec_check_ipsecin_unique(ira, &reason, &counter, pkt_unique, 1895 ns)) 1896 goto drop; 1897 1898 /* 1899 * Ok, now loop through the possible actions and see if any 1900 * of them work for us. 1901 */ 1902 1903 for (ap = ipsp->ipsp_act; ap != NULL; ap = ap->ipa_next) { 1904 if (ipsec_check_ipsecin_action(ira, data_mp, ap, 1905 ipha, ip6h, &reason, &counter, ns)) { 1906 BUMP_MIB(&ipst->ips_ip_mib, ipsecInSucceeded); 1907 IPPOL_REFRELE(ipsp); 1908 return (data_mp); 1909 } 1910 } 1911 drop: 1912 ipsec_rl_strlog(ns, IP_MOD_ID, 0, 0, SL_ERROR|SL_WARN|SL_CONSOLE, 1913 "ipsec inbound policy mismatch: %s, packet dropped\n", 1914 reason); 1915 IPPOL_REFRELE(ipsp); 1916 ASSERT(ira->ira_ipsec_action == NULL); 1917 BUMP_MIB(&ipst->ips_ip_mib, ipsecInFailed); 1918 ip_drop_packet(data_mp, B_TRUE, NULL, counter, 1919 &ipss->ipsec_spd_dropper); 1920 return (NULL); 1921 } 1922 1923 /* 1924 * sleazy prefix-length-based compare. 1925 * another inlining candidate.. 1926 */ 1927 boolean_t 1928 ip_addr_match(uint8_t *addr1, int pfxlen, in6_addr_t *addr2p) 1929 { 1930 int offset = pfxlen>>3; 1931 int bitsleft = pfxlen & 7; 1932 uint8_t *addr2 = (uint8_t *)addr2p; 1933 1934 /* 1935 * and there was much evil.. 1936 * XXX should inline-expand the bcmp here and do this 32 bits 1937 * or 64 bits at a time.. 1938 */ 1939 return ((bcmp(addr1, addr2, offset) == 0) && 1940 ((bitsleft == 0) || 1941 (((addr1[offset] ^ addr2[offset]) & (0xff<<(8-bitsleft))) == 0))); 1942 } 1943 1944 static ipsec_policy_t * 1945 ipsec_find_policy_chain(ipsec_policy_t *best, ipsec_policy_t *chain, 1946 ipsec_selector_t *sel, boolean_t is_icmp_inv_acq) 1947 { 1948 ipsec_selkey_t *isel; 1949 ipsec_policy_t *p; 1950 int bpri = best ? best->ipsp_prio : 0; 1951 1952 for (p = chain; p != NULL; p = p->ipsp_hash.hash_next) { 1953 uint32_t valid; 1954 1955 if (p->ipsp_prio <= bpri) 1956 continue; 1957 isel = &p->ipsp_sel->ipsl_key; 1958 valid = isel->ipsl_valid; 1959 1960 if ((valid & IPSL_PROTOCOL) && 1961 (isel->ipsl_proto != sel->ips_protocol)) 1962 continue; 1963 1964 if ((valid & IPSL_REMOTE_ADDR) && 1965 !ip_addr_match((uint8_t *)&isel->ipsl_remote, 1966 isel->ipsl_remote_pfxlen, &sel->ips_remote_addr_v6)) 1967 continue; 1968 1969 if ((valid & IPSL_LOCAL_ADDR) && 1970 !ip_addr_match((uint8_t *)&isel->ipsl_local, 1971 isel->ipsl_local_pfxlen, &sel->ips_local_addr_v6)) 1972 continue; 1973 1974 if ((valid & IPSL_REMOTE_PORT) && 1975 isel->ipsl_rport != sel->ips_remote_port) 1976 continue; 1977 1978 if ((valid & IPSL_LOCAL_PORT) && 1979 isel->ipsl_lport != sel->ips_local_port) 1980 continue; 1981 1982 if (!is_icmp_inv_acq) { 1983 if ((valid & IPSL_ICMP_TYPE) && 1984 (isel->ipsl_icmp_type > sel->ips_icmp_type || 1985 isel->ipsl_icmp_type_end < sel->ips_icmp_type)) { 1986 continue; 1987 } 1988 1989 if ((valid & IPSL_ICMP_CODE) && 1990 (isel->ipsl_icmp_code > sel->ips_icmp_code || 1991 isel->ipsl_icmp_code_end < 1992 sel->ips_icmp_code)) { 1993 continue; 1994 } 1995 } else { 1996 /* 1997 * special case for icmp inverse acquire 1998 * we only want policies that aren't drop/pass 1999 */ 2000 if (p->ipsp_act->ipa_act.ipa_type != IPSEC_ACT_APPLY) 2001 continue; 2002 } 2003 2004 /* we matched all the packet-port-field selectors! */ 2005 best = p; 2006 bpri = p->ipsp_prio; 2007 } 2008 2009 return (best); 2010 } 2011 2012 /* 2013 * Try to find and return the best policy entry under a given policy 2014 * root for a given set of selectors; the first parameter "best" is 2015 * the current best policy so far. If "best" is non-null, we have a 2016 * reference to it. We return a reference to a policy; if that policy 2017 * is not the original "best", we need to release that reference 2018 * before returning. 2019 */ 2020 ipsec_policy_t * 2021 ipsec_find_policy_head(ipsec_policy_t *best, ipsec_policy_head_t *head, 2022 int direction, ipsec_selector_t *sel) 2023 { 2024 ipsec_policy_t *curbest; 2025 ipsec_policy_root_t *root; 2026 uint8_t is_icmp_inv_acq = sel->ips_is_icmp_inv_acq; 2027 int af = sel->ips_isv4 ? IPSEC_AF_V4 : IPSEC_AF_V6; 2028 2029 curbest = best; 2030 root = &head->iph_root[direction]; 2031 2032 #ifdef DEBUG 2033 if (is_icmp_inv_acq) { 2034 if (sel->ips_isv4) { 2035 if (sel->ips_protocol != IPPROTO_ICMP) { 2036 cmn_err(CE_WARN, "ipsec_find_policy_head:" 2037 " expecting icmp, got %d", 2038 sel->ips_protocol); 2039 } 2040 } else { 2041 if (sel->ips_protocol != IPPROTO_ICMPV6) { 2042 cmn_err(CE_WARN, "ipsec_find_policy_head:" 2043 " expecting icmpv6, got %d", 2044 sel->ips_protocol); 2045 } 2046 } 2047 } 2048 #endif 2049 2050 rw_enter(&head->iph_lock, RW_READER); 2051 2052 if (root->ipr_nchains > 0) { 2053 curbest = ipsec_find_policy_chain(curbest, 2054 root->ipr_hash[selector_hash(sel, root)].hash_head, sel, 2055 is_icmp_inv_acq); 2056 } 2057 curbest = ipsec_find_policy_chain(curbest, root->ipr_nonhash[af], sel, 2058 is_icmp_inv_acq); 2059 2060 /* 2061 * Adjust reference counts if we found anything new. 2062 */ 2063 if (curbest != best) { 2064 ASSERT(curbest != NULL); 2065 IPPOL_REFHOLD(curbest); 2066 2067 if (best != NULL) { 2068 IPPOL_REFRELE(best); 2069 } 2070 } 2071 2072 rw_exit(&head->iph_lock); 2073 2074 return (curbest); 2075 } 2076 2077 /* 2078 * Find the best system policy (either global or per-interface) which 2079 * applies to the given selector; look in all the relevant policy roots 2080 * to figure out which policy wins. 2081 * 2082 * Returns a reference to a policy; caller must release this 2083 * reference when done. 2084 */ 2085 ipsec_policy_t * 2086 ipsec_find_policy(int direction, const conn_t *connp, ipsec_selector_t *sel, 2087 netstack_t *ns) 2088 { 2089 ipsec_policy_t *p; 2090 ipsec_stack_t *ipss = ns->netstack_ipsec; 2091 2092 p = ipsec_find_policy_head(NULL, &ipss->ipsec_system_policy, 2093 direction, sel); 2094 if ((connp != NULL) && (connp->conn_policy != NULL)) { 2095 p = ipsec_find_policy_head(p, connp->conn_policy, 2096 direction, sel); 2097 } 2098 2099 return (p); 2100 } 2101 2102 /* 2103 * Check with global policy and see whether this inbound 2104 * packet meets the policy constraints. 2105 * 2106 * Locate appropriate policy from global policy, supplemented by the 2107 * conn's configured and/or cached policy if the conn is supplied. 2108 * 2109 * Dispatch to ipsec_check_ipsecin_policy if we have policy and an 2110 * encrypted packet to see if they match. 2111 * 2112 * Otherwise, see if the policy allows cleartext; if not, drop it on the 2113 * floor. 2114 */ 2115 mblk_t * 2116 ipsec_check_global_policy(mblk_t *data_mp, conn_t *connp, 2117 ipha_t *ipha, ip6_t *ip6h, ip_recv_attr_t *ira, netstack_t *ns) 2118 { 2119 ipsec_policy_t *p; 2120 ipsec_selector_t sel; 2121 boolean_t policy_present; 2122 kstat_named_t *counter; 2123 uint64_t pkt_unique; 2124 ip_stack_t *ipst = ns->netstack_ip; 2125 ipsec_stack_t *ipss = ns->netstack_ipsec; 2126 2127 sel.ips_is_icmp_inv_acq = 0; 2128 2129 ASSERT((ipha == NULL && ip6h != NULL) || 2130 (ip6h == NULL && ipha != NULL)); 2131 2132 if (ipha != NULL) 2133 policy_present = ipss->ipsec_inbound_v4_policy_present; 2134 else 2135 policy_present = ipss->ipsec_inbound_v6_policy_present; 2136 2137 if (!policy_present && connp == NULL) { 2138 /* 2139 * No global policy and no per-socket policy; 2140 * just pass it back (but we shouldn't get here in that case) 2141 */ 2142 return (data_mp); 2143 } 2144 2145 /* 2146 * If we have cached policy, use it. 2147 * Otherwise consult system policy. 2148 */ 2149 if ((connp != NULL) && (connp->conn_latch != NULL)) { 2150 p = connp->conn_latch_in_policy; 2151 if (p != NULL) { 2152 IPPOL_REFHOLD(p); 2153 } 2154 /* 2155 * Fudge sel for UNIQUE_ID setting below. 2156 */ 2157 pkt_unique = conn_to_unique(connp, data_mp, ipha, ip6h); 2158 } else { 2159 /* Initialize the ports in the selector */ 2160 if (ipsec_init_inbound_sel(&sel, data_mp, ipha, ip6h, 2161 SEL_NONE) == SELRET_NOMEM) { 2162 /* 2163 * Technically not a policy mismatch, but it is 2164 * an internal failure. 2165 */ 2166 ipsec_log_policy_failure(IPSEC_POLICY_MISMATCH, 2167 "ipsec_init_inbound_sel", ipha, ip6h, B_TRUE, ns); 2168 counter = DROPPER(ipss, ipds_spd_nomem); 2169 goto fail; 2170 } 2171 2172 /* 2173 * Find the policy which best applies. 2174 * 2175 * If we find global policy, we should look at both 2176 * local policy and global policy and see which is 2177 * stronger and match accordingly. 2178 * 2179 * If we don't find a global policy, check with 2180 * local policy alone. 2181 */ 2182 2183 p = ipsec_find_policy(IPSEC_TYPE_INBOUND, connp, &sel, ns); 2184 pkt_unique = SA_UNIQUE_ID(sel.ips_remote_port, 2185 sel.ips_local_port, sel.ips_protocol, 0); 2186 } 2187 2188 if (p == NULL) { 2189 if (!(ira->ira_flags & IRAF_IPSEC_SECURE)) { 2190 /* 2191 * We have no policy; default to succeeding. 2192 * XXX paranoid system design doesn't do this. 2193 */ 2194 BUMP_MIB(&ipst->ips_ip_mib, ipsecInSucceeded); 2195 return (data_mp); 2196 } else { 2197 counter = DROPPER(ipss, ipds_spd_got_secure); 2198 ipsec_log_policy_failure(IPSEC_POLICY_NOT_NEEDED, 2199 "ipsec_check_global_policy", ipha, ip6h, B_TRUE, 2200 ns); 2201 goto fail; 2202 } 2203 } 2204 if (ira->ira_flags & IRAF_IPSEC_SECURE) { 2205 return (ipsec_check_ipsecin_policy(data_mp, p, ipha, ip6h, 2206 pkt_unique, ira, ns)); 2207 } 2208 if (p->ipsp_act->ipa_allow_clear) { 2209 BUMP_MIB(&ipst->ips_ip_mib, ipsecInSucceeded); 2210 IPPOL_REFRELE(p); 2211 return (data_mp); 2212 } 2213 IPPOL_REFRELE(p); 2214 /* 2215 * If we reach here, we will drop the packet because it failed the 2216 * global policy check because the packet was cleartext, and it 2217 * should not have been. 2218 */ 2219 ipsec_log_policy_failure(IPSEC_POLICY_MISMATCH, 2220 "ipsec_check_global_policy", ipha, ip6h, B_FALSE, ns); 2221 counter = DROPPER(ipss, ipds_spd_got_clear); 2222 2223 fail: 2224 ip_drop_packet(data_mp, B_TRUE, NULL, counter, 2225 &ipss->ipsec_spd_dropper); 2226 BUMP_MIB(&ipst->ips_ip_mib, ipsecInFailed); 2227 return (NULL); 2228 } 2229 2230 /* 2231 * We check whether an inbound datagram is a valid one 2232 * to accept in clear. If it is secure, it is the job 2233 * of IPSEC to log information appropriately if it 2234 * suspects that it may not be the real one. 2235 * 2236 * It is called only while fanning out to the ULP 2237 * where ULP accepts only secure data and the incoming 2238 * is clear. Usually we never accept clear datagrams in 2239 * such cases. ICMP is the only exception. 2240 * 2241 * NOTE : We don't call this function if the client (ULP) 2242 * is willing to accept things in clear. 2243 */ 2244 boolean_t 2245 ipsec_inbound_accept_clear(mblk_t *mp, ipha_t *ipha, ip6_t *ip6h) 2246 { 2247 ushort_t iph_hdr_length; 2248 icmph_t *icmph; 2249 icmp6_t *icmp6; 2250 uint8_t *nexthdrp; 2251 2252 ASSERT((ipha != NULL && ip6h == NULL) || 2253 (ipha == NULL && ip6h != NULL)); 2254 2255 if (ip6h != NULL) { 2256 iph_hdr_length = ip_hdr_length_v6(mp, ip6h); 2257 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &iph_hdr_length, 2258 &nexthdrp)) { 2259 return (B_FALSE); 2260 } 2261 if (*nexthdrp != IPPROTO_ICMPV6) 2262 return (B_FALSE); 2263 icmp6 = (icmp6_t *)(&mp->b_rptr[iph_hdr_length]); 2264 /* Match IPv6 ICMP policy as closely as IPv4 as possible. */ 2265 switch (icmp6->icmp6_type) { 2266 case ICMP6_PARAM_PROB: 2267 /* Corresponds to port/proto unreach in IPv4. */ 2268 case ICMP6_ECHO_REQUEST: 2269 /* Just like IPv4. */ 2270 return (B_FALSE); 2271 2272 case MLD_LISTENER_QUERY: 2273 case MLD_LISTENER_REPORT: 2274 case MLD_LISTENER_REDUCTION: 2275 /* 2276 * XXX Seperate NDD in IPv4 what about here? 2277 * Plus, mcast is important to ND. 2278 */ 2279 case ICMP6_DST_UNREACH: 2280 /* Corresponds to HOST/NET unreachable in IPv4. */ 2281 case ICMP6_PACKET_TOO_BIG: 2282 case ICMP6_ECHO_REPLY: 2283 /* These are trusted in IPv4. */ 2284 case ND_ROUTER_SOLICIT: 2285 case ND_ROUTER_ADVERT: 2286 case ND_NEIGHBOR_SOLICIT: 2287 case ND_NEIGHBOR_ADVERT: 2288 case ND_REDIRECT: 2289 /* Trust ND messages for now. */ 2290 case ICMP6_TIME_EXCEEDED: 2291 default: 2292 return (B_TRUE); 2293 } 2294 } else { 2295 /* 2296 * If it is not ICMP, fail this request. 2297 */ 2298 if (ipha->ipha_protocol != IPPROTO_ICMP) { 2299 #ifdef FRAGCACHE_DEBUG 2300 cmn_err(CE_WARN, "Dropping - ipha_proto = %d\n", 2301 ipha->ipha_protocol); 2302 #endif 2303 return (B_FALSE); 2304 } 2305 iph_hdr_length = IPH_HDR_LENGTH(ipha); 2306 icmph = (icmph_t *)&mp->b_rptr[iph_hdr_length]; 2307 /* 2308 * It is an insecure icmp message. Check to see whether we are 2309 * willing to accept this one. 2310 */ 2311 2312 switch (icmph->icmph_type) { 2313 case ICMP_ECHO_REPLY: 2314 case ICMP_TIME_STAMP_REPLY: 2315 case ICMP_INFO_REPLY: 2316 case ICMP_ROUTER_ADVERTISEMENT: 2317 /* 2318 * We should not encourage clear replies if this 2319 * client expects secure. If somebody is replying 2320 * in clear some mailicious user watching both the 2321 * request and reply, can do chosen-plain-text attacks. 2322 * With global policy we might be just expecting secure 2323 * but sending out clear. We don't know what the right 2324 * thing is. We can't do much here as we can't control 2325 * the sender here. Till we are sure of what to do, 2326 * accept them. 2327 */ 2328 return (B_TRUE); 2329 case ICMP_ECHO_REQUEST: 2330 case ICMP_TIME_STAMP_REQUEST: 2331 case ICMP_INFO_REQUEST: 2332 case ICMP_ADDRESS_MASK_REQUEST: 2333 case ICMP_ROUTER_SOLICITATION: 2334 case ICMP_ADDRESS_MASK_REPLY: 2335 /* 2336 * Don't accept this as somebody could be sending 2337 * us plain text to get encrypted data. If we reply, 2338 * it will lead to chosen plain text attack. 2339 */ 2340 return (B_FALSE); 2341 case ICMP_DEST_UNREACHABLE: 2342 switch (icmph->icmph_code) { 2343 case ICMP_FRAGMENTATION_NEEDED: 2344 /* 2345 * Be in sync with icmp_inbound, where we have 2346 * already set dce_pmtu 2347 */ 2348 #ifdef FRAGCACHE_DEBUG 2349 cmn_err(CE_WARN, "ICMP frag needed\n"); 2350 #endif 2351 return (B_TRUE); 2352 case ICMP_HOST_UNREACHABLE: 2353 case ICMP_NET_UNREACHABLE: 2354 /* 2355 * By accepting, we could reset a connection. 2356 * How do we solve the problem of some 2357 * intermediate router sending in-secure ICMP 2358 * messages ? 2359 */ 2360 return (B_TRUE); 2361 case ICMP_PORT_UNREACHABLE: 2362 case ICMP_PROTOCOL_UNREACHABLE: 2363 default : 2364 return (B_FALSE); 2365 } 2366 case ICMP_SOURCE_QUENCH: 2367 /* 2368 * If this is an attack, TCP will slow start 2369 * because of this. Is it very harmful ? 2370 */ 2371 return (B_TRUE); 2372 case ICMP_PARAM_PROBLEM: 2373 return (B_FALSE); 2374 case ICMP_TIME_EXCEEDED: 2375 return (B_TRUE); 2376 case ICMP_REDIRECT: 2377 return (B_FALSE); 2378 default : 2379 return (B_FALSE); 2380 } 2381 } 2382 } 2383 2384 void 2385 ipsec_latch_ids(ipsec_latch_t *ipl, ipsid_t *local, ipsid_t *remote) 2386 { 2387 mutex_enter(&ipl->ipl_lock); 2388 2389 if (ipl->ipl_ids_latched) { 2390 /* I lost, someone else got here before me */ 2391 mutex_exit(&ipl->ipl_lock); 2392 return; 2393 } 2394 2395 if (local != NULL) 2396 IPSID_REFHOLD(local); 2397 if (remote != NULL) 2398 IPSID_REFHOLD(remote); 2399 2400 ipl->ipl_local_cid = local; 2401 ipl->ipl_remote_cid = remote; 2402 ipl->ipl_ids_latched = B_TRUE; 2403 mutex_exit(&ipl->ipl_lock); 2404 } 2405 2406 void 2407 ipsec_latch_inbound(conn_t *connp, ip_recv_attr_t *ira) 2408 { 2409 ipsa_t *sa; 2410 ipsec_latch_t *ipl = connp->conn_latch; 2411 2412 if (!ipl->ipl_ids_latched) { 2413 ipsid_t *local = NULL; 2414 ipsid_t *remote = NULL; 2415 2416 if (!(ira->ira_flags & IRAF_LOOPBACK)) { 2417 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 2418 if (ira->ira_ipsec_esp_sa != NULL) 2419 sa = ira->ira_ipsec_esp_sa; 2420 else 2421 sa = ira->ira_ipsec_ah_sa; 2422 ASSERT(sa != NULL); 2423 local = sa->ipsa_dst_cid; 2424 remote = sa->ipsa_src_cid; 2425 } 2426 ipsec_latch_ids(ipl, local, remote); 2427 } 2428 if (ira->ira_flags & IRAF_IPSEC_SECURE) { 2429 if (connp->conn_latch_in_action != NULL) { 2430 /* 2431 * Previously cached action. This is probably 2432 * harmless, but in DEBUG kernels, check for 2433 * action equality. 2434 * 2435 * Preserve the existing action to preserve latch 2436 * invariance. 2437 */ 2438 ASSERT(connp->conn_latch_in_action == 2439 ira->ira_ipsec_action); 2440 return; 2441 } 2442 connp->conn_latch_in_action = ira->ira_ipsec_action; 2443 IPACT_REFHOLD(connp->conn_latch_in_action); 2444 } 2445 } 2446 2447 /* 2448 * Check whether the policy constraints are met either for an 2449 * inbound datagram; called from IP in numerous places. 2450 * 2451 * Note that this is not a chokepoint for inbound policy checks; 2452 * see also ipsec_check_ipsecin_latch() and ipsec_check_global_policy() 2453 */ 2454 mblk_t * 2455 ipsec_check_inbound_policy(mblk_t *mp, conn_t *connp, 2456 ipha_t *ipha, ip6_t *ip6h, ip_recv_attr_t *ira) 2457 { 2458 boolean_t ret; 2459 ipsec_latch_t *ipl; 2460 ipsec_action_t *ap; 2461 uint64_t unique_id; 2462 ipsec_stack_t *ipss; 2463 ip_stack_t *ipst; 2464 netstack_t *ns; 2465 ipsec_policy_head_t *policy_head; 2466 ipsec_policy_t *p = NULL; 2467 2468 ASSERT(connp != NULL); 2469 ns = connp->conn_netstack; 2470 ipss = ns->netstack_ipsec; 2471 ipst = ns->netstack_ip; 2472 2473 if (!(ira->ira_flags & IRAF_IPSEC_SECURE)) { 2474 /* 2475 * This is the case where the incoming datagram is 2476 * cleartext and we need to see whether this client 2477 * would like to receive such untrustworthy things from 2478 * the wire. 2479 */ 2480 ASSERT(mp != NULL); 2481 2482 mutex_enter(&connp->conn_lock); 2483 if (connp->conn_state_flags & CONN_CONDEMNED) { 2484 mutex_exit(&connp->conn_lock); 2485 ip_drop_packet(mp, B_TRUE, NULL, 2486 DROPPER(ipss, ipds_spd_got_clear), 2487 &ipss->ipsec_spd_dropper); 2488 BUMP_MIB(&ipst->ips_ip_mib, ipsecInFailed); 2489 return (NULL); 2490 } 2491 if (connp->conn_latch != NULL) { 2492 /* Hold a reference in case the conn is closing */ 2493 p = connp->conn_latch_in_policy; 2494 if (p != NULL) 2495 IPPOL_REFHOLD(p); 2496 mutex_exit(&connp->conn_lock); 2497 /* 2498 * Policy is cached in the conn. 2499 */ 2500 if (p != NULL && !p->ipsp_act->ipa_allow_clear) { 2501 ret = ipsec_inbound_accept_clear(mp, 2502 ipha, ip6h); 2503 if (ret) { 2504 BUMP_MIB(&ipst->ips_ip_mib, 2505 ipsecInSucceeded); 2506 IPPOL_REFRELE(p); 2507 return (mp); 2508 } else { 2509 ipsec_log_policy_failure( 2510 IPSEC_POLICY_MISMATCH, 2511 "ipsec_check_inbound_policy", ipha, 2512 ip6h, B_FALSE, ns); 2513 ip_drop_packet(mp, B_TRUE, NULL, 2514 DROPPER(ipss, ipds_spd_got_clear), 2515 &ipss->ipsec_spd_dropper); 2516 BUMP_MIB(&ipst->ips_ip_mib, 2517 ipsecInFailed); 2518 IPPOL_REFRELE(p); 2519 return (NULL); 2520 } 2521 } else { 2522 BUMP_MIB(&ipst->ips_ip_mib, ipsecInSucceeded); 2523 if (p != NULL) 2524 IPPOL_REFRELE(p); 2525 return (mp); 2526 } 2527 } else { 2528 policy_head = connp->conn_policy; 2529 2530 /* Hold a reference in case the conn is closing */ 2531 if (policy_head != NULL) 2532 IPPH_REFHOLD(policy_head); 2533 mutex_exit(&connp->conn_lock); 2534 /* 2535 * As this is a non-hardbound connection we need 2536 * to look at both per-socket policy and global 2537 * policy. 2538 */ 2539 mp = ipsec_check_global_policy(mp, connp, 2540 ipha, ip6h, ira, ns); 2541 if (policy_head != NULL) 2542 IPPH_REFRELE(policy_head, ns); 2543 return (mp); 2544 } 2545 } 2546 2547 mutex_enter(&connp->conn_lock); 2548 /* Connection is closing */ 2549 if (connp->conn_state_flags & CONN_CONDEMNED) { 2550 mutex_exit(&connp->conn_lock); 2551 ip_drop_packet(mp, B_TRUE, NULL, 2552 DROPPER(ipss, ipds_spd_got_clear), 2553 &ipss->ipsec_spd_dropper); 2554 BUMP_MIB(&ipst->ips_ip_mib, ipsecInFailed); 2555 return (NULL); 2556 } 2557 2558 /* 2559 * Once a connection is latched it remains so for life, the conn_latch 2560 * pointer on the conn has not changed, simply initializing ipl here 2561 * as the earlier initialization was done only in the cleartext case. 2562 */ 2563 if ((ipl = connp->conn_latch) == NULL) { 2564 mblk_t *retmp; 2565 policy_head = connp->conn_policy; 2566 2567 /* Hold a reference in case the conn is closing */ 2568 if (policy_head != NULL) 2569 IPPH_REFHOLD(policy_head); 2570 mutex_exit(&connp->conn_lock); 2571 /* 2572 * We don't have policies cached in the conn 2573 * for this stream. So, look at the global 2574 * policy. It will check against conn or global 2575 * depending on whichever is stronger. 2576 */ 2577 retmp = ipsec_check_global_policy(mp, connp, 2578 ipha, ip6h, ira, ns); 2579 if (policy_head != NULL) 2580 IPPH_REFRELE(policy_head, ns); 2581 return (retmp); 2582 } 2583 2584 IPLATCH_REFHOLD(ipl); 2585 /* Hold reference on conn_latch_in_action in case conn is closing */ 2586 ap = connp->conn_latch_in_action; 2587 if (ap != NULL) 2588 IPACT_REFHOLD(ap); 2589 mutex_exit(&connp->conn_lock); 2590 2591 if (ap != NULL) { 2592 /* Policy is cached & latched; fast(er) path */ 2593 const char *reason; 2594 kstat_named_t *counter; 2595 2596 if (ipsec_check_ipsecin_latch(ira, mp, ipl, ap, 2597 ipha, ip6h, &reason, &counter, connp, ns)) { 2598 BUMP_MIB(&ipst->ips_ip_mib, ipsecInSucceeded); 2599 IPLATCH_REFRELE(ipl); 2600 IPACT_REFRELE(ap); 2601 return (mp); 2602 } 2603 ipsec_rl_strlog(ns, IP_MOD_ID, 0, 0, 2604 SL_ERROR|SL_WARN|SL_CONSOLE, 2605 "ipsec inbound policy mismatch: %s, packet dropped\n", 2606 reason); 2607 ip_drop_packet(mp, B_TRUE, NULL, counter, 2608 &ipss->ipsec_spd_dropper); 2609 BUMP_MIB(&ipst->ips_ip_mib, ipsecInFailed); 2610 IPLATCH_REFRELE(ipl); 2611 IPACT_REFRELE(ap); 2612 return (NULL); 2613 } 2614 if ((p = connp->conn_latch_in_policy) == NULL) { 2615 ipsec_weird_null_inbound_policy++; 2616 IPLATCH_REFRELE(ipl); 2617 return (mp); 2618 } 2619 2620 unique_id = conn_to_unique(connp, mp, ipha, ip6h); 2621 IPPOL_REFHOLD(p); 2622 mp = ipsec_check_ipsecin_policy(mp, p, ipha, ip6h, unique_id, ira, ns); 2623 /* 2624 * NOTE: ipsecIn{Failed,Succeeeded} bumped by 2625 * ipsec_check_ipsecin_policy(). 2626 */ 2627 if (mp != NULL) 2628 ipsec_latch_inbound(connp, ira); 2629 IPLATCH_REFRELE(ipl); 2630 return (mp); 2631 } 2632 2633 /* 2634 * Handle all sorts of cases like tunnel-mode and ICMP. 2635 */ 2636 static int 2637 prepended_length(mblk_t *mp, uintptr_t hptr) 2638 { 2639 int rc = 0; 2640 2641 while (mp != NULL) { 2642 if (hptr >= (uintptr_t)mp->b_rptr && hptr < 2643 (uintptr_t)mp->b_wptr) { 2644 rc += (int)(hptr - (uintptr_t)mp->b_rptr); 2645 break; /* out of while loop */ 2646 } 2647 rc += (int)MBLKL(mp); 2648 mp = mp->b_cont; 2649 } 2650 2651 if (mp == NULL) { 2652 /* 2653 * IF (big IF) we make it here by naturally exiting the loop, 2654 * then ip6h isn't in the mblk chain "mp" at all. 2655 * 2656 * The only case where this happens is with a reversed IP 2657 * header that gets passed up by inbound ICMP processing. 2658 * This unfortunately triggers longstanding bug 6478464. For 2659 * now, just pass up 0 for the answer. 2660 */ 2661 #ifdef DEBUG_NOT_UNTIL_6478464 2662 ASSERT(mp != NULL); 2663 #endif 2664 rc = 0; 2665 } 2666 2667 return (rc); 2668 } 2669 2670 /* 2671 * Returns: 2672 * 2673 * SELRET_NOMEM --> msgpullup() needed to gather things failed. 2674 * SELRET_BADPKT --> If we're being called after tunnel-mode fragment 2675 * gathering, the initial fragment is too short for 2676 * useful data. Only returned if SEL_TUNNEL_FIRSTFRAG is 2677 * set. 2678 * SELRET_SUCCESS --> "sel" now has initialized IPsec selector data. 2679 * SELRET_TUNFRAG --> This is a fragment in a tunnel-mode packet. Caller 2680 * should put this packet in a fragment-gathering queue. 2681 * Only returned if SEL_TUNNEL_MODE and SEL_PORT_POLICY 2682 * is set. 2683 * 2684 * Note that ipha/ip6h can be in a different mblk (mp->b_cont) in the case 2685 * of tunneled packets. 2686 * Also, mp->b_rptr can be an ICMP error where ipha/ip6h is the packet in 2687 * error past the ICMP error. 2688 */ 2689 static selret_t 2690 ipsec_init_inbound_sel(ipsec_selector_t *sel, mblk_t *mp, ipha_t *ipha, 2691 ip6_t *ip6h, uint8_t sel_flags) 2692 { 2693 uint16_t *ports; 2694 int outer_hdr_len = 0; /* For ICMP or tunnel-mode cases... */ 2695 ushort_t hdr_len; 2696 mblk_t *spare_mp = NULL; 2697 uint8_t *nexthdrp, *transportp; 2698 uint8_t nexthdr; 2699 uint8_t icmp_proto; 2700 ip_pkt_t ipp; 2701 boolean_t port_policy_present = (sel_flags & SEL_PORT_POLICY); 2702 boolean_t is_icmp = (sel_flags & SEL_IS_ICMP); 2703 boolean_t tunnel_mode = (sel_flags & SEL_TUNNEL_MODE); 2704 boolean_t post_frag = (sel_flags & SEL_POST_FRAG); 2705 2706 ASSERT((ipha == NULL && ip6h != NULL) || 2707 (ipha != NULL && ip6h == NULL)); 2708 2709 if (ip6h != NULL) { 2710 outer_hdr_len = prepended_length(mp, (uintptr_t)ip6h); 2711 nexthdr = ip6h->ip6_nxt; 2712 icmp_proto = IPPROTO_ICMPV6; 2713 sel->ips_isv4 = B_FALSE; 2714 sel->ips_local_addr_v6 = ip6h->ip6_dst; 2715 sel->ips_remote_addr_v6 = ip6h->ip6_src; 2716 2717 bzero(&ipp, sizeof (ipp)); 2718 2719 switch (nexthdr) { 2720 case IPPROTO_HOPOPTS: 2721 case IPPROTO_ROUTING: 2722 case IPPROTO_DSTOPTS: 2723 case IPPROTO_FRAGMENT: 2724 /* 2725 * Use ip_hdr_length_nexthdr_v6(). And have a spare 2726 * mblk that's contiguous to feed it 2727 */ 2728 if ((spare_mp = msgpullup(mp, -1)) == NULL) 2729 return (SELRET_NOMEM); 2730 if (!ip_hdr_length_nexthdr_v6(spare_mp, 2731 (ip6_t *)(spare_mp->b_rptr + outer_hdr_len), 2732 &hdr_len, &nexthdrp)) { 2733 /* Malformed packet - caller frees. */ 2734 ipsec_freemsg_chain(spare_mp); 2735 return (SELRET_BADPKT); 2736 } 2737 /* Repopulate now that we have the whole packet */ 2738 ip6h = (ip6_t *)(spare_mp->b_rptr + outer_hdr_len); 2739 (void) ip_find_hdr_v6(spare_mp, ip6h, B_FALSE, &ipp, 2740 NULL); 2741 nexthdr = *nexthdrp; 2742 /* We can just extract based on hdr_len now. */ 2743 break; 2744 default: 2745 (void) ip_find_hdr_v6(mp, ip6h, B_FALSE, &ipp, NULL); 2746 hdr_len = IPV6_HDR_LEN; 2747 break; 2748 } 2749 if (port_policy_present && IS_V6_FRAGMENT(ipp) && !is_icmp) { 2750 /* IPv6 Fragment */ 2751 ipsec_freemsg_chain(spare_mp); 2752 return (SELRET_TUNFRAG); 2753 } 2754 transportp = (uint8_t *)ip6h + hdr_len; 2755 } else { 2756 outer_hdr_len = prepended_length(mp, (uintptr_t)ipha); 2757 icmp_proto = IPPROTO_ICMP; 2758 sel->ips_isv4 = B_TRUE; 2759 sel->ips_local_addr_v4 = ipha->ipha_dst; 2760 sel->ips_remote_addr_v4 = ipha->ipha_src; 2761 nexthdr = ipha->ipha_protocol; 2762 hdr_len = IPH_HDR_LENGTH(ipha); 2763 2764 if (port_policy_present && 2765 IS_V4_FRAGMENT(ipha->ipha_fragment_offset_and_flags) && 2766 !is_icmp) { 2767 /* IPv4 Fragment */ 2768 ipsec_freemsg_chain(spare_mp); 2769 return (SELRET_TUNFRAG); 2770 } 2771 transportp = (uint8_t *)ipha + hdr_len; 2772 } 2773 sel->ips_protocol = nexthdr; 2774 2775 if ((nexthdr != IPPROTO_TCP && nexthdr != IPPROTO_UDP && 2776 nexthdr != IPPROTO_SCTP && nexthdr != icmp_proto) || 2777 (!port_policy_present && !post_frag && tunnel_mode)) { 2778 sel->ips_remote_port = sel->ips_local_port = 0; 2779 ipsec_freemsg_chain(spare_mp); 2780 return (SELRET_SUCCESS); 2781 } 2782 2783 if (transportp + 4 > mp->b_wptr) { 2784 /* If we didn't pullup a copy already, do so now. */ 2785 /* 2786 * XXX performance, will upper-layers frequently split TCP/UDP 2787 * apart from IP or options? If so, perhaps we should revisit 2788 * the spare_mp strategy. 2789 */ 2790 ipsec_hdr_pullup_needed++; 2791 if (spare_mp == NULL && 2792 (spare_mp = msgpullup(mp, -1)) == NULL) { 2793 return (SELRET_NOMEM); 2794 } 2795 transportp = &spare_mp->b_rptr[hdr_len + outer_hdr_len]; 2796 } 2797 2798 if (nexthdr == icmp_proto) { 2799 sel->ips_icmp_type = *transportp++; 2800 sel->ips_icmp_code = *transportp; 2801 sel->ips_remote_port = sel->ips_local_port = 0; 2802 } else { 2803 ports = (uint16_t *)transportp; 2804 sel->ips_remote_port = *ports++; 2805 sel->ips_local_port = *ports; 2806 } 2807 ipsec_freemsg_chain(spare_mp); 2808 return (SELRET_SUCCESS); 2809 } 2810 2811 /* 2812 * This is called with a b_next chain of messages from the fragcache code, 2813 * hence it needs to discard a chain on error. 2814 */ 2815 static boolean_t 2816 ipsec_init_outbound_ports(ipsec_selector_t *sel, mblk_t *mp, ipha_t *ipha, 2817 ip6_t *ip6h, int outer_hdr_len, ipsec_stack_t *ipss) 2818 { 2819 /* 2820 * XXX cut&paste shared with ipsec_init_inbound_sel 2821 */ 2822 uint16_t *ports; 2823 ushort_t hdr_len; 2824 mblk_t *spare_mp = NULL; 2825 uint8_t *nexthdrp; 2826 uint8_t nexthdr; 2827 uint8_t *typecode; 2828 uint8_t check_proto; 2829 2830 ASSERT((ipha == NULL && ip6h != NULL) || 2831 (ipha != NULL && ip6h == NULL)); 2832 2833 if (ip6h != NULL) { 2834 check_proto = IPPROTO_ICMPV6; 2835 nexthdr = ip6h->ip6_nxt; 2836 switch (nexthdr) { 2837 case IPPROTO_HOPOPTS: 2838 case IPPROTO_ROUTING: 2839 case IPPROTO_DSTOPTS: 2840 case IPPROTO_FRAGMENT: 2841 /* 2842 * Use ip_hdr_length_nexthdr_v6(). And have a spare 2843 * mblk that's contiguous to feed it 2844 */ 2845 spare_mp = msgpullup(mp, -1); 2846 if (spare_mp == NULL || 2847 !ip_hdr_length_nexthdr_v6(spare_mp, 2848 (ip6_t *)(spare_mp->b_rptr + outer_hdr_len), 2849 &hdr_len, &nexthdrp)) { 2850 /* Always works, even if NULL. */ 2851 ipsec_freemsg_chain(spare_mp); 2852 ip_drop_packet_chain(mp, B_FALSE, NULL, 2853 DROPPER(ipss, ipds_spd_nomem), 2854 &ipss->ipsec_spd_dropper); 2855 return (B_FALSE); 2856 } else { 2857 nexthdr = *nexthdrp; 2858 /* We can just extract based on hdr_len now. */ 2859 } 2860 break; 2861 default: 2862 hdr_len = IPV6_HDR_LEN; 2863 break; 2864 } 2865 } else { 2866 check_proto = IPPROTO_ICMP; 2867 hdr_len = IPH_HDR_LENGTH(ipha); 2868 nexthdr = ipha->ipha_protocol; 2869 } 2870 2871 sel->ips_protocol = nexthdr; 2872 if (nexthdr != IPPROTO_TCP && nexthdr != IPPROTO_UDP && 2873 nexthdr != IPPROTO_SCTP && nexthdr != check_proto) { 2874 sel->ips_local_port = sel->ips_remote_port = 0; 2875 ipsec_freemsg_chain(spare_mp); /* Always works, even if NULL */ 2876 return (B_TRUE); 2877 } 2878 2879 if (&mp->b_rptr[hdr_len] + 4 + outer_hdr_len > mp->b_wptr) { 2880 /* If we didn't pullup a copy already, do so now. */ 2881 /* 2882 * XXX performance, will upper-layers frequently split TCP/UDP 2883 * apart from IP or options? If so, perhaps we should revisit 2884 * the spare_mp strategy. 2885 * 2886 * XXX should this be msgpullup(mp, hdr_len+4) ??? 2887 */ 2888 if (spare_mp == NULL && 2889 (spare_mp = msgpullup(mp, -1)) == NULL) { 2890 ip_drop_packet_chain(mp, B_FALSE, NULL, 2891 DROPPER(ipss, ipds_spd_nomem), 2892 &ipss->ipsec_spd_dropper); 2893 return (B_FALSE); 2894 } 2895 ports = (uint16_t *)&spare_mp->b_rptr[hdr_len + outer_hdr_len]; 2896 } else { 2897 ports = (uint16_t *)&mp->b_rptr[hdr_len + outer_hdr_len]; 2898 } 2899 2900 if (nexthdr == check_proto) { 2901 typecode = (uint8_t *)ports; 2902 sel->ips_icmp_type = *typecode++; 2903 sel->ips_icmp_code = *typecode; 2904 sel->ips_remote_port = sel->ips_local_port = 0; 2905 } else { 2906 sel->ips_local_port = *ports++; 2907 sel->ips_remote_port = *ports; 2908 } 2909 ipsec_freemsg_chain(spare_mp); /* Always works, even if NULL */ 2910 return (B_TRUE); 2911 } 2912 2913 /* 2914 * Prepend an mblk with a ipsec_crypto_t to the message chain. 2915 * Frees the argument and returns NULL should the allocation fail. 2916 * Returns the pointer to the crypto data part. 2917 */ 2918 mblk_t * 2919 ipsec_add_crypto_data(mblk_t *data_mp, ipsec_crypto_t **icp) 2920 { 2921 mblk_t *mp; 2922 2923 mp = allocb(sizeof (ipsec_crypto_t), BPRI_MED); 2924 if (mp == NULL) { 2925 freemsg(data_mp); 2926 return (NULL); 2927 } 2928 bzero(mp->b_rptr, sizeof (ipsec_crypto_t)); 2929 mp->b_wptr += sizeof (ipsec_crypto_t); 2930 mp->b_cont = data_mp; 2931 mp->b_datap->db_type = M_EVENT; /* For ASSERT */ 2932 *icp = (ipsec_crypto_t *)mp->b_rptr; 2933 return (mp); 2934 } 2935 2936 /* 2937 * Remove what was prepended above. Return b_cont and a pointer to the 2938 * crypto data. 2939 * The caller must call ipsec_free_crypto_data for mblk once it is done 2940 * with the crypto data. 2941 */ 2942 mblk_t * 2943 ipsec_remove_crypto_data(mblk_t *crypto_mp, ipsec_crypto_t **icp) 2944 { 2945 ASSERT(crypto_mp->b_datap->db_type == M_EVENT); 2946 ASSERT(MBLKL(crypto_mp) == sizeof (ipsec_crypto_t)); 2947 2948 *icp = (ipsec_crypto_t *)crypto_mp->b_rptr; 2949 return (crypto_mp->b_cont); 2950 } 2951 2952 /* 2953 * Free what was prepended above. Return b_cont. 2954 */ 2955 mblk_t * 2956 ipsec_free_crypto_data(mblk_t *crypto_mp) 2957 { 2958 mblk_t *mp; 2959 2960 ASSERT(crypto_mp->b_datap->db_type == M_EVENT); 2961 ASSERT(MBLKL(crypto_mp) == sizeof (ipsec_crypto_t)); 2962 2963 mp = crypto_mp->b_cont; 2964 freeb(crypto_mp); 2965 return (mp); 2966 } 2967 2968 /* 2969 * Create an ipsec_action_t based on the way an inbound packet was protected. 2970 * Used to reflect traffic back to a sender. 2971 * 2972 * We don't bother interning the action into the hash table. 2973 */ 2974 ipsec_action_t * 2975 ipsec_in_to_out_action(ip_recv_attr_t *ira) 2976 { 2977 ipsa_t *ah_assoc, *esp_assoc; 2978 uint_t auth_alg = 0, encr_alg = 0, espa_alg = 0; 2979 ipsec_action_t *ap; 2980 boolean_t unique; 2981 2982 ap = kmem_cache_alloc(ipsec_action_cache, KM_NOSLEEP); 2983 2984 if (ap == NULL) 2985 return (NULL); 2986 2987 bzero(ap, sizeof (*ap)); 2988 HASH_NULL(ap, ipa_hash); 2989 ap->ipa_next = NULL; 2990 ap->ipa_refs = 1; 2991 2992 /* 2993 * Get the algorithms that were used for this packet. 2994 */ 2995 ap->ipa_act.ipa_type = IPSEC_ACT_APPLY; 2996 ap->ipa_act.ipa_log = 0; 2997 ASSERT(ira->ira_flags & IRAF_IPSEC_SECURE); 2998 2999 ah_assoc = ira->ira_ipsec_ah_sa; 3000 ap->ipa_act.ipa_apply.ipp_use_ah = (ah_assoc != NULL); 3001 3002 esp_assoc = ira->ira_ipsec_esp_sa; 3003 ap->ipa_act.ipa_apply.ipp_use_esp = (esp_assoc != NULL); 3004 3005 if (esp_assoc != NULL) { 3006 encr_alg = esp_assoc->ipsa_encr_alg; 3007 espa_alg = esp_assoc->ipsa_auth_alg; 3008 ap->ipa_act.ipa_apply.ipp_use_espa = (espa_alg != 0); 3009 } 3010 if (ah_assoc != NULL) 3011 auth_alg = ah_assoc->ipsa_auth_alg; 3012 3013 ap->ipa_act.ipa_apply.ipp_encr_alg = (uint8_t)encr_alg; 3014 ap->ipa_act.ipa_apply.ipp_auth_alg = (uint8_t)auth_alg; 3015 ap->ipa_act.ipa_apply.ipp_esp_auth_alg = (uint8_t)espa_alg; 3016 ap->ipa_act.ipa_apply.ipp_use_se = 3017 !!(ira->ira_flags & IRAF_IPSEC_DECAPS); 3018 unique = B_FALSE; 3019 3020 if (esp_assoc != NULL) { 3021 ap->ipa_act.ipa_apply.ipp_espa_minbits = 3022 esp_assoc->ipsa_authkeybits; 3023 ap->ipa_act.ipa_apply.ipp_espa_maxbits = 3024 esp_assoc->ipsa_authkeybits; 3025 ap->ipa_act.ipa_apply.ipp_espe_minbits = 3026 esp_assoc->ipsa_encrkeybits; 3027 ap->ipa_act.ipa_apply.ipp_espe_maxbits = 3028 esp_assoc->ipsa_encrkeybits; 3029 ap->ipa_act.ipa_apply.ipp_km_proto = esp_assoc->ipsa_kmp; 3030 ap->ipa_act.ipa_apply.ipp_km_cookie = esp_assoc->ipsa_kmc; 3031 if (esp_assoc->ipsa_flags & IPSA_F_UNIQUE) 3032 unique = B_TRUE; 3033 } 3034 if (ah_assoc != NULL) { 3035 ap->ipa_act.ipa_apply.ipp_ah_minbits = 3036 ah_assoc->ipsa_authkeybits; 3037 ap->ipa_act.ipa_apply.ipp_ah_maxbits = 3038 ah_assoc->ipsa_authkeybits; 3039 ap->ipa_act.ipa_apply.ipp_km_proto = ah_assoc->ipsa_kmp; 3040 ap->ipa_act.ipa_apply.ipp_km_cookie = ah_assoc->ipsa_kmc; 3041 if (ah_assoc->ipsa_flags & IPSA_F_UNIQUE) 3042 unique = B_TRUE; 3043 } 3044 ap->ipa_act.ipa_apply.ipp_use_unique = unique; 3045 ap->ipa_want_unique = unique; 3046 ap->ipa_allow_clear = B_FALSE; 3047 ap->ipa_want_se = !!(ira->ira_flags & IRAF_IPSEC_DECAPS); 3048 ap->ipa_want_ah = (ah_assoc != NULL); 3049 ap->ipa_want_esp = (esp_assoc != NULL); 3050 3051 ap->ipa_ovhd = ipsec_act_ovhd(&ap->ipa_act); 3052 3053 ap->ipa_act.ipa_apply.ipp_replay_depth = 0; /* don't care */ 3054 3055 return (ap); 3056 } 3057 3058 3059 /* 3060 * Compute the worst-case amount of extra space required by an action. 3061 * Note that, because of the ESP considerations listed below, this is 3062 * actually not the same as the best-case reduction in the MTU; in the 3063 * future, we should pass additional information to this function to 3064 * allow the actual MTU impact to be computed. 3065 * 3066 * AH: Revisit this if we implement algorithms with 3067 * a verifier size of more than 12 bytes. 3068 * 3069 * ESP: A more exact but more messy computation would take into 3070 * account the interaction between the cipher block size and the 3071 * effective MTU, yielding the inner payload size which reflects a 3072 * packet with *minimum* ESP padding.. 3073 */ 3074 int32_t 3075 ipsec_act_ovhd(const ipsec_act_t *act) 3076 { 3077 int32_t overhead = 0; 3078 3079 if (act->ipa_type == IPSEC_ACT_APPLY) { 3080 const ipsec_prot_t *ipp = &act->ipa_apply; 3081 3082 if (ipp->ipp_use_ah) 3083 overhead += IPSEC_MAX_AH_HDR_SIZE; 3084 if (ipp->ipp_use_esp) { 3085 overhead += IPSEC_MAX_ESP_HDR_SIZE; 3086 overhead += sizeof (struct udphdr); 3087 } 3088 if (ipp->ipp_use_se) 3089 overhead += IP_SIMPLE_HDR_LENGTH; 3090 } 3091 return (overhead); 3092 } 3093 3094 /* 3095 * This hash function is used only when creating policies and thus is not 3096 * performance-critical for packet flows. 3097 * 3098 * Future work: canonicalize the structures hashed with this (i.e., 3099 * zeroize padding) so the hash works correctly. 3100 */ 3101 /* ARGSUSED */ 3102 static uint32_t 3103 policy_hash(int size, const void *start, const void *end) 3104 { 3105 return (0); 3106 } 3107 3108 3109 /* 3110 * Hash function macros for each address type. 3111 * 3112 * The IPV6 hash function assumes that the low order 32-bits of the 3113 * address (typically containing the low order 24 bits of the mac 3114 * address) are reasonably well-distributed. Revisit this if we run 3115 * into trouble from lots of collisions on ::1 addresses and the like 3116 * (seems unlikely). 3117 */ 3118 #define IPSEC_IPV4_HASH(a, n) ((a) % (n)) 3119 #define IPSEC_IPV6_HASH(a, n) (((a).s6_addr32[3]) % (n)) 3120 3121 /* 3122 * These two hash functions should produce coordinated values 3123 * but have slightly different roles. 3124 */ 3125 static uint32_t 3126 selkey_hash(const ipsec_selkey_t *selkey, netstack_t *ns) 3127 { 3128 uint32_t valid = selkey->ipsl_valid; 3129 ipsec_stack_t *ipss = ns->netstack_ipsec; 3130 3131 if (!(valid & IPSL_REMOTE_ADDR)) 3132 return (IPSEC_SEL_NOHASH); 3133 3134 if (valid & IPSL_IPV4) { 3135 if (selkey->ipsl_remote_pfxlen == 32) { 3136 return (IPSEC_IPV4_HASH(selkey->ipsl_remote.ipsad_v4, 3137 ipss->ipsec_spd_hashsize)); 3138 } 3139 } 3140 if (valid & IPSL_IPV6) { 3141 if (selkey->ipsl_remote_pfxlen == 128) { 3142 return (IPSEC_IPV6_HASH(selkey->ipsl_remote.ipsad_v6, 3143 ipss->ipsec_spd_hashsize)); 3144 } 3145 } 3146 return (IPSEC_SEL_NOHASH); 3147 } 3148 3149 static uint32_t 3150 selector_hash(ipsec_selector_t *sel, ipsec_policy_root_t *root) 3151 { 3152 if (sel->ips_isv4) { 3153 return (IPSEC_IPV4_HASH(sel->ips_remote_addr_v4, 3154 root->ipr_nchains)); 3155 } 3156 return (IPSEC_IPV6_HASH(sel->ips_remote_addr_v6, root->ipr_nchains)); 3157 } 3158 3159 /* 3160 * Intern actions into the action hash table. 3161 */ 3162 ipsec_action_t * 3163 ipsec_act_find(const ipsec_act_t *a, int n, netstack_t *ns) 3164 { 3165 int i; 3166 uint32_t hval; 3167 ipsec_action_t *ap; 3168 ipsec_action_t *prev = NULL; 3169 int32_t overhead, maxovhd = 0; 3170 boolean_t allow_clear = B_FALSE; 3171 boolean_t want_ah = B_FALSE; 3172 boolean_t want_esp = B_FALSE; 3173 boolean_t want_se = B_FALSE; 3174 boolean_t want_unique = B_FALSE; 3175 ipsec_stack_t *ipss = ns->netstack_ipsec; 3176 3177 /* 3178 * TODO: should canonicalize a[] (i.e., zeroize any padding) 3179 * so we can use a non-trivial policy_hash function. 3180 */ 3181 for (i = n-1; i >= 0; i--) { 3182 hval = policy_hash(IPSEC_ACTION_HASH_SIZE, &a[i], &a[n]); 3183 3184 HASH_LOCK(ipss->ipsec_action_hash, hval); 3185 3186 for (HASH_ITERATE(ap, ipa_hash, 3187 ipss->ipsec_action_hash, hval)) { 3188 if (bcmp(&ap->ipa_act, &a[i], sizeof (*a)) != 0) 3189 continue; 3190 if (ap->ipa_next != prev) 3191 continue; 3192 break; 3193 } 3194 if (ap != NULL) { 3195 HASH_UNLOCK(ipss->ipsec_action_hash, hval); 3196 prev = ap; 3197 continue; 3198 } 3199 /* 3200 * need to allocate a new one.. 3201 */ 3202 ap = kmem_cache_alloc(ipsec_action_cache, KM_NOSLEEP); 3203 if (ap == NULL) { 3204 HASH_UNLOCK(ipss->ipsec_action_hash, hval); 3205 if (prev != NULL) 3206 ipsec_action_free(prev); 3207 return (NULL); 3208 } 3209 HASH_INSERT(ap, ipa_hash, ipss->ipsec_action_hash, hval); 3210 3211 ap->ipa_next = prev; 3212 ap->ipa_act = a[i]; 3213 3214 overhead = ipsec_act_ovhd(&a[i]); 3215 if (maxovhd < overhead) 3216 maxovhd = overhead; 3217 3218 if ((a[i].ipa_type == IPSEC_ACT_BYPASS) || 3219 (a[i].ipa_type == IPSEC_ACT_CLEAR)) 3220 allow_clear = B_TRUE; 3221 if (a[i].ipa_type == IPSEC_ACT_APPLY) { 3222 const ipsec_prot_t *ipp = &a[i].ipa_apply; 3223 3224 ASSERT(ipp->ipp_use_ah || ipp->ipp_use_esp); 3225 want_ah |= ipp->ipp_use_ah; 3226 want_esp |= ipp->ipp_use_esp; 3227 want_se |= ipp->ipp_use_se; 3228 want_unique |= ipp->ipp_use_unique; 3229 } 3230 ap->ipa_allow_clear = allow_clear; 3231 ap->ipa_want_ah = want_ah; 3232 ap->ipa_want_esp = want_esp; 3233 ap->ipa_want_se = want_se; 3234 ap->ipa_want_unique = want_unique; 3235 ap->ipa_refs = 1; /* from the hash table */ 3236 ap->ipa_ovhd = maxovhd; 3237 if (prev) 3238 prev->ipa_refs++; 3239 prev = ap; 3240 HASH_UNLOCK(ipss->ipsec_action_hash, hval); 3241 } 3242 3243 ap->ipa_refs++; /* caller's reference */ 3244 3245 return (ap); 3246 } 3247 3248 /* 3249 * Called when refcount goes to 0, indicating that all references to this 3250 * node are gone. 3251 * 3252 * This does not unchain the action from the hash table. 3253 */ 3254 void 3255 ipsec_action_free(ipsec_action_t *ap) 3256 { 3257 for (;;) { 3258 ipsec_action_t *np = ap->ipa_next; 3259 ASSERT(ap->ipa_refs == 0); 3260 ASSERT(ap->ipa_hash.hash_pp == NULL); 3261 kmem_cache_free(ipsec_action_cache, ap); 3262 ap = np; 3263 /* Inlined IPACT_REFRELE -- avoid recursion */ 3264 if (ap == NULL) 3265 break; 3266 membar_exit(); 3267 if (atomic_add_32_nv(&(ap)->ipa_refs, -1) != 0) 3268 break; 3269 /* End inlined IPACT_REFRELE */ 3270 } 3271 } 3272 3273 /* 3274 * Called when the action hash table goes away. 3275 * 3276 * The actions can be queued on an mblk with ipsec_in or 3277 * ipsec_out, hence the actions might still be around. 3278 * But we decrement ipa_refs here since we no longer have 3279 * a reference to the action from the hash table. 3280 */ 3281 static void 3282 ipsec_action_free_table(ipsec_action_t *ap) 3283 { 3284 while (ap != NULL) { 3285 ipsec_action_t *np = ap->ipa_next; 3286 3287 /* FIXME: remove? */ 3288 (void) printf("ipsec_action_free_table(%p) ref %d\n", 3289 (void *)ap, ap->ipa_refs); 3290 ASSERT(ap->ipa_refs > 0); 3291 IPACT_REFRELE(ap); 3292 ap = np; 3293 } 3294 } 3295 3296 /* 3297 * Need to walk all stack instances since the reclaim function 3298 * is global for all instances 3299 */ 3300 /* ARGSUSED */ 3301 static void 3302 ipsec_action_reclaim(void *arg) 3303 { 3304 netstack_handle_t nh; 3305 netstack_t *ns; 3306 3307 netstack_next_init(&nh); 3308 while ((ns = netstack_next(&nh)) != NULL) { 3309 ipsec_action_reclaim_stack(ns); 3310 netstack_rele(ns); 3311 } 3312 netstack_next_fini(&nh); 3313 } 3314 3315 /* 3316 * Periodically sweep action hash table for actions with refcount==1, and 3317 * nuke them. We cannot do this "on demand" (i.e., from IPACT_REFRELE) 3318 * because we can't close the race between another thread finding the action 3319 * in the hash table without holding the bucket lock during IPACT_REFRELE. 3320 * Instead, we run this function sporadically to clean up after ourselves; 3321 * we also set it as the "reclaim" function for the action kmem_cache. 3322 * 3323 * Note that it may take several passes of ipsec_action_gc() to free all 3324 * "stale" actions. 3325 */ 3326 static void 3327 ipsec_action_reclaim_stack(netstack_t *ns) 3328 { 3329 int i; 3330 ipsec_stack_t *ipss = ns->netstack_ipsec; 3331 3332 for (i = 0; i < IPSEC_ACTION_HASH_SIZE; i++) { 3333 ipsec_action_t *ap, *np; 3334 3335 /* skip the lock if nobody home */ 3336 if (ipss->ipsec_action_hash[i].hash_head == NULL) 3337 continue; 3338 3339 HASH_LOCK(ipss->ipsec_action_hash, i); 3340 for (ap = ipss->ipsec_action_hash[i].hash_head; 3341 ap != NULL; ap = np) { 3342 ASSERT(ap->ipa_refs > 0); 3343 np = ap->ipa_hash.hash_next; 3344 if (ap->ipa_refs > 1) 3345 continue; 3346 HASH_UNCHAIN(ap, ipa_hash, 3347 ipss->ipsec_action_hash, i); 3348 IPACT_REFRELE(ap); 3349 } 3350 HASH_UNLOCK(ipss->ipsec_action_hash, i); 3351 } 3352 } 3353 3354 /* 3355 * Intern a selector set into the selector set hash table. 3356 * This is simpler than the actions case.. 3357 */ 3358 static ipsec_sel_t * 3359 ipsec_find_sel(ipsec_selkey_t *selkey, netstack_t *ns) 3360 { 3361 ipsec_sel_t *sp; 3362 uint32_t hval, bucket; 3363 ipsec_stack_t *ipss = ns->netstack_ipsec; 3364 3365 /* 3366 * Exactly one AF bit should be set in selkey. 3367 */ 3368 ASSERT(!(selkey->ipsl_valid & IPSL_IPV4) ^ 3369 !(selkey->ipsl_valid & IPSL_IPV6)); 3370 3371 hval = selkey_hash(selkey, ns); 3372 /* Set pol_hval to uninitialized until we put it in a polhead. */ 3373 selkey->ipsl_sel_hval = hval; 3374 3375 bucket = (hval == IPSEC_SEL_NOHASH) ? 0 : hval; 3376 3377 ASSERT(!HASH_LOCKED(ipss->ipsec_sel_hash, bucket)); 3378 HASH_LOCK(ipss->ipsec_sel_hash, bucket); 3379 3380 for (HASH_ITERATE(sp, ipsl_hash, ipss->ipsec_sel_hash, bucket)) { 3381 if (bcmp(&sp->ipsl_key, selkey, 3382 offsetof(ipsec_selkey_t, ipsl_pol_hval)) == 0) 3383 break; 3384 } 3385 if (sp != NULL) { 3386 sp->ipsl_refs++; 3387 3388 HASH_UNLOCK(ipss->ipsec_sel_hash, bucket); 3389 return (sp); 3390 } 3391 3392 sp = kmem_cache_alloc(ipsec_sel_cache, KM_NOSLEEP); 3393 if (sp == NULL) { 3394 HASH_UNLOCK(ipss->ipsec_sel_hash, bucket); 3395 return (NULL); 3396 } 3397 3398 HASH_INSERT(sp, ipsl_hash, ipss->ipsec_sel_hash, bucket); 3399 sp->ipsl_refs = 2; /* one for hash table, one for caller */ 3400 sp->ipsl_key = *selkey; 3401 /* Set to uninitalized and have insertion into polhead fix things. */ 3402 if (selkey->ipsl_sel_hval != IPSEC_SEL_NOHASH) 3403 sp->ipsl_key.ipsl_pol_hval = 0; 3404 else 3405 sp->ipsl_key.ipsl_pol_hval = IPSEC_SEL_NOHASH; 3406 3407 HASH_UNLOCK(ipss->ipsec_sel_hash, bucket); 3408 3409 return (sp); 3410 } 3411 3412 static void 3413 ipsec_sel_rel(ipsec_sel_t **spp, netstack_t *ns) 3414 { 3415 ipsec_sel_t *sp = *spp; 3416 int hval = sp->ipsl_key.ipsl_sel_hval; 3417 ipsec_stack_t *ipss = ns->netstack_ipsec; 3418 3419 *spp = NULL; 3420 3421 if (hval == IPSEC_SEL_NOHASH) 3422 hval = 0; 3423 3424 ASSERT(!HASH_LOCKED(ipss->ipsec_sel_hash, hval)); 3425 HASH_LOCK(ipss->ipsec_sel_hash, hval); 3426 if (--sp->ipsl_refs == 1) { 3427 HASH_UNCHAIN(sp, ipsl_hash, ipss->ipsec_sel_hash, hval); 3428 sp->ipsl_refs--; 3429 HASH_UNLOCK(ipss->ipsec_sel_hash, hval); 3430 ASSERT(sp->ipsl_refs == 0); 3431 kmem_cache_free(ipsec_sel_cache, sp); 3432 /* Caller unlocks */ 3433 return; 3434 } 3435 3436 HASH_UNLOCK(ipss->ipsec_sel_hash, hval); 3437 } 3438 3439 /* 3440 * Free a policy rule which we know is no longer being referenced. 3441 */ 3442 void 3443 ipsec_policy_free(ipsec_policy_t *ipp) 3444 { 3445 ASSERT(ipp->ipsp_refs == 0); 3446 ASSERT(ipp->ipsp_sel != NULL); 3447 ASSERT(ipp->ipsp_act != NULL); 3448 ASSERT(ipp->ipsp_netstack != NULL); 3449 3450 ipsec_sel_rel(&ipp->ipsp_sel, ipp->ipsp_netstack); 3451 IPACT_REFRELE(ipp->ipsp_act); 3452 kmem_cache_free(ipsec_pol_cache, ipp); 3453 } 3454 3455 /* 3456 * Construction of new policy rules; construct a policy, and add it to 3457 * the appropriate tables. 3458 */ 3459 ipsec_policy_t * 3460 ipsec_policy_create(ipsec_selkey_t *keys, const ipsec_act_t *a, 3461 int nacts, int prio, uint64_t *index_ptr, netstack_t *ns) 3462 { 3463 ipsec_action_t *ap; 3464 ipsec_sel_t *sp; 3465 ipsec_policy_t *ipp; 3466 ipsec_stack_t *ipss = ns->netstack_ipsec; 3467 3468 if (index_ptr == NULL) 3469 index_ptr = &ipss->ipsec_next_policy_index; 3470 3471 ipp = kmem_cache_alloc(ipsec_pol_cache, KM_NOSLEEP); 3472 ap = ipsec_act_find(a, nacts, ns); 3473 sp = ipsec_find_sel(keys, ns); 3474 3475 if ((ap == NULL) || (sp == NULL) || (ipp == NULL)) { 3476 if (ap != NULL) { 3477 IPACT_REFRELE(ap); 3478 } 3479 if (sp != NULL) 3480 ipsec_sel_rel(&sp, ns); 3481 if (ipp != NULL) 3482 kmem_cache_free(ipsec_pol_cache, ipp); 3483 return (NULL); 3484 } 3485 3486 HASH_NULL(ipp, ipsp_hash); 3487 3488 ipp->ipsp_netstack = ns; /* Needed for ipsec_policy_free */ 3489 ipp->ipsp_refs = 1; /* caller's reference */ 3490 ipp->ipsp_sel = sp; 3491 ipp->ipsp_act = ap; 3492 ipp->ipsp_prio = prio; /* rule priority */ 3493 ipp->ipsp_index = *index_ptr; 3494 (*index_ptr)++; 3495 3496 return (ipp); 3497 } 3498 3499 static void 3500 ipsec_update_present_flags(ipsec_stack_t *ipss) 3501 { 3502 boolean_t hashpol; 3503 3504 hashpol = (avl_numnodes(&ipss->ipsec_system_policy.iph_rulebyid) > 0); 3505 3506 if (hashpol) { 3507 ipss->ipsec_outbound_v4_policy_present = B_TRUE; 3508 ipss->ipsec_outbound_v6_policy_present = B_TRUE; 3509 ipss->ipsec_inbound_v4_policy_present = B_TRUE; 3510 ipss->ipsec_inbound_v6_policy_present = B_TRUE; 3511 return; 3512 } 3513 3514 ipss->ipsec_outbound_v4_policy_present = (NULL != 3515 ipss->ipsec_system_policy.iph_root[IPSEC_TYPE_OUTBOUND]. 3516 ipr_nonhash[IPSEC_AF_V4]); 3517 ipss->ipsec_outbound_v6_policy_present = (NULL != 3518 ipss->ipsec_system_policy.iph_root[IPSEC_TYPE_OUTBOUND]. 3519 ipr_nonhash[IPSEC_AF_V6]); 3520 ipss->ipsec_inbound_v4_policy_present = (NULL != 3521 ipss->ipsec_system_policy.iph_root[IPSEC_TYPE_INBOUND]. 3522 ipr_nonhash[IPSEC_AF_V4]); 3523 ipss->ipsec_inbound_v6_policy_present = (NULL != 3524 ipss->ipsec_system_policy.iph_root[IPSEC_TYPE_INBOUND]. 3525 ipr_nonhash[IPSEC_AF_V6]); 3526 } 3527 3528 boolean_t 3529 ipsec_policy_delete(ipsec_policy_head_t *php, ipsec_selkey_t *keys, int dir, 3530 netstack_t *ns) 3531 { 3532 ipsec_sel_t *sp; 3533 ipsec_policy_t *ip, *nip, *head; 3534 int af; 3535 ipsec_policy_root_t *pr = &php->iph_root[dir]; 3536 3537 sp = ipsec_find_sel(keys, ns); 3538 3539 if (sp == NULL) 3540 return (B_FALSE); 3541 3542 af = (sp->ipsl_key.ipsl_valid & IPSL_IPV4) ? IPSEC_AF_V4 : IPSEC_AF_V6; 3543 3544 rw_enter(&php->iph_lock, RW_WRITER); 3545 3546 if (sp->ipsl_key.ipsl_pol_hval == IPSEC_SEL_NOHASH) { 3547 head = pr->ipr_nonhash[af]; 3548 } else { 3549 head = pr->ipr_hash[sp->ipsl_key.ipsl_pol_hval].hash_head; 3550 } 3551 3552 for (ip = head; ip != NULL; ip = nip) { 3553 nip = ip->ipsp_hash.hash_next; 3554 if (ip->ipsp_sel != sp) { 3555 continue; 3556 } 3557 3558 IPPOL_UNCHAIN(php, ip); 3559 3560 php->iph_gen++; 3561 ipsec_update_present_flags(ns->netstack_ipsec); 3562 3563 rw_exit(&php->iph_lock); 3564 3565 ipsec_sel_rel(&sp, ns); 3566 3567 return (B_TRUE); 3568 } 3569 3570 rw_exit(&php->iph_lock); 3571 ipsec_sel_rel(&sp, ns); 3572 return (B_FALSE); 3573 } 3574 3575 int 3576 ipsec_policy_delete_index(ipsec_policy_head_t *php, uint64_t policy_index, 3577 netstack_t *ns) 3578 { 3579 boolean_t found = B_FALSE; 3580 ipsec_policy_t ipkey; 3581 ipsec_policy_t *ip; 3582 avl_index_t where; 3583 3584 bzero(&ipkey, sizeof (ipkey)); 3585 ipkey.ipsp_index = policy_index; 3586 3587 rw_enter(&php->iph_lock, RW_WRITER); 3588 3589 /* 3590 * We could be cleverer here about the walk. 3591 * but well, (k+1)*log(N) will do for now (k==number of matches, 3592 * N==number of table entries 3593 */ 3594 for (;;) { 3595 ip = (ipsec_policy_t *)avl_find(&php->iph_rulebyid, 3596 (void *)&ipkey, &where); 3597 ASSERT(ip == NULL); 3598 3599 ip = avl_nearest(&php->iph_rulebyid, where, AVL_AFTER); 3600 3601 if (ip == NULL) 3602 break; 3603 3604 if (ip->ipsp_index != policy_index) { 3605 ASSERT(ip->ipsp_index > policy_index); 3606 break; 3607 } 3608 3609 IPPOL_UNCHAIN(php, ip); 3610 found = B_TRUE; 3611 } 3612 3613 if (found) { 3614 php->iph_gen++; 3615 ipsec_update_present_flags(ns->netstack_ipsec); 3616 } 3617 3618 rw_exit(&php->iph_lock); 3619 3620 return (found ? 0 : ENOENT); 3621 } 3622 3623 /* 3624 * Given a constructed ipsec_policy_t policy rule, see if it can be entered 3625 * into the correct policy ruleset. As a side-effect, it sets the hash 3626 * entries on "ipp"'s ipsp_pol_hval. 3627 * 3628 * Returns B_TRUE if it can be entered, B_FALSE if it can't be (because a 3629 * duplicate policy exists with exactly the same selectors), or an icmp 3630 * rule exists with a different encryption/authentication action. 3631 */ 3632 boolean_t 3633 ipsec_check_policy(ipsec_policy_head_t *php, ipsec_policy_t *ipp, int direction) 3634 { 3635 ipsec_policy_root_t *pr = &php->iph_root[direction]; 3636 int af = -1; 3637 ipsec_policy_t *p2, *head; 3638 uint8_t check_proto; 3639 ipsec_selkey_t *selkey = &ipp->ipsp_sel->ipsl_key; 3640 uint32_t valid = selkey->ipsl_valid; 3641 3642 if (valid & IPSL_IPV6) { 3643 ASSERT(!(valid & IPSL_IPV4)); 3644 af = IPSEC_AF_V6; 3645 check_proto = IPPROTO_ICMPV6; 3646 } else { 3647 ASSERT(valid & IPSL_IPV4); 3648 af = IPSEC_AF_V4; 3649 check_proto = IPPROTO_ICMP; 3650 } 3651 3652 ASSERT(RW_WRITE_HELD(&php->iph_lock)); 3653 3654 /* 3655 * Double-check that we don't have any duplicate selectors here. 3656 * Because selectors are interned below, we need only compare pointers 3657 * for equality. 3658 */ 3659 if (selkey->ipsl_sel_hval == IPSEC_SEL_NOHASH) { 3660 head = pr->ipr_nonhash[af]; 3661 } else { 3662 selkey->ipsl_pol_hval = 3663 (selkey->ipsl_valid & IPSL_IPV4) ? 3664 IPSEC_IPV4_HASH(selkey->ipsl_remote.ipsad_v4, 3665 pr->ipr_nchains) : 3666 IPSEC_IPV6_HASH(selkey->ipsl_remote.ipsad_v6, 3667 pr->ipr_nchains); 3668 3669 head = pr->ipr_hash[selkey->ipsl_pol_hval].hash_head; 3670 } 3671 3672 for (p2 = head; p2 != NULL; p2 = p2->ipsp_hash.hash_next) { 3673 if (p2->ipsp_sel == ipp->ipsp_sel) 3674 return (B_FALSE); 3675 } 3676 3677 /* 3678 * If it's ICMP and not a drop or pass rule, run through the ICMP 3679 * rules and make sure the action is either new or the same as any 3680 * other actions. We don't have to check the full chain because 3681 * discard and bypass will override all other actions 3682 */ 3683 3684 if (valid & IPSL_PROTOCOL && 3685 selkey->ipsl_proto == check_proto && 3686 (ipp->ipsp_act->ipa_act.ipa_type == IPSEC_ACT_APPLY)) { 3687 3688 for (p2 = head; p2 != NULL; p2 = p2->ipsp_hash.hash_next) { 3689 3690 if (p2->ipsp_sel->ipsl_key.ipsl_valid & IPSL_PROTOCOL && 3691 p2->ipsp_sel->ipsl_key.ipsl_proto == check_proto && 3692 (p2->ipsp_act->ipa_act.ipa_type == 3693 IPSEC_ACT_APPLY)) { 3694 return (ipsec_compare_action(p2, ipp)); 3695 } 3696 } 3697 } 3698 3699 return (B_TRUE); 3700 } 3701 3702 /* 3703 * compare the action chains of two policies for equality 3704 * B_TRUE -> effective equality 3705 */ 3706 3707 static boolean_t 3708 ipsec_compare_action(ipsec_policy_t *p1, ipsec_policy_t *p2) 3709 { 3710 3711 ipsec_action_t *act1, *act2; 3712 3713 /* We have a valid rule. Let's compare the actions */ 3714 if (p1->ipsp_act == p2->ipsp_act) { 3715 /* same action. We are good */ 3716 return (B_TRUE); 3717 } 3718 3719 /* we have to walk the chain */ 3720 3721 act1 = p1->ipsp_act; 3722 act2 = p2->ipsp_act; 3723 3724 while (act1 != NULL && act2 != NULL) { 3725 3726 /* otherwise, Are we close enough? */ 3727 if (act1->ipa_allow_clear != act2->ipa_allow_clear || 3728 act1->ipa_want_ah != act2->ipa_want_ah || 3729 act1->ipa_want_esp != act2->ipa_want_esp || 3730 act1->ipa_want_se != act2->ipa_want_se) { 3731 /* Nope, we aren't */ 3732 return (B_FALSE); 3733 } 3734 3735 if (act1->ipa_want_ah) { 3736 if (act1->ipa_act.ipa_apply.ipp_auth_alg != 3737 act2->ipa_act.ipa_apply.ipp_auth_alg) { 3738 return (B_FALSE); 3739 } 3740 3741 if (act1->ipa_act.ipa_apply.ipp_ah_minbits != 3742 act2->ipa_act.ipa_apply.ipp_ah_minbits || 3743 act1->ipa_act.ipa_apply.ipp_ah_maxbits != 3744 act2->ipa_act.ipa_apply.ipp_ah_maxbits) { 3745 return (B_FALSE); 3746 } 3747 } 3748 3749 if (act1->ipa_want_esp) { 3750 if (act1->ipa_act.ipa_apply.ipp_use_esp != 3751 act2->ipa_act.ipa_apply.ipp_use_esp || 3752 act1->ipa_act.ipa_apply.ipp_use_espa != 3753 act2->ipa_act.ipa_apply.ipp_use_espa) { 3754 return (B_FALSE); 3755 } 3756 3757 if (act1->ipa_act.ipa_apply.ipp_use_esp) { 3758 if (act1->ipa_act.ipa_apply.ipp_encr_alg != 3759 act2->ipa_act.ipa_apply.ipp_encr_alg) { 3760 return (B_FALSE); 3761 } 3762 3763 if (act1->ipa_act.ipa_apply.ipp_espe_minbits != 3764 act2->ipa_act.ipa_apply.ipp_espe_minbits || 3765 act1->ipa_act.ipa_apply.ipp_espe_maxbits != 3766 act2->ipa_act.ipa_apply.ipp_espe_maxbits) { 3767 return (B_FALSE); 3768 } 3769 } 3770 3771 if (act1->ipa_act.ipa_apply.ipp_use_espa) { 3772 if (act1->ipa_act.ipa_apply.ipp_esp_auth_alg != 3773 act2->ipa_act.ipa_apply.ipp_esp_auth_alg) { 3774 return (B_FALSE); 3775 } 3776 3777 if (act1->ipa_act.ipa_apply.ipp_espa_minbits != 3778 act2->ipa_act.ipa_apply.ipp_espa_minbits || 3779 act1->ipa_act.ipa_apply.ipp_espa_maxbits != 3780 act2->ipa_act.ipa_apply.ipp_espa_maxbits) { 3781 return (B_FALSE); 3782 } 3783 } 3784 3785 } 3786 3787 act1 = act1->ipa_next; 3788 act2 = act2->ipa_next; 3789 } 3790 3791 if (act1 != NULL || act2 != NULL) { 3792 return (B_FALSE); 3793 } 3794 3795 return (B_TRUE); 3796 } 3797 3798 3799 /* 3800 * Given a constructed ipsec_policy_t policy rule, enter it into 3801 * the correct policy ruleset. 3802 * 3803 * ipsec_check_policy() is assumed to have succeeded first (to check for 3804 * duplicates). 3805 */ 3806 void 3807 ipsec_enter_policy(ipsec_policy_head_t *php, ipsec_policy_t *ipp, int direction, 3808 netstack_t *ns) 3809 { 3810 ipsec_policy_root_t *pr = &php->iph_root[direction]; 3811 ipsec_selkey_t *selkey = &ipp->ipsp_sel->ipsl_key; 3812 uint32_t valid = selkey->ipsl_valid; 3813 uint32_t hval = selkey->ipsl_pol_hval; 3814 int af = -1; 3815 3816 ASSERT(RW_WRITE_HELD(&php->iph_lock)); 3817 3818 if (valid & IPSL_IPV6) { 3819 ASSERT(!(valid & IPSL_IPV4)); 3820 af = IPSEC_AF_V6; 3821 } else { 3822 ASSERT(valid & IPSL_IPV4); 3823 af = IPSEC_AF_V4; 3824 } 3825 3826 php->iph_gen++; 3827 3828 if (hval == IPSEC_SEL_NOHASH) { 3829 HASHLIST_INSERT(ipp, ipsp_hash, pr->ipr_nonhash[af]); 3830 } else { 3831 HASH_LOCK(pr->ipr_hash, hval); 3832 HASH_INSERT(ipp, ipsp_hash, pr->ipr_hash, hval); 3833 HASH_UNLOCK(pr->ipr_hash, hval); 3834 } 3835 3836 ipsec_insert_always(&php->iph_rulebyid, ipp); 3837 3838 ipsec_update_present_flags(ns->netstack_ipsec); 3839 } 3840 3841 static void 3842 ipsec_ipr_flush(ipsec_policy_head_t *php, ipsec_policy_root_t *ipr) 3843 { 3844 ipsec_policy_t *ip, *nip; 3845 int af, chain, nchain; 3846 3847 for (af = 0; af < IPSEC_NAF; af++) { 3848 for (ip = ipr->ipr_nonhash[af]; ip != NULL; ip = nip) { 3849 nip = ip->ipsp_hash.hash_next; 3850 IPPOL_UNCHAIN(php, ip); 3851 } 3852 ipr->ipr_nonhash[af] = NULL; 3853 } 3854 nchain = ipr->ipr_nchains; 3855 3856 for (chain = 0; chain < nchain; chain++) { 3857 for (ip = ipr->ipr_hash[chain].hash_head; ip != NULL; 3858 ip = nip) { 3859 nip = ip->ipsp_hash.hash_next; 3860 IPPOL_UNCHAIN(php, ip); 3861 } 3862 ipr->ipr_hash[chain].hash_head = NULL; 3863 } 3864 } 3865 3866 /* 3867 * Create and insert inbound or outbound policy associated with actp for the 3868 * address family fam into the policy head ph. Returns B_TRUE if policy was 3869 * inserted, and B_FALSE otherwise. 3870 */ 3871 boolean_t 3872 ipsec_polhead_insert(ipsec_policy_head_t *ph, ipsec_act_t *actp, uint_t nact, 3873 int fam, int ptype, netstack_t *ns) 3874 { 3875 ipsec_selkey_t sel; 3876 ipsec_policy_t *pol; 3877 ipsec_policy_root_t *pr; 3878 3879 bzero(&sel, sizeof (sel)); 3880 sel.ipsl_valid = (fam == IPSEC_AF_V4 ? IPSL_IPV4 : IPSL_IPV6); 3881 if ((pol = ipsec_policy_create(&sel, actp, nact, IPSEC_PRIO_SOCKET, 3882 NULL, ns)) != NULL) { 3883 pr = &ph->iph_root[ptype]; 3884 HASHLIST_INSERT(pol, ipsp_hash, pr->ipr_nonhash[fam]); 3885 ipsec_insert_always(&ph->iph_rulebyid, pol); 3886 } 3887 return (pol != NULL); 3888 } 3889 3890 void 3891 ipsec_polhead_flush(ipsec_policy_head_t *php, netstack_t *ns) 3892 { 3893 int dir; 3894 3895 ASSERT(RW_WRITE_HELD(&php->iph_lock)); 3896 3897 for (dir = 0; dir < IPSEC_NTYPES; dir++) 3898 ipsec_ipr_flush(php, &php->iph_root[dir]); 3899 3900 php->iph_gen++; 3901 ipsec_update_present_flags(ns->netstack_ipsec); 3902 } 3903 3904 void 3905 ipsec_polhead_free(ipsec_policy_head_t *php, netstack_t *ns) 3906 { 3907 int dir; 3908 3909 ASSERT(php->iph_refs == 0); 3910 3911 rw_enter(&php->iph_lock, RW_WRITER); 3912 ipsec_polhead_flush(php, ns); 3913 rw_exit(&php->iph_lock); 3914 rw_destroy(&php->iph_lock); 3915 for (dir = 0; dir < IPSEC_NTYPES; dir++) { 3916 ipsec_policy_root_t *ipr = &php->iph_root[dir]; 3917 int chain; 3918 3919 for (chain = 0; chain < ipr->ipr_nchains; chain++) 3920 mutex_destroy(&(ipr->ipr_hash[chain].hash_lock)); 3921 3922 } 3923 ipsec_polhead_free_table(php); 3924 kmem_free(php, sizeof (*php)); 3925 } 3926 3927 static void 3928 ipsec_ipr_init(ipsec_policy_root_t *ipr) 3929 { 3930 int af; 3931 3932 ipr->ipr_nchains = 0; 3933 ipr->ipr_hash = NULL; 3934 3935 for (af = 0; af < IPSEC_NAF; af++) { 3936 ipr->ipr_nonhash[af] = NULL; 3937 } 3938 } 3939 3940 ipsec_policy_head_t * 3941 ipsec_polhead_create(void) 3942 { 3943 ipsec_policy_head_t *php; 3944 3945 php = kmem_alloc(sizeof (*php), KM_NOSLEEP); 3946 if (php == NULL) 3947 return (php); 3948 3949 rw_init(&php->iph_lock, NULL, RW_DEFAULT, NULL); 3950 php->iph_refs = 1; 3951 php->iph_gen = 0; 3952 3953 ipsec_ipr_init(&php->iph_root[IPSEC_TYPE_INBOUND]); 3954 ipsec_ipr_init(&php->iph_root[IPSEC_TYPE_OUTBOUND]); 3955 3956 avl_create(&php->iph_rulebyid, ipsec_policy_cmpbyid, 3957 sizeof (ipsec_policy_t), offsetof(ipsec_policy_t, ipsp_byid)); 3958 3959 return (php); 3960 } 3961 3962 /* 3963 * Clone the policy head into a new polhead; release one reference to the 3964 * old one and return the only reference to the new one. 3965 * If the old one had a refcount of 1, just return it. 3966 */ 3967 ipsec_policy_head_t * 3968 ipsec_polhead_split(ipsec_policy_head_t *php, netstack_t *ns) 3969 { 3970 ipsec_policy_head_t *nphp; 3971 3972 if (php == NULL) 3973 return (ipsec_polhead_create()); 3974 else if (php->iph_refs == 1) 3975 return (php); 3976 3977 nphp = ipsec_polhead_create(); 3978 if (nphp == NULL) 3979 return (NULL); 3980 3981 if (ipsec_copy_polhead(php, nphp, ns) != 0) { 3982 ipsec_polhead_free(nphp, ns); 3983 return (NULL); 3984 } 3985 IPPH_REFRELE(php, ns); 3986 return (nphp); 3987 } 3988 3989 /* 3990 * When sending a response to a ICMP request or generating a RST 3991 * in the TCP case, the outbound packets need to go at the same level 3992 * of protection as the incoming ones i.e we associate our outbound 3993 * policy with how the packet came in. We call this after we have 3994 * accepted the incoming packet which may or may not have been in 3995 * clear and hence we are sending the reply back with the policy 3996 * matching the incoming datagram's policy. 3997 * 3998 * NOTE : This technology serves two purposes : 3999 * 4000 * 1) If we have multiple outbound policies, we send out a reply 4001 * matching with how it came in rather than matching the outbound 4002 * policy. 4003 * 4004 * 2) For assymetric policies, we want to make sure that incoming 4005 * and outgoing has the same level of protection. Assymetric 4006 * policies exist only with global policy where we may not have 4007 * both outbound and inbound at the same time. 4008 * 4009 * NOTE2: This function is called by cleartext cases, so it needs to be 4010 * in IP proper. 4011 * 4012 * Note: the caller has moved other parts of ira into ixa already. 4013 */ 4014 boolean_t 4015 ipsec_in_to_out(ip_recv_attr_t *ira, ip_xmit_attr_t *ixa, mblk_t *data_mp, 4016 ipha_t *ipha, ip6_t *ip6h) 4017 { 4018 ipsec_selector_t sel; 4019 ipsec_action_t *reflect_action = NULL; 4020 netstack_t *ns = ixa->ixa_ipst->ips_netstack; 4021 4022 bzero((void*)&sel, sizeof (sel)); 4023 4024 if (ira->ira_ipsec_action != NULL) { 4025 /* transfer reference.. */ 4026 reflect_action = ira->ira_ipsec_action; 4027 ira->ira_ipsec_action = NULL; 4028 } else if (!(ira->ira_flags & IRAF_LOOPBACK)) 4029 reflect_action = ipsec_in_to_out_action(ira); 4030 4031 /* 4032 * The caller is going to send the datagram out which might 4033 * go on the wire or delivered locally through ire_send_local. 4034 * 4035 * 1) If it goes out on the wire, new associations will be 4036 * obtained. 4037 * 2) If it is delivered locally, ire_send_local will convert 4038 * this ip_xmit_attr_t back to a ip_recv_attr_t looking at the 4039 * requests. 4040 */ 4041 ixa->ixa_ipsec_action = reflect_action; 4042 4043 if (!ipsec_init_outbound_ports(&sel, data_mp, ipha, ip6h, 0, 4044 ns->netstack_ipsec)) { 4045 /* Note: data_mp already consumed and ip_drop_packet done */ 4046 return (B_FALSE); 4047 } 4048 ixa->ixa_ipsec_src_port = sel.ips_local_port; 4049 ixa->ixa_ipsec_dst_port = sel.ips_remote_port; 4050 ixa->ixa_ipsec_proto = sel.ips_protocol; 4051 ixa->ixa_ipsec_icmp_type = sel.ips_icmp_type; 4052 ixa->ixa_ipsec_icmp_code = sel.ips_icmp_code; 4053 4054 /* 4055 * Don't use global policy for this, as we want 4056 * to use the same protection that was applied to the inbound packet. 4057 * Thus we set IXAF_NO_IPSEC is it arrived in the clear to make 4058 * it be sent in the clear. 4059 */ 4060 if (ira->ira_flags & IRAF_IPSEC_SECURE) 4061 ixa->ixa_flags |= IXAF_IPSEC_SECURE; 4062 else 4063 ixa->ixa_flags |= IXAF_NO_IPSEC; 4064 4065 return (B_TRUE); 4066 } 4067 4068 void 4069 ipsec_out_release_refs(ip_xmit_attr_t *ixa) 4070 { 4071 if (!(ixa->ixa_flags & IXAF_IPSEC_SECURE)) 4072 return; 4073 4074 if (ixa->ixa_ipsec_ah_sa != NULL) { 4075 IPSA_REFRELE(ixa->ixa_ipsec_ah_sa); 4076 ixa->ixa_ipsec_ah_sa = NULL; 4077 } 4078 if (ixa->ixa_ipsec_esp_sa != NULL) { 4079 IPSA_REFRELE(ixa->ixa_ipsec_esp_sa); 4080 ixa->ixa_ipsec_esp_sa = NULL; 4081 } 4082 if (ixa->ixa_ipsec_policy != NULL) { 4083 IPPOL_REFRELE(ixa->ixa_ipsec_policy); 4084 ixa->ixa_ipsec_policy = NULL; 4085 } 4086 if (ixa->ixa_ipsec_action != NULL) { 4087 IPACT_REFRELE(ixa->ixa_ipsec_action); 4088 ixa->ixa_ipsec_action = NULL; 4089 } 4090 if (ixa->ixa_ipsec_latch) { 4091 IPLATCH_REFRELE(ixa->ixa_ipsec_latch); 4092 ixa->ixa_ipsec_latch = NULL; 4093 } 4094 /* Clear the soft references to the SAs */ 4095 ixa->ixa_ipsec_ref[0].ipsr_sa = NULL; 4096 ixa->ixa_ipsec_ref[0].ipsr_bucket = NULL; 4097 ixa->ixa_ipsec_ref[0].ipsr_gen = 0; 4098 ixa->ixa_ipsec_ref[1].ipsr_sa = NULL; 4099 ixa->ixa_ipsec_ref[1].ipsr_bucket = NULL; 4100 ixa->ixa_ipsec_ref[1].ipsr_gen = 0; 4101 ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4102 } 4103 4104 void 4105 ipsec_in_release_refs(ip_recv_attr_t *ira) 4106 { 4107 if (!(ira->ira_flags & IRAF_IPSEC_SECURE)) 4108 return; 4109 4110 if (ira->ira_ipsec_ah_sa != NULL) { 4111 IPSA_REFRELE(ira->ira_ipsec_ah_sa); 4112 ira->ira_ipsec_ah_sa = NULL; 4113 } 4114 if (ira->ira_ipsec_esp_sa != NULL) { 4115 IPSA_REFRELE(ira->ira_ipsec_esp_sa); 4116 ira->ira_ipsec_esp_sa = NULL; 4117 } 4118 ira->ira_flags &= ~IRAF_IPSEC_SECURE; 4119 } 4120 4121 /* 4122 * This is called from ire_send_local when a packet 4123 * is looped back. We setup the ip_recv_attr_t "borrowing" the references 4124 * held by the callers. 4125 * Note that we don't do any IPsec but we carry the actions and IPSEC flags 4126 * across so that the fanout policy checks see that IPsec was applied. 4127 * 4128 * The caller should do ipsec_in_release_refs() on the ira by calling 4129 * ira_cleanup(). 4130 */ 4131 void 4132 ipsec_out_to_in(ip_xmit_attr_t *ixa, ill_t *ill, ip_recv_attr_t *ira) 4133 { 4134 ipsec_policy_t *pol; 4135 ipsec_action_t *act; 4136 4137 /* Non-IPsec operations */ 4138 ira->ira_free_flags = 0; 4139 ira->ira_zoneid = ixa->ixa_zoneid; 4140 ira->ira_cred = ixa->ixa_cred; 4141 ira->ira_cpid = ixa->ixa_cpid; 4142 ira->ira_tsl = ixa->ixa_tsl; 4143 ira->ira_ill = ira->ira_rill = ill; 4144 ira->ira_flags = ixa->ixa_flags & IAF_MASK; 4145 ira->ira_no_loop_zoneid = ixa->ixa_no_loop_zoneid; 4146 ira->ira_pktlen = ixa->ixa_pktlen; 4147 ira->ira_ip_hdr_length = ixa->ixa_ip_hdr_length; 4148 ira->ira_protocol = ixa->ixa_protocol; 4149 ira->ira_mhip = NULL; 4150 4151 ira->ira_flags |= IRAF_LOOPBACK | IRAF_L2SRC_LOOPBACK; 4152 4153 ira->ira_sqp = ixa->ixa_sqp; 4154 ira->ira_ring = NULL; 4155 4156 ira->ira_ruifindex = ill->ill_phyint->phyint_ifindex; 4157 ira->ira_rifindex = ira->ira_ruifindex; 4158 4159 if (!(ixa->ixa_flags & IXAF_IPSEC_SECURE)) 4160 return; 4161 4162 ira->ira_flags |= IRAF_IPSEC_SECURE; 4163 4164 ira->ira_ipsec_ah_sa = NULL; 4165 ira->ira_ipsec_esp_sa = NULL; 4166 4167 act = ixa->ixa_ipsec_action; 4168 if (act == NULL) { 4169 pol = ixa->ixa_ipsec_policy; 4170 if (pol != NULL) { 4171 act = pol->ipsp_act; 4172 IPACT_REFHOLD(act); 4173 } 4174 } 4175 ixa->ixa_ipsec_action = NULL; 4176 ira->ira_ipsec_action = act; 4177 } 4178 4179 /* 4180 * Consults global policy and per-socket policy to see whether this datagram 4181 * should go out secure. If so it updates the ip_xmit_attr_t 4182 * Should not be used when connecting, since then we want to latch the policy. 4183 * 4184 * If connp is NULL we just look at the global policy. 4185 * 4186 * Returns NULL if the packet was dropped, in which case the MIB has 4187 * been incremented and ip_drop_packet done. 4188 */ 4189 mblk_t * 4190 ip_output_attach_policy(mblk_t *mp, ipha_t *ipha, ip6_t *ip6h, 4191 const conn_t *connp, ip_xmit_attr_t *ixa) 4192 { 4193 ipsec_selector_t sel; 4194 boolean_t policy_present; 4195 ip_stack_t *ipst = ixa->ixa_ipst; 4196 netstack_t *ns = ipst->ips_netstack; 4197 ipsec_stack_t *ipss = ns->netstack_ipsec; 4198 ipsec_policy_t *p; 4199 4200 ixa->ixa_ipsec_policy_gen = ipss->ipsec_system_policy.iph_gen; 4201 ASSERT((ipha != NULL && ip6h == NULL) || 4202 (ip6h != NULL && ipha == NULL)); 4203 4204 if (ipha != NULL) 4205 policy_present = ipss->ipsec_outbound_v4_policy_present; 4206 else 4207 policy_present = ipss->ipsec_outbound_v6_policy_present; 4208 4209 if (!policy_present && (connp == NULL || connp->conn_policy == NULL)) 4210 return (mp); 4211 4212 bzero((void*)&sel, sizeof (sel)); 4213 4214 if (ipha != NULL) { 4215 sel.ips_local_addr_v4 = ipha->ipha_src; 4216 sel.ips_remote_addr_v4 = ip_get_dst(ipha); 4217 sel.ips_isv4 = B_TRUE; 4218 } else { 4219 sel.ips_isv4 = B_FALSE; 4220 sel.ips_local_addr_v6 = ip6h->ip6_src; 4221 sel.ips_remote_addr_v6 = ip_get_dst_v6(ip6h, mp, NULL); 4222 } 4223 sel.ips_protocol = ixa->ixa_protocol; 4224 4225 if (!ipsec_init_outbound_ports(&sel, mp, ipha, ip6h, 0, ipss)) { 4226 if (ipha != NULL) { 4227 BUMP_MIB(&ipst->ips_ip_mib, ipIfStatsOutDiscards); 4228 } else { 4229 BUMP_MIB(&ipst->ips_ip6_mib, ipIfStatsOutDiscards); 4230 } 4231 /* Note: mp already consumed and ip_drop_packet done */ 4232 return (NULL); 4233 } 4234 4235 ASSERT(ixa->ixa_ipsec_policy == NULL); 4236 p = ipsec_find_policy(IPSEC_TYPE_OUTBOUND, connp, &sel, ns); 4237 ixa->ixa_ipsec_policy = p; 4238 if (p != NULL) { 4239 ixa->ixa_flags |= IXAF_IPSEC_SECURE; 4240 if (connp == NULL || connp->conn_policy == NULL) 4241 ixa->ixa_flags |= IXAF_IPSEC_GLOBAL_POLICY; 4242 } else { 4243 ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4244 } 4245 4246 /* 4247 * Copy the right port information. 4248 */ 4249 ixa->ixa_ipsec_src_port = sel.ips_local_port; 4250 ixa->ixa_ipsec_dst_port = sel.ips_remote_port; 4251 ixa->ixa_ipsec_icmp_type = sel.ips_icmp_type; 4252 ixa->ixa_ipsec_icmp_code = sel.ips_icmp_code; 4253 ixa->ixa_ipsec_proto = sel.ips_protocol; 4254 return (mp); 4255 } 4256 4257 /* 4258 * When appropriate, this function caches inbound and outbound policy 4259 * for this connection. The outbound policy is stored in conn_ixa. 4260 * Note that it can not be used for SCTP since conn_faddr isn't set for SCTP. 4261 * 4262 * XXX need to work out more details about per-interface policy and 4263 * caching here! 4264 * 4265 * XXX may want to split inbound and outbound caching for ill.. 4266 */ 4267 int 4268 ipsec_conn_cache_policy(conn_t *connp, boolean_t isv4) 4269 { 4270 boolean_t global_policy_present; 4271 netstack_t *ns = connp->conn_netstack; 4272 ipsec_stack_t *ipss = ns->netstack_ipsec; 4273 4274 connp->conn_ixa->ixa_ipsec_policy_gen = 4275 ipss->ipsec_system_policy.iph_gen; 4276 /* 4277 * There is no policy latching for ICMP sockets because we can't 4278 * decide on which policy to use until we see the packet and get 4279 * type/code selectors. 4280 */ 4281 if (connp->conn_proto == IPPROTO_ICMP || 4282 connp->conn_proto == IPPROTO_ICMPV6) { 4283 connp->conn_in_enforce_policy = 4284 connp->conn_out_enforce_policy = B_TRUE; 4285 if (connp->conn_latch != NULL) { 4286 IPLATCH_REFRELE(connp->conn_latch); 4287 connp->conn_latch = NULL; 4288 } 4289 if (connp->conn_latch_in_policy != NULL) { 4290 IPPOL_REFRELE(connp->conn_latch_in_policy); 4291 connp->conn_latch_in_policy = NULL; 4292 } 4293 if (connp->conn_latch_in_action != NULL) { 4294 IPACT_REFRELE(connp->conn_latch_in_action); 4295 connp->conn_latch_in_action = NULL; 4296 } 4297 if (connp->conn_ixa->ixa_ipsec_policy != NULL) { 4298 IPPOL_REFRELE(connp->conn_ixa->ixa_ipsec_policy); 4299 connp->conn_ixa->ixa_ipsec_policy = NULL; 4300 } 4301 if (connp->conn_ixa->ixa_ipsec_action != NULL) { 4302 IPACT_REFRELE(connp->conn_ixa->ixa_ipsec_action); 4303 connp->conn_ixa->ixa_ipsec_action = NULL; 4304 } 4305 connp->conn_ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4306 return (0); 4307 } 4308 4309 global_policy_present = isv4 ? 4310 (ipss->ipsec_outbound_v4_policy_present || 4311 ipss->ipsec_inbound_v4_policy_present) : 4312 (ipss->ipsec_outbound_v6_policy_present || 4313 ipss->ipsec_inbound_v6_policy_present); 4314 4315 if ((connp->conn_policy != NULL) || global_policy_present) { 4316 ipsec_selector_t sel; 4317 ipsec_policy_t *p; 4318 4319 if (connp->conn_latch == NULL && 4320 (connp->conn_latch = iplatch_create()) == NULL) { 4321 return (ENOMEM); 4322 } 4323 4324 bzero((void*)&sel, sizeof (sel)); 4325 4326 sel.ips_protocol = connp->conn_proto; 4327 sel.ips_local_port = connp->conn_lport; 4328 sel.ips_remote_port = connp->conn_fport; 4329 sel.ips_is_icmp_inv_acq = 0; 4330 sel.ips_isv4 = isv4; 4331 if (isv4) { 4332 sel.ips_local_addr_v4 = connp->conn_laddr_v4; 4333 sel.ips_remote_addr_v4 = connp->conn_faddr_v4; 4334 } else { 4335 sel.ips_local_addr_v6 = connp->conn_laddr_v6; 4336 sel.ips_remote_addr_v6 = connp->conn_faddr_v6; 4337 } 4338 4339 p = ipsec_find_policy(IPSEC_TYPE_INBOUND, connp, &sel, ns); 4340 if (connp->conn_latch_in_policy != NULL) 4341 IPPOL_REFRELE(connp->conn_latch_in_policy); 4342 connp->conn_latch_in_policy = p; 4343 connp->conn_in_enforce_policy = (p != NULL); 4344 4345 p = ipsec_find_policy(IPSEC_TYPE_OUTBOUND, connp, &sel, ns); 4346 if (connp->conn_ixa->ixa_ipsec_policy != NULL) 4347 IPPOL_REFRELE(connp->conn_ixa->ixa_ipsec_policy); 4348 connp->conn_ixa->ixa_ipsec_policy = p; 4349 connp->conn_out_enforce_policy = (p != NULL); 4350 if (p != NULL) { 4351 connp->conn_ixa->ixa_flags |= IXAF_IPSEC_SECURE; 4352 if (connp->conn_policy == NULL) { 4353 connp->conn_ixa->ixa_flags |= 4354 IXAF_IPSEC_GLOBAL_POLICY; 4355 } 4356 } else { 4357 connp->conn_ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4358 } 4359 /* Clear the latched actions too, in case we're recaching. */ 4360 if (connp->conn_ixa->ixa_ipsec_action != NULL) { 4361 IPACT_REFRELE(connp->conn_ixa->ixa_ipsec_action); 4362 connp->conn_ixa->ixa_ipsec_action = NULL; 4363 } 4364 if (connp->conn_latch_in_action != NULL) { 4365 IPACT_REFRELE(connp->conn_latch_in_action); 4366 connp->conn_latch_in_action = NULL; 4367 } 4368 connp->conn_ixa->ixa_ipsec_src_port = sel.ips_local_port; 4369 connp->conn_ixa->ixa_ipsec_dst_port = sel.ips_remote_port; 4370 connp->conn_ixa->ixa_ipsec_icmp_type = sel.ips_icmp_type; 4371 connp->conn_ixa->ixa_ipsec_icmp_code = sel.ips_icmp_code; 4372 connp->conn_ixa->ixa_ipsec_proto = sel.ips_protocol; 4373 } else { 4374 connp->conn_ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4375 } 4376 4377 /* 4378 * We may or may not have policy for this endpoint. We still set 4379 * conn_policy_cached so that inbound datagrams don't have to look 4380 * at global policy as policy is considered latched for these 4381 * endpoints. We should not set conn_policy_cached until the conn 4382 * reflects the actual policy. If we *set* this before inheriting 4383 * the policy there is a window where the check 4384 * CONN_INBOUND_POLICY_PRESENT, will neither check with the policy 4385 * on the conn (because we have not yet copied the policy on to 4386 * conn and hence not set conn_in_enforce_policy) nor with the 4387 * global policy (because conn_policy_cached is already set). 4388 */ 4389 connp->conn_policy_cached = B_TRUE; 4390 return (0); 4391 } 4392 4393 /* 4394 * When appropriate, this function caches outbound policy for faddr/fport. 4395 * It is used when we are not connected i.e., when we can not latch the 4396 * policy. 4397 */ 4398 void 4399 ipsec_cache_outbound_policy(const conn_t *connp, const in6_addr_t *v6src, 4400 const in6_addr_t *v6dst, in_port_t dstport, ip_xmit_attr_t *ixa) 4401 { 4402 boolean_t isv4 = (ixa->ixa_flags & IXAF_IS_IPV4) != 0; 4403 boolean_t global_policy_present; 4404 netstack_t *ns = connp->conn_netstack; 4405 ipsec_stack_t *ipss = ns->netstack_ipsec; 4406 4407 ixa->ixa_ipsec_policy_gen = ipss->ipsec_system_policy.iph_gen; 4408 4409 /* 4410 * There is no policy caching for ICMP sockets because we can't 4411 * decide on which policy to use until we see the packet and get 4412 * type/code selectors. 4413 */ 4414 if (connp->conn_proto == IPPROTO_ICMP || 4415 connp->conn_proto == IPPROTO_ICMPV6) { 4416 ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4417 if (ixa->ixa_ipsec_policy != NULL) { 4418 IPPOL_REFRELE(ixa->ixa_ipsec_policy); 4419 ixa->ixa_ipsec_policy = NULL; 4420 } 4421 if (ixa->ixa_ipsec_action != NULL) { 4422 IPACT_REFRELE(ixa->ixa_ipsec_action); 4423 ixa->ixa_ipsec_action = NULL; 4424 } 4425 return; 4426 } 4427 4428 global_policy_present = isv4 ? 4429 (ipss->ipsec_outbound_v4_policy_present || 4430 ipss->ipsec_inbound_v4_policy_present) : 4431 (ipss->ipsec_outbound_v6_policy_present || 4432 ipss->ipsec_inbound_v6_policy_present); 4433 4434 if ((connp->conn_policy != NULL) || global_policy_present) { 4435 ipsec_selector_t sel; 4436 ipsec_policy_t *p; 4437 4438 bzero((void*)&sel, sizeof (sel)); 4439 4440 sel.ips_protocol = connp->conn_proto; 4441 sel.ips_local_port = connp->conn_lport; 4442 sel.ips_remote_port = dstport; 4443 sel.ips_is_icmp_inv_acq = 0; 4444 sel.ips_isv4 = isv4; 4445 if (isv4) { 4446 IN6_V4MAPPED_TO_IPADDR(v6src, sel.ips_local_addr_v4); 4447 IN6_V4MAPPED_TO_IPADDR(v6dst, sel.ips_remote_addr_v4); 4448 } else { 4449 sel.ips_local_addr_v6 = *v6src; 4450 sel.ips_remote_addr_v6 = *v6dst; 4451 } 4452 4453 p = ipsec_find_policy(IPSEC_TYPE_OUTBOUND, connp, &sel, ns); 4454 if (ixa->ixa_ipsec_policy != NULL) 4455 IPPOL_REFRELE(ixa->ixa_ipsec_policy); 4456 ixa->ixa_ipsec_policy = p; 4457 if (p != NULL) { 4458 ixa->ixa_flags |= IXAF_IPSEC_SECURE; 4459 if (connp->conn_policy == NULL) 4460 ixa->ixa_flags |= IXAF_IPSEC_GLOBAL_POLICY; 4461 } else { 4462 ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4463 } 4464 /* Clear the latched actions too, in case we're recaching. */ 4465 if (ixa->ixa_ipsec_action != NULL) { 4466 IPACT_REFRELE(ixa->ixa_ipsec_action); 4467 ixa->ixa_ipsec_action = NULL; 4468 } 4469 4470 ixa->ixa_ipsec_src_port = sel.ips_local_port; 4471 ixa->ixa_ipsec_dst_port = sel.ips_remote_port; 4472 ixa->ixa_ipsec_icmp_type = sel.ips_icmp_type; 4473 ixa->ixa_ipsec_icmp_code = sel.ips_icmp_code; 4474 ixa->ixa_ipsec_proto = sel.ips_protocol; 4475 } else { 4476 ixa->ixa_flags &= ~IXAF_IPSEC_SECURE; 4477 if (ixa->ixa_ipsec_policy != NULL) { 4478 IPPOL_REFRELE(ixa->ixa_ipsec_policy); 4479 ixa->ixa_ipsec_policy = NULL; 4480 } 4481 if (ixa->ixa_ipsec_action != NULL) { 4482 IPACT_REFRELE(ixa->ixa_ipsec_action); 4483 ixa->ixa_ipsec_action = NULL; 4484 } 4485 } 4486 } 4487 4488 /* 4489 * Returns B_FALSE if the policy has gone stale. 4490 */ 4491 boolean_t 4492 ipsec_outbound_policy_current(ip_xmit_attr_t *ixa) 4493 { 4494 ipsec_stack_t *ipss = ixa->ixa_ipst->ips_netstack->netstack_ipsec; 4495 4496 if (!(ixa->ixa_flags & IXAF_IPSEC_GLOBAL_POLICY)) 4497 return (B_TRUE); 4498 4499 return (ixa->ixa_ipsec_policy_gen == ipss->ipsec_system_policy.iph_gen); 4500 } 4501 4502 void 4503 iplatch_free(ipsec_latch_t *ipl) 4504 { 4505 if (ipl->ipl_local_cid != NULL) 4506 IPSID_REFRELE(ipl->ipl_local_cid); 4507 if (ipl->ipl_remote_cid != NULL) 4508 IPSID_REFRELE(ipl->ipl_remote_cid); 4509 mutex_destroy(&ipl->ipl_lock); 4510 kmem_free(ipl, sizeof (*ipl)); 4511 } 4512 4513 ipsec_latch_t * 4514 iplatch_create() 4515 { 4516 ipsec_latch_t *ipl = kmem_alloc(sizeof (*ipl), KM_NOSLEEP); 4517 if (ipl == NULL) 4518 return (ipl); 4519 bzero(ipl, sizeof (*ipl)); 4520 mutex_init(&ipl->ipl_lock, NULL, MUTEX_DEFAULT, NULL); 4521 ipl->ipl_refcnt = 1; 4522 return (ipl); 4523 } 4524 4525 /* 4526 * Hash function for ID hash table. 4527 */ 4528 static uint32_t 4529 ipsid_hash(int idtype, char *idstring) 4530 { 4531 uint32_t hval = idtype; 4532 unsigned char c; 4533 4534 while ((c = *idstring++) != 0) { 4535 hval = (hval << 4) | (hval >> 28); 4536 hval ^= c; 4537 } 4538 hval = hval ^ (hval >> 16); 4539 return (hval & (IPSID_HASHSIZE-1)); 4540 } 4541 4542 /* 4543 * Look up identity string in hash table. Return identity object 4544 * corresponding to the name -- either preexisting, or newly allocated. 4545 * 4546 * Return NULL if we need to allocate a new one and can't get memory. 4547 */ 4548 ipsid_t * 4549 ipsid_lookup(int idtype, char *idstring, netstack_t *ns) 4550 { 4551 ipsid_t *retval; 4552 char *nstr; 4553 int idlen = strlen(idstring) + 1; 4554 ipsec_stack_t *ipss = ns->netstack_ipsec; 4555 ipsif_t *bucket; 4556 4557 bucket = &ipss->ipsec_ipsid_buckets[ipsid_hash(idtype, idstring)]; 4558 4559 mutex_enter(&bucket->ipsif_lock); 4560 4561 for (retval = bucket->ipsif_head; retval != NULL; 4562 retval = retval->ipsid_next) { 4563 if (idtype != retval->ipsid_type) 4564 continue; 4565 if (bcmp(idstring, retval->ipsid_cid, idlen) != 0) 4566 continue; 4567 4568 IPSID_REFHOLD(retval); 4569 mutex_exit(&bucket->ipsif_lock); 4570 return (retval); 4571 } 4572 4573 retval = kmem_alloc(sizeof (*retval), KM_NOSLEEP); 4574 if (!retval) { 4575 mutex_exit(&bucket->ipsif_lock); 4576 return (NULL); 4577 } 4578 4579 nstr = kmem_alloc(idlen, KM_NOSLEEP); 4580 if (!nstr) { 4581 mutex_exit(&bucket->ipsif_lock); 4582 kmem_free(retval, sizeof (*retval)); 4583 return (NULL); 4584 } 4585 4586 retval->ipsid_refcnt = 1; 4587 retval->ipsid_next = bucket->ipsif_head; 4588 if (retval->ipsid_next != NULL) 4589 retval->ipsid_next->ipsid_ptpn = &retval->ipsid_next; 4590 retval->ipsid_ptpn = &bucket->ipsif_head; 4591 retval->ipsid_type = idtype; 4592 retval->ipsid_cid = nstr; 4593 bucket->ipsif_head = retval; 4594 bcopy(idstring, nstr, idlen); 4595 mutex_exit(&bucket->ipsif_lock); 4596 4597 return (retval); 4598 } 4599 4600 /* 4601 * Garbage collect the identity hash table. 4602 */ 4603 void 4604 ipsid_gc(netstack_t *ns) 4605 { 4606 int i, len; 4607 ipsid_t *id, *nid; 4608 ipsif_t *bucket; 4609 ipsec_stack_t *ipss = ns->netstack_ipsec; 4610 4611 for (i = 0; i < IPSID_HASHSIZE; i++) { 4612 bucket = &ipss->ipsec_ipsid_buckets[i]; 4613 mutex_enter(&bucket->ipsif_lock); 4614 for (id = bucket->ipsif_head; id != NULL; id = nid) { 4615 nid = id->ipsid_next; 4616 if (id->ipsid_refcnt == 0) { 4617 *id->ipsid_ptpn = nid; 4618 if (nid != NULL) 4619 nid->ipsid_ptpn = id->ipsid_ptpn; 4620 len = strlen(id->ipsid_cid) + 1; 4621 kmem_free(id->ipsid_cid, len); 4622 kmem_free(id, sizeof (*id)); 4623 } 4624 } 4625 mutex_exit(&bucket->ipsif_lock); 4626 } 4627 } 4628 4629 /* 4630 * Return true if two identities are the same. 4631 */ 4632 boolean_t 4633 ipsid_equal(ipsid_t *id1, ipsid_t *id2) 4634 { 4635 if (id1 == id2) 4636 return (B_TRUE); 4637 #ifdef DEBUG 4638 if ((id1 == NULL) || (id2 == NULL)) 4639 return (B_FALSE); 4640 /* 4641 * test that we're interning id's correctly.. 4642 */ 4643 ASSERT((strcmp(id1->ipsid_cid, id2->ipsid_cid) != 0) || 4644 (id1->ipsid_type != id2->ipsid_type)); 4645 #endif 4646 return (B_FALSE); 4647 } 4648 4649 /* 4650 * Initialize identity table; called during module initialization. 4651 */ 4652 static void 4653 ipsid_init(netstack_t *ns) 4654 { 4655 ipsif_t *bucket; 4656 int i; 4657 ipsec_stack_t *ipss = ns->netstack_ipsec; 4658 4659 for (i = 0; i < IPSID_HASHSIZE; i++) { 4660 bucket = &ipss->ipsec_ipsid_buckets[i]; 4661 mutex_init(&bucket->ipsif_lock, NULL, MUTEX_DEFAULT, NULL); 4662 } 4663 } 4664 4665 /* 4666 * Free identity table (preparatory to module unload) 4667 */ 4668 static void 4669 ipsid_fini(netstack_t *ns) 4670 { 4671 ipsif_t *bucket; 4672 int i; 4673 ipsec_stack_t *ipss = ns->netstack_ipsec; 4674 4675 for (i = 0; i < IPSID_HASHSIZE; i++) { 4676 bucket = &ipss->ipsec_ipsid_buckets[i]; 4677 ASSERT(bucket->ipsif_head == NULL); 4678 mutex_destroy(&bucket->ipsif_lock); 4679 } 4680 } 4681 4682 /* 4683 * Update the minimum and maximum supported key sizes for the 4684 * specified algorithm. Must be called while holding the algorithms lock. 4685 */ 4686 void 4687 ipsec_alg_fix_min_max(ipsec_alginfo_t *alg, ipsec_algtype_t alg_type, 4688 netstack_t *ns) 4689 { 4690 size_t crypto_min = (size_t)-1, crypto_max = 0; 4691 size_t cur_crypto_min, cur_crypto_max; 4692 boolean_t is_valid; 4693 crypto_mechanism_info_t *mech_infos; 4694 uint_t nmech_infos; 4695 int crypto_rc, i; 4696 crypto_mech_usage_t mask; 4697 ipsec_stack_t *ipss = ns->netstack_ipsec; 4698 4699 ASSERT(MUTEX_HELD(&ipss->ipsec_alg_lock)); 4700 4701 /* 4702 * Compute the min, max, and default key sizes (in number of 4703 * increments to the default key size in bits) as defined 4704 * by the algorithm mappings. This range of key sizes is used 4705 * for policy related operations. The effective key sizes 4706 * supported by the framework could be more limited than 4707 * those defined for an algorithm. 4708 */ 4709 alg->alg_default_bits = alg->alg_key_sizes[0]; 4710 alg->alg_default = 0; 4711 if (alg->alg_increment != 0) { 4712 /* key sizes are defined by range & increment */ 4713 alg->alg_minbits = alg->alg_key_sizes[1]; 4714 alg->alg_maxbits = alg->alg_key_sizes[2]; 4715 } else if (alg->alg_nkey_sizes == 0) { 4716 /* no specified key size for algorithm */ 4717 alg->alg_minbits = alg->alg_maxbits = 0; 4718 } else { 4719 /* key sizes are defined by enumeration */ 4720 alg->alg_minbits = (uint16_t)-1; 4721 alg->alg_maxbits = 0; 4722 4723 for (i = 0; i < alg->alg_nkey_sizes; i++) { 4724 if (alg->alg_key_sizes[i] < alg->alg_minbits) 4725 alg->alg_minbits = alg->alg_key_sizes[i]; 4726 if (alg->alg_key_sizes[i] > alg->alg_maxbits) 4727 alg->alg_maxbits = alg->alg_key_sizes[i]; 4728 } 4729 } 4730 4731 if (!(alg->alg_flags & ALG_FLAG_VALID)) 4732 return; 4733 4734 /* 4735 * Mechanisms do not apply to the NULL encryption 4736 * algorithm, so simply return for this case. 4737 */ 4738 if (alg->alg_id == SADB_EALG_NULL) 4739 return; 4740 4741 /* 4742 * Find the min and max key sizes supported by the cryptographic 4743 * framework providers. 4744 */ 4745 4746 /* get the key sizes supported by the framework */ 4747 crypto_rc = crypto_get_all_mech_info(alg->alg_mech_type, 4748 &mech_infos, &nmech_infos, KM_SLEEP); 4749 if (crypto_rc != CRYPTO_SUCCESS || nmech_infos == 0) { 4750 alg->alg_flags &= ~ALG_FLAG_VALID; 4751 return; 4752 } 4753 4754 /* min and max key sizes supported by framework */ 4755 for (i = 0, is_valid = B_FALSE; i < nmech_infos; i++) { 4756 int unit_bits; 4757 4758 /* 4759 * Ignore entries that do not support the operations 4760 * needed for the algorithm type. 4761 */ 4762 if (alg_type == IPSEC_ALG_AUTH) { 4763 mask = CRYPTO_MECH_USAGE_MAC; 4764 } else { 4765 mask = CRYPTO_MECH_USAGE_ENCRYPT | 4766 CRYPTO_MECH_USAGE_DECRYPT; 4767 } 4768 if ((mech_infos[i].mi_usage & mask) != mask) 4769 continue; 4770 4771 unit_bits = (mech_infos[i].mi_keysize_unit == 4772 CRYPTO_KEYSIZE_UNIT_IN_BYTES) ? 8 : 1; 4773 /* adjust min/max supported by framework */ 4774 cur_crypto_min = mech_infos[i].mi_min_key_size * unit_bits; 4775 cur_crypto_max = mech_infos[i].mi_max_key_size * unit_bits; 4776 4777 if (cur_crypto_min < crypto_min) 4778 crypto_min = cur_crypto_min; 4779 4780 /* 4781 * CRYPTO_EFFECTIVELY_INFINITE is a special value of 4782 * the crypto framework which means "no upper limit". 4783 */ 4784 if (mech_infos[i].mi_max_key_size == 4785 CRYPTO_EFFECTIVELY_INFINITE) { 4786 crypto_max = (size_t)-1; 4787 } else if (cur_crypto_max > crypto_max) { 4788 crypto_max = cur_crypto_max; 4789 } 4790 4791 is_valid = B_TRUE; 4792 } 4793 4794 kmem_free(mech_infos, sizeof (crypto_mechanism_info_t) * 4795 nmech_infos); 4796 4797 if (!is_valid) { 4798 /* no key sizes supported by framework */ 4799 alg->alg_flags &= ~ALG_FLAG_VALID; 4800 return; 4801 } 4802 4803 /* 4804 * Determine min and max key sizes from alg_key_sizes[]. 4805 * defined for the algorithm entry. Adjust key sizes based on 4806 * those supported by the framework. 4807 */ 4808 alg->alg_ef_default_bits = alg->alg_key_sizes[0]; 4809 4810 /* 4811 * For backwards compatability, assume that the IV length 4812 * is the same as the data length. 4813 */ 4814 alg->alg_ivlen = alg->alg_datalen; 4815 4816 /* 4817 * Copy any algorithm parameters (if provided) into dedicated 4818 * elements in the ipsec_alginfo_t structure. 4819 * There may be a better place to put this code. 4820 */ 4821 for (i = 0; i < alg->alg_nparams; i++) { 4822 switch (i) { 4823 case 0: 4824 /* Initialisation Vector length (bytes) */ 4825 alg->alg_ivlen = alg->alg_params[0]; 4826 break; 4827 case 1: 4828 /* Integrity Check Vector length (bytes) */ 4829 alg->alg_icvlen = alg->alg_params[1]; 4830 break; 4831 case 2: 4832 /* Salt length (bytes) */ 4833 alg->alg_saltlen = (uint8_t)alg->alg_params[2]; 4834 break; 4835 default: 4836 break; 4837 } 4838 } 4839 4840 /* Default if the IV length is not specified. */ 4841 if (alg_type == IPSEC_ALG_ENCR && alg->alg_ivlen == 0) 4842 alg->alg_ivlen = alg->alg_datalen; 4843 4844 alg_flag_check(alg); 4845 4846 if (alg->alg_increment != 0) { 4847 /* supported key sizes are defined by range & increment */ 4848 crypto_min = ALGBITS_ROUND_UP(crypto_min, alg->alg_increment); 4849 crypto_max = ALGBITS_ROUND_DOWN(crypto_max, alg->alg_increment); 4850 4851 alg->alg_ef_minbits = MAX(alg->alg_minbits, 4852 (uint16_t)crypto_min); 4853 alg->alg_ef_maxbits = MIN(alg->alg_maxbits, 4854 (uint16_t)crypto_max); 4855 4856 /* 4857 * If the sizes supported by the framework are outside 4858 * the range of sizes defined by the algorithm mappings, 4859 * the algorithm cannot be used. Check for this 4860 * condition here. 4861 */ 4862 if (alg->alg_ef_minbits > alg->alg_ef_maxbits) { 4863 alg->alg_flags &= ~ALG_FLAG_VALID; 4864 return; 4865 } 4866 if (alg->alg_ef_default_bits < alg->alg_ef_minbits) 4867 alg->alg_ef_default_bits = alg->alg_ef_minbits; 4868 if (alg->alg_ef_default_bits > alg->alg_ef_maxbits) 4869 alg->alg_ef_default_bits = alg->alg_ef_maxbits; 4870 } else if (alg->alg_nkey_sizes == 0) { 4871 /* no specified key size for algorithm */ 4872 alg->alg_ef_minbits = alg->alg_ef_maxbits = 0; 4873 } else { 4874 /* supported key sizes are defined by enumeration */ 4875 alg->alg_ef_minbits = (uint16_t)-1; 4876 alg->alg_ef_maxbits = 0; 4877 4878 for (i = 0, is_valid = B_FALSE; i < alg->alg_nkey_sizes; i++) { 4879 /* 4880 * Ignore the current key size if it is not in the 4881 * range of sizes supported by the framework. 4882 */ 4883 if (alg->alg_key_sizes[i] < crypto_min || 4884 alg->alg_key_sizes[i] > crypto_max) 4885 continue; 4886 if (alg->alg_key_sizes[i] < alg->alg_ef_minbits) 4887 alg->alg_ef_minbits = alg->alg_key_sizes[i]; 4888 if (alg->alg_key_sizes[i] > alg->alg_ef_maxbits) 4889 alg->alg_ef_maxbits = alg->alg_key_sizes[i]; 4890 is_valid = B_TRUE; 4891 } 4892 4893 if (!is_valid) { 4894 alg->alg_flags &= ~ALG_FLAG_VALID; 4895 return; 4896 } 4897 alg->alg_ef_default = 0; 4898 } 4899 } 4900 4901 /* 4902 * Sanity check parameters provided by ipsecalgs(1m). Assume that 4903 * the algoritm is marked as valid, there is a check at the top 4904 * of this function. If any of the checks below fail, the algorithm 4905 * entry is invalid. 4906 */ 4907 void 4908 alg_flag_check(ipsec_alginfo_t *alg) 4909 { 4910 alg->alg_flags &= ~ALG_FLAG_VALID; 4911 4912 /* 4913 * Can't have the algorithm marked as CCM and GCM. 4914 * Check the ALG_FLAG_COMBINED and ALG_FLAG_COUNTERMODE 4915 * flags are set for CCM & GCM. 4916 */ 4917 if ((alg->alg_flags & (ALG_FLAG_CCM|ALG_FLAG_GCM)) == 4918 (ALG_FLAG_CCM|ALG_FLAG_GCM)) 4919 return; 4920 if (alg->alg_flags & (ALG_FLAG_CCM|ALG_FLAG_GCM)) { 4921 if (!(alg->alg_flags & ALG_FLAG_COUNTERMODE)) 4922 return; 4923 if (!(alg->alg_flags & ALG_FLAG_COMBINED)) 4924 return; 4925 } 4926 4927 /* 4928 * For ALG_FLAG_COUNTERMODE, check the parameters 4929 * fit in the ipsec_nonce_t structure. 4930 */ 4931 if (alg->alg_flags & ALG_FLAG_COUNTERMODE) { 4932 if (alg->alg_ivlen != sizeof (((ipsec_nonce_t *)NULL)->iv)) 4933 return; 4934 if (alg->alg_saltlen > sizeof (((ipsec_nonce_t *)NULL)->salt)) 4935 return; 4936 } 4937 if ((alg->alg_flags & ALG_FLAG_COMBINED) && 4938 (alg->alg_icvlen == 0)) 4939 return; 4940 4941 /* all is well. */ 4942 alg->alg_flags |= ALG_FLAG_VALID; 4943 } 4944 4945 /* 4946 * Free the memory used by the specified algorithm. 4947 */ 4948 void 4949 ipsec_alg_free(ipsec_alginfo_t *alg) 4950 { 4951 if (alg == NULL) 4952 return; 4953 4954 if (alg->alg_key_sizes != NULL) { 4955 kmem_free(alg->alg_key_sizes, 4956 (alg->alg_nkey_sizes + 1) * sizeof (uint16_t)); 4957 alg->alg_key_sizes = NULL; 4958 } 4959 if (alg->alg_block_sizes != NULL) { 4960 kmem_free(alg->alg_block_sizes, 4961 (alg->alg_nblock_sizes + 1) * sizeof (uint16_t)); 4962 alg->alg_block_sizes = NULL; 4963 } 4964 if (alg->alg_params != NULL) { 4965 kmem_free(alg->alg_params, 4966 (alg->alg_nparams + 1) * sizeof (uint16_t)); 4967 alg->alg_params = NULL; 4968 } 4969 kmem_free(alg, sizeof (*alg)); 4970 } 4971 4972 /* 4973 * Check the validity of the specified key size for an algorithm. 4974 * Returns B_TRUE if key size is valid, B_FALSE otherwise. 4975 */ 4976 boolean_t 4977 ipsec_valid_key_size(uint16_t key_size, ipsec_alginfo_t *alg) 4978 { 4979 if (key_size < alg->alg_ef_minbits || key_size > alg->alg_ef_maxbits) 4980 return (B_FALSE); 4981 4982 if (alg->alg_increment == 0 && alg->alg_nkey_sizes != 0) { 4983 /* 4984 * If the key sizes are defined by enumeration, the new 4985 * key size must be equal to one of the supported values. 4986 */ 4987 int i; 4988 4989 for (i = 0; i < alg->alg_nkey_sizes; i++) 4990 if (key_size == alg->alg_key_sizes[i]) 4991 break; 4992 if (i == alg->alg_nkey_sizes) 4993 return (B_FALSE); 4994 } 4995 4996 return (B_TRUE); 4997 } 4998 4999 /* 5000 * Callback function invoked by the crypto framework when a provider 5001 * registers or unregisters. This callback updates the algorithms 5002 * tables when a crypto algorithm is no longer available or becomes 5003 * available, and triggers the freeing/creation of context templates 5004 * associated with existing SAs, if needed. 5005 * 5006 * Need to walk all stack instances since the callback is global 5007 * for all instances 5008 */ 5009 void 5010 ipsec_prov_update_callback(uint32_t event, void *event_arg) 5011 { 5012 netstack_handle_t nh; 5013 netstack_t *ns; 5014 5015 netstack_next_init(&nh); 5016 while ((ns = netstack_next(&nh)) != NULL) { 5017 ipsec_prov_update_callback_stack(event, event_arg, ns); 5018 netstack_rele(ns); 5019 } 5020 netstack_next_fini(&nh); 5021 } 5022 5023 static void 5024 ipsec_prov_update_callback_stack(uint32_t event, void *event_arg, 5025 netstack_t *ns) 5026 { 5027 crypto_notify_event_change_t *prov_change = 5028 (crypto_notify_event_change_t *)event_arg; 5029 uint_t algidx, algid, algtype, mech_count, mech_idx; 5030 ipsec_alginfo_t *alg; 5031 ipsec_alginfo_t oalg; 5032 crypto_mech_name_t *mechs; 5033 boolean_t alg_changed = B_FALSE; 5034 ipsec_stack_t *ipss = ns->netstack_ipsec; 5035 5036 /* ignore events for which we didn't register */ 5037 if (event != CRYPTO_EVENT_MECHS_CHANGED) { 5038 ip1dbg(("ipsec_prov_update_callback: unexpected event 0x%x " 5039 " received from crypto framework\n", event)); 5040 return; 5041 } 5042 5043 mechs = crypto_get_mech_list(&mech_count, KM_SLEEP); 5044 if (mechs == NULL) 5045 return; 5046 5047 /* 5048 * Walk the list of currently defined IPsec algorithm. Update 5049 * the algorithm valid flag and trigger an update of the 5050 * SAs that depend on that algorithm. 5051 */ 5052 mutex_enter(&ipss->ipsec_alg_lock); 5053 for (algtype = 0; algtype < IPSEC_NALGTYPES; algtype++) { 5054 for (algidx = 0; algidx < ipss->ipsec_nalgs[algtype]; 5055 algidx++) { 5056 5057 algid = ipss->ipsec_sortlist[algtype][algidx]; 5058 alg = ipss->ipsec_alglists[algtype][algid]; 5059 ASSERT(alg != NULL); 5060 5061 /* 5062 * Skip the algorithms which do not map to the 5063 * crypto framework provider being added or removed. 5064 */ 5065 if (strncmp(alg->alg_mech_name, 5066 prov_change->ec_mech_name, 5067 CRYPTO_MAX_MECH_NAME) != 0) 5068 continue; 5069 5070 /* 5071 * Determine if the mechanism is valid. If it 5072 * is not, mark the algorithm as being invalid. If 5073 * it is, mark the algorithm as being valid. 5074 */ 5075 for (mech_idx = 0; mech_idx < mech_count; mech_idx++) 5076 if (strncmp(alg->alg_mech_name, 5077 mechs[mech_idx], CRYPTO_MAX_MECH_NAME) == 0) 5078 break; 5079 if (mech_idx == mech_count && 5080 alg->alg_flags & ALG_FLAG_VALID) { 5081 alg->alg_flags &= ~ALG_FLAG_VALID; 5082 alg_changed = B_TRUE; 5083 } else if (mech_idx < mech_count && 5084 !(alg->alg_flags & ALG_FLAG_VALID)) { 5085 alg->alg_flags |= ALG_FLAG_VALID; 5086 alg_changed = B_TRUE; 5087 } 5088 5089 /* 5090 * Update the supported key sizes, regardless 5091 * of whether a crypto provider was added or 5092 * removed. 5093 */ 5094 oalg = *alg; 5095 ipsec_alg_fix_min_max(alg, algtype, ns); 5096 if (!alg_changed && 5097 alg->alg_ef_minbits != oalg.alg_ef_minbits || 5098 alg->alg_ef_maxbits != oalg.alg_ef_maxbits || 5099 alg->alg_ef_default != oalg.alg_ef_default || 5100 alg->alg_ef_default_bits != 5101 oalg.alg_ef_default_bits) 5102 alg_changed = B_TRUE; 5103 5104 /* 5105 * Update the affected SAs if a software provider is 5106 * being added or removed. 5107 */ 5108 if (prov_change->ec_provider_type == 5109 CRYPTO_SW_PROVIDER) 5110 sadb_alg_update(algtype, alg->alg_id, 5111 prov_change->ec_change == 5112 CRYPTO_MECH_ADDED, ns); 5113 } 5114 } 5115 mutex_exit(&ipss->ipsec_alg_lock); 5116 crypto_free_mech_list(mechs, mech_count); 5117 5118 if (alg_changed) { 5119 /* 5120 * An algorithm has changed, i.e. it became valid or 5121 * invalid, or its support key sizes have changed. 5122 * Notify ipsecah and ipsecesp of this change so 5123 * that they can send a SADB_REGISTER to their consumers. 5124 */ 5125 ipsecah_algs_changed(ns); 5126 ipsecesp_algs_changed(ns); 5127 } 5128 } 5129 5130 /* 5131 * Registers with the crypto framework to be notified of crypto 5132 * providers changes. Used to update the algorithm tables and 5133 * to free or create context templates if needed. Invoked after IPsec 5134 * is loaded successfully. 5135 * 5136 * This is called separately for each IP instance, so we ensure we only 5137 * register once. 5138 */ 5139 void 5140 ipsec_register_prov_update(void) 5141 { 5142 if (prov_update_handle != NULL) 5143 return; 5144 5145 prov_update_handle = crypto_notify_events( 5146 ipsec_prov_update_callback, CRYPTO_EVENT_MECHS_CHANGED); 5147 } 5148 5149 /* 5150 * Unregisters from the framework to be notified of crypto providers 5151 * changes. Called from ipsec_policy_g_destroy(). 5152 */ 5153 static void 5154 ipsec_unregister_prov_update(void) 5155 { 5156 if (prov_update_handle != NULL) 5157 crypto_unnotify_events(prov_update_handle); 5158 } 5159 5160 /* 5161 * Tunnel-mode support routines. 5162 */ 5163 5164 /* 5165 * Returns an mblk chain suitable for putnext() if policies match and IPsec 5166 * SAs are available. If there's no per-tunnel policy, or a match comes back 5167 * with no match, then still return the packet and have global policy take 5168 * a crack at it in IP. 5169 * This updates the ip_xmit_attr with the IPsec policy. 5170 * 5171 * Remember -> we can be forwarding packets. Keep that in mind w.r.t. 5172 * inner-packet contents. 5173 */ 5174 mblk_t * 5175 ipsec_tun_outbound(mblk_t *mp, iptun_t *iptun, ipha_t *inner_ipv4, 5176 ip6_t *inner_ipv6, ipha_t *outer_ipv4, ip6_t *outer_ipv6, int outer_hdr_len, 5177 ip_xmit_attr_t *ixa) 5178 { 5179 ipsec_policy_head_t *polhead; 5180 ipsec_selector_t sel; 5181 mblk_t *nmp; 5182 boolean_t is_fragment; 5183 ipsec_policy_t *pol; 5184 ipsec_tun_pol_t *itp = iptun->iptun_itp; 5185 netstack_t *ns = iptun->iptun_ns; 5186 ipsec_stack_t *ipss = ns->netstack_ipsec; 5187 5188 ASSERT(outer_ipv6 != NULL && outer_ipv4 == NULL || 5189 outer_ipv4 != NULL && outer_ipv6 == NULL); 5190 /* We take care of inners in a bit. */ 5191 5192 /* Are the IPsec fields initialized at all? */ 5193 if (!(ixa->ixa_flags & IXAF_IPSEC_SECURE)) { 5194 ASSERT(ixa->ixa_ipsec_policy == NULL); 5195 ASSERT(ixa->ixa_ipsec_latch == NULL); 5196 ASSERT(ixa->ixa_ipsec_action == NULL); 5197 ASSERT(ixa->ixa_ipsec_ah_sa == NULL); 5198 ASSERT(ixa->ixa_ipsec_esp_sa == NULL); 5199 } 5200 5201 ASSERT(itp != NULL && (itp->itp_flags & ITPF_P_ACTIVE)); 5202 polhead = itp->itp_policy; 5203 5204 bzero(&sel, sizeof (sel)); 5205 if (inner_ipv4 != NULL) { 5206 ASSERT(inner_ipv6 == NULL); 5207 sel.ips_isv4 = B_TRUE; 5208 sel.ips_local_addr_v4 = inner_ipv4->ipha_src; 5209 sel.ips_remote_addr_v4 = inner_ipv4->ipha_dst; 5210 sel.ips_protocol = (uint8_t)inner_ipv4->ipha_protocol; 5211 } else { 5212 ASSERT(inner_ipv6 != NULL); 5213 sel.ips_isv4 = B_FALSE; 5214 sel.ips_local_addr_v6 = inner_ipv6->ip6_src; 5215 /* 5216 * We don't care about routing-header dests in the 5217 * forwarding/tunnel path, so just grab ip6_dst. 5218 */ 5219 sel.ips_remote_addr_v6 = inner_ipv6->ip6_dst; 5220 } 5221 5222 if (itp->itp_flags & ITPF_P_PER_PORT_SECURITY) { 5223 /* 5224 * Caller can prepend the outer header, which means 5225 * inner_ipv[46] may be stuck in the middle. Pullup the whole 5226 * mess now if need-be, for easier processing later. Don't 5227 * forget to rewire the outer header too. 5228 */ 5229 if (mp->b_cont != NULL) { 5230 nmp = msgpullup(mp, -1); 5231 if (nmp == NULL) { 5232 ip_drop_packet(mp, B_FALSE, NULL, 5233 DROPPER(ipss, ipds_spd_nomem), 5234 &ipss->ipsec_spd_dropper); 5235 return (NULL); 5236 } 5237 freemsg(mp); 5238 mp = nmp; 5239 if (outer_ipv4 != NULL) 5240 outer_ipv4 = (ipha_t *)mp->b_rptr; 5241 else 5242 outer_ipv6 = (ip6_t *)mp->b_rptr; 5243 if (inner_ipv4 != NULL) { 5244 inner_ipv4 = 5245 (ipha_t *)(mp->b_rptr + outer_hdr_len); 5246 } else { 5247 inner_ipv6 = 5248 (ip6_t *)(mp->b_rptr + outer_hdr_len); 5249 } 5250 } 5251 if (inner_ipv4 != NULL) { 5252 is_fragment = IS_V4_FRAGMENT( 5253 inner_ipv4->ipha_fragment_offset_and_flags); 5254 } else { 5255 sel.ips_remote_addr_v6 = ip_get_dst_v6(inner_ipv6, mp, 5256 &is_fragment); 5257 } 5258 5259 if (is_fragment) { 5260 ipha_t *oiph; 5261 ipha_t *iph = NULL; 5262 ip6_t *ip6h = NULL; 5263 int hdr_len; 5264 uint16_t ip6_hdr_length; 5265 uint8_t v6_proto; 5266 uint8_t *v6_proto_p; 5267 5268 /* 5269 * We have a fragment we need to track! 5270 */ 5271 mp = ipsec_fragcache_add(&itp->itp_fragcache, NULL, mp, 5272 outer_hdr_len, ipss); 5273 if (mp == NULL) 5274 return (NULL); 5275 ASSERT(mp->b_cont == NULL); 5276 5277 /* 5278 * If we get here, we have a full fragment chain 5279 */ 5280 5281 oiph = (ipha_t *)mp->b_rptr; 5282 if (IPH_HDR_VERSION(oiph) == IPV4_VERSION) { 5283 hdr_len = ((outer_hdr_len != 0) ? 5284 IPH_HDR_LENGTH(oiph) : 0); 5285 iph = (ipha_t *)(mp->b_rptr + hdr_len); 5286 } else { 5287 ASSERT(IPH_HDR_VERSION(oiph) == IPV6_VERSION); 5288 ip6h = (ip6_t *)mp->b_rptr; 5289 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, 5290 &ip6_hdr_length, &v6_proto_p)) { 5291 ip_drop_packet_chain(mp, B_FALSE, NULL, 5292 DROPPER(ipss, 5293 ipds_spd_malformed_packet), 5294 &ipss->ipsec_spd_dropper); 5295 return (NULL); 5296 } 5297 hdr_len = ip6_hdr_length; 5298 } 5299 outer_hdr_len = hdr_len; 5300 5301 if (sel.ips_isv4) { 5302 if (iph == NULL) { 5303 /* Was v6 outer */ 5304 iph = (ipha_t *)(mp->b_rptr + hdr_len); 5305 } 5306 inner_ipv4 = iph; 5307 sel.ips_local_addr_v4 = inner_ipv4->ipha_src; 5308 sel.ips_remote_addr_v4 = inner_ipv4->ipha_dst; 5309 sel.ips_protocol = 5310 (uint8_t)inner_ipv4->ipha_protocol; 5311 } else { 5312 inner_ipv6 = (ip6_t *)(mp->b_rptr + 5313 hdr_len); 5314 sel.ips_local_addr_v6 = inner_ipv6->ip6_src; 5315 sel.ips_remote_addr_v6 = inner_ipv6->ip6_dst; 5316 if (!ip_hdr_length_nexthdr_v6(mp, 5317 inner_ipv6, &ip6_hdr_length, &v6_proto_p)) { 5318 ip_drop_packet_chain(mp, B_FALSE, NULL, 5319 DROPPER(ipss, 5320 ipds_spd_malformed_frag), 5321 &ipss->ipsec_spd_dropper); 5322 return (NULL); 5323 } 5324 v6_proto = *v6_proto_p; 5325 sel.ips_protocol = v6_proto; 5326 #ifdef FRAGCACHE_DEBUG 5327 cmn_err(CE_WARN, "v6_sel.ips_protocol = %d\n", 5328 sel.ips_protocol); 5329 #endif 5330 } 5331 /* Ports are extracted below */ 5332 } 5333 5334 /* Get ports... */ 5335 if (!ipsec_init_outbound_ports(&sel, mp, 5336 inner_ipv4, inner_ipv6, outer_hdr_len, ipss)) { 5337 /* callee did ip_drop_packet_chain() on mp. */ 5338 return (NULL); 5339 } 5340 #ifdef FRAGCACHE_DEBUG 5341 if (inner_ipv4 != NULL) 5342 cmn_err(CE_WARN, 5343 "(v4) sel.ips_protocol = %d, " 5344 "sel.ips_local_port = %d, " 5345 "sel.ips_remote_port = %d\n", 5346 sel.ips_protocol, ntohs(sel.ips_local_port), 5347 ntohs(sel.ips_remote_port)); 5348 if (inner_ipv6 != NULL) 5349 cmn_err(CE_WARN, 5350 "(v6) sel.ips_protocol = %d, " 5351 "sel.ips_local_port = %d, " 5352 "sel.ips_remote_port = %d\n", 5353 sel.ips_protocol, ntohs(sel.ips_local_port), 5354 ntohs(sel.ips_remote_port)); 5355 #endif 5356 /* Success so far! */ 5357 } 5358 rw_enter(&polhead->iph_lock, RW_READER); 5359 pol = ipsec_find_policy_head(NULL, polhead, IPSEC_TYPE_OUTBOUND, &sel); 5360 rw_exit(&polhead->iph_lock); 5361 if (pol == NULL) { 5362 /* 5363 * No matching policy on this tunnel, drop the packet. 5364 * 5365 * NOTE: Tunnel-mode tunnels are different from the 5366 * IP global transport mode policy head. For a tunnel-mode 5367 * tunnel, we drop the packet in lieu of passing it 5368 * along accepted the way a global-policy miss would. 5369 * 5370 * NOTE2: "negotiate transport" tunnels should match ALL 5371 * inbound packets, but we do not uncomment the ASSERT() 5372 * below because if/when we open PF_POLICY, a user can 5373 * shoot him/her-self in the foot with a 0 priority. 5374 */ 5375 5376 /* ASSERT(itp->itp_flags & ITPF_P_TUNNEL); */ 5377 #ifdef FRAGCACHE_DEBUG 5378 cmn_err(CE_WARN, "ipsec_tun_outbound(): No matching tunnel " 5379 "per-port policy\n"); 5380 #endif 5381 ip_drop_packet_chain(mp, B_FALSE, NULL, 5382 DROPPER(ipss, ipds_spd_explicit), 5383 &ipss->ipsec_spd_dropper); 5384 return (NULL); 5385 } 5386 5387 #ifdef FRAGCACHE_DEBUG 5388 cmn_err(CE_WARN, "Having matching tunnel per-port policy\n"); 5389 #endif 5390 5391 /* 5392 * NOTE: ixa_cleanup() function will release pol references. 5393 */ 5394 ixa->ixa_ipsec_policy = pol; 5395 /* 5396 * NOTE: There is a subtle difference between iptun_zoneid and 5397 * iptun_connp->conn_zoneid explained in iptun_conn_create(). When 5398 * interacting with the ip module, we must use conn_zoneid. 5399 */ 5400 ixa->ixa_zoneid = iptun->iptun_connp->conn_zoneid; 5401 5402 ASSERT((outer_ipv4 != NULL) ? (ixa->ixa_flags & IXAF_IS_IPV4) : 5403 !(ixa->ixa_flags & IXAF_IS_IPV4)); 5404 ASSERT(ixa->ixa_ipsec_policy != NULL); 5405 ixa->ixa_flags |= IXAF_IPSEC_SECURE; 5406 5407 if (!(itp->itp_flags & ITPF_P_TUNNEL)) { 5408 /* Set up transport mode for tunnelled packets. */ 5409 ixa->ixa_ipsec_proto = (inner_ipv4 != NULL) ? IPPROTO_ENCAP : 5410 IPPROTO_IPV6; 5411 return (mp); 5412 } 5413 5414 /* Fill in tunnel-mode goodies here. */ 5415 ixa->ixa_flags |= IXAF_IPSEC_TUNNEL; 5416 /* XXX Do I need to fill in all of the goodies here? */ 5417 if (inner_ipv4) { 5418 ixa->ixa_ipsec_inaf = AF_INET; 5419 ixa->ixa_ipsec_insrc[0] = 5420 pol->ipsp_sel->ipsl_key.ipsl_local.ipsad_v4; 5421 ixa->ixa_ipsec_indst[0] = 5422 pol->ipsp_sel->ipsl_key.ipsl_remote.ipsad_v4; 5423 } else { 5424 ixa->ixa_ipsec_inaf = AF_INET6; 5425 ixa->ixa_ipsec_insrc[0] = 5426 pol->ipsp_sel->ipsl_key.ipsl_local.ipsad_v6.s6_addr32[0]; 5427 ixa->ixa_ipsec_insrc[1] = 5428 pol->ipsp_sel->ipsl_key.ipsl_local.ipsad_v6.s6_addr32[1]; 5429 ixa->ixa_ipsec_insrc[2] = 5430 pol->ipsp_sel->ipsl_key.ipsl_local.ipsad_v6.s6_addr32[2]; 5431 ixa->ixa_ipsec_insrc[3] = 5432 pol->ipsp_sel->ipsl_key.ipsl_local.ipsad_v6.s6_addr32[3]; 5433 ixa->ixa_ipsec_indst[0] = 5434 pol->ipsp_sel->ipsl_key.ipsl_remote.ipsad_v6.s6_addr32[0]; 5435 ixa->ixa_ipsec_indst[1] = 5436 pol->ipsp_sel->ipsl_key.ipsl_remote.ipsad_v6.s6_addr32[1]; 5437 ixa->ixa_ipsec_indst[2] = 5438 pol->ipsp_sel->ipsl_key.ipsl_remote.ipsad_v6.s6_addr32[2]; 5439 ixa->ixa_ipsec_indst[3] = 5440 pol->ipsp_sel->ipsl_key.ipsl_remote.ipsad_v6.s6_addr32[3]; 5441 } 5442 ixa->ixa_ipsec_insrcpfx = pol->ipsp_sel->ipsl_key.ipsl_local_pfxlen; 5443 ixa->ixa_ipsec_indstpfx = pol->ipsp_sel->ipsl_key.ipsl_remote_pfxlen; 5444 /* NOTE: These are used for transport mode too. */ 5445 ixa->ixa_ipsec_src_port = pol->ipsp_sel->ipsl_key.ipsl_lport; 5446 ixa->ixa_ipsec_dst_port = pol->ipsp_sel->ipsl_key.ipsl_rport; 5447 ixa->ixa_ipsec_proto = pol->ipsp_sel->ipsl_key.ipsl_proto; 5448 5449 return (mp); 5450 } 5451 5452 /* 5453 * NOTE: The following releases pol's reference and 5454 * calls ip_drop_packet() for me on NULL returns. 5455 */ 5456 mblk_t * 5457 ipsec_check_ipsecin_policy_reasm(mblk_t *attr_mp, ipsec_policy_t *pol, 5458 ipha_t *inner_ipv4, ip6_t *inner_ipv6, uint64_t pkt_unique, netstack_t *ns) 5459 { 5460 /* Assume attr_mp is a chain of b_next-linked ip_recv_attr mblk. */ 5461 mblk_t *data_chain = NULL, *data_tail = NULL; 5462 mblk_t *next; 5463 mblk_t *data_mp; 5464 ip_recv_attr_t iras; 5465 5466 while (attr_mp != NULL) { 5467 ASSERT(ip_recv_attr_is_mblk(attr_mp)); 5468 next = attr_mp->b_next; 5469 attr_mp->b_next = NULL; /* No tripping asserts. */ 5470 5471 data_mp = attr_mp->b_cont; 5472 attr_mp->b_cont = NULL; 5473 if (!ip_recv_attr_from_mblk(attr_mp, &iras)) { 5474 /* The ill or ip_stack_t disappeared on us */ 5475 freemsg(data_mp); /* ip_drop_packet?? */ 5476 ira_cleanup(&iras, B_TRUE); 5477 goto fail; 5478 } 5479 5480 /* 5481 * Need IPPOL_REFHOLD(pol) for extras because 5482 * ipsecin_policy does the refrele. 5483 */ 5484 IPPOL_REFHOLD(pol); 5485 5486 data_mp = ipsec_check_ipsecin_policy(data_mp, pol, inner_ipv4, 5487 inner_ipv6, pkt_unique, &iras, ns); 5488 ira_cleanup(&iras, B_TRUE); 5489 5490 if (data_mp == NULL) 5491 goto fail; 5492 5493 if (data_tail == NULL) { 5494 /* First one */ 5495 data_chain = data_tail = data_mp; 5496 } else { 5497 data_tail->b_next = data_mp; 5498 data_tail = data_mp; 5499 } 5500 attr_mp = next; 5501 } 5502 /* 5503 * One last release because either the loop bumped it up, or we never 5504 * called ipsec_check_ipsecin_policy(). 5505 */ 5506 IPPOL_REFRELE(pol); 5507 5508 /* data_chain is ready for return to tun module. */ 5509 return (data_chain); 5510 5511 fail: 5512 /* 5513 * Need to get rid of any extra pol 5514 * references, and any remaining bits as well. 5515 */ 5516 IPPOL_REFRELE(pol); 5517 ipsec_freemsg_chain(data_chain); 5518 ipsec_freemsg_chain(next); /* ipdrop stats? */ 5519 return (NULL); 5520 } 5521 5522 /* 5523 * Return a message if the inbound packet passed an IPsec policy check. Returns 5524 * NULL if it failed or if it is a fragment needing its friends before a 5525 * policy check can be performed. 5526 * 5527 * Expects a non-NULL data_mp, and a non-NULL polhead. 5528 * The returned mblk may be a b_next chain of packets if fragments 5529 * neeeded to be collected for a proper policy check. 5530 * 5531 * This function calls ip_drop_packet() on data_mp if need be. 5532 * 5533 * NOTE: outer_hdr_len is signed. If it's a negative value, the caller 5534 * is inspecting an ICMP packet. 5535 */ 5536 mblk_t * 5537 ipsec_tun_inbound(ip_recv_attr_t *ira, mblk_t *data_mp, ipsec_tun_pol_t *itp, 5538 ipha_t *inner_ipv4, ip6_t *inner_ipv6, ipha_t *outer_ipv4, 5539 ip6_t *outer_ipv6, int outer_hdr_len, netstack_t *ns) 5540 { 5541 ipsec_policy_head_t *polhead; 5542 ipsec_selector_t sel; 5543 ipsec_policy_t *pol; 5544 uint16_t tmpport; 5545 selret_t rc; 5546 boolean_t port_policy_present, is_icmp, global_present; 5547 in6_addr_t tmpaddr; 5548 ipaddr_t tmp4; 5549 uint8_t flags, *inner_hdr; 5550 ipsec_stack_t *ipss = ns->netstack_ipsec; 5551 5552 sel.ips_is_icmp_inv_acq = 0; 5553 5554 if (outer_ipv4 != NULL) { 5555 ASSERT(outer_ipv6 == NULL); 5556 global_present = ipss->ipsec_inbound_v4_policy_present; 5557 } else { 5558 ASSERT(outer_ipv6 != NULL); 5559 global_present = ipss->ipsec_inbound_v6_policy_present; 5560 } 5561 5562 ASSERT(inner_ipv4 != NULL && inner_ipv6 == NULL || 5563 inner_ipv4 == NULL && inner_ipv6 != NULL); 5564 5565 if (outer_hdr_len < 0) { 5566 outer_hdr_len = (-outer_hdr_len); 5567 is_icmp = B_TRUE; 5568 } else { 5569 is_icmp = B_FALSE; 5570 } 5571 5572 if (itp != NULL && (itp->itp_flags & ITPF_P_ACTIVE)) { 5573 mblk_t *mp = data_mp; 5574 5575 polhead = itp->itp_policy; 5576 /* 5577 * We need to perform full Tunnel-Mode enforcement, 5578 * and we need to have inner-header data for such enforcement. 5579 * 5580 * See ipsec_init_inbound_sel() for the 0x80000000 on inbound 5581 * and on return. 5582 */ 5583 5584 port_policy_present = ((itp->itp_flags & 5585 ITPF_P_PER_PORT_SECURITY) ? B_TRUE : B_FALSE); 5586 /* 5587 * NOTE: Even if our policy is transport mode, set the 5588 * SEL_TUNNEL_MODE flag so ipsec_init_inbound_sel() can 5589 * do the right thing w.r.t. outer headers. 5590 */ 5591 flags = ((port_policy_present ? SEL_PORT_POLICY : SEL_NONE) | 5592 (is_icmp ? SEL_IS_ICMP : SEL_NONE) | SEL_TUNNEL_MODE); 5593 5594 rc = ipsec_init_inbound_sel(&sel, data_mp, inner_ipv4, 5595 inner_ipv6, flags); 5596 5597 switch (rc) { 5598 case SELRET_NOMEM: 5599 ip_drop_packet(data_mp, B_TRUE, NULL, 5600 DROPPER(ipss, ipds_spd_nomem), 5601 &ipss->ipsec_spd_dropper); 5602 return (NULL); 5603 case SELRET_TUNFRAG: 5604 /* 5605 * At this point, if we're cleartext, we don't want 5606 * to go there. 5607 */ 5608 if (!(ira->ira_flags & IRAF_IPSEC_SECURE)) { 5609 ip_drop_packet(data_mp, B_TRUE, NULL, 5610 DROPPER(ipss, ipds_spd_got_clear), 5611 &ipss->ipsec_spd_dropper); 5612 return (NULL); 5613 } 5614 5615 /* 5616 * Inner and outer headers may not be contiguous. 5617 * Pullup the data_mp now to satisfy assumptions of 5618 * ipsec_fragcache_add() 5619 */ 5620 if (data_mp->b_cont != NULL) { 5621 mblk_t *nmp; 5622 5623 nmp = msgpullup(data_mp, -1); 5624 if (nmp == NULL) { 5625 ip_drop_packet(data_mp, B_TRUE, NULL, 5626 DROPPER(ipss, ipds_spd_nomem), 5627 &ipss->ipsec_spd_dropper); 5628 return (NULL); 5629 } 5630 freemsg(data_mp); 5631 data_mp = nmp; 5632 if (outer_ipv4 != NULL) 5633 outer_ipv4 = 5634 (ipha_t *)data_mp->b_rptr; 5635 else 5636 outer_ipv6 = 5637 (ip6_t *)data_mp->b_rptr; 5638 if (inner_ipv4 != NULL) { 5639 inner_ipv4 = 5640 (ipha_t *)(data_mp->b_rptr + 5641 outer_hdr_len); 5642 } else { 5643 inner_ipv6 = 5644 (ip6_t *)(data_mp->b_rptr + 5645 outer_hdr_len); 5646 } 5647 } 5648 5649 /* 5650 * If we need to queue the packet. First we 5651 * get an mblk with the attributes. ipsec_fragcache_add 5652 * will prepend that to the queued data and return 5653 * a list of b_next messages each of which starts with 5654 * the attribute mblk. 5655 */ 5656 mp = ip_recv_attr_to_mblk(ira); 5657 if (mp == NULL) { 5658 ip_drop_packet(data_mp, B_TRUE, NULL, 5659 DROPPER(ipss, ipds_spd_nomem), 5660 &ipss->ipsec_spd_dropper); 5661 return (NULL); 5662 } 5663 5664 mp = ipsec_fragcache_add(&itp->itp_fragcache, 5665 mp, data_mp, outer_hdr_len, ipss); 5666 5667 if (mp == NULL) { 5668 /* 5669 * Data is cached, fragment chain is not 5670 * complete. 5671 */ 5672 return (NULL); 5673 } 5674 5675 /* 5676 * If we get here, we have a full fragment chain. 5677 * Reacquire headers and selectors from first fragment. 5678 */ 5679 ASSERT(ip_recv_attr_is_mblk(mp)); 5680 data_mp = mp->b_cont; 5681 inner_hdr = data_mp->b_rptr; 5682 if (outer_ipv4 != NULL) { 5683 inner_hdr += IPH_HDR_LENGTH( 5684 (ipha_t *)data_mp->b_rptr); 5685 } else { 5686 inner_hdr += ip_hdr_length_v6(data_mp, 5687 (ip6_t *)data_mp->b_rptr); 5688 } 5689 ASSERT(inner_hdr <= data_mp->b_wptr); 5690 5691 if (inner_ipv4 != NULL) { 5692 inner_ipv4 = (ipha_t *)inner_hdr; 5693 inner_ipv6 = NULL; 5694 } else { 5695 inner_ipv6 = (ip6_t *)inner_hdr; 5696 inner_ipv4 = NULL; 5697 } 5698 5699 /* 5700 * Use SEL_TUNNEL_MODE to take into account the outer 5701 * header. Use SEL_POST_FRAG so we always get ports. 5702 */ 5703 rc = ipsec_init_inbound_sel(&sel, data_mp, 5704 inner_ipv4, inner_ipv6, 5705 SEL_TUNNEL_MODE | SEL_POST_FRAG); 5706 switch (rc) { 5707 case SELRET_SUCCESS: 5708 /* 5709 * Get to same place as first caller's 5710 * SELRET_SUCCESS case. 5711 */ 5712 break; 5713 case SELRET_NOMEM: 5714 ip_drop_packet_chain(mp, B_TRUE, NULL, 5715 DROPPER(ipss, ipds_spd_nomem), 5716 &ipss->ipsec_spd_dropper); 5717 return (NULL); 5718 case SELRET_BADPKT: 5719 ip_drop_packet_chain(mp, B_TRUE, NULL, 5720 DROPPER(ipss, ipds_spd_malformed_frag), 5721 &ipss->ipsec_spd_dropper); 5722 return (NULL); 5723 case SELRET_TUNFRAG: 5724 cmn_err(CE_WARN, "(TUNFRAG on 2nd call...)"); 5725 /* FALLTHRU */ 5726 default: 5727 cmn_err(CE_WARN, "ipsec_init_inbound_sel(mark2)" 5728 " returns bizarro 0x%x", rc); 5729 /* Guaranteed panic! */ 5730 ASSERT(rc == SELRET_NOMEM); 5731 return (NULL); 5732 } 5733 /* FALLTHRU */ 5734 case SELRET_SUCCESS: 5735 /* 5736 * Common case: 5737 * No per-port policy or a non-fragment. Keep going. 5738 */ 5739 break; 5740 case SELRET_BADPKT: 5741 /* 5742 * We may receive ICMP (with IPv6 inner) packets that 5743 * trigger this return value. Send 'em in for 5744 * enforcement checking. 5745 */ 5746 cmn_err(CE_NOTE, "ipsec_tun_inbound(): " 5747 "sending 'bad packet' in for enforcement"); 5748 break; 5749 default: 5750 cmn_err(CE_WARN, 5751 "ipsec_init_inbound_sel() returns bizarro 0x%x", 5752 rc); 5753 ASSERT(rc == SELRET_NOMEM); /* Guaranteed panic! */ 5754 return (NULL); 5755 } 5756 5757 if (is_icmp) { 5758 /* 5759 * Swap local/remote because this is an ICMP packet. 5760 */ 5761 tmpaddr = sel.ips_local_addr_v6; 5762 sel.ips_local_addr_v6 = sel.ips_remote_addr_v6; 5763 sel.ips_remote_addr_v6 = tmpaddr; 5764 tmpport = sel.ips_local_port; 5765 sel.ips_local_port = sel.ips_remote_port; 5766 sel.ips_remote_port = tmpport; 5767 } 5768 5769 /* find_policy_head() */ 5770 rw_enter(&polhead->iph_lock, RW_READER); 5771 pol = ipsec_find_policy_head(NULL, polhead, IPSEC_TYPE_INBOUND, 5772 &sel); 5773 rw_exit(&polhead->iph_lock); 5774 if (pol != NULL) { 5775 uint64_t pkt_unique; 5776 5777 if (!(ira->ira_flags & IRAF_IPSEC_SECURE)) { 5778 if (!pol->ipsp_act->ipa_allow_clear) { 5779 /* 5780 * XXX should never get here with 5781 * tunnel reassembled fragments? 5782 */ 5783 ASSERT(mp == data_mp); 5784 ip_drop_packet(data_mp, B_TRUE, NULL, 5785 DROPPER(ipss, ipds_spd_got_clear), 5786 &ipss->ipsec_spd_dropper); 5787 IPPOL_REFRELE(pol); 5788 return (NULL); 5789 } else { 5790 IPPOL_REFRELE(pol); 5791 return (mp); 5792 } 5793 } 5794 pkt_unique = SA_UNIQUE_ID(sel.ips_remote_port, 5795 sel.ips_local_port, 5796 (inner_ipv4 == NULL) ? IPPROTO_IPV6 : 5797 IPPROTO_ENCAP, sel.ips_protocol); 5798 5799 /* 5800 * NOTE: The following releases pol's reference and 5801 * calls ip_drop_packet() for me on NULL returns. 5802 * 5803 * "sel" is still good here, so let's use it! 5804 */ 5805 if (data_mp == mp) { 5806 /* A single packet without attributes */ 5807 data_mp = ipsec_check_ipsecin_policy(data_mp, 5808 pol, inner_ipv4, inner_ipv6, pkt_unique, 5809 ira, ns); 5810 } else { 5811 /* 5812 * We pass in the b_next chain of attr_mp's 5813 * and get back a b_next chain of data_mp's. 5814 */ 5815 data_mp = ipsec_check_ipsecin_policy_reasm(mp, 5816 pol, inner_ipv4, inner_ipv6, pkt_unique, 5817 ns); 5818 } 5819 return (data_mp); 5820 } 5821 5822 /* 5823 * Else fallthru and check the global policy on the outer 5824 * header(s) if this tunnel is an old-style transport-mode 5825 * one. Drop the packet explicitly (no policy entry) for 5826 * a new-style tunnel-mode tunnel. 5827 */ 5828 if ((itp->itp_flags & ITPF_P_TUNNEL) && !is_icmp) { 5829 ip_drop_packet_chain(data_mp, B_TRUE, NULL, 5830 DROPPER(ipss, ipds_spd_explicit), 5831 &ipss->ipsec_spd_dropper); 5832 return (NULL); 5833 } 5834 } 5835 5836 /* 5837 * NOTE: If we reach here, we will not have packet chains from 5838 * fragcache_add(), because the only way I get chains is on a 5839 * tunnel-mode tunnel, which either returns with a pass, or gets 5840 * hit by the ip_drop_packet_chain() call right above here. 5841 */ 5842 ASSERT(data_mp->b_next == NULL); 5843 5844 /* If no per-tunnel security, check global policy now. */ 5845 if ((ira->ira_flags & IRAF_IPSEC_SECURE) && !global_present) { 5846 if (ira->ira_flags & IRAF_TRUSTED_ICMP) { 5847 /* 5848 * This is an ICMP message that was geenrated locally. 5849 * We should accept it. 5850 */ 5851 return (data_mp); 5852 } 5853 5854 ip_drop_packet(data_mp, B_TRUE, NULL, 5855 DROPPER(ipss, ipds_spd_got_secure), 5856 &ipss->ipsec_spd_dropper); 5857 return (NULL); 5858 } 5859 5860 if (is_icmp) { 5861 /* 5862 * For ICMP packets, "outer_ipvN" is set to the outer header 5863 * that is *INSIDE* the ICMP payload. For global policy 5864 * checking, we need to reverse src/dst on the payload in 5865 * order to construct selectors appropriately. See "ripha" 5866 * constructions in ip.c. To avoid a bug like 6478464 (see 5867 * earlier in this file), we will actually exchange src/dst 5868 * in the packet, and reverse if after the call to 5869 * ipsec_check_global_policy(). 5870 */ 5871 if (outer_ipv4 != NULL) { 5872 tmp4 = outer_ipv4->ipha_src; 5873 outer_ipv4->ipha_src = outer_ipv4->ipha_dst; 5874 outer_ipv4->ipha_dst = tmp4; 5875 } else { 5876 ASSERT(outer_ipv6 != NULL); 5877 tmpaddr = outer_ipv6->ip6_src; 5878 outer_ipv6->ip6_src = outer_ipv6->ip6_dst; 5879 outer_ipv6->ip6_dst = tmpaddr; 5880 } 5881 } 5882 5883 data_mp = ipsec_check_global_policy(data_mp, NULL, outer_ipv4, 5884 outer_ipv6, ira, ns); 5885 if (data_mp == NULL) 5886 return (NULL); 5887 5888 if (is_icmp) { 5889 /* Set things back to normal. */ 5890 if (outer_ipv4 != NULL) { 5891 tmp4 = outer_ipv4->ipha_src; 5892 outer_ipv4->ipha_src = outer_ipv4->ipha_dst; 5893 outer_ipv4->ipha_dst = tmp4; 5894 } else { 5895 /* No need for ASSERT()s now. */ 5896 tmpaddr = outer_ipv6->ip6_src; 5897 outer_ipv6->ip6_src = outer_ipv6->ip6_dst; 5898 outer_ipv6->ip6_dst = tmpaddr; 5899 } 5900 } 5901 5902 /* 5903 * At this point, we pretend it's a cleartext accepted 5904 * packet. 5905 */ 5906 return (data_mp); 5907 } 5908 5909 /* 5910 * AVL comparison routine for our list of tunnel polheads. 5911 */ 5912 static int 5913 tunnel_compare(const void *arg1, const void *arg2) 5914 { 5915 ipsec_tun_pol_t *left, *right; 5916 int rc; 5917 5918 left = (ipsec_tun_pol_t *)arg1; 5919 right = (ipsec_tun_pol_t *)arg2; 5920 5921 rc = strncmp(left->itp_name, right->itp_name, LIFNAMSIZ); 5922 return (rc == 0 ? rc : (rc > 0 ? 1 : -1)); 5923 } 5924 5925 /* 5926 * Free a tunnel policy node. 5927 */ 5928 void 5929 itp_free(ipsec_tun_pol_t *node, netstack_t *ns) 5930 { 5931 if (node->itp_policy != NULL) { 5932 IPPH_REFRELE(node->itp_policy, ns); 5933 node->itp_policy = NULL; 5934 } 5935 if (node->itp_inactive != NULL) { 5936 IPPH_REFRELE(node->itp_inactive, ns); 5937 node->itp_inactive = NULL; 5938 } 5939 mutex_destroy(&node->itp_lock); 5940 kmem_free(node, sizeof (*node)); 5941 } 5942 5943 void 5944 itp_unlink(ipsec_tun_pol_t *node, netstack_t *ns) 5945 { 5946 ipsec_stack_t *ipss = ns->netstack_ipsec; 5947 5948 rw_enter(&ipss->ipsec_tunnel_policy_lock, RW_WRITER); 5949 ipss->ipsec_tunnel_policy_gen++; 5950 ipsec_fragcache_uninit(&node->itp_fragcache, ipss); 5951 avl_remove(&ipss->ipsec_tunnel_policies, node); 5952 rw_exit(&ipss->ipsec_tunnel_policy_lock); 5953 ITP_REFRELE(node, ns); 5954 } 5955 5956 /* 5957 * Public interface to look up a tunnel security policy by name. Used by 5958 * spdsock mostly. Returns "node" with a bumped refcnt. 5959 */ 5960 ipsec_tun_pol_t * 5961 get_tunnel_policy(char *name, netstack_t *ns) 5962 { 5963 ipsec_tun_pol_t *node, lookup; 5964 ipsec_stack_t *ipss = ns->netstack_ipsec; 5965 5966 (void) strncpy(lookup.itp_name, name, LIFNAMSIZ); 5967 5968 rw_enter(&ipss->ipsec_tunnel_policy_lock, RW_READER); 5969 node = (ipsec_tun_pol_t *)avl_find(&ipss->ipsec_tunnel_policies, 5970 &lookup, NULL); 5971 if (node != NULL) { 5972 ITP_REFHOLD(node); 5973 } 5974 rw_exit(&ipss->ipsec_tunnel_policy_lock); 5975 5976 return (node); 5977 } 5978 5979 /* 5980 * Public interface to walk all tunnel security polcies. Useful for spdsock 5981 * DUMP operations. iterator() will not consume a reference. 5982 */ 5983 void 5984 itp_walk(void (*iterator)(ipsec_tun_pol_t *, void *, netstack_t *), 5985 void *arg, netstack_t *ns) 5986 { 5987 ipsec_tun_pol_t *node; 5988 ipsec_stack_t *ipss = ns->netstack_ipsec; 5989 5990 rw_enter(&ipss->ipsec_tunnel_policy_lock, RW_READER); 5991 for (node = avl_first(&ipss->ipsec_tunnel_policies); node != NULL; 5992 node = AVL_NEXT(&ipss->ipsec_tunnel_policies, node)) { 5993 iterator(node, arg, ns); 5994 } 5995 rw_exit(&ipss->ipsec_tunnel_policy_lock); 5996 } 5997 5998 /* 5999 * Initialize policy head. This can only fail if there's a memory problem. 6000 */ 6001 static boolean_t 6002 tunnel_polhead_init(ipsec_policy_head_t *iph, netstack_t *ns) 6003 { 6004 ipsec_stack_t *ipss = ns->netstack_ipsec; 6005 6006 rw_init(&iph->iph_lock, NULL, RW_DEFAULT, NULL); 6007 iph->iph_refs = 1; 6008 iph->iph_gen = 0; 6009 if (ipsec_alloc_table(iph, ipss->ipsec_tun_spd_hashsize, 6010 KM_SLEEP, B_FALSE, ns) != 0) { 6011 ipsec_polhead_free_table(iph); 6012 return (B_FALSE); 6013 } 6014 ipsec_polhead_init(iph, ipss->ipsec_tun_spd_hashsize); 6015 return (B_TRUE); 6016 } 6017 6018 /* 6019 * Create a tunnel policy node with "name". Set errno with 6020 * ENOMEM if there's a memory problem, and EEXIST if there's an existing 6021 * node. 6022 */ 6023 ipsec_tun_pol_t * 6024 create_tunnel_policy(char *name, int *errno, uint64_t *gen, netstack_t *ns) 6025 { 6026 ipsec_tun_pol_t *newbie, *existing; 6027 avl_index_t where; 6028 ipsec_stack_t *ipss = ns->netstack_ipsec; 6029 6030 newbie = kmem_zalloc(sizeof (*newbie), KM_NOSLEEP); 6031 if (newbie == NULL) { 6032 *errno = ENOMEM; 6033 return (NULL); 6034 } 6035 if (!ipsec_fragcache_init(&newbie->itp_fragcache)) { 6036 kmem_free(newbie, sizeof (*newbie)); 6037 *errno = ENOMEM; 6038 return (NULL); 6039 } 6040 6041 (void) strncpy(newbie->itp_name, name, LIFNAMSIZ); 6042 6043 rw_enter(&ipss->ipsec_tunnel_policy_lock, RW_WRITER); 6044 existing = (ipsec_tun_pol_t *)avl_find(&ipss->ipsec_tunnel_policies, 6045 newbie, &where); 6046 if (existing != NULL) { 6047 itp_free(newbie, ns); 6048 *errno = EEXIST; 6049 rw_exit(&ipss->ipsec_tunnel_policy_lock); 6050 return (NULL); 6051 } 6052 ipss->ipsec_tunnel_policy_gen++; 6053 *gen = ipss->ipsec_tunnel_policy_gen; 6054 newbie->itp_refcnt = 2; /* One for the caller, one for the tree. */ 6055 newbie->itp_next_policy_index = 1; 6056 avl_insert(&ipss->ipsec_tunnel_policies, newbie, where); 6057 mutex_init(&newbie->itp_lock, NULL, MUTEX_DEFAULT, NULL); 6058 newbie->itp_policy = kmem_zalloc(sizeof (ipsec_policy_head_t), 6059 KM_NOSLEEP); 6060 if (newbie->itp_policy == NULL) 6061 goto nomem; 6062 newbie->itp_inactive = kmem_zalloc(sizeof (ipsec_policy_head_t), 6063 KM_NOSLEEP); 6064 if (newbie->itp_inactive == NULL) { 6065 kmem_free(newbie->itp_policy, sizeof (ipsec_policy_head_t)); 6066 goto nomem; 6067 } 6068 6069 if (!tunnel_polhead_init(newbie->itp_policy, ns)) { 6070 kmem_free(newbie->itp_policy, sizeof (ipsec_policy_head_t)); 6071 kmem_free(newbie->itp_inactive, sizeof (ipsec_policy_head_t)); 6072 goto nomem; 6073 } else if (!tunnel_polhead_init(newbie->itp_inactive, ns)) { 6074 IPPH_REFRELE(newbie->itp_policy, ns); 6075 kmem_free(newbie->itp_inactive, sizeof (ipsec_policy_head_t)); 6076 goto nomem; 6077 } 6078 rw_exit(&ipss->ipsec_tunnel_policy_lock); 6079 6080 return (newbie); 6081 nomem: 6082 *errno = ENOMEM; 6083 kmem_free(newbie, sizeof (*newbie)); 6084 return (NULL); 6085 } 6086 6087 /* 6088 * Given two addresses, find a tunnel instance's IPsec policy heads. 6089 * Returns NULL on failure. 6090 */ 6091 ipsec_tun_pol_t * 6092 itp_get_byaddr(uint32_t *laddr, uint32_t *faddr, int af, ip_stack_t *ipst) 6093 { 6094 conn_t *connp; 6095 iptun_t *iptun; 6096 ipsec_tun_pol_t *itp = NULL; 6097 6098 /* Classifiers are used to "src" being foreign. */ 6099 if (af == AF_INET) { 6100 connp = ipcl_iptun_classify_v4((ipaddr_t *)faddr, 6101 (ipaddr_t *)laddr, ipst); 6102 } else { 6103 ASSERT(af == AF_INET6); 6104 ASSERT(!IN6_IS_ADDR_V4MAPPED((in6_addr_t *)laddr)); 6105 ASSERT(!IN6_IS_ADDR_V4MAPPED((in6_addr_t *)faddr)); 6106 connp = ipcl_iptun_classify_v6((in6_addr_t *)faddr, 6107 (in6_addr_t *)laddr, ipst); 6108 } 6109 6110 if (connp == NULL) 6111 return (NULL); 6112 6113 if (IPCL_IS_IPTUN(connp)) { 6114 iptun = connp->conn_iptun; 6115 if (iptun != NULL) { 6116 itp = iptun->iptun_itp; 6117 if (itp != NULL) { 6118 /* Braces due to the macro's nature... */ 6119 ITP_REFHOLD(itp); 6120 } 6121 } /* Else itp is already NULL. */ 6122 } 6123 6124 CONN_DEC_REF(connp); 6125 return (itp); 6126 } 6127 6128 /* 6129 * Frag cache code, based on SunScreen 3.2 source 6130 * screen/kernel/common/screen_fragcache.c 6131 */ 6132 6133 #define IPSEC_FRAG_TTL_MAX 5 6134 /* 6135 * Note that the following parameters create 256 hash buckets 6136 * with 1024 free entries to be distributed. Things are cleaned 6137 * periodically and are attempted to be cleaned when there is no 6138 * free space, but this system errs on the side of dropping packets 6139 * over creating memory exhaustion. We may decide to make hash 6140 * factor a tunable if this proves to be a bad decision. 6141 */ 6142 #define IPSEC_FRAG_HASH_SLOTS (1<<8) 6143 #define IPSEC_FRAG_HASH_FACTOR 4 6144 #define IPSEC_FRAG_HASH_SIZE (IPSEC_FRAG_HASH_SLOTS * IPSEC_FRAG_HASH_FACTOR) 6145 6146 #define IPSEC_FRAG_HASH_MASK (IPSEC_FRAG_HASH_SLOTS - 1) 6147 #define IPSEC_FRAG_HASH_FUNC(id) (((id) & IPSEC_FRAG_HASH_MASK) ^ \ 6148 (((id) / \ 6149 (ushort_t)IPSEC_FRAG_HASH_SLOTS) & \ 6150 IPSEC_FRAG_HASH_MASK)) 6151 6152 /* Maximum fragments per packet. 48 bytes payload x 1366 packets > 64KB */ 6153 #define IPSEC_MAX_FRAGS 1366 6154 6155 #define V4_FRAG_OFFSET(ipha) ((ntohs(ipha->ipha_fragment_offset_and_flags) & \ 6156 IPH_OFFSET) << 3) 6157 #define V4_MORE_FRAGS(ipha) (ntohs(ipha->ipha_fragment_offset_and_flags) & \ 6158 IPH_MF) 6159 6160 /* 6161 * Initialize an ipsec fragcache instance. 6162 * Returns B_FALSE if memory allocation fails. 6163 */ 6164 boolean_t 6165 ipsec_fragcache_init(ipsec_fragcache_t *frag) 6166 { 6167 ipsec_fragcache_entry_t *ftemp; 6168 int i; 6169 6170 mutex_init(&frag->itpf_lock, NULL, MUTEX_DEFAULT, NULL); 6171 frag->itpf_ptr = (ipsec_fragcache_entry_t **) 6172 kmem_zalloc(sizeof (ipsec_fragcache_entry_t *) * 6173 IPSEC_FRAG_HASH_SLOTS, KM_NOSLEEP); 6174 if (frag->itpf_ptr == NULL) 6175 return (B_FALSE); 6176 6177 ftemp = (ipsec_fragcache_entry_t *) 6178 kmem_zalloc(sizeof (ipsec_fragcache_entry_t) * 6179 IPSEC_FRAG_HASH_SIZE, KM_NOSLEEP); 6180 if (ftemp == NULL) { 6181 kmem_free(frag->itpf_ptr, sizeof (ipsec_fragcache_entry_t *) * 6182 IPSEC_FRAG_HASH_SLOTS); 6183 return (B_FALSE); 6184 } 6185 6186 frag->itpf_freelist = NULL; 6187 6188 for (i = 0; i < IPSEC_FRAG_HASH_SIZE; i++) { 6189 ftemp->itpfe_next = frag->itpf_freelist; 6190 frag->itpf_freelist = ftemp; 6191 ftemp++; 6192 } 6193 6194 frag->itpf_expire_hint = 0; 6195 6196 return (B_TRUE); 6197 } 6198 6199 void 6200 ipsec_fragcache_uninit(ipsec_fragcache_t *frag, ipsec_stack_t *ipss) 6201 { 6202 ipsec_fragcache_entry_t *fep; 6203 int i; 6204 6205 mutex_enter(&frag->itpf_lock); 6206 if (frag->itpf_ptr) { 6207 /* Delete any existing fragcache entry chains */ 6208 for (i = 0; i < IPSEC_FRAG_HASH_SLOTS; i++) { 6209 fep = (frag->itpf_ptr)[i]; 6210 while (fep != NULL) { 6211 /* Returned fep is next in chain or NULL */ 6212 fep = fragcache_delentry(i, fep, frag, ipss); 6213 } 6214 } 6215 /* 6216 * Chase the pointers back to the beginning 6217 * of the memory allocation and then 6218 * get rid of the allocated freelist 6219 */ 6220 while (frag->itpf_freelist->itpfe_next != NULL) 6221 frag->itpf_freelist = frag->itpf_freelist->itpfe_next; 6222 /* 6223 * XXX - If we ever dynamically grow the freelist 6224 * then we'll have to free entries individually 6225 * or determine how many entries or chunks we have 6226 * grown since the initial allocation. 6227 */ 6228 kmem_free(frag->itpf_freelist, 6229 sizeof (ipsec_fragcache_entry_t) * 6230 IPSEC_FRAG_HASH_SIZE); 6231 /* Free the fragcache structure */ 6232 kmem_free(frag->itpf_ptr, 6233 sizeof (ipsec_fragcache_entry_t *) * 6234 IPSEC_FRAG_HASH_SLOTS); 6235 } 6236 mutex_exit(&frag->itpf_lock); 6237 mutex_destroy(&frag->itpf_lock); 6238 } 6239 6240 /* 6241 * Add a fragment to the fragment cache. Consumes mp if NULL is returned. 6242 * Returns mp if a whole fragment has been assembled, NULL otherwise 6243 * The returned mp could be a b_next chain of fragments. 6244 * 6245 * The iramp argument is set on inbound; NULL if outbound. 6246 */ 6247 mblk_t * 6248 ipsec_fragcache_add(ipsec_fragcache_t *frag, mblk_t *iramp, mblk_t *mp, 6249 int outer_hdr_len, ipsec_stack_t *ipss) 6250 { 6251 boolean_t is_v4; 6252 time_t itpf_time; 6253 ipha_t *iph; 6254 ipha_t *oiph; 6255 ip6_t *ip6h = NULL; 6256 uint8_t v6_proto; 6257 uint8_t *v6_proto_p; 6258 uint16_t ip6_hdr_length; 6259 ip_pkt_t ipp; 6260 ip6_frag_t *fraghdr; 6261 ipsec_fragcache_entry_t *fep; 6262 int i; 6263 mblk_t *nmp, *prevmp; 6264 int firstbyte, lastbyte; 6265 int offset; 6266 int last; 6267 boolean_t inbound = (iramp != NULL); 6268 6269 #ifdef FRAGCACHE_DEBUG 6270 cmn_err(CE_WARN, "Fragcache: %s\n", inbound ? "INBOUND" : "OUTBOUND"); 6271 #endif 6272 /* 6273 * You're on the slow path, so insure that every packet in the 6274 * cache is a single-mblk one. 6275 */ 6276 if (mp->b_cont != NULL) { 6277 nmp = msgpullup(mp, -1); 6278 if (nmp == NULL) { 6279 ip_drop_packet(mp, inbound, NULL, 6280 DROPPER(ipss, ipds_spd_nomem), 6281 &ipss->ipsec_spd_dropper); 6282 if (inbound) 6283 (void) ip_recv_attr_free_mblk(iramp); 6284 return (NULL); 6285 } 6286 freemsg(mp); 6287 mp = nmp; 6288 } 6289 6290 mutex_enter(&frag->itpf_lock); 6291 6292 oiph = (ipha_t *)mp->b_rptr; 6293 iph = (ipha_t *)(mp->b_rptr + outer_hdr_len); 6294 6295 if (IPH_HDR_VERSION(iph) == IPV4_VERSION) { 6296 is_v4 = B_TRUE; 6297 } else { 6298 ASSERT(IPH_HDR_VERSION(iph) == IPV6_VERSION); 6299 ip6h = (ip6_t *)(mp->b_rptr + outer_hdr_len); 6300 6301 if (!ip_hdr_length_nexthdr_v6(mp, ip6h, &ip6_hdr_length, 6302 &v6_proto_p)) { 6303 /* 6304 * Find upper layer protocol. 6305 * If it fails we have a malformed packet 6306 */ 6307 mutex_exit(&frag->itpf_lock); 6308 ip_drop_packet(mp, inbound, NULL, 6309 DROPPER(ipss, ipds_spd_malformed_packet), 6310 &ipss->ipsec_spd_dropper); 6311 if (inbound) 6312 (void) ip_recv_attr_free_mblk(iramp); 6313 return (NULL); 6314 } else { 6315 v6_proto = *v6_proto_p; 6316 } 6317 6318 6319 bzero(&ipp, sizeof (ipp)); 6320 (void) ip_find_hdr_v6(mp, ip6h, B_FALSE, &ipp, NULL); 6321 if (!(ipp.ipp_fields & IPPF_FRAGHDR)) { 6322 /* 6323 * We think this is a fragment, but didn't find 6324 * a fragment header. Something is wrong. 6325 */ 6326 mutex_exit(&frag->itpf_lock); 6327 ip_drop_packet(mp, inbound, NULL, 6328 DROPPER(ipss, ipds_spd_malformed_frag), 6329 &ipss->ipsec_spd_dropper); 6330 if (inbound) 6331 (void) ip_recv_attr_free_mblk(iramp); 6332 return (NULL); 6333 } 6334 fraghdr = ipp.ipp_fraghdr; 6335 is_v4 = B_FALSE; 6336 } 6337 6338 /* Anything to cleanup? */ 6339 6340 /* 6341 * This cleanup call could be put in a timer loop 6342 * but it may actually be just as reasonable a decision to 6343 * leave it here. The disadvantage is this only gets called when 6344 * frags are added. The advantage is that it is not 6345 * susceptible to race conditions like a time-based cleanup 6346 * may be. 6347 */ 6348 itpf_time = gethrestime_sec(); 6349 if (itpf_time >= frag->itpf_expire_hint) 6350 ipsec_fragcache_clean(frag, ipss); 6351 6352 /* Lookup to see if there is an existing entry */ 6353 6354 if (is_v4) 6355 i = IPSEC_FRAG_HASH_FUNC(iph->ipha_ident); 6356 else 6357 i = IPSEC_FRAG_HASH_FUNC(fraghdr->ip6f_ident); 6358 6359 for (fep = (frag->itpf_ptr)[i]; fep; fep = fep->itpfe_next) { 6360 if (is_v4) { 6361 ASSERT(iph != NULL); 6362 if ((fep->itpfe_id == iph->ipha_ident) && 6363 (fep->itpfe_src == iph->ipha_src) && 6364 (fep->itpfe_dst == iph->ipha_dst) && 6365 (fep->itpfe_proto == iph->ipha_protocol)) 6366 break; 6367 } else { 6368 ASSERT(fraghdr != NULL); 6369 ASSERT(fep != NULL); 6370 if ((fep->itpfe_id == fraghdr->ip6f_ident) && 6371 IN6_ARE_ADDR_EQUAL(&fep->itpfe_src6, 6372 &ip6h->ip6_src) && 6373 IN6_ARE_ADDR_EQUAL(&fep->itpfe_dst6, 6374 &ip6h->ip6_dst) && (fep->itpfe_proto == v6_proto)) 6375 break; 6376 } 6377 } 6378 6379 if (is_v4) { 6380 firstbyte = V4_FRAG_OFFSET(iph); 6381 lastbyte = firstbyte + ntohs(iph->ipha_length) - 6382 IPH_HDR_LENGTH(iph); 6383 last = (V4_MORE_FRAGS(iph) == 0); 6384 #ifdef FRAGCACHE_DEBUG 6385 cmn_err(CE_WARN, "V4 fragcache: firstbyte = %d, lastbyte = %d, " 6386 "is_last_frag = %d, id = %d, mp = %p\n", firstbyte, 6387 lastbyte, last, iph->ipha_ident, mp); 6388 #endif 6389 } else { 6390 firstbyte = ntohs(fraghdr->ip6f_offlg & IP6F_OFF_MASK); 6391 lastbyte = firstbyte + ntohs(ip6h->ip6_plen) + 6392 sizeof (ip6_t) - ip6_hdr_length; 6393 last = (fraghdr->ip6f_offlg & IP6F_MORE_FRAG) == 0; 6394 #ifdef FRAGCACHE_DEBUG 6395 cmn_err(CE_WARN, "V6 fragcache: firstbyte = %d, lastbyte = %d, " 6396 "is_last_frag = %d, id = %d, fraghdr = %p, mp = %p\n", 6397 firstbyte, lastbyte, last, fraghdr->ip6f_ident, fraghdr, 6398 mp); 6399 #endif 6400 } 6401 6402 /* check for bogus fragments and delete the entry */ 6403 if (firstbyte > 0 && firstbyte <= 8) { 6404 if (fep != NULL) 6405 (void) fragcache_delentry(i, fep, frag, ipss); 6406 mutex_exit(&frag->itpf_lock); 6407 ip_drop_packet(mp, inbound, NULL, 6408 DROPPER(ipss, ipds_spd_malformed_frag), 6409 &ipss->ipsec_spd_dropper); 6410 if (inbound) 6411 (void) ip_recv_attr_free_mblk(iramp); 6412 return (NULL); 6413 } 6414 6415 /* Not found, allocate a new entry */ 6416 if (fep == NULL) { 6417 if (frag->itpf_freelist == NULL) { 6418 /* see if there is some space */ 6419 ipsec_fragcache_clean(frag, ipss); 6420 if (frag->itpf_freelist == NULL) { 6421 mutex_exit(&frag->itpf_lock); 6422 ip_drop_packet(mp, inbound, NULL, 6423 DROPPER(ipss, ipds_spd_nomem), 6424 &ipss->ipsec_spd_dropper); 6425 if (inbound) 6426 (void) ip_recv_attr_free_mblk(iramp); 6427 return (NULL); 6428 } 6429 } 6430 6431 fep = frag->itpf_freelist; 6432 frag->itpf_freelist = fep->itpfe_next; 6433 6434 if (is_v4) { 6435 bcopy((caddr_t)&iph->ipha_src, (caddr_t)&fep->itpfe_src, 6436 sizeof (struct in_addr)); 6437 bcopy((caddr_t)&iph->ipha_dst, (caddr_t)&fep->itpfe_dst, 6438 sizeof (struct in_addr)); 6439 fep->itpfe_id = iph->ipha_ident; 6440 fep->itpfe_proto = iph->ipha_protocol; 6441 i = IPSEC_FRAG_HASH_FUNC(fep->itpfe_id); 6442 } else { 6443 bcopy((in6_addr_t *)&ip6h->ip6_src, 6444 (in6_addr_t *)&fep->itpfe_src6, 6445 sizeof (struct in6_addr)); 6446 bcopy((in6_addr_t *)&ip6h->ip6_dst, 6447 (in6_addr_t *)&fep->itpfe_dst6, 6448 sizeof (struct in6_addr)); 6449 fep->itpfe_id = fraghdr->ip6f_ident; 6450 fep->itpfe_proto = v6_proto; 6451 i = IPSEC_FRAG_HASH_FUNC(fep->itpfe_id); 6452 } 6453 itpf_time = gethrestime_sec(); 6454 fep->itpfe_exp = itpf_time + IPSEC_FRAG_TTL_MAX + 1; 6455 fep->itpfe_last = 0; 6456 fep->itpfe_fraglist = NULL; 6457 fep->itpfe_depth = 0; 6458 fep->itpfe_next = (frag->itpf_ptr)[i]; 6459 (frag->itpf_ptr)[i] = fep; 6460 6461 if (frag->itpf_expire_hint > fep->itpfe_exp) 6462 frag->itpf_expire_hint = fep->itpfe_exp; 6463 6464 } 6465 6466 /* Insert it in the frag list */ 6467 /* List is in order by starting offset of fragments */ 6468 6469 prevmp = NULL; 6470 for (nmp = fep->itpfe_fraglist; nmp; nmp = nmp->b_next) { 6471 ipha_t *niph; 6472 ipha_t *oniph; 6473 ip6_t *nip6h; 6474 ip_pkt_t nipp; 6475 ip6_frag_t *nfraghdr; 6476 uint16_t nip6_hdr_length; 6477 uint8_t *nv6_proto_p; 6478 int nfirstbyte, nlastbyte; 6479 char *data, *ndata; 6480 mblk_t *ndata_mp = (inbound ? nmp->b_cont : nmp); 6481 int hdr_len; 6482 6483 oniph = (ipha_t *)mp->b_rptr; 6484 nip6h = NULL; 6485 niph = NULL; 6486 6487 /* 6488 * Determine outer header type and length and set 6489 * pointers appropriately 6490 */ 6491 6492 if (IPH_HDR_VERSION(oniph) == IPV4_VERSION) { 6493 hdr_len = ((outer_hdr_len != 0) ? 6494 IPH_HDR_LENGTH(oiph) : 0); 6495 niph = (ipha_t *)(ndata_mp->b_rptr + hdr_len); 6496 } else { 6497 ASSERT(IPH_HDR_VERSION(oniph) == IPV6_VERSION); 6498 ASSERT(ndata_mp->b_cont == NULL); 6499 nip6h = (ip6_t *)ndata_mp->b_rptr; 6500 (void) ip_hdr_length_nexthdr_v6(ndata_mp, nip6h, 6501 &nip6_hdr_length, &v6_proto_p); 6502 hdr_len = ((outer_hdr_len != 0) ? nip6_hdr_length : 0); 6503 } 6504 6505 /* 6506 * Determine inner header type and length and set 6507 * pointers appropriately 6508 */ 6509 6510 if (is_v4) { 6511 if (niph == NULL) { 6512 /* Was v6 outer */ 6513 niph = (ipha_t *)(ndata_mp->b_rptr + hdr_len); 6514 } 6515 nfirstbyte = V4_FRAG_OFFSET(niph); 6516 nlastbyte = nfirstbyte + ntohs(niph->ipha_length) - 6517 IPH_HDR_LENGTH(niph); 6518 } else { 6519 ASSERT(ndata_mp->b_cont == NULL); 6520 nip6h = (ip6_t *)(ndata_mp->b_rptr + hdr_len); 6521 if (!ip_hdr_length_nexthdr_v6(ndata_mp, nip6h, 6522 &nip6_hdr_length, &nv6_proto_p)) { 6523 mutex_exit(&frag->itpf_lock); 6524 ip_drop_packet_chain(nmp, inbound, NULL, 6525 DROPPER(ipss, ipds_spd_malformed_frag), 6526 &ipss->ipsec_spd_dropper); 6527 ipsec_freemsg_chain(ndata_mp); 6528 if (inbound) 6529 (void) ip_recv_attr_free_mblk(iramp); 6530 return (NULL); 6531 } 6532 bzero(&nipp, sizeof (nipp)); 6533 (void) ip_find_hdr_v6(ndata_mp, nip6h, B_FALSE, &nipp, 6534 NULL); 6535 nfraghdr = nipp.ipp_fraghdr; 6536 nfirstbyte = ntohs(nfraghdr->ip6f_offlg & 6537 IP6F_OFF_MASK); 6538 nlastbyte = nfirstbyte + ntohs(nip6h->ip6_plen) + 6539 sizeof (ip6_t) - nip6_hdr_length; 6540 } 6541 6542 /* Check for overlapping fragments */ 6543 if (firstbyte >= nfirstbyte && firstbyte < nlastbyte) { 6544 /* 6545 * Overlap Check: 6546 * ~~~~--------- # Check if the newly 6547 * ~ ndata_mp| # received fragment 6548 * ~~~~--------- # overlaps with the 6549 * ---------~~~~~~ # current fragment. 6550 * | mp ~ 6551 * ---------~~~~~~ 6552 */ 6553 if (is_v4) { 6554 data = (char *)iph + IPH_HDR_LENGTH(iph) + 6555 firstbyte - nfirstbyte; 6556 ndata = (char *)niph + IPH_HDR_LENGTH(niph); 6557 } else { 6558 data = (char *)ip6h + 6559 nip6_hdr_length + firstbyte - 6560 nfirstbyte; 6561 ndata = (char *)nip6h + nip6_hdr_length; 6562 } 6563 if (bcmp(data, ndata, MIN(lastbyte, nlastbyte) - 6564 firstbyte)) { 6565 /* Overlapping data does not match */ 6566 (void) fragcache_delentry(i, fep, frag, ipss); 6567 mutex_exit(&frag->itpf_lock); 6568 ip_drop_packet(mp, inbound, NULL, 6569 DROPPER(ipss, ipds_spd_overlap_frag), 6570 &ipss->ipsec_spd_dropper); 6571 if (inbound) 6572 (void) ip_recv_attr_free_mblk(iramp); 6573 return (NULL); 6574 } 6575 /* Part of defense for jolt2.c fragmentation attack */ 6576 if (firstbyte >= nfirstbyte && lastbyte <= nlastbyte) { 6577 /* 6578 * Check for identical or subset fragments: 6579 * ---------- ~~~~--------~~~~~ 6580 * | nmp | or ~ nmp ~ 6581 * ---------- ~~~~--------~~~~~ 6582 * ---------- ------ 6583 * | mp | | mp | 6584 * ---------- ------ 6585 */ 6586 mutex_exit(&frag->itpf_lock); 6587 ip_drop_packet(mp, inbound, NULL, 6588 DROPPER(ipss, ipds_spd_evil_frag), 6589 &ipss->ipsec_spd_dropper); 6590 if (inbound) 6591 (void) ip_recv_attr_free_mblk(iramp); 6592 return (NULL); 6593 } 6594 6595 } 6596 6597 /* Correct location for this fragment? */ 6598 if (firstbyte <= nfirstbyte) { 6599 /* 6600 * Check if the tail end of the new fragment overlaps 6601 * with the head of the current fragment. 6602 * --------~~~~~~~ 6603 * | nmp ~ 6604 * --------~~~~~~~ 6605 * ~~~~~-------- 6606 * ~ mp | 6607 * ~~~~~-------- 6608 */ 6609 if (lastbyte > nfirstbyte) { 6610 /* Fragments overlap */ 6611 data = (char *)iph + IPH_HDR_LENGTH(iph) + 6612 firstbyte - nfirstbyte; 6613 ndata = (char *)niph + IPH_HDR_LENGTH(niph); 6614 if (is_v4) { 6615 data = (char *)iph + 6616 IPH_HDR_LENGTH(iph) + firstbyte - 6617 nfirstbyte; 6618 ndata = (char *)niph + 6619 IPH_HDR_LENGTH(niph); 6620 } else { 6621 data = (char *)ip6h + 6622 nip6_hdr_length + firstbyte - 6623 nfirstbyte; 6624 ndata = (char *)nip6h + nip6_hdr_length; 6625 } 6626 if (bcmp(data, ndata, MIN(lastbyte, nlastbyte) 6627 - nfirstbyte)) { 6628 /* Overlap mismatch */ 6629 (void) fragcache_delentry(i, fep, frag, 6630 ipss); 6631 mutex_exit(&frag->itpf_lock); 6632 ip_drop_packet(mp, inbound, NULL, 6633 DROPPER(ipss, 6634 ipds_spd_overlap_frag), 6635 &ipss->ipsec_spd_dropper); 6636 if (inbound) { 6637 (void) ip_recv_attr_free_mblk( 6638 iramp); 6639 } 6640 return (NULL); 6641 } 6642 } 6643 6644 /* 6645 * Fragment does not illegally overlap and can now 6646 * be inserted into the chain 6647 */ 6648 break; 6649 } 6650 6651 prevmp = nmp; 6652 } 6653 /* Prepend the attributes before we link it in */ 6654 if (iramp != NULL) { 6655 ASSERT(iramp->b_cont == NULL); 6656 iramp->b_cont = mp; 6657 mp = iramp; 6658 iramp = NULL; 6659 } 6660 mp->b_next = nmp; 6661 6662 if (prevmp == NULL) { 6663 fep->itpfe_fraglist = mp; 6664 } else { 6665 prevmp->b_next = mp; 6666 } 6667 if (last) 6668 fep->itpfe_last = 1; 6669 6670 /* Part of defense for jolt2.c fragmentation attack */ 6671 if (++(fep->itpfe_depth) > IPSEC_MAX_FRAGS) { 6672 (void) fragcache_delentry(i, fep, frag, ipss); 6673 mutex_exit(&frag->itpf_lock); 6674 if (inbound) 6675 mp = ip_recv_attr_free_mblk(mp); 6676 6677 ip_drop_packet(mp, inbound, NULL, 6678 DROPPER(ipss, ipds_spd_max_frags), 6679 &ipss->ipsec_spd_dropper); 6680 return (NULL); 6681 } 6682 6683 /* Check for complete packet */ 6684 6685 if (!fep->itpfe_last) { 6686 mutex_exit(&frag->itpf_lock); 6687 #ifdef FRAGCACHE_DEBUG 6688 cmn_err(CE_WARN, "Fragment cached, last not yet seen.\n"); 6689 #endif 6690 return (NULL); 6691 } 6692 6693 offset = 0; 6694 for (mp = fep->itpfe_fraglist; mp; mp = mp->b_next) { 6695 mblk_t *data_mp = (inbound ? mp->b_cont : mp); 6696 int hdr_len; 6697 6698 oiph = (ipha_t *)data_mp->b_rptr; 6699 ip6h = NULL; 6700 iph = NULL; 6701 6702 if (IPH_HDR_VERSION(oiph) == IPV4_VERSION) { 6703 hdr_len = ((outer_hdr_len != 0) ? 6704 IPH_HDR_LENGTH(oiph) : 0); 6705 iph = (ipha_t *)(data_mp->b_rptr + hdr_len); 6706 } else { 6707 ASSERT(IPH_HDR_VERSION(oiph) == IPV6_VERSION); 6708 ASSERT(data_mp->b_cont == NULL); 6709 ip6h = (ip6_t *)data_mp->b_rptr; 6710 (void) ip_hdr_length_nexthdr_v6(data_mp, ip6h, 6711 &ip6_hdr_length, &v6_proto_p); 6712 hdr_len = ((outer_hdr_len != 0) ? ip6_hdr_length : 0); 6713 } 6714 6715 /* Calculate current fragment start/end */ 6716 if (is_v4) { 6717 if (iph == NULL) { 6718 /* Was v6 outer */ 6719 iph = (ipha_t *)(data_mp->b_rptr + hdr_len); 6720 } 6721 firstbyte = V4_FRAG_OFFSET(iph); 6722 lastbyte = firstbyte + ntohs(iph->ipha_length) - 6723 IPH_HDR_LENGTH(iph); 6724 } else { 6725 ASSERT(data_mp->b_cont == NULL); 6726 ip6h = (ip6_t *)(data_mp->b_rptr + hdr_len); 6727 if (!ip_hdr_length_nexthdr_v6(data_mp, ip6h, 6728 &ip6_hdr_length, &v6_proto_p)) { 6729 mutex_exit(&frag->itpf_lock); 6730 ip_drop_packet_chain(mp, inbound, NULL, 6731 DROPPER(ipss, ipds_spd_malformed_frag), 6732 &ipss->ipsec_spd_dropper); 6733 return (NULL); 6734 } 6735 v6_proto = *v6_proto_p; 6736 bzero(&ipp, sizeof (ipp)); 6737 (void) ip_find_hdr_v6(data_mp, ip6h, B_FALSE, &ipp, 6738 NULL); 6739 fraghdr = ipp.ipp_fraghdr; 6740 firstbyte = ntohs(fraghdr->ip6f_offlg & 6741 IP6F_OFF_MASK); 6742 lastbyte = firstbyte + ntohs(ip6h->ip6_plen) + 6743 sizeof (ip6_t) - ip6_hdr_length; 6744 } 6745 6746 /* 6747 * If this fragment is greater than current offset, 6748 * we have a missing fragment so return NULL 6749 */ 6750 if (firstbyte > offset) { 6751 mutex_exit(&frag->itpf_lock); 6752 #ifdef FRAGCACHE_DEBUG 6753 /* 6754 * Note, this can happen when the last frag 6755 * gets sent through because it is smaller 6756 * than the MTU. It is not necessarily an 6757 * error condition. 6758 */ 6759 cmn_err(CE_WARN, "Frag greater than offset! : " 6760 "missing fragment: firstbyte = %d, offset = %d, " 6761 "mp = %p\n", firstbyte, offset, mp); 6762 #endif 6763 return (NULL); 6764 } 6765 #ifdef FRAGCACHE_DEBUG 6766 cmn_err(CE_WARN, "Frag offsets : " 6767 "firstbyte = %d, offset = %d, mp = %p\n", 6768 firstbyte, offset, mp); 6769 #endif 6770 6771 /* 6772 * If we are at the last fragment, we have the complete 6773 * packet, so rechain things and return it to caller 6774 * for processing 6775 */ 6776 6777 if ((is_v4 && !V4_MORE_FRAGS(iph)) || 6778 (!is_v4 && !(fraghdr->ip6f_offlg & IP6F_MORE_FRAG))) { 6779 mp = fep->itpfe_fraglist; 6780 fep->itpfe_fraglist = NULL; 6781 (void) fragcache_delentry(i, fep, frag, ipss); 6782 mutex_exit(&frag->itpf_lock); 6783 6784 if ((is_v4 && (firstbyte + ntohs(iph->ipha_length) > 6785 65535)) || (!is_v4 && (firstbyte + 6786 ntohs(ip6h->ip6_plen) > 65535))) { 6787 /* It is an invalid "ping-o-death" packet */ 6788 /* Discard it */ 6789 ip_drop_packet_chain(mp, inbound, NULL, 6790 DROPPER(ipss, ipds_spd_evil_frag), 6791 &ipss->ipsec_spd_dropper); 6792 return (NULL); 6793 } 6794 #ifdef FRAGCACHE_DEBUG 6795 cmn_err(CE_WARN, "Fragcache returning mp = %p, " 6796 "mp->b_next = %p", mp, mp->b_next); 6797 #endif 6798 /* 6799 * For inbound case, mp has attrmp b_next'd chain 6800 * For outbound case, it is just data mp chain 6801 */ 6802 return (mp); 6803 } 6804 6805 /* 6806 * Update new ending offset if this 6807 * fragment extends the packet 6808 */ 6809 if (offset < lastbyte) 6810 offset = lastbyte; 6811 } 6812 6813 mutex_exit(&frag->itpf_lock); 6814 6815 /* Didn't find last fragment, so return NULL */ 6816 return (NULL); 6817 } 6818 6819 static void 6820 ipsec_fragcache_clean(ipsec_fragcache_t *frag, ipsec_stack_t *ipss) 6821 { 6822 ipsec_fragcache_entry_t *fep; 6823 int i; 6824 ipsec_fragcache_entry_t *earlyfep = NULL; 6825 time_t itpf_time; 6826 int earlyexp; 6827 int earlyi = 0; 6828 6829 ASSERT(MUTEX_HELD(&frag->itpf_lock)); 6830 6831 itpf_time = gethrestime_sec(); 6832 earlyexp = itpf_time + 10000; 6833 6834 for (i = 0; i < IPSEC_FRAG_HASH_SLOTS; i++) { 6835 fep = (frag->itpf_ptr)[i]; 6836 while (fep) { 6837 if (fep->itpfe_exp < itpf_time) { 6838 /* found */ 6839 fep = fragcache_delentry(i, fep, frag, ipss); 6840 } else { 6841 if (fep->itpfe_exp < earlyexp) { 6842 earlyfep = fep; 6843 earlyexp = fep->itpfe_exp; 6844 earlyi = i; 6845 } 6846 fep = fep->itpfe_next; 6847 } 6848 } 6849 } 6850 6851 frag->itpf_expire_hint = earlyexp; 6852 6853 /* if (!found) */ 6854 if (frag->itpf_freelist == NULL) 6855 (void) fragcache_delentry(earlyi, earlyfep, frag, ipss); 6856 } 6857 6858 static ipsec_fragcache_entry_t * 6859 fragcache_delentry(int slot, ipsec_fragcache_entry_t *fep, 6860 ipsec_fragcache_t *frag, ipsec_stack_t *ipss) 6861 { 6862 ipsec_fragcache_entry_t *targp; 6863 ipsec_fragcache_entry_t *nextp = fep->itpfe_next; 6864 6865 ASSERT(MUTEX_HELD(&frag->itpf_lock)); 6866 6867 /* Free up any fragment list still in cache entry */ 6868 if (fep->itpfe_fraglist != NULL) { 6869 ip_drop_packet_chain(fep->itpfe_fraglist, 6870 ip_recv_attr_is_mblk(fep->itpfe_fraglist), NULL, 6871 DROPPER(ipss, ipds_spd_expired_frags), 6872 &ipss->ipsec_spd_dropper); 6873 } 6874 fep->itpfe_fraglist = NULL; 6875 6876 targp = (frag->itpf_ptr)[slot]; 6877 ASSERT(targp != 0); 6878 6879 if (targp == fep) { 6880 /* unlink from head of hash chain */ 6881 (frag->itpf_ptr)[slot] = nextp; 6882 /* link into free list */ 6883 fep->itpfe_next = frag->itpf_freelist; 6884 frag->itpf_freelist = fep; 6885 return (nextp); 6886 } 6887 6888 /* maybe should use double linked list to make update faster */ 6889 /* must be past front of chain */ 6890 while (targp) { 6891 if (targp->itpfe_next == fep) { 6892 /* unlink from hash chain */ 6893 targp->itpfe_next = nextp; 6894 /* link into free list */ 6895 fep->itpfe_next = frag->itpf_freelist; 6896 frag->itpf_freelist = fep; 6897 return (nextp); 6898 } 6899 targp = targp->itpfe_next; 6900 ASSERT(targp != 0); 6901 } 6902 /* NOTREACHED */ 6903 return (NULL); 6904 } 6905