1 /* 2 * Copyright (c) 1992, 1993, 1994, 1995, 1996, 1997 3 * The Regents of the University of California. All rights reserved. 4 * 5 * Redistribution and use in source and binary forms, with or without 6 * modification, are permitted provided that: (1) source code distributions 7 * retain the above copyright notice and this paragraph in its entirety, (2) 8 * distributions including binary code include the above copyright notice and 9 * this paragraph in its entirety in the documentation or other materials 10 * provided with the distribution, and (3) all advertising materials mentioning 11 * features or use of this software display the following acknowledgement: 12 * ``This product includes software developed by the University of California, 13 * Lawrence Berkeley Laboratory and its contributors.'' Neither the name of 14 * the University nor the names of its contributors may be used to endorse 15 * or promote products derived from this software without specific prior 16 * written permission. 17 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR IMPLIED 18 * WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED WARRANTIES OF 19 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. 20 * 21 * OSPF support contributed by Jeffrey Honig (jch@mitchell.cit.cornell.edu) 22 */ 23 24 #include <sys/cdefs.h> 25 #ifndef lint 26 __RCSID("$NetBSD: print-ospf.c,v 1.11 2024/09/02 16:15:32 christos Exp $"); 27 #endif 28 29 /* \summary: Open Shortest Path First (OSPF) printer */ 30 31 #include <config.h> 32 33 #include "netdissect-stdinc.h" 34 35 #include "netdissect.h" 36 #include "addrtoname.h" 37 #include "extract.h" 38 #include "gmpls.h" 39 40 #include "ospf.h" 41 42 43 static const struct tok ospf_option_values[] = { 44 { OSPF_OPTION_MT, "MultiTopology" }, /* draft-ietf-ospf-mt-09 */ 45 { OSPF_OPTION_E, "External" }, 46 { OSPF_OPTION_MC, "Multicast" }, 47 { OSPF_OPTION_NP, "NSSA" }, 48 { OSPF_OPTION_L, "LLS" }, 49 { OSPF_OPTION_DC, "Demand Circuit" }, 50 { OSPF_OPTION_O, "Opaque" }, 51 { OSPF_OPTION_DN, "Up/Down" }, 52 { 0, NULL } 53 }; 54 55 static const struct tok ospf_authtype_values[] = { 56 { OSPF_AUTH_NONE, "none" }, 57 { OSPF_AUTH_SIMPLE, "simple" }, 58 { OSPF_AUTH_MD5, "MD5" }, 59 { 0, NULL } 60 }; 61 62 static const struct tok ospf_rla_flag_values[] = { 63 { RLA_FLAG_B, "ABR" }, 64 { RLA_FLAG_E, "ASBR" }, 65 { RLA_FLAG_V, "Virtual" }, 66 { RLA_FLAG_W, "Wildcard" }, 67 { RLA_FLAG_NT, "Nt" }, 68 { RLA_FLAG_H, "Host" }, 69 { 0, NULL } 70 }; 71 72 static const struct tok type2str[] = { 73 { OSPF_TYPE_HELLO, "Hello" }, 74 { OSPF_TYPE_DD, "Database Description" }, 75 { OSPF_TYPE_LS_REQ, "LS-Request" }, 76 { OSPF_TYPE_LS_UPDATE, "LS-Update" }, 77 { OSPF_TYPE_LS_ACK, "LS-Ack" }, 78 { 0, NULL } 79 }; 80 81 static const struct tok lsa_values[] = { 82 { LS_TYPE_ROUTER, "Router" }, 83 { LS_TYPE_NETWORK, "Network" }, 84 { LS_TYPE_SUM_IP, "Summary" }, 85 { LS_TYPE_SUM_ABR, "ASBR Summary" }, 86 { LS_TYPE_ASE, "External" }, 87 { LS_TYPE_GROUP, "Multicast Group" }, 88 { LS_TYPE_NSSA, "NSSA" }, 89 { LS_TYPE_OPAQUE_LL, "Link Local Opaque" }, 90 { LS_TYPE_OPAQUE_AL, "Area Local Opaque" }, 91 { LS_TYPE_OPAQUE_DW, "Domain Wide Opaque" }, 92 { 0, NULL } 93 }; 94 95 static const struct tok ospf_dd_flag_values[] = { 96 { OSPF_DB_INIT, "Init" }, 97 { OSPF_DB_MORE, "More" }, 98 { OSPF_DB_MASTER, "Master" }, 99 { OSPF_DB_RESYNC, "OOBResync" }, 100 { 0, NULL } 101 }; 102 103 static const struct tok lsa_opaque_values[] = { 104 { LS_OPAQUE_TYPE_TE, "Traffic Engineering" }, 105 { LS_OPAQUE_TYPE_GRACE, "Graceful restart" }, 106 { LS_OPAQUE_TYPE_RI, "Router Information" }, 107 { 0, NULL } 108 }; 109 110 static const struct tok lsa_opaque_te_tlv_values[] = { 111 { LS_OPAQUE_TE_TLV_ROUTER, "Router Address" }, 112 { LS_OPAQUE_TE_TLV_LINK, "Link" }, 113 { 0, NULL } 114 }; 115 116 static const struct tok lsa_opaque_te_link_tlv_subtlv_values[] = { 117 { LS_OPAQUE_TE_LINK_SUBTLV_LINK_TYPE, "Link Type" }, 118 { LS_OPAQUE_TE_LINK_SUBTLV_LINK_ID, "Link ID" }, 119 { LS_OPAQUE_TE_LINK_SUBTLV_LOCAL_IP, "Local Interface IP address" }, 120 { LS_OPAQUE_TE_LINK_SUBTLV_REMOTE_IP, "Remote Interface IP address" }, 121 { LS_OPAQUE_TE_LINK_SUBTLV_TE_METRIC, "Traffic Engineering Metric" }, 122 { LS_OPAQUE_TE_LINK_SUBTLV_MAX_BW, "Maximum Bandwidth" }, 123 { LS_OPAQUE_TE_LINK_SUBTLV_MAX_RES_BW, "Maximum Reservable Bandwidth" }, 124 { LS_OPAQUE_TE_LINK_SUBTLV_UNRES_BW, "Unreserved Bandwidth" }, 125 { LS_OPAQUE_TE_LINK_SUBTLV_ADMIN_GROUP, "Administrative Group" }, 126 { LS_OPAQUE_TE_LINK_SUBTLV_LINK_LOCAL_REMOTE_ID, "Link Local/Remote Identifier" }, 127 { LS_OPAQUE_TE_LINK_SUBTLV_LINK_PROTECTION_TYPE, "Link Protection Type" }, 128 { LS_OPAQUE_TE_LINK_SUBTLV_INTF_SW_CAP_DESCR, "Interface Switching Capability" }, 129 { LS_OPAQUE_TE_LINK_SUBTLV_SHARED_RISK_GROUP, "Shared Risk Link Group" }, 130 { LS_OPAQUE_TE_LINK_SUBTLV_BW_CONSTRAINTS, "Bandwidth Constraints" }, 131 { 0, NULL } 132 }; 133 134 static const struct tok lsa_opaque_grace_tlv_values[] = { 135 { LS_OPAQUE_GRACE_TLV_PERIOD, "Grace Period" }, 136 { LS_OPAQUE_GRACE_TLV_REASON, "Graceful restart Reason" }, 137 { LS_OPAQUE_GRACE_TLV_INT_ADDRESS, "IPv4 interface address" }, 138 { 0, NULL } 139 }; 140 141 static const struct tok lsa_opaque_grace_tlv_reason_values[] = { 142 { LS_OPAQUE_GRACE_TLV_REASON_UNKNOWN, "Unknown" }, 143 { LS_OPAQUE_GRACE_TLV_REASON_SW_RESTART, "Software Restart" }, 144 { LS_OPAQUE_GRACE_TLV_REASON_SW_UPGRADE, "Software Reload/Upgrade" }, 145 { LS_OPAQUE_GRACE_TLV_REASON_CP_SWITCH, "Control Processor Switch" }, 146 { 0, NULL } 147 }; 148 149 static const struct tok lsa_opaque_te_tlv_link_type_sub_tlv_values[] = { 150 { LS_OPAQUE_TE_LINK_SUBTLV_LINK_TYPE_PTP, "Point-to-point" }, 151 { LS_OPAQUE_TE_LINK_SUBTLV_LINK_TYPE_MA, "Multi-Access" }, 152 { 0, NULL } 153 }; 154 155 static const struct tok lsa_opaque_ri_tlv_values[] = { 156 { LS_OPAQUE_RI_TLV_CAP, "Router Capabilities" }, 157 { 0, NULL } 158 }; 159 160 static const struct tok lsa_opaque_ri_tlv_cap_values[] = { 161 { 1, "Reserved" }, 162 { 2, "Reserved" }, 163 { 4, "Reserved" }, 164 { 8, "Reserved" }, 165 { 16, "graceful restart capable" }, 166 { 32, "graceful restart helper" }, 167 { 64, "Stub router support" }, 168 { 128, "Traffic engineering" }, 169 { 256, "p2p over LAN" }, 170 { 512, "path computation server" }, 171 { 0, NULL } 172 }; 173 174 static const struct tok ospf_lls_tlv_values[] = { 175 { OSPF_LLS_EO, "Extended Options" }, 176 { OSPF_LLS_MD5, "MD5 Authentication" }, 177 { 0, NULL } 178 }; 179 180 static const struct tok ospf_lls_eo_options[] = { 181 { OSPF_LLS_EO_LR, "LSDB resync" }, 182 { OSPF_LLS_EO_RS, "Restart" }, 183 { 0, NULL } 184 }; 185 186 int 187 ospf_grace_lsa_print(netdissect_options *ndo, 188 const u_char *tptr, u_int ls_length) 189 { 190 u_int tlv_type, tlv_length; 191 192 193 while (ls_length > 0) { 194 ND_TCHECK_4(tptr); 195 if (ls_length < 4) { 196 ND_PRINT("\n\t Remaining LS length %u < 4", ls_length); 197 return -1; 198 } 199 tlv_type = GET_BE_U_2(tptr); 200 tlv_length = GET_BE_U_2(tptr + 2); 201 tptr+=4; 202 ls_length-=4; 203 204 ND_PRINT("\n\t %s TLV (%u), length %u, value: ", 205 tok2str(lsa_opaque_grace_tlv_values,"unknown",tlv_type), 206 tlv_type, 207 tlv_length); 208 209 if (tlv_length > ls_length) { 210 ND_PRINT("\n\t Bogus length %u > %u", tlv_length, 211 ls_length); 212 return -1; 213 } 214 215 /* Infinite loop protection. */ 216 if (tlv_type == 0 || tlv_length ==0) { 217 return -1; 218 } 219 220 ND_TCHECK_LEN(tptr, tlv_length); 221 switch(tlv_type) { 222 223 case LS_OPAQUE_GRACE_TLV_PERIOD: 224 if (tlv_length != 4) { 225 ND_PRINT("\n\t Bogus length %u != 4", tlv_length); 226 return -1; 227 } 228 ND_PRINT("%us", GET_BE_U_4(tptr)); 229 break; 230 231 case LS_OPAQUE_GRACE_TLV_REASON: 232 if (tlv_length != 1) { 233 ND_PRINT("\n\t Bogus length %u != 1", tlv_length); 234 return -1; 235 } 236 ND_PRINT("%s (%u)", 237 tok2str(lsa_opaque_grace_tlv_reason_values, "Unknown", GET_U_1(tptr)), 238 GET_U_1(tptr)); 239 break; 240 241 case LS_OPAQUE_GRACE_TLV_INT_ADDRESS: 242 if (tlv_length != 4) { 243 ND_PRINT("\n\t Bogus length %u != 4", tlv_length); 244 return -1; 245 } 246 ND_PRINT("%s", GET_IPADDR_STRING(tptr)); 247 break; 248 249 default: 250 if (ndo->ndo_vflag <= 1) { 251 if (!print_unknown_data(ndo, tptr, "\n\t ", tlv_length)) 252 return -1; 253 } 254 break; 255 256 } 257 /* in OSPF everything has to be 32-bit aligned, including TLVs */ 258 if (tlv_length%4 != 0) 259 tlv_length+=4-(tlv_length%4); 260 ls_length-=tlv_length; 261 tptr+=tlv_length; 262 } 263 264 return 0; 265 trunc: 266 return -1; 267 } 268 269 int 270 ospf_te_lsa_print(netdissect_options *ndo, 271 const u_char *tptr, u_int ls_length) 272 { 273 u_int tlv_type, tlv_length, subtlv_type, subtlv_length; 274 u_int priority_level, te_class, count_srlg; 275 union { /* int to float conversion buffer for several subTLVs */ 276 float f; 277 uint32_t i; 278 } bw; 279 280 while (ls_length != 0) { 281 ND_TCHECK_4(tptr); 282 if (ls_length < 4) { 283 ND_PRINT("\n\t Remaining LS length %u < 4", ls_length); 284 return -1; 285 } 286 tlv_type = GET_BE_U_2(tptr); 287 tlv_length = GET_BE_U_2(tptr + 2); 288 tptr+=4; 289 ls_length-=4; 290 291 ND_PRINT("\n\t %s TLV (%u), length: %u", 292 tok2str(lsa_opaque_te_tlv_values,"unknown",tlv_type), 293 tlv_type, 294 tlv_length); 295 296 if (tlv_length > ls_length) { 297 ND_PRINT("\n\t Bogus length %u > %u", tlv_length, 298 ls_length); 299 return -1; 300 } 301 302 /* Infinite loop protection. */ 303 if (tlv_type == 0 || tlv_length ==0) { 304 return -1; 305 } 306 307 switch(tlv_type) { 308 case LS_OPAQUE_TE_TLV_LINK: 309 while (tlv_length != 0) { 310 if (tlv_length < 4) { 311 ND_PRINT("\n\t Remaining TLV length %u < 4", 312 tlv_length); 313 return -1; 314 } 315 subtlv_type = GET_BE_U_2(tptr); 316 subtlv_length = GET_BE_U_2(tptr + 2); 317 tptr+=4; 318 tlv_length-=4; 319 320 /* Infinite loop protection */ 321 if (subtlv_type == 0 || subtlv_length == 0) 322 goto invalid; 323 324 ND_PRINT("\n\t %s subTLV (%u), length: %u", 325 tok2str(lsa_opaque_te_link_tlv_subtlv_values,"unknown",subtlv_type), 326 subtlv_type, 327 subtlv_length); 328 329 if (tlv_length < subtlv_length) { 330 ND_PRINT("\n\t Remaining TLV length %u < %u", 331 tlv_length + 4, subtlv_length + 4); 332 return -1; 333 } 334 ND_TCHECK_LEN(tptr, subtlv_length); 335 switch(subtlv_type) { 336 case LS_OPAQUE_TE_LINK_SUBTLV_ADMIN_GROUP: 337 if (subtlv_length != 4) { 338 ND_PRINT(" != 4"); 339 goto invalid; 340 } 341 ND_PRINT(", 0x%08x", GET_BE_U_4(tptr)); 342 break; 343 case LS_OPAQUE_TE_LINK_SUBTLV_LINK_ID: 344 case LS_OPAQUE_TE_LINK_SUBTLV_LINK_LOCAL_REMOTE_ID: 345 if (subtlv_length != 4 && subtlv_length != 8) { 346 ND_PRINT(" != 4 && != 8"); 347 goto invalid; 348 } 349 ND_PRINT(", %s (0x%08x)", 350 GET_IPADDR_STRING(tptr), 351 GET_BE_U_4(tptr)); 352 if (subtlv_length == 8) /* rfc4203 */ 353 ND_PRINT(", %s (0x%08x)", 354 GET_IPADDR_STRING(tptr+4), 355 GET_BE_U_4(tptr + 4)); 356 break; 357 case LS_OPAQUE_TE_LINK_SUBTLV_LOCAL_IP: 358 case LS_OPAQUE_TE_LINK_SUBTLV_REMOTE_IP: 359 if (subtlv_length != 4) { 360 ND_PRINT(" != 4"); 361 goto invalid; 362 } 363 ND_PRINT(", %s", GET_IPADDR_STRING(tptr)); 364 break; 365 case LS_OPAQUE_TE_LINK_SUBTLV_MAX_BW: 366 case LS_OPAQUE_TE_LINK_SUBTLV_MAX_RES_BW: 367 if (subtlv_length != 4) { 368 ND_PRINT(" != 4"); 369 goto invalid; 370 } 371 bw.i = GET_BE_U_4(tptr); 372 ND_PRINT(", %.3f Mbps", bw.f * 8 / 1000000); 373 break; 374 case LS_OPAQUE_TE_LINK_SUBTLV_UNRES_BW: 375 if (subtlv_length != 32) { 376 ND_PRINT(" != 32"); 377 goto invalid; 378 } 379 for (te_class = 0; te_class < 8; te_class++) { 380 bw.i = GET_BE_U_4(tptr + te_class * 4); 381 ND_PRINT("\n\t\tTE-Class %u: %.3f Mbps", 382 te_class, 383 bw.f * 8 / 1000000); 384 } 385 break; 386 case LS_OPAQUE_TE_LINK_SUBTLV_BW_CONSTRAINTS: 387 if (subtlv_length < 4) { 388 ND_PRINT(" < 4"); 389 goto invalid; 390 } 391 /* BC Model Id (1 octet) + Reserved (3 octets) */ 392 ND_PRINT("\n\t\tBandwidth Constraints Model ID: %s (%u)", 393 tok2str(diffserv_te_bc_values, "unknown", GET_U_1(tptr)), 394 GET_U_1(tptr)); 395 if (subtlv_length % 4 != 0) { 396 ND_PRINT("\n\t\tlength %u != N x 4", subtlv_length); 397 goto invalid; 398 } 399 if (subtlv_length > 36) { 400 ND_PRINT("\n\t\tlength %u > 36", subtlv_length); 401 goto invalid; 402 } 403 /* decode BCs until the subTLV ends */ 404 for (te_class = 0; te_class < (subtlv_length-4)/4; te_class++) { 405 bw.i = GET_BE_U_4(tptr + 4 + te_class * 4); 406 ND_PRINT("\n\t\t Bandwidth constraint CT%u: %.3f Mbps", 407 te_class, 408 bw.f * 8 / 1000000); 409 } 410 break; 411 case LS_OPAQUE_TE_LINK_SUBTLV_TE_METRIC: 412 if (subtlv_length != 4) { 413 ND_PRINT(" != 4"); 414 goto invalid; 415 } 416 ND_PRINT(", Metric %u", GET_BE_U_4(tptr)); 417 break; 418 case LS_OPAQUE_TE_LINK_SUBTLV_LINK_PROTECTION_TYPE: 419 /* Protection Cap (1 octet) + Reserved ((3 octets) */ 420 if (subtlv_length != 4) { 421 ND_PRINT(" != 4"); 422 goto invalid; 423 } 424 ND_PRINT(", %s", 425 bittok2str(gmpls_link_prot_values, "none", GET_U_1(tptr))); 426 break; 427 case LS_OPAQUE_TE_LINK_SUBTLV_INTF_SW_CAP_DESCR: 428 if (subtlv_length < 36) { 429 ND_PRINT(" < 36"); 430 goto invalid; 431 } 432 /* Switching Cap (1 octet) + Encoding (1) + Reserved (2) */ 433 ND_PRINT("\n\t\tInterface Switching Capability: %s", 434 tok2str(gmpls_switch_cap_values, "Unknown", GET_U_1((tptr)))); 435 ND_PRINT("\n\t\tLSP Encoding: %s\n\t\tMax LSP Bandwidth:", 436 tok2str(gmpls_encoding_values, "Unknown", GET_U_1((tptr + 1)))); 437 for (priority_level = 0; priority_level < 8; priority_level++) { 438 bw.i = GET_BE_U_4(tptr + 4 + (priority_level * 4)); 439 ND_PRINT("\n\t\t priority level %u: %.3f Mbps", 440 priority_level, 441 bw.f * 8 / 1000000); 442 } 443 break; 444 case LS_OPAQUE_TE_LINK_SUBTLV_LINK_TYPE: 445 if (subtlv_length != 1) { 446 ND_PRINT(" != 1"); 447 goto invalid; 448 } 449 ND_PRINT(", %s (%u)", 450 tok2str(lsa_opaque_te_tlv_link_type_sub_tlv_values,"unknown",GET_U_1(tptr)), 451 GET_U_1(tptr)); 452 break; 453 454 case LS_OPAQUE_TE_LINK_SUBTLV_SHARED_RISK_GROUP: 455 if (subtlv_length % 4 != 0) { 456 ND_PRINT(" != N x 4"); 457 goto invalid; 458 } 459 count_srlg = subtlv_length / 4; 460 if (count_srlg != 0) 461 ND_PRINT("\n\t\t Shared risk group: "); 462 while (count_srlg > 0) { 463 bw.i = GET_BE_U_4(tptr); 464 ND_PRINT("%u", bw.i); 465 tptr+=4; 466 count_srlg--; 467 if (count_srlg > 0) 468 ND_PRINT(", "); 469 } 470 break; 471 472 default: 473 if (ndo->ndo_vflag <= 1) { 474 if (!print_unknown_data(ndo, tptr, "\n\t\t", subtlv_length)) 475 return -1; 476 } 477 break; 478 } 479 /* in OSPF everything has to be 32-bit aligned, including subTLVs */ 480 if (subtlv_length%4 != 0) 481 subtlv_length+=4-(subtlv_length%4); 482 483 if (tlv_length < subtlv_length) { 484 ND_PRINT("\n\t Remaining TLV length %u < %u", 485 tlv_length + 4, subtlv_length + 4); 486 return -1; 487 } 488 tlv_length-=subtlv_length; 489 tptr+=subtlv_length; 490 491 } 492 break; 493 494 case LS_OPAQUE_TE_TLV_ROUTER: 495 if (tlv_length < 4) { 496 ND_PRINT("\n\t TLV length %u < 4", tlv_length); 497 return -1; 498 } 499 ND_PRINT(", %s", GET_IPADDR_STRING(tptr)); 500 break; 501 502 default: 503 if (ndo->ndo_vflag <= 1) { 504 if (!print_unknown_data(ndo, tptr, "\n\t ", tlv_length)) 505 return -1; 506 } 507 break; 508 } 509 /* in OSPF everything has to be 32-bit aligned, including TLVs */ 510 if (tlv_length%4 != 0) 511 tlv_length+=4-(tlv_length%4); 512 if (tlv_length > ls_length) { 513 ND_PRINT("\n\t Bogus padded length %u > %u", tlv_length, 514 ls_length); 515 return -1; 516 } 517 ls_length-=tlv_length; 518 tptr+=tlv_length; 519 } 520 return 0; 521 trunc: 522 return -1; 523 invalid: 524 nd_print_invalid(ndo); 525 return -1; 526 } 527 528 static int 529 ospf_print_lshdr(netdissect_options *ndo, 530 const struct lsa_hdr *lshp) 531 { 532 u_int ls_type; 533 u_int ls_length; 534 535 ls_length = GET_BE_U_2(lshp->ls_length); 536 if (ls_length < sizeof(struct lsa_hdr)) { 537 ND_PRINT("\n\t Bogus length %u < header (%zu)", ls_length, 538 sizeof(struct lsa_hdr)); 539 return(-1); 540 } 541 ND_PRINT("\n\t Advertising Router %s, seq 0x%08x, age %us, length %zu", 542 GET_IPADDR_STRING(lshp->ls_router), 543 GET_BE_U_4(lshp->ls_seq), 544 GET_BE_U_2(lshp->ls_age), 545 ls_length - sizeof(struct lsa_hdr)); 546 ls_type = GET_U_1(lshp->ls_type); 547 switch (ls_type) { 548 /* the LSA header for opaque LSAs was slightly changed */ 549 case LS_TYPE_OPAQUE_LL: 550 case LS_TYPE_OPAQUE_AL: 551 case LS_TYPE_OPAQUE_DW: 552 ND_PRINT("\n\t %s LSA (%u), Opaque-Type %s LSA (%u), Opaque-ID %u", 553 tok2str(lsa_values,"unknown",ls_type), 554 ls_type, 555 556 tok2str(lsa_opaque_values, 557 "unknown", 558 GET_U_1(lshp->un_lsa_id.opaque_field.opaque_type)), 559 GET_U_1(lshp->un_lsa_id.opaque_field.opaque_type), 560 GET_BE_U_3(lshp->un_lsa_id.opaque_field.opaque_id) 561 562 ); 563 break; 564 565 /* all other LSA types use regular style LSA headers */ 566 default: 567 ND_PRINT("\n\t %s LSA (%u), LSA-ID: %s", 568 tok2str(lsa_values,"unknown",ls_type), 569 ls_type, 570 GET_IPADDR_STRING(lshp->un_lsa_id.lsa_id)); 571 break; 572 } 573 ND_PRINT("\n\t Options: [%s]", 574 bittok2str(ospf_option_values, "none", GET_U_1(lshp->ls_options))); 575 576 return (ls_length); 577 } 578 579 /* draft-ietf-ospf-mt-09 */ 580 static const struct tok ospf_topology_values[] = { 581 { 0, "default" }, 582 { 1, "multicast" }, 583 { 2, "management" }, 584 { 0, NULL } 585 }; 586 587 /* 588 * Print all the per-topology metrics. 589 */ 590 static void 591 ospf_print_tos_metrics(netdissect_options *ndo, 592 const union un_tos *tos) 593 { 594 u_int metric_count; 595 u_int toscount; 596 u_int tos_type; 597 598 toscount = GET_U_1(tos->link.link_tos_count)+1; 599 metric_count = 0; 600 601 /* 602 * All but the first metric contain a valid topology id. 603 */ 604 while (toscount != 0) { 605 tos_type = GET_U_1(tos->metrics.tos_type); 606 ND_PRINT("\n\t\ttopology %s (%u), metric %u", 607 tok2str(ospf_topology_values, "Unknown", 608 metric_count ? tos_type : 0), 609 metric_count ? tos_type : 0, 610 GET_BE_U_2(tos->metrics.tos_metric)); 611 metric_count++; 612 tos++; 613 toscount--; 614 } 615 } 616 617 /* 618 * Print a single link state advertisement. If truncated or if LSA length 619 * field is less than the length of the LSA header, return NULl, else 620 * return pointer to data past end of LSA. 621 */ 622 static const uint8_t * 623 ospf_print_lsa(netdissect_options *ndo, 624 const struct lsa *lsap) 625 { 626 const uint8_t *ls_end; 627 const struct rlalink *rlp; 628 const nd_ipv4 *ap; 629 const struct aslametric *almp; 630 const struct mcla *mcp; 631 const uint8_t *lp; 632 u_int tlv_type, tlv_length, rla_count, topology; 633 int ospf_print_lshdr_ret; 634 u_int ls_length; 635 const uint8_t *tptr; 636 637 tptr = (const uint8_t *)lsap->lsa_un.un_unknown; /* squelch compiler warnings */ 638 ospf_print_lshdr_ret = ospf_print_lshdr(ndo, &lsap->ls_hdr); 639 if (ospf_print_lshdr_ret < 0) 640 return(NULL); 641 ls_length = (u_int)ospf_print_lshdr_ret; 642 ls_end = (const uint8_t *)lsap + ls_length; 643 /* 644 * ospf_print_lshdr() returns -1 if the length is too short, 645 * so we know ls_length is >= sizeof(struct lsa_hdr). 646 */ 647 ls_length -= sizeof(struct lsa_hdr); 648 649 switch (GET_U_1(lsap->ls_hdr.ls_type)) { 650 651 case LS_TYPE_ROUTER: 652 ND_PRINT("\n\t Router LSA Options: [%s]", 653 bittok2str(ospf_rla_flag_values, "none", GET_U_1(lsap->lsa_un.un_rla.rla_flags))); 654 655 rla_count = GET_BE_U_2(lsap->lsa_un.un_rla.rla_count); 656 ND_TCHECK_SIZE(lsap->lsa_un.un_rla.rla_link); 657 rlp = lsap->lsa_un.un_rla.rla_link; 658 for (u_int i = rla_count; i != 0; i--) { 659 ND_TCHECK_SIZE(rlp); 660 switch (GET_U_1(rlp->un_tos.link.link_type)) { 661 662 case RLA_TYPE_VIRTUAL: 663 ND_PRINT("\n\t Virtual Link: Neighbor Router-ID: %s, Interface Address: %s", 664 GET_IPADDR_STRING(rlp->link_id), 665 GET_IPADDR_STRING(rlp->link_data)); 666 break; 667 668 case RLA_TYPE_ROUTER: 669 ND_PRINT("\n\t Neighbor Router-ID: %s, Interface Address: %s", 670 GET_IPADDR_STRING(rlp->link_id), 671 GET_IPADDR_STRING(rlp->link_data)); 672 break; 673 674 case RLA_TYPE_TRANSIT: 675 ND_PRINT("\n\t Neighbor Network-ID: %s, Interface Address: %s", 676 GET_IPADDR_STRING(rlp->link_id), 677 GET_IPADDR_STRING(rlp->link_data)); 678 break; 679 680 case RLA_TYPE_STUB: 681 ND_PRINT("\n\t Stub Network: %s, Mask: %s", 682 GET_IPADDR_STRING(rlp->link_id), 683 GET_IPADDR_STRING(rlp->link_data)); 684 break; 685 686 default: 687 ND_PRINT("\n\t Unknown Router Link Type (%u)", 688 GET_U_1(rlp->un_tos.link.link_type)); 689 return (ls_end); 690 } 691 692 ospf_print_tos_metrics(ndo, &rlp->un_tos); 693 694 rlp = (const struct rlalink *)((const u_char *)(rlp + 1) + 695 (GET_U_1(rlp->un_tos.link.link_tos_count) * sizeof(union un_tos))); 696 } 697 break; 698 699 case LS_TYPE_NETWORK: 700 ND_PRINT("\n\t Mask %s\n\t Connected Routers:", 701 GET_IPADDR_STRING(lsap->lsa_un.un_nla.nla_mask)); 702 ap = lsap->lsa_un.un_nla.nla_router; 703 while ((const u_char *)ap < ls_end) { 704 ND_PRINT("\n\t %s", GET_IPADDR_STRING(ap)); 705 ++ap; 706 } 707 break; 708 709 case LS_TYPE_SUM_IP: 710 ND_TCHECK_4(lsap->lsa_un.un_nla.nla_mask); 711 ND_PRINT("\n\t Mask %s", 712 GET_IPADDR_STRING(lsap->lsa_un.un_sla.sla_mask)); 713 ND_TCHECK_SIZE(lsap->lsa_un.un_sla.sla_tosmetric); 714 lp = (const uint8_t *)lsap->lsa_un.un_sla.sla_tosmetric; 715 while (lp < ls_end) { 716 uint32_t ul; 717 718 ul = GET_BE_U_4(lp); 719 topology = (ul & SLA_MASK_TOS) >> SLA_SHIFT_TOS; 720 ND_PRINT("\n\t\ttopology %s (%u) metric %u", 721 tok2str(ospf_topology_values, "Unknown", topology), 722 topology, 723 ul & SLA_MASK_METRIC); 724 lp += 4; 725 } 726 break; 727 728 case LS_TYPE_SUM_ABR: 729 ND_TCHECK_SIZE(lsap->lsa_un.un_sla.sla_tosmetric); 730 lp = (const uint8_t *)lsap->lsa_un.un_sla.sla_tosmetric; 731 while (lp < ls_end) { 732 uint32_t ul; 733 734 ul = GET_BE_U_4(lp); 735 topology = (ul & SLA_MASK_TOS) >> SLA_SHIFT_TOS; 736 ND_PRINT("\n\t\ttopology %s (%u) metric %u", 737 tok2str(ospf_topology_values, "Unknown", topology), 738 topology, 739 ul & SLA_MASK_METRIC); 740 lp += 4; 741 } 742 break; 743 744 case LS_TYPE_ASE: 745 case LS_TYPE_NSSA: /* fall through - those LSAs share the same format */ 746 ND_TCHECK_4(lsap->lsa_un.un_nla.nla_mask); 747 ND_PRINT("\n\t Mask %s", 748 GET_IPADDR_STRING(lsap->lsa_un.un_asla.asla_mask)); 749 750 ND_TCHECK_SIZE(lsap->lsa_un.un_sla.sla_tosmetric); 751 almp = lsap->lsa_un.un_asla.asla_metric; 752 while ((const u_char *)almp < ls_end) { 753 uint32_t ul; 754 755 ul = GET_BE_U_4(almp->asla_tosmetric); 756 topology = ((ul & ASLA_MASK_TOS) >> ASLA_SHIFT_TOS); 757 ND_PRINT("\n\t\ttopology %s (%u), type %u, metric", 758 tok2str(ospf_topology_values, "Unknown", topology), 759 topology, 760 (ul & ASLA_FLAG_EXTERNAL) ? 2 : 1); 761 if ((ul & ASLA_MASK_METRIC) == 0xffffff) 762 ND_PRINT(" infinite"); 763 else 764 ND_PRINT(" %u", (ul & ASLA_MASK_METRIC)); 765 766 if (GET_IPV4_TO_NETWORK_ORDER(almp->asla_forward) != 0) { 767 ND_PRINT(", forward %s", GET_IPADDR_STRING(almp->asla_forward)); 768 } 769 if (GET_IPV4_TO_NETWORK_ORDER(almp->asla_tag) != 0) { 770 ND_PRINT(", tag %s", GET_IPADDR_STRING(almp->asla_tag)); 771 } 772 ++almp; 773 } 774 break; 775 776 case LS_TYPE_GROUP: 777 /* Multicast extensions as of 23 July 1991 */ 778 mcp = lsap->lsa_un.un_mcla; 779 while ((const u_char *)mcp < ls_end) { 780 switch (GET_BE_U_4(mcp->mcla_vtype)) { 781 782 case MCLA_VERTEX_ROUTER: 783 ND_PRINT("\n\t Router Router-ID %s", 784 GET_IPADDR_STRING(mcp->mcla_vid)); 785 break; 786 787 case MCLA_VERTEX_NETWORK: 788 ND_PRINT("\n\t Network Designated Router %s", 789 GET_IPADDR_STRING(mcp->mcla_vid)); 790 break; 791 792 default: 793 ND_PRINT("\n\t unknown VertexType (%u)", 794 GET_BE_U_4(mcp->mcla_vtype)); 795 break; 796 } 797 ++mcp; 798 } 799 break; 800 801 case LS_TYPE_OPAQUE_LL: /* fall through */ 802 case LS_TYPE_OPAQUE_AL: 803 case LS_TYPE_OPAQUE_DW: 804 805 switch (GET_U_1(lsap->ls_hdr.un_lsa_id.opaque_field.opaque_type)) { 806 case LS_OPAQUE_TYPE_RI: 807 tptr = (const uint8_t *)(lsap->lsa_un.un_ri_tlv); 808 809 u_int ls_length_remaining = ls_length; 810 while (ls_length_remaining != 0) { 811 ND_TCHECK_4(tptr); 812 if (ls_length_remaining < 4) { 813 ND_PRINT("\n\t Remaining LS length %u < 4", ls_length_remaining); 814 return(ls_end); 815 } 816 tlv_type = GET_BE_U_2(tptr); 817 tlv_length = GET_BE_U_2(tptr + 2); 818 tptr+=4; 819 ls_length_remaining-=4; 820 821 ND_PRINT("\n\t %s TLV (%u), length: %u, value: ", 822 tok2str(lsa_opaque_ri_tlv_values,"unknown",tlv_type), 823 tlv_type, 824 tlv_length); 825 826 if (tlv_length > ls_length_remaining) { 827 ND_PRINT("\n\t Bogus length %u > remaining LS length %u", tlv_length, 828 ls_length_remaining); 829 return(ls_end); 830 } 831 ND_TCHECK_LEN(tptr, tlv_length); 832 switch(tlv_type) { 833 834 case LS_OPAQUE_RI_TLV_CAP: 835 if (tlv_length != 4) { 836 ND_PRINT("\n\t Bogus length %u != 4", tlv_length); 837 return(ls_end); 838 } 839 ND_PRINT("Capabilities: %s", 840 bittok2str(lsa_opaque_ri_tlv_cap_values, "Unknown", GET_BE_U_4(tptr))); 841 break; 842 default: 843 if (ndo->ndo_vflag <= 1) { 844 if (!print_unknown_data(ndo, tptr, "\n\t ", tlv_length)) 845 return(ls_end); 846 } 847 break; 848 849 } 850 851 /* in OSPF everything has to be 32-bit aligned, including TLVs */ 852 if (tlv_length % 4) { 853 tlv_length += (4 - (tlv_length % 4)); 854 } 855 tptr+=tlv_length; 856 ls_length_remaining-=tlv_length; 857 } 858 break; 859 860 case LS_OPAQUE_TYPE_GRACE: 861 if (ospf_grace_lsa_print(ndo, (const u_char *)(lsap->lsa_un.un_grace_tlv), 862 ls_length) == -1) { 863 return(ls_end); 864 } 865 break; 866 867 case LS_OPAQUE_TYPE_TE: 868 if (ospf_te_lsa_print(ndo, (const u_char *)(lsap->lsa_un.un_te_lsa_tlv), 869 ls_length) == -1) { 870 return(ls_end); 871 } 872 break; 873 874 default: 875 if (ndo->ndo_vflag <= 1) { 876 if (!print_unknown_data(ndo, (const uint8_t *)lsap->lsa_un.un_unknown, 877 "\n\t ", ls_length)) 878 return(ls_end); 879 } 880 break; 881 } 882 } 883 884 /* do we want to see an additionally hexdump ? */ 885 if (ndo->ndo_vflag> 1) 886 if (!print_unknown_data(ndo, (const uint8_t *)lsap->lsa_un.un_unknown, 887 "\n\t ", ls_length)) { 888 return(ls_end); 889 } 890 891 return (ls_end); 892 trunc: 893 return (NULL); 894 } 895 896 static void 897 ospf_decode_lls(netdissect_options *ndo, 898 const struct ospfhdr *op, u_int length) 899 { 900 const u_char *dptr; 901 const u_char *dataend; 902 u_int length2; 903 uint16_t lls_type, lls_len; 904 uint32_t lls_flags; 905 906 switch (GET_U_1(op->ospf_type)) { 907 908 case OSPF_TYPE_HELLO: 909 if (!(GET_U_1(op->ospf_hello.hello_options) & OSPF_OPTION_L)) 910 return; 911 break; 912 913 case OSPF_TYPE_DD: 914 if (!(GET_U_1(op->ospf_db.db_options) & OSPF_OPTION_L)) 915 return; 916 break; 917 918 default: 919 return; 920 } 921 922 /* dig deeper if LLS data is available; see RFC4813 */ 923 length2 = GET_BE_U_2(op->ospf_len); 924 dptr = (const u_char *)op + length2; 925 dataend = (const u_char *)op + length; 926 927 if (GET_BE_U_2(op->ospf_authtype) == OSPF_AUTH_MD5) { 928 dptr = dptr + GET_U_1(op->ospf_authdata + 3); 929 length2 += GET_U_1(op->ospf_authdata + 3); 930 } 931 if (length2 >= length) { 932 ND_PRINT("\n\t[LLS truncated]"); 933 return; 934 } 935 ND_PRINT("\n\t LLS: checksum: 0x%04x", (u_int) GET_BE_U_2(dptr)); 936 937 dptr += 2; 938 length2 = GET_BE_U_2(dptr); 939 ND_PRINT(", length: %u", length2); 940 941 dptr += 2; 942 while (dptr < dataend) { 943 lls_type = GET_BE_U_2(dptr); 944 ND_PRINT("\n\t %s (%u)", 945 tok2str(ospf_lls_tlv_values,"Unknown TLV",lls_type), 946 lls_type); 947 dptr += 2; 948 lls_len = GET_BE_U_2(dptr); 949 ND_PRINT(", length: %u", lls_len); 950 dptr += 2; 951 switch (lls_type) { 952 953 case OSPF_LLS_EO: 954 if (lls_len != 4) { 955 ND_PRINT(" [should be 4]"); 956 lls_len = 4; 957 } 958 lls_flags = GET_BE_U_4(dptr); 959 ND_PRINT("\n\t Options: 0x%08x [%s]", lls_flags, 960 bittok2str(ospf_lls_eo_options, "?", lls_flags)); 961 962 break; 963 964 case OSPF_LLS_MD5: 965 if (lls_len != 20) { 966 ND_PRINT(" [should be 20]"); 967 lls_len = 20; 968 } 969 ND_PRINT("\n\t Sequence number: 0x%08x", GET_BE_U_4(dptr)); 970 break; 971 } 972 973 dptr += lls_len; 974 } 975 } 976 977 static int 978 ospf_decode_v2(netdissect_options *ndo, 979 const struct ospfhdr *op, const u_char *dataend) 980 { 981 const nd_ipv4 *ap; 982 const struct lsr *lsrp; 983 const struct lsa_hdr *lshp; 984 const struct lsa *lsap; 985 uint32_t lsa_count,lsa_count_max; 986 987 switch (GET_U_1(op->ospf_type)) { 988 989 case OSPF_TYPE_HELLO: 990 ND_PRINT("\n\tOptions [%s]", 991 bittok2str(ospf_option_values,"none",GET_U_1(op->ospf_hello.hello_options))); 992 993 ND_PRINT("\n\t Hello Timer %us, Dead Timer %us, Mask %s, Priority %u", 994 GET_BE_U_2(op->ospf_hello.hello_helloint), 995 GET_BE_U_4(op->ospf_hello.hello_deadint), 996 GET_IPADDR_STRING(op->ospf_hello.hello_mask), 997 GET_U_1(op->ospf_hello.hello_priority)); 998 999 if (GET_IPV4_TO_NETWORK_ORDER(op->ospf_hello.hello_dr) != 0) 1000 ND_PRINT("\n\t Designated Router %s", 1001 GET_IPADDR_STRING(op->ospf_hello.hello_dr)); 1002 1003 if (GET_IPV4_TO_NETWORK_ORDER(op->ospf_hello.hello_bdr) != 0) 1004 ND_PRINT(", Backup Designated Router %s", 1005 GET_IPADDR_STRING(op->ospf_hello.hello_bdr)); 1006 1007 ap = op->ospf_hello.hello_neighbor; 1008 if ((const u_char *)ap < dataend) 1009 ND_PRINT("\n\t Neighbor List:"); 1010 while ((const u_char *)ap < dataend) { 1011 ND_PRINT("\n\t %s", GET_IPADDR_STRING(ap)); 1012 ++ap; 1013 } 1014 break; /* HELLO */ 1015 1016 case OSPF_TYPE_DD: 1017 ND_PRINT("\n\tOptions [%s]", 1018 bittok2str(ospf_option_values, "none", GET_U_1(op->ospf_db.db_options))); 1019 ND_PRINT(", DD Flags [%s]", 1020 bittok2str(ospf_dd_flag_values, "none", GET_U_1(op->ospf_db.db_flags))); 1021 if (GET_BE_U_2(op->ospf_db.db_ifmtu)) { 1022 ND_PRINT(", MTU: %u", 1023 GET_BE_U_2(op->ospf_db.db_ifmtu)); 1024 } 1025 ND_PRINT(", Sequence: 0x%08x", GET_BE_U_4(op->ospf_db.db_seq)); 1026 1027 /* Print all the LS adv's */ 1028 lshp = op->ospf_db.db_lshdr; 1029 while (((const u_char *)lshp < dataend) && ospf_print_lshdr(ndo, lshp) != -1) { 1030 ++lshp; 1031 } 1032 break; 1033 1034 case OSPF_TYPE_LS_REQ: 1035 lsrp = op->ospf_lsr; 1036 while ((const u_char *)lsrp < dataend) { 1037 ND_TCHECK_SIZE(lsrp); 1038 1039 ND_PRINT("\n\t Advertising Router: %s, %s LSA (%u)", 1040 GET_IPADDR_STRING(lsrp->ls_router), 1041 tok2str(lsa_values,"unknown",GET_BE_U_4(lsrp->ls_type)), 1042 GET_BE_U_4(lsrp->ls_type)); 1043 1044 switch (GET_BE_U_4(lsrp->ls_type)) { 1045 /* the LSA header for opaque LSAs was slightly changed */ 1046 case LS_TYPE_OPAQUE_LL: 1047 case LS_TYPE_OPAQUE_AL: 1048 case LS_TYPE_OPAQUE_DW: 1049 ND_PRINT(", Opaque-Type: %s LSA (%u), Opaque-ID: %u", 1050 tok2str(lsa_opaque_values, "unknown",GET_U_1(lsrp->un_ls_stateid.opaque_field.opaque_type)), 1051 GET_U_1(lsrp->un_ls_stateid.opaque_field.opaque_type), 1052 GET_BE_U_3(lsrp->un_ls_stateid.opaque_field.opaque_id)); 1053 break; 1054 default: 1055 ND_PRINT(", LSA-ID: %s", 1056 GET_IPADDR_STRING(lsrp->un_ls_stateid.ls_stateid)); 1057 break; 1058 } 1059 1060 ++lsrp; 1061 } 1062 break; 1063 1064 case OSPF_TYPE_LS_UPDATE: 1065 lsap = op->ospf_lsu.lsu_lsa; 1066 lsa_count_max = GET_BE_U_4(op->ospf_lsu.lsu_count); 1067 ND_PRINT(", %u LSA%s", lsa_count_max, PLURAL_SUFFIX(lsa_count_max)); 1068 for (lsa_count=1;lsa_count <= lsa_count_max;lsa_count++) { 1069 ND_PRINT("\n\t LSA #%u", lsa_count); 1070 lsap = (const struct lsa *)ospf_print_lsa(ndo, lsap); 1071 if (lsap == NULL) 1072 goto trunc; 1073 } 1074 break; 1075 1076 case OSPF_TYPE_LS_ACK: 1077 lshp = op->ospf_lsa.lsa_lshdr; 1078 while ((const u_char *)lshp < dataend) { 1079 ospf_print_lshdr(ndo, lshp); 1080 ++lshp; 1081 } 1082 break; 1083 1084 default: 1085 break; 1086 } 1087 return (0); 1088 trunc: 1089 return (1); 1090 } 1091 1092 void 1093 ospf_print(netdissect_options *ndo, 1094 const u_char *bp, u_int length, 1095 const u_char *bp2 _U_) 1096 { 1097 const struct ospfhdr *op; 1098 const u_char *dataend; 1099 const char *cp; 1100 1101 ndo->ndo_protocol = "ospf2"; 1102 op = (const struct ospfhdr *)bp; 1103 1104 /* XXX Before we do anything else, strip off the MD5 trailer */ 1105 if (GET_BE_U_2(op->ospf_authtype) == OSPF_AUTH_MD5) { 1106 length -= OSPF_AUTH_MD5_LEN; 1107 ndo->ndo_snapend -= OSPF_AUTH_MD5_LEN; 1108 } 1109 1110 /* If the type is valid translate it, or just print the type */ 1111 /* value. If it's not valid, say so and return */ 1112 cp = tok2str(type2str, "unknown LS-type %u", GET_U_1(op->ospf_type)); 1113 ND_PRINT("OSPFv%u, %s, length %u", GET_U_1(op->ospf_version), cp, 1114 length); 1115 if (*cp == 'u') 1116 return; 1117 1118 if (!ndo->ndo_vflag) { /* non verbose - so lets bail out here */ 1119 return; 1120 } 1121 1122 if (length != GET_BE_U_2(op->ospf_len)) { 1123 ND_PRINT(" [len %u]", GET_BE_U_2(op->ospf_len)); 1124 } 1125 1126 if (length > GET_BE_U_2(op->ospf_len)) { 1127 dataend = bp + GET_BE_U_2(op->ospf_len); 1128 } else { 1129 dataend = bp + length; 1130 } 1131 1132 ND_PRINT("\n\tRouter-ID %s", GET_IPADDR_STRING(op->ospf_routerid)); 1133 1134 if (GET_IPV4_TO_NETWORK_ORDER(op->ospf_areaid) != 0) 1135 ND_PRINT(", Area %s", GET_IPADDR_STRING(op->ospf_areaid)); 1136 else 1137 ND_PRINT(", Backbone Area"); 1138 1139 if (ndo->ndo_vflag) { 1140 /* Print authentication data (should we really do this?) */ 1141 ND_TCHECK_LEN(op->ospf_authdata, sizeof(op->ospf_authdata)); 1142 1143 ND_PRINT(", Authentication Type: %s (%u)", 1144 tok2str(ospf_authtype_values, "unknown", GET_BE_U_2(op->ospf_authtype)), 1145 GET_BE_U_2(op->ospf_authtype)); 1146 1147 switch (GET_BE_U_2(op->ospf_authtype)) { 1148 1149 case OSPF_AUTH_NONE: 1150 break; 1151 1152 case OSPF_AUTH_SIMPLE: 1153 ND_PRINT("\n\tSimple text password: "); 1154 nd_printjnp(ndo, op->ospf_authdata, OSPF_AUTH_SIMPLE_LEN); 1155 break; 1156 1157 case OSPF_AUTH_MD5: 1158 ND_PRINT("\n\tKey-ID: %u, Auth-Length: %u, Crypto Sequence Number: 0x%08x", 1159 GET_U_1(op->ospf_authdata + 2), 1160 GET_U_1(op->ospf_authdata + 3), 1161 GET_BE_U_4((op->ospf_authdata) + 4)); 1162 break; 1163 1164 default: 1165 return; 1166 } 1167 } 1168 /* Do rest according to version. */ 1169 switch (GET_U_1(op->ospf_version)) { 1170 1171 case 2: 1172 /* ospf version 2 */ 1173 if (ospf_decode_v2(ndo, op, dataend)) 1174 goto trunc; 1175 if (length > GET_BE_U_2(op->ospf_len)) 1176 ospf_decode_lls(ndo, op, length); 1177 break; 1178 1179 default: 1180 ND_PRINT(" ospf [version %u]", GET_U_1(op->ospf_version)); 1181 break; 1182 } /* end switch on version */ 1183 1184 return; 1185 trunc: 1186 nd_trunc_longjmp(ndo); 1187 } 1188