1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright (C) B.A.T.M.A.N. contributors: 3 * 4 * Antonio Quartulli 5 */ 6 7 #include "distributed-arp-table.h" 8 #include "main.h" 9 10 #include <linux/atomic.h> 11 #include <linux/bitops.h> 12 #include <linux/byteorder/generic.h> 13 #include <linux/container_of.h> 14 #include <linux/err.h> 15 #include <linux/errno.h> 16 #include <linux/etherdevice.h> 17 #include <linux/gfp.h> 18 #include <linux/if_arp.h> 19 #include <linux/if_ether.h> 20 #include <linux/if_vlan.h> 21 #include <linux/in.h> 22 #include <linux/ip.h> 23 #include <linux/jiffies.h> 24 #include <linux/kref.h> 25 #include <linux/list.h> 26 #include <linux/netlink.h> 27 #include <linux/rculist.h> 28 #include <linux/rcupdate.h> 29 #include <linux/skbuff.h> 30 #include <linux/slab.h> 31 #include <linux/spinlock.h> 32 #include <linux/stddef.h> 33 #include <linux/string.h> 34 #include <linux/udp.h> 35 #include <linux/unaligned.h> 36 #include <linux/workqueue.h> 37 #include <net/arp.h> 38 #include <net/genetlink.h> 39 #include <net/netlink.h> 40 #include <uapi/linux/batman_adv.h> 41 42 #include "bridge_loop_avoidance.h" 43 #include "hard-interface.h" 44 #include "hash.h" 45 #include "log.h" 46 #include "netlink.h" 47 #include "originator.h" 48 #include "send.h" 49 #include "translation-table.h" 50 #include "tvlv.h" 51 52 enum batadv_bootpop { 53 BATADV_BOOTREPLY = 2, 54 }; 55 56 enum batadv_boothtype { 57 BATADV_HTYPE_ETHERNET = 1, 58 }; 59 60 enum batadv_dhcpoptioncode { 61 BATADV_DHCP_OPT_PAD = 0, 62 BATADV_DHCP_OPT_MSG_TYPE = 53, 63 BATADV_DHCP_OPT_END = 255, 64 }; 65 66 enum batadv_dhcptype { 67 BATADV_DHCPACK = 5, 68 }; 69 70 /* { 99, 130, 83, 99 } */ 71 #define BATADV_DHCP_MAGIC 1669485411 72 73 struct batadv_dhcp_packet { 74 __u8 op; 75 __u8 htype; 76 __u8 hlen; 77 __u8 hops; 78 __be32 xid; 79 __be16 secs; 80 __be16 flags; 81 __be32 ciaddr; 82 __be32 yiaddr; 83 __be32 siaddr; 84 __be32 giaddr; 85 __u8 chaddr[16]; 86 __u8 sname[64]; 87 __u8 file[128]; 88 __be32 magic; 89 /* __u8 options[]; */ 90 }; 91 92 #define BATADV_DHCP_YIADDR_LEN sizeof(((struct batadv_dhcp_packet *)0)->yiaddr) 93 #define BATADV_DHCP_CHADDR_LEN sizeof(((struct batadv_dhcp_packet *)0)->chaddr) 94 95 static void batadv_dat_purge(struct work_struct *work); 96 97 /** 98 * batadv_dat_start_timer() - initialise the DAT periodic worker 99 * @bat_priv: the bat priv with all the mesh interface information 100 */ 101 static void batadv_dat_start_timer(struct batadv_priv *bat_priv) 102 { 103 queue_delayed_work(batadv_event_workqueue, &bat_priv->dat.work, 104 msecs_to_jiffies(10000)); 105 } 106 107 /** 108 * batadv_dat_entry_release() - release dat_entry from lists and queue for free 109 * after rcu grace period 110 * @ref: kref pointer of the dat_entry 111 */ 112 static void batadv_dat_entry_release(struct kref *ref) 113 { 114 struct batadv_dat_entry *dat_entry; 115 116 dat_entry = container_of(ref, struct batadv_dat_entry, refcount); 117 118 kfree_rcu(dat_entry, rcu); 119 } 120 121 /** 122 * batadv_dat_entry_put() - decrement the dat_entry refcounter and possibly 123 * release it 124 * @dat_entry: dat_entry to be free'd 125 */ 126 static void batadv_dat_entry_put(struct batadv_dat_entry *dat_entry) 127 { 128 if (!dat_entry) 129 return; 130 131 kref_put(&dat_entry->refcount, batadv_dat_entry_release); 132 } 133 134 /** 135 * batadv_dat_to_purge() - check whether a dat_entry has to be purged or not 136 * @dat_entry: the entry to check 137 * 138 * Return: true if the entry has to be purged now, false otherwise. 139 */ 140 static bool batadv_dat_to_purge(struct batadv_dat_entry *dat_entry) 141 { 142 return batadv_has_timed_out(dat_entry->last_update, 143 BATADV_DAT_ENTRY_TIMEOUT); 144 } 145 146 /** 147 * __batadv_dat_purge() - delete entries from the DAT local storage 148 * @bat_priv: the bat priv with all the mesh interface information 149 * @to_purge: function in charge to decide whether an entry has to be purged or 150 * not. This function takes the dat_entry as argument and has to 151 * returns a boolean value: true is the entry has to be deleted, 152 * false otherwise 153 * 154 * Loops over each entry in the DAT local storage and deletes it if and only if 155 * the to_purge function passed as argument returns true. 156 */ 157 static void __batadv_dat_purge(struct batadv_priv *bat_priv, 158 bool (*to_purge)(struct batadv_dat_entry *)) 159 { 160 spinlock_t *list_lock; /* protects write access to the hash lists */ 161 struct batadv_dat_entry *dat_entry; 162 struct hlist_node *node_tmp; 163 struct hlist_head *head; 164 u32 i; 165 166 if (!bat_priv->dat.hash) 167 return; 168 169 for (i = 0; i < bat_priv->dat.hash->size; i++) { 170 head = &bat_priv->dat.hash->table[i]; 171 list_lock = &bat_priv->dat.hash->list_locks[i]; 172 173 spin_lock_bh(list_lock); 174 hlist_for_each_entry_safe(dat_entry, node_tmp, head, 175 hash_entry) { 176 /* if a helper function has been passed as parameter, 177 * ask it if the entry has to be purged or not 178 */ 179 if (to_purge && !to_purge(dat_entry)) 180 continue; 181 182 hlist_del_rcu(&dat_entry->hash_entry); 183 batadv_dat_entry_put(dat_entry); 184 } 185 spin_unlock_bh(list_lock); 186 } 187 } 188 189 /** 190 * batadv_dat_purge() - periodic task that deletes old entries from the local 191 * DAT hash table 192 * @work: kernel work struct 193 */ 194 static void batadv_dat_purge(struct work_struct *work) 195 { 196 struct delayed_work *delayed_work; 197 struct batadv_priv_dat *priv_dat; 198 struct batadv_priv *bat_priv; 199 200 delayed_work = to_delayed_work(work); 201 priv_dat = container_of(delayed_work, struct batadv_priv_dat, work); 202 bat_priv = container_of(priv_dat, struct batadv_priv, dat); 203 204 __batadv_dat_purge(bat_priv, batadv_dat_to_purge); 205 batadv_dat_start_timer(bat_priv); 206 } 207 208 /** 209 * batadv_compare_dat() - comparing function used in the local DAT hash table 210 * @node: node in the local table 211 * @data2: second object to compare the node to 212 * 213 * Return: true if the two entries are the same, false otherwise. 214 */ 215 static bool batadv_compare_dat(const struct hlist_node *node, const void *data2) 216 { 217 const void *data1 = container_of(node, struct batadv_dat_entry, 218 hash_entry); 219 220 return memcmp(data1, data2, sizeof(__be32)) == 0; 221 } 222 223 /** 224 * batadv_arp_hw_src() - extract the hw_src field from an ARP packet 225 * @skb: ARP packet 226 * @hdr_size: size of the possible header before the ARP packet 227 * 228 * Return: the value of the hw_src field in the ARP packet. 229 */ 230 static u8 *batadv_arp_hw_src(struct sk_buff *skb, int hdr_size) 231 { 232 u8 *addr; 233 234 addr = (u8 *)(skb->data + hdr_size); 235 addr += ETH_HLEN + sizeof(struct arphdr); 236 237 return addr; 238 } 239 240 /** 241 * batadv_arp_ip_src() - extract the ip_src field from an ARP packet 242 * @skb: ARP packet 243 * @hdr_size: size of the possible header before the ARP packet 244 * 245 * Return: the value of the ip_src field in the ARP packet. 246 */ 247 static __be32 batadv_arp_ip_src(struct sk_buff *skb, int hdr_size) 248 { 249 return *(__force __be32 *)(batadv_arp_hw_src(skb, hdr_size) + ETH_ALEN); 250 } 251 252 /** 253 * batadv_arp_hw_dst() - extract the hw_dst field from an ARP packet 254 * @skb: ARP packet 255 * @hdr_size: size of the possible header before the ARP packet 256 * 257 * Return: the value of the hw_dst field in the ARP packet. 258 */ 259 static u8 *batadv_arp_hw_dst(struct sk_buff *skb, int hdr_size) 260 { 261 return batadv_arp_hw_src(skb, hdr_size) + ETH_ALEN + 4; 262 } 263 264 /** 265 * batadv_arp_ip_dst() - extract the ip_dst field from an ARP packet 266 * @skb: ARP packet 267 * @hdr_size: size of the possible header before the ARP packet 268 * 269 * Return: the value of the ip_dst field in the ARP packet. 270 */ 271 static __be32 batadv_arp_ip_dst(struct sk_buff *skb, int hdr_size) 272 { 273 u8 *dst = batadv_arp_hw_src(skb, hdr_size) + ETH_ALEN * 2 + 4; 274 275 return *(__force __be32 *)dst; 276 } 277 278 /** 279 * batadv_hash_dat() - compute the hash value for an IP address 280 * @data: data to hash 281 * @size: size of the hash table 282 * 283 * Return: the selected index in the hash table for the given data. 284 */ 285 static u32 batadv_hash_dat(const void *data, u32 size) 286 { 287 u32 hash = 0; 288 const struct batadv_dat_entry *dat = data; 289 const unsigned char *key; 290 __be16 vid; 291 u32 i; 292 293 key = (__force const unsigned char *)&dat->ip; 294 for (i = 0; i < sizeof(dat->ip); i++) { 295 hash += key[i]; 296 hash += (hash << 10); 297 hash ^= (hash >> 6); 298 } 299 300 vid = htons(dat->vid); 301 key = (__force const unsigned char *)&vid; 302 for (i = 0; i < sizeof(dat->vid); i++) { 303 hash += key[i]; 304 hash += (hash << 10); 305 hash ^= (hash >> 6); 306 } 307 308 hash += (hash << 3); 309 hash ^= (hash >> 11); 310 hash += (hash << 15); 311 312 return hash % size; 313 } 314 315 /** 316 * batadv_dat_entry_hash_find() - look for a given dat_entry in the local hash 317 * table 318 * @bat_priv: the bat priv with all the mesh interface information 319 * @ip: search key 320 * @vid: VLAN identifier 321 * 322 * Return: the dat_entry if found, NULL otherwise. 323 */ 324 static struct batadv_dat_entry * 325 batadv_dat_entry_hash_find(struct batadv_priv *bat_priv, __be32 ip, 326 unsigned short vid) 327 { 328 struct hlist_head *head; 329 struct batadv_dat_entry to_find, *dat_entry, *dat_entry_tmp = NULL; 330 struct batadv_hashtable *hash = bat_priv->dat.hash; 331 u32 index; 332 333 if (!hash) 334 return NULL; 335 336 to_find.ip = ip; 337 to_find.vid = vid; 338 339 index = batadv_hash_dat(&to_find, hash->size); 340 head = &hash->table[index]; 341 342 rcu_read_lock(); 343 hlist_for_each_entry_rcu(dat_entry, head, hash_entry) { 344 if (dat_entry->ip != ip) 345 continue; 346 347 if (!kref_get_unless_zero(&dat_entry->refcount)) 348 continue; 349 350 dat_entry_tmp = dat_entry; 351 break; 352 } 353 rcu_read_unlock(); 354 355 return dat_entry_tmp; 356 } 357 358 /** 359 * batadv_dat_entry_add() - add a new dat entry or update it if already exists 360 * @bat_priv: the bat priv with all the mesh interface information 361 * @ip: ipv4 to add/edit 362 * @mac_addr: mac address to assign to the given ipv4 363 * @vid: VLAN identifier 364 */ 365 static void batadv_dat_entry_add(struct batadv_priv *bat_priv, __be32 ip, 366 u8 *mac_addr, unsigned short vid) 367 { 368 struct batadv_dat_entry *dat_entry; 369 int hash_added; 370 371 dat_entry = batadv_dat_entry_hash_find(bat_priv, ip, vid); 372 /* if this entry is already known, just update it */ 373 if (dat_entry) { 374 if (!batadv_compare_eth(dat_entry->mac_addr, mac_addr)) 375 ether_addr_copy(dat_entry->mac_addr, mac_addr); 376 dat_entry->last_update = jiffies; 377 batadv_dbg(BATADV_DBG_DAT, bat_priv, 378 "Entry updated: %pI4 %pM (vid: %d)\n", 379 &dat_entry->ip, dat_entry->mac_addr, 380 batadv_print_vid(vid)); 381 goto out; 382 } 383 384 dat_entry = kmalloc_obj(*dat_entry, GFP_ATOMIC); 385 if (!dat_entry) 386 goto out; 387 388 dat_entry->ip = ip; 389 dat_entry->vid = vid; 390 ether_addr_copy(dat_entry->mac_addr, mac_addr); 391 dat_entry->last_update = jiffies; 392 kref_init(&dat_entry->refcount); 393 394 kref_get(&dat_entry->refcount); 395 hash_added = batadv_hash_add(bat_priv->dat.hash, batadv_compare_dat, 396 batadv_hash_dat, dat_entry, 397 &dat_entry->hash_entry); 398 399 if (unlikely(hash_added != 0)) { 400 /* remove the reference for the hash */ 401 batadv_dat_entry_put(dat_entry); 402 goto out; 403 } 404 405 batadv_dbg(BATADV_DBG_DAT, bat_priv, "New entry added: %pI4 %pM (vid: %d)\n", 406 &dat_entry->ip, dat_entry->mac_addr, batadv_print_vid(vid)); 407 408 out: 409 batadv_dat_entry_put(dat_entry); 410 } 411 412 #ifdef CONFIG_BATMAN_ADV_DEBUG 413 414 /** 415 * batadv_dbg_arp() - print a debug message containing all the ARP packet 416 * details 417 * @bat_priv: the bat priv with all the mesh interface information 418 * @skb: ARP packet 419 * @hdr_size: size of the possible header before the ARP packet 420 * @msg: message to print together with the debugging information 421 */ 422 static void batadv_dbg_arp(struct batadv_priv *bat_priv, struct sk_buff *skb, 423 int hdr_size, char *msg) 424 { 425 struct batadv_unicast_4addr_packet *unicast_4addr_packet; 426 struct batadv_bcast_packet *bcast_pkt; 427 u8 *orig_addr; 428 __be32 ip_src, ip_dst; 429 430 if (msg) 431 batadv_dbg(BATADV_DBG_DAT, bat_priv, "%s\n", msg); 432 433 ip_src = batadv_arp_ip_src(skb, hdr_size); 434 ip_dst = batadv_arp_ip_dst(skb, hdr_size); 435 batadv_dbg(BATADV_DBG_DAT, bat_priv, 436 "ARP MSG = [src: %pM-%pI4 dst: %pM-%pI4]\n", 437 batadv_arp_hw_src(skb, hdr_size), &ip_src, 438 batadv_arp_hw_dst(skb, hdr_size), &ip_dst); 439 440 if (hdr_size < sizeof(struct batadv_unicast_packet)) 441 return; 442 443 unicast_4addr_packet = (struct batadv_unicast_4addr_packet *)skb->data; 444 445 switch (unicast_4addr_packet->u.packet_type) { 446 case BATADV_UNICAST: 447 batadv_dbg(BATADV_DBG_DAT, bat_priv, 448 "* encapsulated within a UNICAST packet\n"); 449 break; 450 case BATADV_UNICAST_4ADDR: 451 batadv_dbg(BATADV_DBG_DAT, bat_priv, 452 "* encapsulated within a UNICAST_4ADDR packet (src: %pM)\n", 453 unicast_4addr_packet->src); 454 switch (unicast_4addr_packet->subtype) { 455 case BATADV_P_DAT_DHT_PUT: 456 batadv_dbg(BATADV_DBG_DAT, bat_priv, "* type: DAT_DHT_PUT\n"); 457 break; 458 case BATADV_P_DAT_DHT_GET: 459 batadv_dbg(BATADV_DBG_DAT, bat_priv, "* type: DAT_DHT_GET\n"); 460 break; 461 case BATADV_P_DAT_CACHE_REPLY: 462 batadv_dbg(BATADV_DBG_DAT, bat_priv, 463 "* type: DAT_CACHE_REPLY\n"); 464 break; 465 case BATADV_P_DATA: 466 batadv_dbg(BATADV_DBG_DAT, bat_priv, "* type: DATA\n"); 467 break; 468 default: 469 batadv_dbg(BATADV_DBG_DAT, bat_priv, "* type: Unknown (%u)!\n", 470 unicast_4addr_packet->u.packet_type); 471 } 472 break; 473 case BATADV_BCAST: 474 bcast_pkt = (struct batadv_bcast_packet *)unicast_4addr_packet; 475 orig_addr = bcast_pkt->orig; 476 batadv_dbg(BATADV_DBG_DAT, bat_priv, 477 "* encapsulated within a BCAST packet (src: %pM)\n", 478 orig_addr); 479 break; 480 default: 481 batadv_dbg(BATADV_DBG_DAT, bat_priv, 482 "* encapsulated within an unknown packet type (0x%x)\n", 483 unicast_4addr_packet->u.packet_type); 484 } 485 } 486 487 #else 488 489 static void batadv_dbg_arp(struct batadv_priv *bat_priv, struct sk_buff *skb, 490 int hdr_size, char *msg) 491 { 492 } 493 494 #endif /* CONFIG_BATMAN_ADV_DEBUG */ 495 496 /** 497 * batadv_is_orig_node_eligible() - check whether a node can be a DHT candidate 498 * @res: the array with the already selected candidates 499 * @select: number of already selected candidates 500 * @tmp_max: address of the currently evaluated node 501 * @max: current round max address 502 * @last_max: address of the last selected candidate 503 * @candidate: orig_node under evaluation 504 * @max_orig_node: last selected candidate 505 * 506 * Return: true if the node has been elected as next candidate or false 507 * otherwise. 508 */ 509 static bool batadv_is_orig_node_eligible(struct batadv_dat_candidate *res, 510 int select, batadv_dat_addr_t tmp_max, 511 batadv_dat_addr_t max, 512 batadv_dat_addr_t last_max, 513 struct batadv_orig_node *candidate, 514 struct batadv_orig_node *max_orig_node) 515 { 516 bool ret = false; 517 int j; 518 519 /* check if orig node candidate is running DAT */ 520 if (!test_bit(BATADV_ORIG_CAPA_HAS_DAT, &candidate->capabilities)) 521 goto out; 522 523 /* Check if this node has already been selected... */ 524 for (j = 0; j < select; j++) 525 if (res[j].orig_node == candidate) 526 break; 527 /* ..and possibly skip it */ 528 if (j < select) 529 goto out; 530 /* sanity check: has it already been selected? This should not happen */ 531 if (tmp_max > last_max) 532 goto out; 533 /* check if during this iteration an originator with a closer dht 534 * address has already been found 535 */ 536 if (tmp_max < max) 537 goto out; 538 /* this is an hash collision with the temporary selected node. Choose 539 * the one with the lowest address 540 */ 541 if (tmp_max == max && max_orig_node && 542 batadv_compare_eth(candidate->orig, max_orig_node->orig)) 543 goto out; 544 545 ret = true; 546 out: 547 return ret; 548 } 549 550 /** 551 * batadv_choose_next_candidate() - select the next DHT candidate 552 * @bat_priv: the bat priv with all the mesh interface information 553 * @cands: candidates array 554 * @select: number of candidates already present in the array 555 * @ip_key: key to look up in the DHT 556 * @last_max: pointer where the address of the selected candidate will be saved 557 */ 558 static void batadv_choose_next_candidate(struct batadv_priv *bat_priv, 559 struct batadv_dat_candidate *cands, 560 int select, batadv_dat_addr_t ip_key, 561 batadv_dat_addr_t *last_max) 562 { 563 batadv_dat_addr_t max = 0; 564 batadv_dat_addr_t tmp_max = 0; 565 struct batadv_orig_node *orig_node, *max_orig_node = NULL; 566 struct batadv_hashtable *hash = bat_priv->orig_hash; 567 struct hlist_head *head; 568 int i; 569 570 /* if no node is eligible as candidate, leave the candidate type as 571 * NOT_FOUND 572 */ 573 cands[select].type = BATADV_DAT_CANDIDATE_NOT_FOUND; 574 575 /* iterate over the originator list and find the node with the closest 576 * dat_address which has not been selected yet 577 */ 578 for (i = 0; i < hash->size; i++) { 579 head = &hash->table[i]; 580 581 rcu_read_lock(); 582 hlist_for_each_entry_rcu(orig_node, head, hash_entry) { 583 /* the dht space is a ring using unsigned addresses */ 584 tmp_max = BATADV_DAT_ADDR_MAX - orig_node->dat_addr + 585 ip_key; 586 587 if (!batadv_is_orig_node_eligible(cands, select, 588 tmp_max, max, 589 *last_max, orig_node, 590 max_orig_node)) 591 continue; 592 593 if (!kref_get_unless_zero(&orig_node->refcount)) 594 continue; 595 596 max = tmp_max; 597 batadv_orig_node_put(max_orig_node); 598 max_orig_node = orig_node; 599 } 600 rcu_read_unlock(); 601 } 602 if (max_orig_node) { 603 cands[select].type = BATADV_DAT_CANDIDATE_ORIG; 604 cands[select].orig_node = max_orig_node; 605 batadv_dbg(BATADV_DBG_DAT, bat_priv, 606 "dat_select_candidates() %d: selected %pM addr=%u dist=%u\n", 607 select, max_orig_node->orig, max_orig_node->dat_addr, 608 max); 609 } 610 *last_max = max; 611 } 612 613 /** 614 * batadv_dat_select_candidates() - select the nodes which the DHT message has 615 * to be sent to 616 * @bat_priv: the bat priv with all the mesh interface information 617 * @ip_dst: ipv4 to look up in the DHT 618 * @vid: VLAN identifier 619 * 620 * An originator O is selected if and only if its DHT_ID value is one of three 621 * closest values (from the LEFT, with wrap around if needed) then the hash 622 * value of the key. ip_dst is the key. 623 * 624 * Return: the candidate array of size BATADV_DAT_CANDIDATE_NUM. 625 */ 626 static struct batadv_dat_candidate * 627 batadv_dat_select_candidates(struct batadv_priv *bat_priv, __be32 ip_dst, 628 unsigned short vid) 629 { 630 int select; 631 batadv_dat_addr_t last_max = BATADV_DAT_ADDR_MAX, ip_key; 632 struct batadv_dat_candidate *res; 633 struct batadv_dat_entry dat; 634 635 if (!bat_priv->orig_hash) 636 return NULL; 637 638 res = kmalloc_objs(*res, BATADV_DAT_CANDIDATES_NUM, GFP_ATOMIC); 639 if (!res) 640 return NULL; 641 642 dat.ip = ip_dst; 643 dat.vid = vid; 644 ip_key = (batadv_dat_addr_t)batadv_hash_dat(&dat, 645 BATADV_DAT_ADDR_MAX); 646 647 batadv_dbg(BATADV_DBG_DAT, bat_priv, 648 "%s(): IP=%pI4 hash(IP)=%u\n", __func__, &ip_dst, 649 ip_key); 650 651 for (select = 0; select < BATADV_DAT_CANDIDATES_NUM; select++) 652 batadv_choose_next_candidate(bat_priv, res, select, ip_key, 653 &last_max); 654 655 return res; 656 } 657 658 /** 659 * batadv_dat_forward_data() - copy and send payload to the selected candidates 660 * @bat_priv: the bat priv with all the mesh interface information 661 * @skb: payload to send 662 * @ip: the DHT key 663 * @vid: VLAN identifier 664 * @packet_subtype: unicast4addr packet subtype to use 665 * 666 * This function copies the skb with pskb_copy() and is sent as a unicast packet 667 * to each of the selected candidates. 668 * 669 * Return: true if the packet is sent to at least one candidate, false 670 * otherwise. 671 */ 672 static bool batadv_dat_forward_data(struct batadv_priv *bat_priv, 673 struct sk_buff *skb, __be32 ip, 674 unsigned short vid, int packet_subtype) 675 { 676 int i; 677 bool ret = false; 678 int send_status; 679 struct batadv_neigh_node *neigh_node = NULL; 680 struct sk_buff *tmp_skb; 681 struct batadv_dat_candidate *cand; 682 683 cand = batadv_dat_select_candidates(bat_priv, ip, vid); 684 if (!cand) 685 return ret; 686 687 batadv_dbg(BATADV_DBG_DAT, bat_priv, "DHT_SEND for %pI4\n", &ip); 688 689 for (i = 0; i < BATADV_DAT_CANDIDATES_NUM; i++) { 690 if (cand[i].type == BATADV_DAT_CANDIDATE_NOT_FOUND) 691 continue; 692 693 neigh_node = batadv_orig_router_get(cand[i].orig_node, 694 BATADV_IF_DEFAULT); 695 if (!neigh_node) 696 goto free_orig; 697 698 tmp_skb = pskb_copy_for_clone(skb, GFP_ATOMIC); 699 if (!batadv_send_skb_prepare_unicast_4addr(bat_priv, tmp_skb, 700 cand[i].orig_node, 701 packet_subtype)) { 702 kfree_skb(tmp_skb); 703 goto free_neigh; 704 } 705 706 send_status = batadv_send_unicast_skb(tmp_skb, neigh_node); 707 if (send_status == NET_XMIT_SUCCESS) { 708 /* count the sent packet */ 709 switch (packet_subtype) { 710 case BATADV_P_DAT_DHT_GET: 711 batadv_inc_counter(bat_priv, 712 BATADV_CNT_DAT_GET_TX); 713 break; 714 case BATADV_P_DAT_DHT_PUT: 715 batadv_inc_counter(bat_priv, 716 BATADV_CNT_DAT_PUT_TX); 717 break; 718 } 719 720 /* packet sent to a candidate: return true */ 721 ret = true; 722 } 723 free_neigh: 724 batadv_neigh_node_put(neigh_node); 725 free_orig: 726 batadv_orig_node_put(cand[i].orig_node); 727 } 728 729 kfree(cand); 730 return ret; 731 } 732 733 /** 734 * batadv_dat_tvlv_container_update() - update the dat tvlv container after dat 735 * setting change 736 * @bat_priv: the bat priv with all the mesh interface information 737 */ 738 static void batadv_dat_tvlv_container_update(struct batadv_priv *bat_priv) 739 { 740 char dat_mode; 741 742 dat_mode = atomic_read(&bat_priv->distributed_arp_table); 743 744 switch (dat_mode) { 745 case 0: 746 batadv_tvlv_container_unregister(bat_priv, BATADV_TVLV_DAT, 1); 747 break; 748 case 1: 749 batadv_tvlv_container_register(bat_priv, BATADV_TVLV_DAT, 1, 750 NULL, 0); 751 break; 752 } 753 } 754 755 /** 756 * batadv_dat_status_update() - update the dat tvlv container after dat 757 * setting change 758 * @net_dev: the mesh interface net device 759 */ 760 void batadv_dat_status_update(struct net_device *net_dev) 761 { 762 struct batadv_priv *bat_priv = netdev_priv(net_dev); 763 764 batadv_dat_tvlv_container_update(bat_priv); 765 } 766 767 /** 768 * batadv_dat_tvlv_ogm_handler_v1() - process incoming dat tvlv container 769 * @bat_priv: the bat priv with all the mesh interface information 770 * @orig: the orig_node of the ogm 771 * @flags: flags indicating the tvlv state (see batadv_tvlv_handler_flags) 772 * @tvlv_value: tvlv buffer containing the gateway data 773 * @tvlv_value_len: tvlv buffer length 774 */ 775 static void batadv_dat_tvlv_ogm_handler_v1(struct batadv_priv *bat_priv, 776 struct batadv_orig_node *orig, 777 u8 flags, 778 void *tvlv_value, u16 tvlv_value_len) 779 { 780 if (flags & BATADV_TVLV_HANDLER_OGM_CIFNOTFND) 781 clear_bit(BATADV_ORIG_CAPA_HAS_DAT, &orig->capabilities); 782 else 783 set_bit(BATADV_ORIG_CAPA_HAS_DAT, &orig->capabilities); 784 } 785 786 /** 787 * batadv_dat_hash_free() - free the local DAT hash table 788 * @bat_priv: the bat priv with all the mesh interface information 789 */ 790 static void batadv_dat_hash_free(struct batadv_priv *bat_priv) 791 { 792 if (!bat_priv->dat.hash) 793 return; 794 795 __batadv_dat_purge(bat_priv, NULL); 796 797 batadv_hash_destroy(bat_priv->dat.hash); 798 799 bat_priv->dat.hash = NULL; 800 } 801 802 /** 803 * batadv_dat_init() - initialise the DAT internals 804 * @bat_priv: the bat priv with all the mesh interface information 805 * 806 * Return: 0 in case of success, a negative error code otherwise 807 */ 808 int batadv_dat_init(struct batadv_priv *bat_priv) 809 { 810 if (bat_priv->dat.hash) 811 return 0; 812 813 bat_priv->dat.hash = batadv_hash_new(1024); 814 815 if (!bat_priv->dat.hash) 816 return -ENOMEM; 817 818 INIT_DELAYED_WORK(&bat_priv->dat.work, batadv_dat_purge); 819 batadv_dat_start_timer(bat_priv); 820 821 batadv_tvlv_handler_register(bat_priv, batadv_dat_tvlv_ogm_handler_v1, 822 NULL, NULL, BATADV_TVLV_DAT, 1, 823 BATADV_TVLV_HANDLER_OGM_CIFNOTFND); 824 batadv_dat_tvlv_container_update(bat_priv); 825 return 0; 826 } 827 828 /** 829 * batadv_dat_free() - free the DAT internals 830 * @bat_priv: the bat priv with all the mesh interface information 831 */ 832 void batadv_dat_free(struct batadv_priv *bat_priv) 833 { 834 batadv_tvlv_container_unregister(bat_priv, BATADV_TVLV_DAT, 1); 835 batadv_tvlv_handler_unregister(bat_priv, BATADV_TVLV_DAT, 1); 836 837 cancel_delayed_work_sync(&bat_priv->dat.work); 838 839 batadv_dat_hash_free(bat_priv); 840 } 841 842 /** 843 * batadv_dat_cache_dump_entry() - dump one entry of the DAT cache table to a 844 * netlink socket 845 * @msg: buffer for the message 846 * @portid: netlink port 847 * @cb: Control block containing additional options 848 * @dat_entry: entry to dump 849 * 850 * Return: 0 or error code. 851 */ 852 static int 853 batadv_dat_cache_dump_entry(struct sk_buff *msg, u32 portid, 854 struct netlink_callback *cb, 855 struct batadv_dat_entry *dat_entry) 856 { 857 int msecs; 858 void *hdr; 859 860 hdr = genlmsg_put(msg, portid, cb->nlh->nlmsg_seq, 861 &batadv_netlink_family, NLM_F_MULTI, 862 BATADV_CMD_GET_DAT_CACHE); 863 if (!hdr) 864 return -ENOBUFS; 865 866 genl_dump_check_consistent(cb, hdr); 867 868 msecs = jiffies_to_msecs(jiffies - dat_entry->last_update); 869 870 if (nla_put_in_addr(msg, BATADV_ATTR_DAT_CACHE_IP4ADDRESS, 871 dat_entry->ip) || 872 nla_put(msg, BATADV_ATTR_DAT_CACHE_HWADDRESS, ETH_ALEN, 873 dat_entry->mac_addr) || 874 nla_put_u16(msg, BATADV_ATTR_DAT_CACHE_VID, dat_entry->vid) || 875 nla_put_u32(msg, BATADV_ATTR_LAST_SEEN_MSECS, msecs)) { 876 genlmsg_cancel(msg, hdr); 877 return -EMSGSIZE; 878 } 879 880 genlmsg_end(msg, hdr); 881 return 0; 882 } 883 884 /** 885 * batadv_dat_cache_dump_bucket() - dump one bucket of the DAT cache table to 886 * a netlink socket 887 * @msg: buffer for the message 888 * @portid: netlink port 889 * @cb: Control block containing additional options 890 * @hash: hash to dump 891 * @bucket: bucket index to dump 892 * @idx_skip: How many entries to skip 893 * 894 * Return: 0 or error code. 895 */ 896 static int 897 batadv_dat_cache_dump_bucket(struct sk_buff *msg, u32 portid, 898 struct netlink_callback *cb, 899 struct batadv_hashtable *hash, unsigned int bucket, 900 int *idx_skip) 901 { 902 struct batadv_dat_entry *dat_entry; 903 int idx = 0; 904 905 spin_lock_bh(&hash->list_locks[bucket]); 906 cb->seq = atomic_read(&hash->generation) << 1 | 1; 907 908 hlist_for_each_entry(dat_entry, &hash->table[bucket], hash_entry) { 909 if (idx < *idx_skip) 910 goto skip; 911 912 if (batadv_dat_cache_dump_entry(msg, portid, cb, dat_entry)) { 913 spin_unlock_bh(&hash->list_locks[bucket]); 914 *idx_skip = idx; 915 916 return -EMSGSIZE; 917 } 918 919 skip: 920 idx++; 921 } 922 spin_unlock_bh(&hash->list_locks[bucket]); 923 924 return 0; 925 } 926 927 /** 928 * batadv_dat_cache_dump() - dump DAT cache table to a netlink socket 929 * @msg: buffer for the message 930 * @cb: callback structure containing arguments 931 * 932 * Return: message length. 933 */ 934 int batadv_dat_cache_dump(struct sk_buff *msg, struct netlink_callback *cb) 935 { 936 struct batadv_hard_iface *primary_if = NULL; 937 int portid = NETLINK_CB(cb->skb).portid; 938 struct net_device *mesh_iface; 939 struct batadv_hashtable *hash; 940 struct batadv_priv *bat_priv; 941 int bucket = cb->args[0]; 942 int idx = cb->args[1]; 943 int ret = 0; 944 945 mesh_iface = batadv_netlink_get_meshif(cb); 946 if (IS_ERR(mesh_iface)) 947 return PTR_ERR(mesh_iface); 948 949 bat_priv = netdev_priv(mesh_iface); 950 hash = bat_priv->dat.hash; 951 952 primary_if = batadv_primary_if_get_selected(bat_priv); 953 if (!primary_if || primary_if->if_status != BATADV_IF_ACTIVE) { 954 ret = -ENOENT; 955 goto out; 956 } 957 958 while (bucket < hash->size) { 959 if (batadv_dat_cache_dump_bucket(msg, portid, cb, hash, bucket, 960 &idx)) 961 break; 962 963 bucket++; 964 idx = 0; 965 } 966 967 cb->args[0] = bucket; 968 cb->args[1] = idx; 969 970 ret = msg->len; 971 972 out: 973 batadv_hardif_put(primary_if); 974 975 dev_put(mesh_iface); 976 977 return ret; 978 } 979 980 /** 981 * batadv_arp_get_type() - parse an ARP packet and gets the type 982 * @bat_priv: the bat priv with all the mesh interface information 983 * @skb: packet to analyse 984 * @hdr_size: size of the possible header before the ARP packet in the skb 985 * 986 * Return: the ARP type if the skb contains a valid ARP packet, 0 otherwise. 987 */ 988 static u16 batadv_arp_get_type(struct batadv_priv *bat_priv, 989 struct sk_buff *skb, int hdr_size) 990 { 991 struct arphdr *arphdr; 992 struct ethhdr *ethhdr; 993 __be32 ip_src, ip_dst; 994 u8 *hw_src, *hw_dst; 995 u16 type = 0; 996 997 /* pull the ethernet header */ 998 if (unlikely(!pskb_may_pull(skb, hdr_size + ETH_HLEN))) 999 goto out; 1000 1001 ethhdr = (struct ethhdr *)(skb->data + hdr_size); 1002 1003 if (ethhdr->h_proto != htons(ETH_P_ARP)) 1004 goto out; 1005 1006 /* pull the ARP payload */ 1007 if (unlikely(!pskb_may_pull(skb, hdr_size + ETH_HLEN + 1008 arp_hdr_len(skb->dev)))) 1009 goto out; 1010 1011 arphdr = (struct arphdr *)(skb->data + hdr_size + ETH_HLEN); 1012 1013 /* check whether the ARP packet carries a valid IP information */ 1014 if (arphdr->ar_hrd != htons(ARPHRD_ETHER)) 1015 goto out; 1016 1017 if (arphdr->ar_pro != htons(ETH_P_IP)) 1018 goto out; 1019 1020 if (arphdr->ar_hln != ETH_ALEN) 1021 goto out; 1022 1023 if (arphdr->ar_pln != 4) 1024 goto out; 1025 1026 /* Check for bad reply/request. If the ARP message is not sane, DAT 1027 * will simply ignore it 1028 */ 1029 ip_src = batadv_arp_ip_src(skb, hdr_size); 1030 ip_dst = batadv_arp_ip_dst(skb, hdr_size); 1031 if (ipv4_is_loopback(ip_src) || ipv4_is_multicast(ip_src) || 1032 ipv4_is_loopback(ip_dst) || ipv4_is_multicast(ip_dst) || 1033 ipv4_is_zeronet(ip_src) || ipv4_is_lbcast(ip_src) || 1034 ipv4_is_zeronet(ip_dst) || ipv4_is_lbcast(ip_dst)) 1035 goto out; 1036 1037 hw_src = batadv_arp_hw_src(skb, hdr_size); 1038 if (is_zero_ether_addr(hw_src) || is_multicast_ether_addr(hw_src)) 1039 goto out; 1040 1041 /* don't care about the destination MAC address in ARP requests */ 1042 if (arphdr->ar_op != htons(ARPOP_REQUEST)) { 1043 hw_dst = batadv_arp_hw_dst(skb, hdr_size); 1044 if (is_zero_ether_addr(hw_dst) || 1045 is_multicast_ether_addr(hw_dst)) 1046 goto out; 1047 } 1048 1049 type = ntohs(arphdr->ar_op); 1050 out: 1051 return type; 1052 } 1053 1054 /** 1055 * batadv_dat_get_vid() - extract the VLAN identifier from skb if any 1056 * @skb: the buffer containing the packet to extract the VID from 1057 * @hdr_size: the size of the batman-adv header encapsulating the packet 1058 * 1059 * Return: If the packet embedded in the skb is vlan tagged this function 1060 * returns the VID with the BATADV_VLAN_HAS_TAG flag. Otherwise BATADV_NO_FLAGS 1061 * is returned. 1062 */ 1063 static unsigned short batadv_dat_get_vid(struct sk_buff *skb, int *hdr_size) 1064 { 1065 unsigned short vid; 1066 1067 vid = batadv_get_vid(skb, *hdr_size); 1068 1069 /* ARP parsing functions jump forward of hdr_size + ETH_HLEN. 1070 * If the header contained in the packet is a VLAN one (which is longer) 1071 * hdr_size is updated so that the functions will still skip the 1072 * correct amount of bytes. 1073 */ 1074 if (vid & BATADV_VLAN_HAS_TAG) 1075 *hdr_size += VLAN_HLEN; 1076 1077 return vid; 1078 } 1079 1080 /** 1081 * batadv_dat_arp_create_reply() - create an ARP Reply 1082 * @bat_priv: the bat priv with all the mesh interface information 1083 * @ip_src: ARP sender IP 1084 * @ip_dst: ARP target IP 1085 * @hw_src: Ethernet source and ARP sender MAC 1086 * @hw_dst: Ethernet destination and ARP target MAC 1087 * @vid: VLAN identifier (optional, set to zero otherwise) 1088 * 1089 * Creates an ARP Reply from the given values, optionally encapsulated in a 1090 * VLAN header. 1091 * 1092 * Return: An skb containing an ARP Reply. 1093 */ 1094 static struct sk_buff * 1095 batadv_dat_arp_create_reply(struct batadv_priv *bat_priv, __be32 ip_src, 1096 __be32 ip_dst, u8 *hw_src, u8 *hw_dst, 1097 unsigned short vid) 1098 { 1099 struct sk_buff *skb; 1100 1101 skb = arp_create(ARPOP_REPLY, ETH_P_ARP, ip_dst, bat_priv->mesh_iface, 1102 ip_src, hw_dst, hw_src, hw_dst); 1103 if (!skb) 1104 return NULL; 1105 1106 skb_reset_mac_header(skb); 1107 1108 if (vid & BATADV_VLAN_HAS_TAG) 1109 skb = vlan_insert_tag(skb, htons(ETH_P_8021Q), 1110 vid & VLAN_VID_MASK); 1111 1112 return skb; 1113 } 1114 1115 /** 1116 * batadv_dat_snoop_outgoing_arp_request() - snoop the ARP request and try to 1117 * answer using DAT 1118 * @bat_priv: the bat priv with all the mesh interface information 1119 * @skb: packet to check 1120 * 1121 * Return: true if the message has been sent to the dht candidates, false 1122 * otherwise. In case of a positive return value the message has to be enqueued 1123 * to permit the fallback. 1124 */ 1125 bool batadv_dat_snoop_outgoing_arp_request(struct batadv_priv *bat_priv, 1126 struct sk_buff *skb) 1127 { 1128 u16 type = 0; 1129 __be32 ip_dst, ip_src; 1130 u8 *hw_src; 1131 bool ret = false; 1132 struct batadv_dat_entry *dat_entry = NULL; 1133 struct sk_buff *skb_new; 1134 struct net_device *mesh_iface = bat_priv->mesh_iface; 1135 int hdr_size = 0; 1136 unsigned short vid; 1137 1138 if (!atomic_read(&bat_priv->distributed_arp_table)) 1139 goto out; 1140 1141 vid = batadv_dat_get_vid(skb, &hdr_size); 1142 1143 type = batadv_arp_get_type(bat_priv, skb, hdr_size); 1144 /* If the node gets an ARP_REQUEST it has to send a DHT_GET unicast 1145 * message to the selected DHT candidates 1146 */ 1147 if (type != ARPOP_REQUEST) 1148 goto out; 1149 1150 batadv_dbg_arp(bat_priv, skb, hdr_size, "Parsing outgoing ARP REQUEST"); 1151 1152 ip_src = batadv_arp_ip_src(skb, hdr_size); 1153 hw_src = batadv_arp_hw_src(skb, hdr_size); 1154 ip_dst = batadv_arp_ip_dst(skb, hdr_size); 1155 1156 batadv_dat_entry_add(bat_priv, ip_src, hw_src, vid); 1157 1158 dat_entry = batadv_dat_entry_hash_find(bat_priv, ip_dst, vid); 1159 if (dat_entry) { 1160 /* If the ARP request is destined for a local client the local 1161 * client will answer itself. DAT would only generate a 1162 * duplicate packet. 1163 * 1164 * Moreover, if the mesh-interface is enslaved into a bridge, an 1165 * additional DAT answer may trigger kernel warnings about 1166 * a packet coming from the wrong port. 1167 */ 1168 if (batadv_is_my_client(bat_priv, dat_entry->mac_addr, vid)) { 1169 ret = true; 1170 goto out; 1171 } 1172 1173 /* If BLA is enabled, only send ARP replies if we have claimed 1174 * the destination for the ARP request or if no one else of 1175 * the backbone gws belonging to our backbone has claimed the 1176 * destination. 1177 */ 1178 if (!batadv_bla_check_claim(bat_priv, 1179 dat_entry->mac_addr, vid)) { 1180 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1181 "Device %pM claimed by another backbone gw. Don't send ARP reply!", 1182 dat_entry->mac_addr); 1183 ret = true; 1184 goto out; 1185 } 1186 1187 skb_new = batadv_dat_arp_create_reply(bat_priv, ip_dst, ip_src, 1188 dat_entry->mac_addr, 1189 hw_src, vid); 1190 if (!skb_new) 1191 goto out; 1192 1193 skb_new->protocol = eth_type_trans(skb_new, mesh_iface); 1194 1195 batadv_inc_counter(bat_priv, BATADV_CNT_RX); 1196 batadv_add_counter(bat_priv, BATADV_CNT_RX_BYTES, 1197 skb->len + ETH_HLEN + hdr_size); 1198 1199 netif_rx(skb_new); 1200 batadv_dbg(BATADV_DBG_DAT, bat_priv, "ARP request replied locally\n"); 1201 ret = true; 1202 } else { 1203 /* Send the request to the DHT */ 1204 ret = batadv_dat_forward_data(bat_priv, skb, ip_dst, vid, 1205 BATADV_P_DAT_DHT_GET); 1206 } 1207 out: 1208 batadv_dat_entry_put(dat_entry); 1209 return ret; 1210 } 1211 1212 /** 1213 * batadv_dat_snoop_incoming_arp_request() - snoop the ARP request and try to 1214 * answer using the local DAT storage 1215 * @bat_priv: the bat priv with all the mesh interface information 1216 * @skb: packet to check 1217 * @hdr_size: size of the encapsulation header 1218 * 1219 * Return: true if the request has been answered, false otherwise. 1220 */ 1221 bool batadv_dat_snoop_incoming_arp_request(struct batadv_priv *bat_priv, 1222 struct sk_buff *skb, int hdr_size) 1223 { 1224 u16 type; 1225 __be32 ip_src, ip_dst; 1226 u8 *hw_src; 1227 struct sk_buff *skb_new; 1228 struct batadv_dat_entry *dat_entry = NULL; 1229 bool ret = false; 1230 unsigned short vid; 1231 int err; 1232 1233 if (!atomic_read(&bat_priv->distributed_arp_table)) 1234 goto out; 1235 1236 vid = batadv_dat_get_vid(skb, &hdr_size); 1237 1238 type = batadv_arp_get_type(bat_priv, skb, hdr_size); 1239 if (type != ARPOP_REQUEST) 1240 goto out; 1241 1242 hw_src = batadv_arp_hw_src(skb, hdr_size); 1243 ip_src = batadv_arp_ip_src(skb, hdr_size); 1244 ip_dst = batadv_arp_ip_dst(skb, hdr_size); 1245 1246 batadv_dbg_arp(bat_priv, skb, hdr_size, "Parsing incoming ARP REQUEST"); 1247 1248 batadv_dat_entry_add(bat_priv, ip_src, hw_src, vid); 1249 1250 dat_entry = batadv_dat_entry_hash_find(bat_priv, ip_dst, vid); 1251 if (!dat_entry) 1252 goto out; 1253 1254 skb_new = batadv_dat_arp_create_reply(bat_priv, ip_dst, ip_src, 1255 dat_entry->mac_addr, hw_src, vid); 1256 if (!skb_new) 1257 goto out; 1258 1259 /* To preserve backwards compatibility, the node has choose the outgoing 1260 * format based on the incoming request packet type. The assumption is 1261 * that a node not using the 4addr packet format doesn't support it. 1262 */ 1263 if (hdr_size == sizeof(struct batadv_unicast_4addr_packet)) 1264 err = batadv_send_skb_via_tt_4addr(bat_priv, skb_new, 1265 BATADV_P_DAT_CACHE_REPLY, 1266 NULL, vid); 1267 else 1268 err = batadv_send_skb_via_tt(bat_priv, skb_new, NULL, vid); 1269 1270 if (err != NET_XMIT_DROP) { 1271 batadv_inc_counter(bat_priv, BATADV_CNT_DAT_CACHED_REPLY_TX); 1272 ret = true; 1273 } 1274 out: 1275 batadv_dat_entry_put(dat_entry); 1276 if (ret) 1277 kfree_skb(skb); 1278 return ret; 1279 } 1280 1281 /** 1282 * batadv_dat_snoop_outgoing_arp_reply() - snoop the ARP reply and fill the DHT 1283 * @bat_priv: the bat priv with all the mesh interface information 1284 * @skb: packet to check 1285 */ 1286 void batadv_dat_snoop_outgoing_arp_reply(struct batadv_priv *bat_priv, 1287 struct sk_buff *skb) 1288 { 1289 u16 type; 1290 __be32 ip_src, ip_dst; 1291 u8 *hw_src, *hw_dst; 1292 int hdr_size = 0; 1293 unsigned short vid; 1294 1295 if (!atomic_read(&bat_priv->distributed_arp_table)) 1296 return; 1297 1298 vid = batadv_dat_get_vid(skb, &hdr_size); 1299 1300 type = batadv_arp_get_type(bat_priv, skb, hdr_size); 1301 if (type != ARPOP_REPLY) 1302 return; 1303 1304 batadv_dbg_arp(bat_priv, skb, hdr_size, "Parsing outgoing ARP REPLY"); 1305 1306 hw_src = batadv_arp_hw_src(skb, hdr_size); 1307 ip_src = batadv_arp_ip_src(skb, hdr_size); 1308 hw_dst = batadv_arp_hw_dst(skb, hdr_size); 1309 ip_dst = batadv_arp_ip_dst(skb, hdr_size); 1310 1311 batadv_dat_entry_add(bat_priv, ip_src, hw_src, vid); 1312 batadv_dat_entry_add(bat_priv, ip_dst, hw_dst, vid); 1313 1314 /* Send the ARP reply to the candidates for both the IP addresses that 1315 * the node obtained from the ARP reply 1316 */ 1317 batadv_dat_forward_data(bat_priv, skb, ip_src, vid, 1318 BATADV_P_DAT_DHT_PUT); 1319 batadv_dat_forward_data(bat_priv, skb, ip_dst, vid, 1320 BATADV_P_DAT_DHT_PUT); 1321 } 1322 1323 /** 1324 * batadv_dat_snoop_incoming_arp_reply() - snoop the ARP reply and fill the 1325 * local DAT storage only 1326 * @bat_priv: the bat priv with all the mesh interface information 1327 * @skb: packet to check 1328 * @hdr_size: size of the encapsulation header 1329 * 1330 * Return: true if the packet was snooped and consumed by DAT. False if the 1331 * packet has to be delivered to the interface 1332 */ 1333 bool batadv_dat_snoop_incoming_arp_reply(struct batadv_priv *bat_priv, 1334 struct sk_buff *skb, int hdr_size) 1335 { 1336 struct batadv_dat_entry *dat_entry = NULL; 1337 u16 type; 1338 __be32 ip_src, ip_dst; 1339 u8 *hw_src, *hw_dst; 1340 bool dropped = false; 1341 unsigned short vid; 1342 1343 if (!atomic_read(&bat_priv->distributed_arp_table)) 1344 goto out; 1345 1346 vid = batadv_dat_get_vid(skb, &hdr_size); 1347 1348 type = batadv_arp_get_type(bat_priv, skb, hdr_size); 1349 if (type != ARPOP_REPLY) 1350 goto out; 1351 1352 batadv_dbg_arp(bat_priv, skb, hdr_size, "Parsing incoming ARP REPLY"); 1353 1354 hw_src = batadv_arp_hw_src(skb, hdr_size); 1355 ip_src = batadv_arp_ip_src(skb, hdr_size); 1356 hw_dst = batadv_arp_hw_dst(skb, hdr_size); 1357 ip_dst = batadv_arp_ip_dst(skb, hdr_size); 1358 1359 /* If ip_dst is already in cache and has the right mac address, 1360 * drop this frame if this ARP reply is destined for us because it's 1361 * most probably an ARP reply generated by another node of the DHT. 1362 * We have most probably received already a reply earlier. Delivering 1363 * this frame would lead to doubled receive of an ARP reply. 1364 */ 1365 dat_entry = batadv_dat_entry_hash_find(bat_priv, ip_src, vid); 1366 if (dat_entry && batadv_compare_eth(hw_src, dat_entry->mac_addr)) { 1367 batadv_dbg(BATADV_DBG_DAT, bat_priv, "Doubled ARP reply removed: ARP MSG = [src: %pM-%pI4 dst: %pM-%pI4]; dat_entry: %pM-%pI4\n", 1368 hw_src, &ip_src, hw_dst, &ip_dst, 1369 dat_entry->mac_addr, &dat_entry->ip); 1370 dropped = true; 1371 } 1372 1373 /* Update our internal cache with both the IP addresses the node got 1374 * within the ARP reply 1375 */ 1376 batadv_dat_entry_add(bat_priv, ip_src, hw_src, vid); 1377 batadv_dat_entry_add(bat_priv, ip_dst, hw_dst, vid); 1378 1379 if (dropped) 1380 goto out; 1381 1382 /* If BLA is enabled, only forward ARP replies if we have claimed the 1383 * source of the ARP reply or if no one else of the same backbone has 1384 * already claimed that client. This prevents that different gateways 1385 * to the same backbone all forward the ARP reply leading to multiple 1386 * replies in the backbone. 1387 */ 1388 if (!batadv_bla_check_claim(bat_priv, hw_src, vid)) { 1389 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1390 "Device %pM claimed by another backbone gw. Drop ARP reply.\n", 1391 hw_src); 1392 dropped = true; 1393 goto out; 1394 } 1395 1396 /* if this REPLY is directed to a client of mine, let's deliver the 1397 * packet to the interface 1398 */ 1399 dropped = !batadv_is_my_client(bat_priv, hw_dst, vid); 1400 1401 /* if this REPLY is sent on behalf of a client of mine, let's drop the 1402 * packet because the client will reply by itself 1403 */ 1404 dropped |= batadv_is_my_client(bat_priv, hw_src, vid); 1405 out: 1406 if (dropped) 1407 kfree_skb(skb); 1408 batadv_dat_entry_put(dat_entry); 1409 /* if dropped == false -> deliver to the interface */ 1410 return dropped; 1411 } 1412 1413 /** 1414 * batadv_dat_check_dhcp_ipudp() - check skb for IP+UDP headers valid for DHCP 1415 * @skb: the packet to check 1416 * @ip_src: a buffer to store the IPv4 source address in 1417 * 1418 * Checks whether the given skb has an IP and UDP header valid for a DHCP 1419 * message from a DHCP server. And if so, stores the IPv4 source address in 1420 * the provided buffer. 1421 * 1422 * Return: True if valid, false otherwise. 1423 */ 1424 static bool 1425 batadv_dat_check_dhcp_ipudp(struct sk_buff *skb, __be32 *ip_src) 1426 { 1427 unsigned int offset = skb_network_offset(skb); 1428 struct udphdr *udphdr, _udphdr; 1429 struct iphdr *iphdr, _iphdr; 1430 1431 iphdr = skb_header_pointer(skb, offset, sizeof(_iphdr), &_iphdr); 1432 if (!iphdr || iphdr->version != 4 || iphdr->ihl * 4 < sizeof(_iphdr)) 1433 return false; 1434 1435 if (iphdr->protocol != IPPROTO_UDP) 1436 return false; 1437 1438 offset += iphdr->ihl * 4; 1439 skb_set_transport_header(skb, offset); 1440 1441 udphdr = skb_header_pointer(skb, offset, sizeof(_udphdr), &_udphdr); 1442 if (!udphdr || udphdr->source != htons(67)) 1443 return false; 1444 1445 *ip_src = get_unaligned(&iphdr->saddr); 1446 1447 return true; 1448 } 1449 1450 /** 1451 * batadv_dat_check_dhcp() - examine packet for valid DHCP message 1452 * @skb: the packet to check 1453 * @proto: ethernet protocol hint (behind a potential vlan) 1454 * @ip_src: a buffer to store the IPv4 source address in 1455 * 1456 * Checks whether the given skb is a valid DHCP packet. And if so, stores the 1457 * IPv4 source address in the provided buffer. 1458 * 1459 * Caller needs to ensure that the skb network header is set correctly. 1460 * 1461 * Return: If skb is a valid DHCP packet, then returns its op code 1462 * (e.g. BOOTREPLY vs. BOOTREQUEST). Otherwise returns -EINVAL. 1463 */ 1464 static int 1465 batadv_dat_check_dhcp(struct sk_buff *skb, __be16 proto, __be32 *ip_src) 1466 { 1467 __be32 *magic, _magic; 1468 unsigned int offset; 1469 struct { 1470 __u8 op; 1471 __u8 htype; 1472 __u8 hlen; 1473 __u8 hops; 1474 } *dhcp_h, _dhcp_h; 1475 1476 if (proto != htons(ETH_P_IP)) 1477 return -EINVAL; 1478 1479 if (!batadv_dat_check_dhcp_ipudp(skb, ip_src)) 1480 return -EINVAL; 1481 1482 offset = skb_transport_offset(skb) + sizeof(struct udphdr); 1483 if (skb->len < offset + sizeof(struct batadv_dhcp_packet)) 1484 return -EINVAL; 1485 1486 dhcp_h = skb_header_pointer(skb, offset, sizeof(_dhcp_h), &_dhcp_h); 1487 if (!dhcp_h || dhcp_h->htype != BATADV_HTYPE_ETHERNET || 1488 dhcp_h->hlen != ETH_ALEN) 1489 return -EINVAL; 1490 1491 offset += offsetof(struct batadv_dhcp_packet, magic); 1492 1493 magic = skb_header_pointer(skb, offset, sizeof(_magic), &_magic); 1494 if (!magic || get_unaligned(magic) != htonl(BATADV_DHCP_MAGIC)) 1495 return -EINVAL; 1496 1497 return dhcp_h->op; 1498 } 1499 1500 /** 1501 * batadv_dat_get_dhcp_message_type() - get message type of a DHCP packet 1502 * @skb: the DHCP packet to parse 1503 * 1504 * Iterates over the DHCP options of the given DHCP packet to find a 1505 * DHCP Message Type option and parse it. 1506 * 1507 * Caller needs to ensure that the given skb is a valid DHCP packet and 1508 * that the skb transport header is set correctly. 1509 * 1510 * Return: The found DHCP message type value, if found. -EINVAL otherwise. 1511 */ 1512 static int batadv_dat_get_dhcp_message_type(struct sk_buff *skb) 1513 { 1514 unsigned int offset = skb_transport_offset(skb) + sizeof(struct udphdr); 1515 u8 *type, _type; 1516 struct { 1517 u8 type; 1518 u8 len; 1519 } *tl, _tl; 1520 1521 offset += sizeof(struct batadv_dhcp_packet); 1522 1523 while ((tl = skb_header_pointer(skb, offset, sizeof(_tl), &_tl))) { 1524 if (tl->type == BATADV_DHCP_OPT_MSG_TYPE) 1525 break; 1526 1527 if (tl->type == BATADV_DHCP_OPT_END) 1528 break; 1529 1530 if (tl->type == BATADV_DHCP_OPT_PAD) 1531 offset++; 1532 else 1533 offset += tl->len + sizeof(_tl); 1534 } 1535 1536 /* Option Overload Code not supported */ 1537 if (!tl || tl->type != BATADV_DHCP_OPT_MSG_TYPE || 1538 tl->len != sizeof(_type)) 1539 return -EINVAL; 1540 1541 offset += sizeof(_tl); 1542 1543 type = skb_header_pointer(skb, offset, sizeof(_type), &_type); 1544 if (!type) 1545 return -EINVAL; 1546 1547 return *type; 1548 } 1549 1550 /** 1551 * batadv_dat_dhcp_get_yiaddr() - get yiaddr from a DHCP packet 1552 * @skb: the DHCP packet to parse 1553 * @buf: a buffer to store the yiaddr in 1554 * 1555 * Caller needs to ensure that the given skb is a valid DHCP packet and 1556 * that the skb transport header is set correctly. 1557 * 1558 * Return: True on success, false otherwise. 1559 */ 1560 static bool batadv_dat_dhcp_get_yiaddr(struct sk_buff *skb, __be32 *buf) 1561 { 1562 unsigned int offset = skb_transport_offset(skb) + sizeof(struct udphdr); 1563 __be32 *yiaddr; 1564 1565 offset += offsetof(struct batadv_dhcp_packet, yiaddr); 1566 yiaddr = skb_header_pointer(skb, offset, BATADV_DHCP_YIADDR_LEN, buf); 1567 1568 if (!yiaddr) 1569 return false; 1570 1571 if (yiaddr != buf) 1572 *buf = get_unaligned(yiaddr); 1573 1574 return true; 1575 } 1576 1577 /** 1578 * batadv_dat_get_dhcp_chaddr() - get chaddr from a DHCP packet 1579 * @skb: the DHCP packet to parse 1580 * @buf: a buffer to store the chaddr in 1581 * 1582 * Caller needs to ensure that the given skb is a valid DHCP packet and 1583 * that the skb transport header is set correctly. 1584 * 1585 * Return: True on success, false otherwise 1586 */ 1587 static bool batadv_dat_get_dhcp_chaddr(struct sk_buff *skb, u8 *buf) 1588 { 1589 unsigned int offset = skb_transport_offset(skb) + sizeof(struct udphdr); 1590 u8 *chaddr; 1591 1592 offset += offsetof(struct batadv_dhcp_packet, chaddr); 1593 chaddr = skb_header_pointer(skb, offset, BATADV_DHCP_CHADDR_LEN, buf); 1594 1595 if (!chaddr) 1596 return false; 1597 1598 if (chaddr != buf) 1599 memcpy(buf, chaddr, BATADV_DHCP_CHADDR_LEN); 1600 1601 return true; 1602 } 1603 1604 /** 1605 * batadv_dat_put_dhcp() - puts addresses from a DHCP packet into the DHT and 1606 * DAT cache 1607 * @bat_priv: the bat priv with all the mesh interface information 1608 * @chaddr: the DHCP client MAC address 1609 * @yiaddr: the DHCP client IP address 1610 * @hw_dst: the DHCP server MAC address 1611 * @ip_dst: the DHCP server IP address 1612 * @vid: VLAN identifier 1613 * 1614 * Adds given MAC/IP pairs to the local DAT cache and propagates them further 1615 * into the DHT. 1616 * 1617 * For the DHT propagation, client MAC + IP will appear as the ARP Reply 1618 * transmitter (and hw_dst/ip_dst as the target). 1619 */ 1620 static void batadv_dat_put_dhcp(struct batadv_priv *bat_priv, u8 *chaddr, 1621 __be32 yiaddr, u8 *hw_dst, __be32 ip_dst, 1622 unsigned short vid) 1623 { 1624 struct sk_buff *skb; 1625 1626 skb = batadv_dat_arp_create_reply(bat_priv, yiaddr, ip_dst, chaddr, 1627 hw_dst, vid); 1628 if (!skb) 1629 return; 1630 1631 skb_set_network_header(skb, ETH_HLEN); 1632 1633 batadv_dat_entry_add(bat_priv, yiaddr, chaddr, vid); 1634 batadv_dat_entry_add(bat_priv, ip_dst, hw_dst, vid); 1635 1636 batadv_dat_forward_data(bat_priv, skb, yiaddr, vid, 1637 BATADV_P_DAT_DHT_PUT); 1638 batadv_dat_forward_data(bat_priv, skb, ip_dst, vid, 1639 BATADV_P_DAT_DHT_PUT); 1640 1641 consume_skb(skb); 1642 1643 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1644 "Snooped from outgoing DHCPACK (server address): %pI4, %pM (vid: %i)\n", 1645 &ip_dst, hw_dst, batadv_print_vid(vid)); 1646 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1647 "Snooped from outgoing DHCPACK (client address): %pI4, %pM (vid: %i)\n", 1648 &yiaddr, chaddr, batadv_print_vid(vid)); 1649 } 1650 1651 /** 1652 * batadv_dat_check_dhcp_ack() - examine packet for valid DHCP message 1653 * @skb: the packet to check 1654 * @proto: ethernet protocol hint (behind a potential vlan) 1655 * @ip_src: a buffer to store the IPv4 source address in 1656 * @chaddr: a buffer to store the DHCP Client Hardware Address in 1657 * @yiaddr: a buffer to store the DHCP Your IP Address in 1658 * 1659 * Checks whether the given skb is a valid DHCPACK. And if so, stores the 1660 * IPv4 server source address (ip_src), client MAC address (chaddr) and client 1661 * IPv4 address (yiaddr) in the provided buffers. 1662 * 1663 * Caller needs to ensure that the skb network header is set correctly. 1664 * 1665 * Return: True if the skb is a valid DHCPACK. False otherwise. 1666 */ 1667 static bool 1668 batadv_dat_check_dhcp_ack(struct sk_buff *skb, __be16 proto, __be32 *ip_src, 1669 u8 *chaddr, __be32 *yiaddr) 1670 { 1671 int type; 1672 1673 type = batadv_dat_check_dhcp(skb, proto, ip_src); 1674 if (type != BATADV_BOOTREPLY) 1675 return false; 1676 1677 type = batadv_dat_get_dhcp_message_type(skb); 1678 if (type != BATADV_DHCPACK) 1679 return false; 1680 1681 if (!batadv_dat_dhcp_get_yiaddr(skb, yiaddr)) 1682 return false; 1683 1684 if (!batadv_dat_get_dhcp_chaddr(skb, chaddr)) 1685 return false; 1686 1687 return true; 1688 } 1689 1690 /** 1691 * batadv_dat_snoop_outgoing_dhcp_ack() - snoop DHCPACK and fill DAT with it 1692 * @bat_priv: the bat priv with all the mesh interface information 1693 * @skb: the packet to snoop 1694 * @proto: ethernet protocol hint (behind a potential vlan) 1695 * @vid: VLAN identifier 1696 * 1697 * This function first checks whether the given skb is a valid DHCPACK. If 1698 * so then its source MAC and IP as well as its DHCP Client Hardware Address 1699 * field and DHCP Your IP Address field are added to the local DAT cache and 1700 * propagated into the DHT. 1701 * 1702 * Caller needs to ensure that the skb mac and network headers are set 1703 * correctly. 1704 */ 1705 void batadv_dat_snoop_outgoing_dhcp_ack(struct batadv_priv *bat_priv, 1706 struct sk_buff *skb, 1707 __be16 proto, 1708 unsigned short vid) 1709 { 1710 u8 chaddr[BATADV_DHCP_CHADDR_LEN]; 1711 __be32 ip_src, yiaddr; 1712 1713 if (!atomic_read(&bat_priv->distributed_arp_table)) 1714 return; 1715 1716 if (!batadv_dat_check_dhcp_ack(skb, proto, &ip_src, chaddr, &yiaddr)) 1717 return; 1718 1719 batadv_dat_put_dhcp(bat_priv, chaddr, yiaddr, eth_hdr(skb)->h_source, 1720 ip_src, vid); 1721 } 1722 1723 /** 1724 * batadv_dat_snoop_incoming_dhcp_ack() - snoop DHCPACK and fill DAT cache 1725 * @bat_priv: the bat priv with all the mesh interface information 1726 * @skb: the packet to snoop 1727 * @hdr_size: header size, up to the tail of the batman-adv header 1728 * 1729 * This function first checks whether the given skb is a valid DHCPACK. If 1730 * so then its source MAC and IP as well as its DHCP Client Hardware Address 1731 * field and DHCP Your IP Address field are added to the local DAT cache. 1732 */ 1733 void batadv_dat_snoop_incoming_dhcp_ack(struct batadv_priv *bat_priv, 1734 struct sk_buff *skb, int hdr_size) 1735 { 1736 u8 chaddr[BATADV_DHCP_CHADDR_LEN]; 1737 struct ethhdr *ethhdr; 1738 __be32 ip_src, yiaddr; 1739 unsigned short vid; 1740 __be16 proto; 1741 u8 *hw_src; 1742 1743 if (!atomic_read(&bat_priv->distributed_arp_table)) 1744 return; 1745 1746 if (unlikely(!pskb_may_pull(skb, hdr_size + ETH_HLEN))) 1747 return; 1748 1749 ethhdr = (struct ethhdr *)(skb->data + hdr_size); 1750 skb_set_network_header(skb, hdr_size + ETH_HLEN); 1751 proto = ethhdr->h_proto; 1752 1753 if (!batadv_dat_check_dhcp_ack(skb, proto, &ip_src, chaddr, &yiaddr)) 1754 return; 1755 1756 hw_src = ethhdr->h_source; 1757 vid = batadv_dat_get_vid(skb, &hdr_size); 1758 1759 batadv_dat_entry_add(bat_priv, yiaddr, chaddr, vid); 1760 batadv_dat_entry_add(bat_priv, ip_src, hw_src, vid); 1761 1762 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1763 "Snooped from incoming DHCPACK (server address): %pI4, %pM (vid: %i)\n", 1764 &ip_src, hw_src, batadv_print_vid(vid)); 1765 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1766 "Snooped from incoming DHCPACK (client address): %pI4, %pM (vid: %i)\n", 1767 &yiaddr, chaddr, batadv_print_vid(vid)); 1768 } 1769 1770 /** 1771 * batadv_dat_drop_broadcast_packet() - check if an ARP request has to be 1772 * dropped (because the node has already obtained the reply via DAT) or not 1773 * @bat_priv: the bat priv with all the mesh interface information 1774 * @forw_packet: the broadcast packet 1775 * 1776 * Return: true if the node can drop the packet, false otherwise. 1777 */ 1778 bool batadv_dat_drop_broadcast_packet(struct batadv_priv *bat_priv, 1779 struct batadv_forw_packet *forw_packet) 1780 { 1781 u16 type; 1782 __be32 ip_dst; 1783 struct batadv_dat_entry *dat_entry = NULL; 1784 bool ret = false; 1785 int hdr_size = sizeof(struct batadv_bcast_packet); 1786 unsigned short vid; 1787 1788 if (!atomic_read(&bat_priv->distributed_arp_table)) 1789 goto out; 1790 1791 /* If this packet is an ARP_REQUEST and the node already has the 1792 * information that it is going to ask, then the packet can be dropped 1793 */ 1794 if (batadv_forw_packet_is_rebroadcast(forw_packet)) 1795 goto out; 1796 1797 vid = batadv_dat_get_vid(forw_packet->skb, &hdr_size); 1798 1799 type = batadv_arp_get_type(bat_priv, forw_packet->skb, hdr_size); 1800 if (type != ARPOP_REQUEST) 1801 goto out; 1802 1803 ip_dst = batadv_arp_ip_dst(forw_packet->skb, hdr_size); 1804 dat_entry = batadv_dat_entry_hash_find(bat_priv, ip_dst, vid); 1805 /* check if the node already got this entry */ 1806 if (!dat_entry) { 1807 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1808 "ARP Request for %pI4: fallback\n", &ip_dst); 1809 goto out; 1810 } 1811 1812 batadv_dbg(BATADV_DBG_DAT, bat_priv, 1813 "ARP Request for %pI4: fallback prevented\n", &ip_dst); 1814 ret = true; 1815 1816 out: 1817 batadv_dat_entry_put(dat_entry); 1818 return ret; 1819 } 1820