1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright 2011-2014 Autronica Fire and Security AS 3 * 4 * Author(s): 5 * 2011-2014 Arvid Brodin, arvid.brodin@alten.se 6 * 7 * The HSR spec says never to forward the same frame twice on the same 8 * interface. A frame is identified by its source MAC address and its HSR 9 * sequence number. This code keeps track of senders and their sequence numbers 10 * to allow filtering of duplicate frames, and to detect HSR ring errors. 11 * Same code handles filtering of duplicates for PRP as well. 12 */ 13 14 #include <kunit/visibility.h> 15 #include <linux/if_ether.h> 16 #include <linux/etherdevice.h> 17 #include <linux/slab.h> 18 #include <linux/rculist.h> 19 #include "hsr_main.h" 20 #include "hsr_framereg.h" 21 #include "hsr_netlink.h" 22 23 bool hsr_addr_is_redbox(struct hsr_priv *hsr, unsigned char *addr) 24 { 25 if (!hsr->redbox || !is_valid_ether_addr(hsr->macaddress_redbox)) 26 return false; 27 28 return ether_addr_equal(addr, hsr->macaddress_redbox); 29 } 30 31 bool hsr_addr_is_self(struct hsr_priv *hsr, unsigned char *addr) 32 { 33 struct hsr_self_node *sn; 34 bool ret = false; 35 36 rcu_read_lock(); 37 sn = rcu_dereference(hsr->self_node); 38 if (!sn) 39 goto out; 40 41 if (ether_addr_equal(addr, sn->macaddress_A) || 42 ether_addr_equal(addr, sn->macaddress_B)) 43 ret = true; 44 out: 45 rcu_read_unlock(); 46 return ret; 47 } 48 49 /* Search for mac entry. Caller must hold rcu read lock. 50 */ 51 static struct hsr_node *find_node_by_addr_A(struct list_head *node_db, 52 const unsigned char addr[ETH_ALEN]) 53 { 54 struct hsr_node *node; 55 56 list_for_each_entry_rcu(node, node_db, mac_list) { 57 if (ether_addr_equal(node->macaddress_A, addr)) 58 return node; 59 } 60 61 return NULL; 62 } 63 64 /* Check if node for a given MAC address is already present in data base 65 */ 66 bool hsr_is_node_in_db(struct list_head *node_db, 67 const unsigned char addr[ETH_ALEN]) 68 { 69 return !!find_node_by_addr_A(node_db, addr); 70 } 71 72 /* Helper for device init; the self_node is used in hsr_handle_frame() to 73 * recognize frames from self that's been looped over the HSR ring. 74 */ 75 int hsr_create_self_node(struct hsr_priv *hsr, 76 const unsigned char addr_a[ETH_ALEN], 77 const unsigned char addr_b[ETH_ALEN]) 78 { 79 struct hsr_self_node *sn, *old; 80 81 sn = kmalloc_obj(*sn); 82 if (!sn) 83 return -ENOMEM; 84 85 ether_addr_copy(sn->macaddress_A, addr_a); 86 ether_addr_copy(sn->macaddress_B, addr_b); 87 88 spin_lock_bh(&hsr->list_lock); 89 old = rcu_replace_pointer(hsr->self_node, sn, 90 lockdep_is_held(&hsr->list_lock)); 91 spin_unlock_bh(&hsr->list_lock); 92 93 if (old) 94 kfree_rcu(old, rcu_head); 95 return 0; 96 } 97 98 void hsr_del_self_node(struct hsr_priv *hsr) 99 { 100 struct hsr_self_node *old; 101 102 spin_lock_bh(&hsr->list_lock); 103 old = rcu_replace_pointer(hsr->self_node, NULL, 104 lockdep_is_held(&hsr->list_lock)); 105 spin_unlock_bh(&hsr->list_lock); 106 if (old) 107 kfree_rcu(old, rcu_head); 108 } 109 110 static void hsr_free_node(struct hsr_node *node) 111 { 112 xa_destroy(&node->seq_blocks); 113 kfree(node->block_buf); 114 kfree(node); 115 } 116 117 static void hsr_free_node_rcu(struct rcu_head *rn) 118 { 119 struct hsr_node *node = container_of(rn, struct hsr_node, rcu_head); 120 121 hsr_free_node(node); 122 } 123 124 static void hsr_lock_seq_out_pair(struct hsr_node *node_a, 125 struct hsr_node *node_b) 126 { 127 if (node_a == node_b) { 128 spin_lock_bh(&node_a->seq_out_lock); 129 return; 130 } 131 132 if (node_a < node_b) { 133 spin_lock_bh(&node_a->seq_out_lock); 134 spin_lock_nested(&node_b->seq_out_lock, SINGLE_DEPTH_NESTING); 135 } else { 136 spin_lock_bh(&node_b->seq_out_lock); 137 spin_lock_nested(&node_a->seq_out_lock, SINGLE_DEPTH_NESTING); 138 } 139 } 140 141 static void hsr_unlock_seq_out_pair(struct hsr_node *node_a, 142 struct hsr_node *node_b) 143 { 144 if (node_a == node_b) { 145 spin_unlock_bh(&node_a->seq_out_lock); 146 return; 147 } 148 149 if (node_a < node_b) { 150 spin_unlock(&node_b->seq_out_lock); 151 spin_unlock_bh(&node_a->seq_out_lock); 152 } else { 153 spin_unlock(&node_a->seq_out_lock); 154 spin_unlock_bh(&node_b->seq_out_lock); 155 } 156 } 157 158 void hsr_del_nodes(struct list_head *node_db) 159 { 160 struct hsr_node *node; 161 struct hsr_node *tmp; 162 163 list_for_each_entry_safe(node, tmp, node_db, mac_list) { 164 list_del_rcu(&node->mac_list); 165 call_rcu(&node->rcu_head, hsr_free_node_rcu); 166 } 167 } 168 169 void prp_handle_san_frame(bool san, enum hsr_port_type port, 170 struct hsr_node *node) 171 { 172 /* Mark if the SAN node is over LAN_A or LAN_B */ 173 if (port == HSR_PT_SLAVE_A) { 174 node->san_a = true; 175 return; 176 } 177 178 if (port == HSR_PT_SLAVE_B) 179 node->san_b = true; 180 } 181 182 /* Allocate an hsr_node and add it to node_db. 'addr' is the node's address_A. 183 */ 184 static struct hsr_node *hsr_add_node(struct hsr_priv *hsr, 185 struct list_head *node_db, 186 unsigned char addr[], bool san, 187 enum hsr_port_type rx_port) 188 { 189 struct hsr_node *new_node, *node = NULL; 190 unsigned long now; 191 size_t block_sz; 192 int i; 193 194 new_node = kzalloc_obj(*new_node, GFP_ATOMIC); 195 if (!new_node) 196 return NULL; 197 198 ether_addr_copy(new_node->macaddress_A, addr); 199 spin_lock_init(&new_node->seq_out_lock); 200 201 if (hsr->prot_version == PRP_V1) 202 new_node->seq_port_cnt = hsr->redbox ? 2 : 1; 203 else 204 new_node->seq_port_cnt = HSR_PT_PORTS - 1; 205 206 block_sz = hsr_seq_block_size(new_node); 207 new_node->block_buf = kcalloc(HSR_MAX_SEQ_BLOCKS, block_sz, GFP_ATOMIC); 208 if (!new_node->block_buf) 209 goto free; 210 211 xa_init(&new_node->seq_blocks); 212 213 /* We are only interested in time diffs here, so use current jiffies 214 * as initialization. (0 could trigger an spurious ring error warning). 215 */ 216 now = jiffies; 217 for (i = 0; i < HSR_PT_PORTS; i++) { 218 new_node->time_in[i] = now; 219 } 220 221 if (san && hsr->proto_ops->handle_san_frame) 222 hsr->proto_ops->handle_san_frame(san, rx_port, new_node); 223 224 spin_lock_bh(&hsr->list_lock); 225 list_for_each_entry_rcu(node, node_db, mac_list, 226 lockdep_is_held(&hsr->list_lock)) { 227 if (ether_addr_equal(node->macaddress_A, addr)) 228 goto out; 229 if (ether_addr_equal(node->macaddress_B, addr)) 230 goto out; 231 } 232 list_add_tail_rcu(&new_node->mac_list, node_db); 233 spin_unlock_bh(&hsr->list_lock); 234 return new_node; 235 out: 236 spin_unlock_bh(&hsr->list_lock); 237 kfree(new_node->block_buf); 238 free: 239 kfree(new_node); 240 return node; 241 } 242 243 void prp_update_san_info(struct hsr_node *node, bool is_sup) 244 { 245 if (!is_sup) 246 return; 247 248 node->san_a = false; 249 node->san_b = false; 250 } 251 252 /* Get the hsr_node from which 'skb' was sent. 253 */ 254 struct hsr_node *hsr_get_node(struct hsr_port *port, struct list_head *node_db, 255 struct sk_buff *skb, bool is_sup, 256 enum hsr_port_type rx_port) 257 { 258 struct hsr_priv *hsr = port->hsr; 259 struct hsr_node *node; 260 struct ethhdr *ethhdr; 261 struct prp_rct *rct; 262 bool san = false; 263 264 if (!skb_mac_header_was_set(skb)) 265 return NULL; 266 267 ethhdr = (struct ethhdr *)skb_mac_header(skb); 268 269 list_for_each_entry_rcu(node, node_db, mac_list) { 270 if (ether_addr_equal(node->macaddress_A, ethhdr->h_source)) { 271 if (hsr->proto_ops->update_san_info) 272 hsr->proto_ops->update_san_info(node, is_sup); 273 return node; 274 } 275 if (ether_addr_equal(node->macaddress_B, ethhdr->h_source)) { 276 if (hsr->proto_ops->update_san_info) 277 hsr->proto_ops->update_san_info(node, is_sup); 278 return node; 279 } 280 } 281 282 /* Check if required node is not in proxy nodes table */ 283 list_for_each_entry_rcu(node, &hsr->proxy_node_db, mac_list) { 284 if (ether_addr_equal(node->macaddress_A, ethhdr->h_source)) { 285 if (hsr->proto_ops->update_san_info) 286 hsr->proto_ops->update_san_info(node, is_sup); 287 return node; 288 } 289 } 290 291 /* Everyone may create a node entry, connected node to a HSR/PRP 292 * device. 293 */ 294 if (ethhdr->h_proto == htons(ETH_P_PRP) || 295 ethhdr->h_proto == htons(ETH_P_HSR)) { 296 bool prp_sup; 297 298 /* A PRP supervision frame is an untagged ETH_P_PRP frame 299 * (mac_len == ETH_HLEN); its RCT is appended only on egress. 300 * HSR (ETH_P_HSR) supervision is front-tagged and still must 301 * contain a struct hsr_ethhdr. 302 */ 303 prp_sup = hsr->prot_version == PRP_V1 && 304 ethhdr->h_proto == htons(ETH_P_PRP) && is_sup; 305 306 if (!prp_sup && skb->mac_len < sizeof(struct hsr_ethhdr)) 307 return NULL; 308 } else { 309 rct = skb_get_PRP_rct(skb); 310 if (!rct && rx_port != HSR_PT_MASTER) 311 san = true; 312 } 313 314 return hsr_add_node(hsr, node_db, ethhdr->h_source, san, rx_port); 315 } 316 317 static bool hsr_seq_block_is_old(struct hsr_seq_block *block) 318 { 319 unsigned long expiry = msecs_to_jiffies(HSR_ENTRY_FORGET_TIME); 320 321 return time_is_before_jiffies(block->time + expiry); 322 } 323 324 static void hsr_forget_seq_block(struct hsr_node *node, 325 struct hsr_seq_block *block) 326 { 327 if (block->time) 328 xa_erase(&node->seq_blocks, block->block_idx); 329 block->time = 0; 330 } 331 332 /* Get the currently active sequence number block. If there is no block yet, or 333 * the existing one is expired, a new block is created. The idea is to maintain 334 * a "sparse bitmap" where a bitmap for the whole sequence number space is 335 * split into blocks and not all blocks exist all the time. The blocks can 336 * expire after time (in low traffic situations) or when they are replaced in 337 * the backing fixed size buffer (in high traffic situations). 338 */ 339 VISIBLE_IF_KUNIT struct hsr_seq_block *hsr_get_seq_block(struct hsr_node *node, 340 u16 block_idx) 341 { 342 struct hsr_seq_block *block, *res; 343 size_t block_sz; 344 345 block = xa_load(&node->seq_blocks, block_idx); 346 347 if (block && hsr_seq_block_is_old(block)) { 348 hsr_forget_seq_block(node, block); 349 block = NULL; 350 } 351 352 if (!block) { 353 block_sz = hsr_seq_block_size(node); 354 block = node->block_buf + node->next_block * block_sz; 355 hsr_forget_seq_block(node, block); 356 357 memset(block, 0, block_sz); 358 block->time = jiffies; 359 block->block_idx = block_idx; 360 361 res = xa_store(&node->seq_blocks, block_idx, block, GFP_ATOMIC); 362 if (xa_is_err(res)) { 363 block->time = 0; 364 return NULL; 365 } 366 367 node->next_block = 368 (node->next_block + 1) & (HSR_MAX_SEQ_BLOCKS - 1); 369 } 370 371 return block; 372 } 373 EXPORT_SYMBOL_IF_KUNIT(hsr_get_seq_block); 374 375 /* Use the Supervision frame's info about an eventual macaddress_B for merging 376 * nodes that has previously had their macaddress_B registered as a separate 377 * node. 378 */ 379 void hsr_handle_sup_frame(struct hsr_frame_info *frame) 380 { 381 struct hsr_node *node_curr = frame->node_src; 382 struct hsr_port *port_rcv = frame->port_rcv; 383 struct hsr_seq_block *src_blk, *merge_blk; 384 struct hsr_priv *hsr = port_rcv->hsr; 385 struct hsr_sup_tlv *hsr_sup_tlv; 386 struct hsr_sup_payload *hsr_sp; 387 struct hsr_node *node_real; 388 struct sk_buff *skb = NULL; 389 struct list_head *node_db; 390 struct ethhdr *ethhdr; 391 unsigned int total_pull_size = 0; 392 unsigned int pull_size = 0; 393 unsigned int seq_port_cnt; 394 unsigned long idx; 395 int i; 396 397 /* Here either frame->skb_hsr or frame->skb_prp should be 398 * valid as supervision frame always will have protocol 399 * header info. 400 */ 401 if (frame->skb_hsr) 402 skb = frame->skb_hsr; 403 else if (frame->skb_prp) 404 skb = frame->skb_prp; 405 else if (frame->skb_std) 406 skb = frame->skb_std; 407 if (!skb) 408 return; 409 410 /* Leave the ethernet header. */ 411 pull_size = sizeof(struct ethhdr); 412 skb_pull(skb, pull_size); 413 total_pull_size += pull_size; 414 415 ethhdr = (struct ethhdr *)skb_mac_header(skb); 416 417 /* And leave the HSR tag. */ 418 if (ethhdr->h_proto == htons(ETH_P_HSR)) { 419 pull_size = sizeof(struct hsr_tag); 420 skb_pull(skb, pull_size); 421 total_pull_size += pull_size; 422 } 423 424 /* And leave the HSR sup tag. */ 425 pull_size = sizeof(struct hsr_sup_tag); 426 skb_pull(skb, pull_size); 427 total_pull_size += pull_size; 428 429 /* get HSR sup payload */ 430 hsr_sp = (struct hsr_sup_payload *)skb->data; 431 432 /* Merge node_curr (registered on macaddress_B) into node_real */ 433 node_db = &port_rcv->hsr->node_db; 434 node_real = find_node_by_addr_A(node_db, hsr_sp->macaddress_A); 435 if (!node_real) 436 /* No frame received from AddrA of this node yet */ 437 node_real = hsr_add_node(hsr, node_db, hsr_sp->macaddress_A, 438 true, port_rcv->type); 439 if (!node_real) 440 goto done; /* No mem */ 441 if (node_real == node_curr) 442 /* Node has already been merged */ 443 goto done; 444 445 /* Leave the first HSR sup payload. */ 446 pull_size = sizeof(struct hsr_sup_payload); 447 skb_pull(skb, pull_size); 448 total_pull_size += pull_size; 449 450 /* Get second supervision tlv */ 451 hsr_sup_tlv = (struct hsr_sup_tlv *)skb->data; 452 /* And check if it is a redbox mac TLV */ 453 if (hsr_sup_tlv->HSR_TLV_type == PRP_TLV_REDBOX_MAC) { 454 /* We could stop here after pushing hsr_sup_payload, 455 * or proceed and allow macaddress_B and for redboxes. 456 */ 457 /* Sanity check length */ 458 if (hsr_sup_tlv->HSR_TLV_length != 6) 459 goto done; 460 461 /* Leave the second HSR sup tlv. */ 462 pull_size = sizeof(struct hsr_sup_tlv); 463 skb_pull(skb, pull_size); 464 total_pull_size += pull_size; 465 466 /* Get redbox mac address. */ 467 hsr_sp = (struct hsr_sup_payload *)skb->data; 468 469 /* Check if redbox mac and node mac are equal. */ 470 if (!ether_addr_equal(node_real->macaddress_A, hsr_sp->macaddress_A)) { 471 /* This is a redbox supervision frame for a VDAN! */ 472 goto done; 473 } 474 } 475 476 ether_addr_copy(node_real->macaddress_B, ethhdr->h_source); 477 hsr_lock_seq_out_pair(node_real, node_curr); 478 for (i = 0; i < HSR_PT_PORTS; i++) { 479 if (!node_curr->time_in_stale[i] && 480 time_after(node_curr->time_in[i], node_real->time_in[i])) { 481 node_real->time_in[i] = node_curr->time_in[i]; 482 node_real->time_in_stale[i] = 483 node_curr->time_in_stale[i]; 484 } 485 } 486 487 seq_port_cnt = min(node_real->seq_port_cnt, node_curr->seq_port_cnt); 488 xa_for_each(&node_curr->seq_blocks, idx, src_blk) { 489 if (hsr_seq_block_is_old(src_blk)) 490 continue; 491 492 merge_blk = hsr_get_seq_block(node_real, src_blk->block_idx); 493 if (!merge_blk) 494 continue; 495 merge_blk->time = min(merge_blk->time, src_blk->time); 496 for (i = 0; i < seq_port_cnt; i++) { 497 bitmap_or(merge_blk->seq_nrs[i], merge_blk->seq_nrs[i], 498 src_blk->seq_nrs[i], HSR_SEQ_BLOCK_SIZE); 499 } 500 } 501 hsr_unlock_seq_out_pair(node_real, node_curr); 502 node_real->addr_B_port = port_rcv->type; 503 504 spin_lock_bh(&hsr->list_lock); 505 if (!node_curr->removed) { 506 list_del_rcu(&node_curr->mac_list); 507 node_curr->removed = true; 508 call_rcu(&node_curr->rcu_head, hsr_free_node_rcu); 509 } 510 spin_unlock_bh(&hsr->list_lock); 511 512 done: 513 /* Push back here */ 514 skb_push(skb, total_pull_size); 515 } 516 517 /* 'skb' is a frame meant for this host, that is to be passed to upper layers. 518 * 519 * If the frame was sent by a node's B interface, replace the source 520 * address with that node's "official" address (macaddress_A) so that upper 521 * layers recognize where it came from. 522 */ 523 void hsr_addr_subst_source(struct hsr_node *node, struct sk_buff *skb) 524 { 525 if (!skb_mac_header_was_set(skb)) { 526 WARN_ONCE(1, "%s: Mac header not set\n", __func__); 527 return; 528 } 529 530 memcpy(ð_hdr(skb)->h_source, node->macaddress_A, ETH_ALEN); 531 } 532 533 /* 'skb' is a frame meant for another host. 534 * 'port' is the outgoing interface 535 * 536 * Substitute the target (dest) MAC address if necessary, so the it matches the 537 * recipient interface MAC address, regardless of whether that is the 538 * recipient's A or B interface. 539 * This is needed to keep the packets flowing through switches that learn on 540 * which "side" the different interfaces are. 541 */ 542 void hsr_addr_subst_dest(struct hsr_node *node_src, struct sk_buff *skb, 543 struct hsr_port *port) 544 { 545 struct hsr_node *node_dst; 546 547 if (!skb_mac_header_was_set(skb)) { 548 WARN_ONCE(1, "%s: Mac header not set\n", __func__); 549 return; 550 } 551 552 if (!is_unicast_ether_addr(eth_hdr(skb)->h_dest)) 553 return; 554 555 node_dst = find_node_by_addr_A(&port->hsr->node_db, 556 eth_hdr(skb)->h_dest); 557 if (!node_dst && port->hsr->redbox) 558 node_dst = find_node_by_addr_A(&port->hsr->proxy_node_db, 559 eth_hdr(skb)->h_dest); 560 561 if (!node_dst) { 562 if (port->hsr->prot_version != PRP_V1 && net_ratelimit()) 563 netdev_err(skb->dev, "%s: Unknown node\n", __func__); 564 return; 565 } 566 if (port->type != node_dst->addr_B_port) 567 return; 568 569 if (is_valid_ether_addr(node_dst->macaddress_B)) 570 ether_addr_copy(eth_hdr(skb)->h_dest, node_dst->macaddress_B); 571 } 572 573 void hsr_register_frame_in(struct hsr_node *node, struct hsr_port *port, 574 u16 sequence_nr) 575 { 576 node->time_in[port->type] = jiffies; 577 node->time_in_stale[port->type] = false; 578 } 579 580 /* Duplicate discard algorithm: we maintain a bitmap where we set a bit for 581 * every seen sequence number. The bitmap is split into blocks and the block 582 * management is detailed in hsr_get_seq_block(). In any case, we err on the 583 * side of accepting a packet, as the specification requires the algorithm to 584 * be "designed such that it never rejects a legitimate frame, while occasional 585 * acceptance of a duplicate can be tolerated." (IEC 62439-3:2021, 4.1.10.3). 586 * While this requirement is explicit for PRP, applying it to HSR does no harm 587 * either. 588 * 589 * 'frame' is the frame to be sent 590 * 'port_type' is the type of the outgoing interface 591 * 592 * Return: 593 * 1 if frame can be shown to have been sent recently on this interface, 594 * 0 otherwise 595 */ 596 static int hsr_check_duplicate(struct hsr_frame_info *frame, 597 unsigned int port_type) 598 { 599 u16 sequence_nr, seq_bit, block_idx; 600 struct hsr_seq_block *block; 601 struct hsr_node *node; 602 603 node = frame->node_src; 604 sequence_nr = frame->sequence_nr; 605 606 if (WARN_ON_ONCE(port_type >= node->seq_port_cnt)) 607 return 0; 608 609 spin_lock_bh(&node->seq_out_lock); 610 611 block_idx = hsr_seq_block_index(sequence_nr); 612 block = hsr_get_seq_block(node, block_idx); 613 if (!block) 614 goto out_new; 615 616 seq_bit = hsr_seq_block_bit(sequence_nr); 617 if (__test_and_set_bit(seq_bit, block->seq_nrs[port_type])) 618 goto out_seen; 619 620 out_new: 621 spin_unlock_bh(&node->seq_out_lock); 622 return 0; 623 624 out_seen: 625 spin_unlock_bh(&node->seq_out_lock); 626 return 1; 627 } 628 629 /* HSR duplicate discard: we check if the same frame has already been sent on 630 * this outgoing interface. The check follows the general duplicate discard 631 * algorithm. 632 * 633 * 'port' is the outgoing interface 634 * 'frame' is the frame to be sent 635 * 636 * Return: 637 * 1 if frame can be shown to have been sent recently on this interface, 638 * 0 otherwise 639 */ 640 int hsr_register_frame_out(struct hsr_port *port, struct hsr_frame_info *frame) 641 { 642 return hsr_check_duplicate(frame, port->type - 1); 643 } 644 645 /* PRP duplicate discard: we only consider frames that are received on port A 646 * or port B and should go to the master port. For those, we check if they have 647 * already been received by the host, i.e., master port. The check uses the 648 * general duplicate discard algorithm, but without tracking multiple ports. 649 * 650 * 'port' is the outgoing interface 651 * 'frame' is the frame to be sent 652 * 653 * Return: 654 * 1 if frame can be shown to have been sent recently on this interface, 655 * 0 otherwise 656 */ 657 int prp_register_frame_out(struct hsr_port *port, struct hsr_frame_info *frame) 658 { 659 /* out-going frames are always in order */ 660 if (frame->port_rcv->type == HSR_PT_MASTER) 661 return 0; 662 663 /* RedBox: forward LAN frames out the interlink to a SAN, deduping the 664 * two LAN copies on a dedicated slot. 665 */ 666 if (port->type == HSR_PT_INTERLINK) 667 return hsr_check_duplicate(frame, 1); 668 669 /* For PRP only slave-to-master frames are forwarded. */ 670 if (port->type != HSR_PT_MASTER) 671 return 1; 672 673 return hsr_check_duplicate(frame, 0); 674 } 675 EXPORT_SYMBOL_IF_KUNIT(prp_register_frame_out); 676 677 static struct hsr_port *get_late_port(struct hsr_priv *hsr, 678 struct hsr_node *node) 679 { 680 if (node->time_in_stale[HSR_PT_SLAVE_A]) 681 return hsr_port_get_hsr(hsr, HSR_PT_SLAVE_A); 682 if (node->time_in_stale[HSR_PT_SLAVE_B]) 683 return hsr_port_get_hsr(hsr, HSR_PT_SLAVE_B); 684 685 if (time_after(node->time_in[HSR_PT_SLAVE_B], 686 node->time_in[HSR_PT_SLAVE_A] + 687 msecs_to_jiffies(MAX_SLAVE_DIFF))) 688 return hsr_port_get_hsr(hsr, HSR_PT_SLAVE_A); 689 if (time_after(node->time_in[HSR_PT_SLAVE_A], 690 node->time_in[HSR_PT_SLAVE_B] + 691 msecs_to_jiffies(MAX_SLAVE_DIFF))) 692 return hsr_port_get_hsr(hsr, HSR_PT_SLAVE_B); 693 694 return NULL; 695 } 696 697 /* Remove stale sequence_nr records. Called by timer every 698 * HSR_LIFE_CHECK_INTERVAL (two seconds or so). 699 */ 700 void hsr_prune_nodes(struct timer_list *t) 701 { 702 struct hsr_priv *hsr = timer_container_of(hsr, t, prune_timer); 703 struct hsr_node *node; 704 struct hsr_node *tmp; 705 struct hsr_port *port; 706 unsigned long timestamp; 707 unsigned long time_a, time_b; 708 709 spin_lock_bh(&hsr->list_lock); 710 list_for_each_entry_safe(node, tmp, &hsr->node_db, mac_list) { 711 /* Don't prune own node. Neither time_in[HSR_PT_SLAVE_A] 712 * nor time_in[HSR_PT_SLAVE_B], will ever be updated for 713 * the master port. Thus the master node will be repeatedly 714 * pruned leading to packet loss. 715 */ 716 if (hsr_addr_is_self(hsr, node->macaddress_A)) 717 continue; 718 719 /* Shorthand */ 720 time_a = node->time_in[HSR_PT_SLAVE_A]; 721 time_b = node->time_in[HSR_PT_SLAVE_B]; 722 723 /* Check for timestamps old enough to risk wrap-around */ 724 if (time_after(jiffies, time_a + MAX_JIFFY_OFFSET / 2)) 725 node->time_in_stale[HSR_PT_SLAVE_A] = true; 726 if (time_after(jiffies, time_b + MAX_JIFFY_OFFSET / 2)) 727 node->time_in_stale[HSR_PT_SLAVE_B] = true; 728 729 /* Get age of newest frame from node. 730 * At least one time_in is OK here; nodes get pruned long 731 * before both time_ins can get stale 732 */ 733 timestamp = time_a; 734 if (node->time_in_stale[HSR_PT_SLAVE_A] || 735 (!node->time_in_stale[HSR_PT_SLAVE_B] && 736 time_after(time_b, time_a))) 737 timestamp = time_b; 738 739 /* Warn of ring error only as long as we get frames at all */ 740 if (time_is_after_jiffies(timestamp + 741 msecs_to_jiffies(1.5 * MAX_SLAVE_DIFF))) { 742 rcu_read_lock(); 743 port = get_late_port(hsr, node); 744 if (port) 745 hsr_nl_ringerror(hsr, node->macaddress_A, port); 746 rcu_read_unlock(); 747 } 748 749 /* Prune old entries */ 750 if (time_is_before_jiffies(timestamp + 751 msecs_to_jiffies(HSR_NODE_FORGET_TIME))) { 752 hsr_nl_nodedown(hsr, node->macaddress_A); 753 if (!node->removed) { 754 list_del_rcu(&node->mac_list); 755 node->removed = true; 756 /* Note that we need to free this entry later: */ 757 call_rcu(&node->rcu_head, hsr_free_node_rcu); 758 } 759 } 760 } 761 spin_unlock_bh(&hsr->list_lock); 762 763 /* Restart timer */ 764 mod_timer(&hsr->prune_timer, 765 jiffies + msecs_to_jiffies(PRUNE_PERIOD)); 766 } 767 768 void hsr_prune_proxy_nodes(struct timer_list *t) 769 { 770 struct hsr_priv *hsr = timer_container_of(hsr, t, prune_proxy_timer); 771 unsigned long timestamp; 772 struct hsr_node *node; 773 struct hsr_node *tmp; 774 775 spin_lock_bh(&hsr->list_lock); 776 list_for_each_entry_safe(node, tmp, &hsr->proxy_node_db, mac_list) { 777 /* Don't prune RedBox node. */ 778 if (hsr_addr_is_redbox(hsr, node->macaddress_A)) 779 continue; 780 781 timestamp = node->time_in[HSR_PT_INTERLINK]; 782 783 /* Prune old entries */ 784 if (time_is_before_jiffies(timestamp + 785 msecs_to_jiffies(HSR_PROXY_NODE_FORGET_TIME))) { 786 hsr_nl_nodedown(hsr, node->macaddress_A); 787 if (!node->removed) { 788 list_del_rcu(&node->mac_list); 789 node->removed = true; 790 /* Note that we need to free this entry later: */ 791 call_rcu(&node->rcu_head, hsr_free_node_rcu); 792 } 793 } 794 } 795 796 spin_unlock_bh(&hsr->list_lock); 797 798 /* Restart timer */ 799 mod_timer(&hsr->prune_proxy_timer, 800 jiffies + msecs_to_jiffies(PRUNE_PROXY_PERIOD)); 801 } 802 803 void *hsr_get_next_node(struct hsr_priv *hsr, void *_pos, 804 unsigned char addr[ETH_ALEN]) 805 { 806 struct hsr_node *node; 807 808 if (!_pos) { 809 node = list_first_or_null_rcu(&hsr->node_db, 810 struct hsr_node, mac_list); 811 if (node) 812 ether_addr_copy(addr, node->macaddress_A); 813 return node; 814 } 815 816 node = _pos; 817 list_for_each_entry_continue_rcu(node, &hsr->node_db, mac_list) { 818 ether_addr_copy(addr, node->macaddress_A); 819 return node; 820 } 821 822 return NULL; 823 } 824 825 /* Fill the last sequence number that has been received from node on if1 by 826 * finding the last sequence number sent on port B; accordingly get the last 827 * received sequence number for if2 using sent sequence numbers on port A. 828 */ 829 static void fill_last_seq_nrs(struct hsr_node *node, u16 *if1_seq, u16 *if2_seq) 830 { 831 struct hsr_seq_block *block; 832 unsigned int block_off; 833 size_t block_sz; 834 u16 seq_bit; 835 836 spin_lock_bh(&node->seq_out_lock); 837 838 /* Get last inserted block */ 839 block_off = (node->next_block - 1) & (HSR_MAX_SEQ_BLOCKS - 1); 840 block_sz = hsr_seq_block_size(node); 841 block = node->block_buf + block_off * block_sz; 842 843 seq_bit = find_last_bit(block->seq_nrs[HSR_PT_SLAVE_B - 1], 844 HSR_SEQ_BLOCK_SIZE); 845 if (seq_bit < HSR_SEQ_BLOCK_SIZE) 846 *if1_seq = (block->block_idx << HSR_SEQ_BLOCK_SHIFT) | seq_bit; 847 848 seq_bit = find_last_bit(block->seq_nrs[HSR_PT_SLAVE_A - 1], 849 HSR_SEQ_BLOCK_SIZE); 850 if (seq_bit < HSR_SEQ_BLOCK_SIZE) 851 *if2_seq = (block->block_idx << HSR_SEQ_BLOCK_SHIFT) | seq_bit; 852 853 spin_unlock_bh(&node->seq_out_lock); 854 } 855 856 int hsr_get_node_data(struct hsr_priv *hsr, 857 const unsigned char *addr, 858 unsigned char addr_b[ETH_ALEN], 859 unsigned int *addr_b_ifindex, 860 int *if1_age, 861 u16 *if1_seq, 862 int *if2_age, 863 u16 *if2_seq) 864 { 865 struct hsr_node *node; 866 struct hsr_port *port; 867 unsigned long tdiff; 868 869 node = find_node_by_addr_A(&hsr->node_db, addr); 870 if (!node) 871 return -ENOENT; 872 873 ether_addr_copy(addr_b, node->macaddress_B); 874 875 tdiff = jiffies - node->time_in[HSR_PT_SLAVE_A]; 876 if (node->time_in_stale[HSR_PT_SLAVE_A]) 877 *if1_age = INT_MAX; 878 #if HZ <= MSEC_PER_SEC 879 else if (tdiff > msecs_to_jiffies(INT_MAX)) 880 *if1_age = INT_MAX; 881 #endif 882 else 883 *if1_age = jiffies_to_msecs(tdiff); 884 885 tdiff = jiffies - node->time_in[HSR_PT_SLAVE_B]; 886 if (node->time_in_stale[HSR_PT_SLAVE_B]) 887 *if2_age = INT_MAX; 888 #if HZ <= MSEC_PER_SEC 889 else if (tdiff > msecs_to_jiffies(INT_MAX)) 890 *if2_age = INT_MAX; 891 #endif 892 else 893 *if2_age = jiffies_to_msecs(tdiff); 894 895 /* Present sequence numbers as if they were incoming on interface */ 896 *if1_seq = 0; 897 *if2_seq = 0; 898 if (hsr->prot_version != PRP_V1) 899 fill_last_seq_nrs(node, if1_seq, if2_seq); 900 901 if (node->addr_B_port != HSR_PT_NONE) { 902 port = hsr_port_get_hsr(hsr, node->addr_B_port); 903 if (port) 904 *addr_b_ifindex = port->dev->ifindex; 905 else 906 *addr_b_ifindex = -1; 907 } else { 908 *addr_b_ifindex = -1; 909 } 910 911 return 0; 912 } 913