1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * Copyright(c) 1999 - 2004 Intel Corporation. All rights reserved.
4 */
5
6 #include <linux/skbuff.h>
7 #include <linux/netdevice.h>
8 #include <linux/etherdevice.h>
9 #include <linux/pkt_sched.h>
10 #include <linux/spinlock.h>
11 #include <linux/slab.h>
12 #include <linux/timer.h>
13 #include <linux/ip.h>
14 #include <linux/ipv6.h>
15 #include <linux/if_arp.h>
16 #include <linux/if_ether.h>
17 #include <linux/if_bonding.h>
18 #include <linux/if_vlan.h>
19 #include <linux/in.h>
20 #include <net/arp.h>
21 #include <net/ipv6.h>
22 #include <asm/byteorder.h>
23 #include <net/bonding.h>
24 #include <net/bond_alb.h>
25
26 static const u8 mac_v6_allmcast[ETH_ALEN + 2] __long_aligned = {
27 0x33, 0x33, 0x00, 0x00, 0x00, 0x01
28 };
29 static const int alb_delta_in_ticks = HZ / ALB_TIMER_TICKS_PER_SEC;
30
31 #pragma pack(1)
32 struct learning_pkt {
33 u8 mac_dst[ETH_ALEN];
34 u8 mac_src[ETH_ALEN];
35 __be16 type;
36 u8 padding[ETH_ZLEN - ETH_HLEN];
37 };
38
39 struct arp_pkt {
40 __be16 hw_addr_space;
41 __be16 prot_addr_space;
42 u8 hw_addr_len;
43 u8 prot_addr_len;
44 __be16 op_code;
45 u8 mac_src[ETH_ALEN]; /* sender hardware address */
46 __be32 ip_src; /* sender IP address */
47 u8 mac_dst[ETH_ALEN]; /* target hardware address */
48 __be32 ip_dst; /* target IP address */
49 };
50 #pragma pack()
51
52 /* Forward declaration */
53 static void alb_send_learning_packets(struct slave *slave, u8 mac_addr[],
54 bool strict_match);
55 static void rlb_purge_src_ip(struct bonding *bond, struct arp_pkt *arp);
56 static void rlb_src_unlink(struct bonding *bond, u32 index);
57 static void rlb_src_link(struct bonding *bond, u32 ip_src_hash,
58 u32 ip_dst_hash);
59
_simple_hash(const u8 * hash_start,int hash_size)60 static inline u8 _simple_hash(const u8 *hash_start, int hash_size)
61 {
62 int i;
63 u8 hash = 0;
64
65 for (i = 0; i < hash_size; i++)
66 hash ^= hash_start[i];
67
68 return hash;
69 }
70
71 /*********************** tlb specific functions ***************************/
72
tlb_init_table_entry(struct tlb_client_info * entry,int save_load)73 static inline void tlb_init_table_entry(struct tlb_client_info *entry, int save_load)
74 {
75 if (save_load) {
76 entry->load_history = 1 + entry->tx_bytes /
77 BOND_TLB_REBALANCE_INTERVAL;
78 entry->tx_bytes = 0;
79 }
80
81 entry->tx_slave = NULL;
82 entry->next = TLB_NULL_INDEX;
83 entry->prev = TLB_NULL_INDEX;
84 }
85
tlb_init_slave(struct slave * slave)86 static inline void tlb_init_slave(struct slave *slave)
87 {
88 SLAVE_TLB_INFO(slave).load = 0;
89 SLAVE_TLB_INFO(slave).head = TLB_NULL_INDEX;
90 }
91
__tlb_clear_slave(struct bonding * bond,struct slave * slave,int save_load)92 static void __tlb_clear_slave(struct bonding *bond, struct slave *slave,
93 int save_load)
94 {
95 struct tlb_client_info *tx_hash_table;
96 u32 index;
97
98 /* clear slave from tx_hashtbl */
99 tx_hash_table = BOND_ALB_INFO(bond).tx_hashtbl;
100
101 /* skip this if we've already freed the tx hash table */
102 if (tx_hash_table) {
103 index = SLAVE_TLB_INFO(slave).head;
104 while (index != TLB_NULL_INDEX) {
105 u32 next_index = tx_hash_table[index].next;
106
107 tlb_init_table_entry(&tx_hash_table[index], save_load);
108 index = next_index;
109 }
110 }
111
112 tlb_init_slave(slave);
113 }
114
tlb_clear_slave(struct bonding * bond,struct slave * slave,int save_load)115 static void tlb_clear_slave(struct bonding *bond, struct slave *slave,
116 int save_load)
117 {
118 spin_lock_bh(&bond->mode_lock);
119 __tlb_clear_slave(bond, slave, save_load);
120 spin_unlock_bh(&bond->mode_lock);
121 }
122
123 /* Must be called before starting the monitor timer */
tlb_initialize(struct bonding * bond)124 static int tlb_initialize(struct bonding *bond)
125 {
126 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
127 int size = TLB_HASH_TABLE_SIZE * sizeof(struct tlb_client_info);
128 struct tlb_client_info *new_hashtbl;
129 int i;
130
131 new_hashtbl = kzalloc(size, GFP_KERNEL);
132 if (!new_hashtbl)
133 return -ENOMEM;
134
135 spin_lock_bh(&bond->mode_lock);
136
137 bond_info->tx_hashtbl = new_hashtbl;
138
139 for (i = 0; i < TLB_HASH_TABLE_SIZE; i++)
140 tlb_init_table_entry(&bond_info->tx_hashtbl[i], 0);
141
142 spin_unlock_bh(&bond->mode_lock);
143
144 return 0;
145 }
146
147 /* Must be called only after all slaves have been released */
tlb_deinitialize(struct bonding * bond)148 static void tlb_deinitialize(struct bonding *bond)
149 {
150 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
151
152 spin_lock_bh(&bond->mode_lock);
153
154 kfree(bond_info->tx_hashtbl);
155 bond_info->tx_hashtbl = NULL;
156
157 spin_unlock_bh(&bond->mode_lock);
158 }
159
compute_gap(struct slave * slave)160 static long long compute_gap(struct slave *slave)
161 {
162 return (s64) (slave->speed << 20) - /* Convert to Megabit per sec */
163 (s64) (SLAVE_TLB_INFO(slave).load << 3); /* Bytes to bits */
164 }
165
tlb_get_least_loaded_slave(struct bonding * bond)166 static struct slave *tlb_get_least_loaded_slave(struct bonding *bond)
167 {
168 struct slave *slave, *least_loaded;
169 struct list_head *iter;
170 long long max_gap;
171
172 least_loaded = NULL;
173 max_gap = LLONG_MIN;
174
175 /* Find the slave with the largest gap */
176 bond_for_each_slave_rcu(bond, slave, iter) {
177 if (bond_slave_can_tx(slave)) {
178 long long gap = compute_gap(slave);
179
180 if (max_gap < gap) {
181 least_loaded = slave;
182 max_gap = gap;
183 }
184 }
185 }
186
187 return least_loaded;
188 }
189
__tlb_choose_channel(struct bonding * bond,u32 hash_index,u32 skb_len)190 static struct slave *__tlb_choose_channel(struct bonding *bond, u32 hash_index,
191 u32 skb_len)
192 {
193 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
194 struct tlb_client_info *hash_table;
195 struct slave *assigned_slave;
196
197 hash_table = bond_info->tx_hashtbl;
198 assigned_slave = hash_table[hash_index].tx_slave;
199 if (!assigned_slave) {
200 assigned_slave = tlb_get_least_loaded_slave(bond);
201
202 if (assigned_slave) {
203 struct tlb_slave_info *slave_info =
204 &(SLAVE_TLB_INFO(assigned_slave));
205 u32 next_index = slave_info->head;
206
207 hash_table[hash_index].tx_slave = assigned_slave;
208 hash_table[hash_index].next = next_index;
209 hash_table[hash_index].prev = TLB_NULL_INDEX;
210
211 if (next_index != TLB_NULL_INDEX)
212 hash_table[next_index].prev = hash_index;
213
214 slave_info->head = hash_index;
215 slave_info->load +=
216 hash_table[hash_index].load_history;
217 }
218 }
219
220 if (assigned_slave)
221 hash_table[hash_index].tx_bytes += skb_len;
222
223 return assigned_slave;
224 }
225
tlb_choose_channel(struct bonding * bond,u32 hash_index,u32 skb_len)226 static struct slave *tlb_choose_channel(struct bonding *bond, u32 hash_index,
227 u32 skb_len)
228 {
229 struct slave *tx_slave;
230
231 /* We don't need to disable softirq here, because
232 * tlb_choose_channel() is only called by bond_alb_xmit()
233 * which already has softirq disabled.
234 */
235 spin_lock(&bond->mode_lock);
236 tx_slave = __tlb_choose_channel(bond, hash_index, skb_len);
237 spin_unlock(&bond->mode_lock);
238
239 return tx_slave;
240 }
241
242 /*********************** rlb specific functions ***************************/
243
244 /* when an ARP REPLY is received from a client update its info
245 * in the rx_hashtbl
246 */
rlb_update_entry_from_arp(struct bonding * bond,struct arp_pkt * arp)247 static void rlb_update_entry_from_arp(struct bonding *bond, struct arp_pkt *arp)
248 {
249 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
250 struct rlb_client_info *client_info;
251 u32 hash_index;
252
253 spin_lock_bh(&bond->mode_lock);
254
255 hash_index = _simple_hash((u8 *)&(arp->ip_src), sizeof(arp->ip_src));
256 client_info = &(bond_info->rx_hashtbl[hash_index]);
257
258 if ((client_info->assigned) &&
259 (client_info->ip_src == arp->ip_dst) &&
260 (client_info->ip_dst == arp->ip_src) &&
261 (!ether_addr_equal_64bits(client_info->mac_dst, arp->mac_src))) {
262 /* update the clients MAC address */
263 ether_addr_copy(client_info->mac_dst, arp->mac_src);
264 client_info->ntt = 1;
265 bond_info->rx_ntt = 1;
266 }
267
268 spin_unlock_bh(&bond->mode_lock);
269 }
270
rlb_arp_recv(const struct sk_buff * skb,struct bonding * bond,struct slave * slave)271 static int rlb_arp_recv(const struct sk_buff *skb, struct bonding *bond,
272 struct slave *slave)
273 {
274 struct arp_pkt *arp, _arp;
275
276 if (skb->protocol != cpu_to_be16(ETH_P_ARP))
277 goto out;
278
279 arp = skb_header_pointer(skb, 0, sizeof(_arp), &_arp);
280 if (!arp)
281 goto out;
282
283 /* We received an ARP from arp->ip_src.
284 * We might have used this IP address previously (on the bonding host
285 * itself or on a system that is bridged together with the bond).
286 * However, if arp->mac_src is different than what is stored in
287 * rx_hashtbl, some other host is now using the IP and we must prevent
288 * sending out client updates with this IP address and the old MAC
289 * address.
290 * Clean up all hash table entries that have this address as ip_src but
291 * have a different mac_src.
292 */
293 rlb_purge_src_ip(bond, arp);
294
295 if (arp->op_code == htons(ARPOP_REPLY)) {
296 /* update rx hash table for this ARP */
297 rlb_update_entry_from_arp(bond, arp);
298 slave_dbg(bond->dev, slave->dev, "Server received an ARP Reply from client\n");
299 }
300 out:
301 return RX_HANDLER_ANOTHER;
302 }
303
304 /* Caller must hold rcu_read_lock() */
__rlb_next_rx_slave(struct bonding * bond)305 static struct slave *__rlb_next_rx_slave(struct bonding *bond)
306 {
307 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
308 struct slave *before = NULL, *rx_slave = NULL, *slave;
309 struct list_head *iter;
310 bool found = false;
311
312 bond_for_each_slave_rcu(bond, slave, iter) {
313 if (!bond_slave_can_tx(slave))
314 continue;
315 if (!found) {
316 if (!before || before->speed < slave->speed)
317 before = slave;
318 } else {
319 if (!rx_slave || rx_slave->speed < slave->speed)
320 rx_slave = slave;
321 }
322 if (slave == bond_info->rx_slave)
323 found = true;
324 }
325 /* we didn't find anything after the current or we have something
326 * better before and up to the current slave
327 */
328 if (!rx_slave || (before && rx_slave->speed < before->speed))
329 rx_slave = before;
330
331 if (rx_slave)
332 bond_info->rx_slave = rx_slave;
333
334 return rx_slave;
335 }
336
337 /* Caller must hold RTNL, rcu_read_lock is obtained only to silence checkers */
rlb_next_rx_slave(struct bonding * bond)338 static struct slave *rlb_next_rx_slave(struct bonding *bond)
339 {
340 struct slave *rx_slave;
341
342 ASSERT_RTNL();
343
344 rcu_read_lock();
345 rx_slave = __rlb_next_rx_slave(bond);
346 rcu_read_unlock();
347
348 return rx_slave;
349 }
350
351 /* teach the switch the mac of a disabled slave
352 * on the primary for fault tolerance
353 *
354 * Caller must hold RTNL
355 */
rlb_teach_disabled_mac_on_primary(struct bonding * bond,u8 addr[])356 static void rlb_teach_disabled_mac_on_primary(struct bonding *bond, u8 addr[])
357 {
358 struct slave *curr_active = rtnl_dereference(bond->curr_active_slave);
359
360 if (!curr_active)
361 return;
362
363 if (!bond->alb_info.primary_is_promisc) {
364 if (!dev_set_promiscuity(curr_active->dev, 1))
365 bond->alb_info.primary_is_promisc = 1;
366 else
367 bond->alb_info.primary_is_promisc = 0;
368 }
369
370 bond->alb_info.rlb_promisc_timeout_counter = 0;
371
372 alb_send_learning_packets(curr_active, addr, true);
373 }
374
375 /* slave being removed should not be active at this point
376 *
377 * Caller must hold rtnl.
378 */
rlb_clear_slave(struct bonding * bond,struct slave * slave)379 static void rlb_clear_slave(struct bonding *bond, struct slave *slave)
380 {
381 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
382 struct rlb_client_info *rx_hash_table;
383 u32 index, next_index;
384
385 /* clear slave from rx_hashtbl */
386 spin_lock_bh(&bond->mode_lock);
387
388 rx_hash_table = bond_info->rx_hashtbl;
389 index = bond_info->rx_hashtbl_used_head;
390 for (; index != RLB_NULL_INDEX; index = next_index) {
391 next_index = rx_hash_table[index].used_next;
392 if (rx_hash_table[index].slave == slave) {
393 struct slave *assigned_slave = rlb_next_rx_slave(bond);
394
395 if (assigned_slave) {
396 rx_hash_table[index].slave = assigned_slave;
397 if (is_valid_ether_addr(rx_hash_table[index].mac_dst)) {
398 bond_info->rx_hashtbl[index].ntt = 1;
399 bond_info->rx_ntt = 1;
400 /* A slave has been removed from the
401 * table because it is either disabled
402 * or being released. We must retry the
403 * update to avoid clients from not
404 * being updated & disconnecting when
405 * there is stress
406 */
407 bond_info->rlb_update_retry_counter =
408 RLB_UPDATE_RETRY;
409 }
410 } else { /* there is no active slave */
411 rx_hash_table[index].slave = NULL;
412 }
413 }
414 }
415
416 spin_unlock_bh(&bond->mode_lock);
417
418 if (slave != rtnl_dereference(bond->curr_active_slave))
419 rlb_teach_disabled_mac_on_primary(bond, slave->dev->dev_addr);
420 }
421
rlb_update_client(struct rlb_client_info * client_info)422 static void rlb_update_client(struct rlb_client_info *client_info)
423 {
424 int i;
425
426 if (!client_info->slave || !is_valid_ether_addr(client_info->mac_dst))
427 return;
428
429 for (i = 0; i < RLB_ARP_BURST_SIZE; i++) {
430 struct sk_buff *skb;
431
432 skb = arp_create(ARPOP_REPLY, ETH_P_ARP,
433 client_info->ip_dst,
434 client_info->slave->dev,
435 client_info->ip_src,
436 client_info->mac_dst,
437 client_info->slave->dev->dev_addr,
438 client_info->mac_dst);
439 if (!skb) {
440 slave_err(client_info->slave->bond->dev,
441 client_info->slave->dev,
442 "failed to create an ARP packet\n");
443 continue;
444 }
445
446 skb->dev = client_info->slave->dev;
447
448 if (client_info->vlan_id) {
449 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q),
450 client_info->vlan_id);
451 }
452
453 arp_xmit(skb);
454 }
455 }
456
457 /* sends ARP REPLIES that update the clients that need updating */
rlb_update_rx_clients(struct bonding * bond)458 static void rlb_update_rx_clients(struct bonding *bond)
459 {
460 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
461 struct rlb_client_info *client_info;
462 u32 hash_index;
463
464 spin_lock_bh(&bond->mode_lock);
465
466 hash_index = bond_info->rx_hashtbl_used_head;
467 for (; hash_index != RLB_NULL_INDEX;
468 hash_index = client_info->used_next) {
469 client_info = &(bond_info->rx_hashtbl[hash_index]);
470 if (client_info->ntt) {
471 rlb_update_client(client_info);
472 if (bond_info->rlb_update_retry_counter == 0)
473 client_info->ntt = 0;
474 }
475 }
476
477 /* do not update the entries again until this counter is zero so that
478 * not to confuse the clients.
479 */
480 bond_info->rlb_update_delay_counter = RLB_UPDATE_DELAY;
481
482 spin_unlock_bh(&bond->mode_lock);
483 }
484
485 /* The slave was assigned a new mac address - update the clients */
rlb_req_update_slave_clients(struct bonding * bond,struct slave * slave)486 static void rlb_req_update_slave_clients(struct bonding *bond, struct slave *slave)
487 {
488 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
489 struct rlb_client_info *client_info;
490 int ntt = 0;
491 u32 hash_index;
492
493 spin_lock_bh(&bond->mode_lock);
494
495 hash_index = bond_info->rx_hashtbl_used_head;
496 for (; hash_index != RLB_NULL_INDEX;
497 hash_index = client_info->used_next) {
498 client_info = &(bond_info->rx_hashtbl[hash_index]);
499
500 if ((client_info->slave == slave) &&
501 is_valid_ether_addr(client_info->mac_dst)) {
502 client_info->ntt = 1;
503 ntt = 1;
504 }
505 }
506
507 /* update the team's flag only after the whole iteration */
508 if (ntt) {
509 bond_info->rx_ntt = 1;
510 /* fasten the change */
511 bond_info->rlb_update_retry_counter = RLB_UPDATE_RETRY;
512 }
513
514 spin_unlock_bh(&bond->mode_lock);
515 }
516
517 /* mark all clients using src_ip to be updated */
rlb_req_update_subnet_clients(struct bonding * bond,__be32 src_ip)518 static void rlb_req_update_subnet_clients(struct bonding *bond, __be32 src_ip)
519 {
520 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
521 struct rlb_client_info *client_info;
522 u32 hash_index;
523
524 spin_lock(&bond->mode_lock);
525
526 hash_index = bond_info->rx_hashtbl_used_head;
527 for (; hash_index != RLB_NULL_INDEX;
528 hash_index = client_info->used_next) {
529 client_info = &(bond_info->rx_hashtbl[hash_index]);
530
531 if (!client_info->slave) {
532 netdev_err(bond->dev, "found a client with no channel in the client's hash table\n");
533 continue;
534 }
535 /* update all clients using this src_ip, that are not assigned
536 * to the team's address (curr_active_slave) and have a known
537 * unicast mac address.
538 */
539 if ((client_info->ip_src == src_ip) &&
540 !ether_addr_equal_64bits(client_info->slave->dev->dev_addr,
541 bond->dev->dev_addr) &&
542 is_valid_ether_addr(client_info->mac_dst)) {
543 client_info->ntt = 1;
544 bond_info->rx_ntt = 1;
545 }
546 }
547
548 spin_unlock(&bond->mode_lock);
549 }
550
rlb_choose_channel(struct sk_buff * skb,struct bonding * bond,const struct arp_pkt * arp)551 static struct slave *rlb_choose_channel(struct sk_buff *skb,
552 struct bonding *bond,
553 const struct arp_pkt *arp)
554 {
555 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
556 struct slave *assigned_slave, *curr_active_slave;
557 struct rlb_client_info *client_info;
558 u32 hash_index = 0;
559
560 spin_lock(&bond->mode_lock);
561
562 curr_active_slave = rcu_dereference(bond->curr_active_slave);
563
564 hash_index = _simple_hash((u8 *)&arp->ip_dst, sizeof(arp->ip_dst));
565 client_info = &(bond_info->rx_hashtbl[hash_index]);
566
567 if (client_info->assigned) {
568 if ((client_info->ip_src == arp->ip_src) &&
569 (client_info->ip_dst == arp->ip_dst)) {
570 /* the entry is already assigned to this client */
571 if (!is_broadcast_ether_addr(arp->mac_dst)) {
572 /* update mac address from arp */
573 ether_addr_copy(client_info->mac_dst, arp->mac_dst);
574 }
575 ether_addr_copy(client_info->mac_src, arp->mac_src);
576
577 assigned_slave = client_info->slave;
578 if (assigned_slave) {
579 spin_unlock(&bond->mode_lock);
580 return assigned_slave;
581 }
582 } else {
583 /* the entry is already assigned to some other client,
584 * move the old client to primary (curr_active_slave) so
585 * that the new client can be assigned to this entry.
586 */
587 if (curr_active_slave &&
588 client_info->slave != curr_active_slave) {
589 client_info->slave = curr_active_slave;
590 rlb_update_client(client_info);
591 }
592 }
593 }
594 /* assign a new slave */
595 assigned_slave = __rlb_next_rx_slave(bond);
596
597 if (assigned_slave) {
598 if (!(client_info->assigned &&
599 client_info->ip_src == arp->ip_src)) {
600 /* ip_src is going to be updated,
601 * fix the src hash list
602 */
603 u32 hash_src = _simple_hash((u8 *)&arp->ip_src,
604 sizeof(arp->ip_src));
605 rlb_src_unlink(bond, hash_index);
606 rlb_src_link(bond, hash_src, hash_index);
607 }
608
609 client_info->ip_src = arp->ip_src;
610 client_info->ip_dst = arp->ip_dst;
611 /* arp->mac_dst is broadcast for arp requests.
612 * will be updated with clients actual unicast mac address
613 * upon receiving an arp reply.
614 */
615 ether_addr_copy(client_info->mac_dst, arp->mac_dst);
616 ether_addr_copy(client_info->mac_src, arp->mac_src);
617 client_info->slave = assigned_slave;
618
619 if (is_valid_ether_addr(client_info->mac_dst)) {
620 client_info->ntt = 1;
621 bond->alb_info.rx_ntt = 1;
622 } else {
623 client_info->ntt = 0;
624 }
625
626 if (vlan_get_tag(skb, &client_info->vlan_id))
627 client_info->vlan_id = 0;
628
629 if (!client_info->assigned) {
630 u32 prev_tbl_head = bond_info->rx_hashtbl_used_head;
631
632 bond_info->rx_hashtbl_used_head = hash_index;
633 client_info->used_next = prev_tbl_head;
634 if (prev_tbl_head != RLB_NULL_INDEX) {
635 bond_info->rx_hashtbl[prev_tbl_head].used_prev =
636 hash_index;
637 }
638 client_info->assigned = 1;
639 }
640 }
641
642 spin_unlock(&bond->mode_lock);
643
644 return assigned_slave;
645 }
646
647 /* chooses (and returns) transmit channel for arp reply
648 * does not choose channel for other arp types since they are
649 * sent on the curr_active_slave
650 */
rlb_arp_xmit(struct sk_buff * skb,struct bonding * bond)651 static struct slave *rlb_arp_xmit(struct sk_buff *skb, struct bonding *bond)
652 {
653 struct slave *tx_slave = NULL;
654 struct arp_pkt *arp;
655
656 if (!pskb_network_may_pull(skb, sizeof(*arp)))
657 return NULL;
658 arp = (struct arp_pkt *)skb_network_header(skb);
659
660 /* Don't modify or load balance ARPs that do not originate
661 * from the bond itself or a VLAN directly above the bond.
662 */
663 if (!bond_slave_has_mac_rcu(bond, arp->mac_src))
664 return NULL;
665
666 if (arp->op_code == htons(ARPOP_REPLY)) {
667 /* the arp must be sent on the selected rx channel */
668 tx_slave = rlb_choose_channel(skb, bond, arp);
669 if (tx_slave)
670 bond_hw_addr_copy(arp->mac_src, tx_slave->dev->dev_addr,
671 tx_slave->dev->addr_len);
672 netdev_dbg(bond->dev, "(slave %s): Server sent ARP Reply packet\n",
673 tx_slave ? tx_slave->dev->name : "NULL");
674 } else if (arp->op_code == htons(ARPOP_REQUEST)) {
675 /* Create an entry in the rx_hashtbl for this client as a
676 * place holder.
677 * When the arp reply is received the entry will be updated
678 * with the correct unicast address of the client.
679 */
680 tx_slave = rlb_choose_channel(skb, bond, arp);
681
682 /* The ARP reply packets must be delayed so that
683 * they can cancel out the influence of the ARP request.
684 */
685 bond->alb_info.rlb_update_delay_counter = RLB_UPDATE_DELAY;
686
687 /* arp requests are broadcast and are sent on the primary
688 * the arp request will collapse all clients on the subnet to
689 * the primary slave. We must register these clients to be
690 * updated with their assigned mac.
691 */
692 rlb_req_update_subnet_clients(bond, arp->ip_src);
693 netdev_dbg(bond->dev, "(slave %s): Server sent ARP Request packet\n",
694 tx_slave ? tx_slave->dev->name : "NULL");
695 }
696
697 return tx_slave;
698 }
699
rlb_rebalance(struct bonding * bond)700 static void rlb_rebalance(struct bonding *bond)
701 {
702 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
703 struct slave *assigned_slave;
704 struct rlb_client_info *client_info;
705 int ntt;
706 u32 hash_index;
707
708 spin_lock_bh(&bond->mode_lock);
709
710 ntt = 0;
711 hash_index = bond_info->rx_hashtbl_used_head;
712 for (; hash_index != RLB_NULL_INDEX;
713 hash_index = client_info->used_next) {
714 client_info = &(bond_info->rx_hashtbl[hash_index]);
715 assigned_slave = __rlb_next_rx_slave(bond);
716 if (assigned_slave && (client_info->slave != assigned_slave)) {
717 client_info->slave = assigned_slave;
718 if (!is_zero_ether_addr(client_info->mac_dst)) {
719 client_info->ntt = 1;
720 ntt = 1;
721 }
722 }
723 }
724
725 /* update the team's flag only after the whole iteration */
726 if (ntt)
727 bond_info->rx_ntt = 1;
728 spin_unlock_bh(&bond->mode_lock);
729 }
730
731 /* Caller must hold mode_lock */
rlb_init_table_entry_dst(struct rlb_client_info * entry)732 static void rlb_init_table_entry_dst(struct rlb_client_info *entry)
733 {
734 entry->used_next = RLB_NULL_INDEX;
735 entry->used_prev = RLB_NULL_INDEX;
736 entry->assigned = 0;
737 entry->slave = NULL;
738 entry->vlan_id = 0;
739 }
rlb_init_table_entry_src(struct rlb_client_info * entry)740 static void rlb_init_table_entry_src(struct rlb_client_info *entry)
741 {
742 entry->src_first = RLB_NULL_INDEX;
743 entry->src_prev = RLB_NULL_INDEX;
744 entry->src_next = RLB_NULL_INDEX;
745 }
746
rlb_init_table_entry(struct rlb_client_info * entry)747 static void rlb_init_table_entry(struct rlb_client_info *entry)
748 {
749 memset(entry, 0, sizeof(struct rlb_client_info));
750 rlb_init_table_entry_dst(entry);
751 rlb_init_table_entry_src(entry);
752 }
753
rlb_delete_table_entry_dst(struct bonding * bond,u32 index)754 static void rlb_delete_table_entry_dst(struct bonding *bond, u32 index)
755 {
756 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
757 u32 next_index = bond_info->rx_hashtbl[index].used_next;
758 u32 prev_index = bond_info->rx_hashtbl[index].used_prev;
759
760 if (index == bond_info->rx_hashtbl_used_head)
761 bond_info->rx_hashtbl_used_head = next_index;
762 if (prev_index != RLB_NULL_INDEX)
763 bond_info->rx_hashtbl[prev_index].used_next = next_index;
764 if (next_index != RLB_NULL_INDEX)
765 bond_info->rx_hashtbl[next_index].used_prev = prev_index;
766 }
767
768 /* unlink a rlb hash table entry from the src list */
rlb_src_unlink(struct bonding * bond,u32 index)769 static void rlb_src_unlink(struct bonding *bond, u32 index)
770 {
771 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
772 u32 next_index = bond_info->rx_hashtbl[index].src_next;
773 u32 prev_index = bond_info->rx_hashtbl[index].src_prev;
774
775 bond_info->rx_hashtbl[index].src_next = RLB_NULL_INDEX;
776 bond_info->rx_hashtbl[index].src_prev = RLB_NULL_INDEX;
777
778 if (next_index != RLB_NULL_INDEX)
779 bond_info->rx_hashtbl[next_index].src_prev = prev_index;
780
781 if (prev_index == RLB_NULL_INDEX)
782 return;
783
784 /* is prev_index pointing to the head of this list? */
785 if (bond_info->rx_hashtbl[prev_index].src_first == index)
786 bond_info->rx_hashtbl[prev_index].src_first = next_index;
787 else
788 bond_info->rx_hashtbl[prev_index].src_next = next_index;
789
790 }
791
rlb_delete_table_entry(struct bonding * bond,u32 index)792 static void rlb_delete_table_entry(struct bonding *bond, u32 index)
793 {
794 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
795 struct rlb_client_info *entry = &(bond_info->rx_hashtbl[index]);
796
797 rlb_delete_table_entry_dst(bond, index);
798 rlb_init_table_entry_dst(entry);
799
800 rlb_src_unlink(bond, index);
801 }
802
803 /* add the rx_hashtbl[ip_dst_hash] entry to the list
804 * of entries with identical ip_src_hash
805 */
rlb_src_link(struct bonding * bond,u32 ip_src_hash,u32 ip_dst_hash)806 static void rlb_src_link(struct bonding *bond, u32 ip_src_hash, u32 ip_dst_hash)
807 {
808 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
809 u32 next;
810
811 bond_info->rx_hashtbl[ip_dst_hash].src_prev = ip_src_hash;
812 next = bond_info->rx_hashtbl[ip_src_hash].src_first;
813 bond_info->rx_hashtbl[ip_dst_hash].src_next = next;
814 if (next != RLB_NULL_INDEX)
815 bond_info->rx_hashtbl[next].src_prev = ip_dst_hash;
816 bond_info->rx_hashtbl[ip_src_hash].src_first = ip_dst_hash;
817 }
818
819 /* deletes all rx_hashtbl entries with arp->ip_src if their mac_src does
820 * not match arp->mac_src
821 */
rlb_purge_src_ip(struct bonding * bond,struct arp_pkt * arp)822 static void rlb_purge_src_ip(struct bonding *bond, struct arp_pkt *arp)
823 {
824 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
825 u32 ip_src_hash = _simple_hash((u8 *)&(arp->ip_src), sizeof(arp->ip_src));
826 u32 index;
827
828 spin_lock_bh(&bond->mode_lock);
829
830 index = bond_info->rx_hashtbl[ip_src_hash].src_first;
831 while (index != RLB_NULL_INDEX) {
832 struct rlb_client_info *entry = &(bond_info->rx_hashtbl[index]);
833 u32 next_index = entry->src_next;
834
835 if (entry->ip_src == arp->ip_src &&
836 !ether_addr_equal_64bits(arp->mac_src, entry->mac_src))
837 rlb_delete_table_entry(bond, index);
838 index = next_index;
839 }
840 spin_unlock_bh(&bond->mode_lock);
841 }
842
rlb_initialize(struct bonding * bond)843 static int rlb_initialize(struct bonding *bond)
844 {
845 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
846 struct rlb_client_info *new_hashtbl;
847 int size = RLB_HASH_TABLE_SIZE * sizeof(struct rlb_client_info);
848 int i;
849
850 new_hashtbl = kmalloc(size, GFP_KERNEL);
851 if (!new_hashtbl)
852 return -1;
853
854 spin_lock_bh(&bond->mode_lock);
855
856 bond_info->rx_hashtbl = new_hashtbl;
857
858 bond_info->rx_hashtbl_used_head = RLB_NULL_INDEX;
859
860 for (i = 0; i < RLB_HASH_TABLE_SIZE; i++)
861 rlb_init_table_entry(bond_info->rx_hashtbl + i);
862
863 spin_unlock_bh(&bond->mode_lock);
864
865 /* register to receive ARPs */
866 bond->recv_probe = rlb_arp_recv;
867
868 return 0;
869 }
870
rlb_deinitialize(struct bonding * bond)871 static void rlb_deinitialize(struct bonding *bond)
872 {
873 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
874
875 spin_lock_bh(&bond->mode_lock);
876
877 kfree(bond_info->rx_hashtbl);
878 bond_info->rx_hashtbl = NULL;
879 bond_info->rx_hashtbl_used_head = RLB_NULL_INDEX;
880
881 spin_unlock_bh(&bond->mode_lock);
882 }
883
rlb_clear_vlan(struct bonding * bond,unsigned short vlan_id)884 static void rlb_clear_vlan(struct bonding *bond, unsigned short vlan_id)
885 {
886 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
887 u32 curr_index;
888
889 spin_lock_bh(&bond->mode_lock);
890
891 curr_index = bond_info->rx_hashtbl_used_head;
892 while (curr_index != RLB_NULL_INDEX) {
893 struct rlb_client_info *curr = &(bond_info->rx_hashtbl[curr_index]);
894 u32 next_index = bond_info->rx_hashtbl[curr_index].used_next;
895
896 if (curr->vlan_id == vlan_id)
897 rlb_delete_table_entry(bond, curr_index);
898
899 curr_index = next_index;
900 }
901
902 spin_unlock_bh(&bond->mode_lock);
903 }
904
905 /*********************** tlb/rlb shared functions *********************/
906
alb_send_lp_vid(struct slave * slave,u8 mac_addr[],__be16 vlan_proto,u16 vid)907 static void alb_send_lp_vid(struct slave *slave, u8 mac_addr[],
908 __be16 vlan_proto, u16 vid)
909 {
910 struct learning_pkt pkt;
911 struct sk_buff *skb;
912 int size = sizeof(struct learning_pkt);
913
914 memset(&pkt, 0, size);
915 ether_addr_copy(pkt.mac_dst, mac_addr);
916 ether_addr_copy(pkt.mac_src, mac_addr);
917 pkt.type = cpu_to_be16(ETH_P_LOOPBACK);
918
919 skb = dev_alloc_skb(size);
920 if (!skb)
921 return;
922
923 skb_put_data(skb, &pkt, size);
924
925 skb_reset_mac_header(skb);
926 skb->network_header = skb->mac_header + ETH_HLEN;
927 skb->protocol = pkt.type;
928 skb->priority = TC_PRIO_CONTROL;
929 skb->dev = slave->dev;
930
931 slave_dbg(slave->bond->dev, slave->dev,
932 "Send learning packet: mac %pM vlan %d\n", mac_addr, vid);
933
934 if (vid)
935 __vlan_hwaccel_put_tag(skb, vlan_proto, vid);
936
937 dev_queue_xmit(skb);
938 }
939
940 struct alb_walk_data {
941 struct bonding *bond;
942 struct slave *slave;
943 u8 *mac_addr;
944 bool strict_match;
945 };
946
alb_upper_dev_walk(struct net_device * upper,struct netdev_nested_priv * priv)947 static int alb_upper_dev_walk(struct net_device *upper,
948 struct netdev_nested_priv *priv)
949 {
950 struct alb_walk_data *data = (struct alb_walk_data *)priv->data;
951 bool strict_match = data->strict_match;
952 struct bonding *bond = data->bond;
953 struct slave *slave = data->slave;
954 u8 *mac_addr = data->mac_addr;
955 struct bond_vlan_tag *tags;
956
957 if (is_vlan_dev(upper) &&
958 bond->dev->lower_level == upper->lower_level - 1) {
959 if (upper->addr_assign_type == NET_ADDR_STOLEN) {
960 alb_send_lp_vid(slave, mac_addr,
961 vlan_dev_vlan_proto(upper),
962 vlan_dev_vlan_id(upper));
963 } else {
964 alb_send_lp_vid(slave, upper->dev_addr,
965 vlan_dev_vlan_proto(upper),
966 vlan_dev_vlan_id(upper));
967 }
968 }
969
970 /* If this is a macvlan device, then only send updates
971 * when strict_match is turned off.
972 */
973 if (netif_is_macvlan(upper) && !strict_match) {
974 tags = bond_verify_device_path(bond->dev, upper, 0);
975 if (IS_ERR_OR_NULL(tags))
976 return -ENOMEM;
977
978 alb_send_lp_vid(slave, upper->dev_addr,
979 tags[0].vlan_proto, tags[0].vlan_id);
980 kfree(tags);
981 }
982
983 return 0;
984 }
985
alb_send_learning_packets(struct slave * slave,u8 mac_addr[],bool strict_match)986 static void alb_send_learning_packets(struct slave *slave, u8 mac_addr[],
987 bool strict_match)
988 {
989 struct bonding *bond = bond_get_bond_by_slave(slave);
990 struct netdev_nested_priv priv;
991 struct alb_walk_data data = {
992 .strict_match = strict_match,
993 .mac_addr = mac_addr,
994 .slave = slave,
995 .bond = bond,
996 };
997
998 priv.data = (void *)&data;
999 /* send untagged */
1000 alb_send_lp_vid(slave, mac_addr, 0, 0);
1001
1002 /* loop through all devices and see if we need to send a packet
1003 * for that device.
1004 */
1005 rcu_read_lock();
1006 netdev_walk_all_upper_dev_rcu(bond->dev, alb_upper_dev_walk, &priv);
1007 rcu_read_unlock();
1008 }
1009
alb_set_slave_mac_addr(struct slave * slave,u8 addr[],unsigned int len)1010 static int alb_set_slave_mac_addr(struct slave *slave, u8 addr[],
1011 unsigned int len)
1012 {
1013 struct net_device *dev = slave->dev;
1014 struct sockaddr_storage ss;
1015
1016 if (BOND_MODE(slave->bond) == BOND_MODE_TLB) {
1017 memcpy(dev->dev_addr, addr, len);
1018 return 0;
1019 }
1020
1021 /* for rlb each slave must have a unique hw mac addresses so that
1022 * each slave will receive packets destined to a different mac
1023 */
1024 memcpy(ss.__data, addr, len);
1025 ss.ss_family = dev->type;
1026 if (dev_set_mac_address(dev, (struct sockaddr *)&ss, NULL)) {
1027 slave_err(slave->bond->dev, dev, "dev_set_mac_address on slave failed! ALB mode requires that the base driver support setting the hw address also when the network device's interface is open\n");
1028 return -EOPNOTSUPP;
1029 }
1030 return 0;
1031 }
1032
1033 /* Swap MAC addresses between two slaves.
1034 *
1035 * Called with RTNL held, and no other locks.
1036 */
alb_swap_mac_addr(struct slave * slave1,struct slave * slave2)1037 static void alb_swap_mac_addr(struct slave *slave1, struct slave *slave2)
1038 {
1039 u8 tmp_mac_addr[MAX_ADDR_LEN];
1040
1041 bond_hw_addr_copy(tmp_mac_addr, slave1->dev->dev_addr,
1042 slave1->dev->addr_len);
1043 alb_set_slave_mac_addr(slave1, slave2->dev->dev_addr,
1044 slave2->dev->addr_len);
1045 alb_set_slave_mac_addr(slave2, tmp_mac_addr,
1046 slave1->dev->addr_len);
1047
1048 }
1049
1050 /* Send learning packets after MAC address swap.
1051 *
1052 * Called with RTNL and no other locks
1053 */
alb_fasten_mac_swap(struct bonding * bond,struct slave * slave1,struct slave * slave2)1054 static void alb_fasten_mac_swap(struct bonding *bond, struct slave *slave1,
1055 struct slave *slave2)
1056 {
1057 int slaves_state_differ = (bond_slave_can_tx(slave1) != bond_slave_can_tx(slave2));
1058 struct slave *disabled_slave = NULL;
1059
1060 ASSERT_RTNL();
1061
1062 /* fasten the change in the switch */
1063 if (bond_slave_can_tx(slave1)) {
1064 alb_send_learning_packets(slave1, slave1->dev->dev_addr, false);
1065 if (bond->alb_info.rlb_enabled) {
1066 /* inform the clients that the mac address
1067 * has changed
1068 */
1069 rlb_req_update_slave_clients(bond, slave1);
1070 }
1071 } else {
1072 disabled_slave = slave1;
1073 }
1074
1075 if (bond_slave_can_tx(slave2)) {
1076 alb_send_learning_packets(slave2, slave2->dev->dev_addr, false);
1077 if (bond->alb_info.rlb_enabled) {
1078 /* inform the clients that the mac address
1079 * has changed
1080 */
1081 rlb_req_update_slave_clients(bond, slave2);
1082 }
1083 } else {
1084 disabled_slave = slave2;
1085 }
1086
1087 if (bond->alb_info.rlb_enabled && slaves_state_differ) {
1088 /* A disabled slave was assigned an active mac addr */
1089 rlb_teach_disabled_mac_on_primary(bond,
1090 disabled_slave->dev->dev_addr);
1091 }
1092 }
1093
1094 /**
1095 * alb_change_hw_addr_on_detach
1096 * @bond: bonding we're working on
1097 * @slave: the slave that was just detached
1098 *
1099 * We assume that @slave was already detached from the slave list.
1100 *
1101 * If @slave's permanent hw address is different both from its current
1102 * address and from @bond's address, then somewhere in the bond there's
1103 * a slave that has @slave's permanet address as its current address.
1104 * We'll make sure that slave no longer uses @slave's permanent address.
1105 *
1106 * Caller must hold RTNL and no other locks
1107 */
alb_change_hw_addr_on_detach(struct bonding * bond,struct slave * slave)1108 static void alb_change_hw_addr_on_detach(struct bonding *bond, struct slave *slave)
1109 {
1110 int perm_curr_diff;
1111 int perm_bond_diff;
1112 struct slave *found_slave;
1113
1114 perm_curr_diff = !ether_addr_equal_64bits(slave->perm_hwaddr,
1115 slave->dev->dev_addr);
1116 perm_bond_diff = !ether_addr_equal_64bits(slave->perm_hwaddr,
1117 bond->dev->dev_addr);
1118
1119 if (perm_curr_diff && perm_bond_diff) {
1120 found_slave = bond_slave_has_mac(bond, slave->perm_hwaddr);
1121
1122 if (found_slave) {
1123 alb_swap_mac_addr(slave, found_slave);
1124 alb_fasten_mac_swap(bond, slave, found_slave);
1125 }
1126 }
1127 }
1128
1129 /**
1130 * alb_handle_addr_collision_on_attach
1131 * @bond: bonding we're working on
1132 * @slave: the slave that was just attached
1133 *
1134 * checks uniqueness of slave's mac address and handles the case the
1135 * new slave uses the bonds mac address.
1136 *
1137 * If the permanent hw address of @slave is @bond's hw address, we need to
1138 * find a different hw address to give @slave, that isn't in use by any other
1139 * slave in the bond. This address must be, of course, one of the permanent
1140 * addresses of the other slaves.
1141 *
1142 * We go over the slave list, and for each slave there we compare its
1143 * permanent hw address with the current address of all the other slaves.
1144 * If no match was found, then we've found a slave with a permanent address
1145 * that isn't used by any other slave in the bond, so we can assign it to
1146 * @slave.
1147 *
1148 * assumption: this function is called before @slave is attached to the
1149 * bond slave list.
1150 */
alb_handle_addr_collision_on_attach(struct bonding * bond,struct slave * slave)1151 static int alb_handle_addr_collision_on_attach(struct bonding *bond, struct slave *slave)
1152 {
1153 struct slave *has_bond_addr = rcu_access_pointer(bond->curr_active_slave);
1154 struct slave *tmp_slave1, *free_mac_slave = NULL;
1155 struct list_head *iter;
1156
1157 if (!bond_has_slaves(bond)) {
1158 /* this is the first slave */
1159 return 0;
1160 }
1161
1162 /* if slave's mac address differs from bond's mac address
1163 * check uniqueness of slave's mac address against the other
1164 * slaves in the bond.
1165 */
1166 if (!ether_addr_equal_64bits(slave->perm_hwaddr, bond->dev->dev_addr)) {
1167 if (!bond_slave_has_mac(bond, slave->dev->dev_addr))
1168 return 0;
1169
1170 /* Try setting slave mac to bond address and fall-through
1171 * to code handling that situation below...
1172 */
1173 alb_set_slave_mac_addr(slave, bond->dev->dev_addr,
1174 bond->dev->addr_len);
1175 }
1176
1177 /* The slave's address is equal to the address of the bond.
1178 * Search for a spare address in the bond for this slave.
1179 */
1180 bond_for_each_slave(bond, tmp_slave1, iter) {
1181 if (!bond_slave_has_mac(bond, tmp_slave1->perm_hwaddr)) {
1182 /* no slave has tmp_slave1's perm addr
1183 * as its curr addr
1184 */
1185 free_mac_slave = tmp_slave1;
1186 break;
1187 }
1188
1189 if (!has_bond_addr) {
1190 if (ether_addr_equal_64bits(tmp_slave1->dev->dev_addr,
1191 bond->dev->dev_addr)) {
1192
1193 has_bond_addr = tmp_slave1;
1194 }
1195 }
1196 }
1197
1198 if (free_mac_slave) {
1199 alb_set_slave_mac_addr(slave, free_mac_slave->perm_hwaddr,
1200 free_mac_slave->dev->addr_len);
1201
1202 slave_warn(bond->dev, slave->dev, "the slave hw address is in use by the bond; giving it the hw address of %s\n",
1203 free_mac_slave->dev->name);
1204
1205 } else if (has_bond_addr) {
1206 slave_err(bond->dev, slave->dev, "the slave hw address is in use by the bond; couldn't find a slave with a free hw address to give it (this should not have happened)\n");
1207 return -EFAULT;
1208 }
1209
1210 return 0;
1211 }
1212
1213 /**
1214 * alb_set_mac_address
1215 * @bond: bonding we're working on
1216 * @addr: MAC address to set
1217 *
1218 * In TLB mode all slaves are configured to the bond's hw address, but set
1219 * their dev_addr field to different addresses (based on their permanent hw
1220 * addresses).
1221 *
1222 * For each slave, this function sets the interface to the new address and then
1223 * changes its dev_addr field to its previous value.
1224 *
1225 * Unwinding assumes bond's mac address has not yet changed.
1226 */
alb_set_mac_address(struct bonding * bond,void * addr)1227 static int alb_set_mac_address(struct bonding *bond, void *addr)
1228 {
1229 struct slave *slave, *rollback_slave;
1230 struct list_head *iter;
1231 struct sockaddr_storage ss;
1232 char tmp_addr[MAX_ADDR_LEN];
1233 int res;
1234
1235 if (bond->alb_info.rlb_enabled)
1236 return 0;
1237
1238 bond_for_each_slave(bond, slave, iter) {
1239 /* save net_device's current hw address */
1240 bond_hw_addr_copy(tmp_addr, slave->dev->dev_addr,
1241 slave->dev->addr_len);
1242
1243 res = dev_set_mac_address(slave->dev, addr, NULL);
1244
1245 /* restore net_device's hw address */
1246 bond_hw_addr_copy(slave->dev->dev_addr, tmp_addr,
1247 slave->dev->addr_len);
1248
1249 if (res)
1250 goto unwind;
1251 }
1252
1253 return 0;
1254
1255 unwind:
1256 memcpy(ss.__data, bond->dev->dev_addr, bond->dev->addr_len);
1257 ss.ss_family = bond->dev->type;
1258
1259 /* unwind from head to the slave that failed */
1260 bond_for_each_slave(bond, rollback_slave, iter) {
1261 if (rollback_slave == slave)
1262 break;
1263 bond_hw_addr_copy(tmp_addr, rollback_slave->dev->dev_addr,
1264 rollback_slave->dev->addr_len);
1265 dev_set_mac_address(rollback_slave->dev,
1266 (struct sockaddr *)&ss, NULL);
1267 bond_hw_addr_copy(rollback_slave->dev->dev_addr, tmp_addr,
1268 rollback_slave->dev->addr_len);
1269 }
1270
1271 return res;
1272 }
1273
1274 /************************ exported alb functions ************************/
1275
bond_alb_initialize(struct bonding * bond,int rlb_enabled)1276 int bond_alb_initialize(struct bonding *bond, int rlb_enabled)
1277 {
1278 int res;
1279
1280 res = tlb_initialize(bond);
1281 if (res)
1282 return res;
1283
1284 if (rlb_enabled) {
1285 res = rlb_initialize(bond);
1286 if (res) {
1287 tlb_deinitialize(bond);
1288 return res;
1289 }
1290 bond->alb_info.rlb_enabled = 1;
1291 } else {
1292 bond->alb_info.rlb_enabled = 0;
1293 }
1294
1295 return 0;
1296 }
1297
bond_alb_deinitialize(struct bonding * bond)1298 void bond_alb_deinitialize(struct bonding *bond)
1299 {
1300 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
1301
1302 tlb_deinitialize(bond);
1303
1304 if (bond_info->rlb_enabled)
1305 rlb_deinitialize(bond);
1306 }
1307
bond_do_alb_xmit(struct sk_buff * skb,struct bonding * bond,struct slave * tx_slave)1308 static netdev_tx_t bond_do_alb_xmit(struct sk_buff *skb, struct bonding *bond,
1309 struct slave *tx_slave)
1310 {
1311 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
1312 struct ethhdr *eth_data = eth_hdr(skb);
1313
1314 if (!tx_slave) {
1315 /* unbalanced or unassigned, send through primary */
1316 tx_slave = rcu_dereference(bond->curr_active_slave);
1317 if (bond->params.tlb_dynamic_lb)
1318 bond_info->unbalanced_load += skb->len;
1319 }
1320
1321 if (tx_slave && bond_slave_can_tx(tx_slave)) {
1322 if (tx_slave != rcu_access_pointer(bond->curr_active_slave)) {
1323 ether_addr_copy(eth_data->h_source,
1324 tx_slave->dev->dev_addr);
1325 }
1326
1327 return bond_dev_queue_xmit(bond, skb, tx_slave->dev);
1328 }
1329
1330 if (tx_slave && bond->params.tlb_dynamic_lb) {
1331 spin_lock(&bond->mode_lock);
1332 __tlb_clear_slave(bond, tx_slave, 0);
1333 spin_unlock(&bond->mode_lock);
1334 }
1335
1336 /* no suitable interface, frame not sent */
1337 return bond_tx_drop(bond->dev, skb);
1338 }
1339
bond_xmit_tlb_slave_get(struct bonding * bond,struct sk_buff * skb)1340 struct slave *bond_xmit_tlb_slave_get(struct bonding *bond,
1341 struct sk_buff *skb)
1342 {
1343 struct slave *tx_slave = NULL;
1344 struct ethhdr *eth_data;
1345 u32 hash_index;
1346
1347 skb_reset_mac_header(skb);
1348 eth_data = eth_hdr(skb);
1349
1350 /* Do not TX balance any multicast or broadcast */
1351 if (!is_multicast_ether_addr(eth_data->h_dest)) {
1352 switch (skb->protocol) {
1353 case htons(ETH_P_IP):
1354 case htons(ETH_P_IPV6):
1355 hash_index = bond_xmit_hash(bond, skb);
1356 if (bond->params.tlb_dynamic_lb) {
1357 tx_slave = tlb_choose_channel(bond,
1358 hash_index & 0xFF,
1359 skb->len);
1360 } else {
1361 struct bond_up_slave *slaves;
1362 unsigned int count;
1363
1364 slaves = rcu_dereference(bond->usable_slaves);
1365 count = slaves ? READ_ONCE(slaves->count) : 0;
1366 if (likely(count))
1367 tx_slave = slaves->arr[hash_index %
1368 count];
1369 }
1370 break;
1371 }
1372 }
1373 return tx_slave;
1374 }
1375
bond_tlb_xmit(struct sk_buff * skb,struct net_device * bond_dev)1376 netdev_tx_t bond_tlb_xmit(struct sk_buff *skb, struct net_device *bond_dev)
1377 {
1378 struct bonding *bond = netdev_priv(bond_dev);
1379 struct slave *tx_slave;
1380
1381 tx_slave = bond_xmit_tlb_slave_get(bond, skb);
1382 return bond_do_alb_xmit(skb, bond, tx_slave);
1383 }
1384
bond_xmit_alb_slave_get(struct bonding * bond,struct sk_buff * skb)1385 struct slave *bond_xmit_alb_slave_get(struct bonding *bond,
1386 struct sk_buff *skb)
1387 {
1388 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
1389 static const __be32 ip_bcast = htonl(0xffffffff);
1390 struct slave *tx_slave = NULL;
1391 const u8 *hash_start = NULL;
1392 bool do_tx_balance = true;
1393 struct ethhdr *eth_data;
1394 u32 hash_index = 0;
1395 int hash_size = 0;
1396
1397 skb_reset_mac_header(skb);
1398 eth_data = eth_hdr(skb);
1399
1400 switch (ntohs(skb->protocol)) {
1401 case ETH_P_IP: {
1402 const struct iphdr *iph;
1403
1404 if (is_broadcast_ether_addr(eth_data->h_dest) ||
1405 !pskb_network_may_pull(skb, sizeof(*iph))) {
1406 do_tx_balance = false;
1407 break;
1408 }
1409 iph = ip_hdr(skb);
1410 if (iph->daddr == ip_bcast || iph->protocol == IPPROTO_IGMP) {
1411 do_tx_balance = false;
1412 break;
1413 }
1414 hash_start = (char *)&(iph->daddr);
1415 hash_size = sizeof(iph->daddr);
1416 break;
1417 }
1418 case ETH_P_IPV6: {
1419 const struct ipv6hdr *ip6hdr;
1420
1421 /* IPv6 doesn't really use broadcast mac address, but leave
1422 * that here just in case.
1423 */
1424 if (is_broadcast_ether_addr(eth_data->h_dest)) {
1425 do_tx_balance = false;
1426 break;
1427 }
1428
1429 /* IPv6 uses all-nodes multicast as an equivalent to
1430 * broadcasts in IPv4.
1431 */
1432 if (ether_addr_equal_64bits(eth_data->h_dest, mac_v6_allmcast)) {
1433 do_tx_balance = false;
1434 break;
1435 }
1436
1437 if (!pskb_network_may_pull(skb, sizeof(*ip6hdr))) {
1438 do_tx_balance = false;
1439 break;
1440 }
1441 /* Additionally, DAD probes should not be tx-balanced as that
1442 * will lead to false positives for duplicate addresses and
1443 * prevent address configuration from working.
1444 */
1445 ip6hdr = ipv6_hdr(skb);
1446 if (ipv6_addr_any(&ip6hdr->saddr)) {
1447 do_tx_balance = false;
1448 break;
1449 }
1450
1451 hash_start = (char *)&ip6hdr->daddr;
1452 hash_size = sizeof(ip6hdr->daddr);
1453 break;
1454 }
1455 case ETH_P_ARP:
1456 do_tx_balance = false;
1457 if (bond_info->rlb_enabled)
1458 tx_slave = rlb_arp_xmit(skb, bond);
1459 break;
1460 default:
1461 do_tx_balance = false;
1462 break;
1463 }
1464
1465 if (do_tx_balance) {
1466 if (bond->params.tlb_dynamic_lb) {
1467 hash_index = _simple_hash(hash_start, hash_size);
1468 tx_slave = tlb_choose_channel(bond, hash_index, skb->len);
1469 } else {
1470 /*
1471 * do_tx_balance means we are free to select the tx_slave
1472 * So we do exactly what tlb would do for hash selection
1473 */
1474
1475 struct bond_up_slave *slaves;
1476 unsigned int count;
1477
1478 slaves = rcu_dereference(bond->usable_slaves);
1479 count = slaves ? READ_ONCE(slaves->count) : 0;
1480 if (likely(count))
1481 tx_slave = slaves->arr[bond_xmit_hash(bond, skb) %
1482 count];
1483 }
1484 }
1485 return tx_slave;
1486 }
1487
bond_alb_xmit(struct sk_buff * skb,struct net_device * bond_dev)1488 netdev_tx_t bond_alb_xmit(struct sk_buff *skb, struct net_device *bond_dev)
1489 {
1490 struct bonding *bond = netdev_priv(bond_dev);
1491 struct slave *tx_slave = NULL;
1492
1493 tx_slave = bond_xmit_alb_slave_get(bond, skb);
1494 return bond_do_alb_xmit(skb, bond, tx_slave);
1495 }
1496
bond_alb_monitor(struct work_struct * work)1497 void bond_alb_monitor(struct work_struct *work)
1498 {
1499 struct bonding *bond = container_of(work, struct bonding,
1500 alb_work.work);
1501 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
1502 struct list_head *iter;
1503 struct slave *slave;
1504
1505 if (!bond_has_slaves(bond)) {
1506 atomic_set(&bond_info->tx_rebalance_counter, 0);
1507 bond_info->lp_counter = 0;
1508 goto re_arm;
1509 }
1510
1511 rcu_read_lock();
1512
1513 atomic_inc(&bond_info->tx_rebalance_counter);
1514 bond_info->lp_counter++;
1515
1516 /* send learning packets */
1517 if (bond_info->lp_counter >= BOND_ALB_LP_TICKS(bond)) {
1518 bool strict_match;
1519
1520 bond_for_each_slave_rcu(bond, slave, iter) {
1521 /* If updating current_active, use all currently
1522 * user mac addresses (!strict_match). Otherwise, only
1523 * use mac of the slave device.
1524 * In RLB mode, we always use strict matches.
1525 */
1526 strict_match = (slave != rcu_access_pointer(bond->curr_active_slave) ||
1527 bond_info->rlb_enabled);
1528 alb_send_learning_packets(slave, slave->dev->dev_addr,
1529 strict_match);
1530 }
1531 bond_info->lp_counter = 0;
1532 }
1533
1534 /* rebalance tx traffic */
1535 if (atomic_read(&bond_info->tx_rebalance_counter) >= BOND_TLB_REBALANCE_TICKS) {
1536 bond_for_each_slave_rcu(bond, slave, iter) {
1537 tlb_clear_slave(bond, slave, 1);
1538 if (slave == rcu_access_pointer(bond->curr_active_slave)) {
1539 SLAVE_TLB_INFO(slave).load =
1540 bond_info->unbalanced_load /
1541 BOND_TLB_REBALANCE_INTERVAL;
1542 bond_info->unbalanced_load = 0;
1543 }
1544 }
1545 atomic_set(&bond_info->tx_rebalance_counter, 0);
1546 }
1547
1548 if (bond_info->rlb_enabled) {
1549 if (bond_info->primary_is_promisc &&
1550 (++bond_info->rlb_promisc_timeout_counter >= RLB_PROMISC_TIMEOUT)) {
1551
1552 /* dev_set_promiscuity requires rtnl and
1553 * nothing else. Avoid race with bond_close.
1554 */
1555 rcu_read_unlock();
1556 if (!rtnl_trylock())
1557 goto re_arm;
1558
1559 bond_info->rlb_promisc_timeout_counter = 0;
1560
1561 /* If the primary was set to promiscuous mode
1562 * because a slave was disabled then
1563 * it can now leave promiscuous mode.
1564 */
1565 dev_set_promiscuity(rtnl_dereference(bond->curr_active_slave)->dev,
1566 -1);
1567 bond_info->primary_is_promisc = 0;
1568
1569 rtnl_unlock();
1570 rcu_read_lock();
1571 }
1572
1573 if (bond_info->rlb_rebalance) {
1574 bond_info->rlb_rebalance = 0;
1575 rlb_rebalance(bond);
1576 }
1577
1578 /* check if clients need updating */
1579 if (bond_info->rx_ntt) {
1580 if (bond_info->rlb_update_delay_counter) {
1581 --bond_info->rlb_update_delay_counter;
1582 } else {
1583 rlb_update_rx_clients(bond);
1584 if (bond_info->rlb_update_retry_counter)
1585 --bond_info->rlb_update_retry_counter;
1586 else
1587 bond_info->rx_ntt = 0;
1588 }
1589 }
1590 }
1591 rcu_read_unlock();
1592 re_arm:
1593 queue_delayed_work(bond->wq, &bond->alb_work, alb_delta_in_ticks);
1594 }
1595
1596 /* assumption: called before the slave is attached to the bond
1597 * and not locked by the bond lock
1598 */
bond_alb_init_slave(struct bonding * bond,struct slave * slave)1599 int bond_alb_init_slave(struct bonding *bond, struct slave *slave)
1600 {
1601 int res;
1602
1603 res = alb_set_slave_mac_addr(slave, slave->perm_hwaddr,
1604 slave->dev->addr_len);
1605 if (res)
1606 return res;
1607
1608 res = alb_handle_addr_collision_on_attach(bond, slave);
1609 if (res)
1610 return res;
1611
1612 tlb_init_slave(slave);
1613
1614 /* order a rebalance ASAP */
1615 atomic_set(&bond->alb_info.tx_rebalance_counter,
1616 BOND_TLB_REBALANCE_TICKS);
1617
1618 if (bond->alb_info.rlb_enabled)
1619 bond->alb_info.rlb_rebalance = 1;
1620
1621 return 0;
1622 }
1623
1624 /* Remove slave from tlb and rlb hash tables, and fix up MAC addresses
1625 * if necessary.
1626 *
1627 * Caller must hold RTNL and no other locks
1628 */
bond_alb_deinit_slave(struct bonding * bond,struct slave * slave)1629 void bond_alb_deinit_slave(struct bonding *bond, struct slave *slave)
1630 {
1631 if (bond_has_slaves(bond))
1632 alb_change_hw_addr_on_detach(bond, slave);
1633
1634 tlb_clear_slave(bond, slave, 0);
1635
1636 if (bond->alb_info.rlb_enabled) {
1637 bond->alb_info.rx_slave = NULL;
1638 rlb_clear_slave(bond, slave);
1639 }
1640
1641 }
1642
bond_alb_handle_link_change(struct bonding * bond,struct slave * slave,char link)1643 void bond_alb_handle_link_change(struct bonding *bond, struct slave *slave, char link)
1644 {
1645 struct alb_bond_info *bond_info = &(BOND_ALB_INFO(bond));
1646
1647 if (link == BOND_LINK_DOWN) {
1648 tlb_clear_slave(bond, slave, 0);
1649 if (bond->alb_info.rlb_enabled)
1650 rlb_clear_slave(bond, slave);
1651 } else if (link == BOND_LINK_UP) {
1652 /* order a rebalance ASAP */
1653 atomic_set(&bond_info->tx_rebalance_counter,
1654 BOND_TLB_REBALANCE_TICKS);
1655 if (bond->alb_info.rlb_enabled) {
1656 bond->alb_info.rlb_rebalance = 1;
1657 /* If the updelay module parameter is smaller than the
1658 * forwarding delay of the switch the rebalance will
1659 * not work because the rebalance arp replies will
1660 * not be forwarded to the clients..
1661 */
1662 }
1663 }
1664
1665 if (bond_is_nondyn_tlb(bond)) {
1666 if (bond_update_slave_arr(bond, NULL))
1667 pr_err("Failed to build slave-array for TLB mode.\n");
1668 }
1669 }
1670
1671 /**
1672 * bond_alb_handle_active_change - assign new curr_active_slave
1673 * @bond: our bonding struct
1674 * @new_slave: new slave to assign
1675 *
1676 * Set the bond->curr_active_slave to @new_slave and handle
1677 * mac address swapping and promiscuity changes as needed.
1678 *
1679 * Caller must hold RTNL
1680 */
bond_alb_handle_active_change(struct bonding * bond,struct slave * new_slave)1681 void bond_alb_handle_active_change(struct bonding *bond, struct slave *new_slave)
1682 {
1683 struct slave *swap_slave;
1684 struct slave *curr_active;
1685
1686 curr_active = rtnl_dereference(bond->curr_active_slave);
1687 if (curr_active == new_slave)
1688 return;
1689
1690 if (curr_active && bond->alb_info.primary_is_promisc) {
1691 dev_set_promiscuity(curr_active->dev, -1);
1692 bond->alb_info.primary_is_promisc = 0;
1693 bond->alb_info.rlb_promisc_timeout_counter = 0;
1694 }
1695
1696 swap_slave = curr_active;
1697 rcu_assign_pointer(bond->curr_active_slave, new_slave);
1698
1699 if (!new_slave || !bond_has_slaves(bond))
1700 return;
1701
1702 /* set the new curr_active_slave to the bonds mac address
1703 * i.e. swap mac addresses of old curr_active_slave and new curr_active_slave
1704 */
1705 if (!swap_slave)
1706 swap_slave = bond_slave_has_mac(bond, bond->dev->dev_addr);
1707
1708 /* Arrange for swap_slave and new_slave to temporarily be
1709 * ignored so we can mess with their MAC addresses without
1710 * fear of interference from transmit activity.
1711 */
1712 if (swap_slave)
1713 tlb_clear_slave(bond, swap_slave, 1);
1714 tlb_clear_slave(bond, new_slave, 1);
1715
1716 /* in TLB mode, the slave might flip down/up with the old dev_addr,
1717 * and thus filter bond->dev_addr's packets, so force bond's mac
1718 */
1719 if (BOND_MODE(bond) == BOND_MODE_TLB) {
1720 struct sockaddr_storage ss;
1721 u8 tmp_addr[MAX_ADDR_LEN];
1722
1723 bond_hw_addr_copy(tmp_addr, new_slave->dev->dev_addr,
1724 new_slave->dev->addr_len);
1725
1726 bond_hw_addr_copy(ss.__data, bond->dev->dev_addr,
1727 bond->dev->addr_len);
1728 ss.ss_family = bond->dev->type;
1729 /* we don't care if it can't change its mac, best effort */
1730 dev_set_mac_address(new_slave->dev, (struct sockaddr *)&ss,
1731 NULL);
1732
1733 bond_hw_addr_copy(new_slave->dev->dev_addr, tmp_addr,
1734 new_slave->dev->addr_len);
1735 }
1736
1737 /* curr_active_slave must be set before calling alb_swap_mac_addr */
1738 if (swap_slave) {
1739 /* swap mac address */
1740 alb_swap_mac_addr(swap_slave, new_slave);
1741 alb_fasten_mac_swap(bond, swap_slave, new_slave);
1742 } else {
1743 /* set the new_slave to the bond mac address */
1744 alb_set_slave_mac_addr(new_slave, bond->dev->dev_addr,
1745 bond->dev->addr_len);
1746 alb_send_learning_packets(new_slave, bond->dev->dev_addr,
1747 false);
1748 }
1749 }
1750
1751 /* Called with RTNL */
bond_alb_set_mac_address(struct net_device * bond_dev,void * addr)1752 int bond_alb_set_mac_address(struct net_device *bond_dev, void *addr)
1753 {
1754 struct bonding *bond = netdev_priv(bond_dev);
1755 struct sockaddr_storage *ss = addr;
1756 struct slave *curr_active;
1757 struct slave *swap_slave;
1758 int res;
1759
1760 if (!is_valid_ether_addr(ss->__data))
1761 return -EADDRNOTAVAIL;
1762
1763 res = alb_set_mac_address(bond, addr);
1764 if (res)
1765 return res;
1766
1767 bond_hw_addr_copy(bond_dev->dev_addr, ss->__data, bond_dev->addr_len);
1768
1769 /* If there is no curr_active_slave there is nothing else to do.
1770 * Otherwise we'll need to pass the new address to it and handle
1771 * duplications.
1772 */
1773 curr_active = rtnl_dereference(bond->curr_active_slave);
1774 if (!curr_active)
1775 return 0;
1776
1777 swap_slave = bond_slave_has_mac(bond, bond_dev->dev_addr);
1778
1779 if (swap_slave) {
1780 alb_swap_mac_addr(swap_slave, curr_active);
1781 alb_fasten_mac_swap(bond, swap_slave, curr_active);
1782 } else {
1783 alb_set_slave_mac_addr(curr_active, bond_dev->dev_addr,
1784 bond_dev->addr_len);
1785
1786 alb_send_learning_packets(curr_active,
1787 bond_dev->dev_addr, false);
1788 if (bond->alb_info.rlb_enabled) {
1789 /* inform clients mac address has changed */
1790 rlb_req_update_slave_clients(bond, curr_active);
1791 }
1792 }
1793
1794 return 0;
1795 }
1796
bond_alb_clear_vlan(struct bonding * bond,unsigned short vlan_id)1797 void bond_alb_clear_vlan(struct bonding *bond, unsigned short vlan_id)
1798 {
1799 if (bond->alb_info.rlb_enabled)
1800 rlb_clear_vlan(bond, vlan_id);
1801 }
1802
1803