pm.c 29 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /* Multipath TCP
  3. *
  4. * Copyright (c) 2019, Intel Corporation.
  5. */
  6. #define pr_fmt(fmt) "MPTCP: " fmt
  7. #include <linux/rculist.h>
  8. #include <linux/spinlock.h>
  9. #include "protocol.h"
  10. #include "mib.h"
  11. #define ADD_ADDR_RETRANS_MAX 3
  12. struct mptcp_pm_add_entry {
  13. struct list_head list;
  14. struct mptcp_addr_info addr;
  15. u8 retrans_times;
  16. struct timer_list add_timer;
  17. struct mptcp_sock *sock;
  18. struct rcu_head rcu;
  19. };
  20. static DEFINE_SPINLOCK(mptcp_pm_list_lock);
  21. static LIST_HEAD(mptcp_pm_list);
  22. /* path manager helpers */
  23. /* if sk is ipv4 or ipv6_only allows only same-family local and remote addresses,
  24. * otherwise allow any matching local/remote pair
  25. */
  26. bool mptcp_pm_addr_families_match(const struct sock *sk,
  27. const struct mptcp_addr_info *loc,
  28. const struct mptcp_addr_info *rem)
  29. {
  30. bool mptcp_is_v4 = sk->sk_family == AF_INET;
  31. #if IS_ENABLED(CONFIG_MPTCP_IPV6)
  32. bool loc_is_v4 = loc->family == AF_INET || ipv6_addr_v4mapped(&loc->addr6);
  33. bool rem_is_v4 = rem->family == AF_INET || ipv6_addr_v4mapped(&rem->addr6);
  34. if (mptcp_is_v4)
  35. return loc_is_v4 && rem_is_v4;
  36. if (ipv6_only_sock(sk))
  37. return !loc_is_v4 && !rem_is_v4;
  38. return loc_is_v4 == rem_is_v4;
  39. #else
  40. return mptcp_is_v4 && loc->family == AF_INET && rem->family == AF_INET;
  41. #endif
  42. }
  43. bool mptcp_addresses_equal(const struct mptcp_addr_info *a,
  44. const struct mptcp_addr_info *b, bool use_port)
  45. {
  46. bool addr_equals = false;
  47. if (a->family == b->family) {
  48. if (a->family == AF_INET)
  49. addr_equals = a->addr.s_addr == b->addr.s_addr;
  50. #if IS_ENABLED(CONFIG_MPTCP_IPV6)
  51. else
  52. addr_equals = ipv6_addr_equal(&a->addr6, &b->addr6);
  53. } else if (a->family == AF_INET) {
  54. if (ipv6_addr_v4mapped(&b->addr6))
  55. addr_equals = a->addr.s_addr == b->addr6.s6_addr32[3];
  56. } else if (b->family == AF_INET) {
  57. if (ipv6_addr_v4mapped(&a->addr6))
  58. addr_equals = a->addr6.s6_addr32[3] == b->addr.s_addr;
  59. #endif
  60. }
  61. if (!addr_equals)
  62. return false;
  63. if (!use_port)
  64. return true;
  65. return a->port == b->port;
  66. }
  67. void mptcp_local_address(const struct sock_common *skc,
  68. struct mptcp_addr_info *addr)
  69. {
  70. addr->family = skc->skc_family;
  71. addr->port = htons(skc->skc_num);
  72. if (addr->family == AF_INET)
  73. addr->addr.s_addr = skc->skc_rcv_saddr;
  74. #if IS_ENABLED(CONFIG_MPTCP_IPV6)
  75. else if (addr->family == AF_INET6)
  76. addr->addr6 = skc->skc_v6_rcv_saddr;
  77. #endif
  78. }
  79. void mptcp_remote_address(const struct sock_common *skc,
  80. struct mptcp_addr_info *addr)
  81. {
  82. addr->family = skc->skc_family;
  83. addr->port = skc->skc_dport;
  84. if (addr->family == AF_INET)
  85. addr->addr.s_addr = skc->skc_daddr;
  86. #if IS_ENABLED(CONFIG_MPTCP_IPV6)
  87. else if (addr->family == AF_INET6)
  88. addr->addr6 = skc->skc_v6_daddr;
  89. #endif
  90. }
  91. static bool mptcp_pm_is_init_remote_addr(struct mptcp_sock *msk,
  92. const struct mptcp_addr_info *remote)
  93. {
  94. struct mptcp_addr_info mpc_remote;
  95. mptcp_remote_address((struct sock_common *)msk, &mpc_remote);
  96. return mptcp_addresses_equal(&mpc_remote, remote, remote->port);
  97. }
  98. bool mptcp_lookup_subflow_by_saddr(const struct list_head *list,
  99. const struct mptcp_addr_info *saddr)
  100. {
  101. struct mptcp_subflow_context *subflow;
  102. struct mptcp_addr_info cur;
  103. struct sock_common *skc;
  104. list_for_each_entry(subflow, list, node) {
  105. skc = (struct sock_common *)mptcp_subflow_tcp_sock(subflow);
  106. mptcp_local_address(skc, &cur);
  107. if (mptcp_addresses_equal(&cur, saddr, saddr->port))
  108. return true;
  109. }
  110. return false;
  111. }
  112. static struct mptcp_pm_add_entry *
  113. mptcp_lookup_anno_list_by_saddr(const struct mptcp_sock *msk,
  114. const struct mptcp_addr_info *addr)
  115. {
  116. struct mptcp_pm_add_entry *entry;
  117. lockdep_assert_held(&msk->pm.lock);
  118. list_for_each_entry(entry, &msk->pm.anno_list, list) {
  119. if (mptcp_addresses_equal(&entry->addr, addr, true))
  120. return entry;
  121. }
  122. return NULL;
  123. }
  124. bool mptcp_remove_anno_list_by_saddr(struct mptcp_sock *msk,
  125. const struct mptcp_addr_info *addr)
  126. {
  127. struct mptcp_pm_add_entry *entry;
  128. bool ret;
  129. entry = mptcp_pm_del_add_timer(msk, addr, false);
  130. ret = entry;
  131. kfree_rcu(entry, rcu);
  132. return ret;
  133. }
  134. bool mptcp_pm_sport_in_anno_list(struct mptcp_sock *msk, const struct sock *sk)
  135. {
  136. struct mptcp_pm_add_entry *entry;
  137. struct mptcp_addr_info saddr;
  138. bool ret = false;
  139. mptcp_local_address((struct sock_common *)sk, &saddr);
  140. spin_lock_bh(&msk->pm.lock);
  141. list_for_each_entry(entry, &msk->pm.anno_list, list) {
  142. if (mptcp_addresses_equal(&entry->addr, &saddr, true)) {
  143. ret = true;
  144. goto out;
  145. }
  146. }
  147. out:
  148. spin_unlock_bh(&msk->pm.lock);
  149. return ret;
  150. }
  151. static void __mptcp_pm_send_ack(struct mptcp_sock *msk,
  152. struct mptcp_subflow_context *subflow,
  153. bool prio, bool backup)
  154. {
  155. struct sock *ssk = mptcp_subflow_tcp_sock(subflow);
  156. bool slow;
  157. pr_debug("send ack for %s\n",
  158. prio ? "mp_prio" :
  159. (mptcp_pm_should_add_signal(msk) ? "add_addr" : "rm_addr"));
  160. slow = lock_sock_fast(ssk);
  161. if (prio) {
  162. subflow->send_mp_prio = 1;
  163. subflow->request_bkup = backup;
  164. }
  165. __mptcp_subflow_send_ack(ssk);
  166. unlock_sock_fast(ssk, slow);
  167. }
  168. void mptcp_pm_send_ack(struct mptcp_sock *msk,
  169. struct mptcp_subflow_context *subflow,
  170. bool prio, bool backup)
  171. {
  172. spin_unlock_bh(&msk->pm.lock);
  173. __mptcp_pm_send_ack(msk, subflow, prio, backup);
  174. spin_lock_bh(&msk->pm.lock);
  175. }
  176. static bool subflow_in_rm_list(const struct mptcp_subflow_context *subflow,
  177. const struct mptcp_rm_list *rm_list)
  178. {
  179. u8 i, id = subflow_get_local_id(subflow);
  180. for (i = 0; i < rm_list->nr; i++) {
  181. if (rm_list->ids[i] == id)
  182. return true;
  183. }
  184. return false;
  185. }
  186. static void
  187. mptcp_pm_addr_send_ack_avoid_list(struct mptcp_sock *msk,
  188. const struct mptcp_rm_list *rm_list)
  189. {
  190. struct mptcp_subflow_context *subflow, *stale = NULL, *same_id = NULL;
  191. msk_owned_by_me(msk);
  192. lockdep_assert_held(&msk->pm.lock);
  193. if (!mptcp_pm_should_add_signal(msk) &&
  194. !mptcp_pm_should_rm_signal(msk))
  195. return;
  196. mptcp_for_each_subflow(msk, subflow) {
  197. if (!__mptcp_subflow_active(subflow))
  198. continue;
  199. if (unlikely(subflow->stale)) {
  200. if (!stale)
  201. stale = subflow;
  202. } else if (unlikely(rm_list &&
  203. subflow_in_rm_list(subflow, rm_list))) {
  204. if (!same_id)
  205. same_id = subflow;
  206. } else {
  207. goto send_ack;
  208. }
  209. }
  210. if (same_id)
  211. subflow = same_id;
  212. else if (stale)
  213. subflow = stale;
  214. else
  215. return;
  216. send_ack:
  217. mptcp_pm_send_ack(msk, subflow, false, false);
  218. }
  219. void mptcp_pm_addr_send_ack(struct mptcp_sock *msk)
  220. {
  221. mptcp_pm_addr_send_ack_avoid_list(msk, NULL);
  222. }
  223. int mptcp_pm_mp_prio_send_ack(struct mptcp_sock *msk,
  224. struct mptcp_addr_info *addr,
  225. struct mptcp_addr_info *rem,
  226. u8 bkup)
  227. {
  228. struct mptcp_subflow_context *subflow;
  229. pr_debug("bkup=%d\n", bkup);
  230. mptcp_for_each_subflow(msk, subflow) {
  231. struct sock *ssk = mptcp_subflow_tcp_sock(subflow);
  232. struct mptcp_addr_info local, remote;
  233. mptcp_local_address((struct sock_common *)ssk, &local);
  234. if (!mptcp_addresses_equal(&local, addr, addr->port))
  235. continue;
  236. if (rem && rem->family != AF_UNSPEC) {
  237. mptcp_remote_address((struct sock_common *)ssk, &remote);
  238. if (!mptcp_addresses_equal(&remote, rem, rem->port))
  239. continue;
  240. }
  241. __mptcp_pm_send_ack(msk, subflow, true, bkup);
  242. return 0;
  243. }
  244. return -EINVAL;
  245. }
  246. static unsigned int mptcp_adjust_add_addr_timeout(struct mptcp_sock *msk)
  247. {
  248. const struct net *net = sock_net((struct sock *)msk);
  249. unsigned int rto = mptcp_get_add_addr_timeout(net);
  250. struct mptcp_subflow_context *subflow;
  251. unsigned int max = 0;
  252. mptcp_for_each_subflow(msk, subflow) {
  253. struct sock *ssk = mptcp_subflow_tcp_sock(subflow);
  254. struct inet_connection_sock *icsk = inet_csk(ssk);
  255. if (icsk->icsk_rto > max)
  256. max = icsk->icsk_rto;
  257. }
  258. if (max && max < rto)
  259. rto = max;
  260. return rto;
  261. }
  262. static void mptcp_pm_add_timer(struct timer_list *timer)
  263. {
  264. struct mptcp_pm_add_entry *entry = timer_container_of(entry, timer,
  265. add_timer);
  266. struct mptcp_sock *msk = entry->sock;
  267. struct sock *sk = (struct sock *)msk;
  268. unsigned int timeout;
  269. pr_debug("msk=%p\n", msk);
  270. if (!msk)
  271. return;
  272. if (inet_sk_state_load(sk) == TCP_CLOSE)
  273. return;
  274. if (!entry->addr.id)
  275. return;
  276. if (mptcp_pm_should_add_signal_addr(msk)) {
  277. sk_reset_timer(sk, timer, jiffies + TCP_RTO_MAX / 8);
  278. goto out;
  279. }
  280. timeout = mptcp_adjust_add_addr_timeout(msk);
  281. if (!timeout)
  282. goto out;
  283. spin_lock_bh(&msk->pm.lock);
  284. if (!mptcp_pm_should_add_signal_addr(msk)) {
  285. pr_debug("retransmit ADD_ADDR id=%d\n", entry->addr.id);
  286. mptcp_pm_announce_addr(msk, &entry->addr, false);
  287. mptcp_pm_add_addr_send_ack(msk);
  288. entry->retrans_times++;
  289. }
  290. if (entry->retrans_times < ADD_ADDR_RETRANS_MAX)
  291. sk_reset_timer(sk, timer,
  292. jiffies + (timeout << entry->retrans_times));
  293. spin_unlock_bh(&msk->pm.lock);
  294. if (entry->retrans_times == ADD_ADDR_RETRANS_MAX)
  295. mptcp_pm_subflow_established(msk);
  296. out:
  297. __sock_put(sk);
  298. }
  299. struct mptcp_pm_add_entry *
  300. mptcp_pm_del_add_timer(struct mptcp_sock *msk,
  301. const struct mptcp_addr_info *addr, bool check_id)
  302. {
  303. struct mptcp_pm_add_entry *entry;
  304. struct sock *sk = (struct sock *)msk;
  305. bool stop_timer = false;
  306. rcu_read_lock();
  307. spin_lock_bh(&msk->pm.lock);
  308. entry = mptcp_lookup_anno_list_by_saddr(msk, addr);
  309. if (entry && (!check_id || entry->addr.id == addr->id)) {
  310. entry->retrans_times = ADD_ADDR_RETRANS_MAX;
  311. stop_timer = true;
  312. }
  313. if (!check_id && entry)
  314. list_del(&entry->list);
  315. spin_unlock_bh(&msk->pm.lock);
  316. /* Note: entry might have been removed by another thread.
  317. * We hold rcu_read_lock() to ensure it is not freed under us.
  318. */
  319. if (stop_timer)
  320. sk_stop_timer_sync(sk, &entry->add_timer);
  321. rcu_read_unlock();
  322. return entry;
  323. }
  324. bool mptcp_pm_alloc_anno_list(struct mptcp_sock *msk,
  325. const struct mptcp_addr_info *addr)
  326. {
  327. struct mptcp_pm_add_entry *add_entry = NULL;
  328. struct sock *sk = (struct sock *)msk;
  329. unsigned int timeout;
  330. lockdep_assert_held(&msk->pm.lock);
  331. add_entry = mptcp_lookup_anno_list_by_saddr(msk, addr);
  332. if (add_entry) {
  333. if (WARN_ON_ONCE(mptcp_pm_is_kernel(msk)))
  334. return false;
  335. goto reset_timer;
  336. }
  337. add_entry = kmalloc_obj(*add_entry, GFP_ATOMIC);
  338. if (!add_entry)
  339. return false;
  340. list_add(&add_entry->list, &msk->pm.anno_list);
  341. add_entry->addr = *addr;
  342. add_entry->sock = msk;
  343. add_entry->retrans_times = 0;
  344. timer_setup(&add_entry->add_timer, mptcp_pm_add_timer, 0);
  345. reset_timer:
  346. timeout = mptcp_adjust_add_addr_timeout(msk);
  347. if (timeout)
  348. sk_reset_timer(sk, &add_entry->add_timer, jiffies + timeout);
  349. return true;
  350. }
  351. static void mptcp_pm_free_anno_list(struct mptcp_sock *msk)
  352. {
  353. struct mptcp_pm_add_entry *entry, *tmp;
  354. struct sock *sk = (struct sock *)msk;
  355. LIST_HEAD(free_list);
  356. pr_debug("msk=%p\n", msk);
  357. spin_lock_bh(&msk->pm.lock);
  358. list_splice_init(&msk->pm.anno_list, &free_list);
  359. spin_unlock_bh(&msk->pm.lock);
  360. list_for_each_entry_safe(entry, tmp, &free_list, list) {
  361. sk_stop_timer_sync(sk, &entry->add_timer);
  362. kfree_rcu(entry, rcu);
  363. }
  364. }
  365. /* path manager command handlers */
  366. int mptcp_pm_announce_addr(struct mptcp_sock *msk,
  367. const struct mptcp_addr_info *addr,
  368. bool echo)
  369. {
  370. u8 add_addr = READ_ONCE(msk->pm.addr_signal);
  371. pr_debug("msk=%p, local_id=%d, echo=%d\n", msk, addr->id, echo);
  372. lockdep_assert_held(&msk->pm.lock);
  373. if (add_addr &
  374. (echo ? BIT(MPTCP_ADD_ADDR_ECHO) : BIT(MPTCP_ADD_ADDR_SIGNAL))) {
  375. MPTCP_INC_STATS(sock_net((struct sock *)msk),
  376. echo ? MPTCP_MIB_ECHOADDTXDROP : MPTCP_MIB_ADDADDRTXDROP);
  377. return -EINVAL;
  378. }
  379. if (echo) {
  380. msk->pm.remote = *addr;
  381. add_addr |= BIT(MPTCP_ADD_ADDR_ECHO);
  382. } else {
  383. msk->pm.local = *addr;
  384. add_addr |= BIT(MPTCP_ADD_ADDR_SIGNAL);
  385. }
  386. WRITE_ONCE(msk->pm.addr_signal, add_addr);
  387. return 0;
  388. }
  389. int mptcp_pm_remove_addr(struct mptcp_sock *msk, const struct mptcp_rm_list *rm_list)
  390. {
  391. u8 rm_addr = READ_ONCE(msk->pm.addr_signal);
  392. pr_debug("msk=%p, rm_list_nr=%d\n", msk, rm_list->nr);
  393. if (rm_addr) {
  394. MPTCP_ADD_STATS(sock_net((struct sock *)msk),
  395. MPTCP_MIB_RMADDRTXDROP, rm_list->nr);
  396. return -EINVAL;
  397. }
  398. msk->pm.rm_list_tx = *rm_list;
  399. rm_addr |= BIT(MPTCP_RM_ADDR_SIGNAL);
  400. WRITE_ONCE(msk->pm.addr_signal, rm_addr);
  401. mptcp_pm_addr_send_ack_avoid_list(msk, rm_list);
  402. return 0;
  403. }
  404. /* path manager event handlers */
  405. void mptcp_pm_new_connection(struct mptcp_sock *msk, const struct sock *ssk, int server_side)
  406. {
  407. struct mptcp_pm_data *pm = &msk->pm;
  408. pr_debug("msk=%p, token=%u side=%d\n", msk, READ_ONCE(msk->token), server_side);
  409. WRITE_ONCE(pm->server_side, server_side);
  410. mptcp_event(MPTCP_EVENT_CREATED, msk, ssk, GFP_ATOMIC);
  411. }
  412. bool mptcp_pm_allow_new_subflow(struct mptcp_sock *msk)
  413. {
  414. struct mptcp_pm_data *pm = &msk->pm;
  415. unsigned int limit_extra_subflows;
  416. int ret = 0;
  417. if (mptcp_pm_is_userspace(msk)) {
  418. if (mptcp_userspace_pm_active(msk)) {
  419. spin_lock_bh(&pm->lock);
  420. pm->extra_subflows++;
  421. spin_unlock_bh(&pm->lock);
  422. return true;
  423. }
  424. return false;
  425. }
  426. limit_extra_subflows = mptcp_pm_get_limit_extra_subflows(msk);
  427. pr_debug("msk=%p subflows=%d max=%d allow=%d\n", msk,
  428. pm->extra_subflows, limit_extra_subflows,
  429. READ_ONCE(pm->accept_subflow));
  430. /* try to avoid acquiring the lock below */
  431. if (!READ_ONCE(pm->accept_subflow))
  432. return false;
  433. spin_lock_bh(&pm->lock);
  434. if (READ_ONCE(pm->accept_subflow)) {
  435. ret = pm->extra_subflows < limit_extra_subflows;
  436. if (ret && ++pm->extra_subflows == limit_extra_subflows)
  437. WRITE_ONCE(pm->accept_subflow, false);
  438. }
  439. spin_unlock_bh(&pm->lock);
  440. return ret;
  441. }
  442. /* return true if the new status bit is currently cleared, that is, this event
  443. * can be server, eventually by an already scheduled work
  444. */
  445. static bool mptcp_pm_schedule_work(struct mptcp_sock *msk,
  446. enum mptcp_pm_status new_status)
  447. {
  448. pr_debug("msk=%p status=%x new=%lx\n", msk, msk->pm.status,
  449. BIT(new_status));
  450. if (msk->pm.status & BIT(new_status))
  451. return false;
  452. msk->pm.status |= BIT(new_status);
  453. mptcp_schedule_work((struct sock *)msk);
  454. return true;
  455. }
  456. void mptcp_pm_fully_established(struct mptcp_sock *msk, const struct sock *ssk)
  457. {
  458. struct mptcp_pm_data *pm = &msk->pm;
  459. bool announce = false;
  460. pr_debug("msk=%p\n", msk);
  461. spin_lock_bh(&pm->lock);
  462. /* mptcp_pm_fully_established() can be invoked by multiple
  463. * racing paths - accept() and check_fully_established()
  464. * be sure to serve this event only once.
  465. */
  466. if (READ_ONCE(pm->work_pending) &&
  467. !(pm->status & BIT(MPTCP_PM_ALREADY_ESTABLISHED)))
  468. mptcp_pm_schedule_work(msk, MPTCP_PM_ESTABLISHED);
  469. if ((pm->status & BIT(MPTCP_PM_ALREADY_ESTABLISHED)) == 0)
  470. announce = true;
  471. pm->status |= BIT(MPTCP_PM_ALREADY_ESTABLISHED);
  472. spin_unlock_bh(&pm->lock);
  473. if (announce)
  474. mptcp_event(MPTCP_EVENT_ESTABLISHED, msk, ssk, GFP_ATOMIC);
  475. }
  476. void mptcp_pm_connection_closed(struct mptcp_sock *msk)
  477. {
  478. pr_debug("msk=%p\n", msk);
  479. if (msk->token)
  480. mptcp_event(MPTCP_EVENT_CLOSED, msk, NULL, GFP_KERNEL);
  481. }
  482. void mptcp_pm_subflow_established(struct mptcp_sock *msk)
  483. {
  484. struct mptcp_pm_data *pm = &msk->pm;
  485. pr_debug("msk=%p\n", msk);
  486. if (!READ_ONCE(pm->work_pending))
  487. return;
  488. spin_lock_bh(&pm->lock);
  489. if (READ_ONCE(pm->work_pending))
  490. mptcp_pm_schedule_work(msk, MPTCP_PM_SUBFLOW_ESTABLISHED);
  491. spin_unlock_bh(&pm->lock);
  492. }
  493. void mptcp_pm_subflow_check_next(struct mptcp_sock *msk,
  494. const struct mptcp_subflow_context *subflow)
  495. {
  496. struct sock *sk = (struct sock *)msk;
  497. struct mptcp_pm_data *pm = &msk->pm;
  498. bool update_subflows;
  499. update_subflows = subflow->request_join || subflow->mp_join;
  500. if (mptcp_pm_is_userspace(msk)) {
  501. if (update_subflows) {
  502. spin_lock_bh(&pm->lock);
  503. pm->extra_subflows--;
  504. spin_unlock_bh(&pm->lock);
  505. }
  506. return;
  507. }
  508. if (!READ_ONCE(pm->work_pending) && !update_subflows)
  509. return;
  510. spin_lock_bh(&pm->lock);
  511. if (update_subflows)
  512. __mptcp_pm_close_subflow(msk);
  513. /* Even if this subflow is not really established, tell the PM to try
  514. * to pick the next ones, if possible.
  515. */
  516. if (mptcp_is_fully_established(sk) &&
  517. mptcp_pm_nl_check_work_pending(msk))
  518. mptcp_pm_schedule_work(msk, MPTCP_PM_SUBFLOW_ESTABLISHED);
  519. spin_unlock_bh(&pm->lock);
  520. }
  521. void mptcp_pm_add_addr_received(const struct sock *ssk,
  522. const struct mptcp_addr_info *addr)
  523. {
  524. struct mptcp_subflow_context *subflow = mptcp_subflow_ctx(ssk);
  525. struct mptcp_sock *msk = mptcp_sk(subflow->conn);
  526. struct mptcp_pm_data *pm = &msk->pm;
  527. pr_debug("msk=%p remote_id=%d accept=%d\n", msk, addr->id,
  528. READ_ONCE(pm->accept_addr));
  529. mptcp_event_addr_announced(ssk, addr);
  530. spin_lock_bh(&pm->lock);
  531. if (mptcp_pm_is_userspace(msk)) {
  532. if (mptcp_userspace_pm_active(msk)) {
  533. mptcp_pm_announce_addr(msk, addr, true);
  534. mptcp_pm_add_addr_send_ack(msk);
  535. } else {
  536. __MPTCP_INC_STATS(sock_net((struct sock *)msk), MPTCP_MIB_ADDADDRDROP);
  537. }
  538. /* - id0 should not have a different address
  539. * - special case for C-flag: linked to fill_local_addresses_vec()
  540. */
  541. } else if ((addr->id == 0 && !mptcp_pm_is_init_remote_addr(msk, addr)) ||
  542. (addr->id > 0 && !READ_ONCE(pm->accept_addr) &&
  543. !mptcp_pm_add_addr_c_flag_case(msk))) {
  544. mptcp_pm_announce_addr(msk, addr, true);
  545. mptcp_pm_add_addr_send_ack(msk);
  546. } else if (mptcp_pm_schedule_work(msk, MPTCP_PM_ADD_ADDR_RECEIVED)) {
  547. pm->remote = *addr;
  548. } else {
  549. __MPTCP_INC_STATS(sock_net((struct sock *)msk), MPTCP_MIB_ADDADDRDROP);
  550. }
  551. spin_unlock_bh(&pm->lock);
  552. }
  553. void mptcp_pm_add_addr_echoed(struct mptcp_sock *msk,
  554. const struct mptcp_addr_info *addr)
  555. {
  556. struct mptcp_pm_data *pm = &msk->pm;
  557. pr_debug("msk=%p\n", msk);
  558. if (!READ_ONCE(pm->work_pending))
  559. return;
  560. spin_lock_bh(&pm->lock);
  561. if (mptcp_lookup_anno_list_by_saddr(msk, addr) && READ_ONCE(pm->work_pending))
  562. mptcp_pm_schedule_work(msk, MPTCP_PM_SUBFLOW_ESTABLISHED);
  563. spin_unlock_bh(&pm->lock);
  564. }
  565. void mptcp_pm_add_addr_send_ack(struct mptcp_sock *msk)
  566. {
  567. if (!mptcp_pm_should_add_signal(msk))
  568. return;
  569. mptcp_pm_schedule_work(msk, MPTCP_PM_ADD_ADDR_SEND_ACK);
  570. }
  571. static void mptcp_pm_rm_addr_or_subflow(struct mptcp_sock *msk,
  572. const struct mptcp_rm_list *rm_list,
  573. enum linux_mptcp_mib_field rm_type)
  574. {
  575. struct mptcp_subflow_context *subflow, *tmp;
  576. struct sock *sk = (struct sock *)msk;
  577. u8 i;
  578. pr_debug("%s rm_list_nr %d\n",
  579. rm_type == MPTCP_MIB_RMADDR ? "address" : "subflow", rm_list->nr);
  580. msk_owned_by_me(msk);
  581. if (sk->sk_state == TCP_LISTEN)
  582. return;
  583. if (!rm_list->nr)
  584. return;
  585. if (list_empty(&msk->conn_list))
  586. return;
  587. for (i = 0; i < rm_list->nr; i++) {
  588. u8 rm_id = rm_list->ids[i];
  589. bool removed = false;
  590. mptcp_for_each_subflow_safe(msk, subflow, tmp) {
  591. struct sock *ssk = mptcp_subflow_tcp_sock(subflow);
  592. u8 remote_id = READ_ONCE(subflow->remote_id);
  593. int how = RCV_SHUTDOWN | SEND_SHUTDOWN;
  594. u8 id = subflow_get_local_id(subflow);
  595. if ((1 << inet_sk_state_load(ssk)) &
  596. (TCPF_FIN_WAIT1 | TCPF_FIN_WAIT2 | TCPF_CLOSING | TCPF_CLOSE))
  597. continue;
  598. if (rm_type == MPTCP_MIB_RMADDR && remote_id != rm_id)
  599. continue;
  600. if (rm_type == MPTCP_MIB_RMSUBFLOW && id != rm_id)
  601. continue;
  602. pr_debug(" -> %s rm_list_ids[%d]=%u local_id=%u remote_id=%u mpc_id=%u\n",
  603. rm_type == MPTCP_MIB_RMADDR ? "address" : "subflow",
  604. i, rm_id, id, remote_id, msk->mpc_endpoint_id);
  605. spin_unlock_bh(&msk->pm.lock);
  606. mptcp_subflow_shutdown(sk, ssk, how);
  607. removed |= subflow->request_join;
  608. /* the following takes care of updating the subflows counter */
  609. mptcp_close_ssk(sk, ssk, subflow);
  610. spin_lock_bh(&msk->pm.lock);
  611. if (rm_type == MPTCP_MIB_RMSUBFLOW)
  612. __MPTCP_INC_STATS(sock_net(sk), rm_type);
  613. }
  614. if (rm_type == MPTCP_MIB_RMADDR) {
  615. __MPTCP_INC_STATS(sock_net(sk), rm_type);
  616. if (removed && mptcp_pm_is_kernel(msk))
  617. mptcp_pm_nl_rm_addr(msk, rm_id);
  618. }
  619. }
  620. }
  621. static void mptcp_pm_rm_addr_recv(struct mptcp_sock *msk)
  622. {
  623. mptcp_pm_rm_addr_or_subflow(msk, &msk->pm.rm_list_rx, MPTCP_MIB_RMADDR);
  624. }
  625. void mptcp_pm_rm_subflow(struct mptcp_sock *msk,
  626. const struct mptcp_rm_list *rm_list)
  627. {
  628. mptcp_pm_rm_addr_or_subflow(msk, rm_list, MPTCP_MIB_RMSUBFLOW);
  629. }
  630. void mptcp_pm_rm_addr_received(struct mptcp_sock *msk,
  631. const struct mptcp_rm_list *rm_list)
  632. {
  633. struct mptcp_pm_data *pm = &msk->pm;
  634. u8 i;
  635. pr_debug("msk=%p remote_ids_nr=%d\n", msk, rm_list->nr);
  636. for (i = 0; i < rm_list->nr; i++)
  637. mptcp_event_addr_removed(msk, rm_list->ids[i]);
  638. spin_lock_bh(&pm->lock);
  639. if (mptcp_pm_schedule_work(msk, MPTCP_PM_RM_ADDR_RECEIVED))
  640. pm->rm_list_rx = *rm_list;
  641. else
  642. __MPTCP_INC_STATS(sock_net((struct sock *)msk), MPTCP_MIB_RMADDRDROP);
  643. spin_unlock_bh(&pm->lock);
  644. }
  645. void mptcp_pm_mp_prio_received(struct sock *ssk, u8 bkup)
  646. {
  647. struct mptcp_subflow_context *subflow = mptcp_subflow_ctx(ssk);
  648. struct sock *sk = subflow->conn;
  649. struct mptcp_sock *msk;
  650. pr_debug("subflow->backup=%d, bkup=%d\n", subflow->backup, bkup);
  651. msk = mptcp_sk(sk);
  652. if (subflow->backup != bkup)
  653. subflow->backup = bkup;
  654. mptcp_event(MPTCP_EVENT_SUB_PRIORITY, msk, ssk, GFP_ATOMIC);
  655. }
  656. void mptcp_pm_mp_fail_received(struct sock *sk, u64 fail_seq)
  657. {
  658. struct mptcp_subflow_context *subflow = mptcp_subflow_ctx(sk);
  659. struct mptcp_sock *msk = mptcp_sk(subflow->conn);
  660. pr_debug("fail_seq=%llu\n", fail_seq);
  661. /* After accepting the fail, we can't create any other subflows */
  662. spin_lock_bh(&msk->fallback_lock);
  663. if (!msk->allow_infinite_fallback) {
  664. spin_unlock_bh(&msk->fallback_lock);
  665. return;
  666. }
  667. msk->allow_subflows = false;
  668. spin_unlock_bh(&msk->fallback_lock);
  669. if (!subflow->fail_tout) {
  670. pr_debug("send MP_FAIL response and infinite map\n");
  671. subflow->send_mp_fail = 1;
  672. subflow->send_infinite_map = 1;
  673. tcp_send_ack(sk);
  674. } else {
  675. pr_debug("MP_FAIL response received\n");
  676. WRITE_ONCE(subflow->fail_tout, 0);
  677. }
  678. }
  679. bool mptcp_pm_add_addr_signal(struct mptcp_sock *msk, const struct sk_buff *skb,
  680. unsigned int opt_size, unsigned int remaining,
  681. struct mptcp_addr_info *addr, bool *echo,
  682. bool *drop_other_suboptions)
  683. {
  684. int ret = false;
  685. u8 add_addr;
  686. u8 family;
  687. bool port;
  688. spin_lock_bh(&msk->pm.lock);
  689. /* double check after the lock is acquired */
  690. if (!mptcp_pm_should_add_signal(msk))
  691. goto out_unlock;
  692. /* always drop every other options for pure ack ADD_ADDR; this is a
  693. * plain dup-ack from TCP perspective. The other MPTCP-relevant info,
  694. * if any, will be carried by the 'original' TCP ack
  695. */
  696. if (skb && skb_is_tcp_pure_ack(skb)) {
  697. remaining += opt_size;
  698. *drop_other_suboptions = true;
  699. }
  700. *echo = mptcp_pm_should_add_signal_echo(msk);
  701. port = !!(*echo ? msk->pm.remote.port : msk->pm.local.port);
  702. family = *echo ? msk->pm.remote.family : msk->pm.local.family;
  703. if (remaining < mptcp_add_addr_len(family, *echo, port))
  704. goto out_unlock;
  705. if (*echo) {
  706. *addr = msk->pm.remote;
  707. add_addr = msk->pm.addr_signal & ~BIT(MPTCP_ADD_ADDR_ECHO);
  708. } else {
  709. *addr = msk->pm.local;
  710. add_addr = msk->pm.addr_signal & ~BIT(MPTCP_ADD_ADDR_SIGNAL);
  711. }
  712. WRITE_ONCE(msk->pm.addr_signal, add_addr);
  713. ret = true;
  714. out_unlock:
  715. spin_unlock_bh(&msk->pm.lock);
  716. return ret;
  717. }
  718. bool mptcp_pm_rm_addr_signal(struct mptcp_sock *msk, unsigned int remaining,
  719. struct mptcp_rm_list *rm_list)
  720. {
  721. int ret = false, len;
  722. u8 rm_addr;
  723. spin_lock_bh(&msk->pm.lock);
  724. /* double check after the lock is acquired */
  725. if (!mptcp_pm_should_rm_signal(msk))
  726. goto out_unlock;
  727. rm_addr = msk->pm.addr_signal & ~BIT(MPTCP_RM_ADDR_SIGNAL);
  728. len = mptcp_rm_addr_len(&msk->pm.rm_list_tx);
  729. if (len < 0) {
  730. WRITE_ONCE(msk->pm.addr_signal, rm_addr);
  731. goto out_unlock;
  732. }
  733. if (remaining < len)
  734. goto out_unlock;
  735. *rm_list = msk->pm.rm_list_tx;
  736. WRITE_ONCE(msk->pm.addr_signal, rm_addr);
  737. ret = true;
  738. out_unlock:
  739. spin_unlock_bh(&msk->pm.lock);
  740. return ret;
  741. }
  742. int mptcp_pm_get_local_id(struct mptcp_sock *msk, struct sock_common *skc)
  743. {
  744. struct mptcp_pm_addr_entry skc_local = { 0 };
  745. struct mptcp_addr_info msk_local;
  746. if (WARN_ON_ONCE(!msk))
  747. return -1;
  748. /* The 0 ID mapping is defined by the first subflow, copied into the msk
  749. * addr
  750. */
  751. mptcp_local_address((struct sock_common *)msk, &msk_local);
  752. mptcp_local_address((struct sock_common *)skc, &skc_local.addr);
  753. if (mptcp_addresses_equal(&msk_local, &skc_local.addr, false))
  754. return 0;
  755. skc_local.addr.id = 0;
  756. skc_local.flags = MPTCP_PM_ADDR_FLAG_IMPLICIT;
  757. if (mptcp_pm_is_userspace(msk))
  758. return mptcp_userspace_pm_get_local_id(msk, &skc_local);
  759. return mptcp_pm_nl_get_local_id(msk, &skc_local);
  760. }
  761. bool mptcp_pm_is_backup(struct mptcp_sock *msk, struct sock_common *skc)
  762. {
  763. struct mptcp_addr_info skc_local;
  764. mptcp_local_address((struct sock_common *)skc, &skc_local);
  765. if (mptcp_pm_is_userspace(msk))
  766. return mptcp_userspace_pm_is_backup(msk, &skc_local);
  767. return mptcp_pm_nl_is_backup(msk, &skc_local);
  768. }
  769. static void mptcp_pm_subflows_chk_stale(const struct mptcp_sock *msk, struct sock *ssk)
  770. {
  771. struct mptcp_subflow_context *iter, *subflow = mptcp_subflow_ctx(ssk);
  772. struct sock *sk = (struct sock *)msk;
  773. unsigned int active_max_loss_cnt;
  774. struct net *net = sock_net(sk);
  775. unsigned int stale_loss_cnt;
  776. bool slow;
  777. stale_loss_cnt = mptcp_stale_loss_cnt(net);
  778. if (subflow->stale || !stale_loss_cnt || subflow->stale_count <= stale_loss_cnt)
  779. return;
  780. /* look for another available subflow not in loss state */
  781. active_max_loss_cnt = max_t(int, stale_loss_cnt - 1, 1);
  782. mptcp_for_each_subflow(msk, iter) {
  783. if (iter != subflow && mptcp_subflow_active(iter) &&
  784. iter->stale_count < active_max_loss_cnt) {
  785. /* we have some alternatives, try to mark this subflow as idle ...*/
  786. slow = lock_sock_fast(ssk);
  787. if (!tcp_rtx_and_write_queues_empty(ssk)) {
  788. subflow->stale = 1;
  789. __mptcp_retransmit_pending_data(sk);
  790. MPTCP_INC_STATS(net, MPTCP_MIB_SUBFLOWSTALE);
  791. }
  792. unlock_sock_fast(ssk, slow);
  793. /* always try to push the pending data regardless of re-injections:
  794. * we can possibly use backup subflows now, and subflow selection
  795. * is cheap under the msk socket lock
  796. */
  797. __mptcp_push_pending(sk, 0);
  798. return;
  799. }
  800. }
  801. }
  802. void mptcp_pm_subflow_chk_stale(const struct mptcp_sock *msk, struct sock *ssk)
  803. {
  804. struct mptcp_subflow_context *subflow = mptcp_subflow_ctx(ssk);
  805. u32 rcv_tstamp = READ_ONCE(tcp_sk(ssk)->rcv_tstamp);
  806. /* keep track of rtx periods with no progress */
  807. if (!subflow->stale_count) {
  808. subflow->stale_rcv_tstamp = rcv_tstamp;
  809. subflow->stale_count++;
  810. } else if (subflow->stale_rcv_tstamp == rcv_tstamp) {
  811. if (subflow->stale_count < U8_MAX)
  812. subflow->stale_count++;
  813. mptcp_pm_subflows_chk_stale(msk, ssk);
  814. } else {
  815. subflow->stale_count = 0;
  816. mptcp_subflow_set_active(subflow);
  817. }
  818. }
  819. void mptcp_pm_worker(struct mptcp_sock *msk)
  820. {
  821. struct mptcp_pm_data *pm = &msk->pm;
  822. msk_owned_by_me(msk);
  823. if (!(pm->status & MPTCP_PM_WORK_MASK))
  824. return;
  825. spin_lock_bh(&msk->pm.lock);
  826. pr_debug("msk=%p status=%x\n", msk, pm->status);
  827. if (pm->status & BIT(MPTCP_PM_ADD_ADDR_SEND_ACK)) {
  828. pm->status &= ~BIT(MPTCP_PM_ADD_ADDR_SEND_ACK);
  829. mptcp_pm_addr_send_ack(msk);
  830. }
  831. if (pm->status & BIT(MPTCP_PM_RM_ADDR_RECEIVED)) {
  832. pm->status &= ~BIT(MPTCP_PM_RM_ADDR_RECEIVED);
  833. mptcp_pm_rm_addr_recv(msk);
  834. }
  835. __mptcp_pm_kernel_worker(msk);
  836. spin_unlock_bh(&msk->pm.lock);
  837. }
  838. void mptcp_pm_destroy(struct mptcp_sock *msk)
  839. {
  840. mptcp_pm_free_anno_list(msk);
  841. if (mptcp_pm_is_userspace(msk))
  842. mptcp_userspace_pm_free_local_addr_list(msk);
  843. }
  844. void mptcp_pm_data_reset(struct mptcp_sock *msk)
  845. {
  846. u8 pm_type = mptcp_get_pm_type(sock_net((struct sock *)msk));
  847. struct mptcp_pm_data *pm = &msk->pm;
  848. memset(&pm->reset, 0, sizeof(pm->reset));
  849. pm->rm_list_tx.nr = 0;
  850. pm->rm_list_rx.nr = 0;
  851. WRITE_ONCE(pm->pm_type, pm_type);
  852. if (pm_type == MPTCP_PM_TYPE_KERNEL) {
  853. bool subflows_allowed = !!mptcp_pm_get_limit_extra_subflows(msk);
  854. /* pm->work_pending must be only be set to 'true' when
  855. * pm->pm_type is set to MPTCP_PM_TYPE_KERNEL
  856. */
  857. WRITE_ONCE(pm->work_pending,
  858. (!!mptcp_pm_get_endp_subflow_max(msk) &&
  859. subflows_allowed) ||
  860. !!mptcp_pm_get_endp_signal_max(msk));
  861. WRITE_ONCE(pm->accept_addr,
  862. !!mptcp_pm_get_limit_add_addr_accepted(msk) &&
  863. subflows_allowed);
  864. WRITE_ONCE(pm->accept_subflow, subflows_allowed);
  865. bitmap_fill(pm->id_avail_bitmap, MPTCP_PM_MAX_ADDR_ID + 1);
  866. }
  867. }
  868. void mptcp_pm_data_init(struct mptcp_sock *msk)
  869. {
  870. spin_lock_init(&msk->pm.lock);
  871. INIT_LIST_HEAD(&msk->pm.anno_list);
  872. INIT_LIST_HEAD(&msk->pm.userspace_pm_local_addr_list);
  873. mptcp_pm_data_reset(msk);
  874. }
  875. void __init mptcp_pm_init(void)
  876. {
  877. mptcp_pm_kernel_register();
  878. mptcp_pm_userspace_register();
  879. mptcp_pm_nl_init();
  880. }
  881. /* Must be called with rcu read lock held */
  882. struct mptcp_pm_ops *mptcp_pm_find(const char *name)
  883. {
  884. struct mptcp_pm_ops *pm_ops;
  885. list_for_each_entry_rcu(pm_ops, &mptcp_pm_list, list) {
  886. if (!strcmp(pm_ops->name, name))
  887. return pm_ops;
  888. }
  889. return NULL;
  890. }
  891. int mptcp_pm_validate(struct mptcp_pm_ops *pm_ops)
  892. {
  893. return 0;
  894. }
  895. int mptcp_pm_register(struct mptcp_pm_ops *pm_ops)
  896. {
  897. int ret;
  898. ret = mptcp_pm_validate(pm_ops);
  899. if (ret)
  900. return ret;
  901. spin_lock(&mptcp_pm_list_lock);
  902. if (mptcp_pm_find(pm_ops->name)) {
  903. spin_unlock(&mptcp_pm_list_lock);
  904. return -EEXIST;
  905. }
  906. list_add_tail_rcu(&pm_ops->list, &mptcp_pm_list);
  907. spin_unlock(&mptcp_pm_list_lock);
  908. pr_debug("%s registered\n", pm_ops->name);
  909. return 0;
  910. }
  911. void mptcp_pm_unregister(struct mptcp_pm_ops *pm_ops)
  912. {
  913. /* skip unregistering the default path manager */
  914. if (WARN_ON_ONCE(pm_ops == &mptcp_pm_kernel))
  915. return;
  916. spin_lock(&mptcp_pm_list_lock);
  917. list_del_rcu(&pm_ops->list);
  918. spin_unlock(&mptcp_pm_list_lock);
  919. }
  920. /* Build string with list of available path manager values.
  921. * Similar to tcp_get_available_congestion_control()
  922. */
  923. void mptcp_pm_get_available(char *buf, size_t maxlen)
  924. {
  925. struct mptcp_pm_ops *pm_ops;
  926. size_t offs = 0;
  927. rcu_read_lock();
  928. list_for_each_entry_rcu(pm_ops, &mptcp_pm_list, list) {
  929. offs += snprintf(buf + offs, maxlen - offs, "%s%s",
  930. offs == 0 ? "" : " ", pm_ops->name);
  931. if (WARN_ON_ONCE(offs >= maxlen))
  932. break;
  933. }
  934. rcu_read_unlock();
  935. }