inetpeer.c 16 KB

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  1. /*
  2. * INETPEER - A storage for permanent information about peers
  3. *
  4. * This source is covered by the GNU GPL, the same as all kernel sources.
  5. *
  6. * Authors: Andrey V. Savochkin <saw@msu.ru>
  7. */
  8. #include <linux/module.h>
  9. #include <linux/types.h>
  10. #include <linux/slab.h>
  11. #include <linux/interrupt.h>
  12. #include <linux/spinlock.h>
  13. #include <linux/random.h>
  14. #include <linux/timer.h>
  15. #include <linux/time.h>
  16. #include <linux/kernel.h>
  17. #include <linux/mm.h>
  18. #include <linux/net.h>
  19. #include <net/ip.h>
  20. #include <net/inetpeer.h>
  21. /*
  22. * Theory of operations.
  23. * We keep one entry for each peer IP address. The nodes contains long-living
  24. * information about the peer which doesn't depend on routes.
  25. * At this moment this information consists only of ID field for the next
  26. * outgoing IP packet. This field is incremented with each packet as encoded
  27. * in inet_getid() function (include/net/inetpeer.h).
  28. * At the moment of writing this notes identifier of IP packets is generated
  29. * to be unpredictable using this code only for packets subjected
  30. * (actually or potentially) to defragmentation. I.e. DF packets less than
  31. * PMTU in size uses a constant ID and do not use this code (see
  32. * ip_select_ident() in include/net/ip.h).
  33. *
  34. * Route cache entries hold references to our nodes.
  35. * New cache entries get references via lookup by destination IP address in
  36. * the avl tree. The reference is grabbed only when it's needed i.e. only
  37. * when we try to output IP packet which needs an unpredictable ID (see
  38. * __ip_select_ident() in net/ipv4/route.c).
  39. * Nodes are removed only when reference counter goes to 0.
  40. * When it's happened the node may be removed when a sufficient amount of
  41. * time has been passed since its last use. The less-recently-used entry can
  42. * also be removed if the pool is overloaded i.e. if the total amount of
  43. * entries is greater-or-equal than the threshold.
  44. *
  45. * Node pool is organised as an AVL tree.
  46. * Such an implementation has been chosen not just for fun. It's a way to
  47. * prevent easy and efficient DoS attacks by creating hash collisions. A huge
  48. * amount of long living nodes in a single hash slot would significantly delay
  49. * lookups performed with disabled BHs.
  50. *
  51. * Serialisation issues.
  52. * 1. Nodes may appear in the tree only with the pool lock held.
  53. * 2. Nodes may disappear from the tree only with the pool lock held
  54. * AND reference count being 0.
  55. * 3. Global variable peer_total is modified under the pool lock.
  56. * 4. struct inet_peer fields modification:
  57. * avl_left, avl_right, avl_parent, avl_height: pool lock
  58. * refcnt: atomically against modifications on other CPU;
  59. * usually under some other lock to prevent node disappearing
  60. * daddr: unchangeable
  61. * ip_id_count: atomic value (no lock needed)
  62. */
  63. static struct kmem_cache *peer_cachep __read_mostly;
  64. #define node_height(x) x->avl_height
  65. #define peer_avl_empty ((struct inet_peer *)&peer_fake_node)
  66. #define peer_avl_empty_rcu ((struct inet_peer __rcu __force *)&peer_fake_node)
  67. static const struct inet_peer peer_fake_node = {
  68. .avl_left = peer_avl_empty_rcu,
  69. .avl_right = peer_avl_empty_rcu,
  70. .avl_height = 0
  71. };
  72. struct inet_peer_base {
  73. struct inet_peer __rcu *root;
  74. seqlock_t lock;
  75. int total;
  76. };
  77. static struct inet_peer_base v4_peers = {
  78. .root = peer_avl_empty_rcu,
  79. .lock = __SEQLOCK_UNLOCKED(v4_peers.lock),
  80. .total = 0,
  81. };
  82. static struct inet_peer_base v6_peers = {
  83. .root = peer_avl_empty_rcu,
  84. .lock = __SEQLOCK_UNLOCKED(v6_peers.lock),
  85. .total = 0,
  86. };
  87. #define PEER_MAXDEPTH 40 /* sufficient for about 2^27 nodes */
  88. /* Exported for sysctl_net_ipv4. */
  89. int inet_peer_threshold __read_mostly = 65536 + 128; /* start to throw entries more
  90. * aggressively at this stage */
  91. int inet_peer_minttl __read_mostly = 120 * HZ; /* TTL under high load: 120 sec */
  92. int inet_peer_maxttl __read_mostly = 10 * 60 * HZ; /* usual time to live: 10 min */
  93. /* Called from ip_output.c:ip_init */
  94. void __init inet_initpeers(void)
  95. {
  96. struct sysinfo si;
  97. /* Use the straight interface to information about memory. */
  98. si_meminfo(&si);
  99. /* The values below were suggested by Alexey Kuznetsov
  100. * <kuznet@ms2.inr.ac.ru>. I don't have any opinion about the values
  101. * myself. --SAW
  102. */
  103. if (si.totalram <= (32768*1024)/PAGE_SIZE)
  104. inet_peer_threshold >>= 1; /* max pool size about 1MB on IA32 */
  105. if (si.totalram <= (16384*1024)/PAGE_SIZE)
  106. inet_peer_threshold >>= 1; /* about 512KB */
  107. if (si.totalram <= (8192*1024)/PAGE_SIZE)
  108. inet_peer_threshold >>= 2; /* about 128KB */
  109. peer_cachep = kmem_cache_create("inet_peer_cache",
  110. sizeof(struct inet_peer),
  111. 0, SLAB_HWCACHE_ALIGN | SLAB_PANIC,
  112. NULL);
  113. }
  114. static int addr_compare(const struct inetpeer_addr *a,
  115. const struct inetpeer_addr *b)
  116. {
  117. int i, n = (a->family == AF_INET ? 1 : 4);
  118. for (i = 0; i < n; i++) {
  119. if (a->addr.a6[i] == b->addr.a6[i])
  120. continue;
  121. if (a->addr.a6[i] < b->addr.a6[i])
  122. return -1;
  123. return 1;
  124. }
  125. return 0;
  126. }
  127. #define rcu_deref_locked(X, BASE) \
  128. rcu_dereference_protected(X, lockdep_is_held(&(BASE)->lock.lock))
  129. /*
  130. * Called with local BH disabled and the pool lock held.
  131. */
  132. #define lookup(_daddr, _stack, _base) \
  133. ({ \
  134. struct inet_peer *u; \
  135. struct inet_peer __rcu **v; \
  136. \
  137. stackptr = _stack; \
  138. *stackptr++ = &_base->root; \
  139. for (u = rcu_deref_locked(_base->root, _base); \
  140. u != peer_avl_empty; ) { \
  141. int cmp = addr_compare(_daddr, &u->daddr); \
  142. if (cmp == 0) \
  143. break; \
  144. if (cmp == -1) \
  145. v = &u->avl_left; \
  146. else \
  147. v = &u->avl_right; \
  148. *stackptr++ = v; \
  149. u = rcu_deref_locked(*v, _base); \
  150. } \
  151. u; \
  152. })
  153. /*
  154. * Called with rcu_read_lock()
  155. * Because we hold no lock against a writer, its quite possible we fall
  156. * in an endless loop.
  157. * But every pointer we follow is guaranteed to be valid thanks to RCU.
  158. * We exit from this function if number of links exceeds PEER_MAXDEPTH
  159. */
  160. static struct inet_peer *lookup_rcu(const struct inetpeer_addr *daddr,
  161. struct inet_peer_base *base)
  162. {
  163. struct inet_peer *u = rcu_dereference(base->root);
  164. int count = 0;
  165. while (u != peer_avl_empty) {
  166. int cmp = addr_compare(daddr, &u->daddr);
  167. if (cmp == 0) {
  168. /* Before taking a reference, check if this entry was
  169. * deleted (refcnt=-1)
  170. */
  171. if (!atomic_add_unless(&u->refcnt, 1, -1))
  172. u = NULL;
  173. return u;
  174. }
  175. if (cmp == -1)
  176. u = rcu_dereference(u->avl_left);
  177. else
  178. u = rcu_dereference(u->avl_right);
  179. if (unlikely(++count == PEER_MAXDEPTH))
  180. break;
  181. }
  182. return NULL;
  183. }
  184. /* Called with local BH disabled and the pool lock held. */
  185. #define lookup_rightempty(start, base) \
  186. ({ \
  187. struct inet_peer *u; \
  188. struct inet_peer __rcu **v; \
  189. *stackptr++ = &start->avl_left; \
  190. v = &start->avl_left; \
  191. for (u = rcu_deref_locked(*v, base); \
  192. u->avl_right != peer_avl_empty_rcu; ) { \
  193. v = &u->avl_right; \
  194. *stackptr++ = v; \
  195. u = rcu_deref_locked(*v, base); \
  196. } \
  197. u; \
  198. })
  199. /* Called with local BH disabled and the pool lock held.
  200. * Variable names are the proof of operation correctness.
  201. * Look into mm/map_avl.c for more detail description of the ideas.
  202. */
  203. static void peer_avl_rebalance(struct inet_peer __rcu **stack[],
  204. struct inet_peer __rcu ***stackend,
  205. struct inet_peer_base *base)
  206. {
  207. struct inet_peer __rcu **nodep;
  208. struct inet_peer *node, *l, *r;
  209. int lh, rh;
  210. while (stackend > stack) {
  211. nodep = *--stackend;
  212. node = rcu_deref_locked(*nodep, base);
  213. l = rcu_deref_locked(node->avl_left, base);
  214. r = rcu_deref_locked(node->avl_right, base);
  215. lh = node_height(l);
  216. rh = node_height(r);
  217. if (lh > rh + 1) { /* l: RH+2 */
  218. struct inet_peer *ll, *lr, *lrl, *lrr;
  219. int lrh;
  220. ll = rcu_deref_locked(l->avl_left, base);
  221. lr = rcu_deref_locked(l->avl_right, base);
  222. lrh = node_height(lr);
  223. if (lrh <= node_height(ll)) { /* ll: RH+1 */
  224. RCU_INIT_POINTER(node->avl_left, lr); /* lr: RH or RH+1 */
  225. RCU_INIT_POINTER(node->avl_right, r); /* r: RH */
  226. node->avl_height = lrh + 1; /* RH+1 or RH+2 */
  227. RCU_INIT_POINTER(l->avl_left, ll); /* ll: RH+1 */
  228. RCU_INIT_POINTER(l->avl_right, node); /* node: RH+1 or RH+2 */
  229. l->avl_height = node->avl_height + 1;
  230. RCU_INIT_POINTER(*nodep, l);
  231. } else { /* ll: RH, lr: RH+1 */
  232. lrl = rcu_deref_locked(lr->avl_left, base);/* lrl: RH or RH-1 */
  233. lrr = rcu_deref_locked(lr->avl_right, base);/* lrr: RH or RH-1 */
  234. RCU_INIT_POINTER(node->avl_left, lrr); /* lrr: RH or RH-1 */
  235. RCU_INIT_POINTER(node->avl_right, r); /* r: RH */
  236. node->avl_height = rh + 1; /* node: RH+1 */
  237. RCU_INIT_POINTER(l->avl_left, ll); /* ll: RH */
  238. RCU_INIT_POINTER(l->avl_right, lrl); /* lrl: RH or RH-1 */
  239. l->avl_height = rh + 1; /* l: RH+1 */
  240. RCU_INIT_POINTER(lr->avl_left, l); /* l: RH+1 */
  241. RCU_INIT_POINTER(lr->avl_right, node); /* node: RH+1 */
  242. lr->avl_height = rh + 2;
  243. RCU_INIT_POINTER(*nodep, lr);
  244. }
  245. } else if (rh > lh + 1) { /* r: LH+2 */
  246. struct inet_peer *rr, *rl, *rlr, *rll;
  247. int rlh;
  248. rr = rcu_deref_locked(r->avl_right, base);
  249. rl = rcu_deref_locked(r->avl_left, base);
  250. rlh = node_height(rl);
  251. if (rlh <= node_height(rr)) { /* rr: LH+1 */
  252. RCU_INIT_POINTER(node->avl_right, rl); /* rl: LH or LH+1 */
  253. RCU_INIT_POINTER(node->avl_left, l); /* l: LH */
  254. node->avl_height = rlh + 1; /* LH+1 or LH+2 */
  255. RCU_INIT_POINTER(r->avl_right, rr); /* rr: LH+1 */
  256. RCU_INIT_POINTER(r->avl_left, node); /* node: LH+1 or LH+2 */
  257. r->avl_height = node->avl_height + 1;
  258. RCU_INIT_POINTER(*nodep, r);
  259. } else { /* rr: RH, rl: RH+1 */
  260. rlr = rcu_deref_locked(rl->avl_right, base);/* rlr: LH or LH-1 */
  261. rll = rcu_deref_locked(rl->avl_left, base);/* rll: LH or LH-1 */
  262. RCU_INIT_POINTER(node->avl_right, rll); /* rll: LH or LH-1 */
  263. RCU_INIT_POINTER(node->avl_left, l); /* l: LH */
  264. node->avl_height = lh + 1; /* node: LH+1 */
  265. RCU_INIT_POINTER(r->avl_right, rr); /* rr: LH */
  266. RCU_INIT_POINTER(r->avl_left, rlr); /* rlr: LH or LH-1 */
  267. r->avl_height = lh + 1; /* r: LH+1 */
  268. RCU_INIT_POINTER(rl->avl_right, r); /* r: LH+1 */
  269. RCU_INIT_POINTER(rl->avl_left, node); /* node: LH+1 */
  270. rl->avl_height = lh + 2;
  271. RCU_INIT_POINTER(*nodep, rl);
  272. }
  273. } else {
  274. node->avl_height = (lh > rh ? lh : rh) + 1;
  275. }
  276. }
  277. }
  278. /* Called with local BH disabled and the pool lock held. */
  279. #define link_to_pool(n, base) \
  280. do { \
  281. n->avl_height = 1; \
  282. n->avl_left = peer_avl_empty_rcu; \
  283. n->avl_right = peer_avl_empty_rcu; \
  284. /* lockless readers can catch us now */ \
  285. rcu_assign_pointer(**--stackptr, n); \
  286. peer_avl_rebalance(stack, stackptr, base); \
  287. } while (0)
  288. static void inetpeer_free_rcu(struct rcu_head *head)
  289. {
  290. kmem_cache_free(peer_cachep, container_of(head, struct inet_peer, rcu));
  291. }
  292. static void unlink_from_pool(struct inet_peer *p, struct inet_peer_base *base,
  293. struct inet_peer __rcu **stack[PEER_MAXDEPTH])
  294. {
  295. struct inet_peer __rcu ***stackptr, ***delp;
  296. if (lookup(&p->daddr, stack, base) != p)
  297. BUG();
  298. delp = stackptr - 1; /* *delp[0] == p */
  299. if (p->avl_left == peer_avl_empty_rcu) {
  300. *delp[0] = p->avl_right;
  301. --stackptr;
  302. } else {
  303. /* look for a node to insert instead of p */
  304. struct inet_peer *t;
  305. t = lookup_rightempty(p, base);
  306. BUG_ON(rcu_deref_locked(*stackptr[-1], base) != t);
  307. **--stackptr = t->avl_left;
  308. /* t is removed, t->daddr > x->daddr for any
  309. * x in p->avl_left subtree.
  310. * Put t in the old place of p. */
  311. RCU_INIT_POINTER(*delp[0], t);
  312. t->avl_left = p->avl_left;
  313. t->avl_right = p->avl_right;
  314. t->avl_height = p->avl_height;
  315. BUG_ON(delp[1] != &p->avl_left);
  316. delp[1] = &t->avl_left; /* was &p->avl_left */
  317. }
  318. peer_avl_rebalance(stack, stackptr, base);
  319. base->total--;
  320. call_rcu(&p->rcu, inetpeer_free_rcu);
  321. }
  322. static struct inet_peer_base *family_to_base(int family)
  323. {
  324. return family == AF_INET ? &v4_peers : &v6_peers;
  325. }
  326. /* perform garbage collect on all items stacked during a lookup */
  327. static int inet_peer_gc(struct inet_peer_base *base,
  328. struct inet_peer __rcu **stack[PEER_MAXDEPTH],
  329. struct inet_peer __rcu ***stackptr)
  330. {
  331. struct inet_peer *p, *gchead = NULL;
  332. __u32 delta, ttl;
  333. int cnt = 0;
  334. if (base->total >= inet_peer_threshold)
  335. ttl = 0; /* be aggressive */
  336. else
  337. ttl = inet_peer_maxttl
  338. - (inet_peer_maxttl - inet_peer_minttl) / HZ *
  339. base->total / inet_peer_threshold * HZ;
  340. stackptr--; /* last stack slot is peer_avl_empty */
  341. while (stackptr > stack) {
  342. stackptr--;
  343. p = rcu_deref_locked(**stackptr, base);
  344. if (atomic_read(&p->refcnt) == 0) {
  345. smp_rmb();
  346. delta = (__u32)jiffies - p->dtime;
  347. if (delta >= ttl &&
  348. atomic_cmpxchg(&p->refcnt, 0, -1) == 0) {
  349. p->gc_next = gchead;
  350. gchead = p;
  351. }
  352. }
  353. }
  354. while ((p = gchead) != NULL) {
  355. gchead = p->gc_next;
  356. cnt++;
  357. unlink_from_pool(p, base, stack);
  358. }
  359. return cnt;
  360. }
  361. struct inet_peer *inet_getpeer(const struct inetpeer_addr *daddr, int create)
  362. {
  363. struct inet_peer __rcu **stack[PEER_MAXDEPTH], ***stackptr;
  364. struct inet_peer_base *base = family_to_base(daddr->family);
  365. struct inet_peer *p;
  366. unsigned int sequence;
  367. int invalidated, gccnt = 0;
  368. /* Attempt a lockless lookup first.
  369. * Because of a concurrent writer, we might not find an existing entry.
  370. */
  371. rcu_read_lock();
  372. sequence = read_seqbegin(&base->lock);
  373. p = lookup_rcu(daddr, base);
  374. invalidated = read_seqretry(&base->lock, sequence);
  375. rcu_read_unlock();
  376. if (p)
  377. return p;
  378. /* If no writer did a change during our lookup, we can return early. */
  379. if (!create && !invalidated)
  380. return NULL;
  381. /* retry an exact lookup, taking the lock before.
  382. * At least, nodes should be hot in our cache.
  383. */
  384. write_seqlock_bh(&base->lock);
  385. relookup:
  386. p = lookup(daddr, stack, base);
  387. if (p != peer_avl_empty) {
  388. atomic_inc(&p->refcnt);
  389. write_sequnlock_bh(&base->lock);
  390. return p;
  391. }
  392. if (!gccnt) {
  393. gccnt = inet_peer_gc(base, stack, stackptr);
  394. if (gccnt && create)
  395. goto relookup;
  396. }
  397. p = create ? kmem_cache_alloc(peer_cachep, GFP_ATOMIC) : NULL;
  398. if (p) {
  399. p->daddr = *daddr;
  400. atomic_set(&p->refcnt, 1);
  401. atomic_set(&p->rid, 0);
  402. atomic_set(&p->ip_id_count,
  403. (daddr->family == AF_INET) ?
  404. secure_ip_id(daddr->addr.a4) :
  405. secure_ipv6_id(daddr->addr.a6));
  406. p->tcp_ts_stamp = 0;
  407. p->metrics[RTAX_LOCK-1] = INETPEER_METRICS_NEW;
  408. p->rate_tokens = 0;
  409. p->rate_last = 0;
  410. p->pmtu_expires = 0;
  411. p->pmtu_orig = 0;
  412. memset(&p->redirect_learned, 0, sizeof(p->redirect_learned));
  413. /* Link the node. */
  414. link_to_pool(p, base);
  415. base->total++;
  416. }
  417. write_sequnlock_bh(&base->lock);
  418. return p;
  419. }
  420. EXPORT_SYMBOL_GPL(inet_getpeer);
  421. void inet_putpeer(struct inet_peer *p)
  422. {
  423. p->dtime = (__u32)jiffies;
  424. smp_mb__before_atomic_dec();
  425. atomic_dec(&p->refcnt);
  426. }
  427. EXPORT_SYMBOL_GPL(inet_putpeer);
  428. /*
  429. * Check transmit rate limitation for given message.
  430. * The rate information is held in the inet_peer entries now.
  431. * This function is generic and could be used for other purposes
  432. * too. It uses a Token bucket filter as suggested by Alexey Kuznetsov.
  433. *
  434. * Note that the same inet_peer fields are modified by functions in
  435. * route.c too, but these work for packet destinations while xrlim_allow
  436. * works for icmp destinations. This means the rate limiting information
  437. * for one "ip object" is shared - and these ICMPs are twice limited:
  438. * by source and by destination.
  439. *
  440. * RFC 1812: 4.3.2.8 SHOULD be able to limit error message rate
  441. * SHOULD allow setting of rate limits
  442. *
  443. * Shared between ICMPv4 and ICMPv6.
  444. */
  445. #define XRLIM_BURST_FACTOR 6
  446. bool inet_peer_xrlim_allow(struct inet_peer *peer, int timeout)
  447. {
  448. unsigned long now, token;
  449. bool rc = false;
  450. if (!peer)
  451. return true;
  452. token = peer->rate_tokens;
  453. now = jiffies;
  454. token += now - peer->rate_last;
  455. peer->rate_last = now;
  456. if (token > XRLIM_BURST_FACTOR * timeout)
  457. token = XRLIM_BURST_FACTOR * timeout;
  458. if (token >= timeout) {
  459. token -= timeout;
  460. rc = true;
  461. }
  462. peer->rate_tokens = token;
  463. return rc;
  464. }
  465. EXPORT_SYMBOL(inet_peer_xrlim_allow);