svcsock.c 49 KB

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  1. /*
  2. * linux/net/sunrpc/svcsock.c
  3. *
  4. * These are the RPC server socket internals.
  5. *
  6. * The server scheduling algorithm does not always distribute the load
  7. * evenly when servicing a single client. May need to modify the
  8. * svc_sock_enqueue procedure...
  9. *
  10. * TCP support is largely untested and may be a little slow. The problem
  11. * is that we currently do two separate recvfrom's, one for the 4-byte
  12. * record length, and the second for the actual record. This could possibly
  13. * be improved by always reading a minimum size of around 100 bytes and
  14. * tucking any superfluous bytes away in a temporary store. Still, that
  15. * leaves write requests out in the rain. An alternative may be to peek at
  16. * the first skb in the queue, and if it matches the next TCP sequence
  17. * number, to extract the record marker. Yuck.
  18. *
  19. * Copyright (C) 1995, 1996 Olaf Kirch <okir@monad.swb.de>
  20. */
  21. #include <linux/sched.h>
  22. #include <linux/errno.h>
  23. #include <linux/fcntl.h>
  24. #include <linux/net.h>
  25. #include <linux/in.h>
  26. #include <linux/inet.h>
  27. #include <linux/udp.h>
  28. #include <linux/tcp.h>
  29. #include <linux/unistd.h>
  30. #include <linux/slab.h>
  31. #include <linux/netdevice.h>
  32. #include <linux/skbuff.h>
  33. #include <linux/file.h>
  34. #include <linux/freezer.h>
  35. #include <net/sock.h>
  36. #include <net/checksum.h>
  37. #include <net/ip.h>
  38. #include <net/ipv6.h>
  39. #include <net/tcp_states.h>
  40. #include <asm/uaccess.h>
  41. #include <asm/ioctls.h>
  42. #include <linux/sunrpc/types.h>
  43. #include <linux/sunrpc/clnt.h>
  44. #include <linux/sunrpc/xdr.h>
  45. #include <linux/sunrpc/svcsock.h>
  46. #include <linux/sunrpc/stats.h>
  47. /* SMP locking strategy:
  48. *
  49. * svc_pool->sp_lock protects most of the fields of that pool.
  50. * svc_serv->sv_lock protects sv_tempsocks, sv_permsocks, sv_tmpcnt.
  51. * when both need to be taken (rare), svc_serv->sv_lock is first.
  52. * BKL protects svc_serv->sv_nrthread.
  53. * svc_sock->sk_defer_lock protects the svc_sock->sk_deferred list
  54. * svc_sock->sk_flags.SK_BUSY prevents a svc_sock being enqueued multiply.
  55. *
  56. * Some flags can be set to certain values at any time
  57. * providing that certain rules are followed:
  58. *
  59. * SK_CONN, SK_DATA, can be set or cleared at any time.
  60. * after a set, svc_sock_enqueue must be called.
  61. * after a clear, the socket must be read/accepted
  62. * if this succeeds, it must be set again.
  63. * SK_CLOSE can set at any time. It is never cleared.
  64. * sk_inuse contains a bias of '1' until SK_DEAD is set.
  65. * so when sk_inuse hits zero, we know the socket is dead
  66. * and no-one is using it.
  67. * SK_DEAD can only be set while SK_BUSY is held which ensures
  68. * no other thread will be using the socket or will try to
  69. * set SK_DEAD.
  70. *
  71. */
  72. #define RPCDBG_FACILITY RPCDBG_SVCSOCK
  73. static struct svc_sock *svc_setup_socket(struct svc_serv *, struct socket *,
  74. int *errp, int flags);
  75. static void svc_delete_socket(struct svc_sock *svsk);
  76. static void svc_udp_data_ready(struct sock *, int);
  77. static int svc_udp_recvfrom(struct svc_rqst *);
  78. static int svc_udp_sendto(struct svc_rqst *);
  79. static struct svc_deferred_req *svc_deferred_dequeue(struct svc_sock *svsk);
  80. static int svc_deferred_recv(struct svc_rqst *rqstp);
  81. static struct cache_deferred_req *svc_defer(struct cache_req *req);
  82. /* apparently the "standard" is that clients close
  83. * idle connections after 5 minutes, servers after
  84. * 6 minutes
  85. * http://www.connectathon.org/talks96/nfstcp.pdf
  86. */
  87. static int svc_conn_age_period = 6*60;
  88. #ifdef CONFIG_DEBUG_LOCK_ALLOC
  89. static struct lock_class_key svc_key[2];
  90. static struct lock_class_key svc_slock_key[2];
  91. static inline void svc_reclassify_socket(struct socket *sock)
  92. {
  93. struct sock *sk = sock->sk;
  94. BUG_ON(sk->sk_lock.owner != NULL);
  95. switch (sk->sk_family) {
  96. case AF_INET:
  97. sock_lock_init_class_and_name(sk, "slock-AF_INET-NFSD",
  98. &svc_slock_key[0], "sk_lock-AF_INET-NFSD", &svc_key[0]);
  99. break;
  100. case AF_INET6:
  101. sock_lock_init_class_and_name(sk, "slock-AF_INET6-NFSD",
  102. &svc_slock_key[1], "sk_lock-AF_INET6-NFSD", &svc_key[1]);
  103. break;
  104. default:
  105. BUG();
  106. }
  107. }
  108. #else
  109. static inline void svc_reclassify_socket(struct socket *sock)
  110. {
  111. }
  112. #endif
  113. static char *__svc_print_addr(struct sockaddr *addr, char *buf, size_t len)
  114. {
  115. switch (addr->sa_family) {
  116. case AF_INET:
  117. snprintf(buf, len, "%u.%u.%u.%u, port=%u",
  118. NIPQUAD(((struct sockaddr_in *) addr)->sin_addr),
  119. htons(((struct sockaddr_in *) addr)->sin_port));
  120. break;
  121. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  122. case AF_INET6:
  123. snprintf(buf, len, "%x:%x:%x:%x:%x:%x:%x:%x, port=%u",
  124. NIP6(((struct sockaddr_in6 *) addr)->sin6_addr),
  125. htons(((struct sockaddr_in6 *) addr)->sin6_port));
  126. break;
  127. #endif
  128. default:
  129. snprintf(buf, len, "unknown address type: %d", addr->sa_family);
  130. break;
  131. }
  132. return buf;
  133. }
  134. /**
  135. * svc_print_addr - Format rq_addr field for printing
  136. * @rqstp: svc_rqst struct containing address to print
  137. * @buf: target buffer for formatted address
  138. * @len: length of target buffer
  139. *
  140. */
  141. char *svc_print_addr(struct svc_rqst *rqstp, char *buf, size_t len)
  142. {
  143. return __svc_print_addr(svc_addr(rqstp), buf, len);
  144. }
  145. EXPORT_SYMBOL_GPL(svc_print_addr);
  146. /*
  147. * Queue up an idle server thread. Must have pool->sp_lock held.
  148. * Note: this is really a stack rather than a queue, so that we only
  149. * use as many different threads as we need, and the rest don't pollute
  150. * the cache.
  151. */
  152. static inline void
  153. svc_thread_enqueue(struct svc_pool *pool, struct svc_rqst *rqstp)
  154. {
  155. list_add(&rqstp->rq_list, &pool->sp_threads);
  156. }
  157. /*
  158. * Dequeue an nfsd thread. Must have pool->sp_lock held.
  159. */
  160. static inline void
  161. svc_thread_dequeue(struct svc_pool *pool, struct svc_rqst *rqstp)
  162. {
  163. list_del(&rqstp->rq_list);
  164. }
  165. /*
  166. * Release an skbuff after use
  167. */
  168. static inline void
  169. svc_release_skb(struct svc_rqst *rqstp)
  170. {
  171. struct sk_buff *skb = rqstp->rq_skbuff;
  172. struct svc_deferred_req *dr = rqstp->rq_deferred;
  173. if (skb) {
  174. rqstp->rq_skbuff = NULL;
  175. dprintk("svc: service %p, releasing skb %p\n", rqstp, skb);
  176. skb_free_datagram(rqstp->rq_sock->sk_sk, skb);
  177. }
  178. if (dr) {
  179. rqstp->rq_deferred = NULL;
  180. kfree(dr);
  181. }
  182. }
  183. /*
  184. * Any space to write?
  185. */
  186. static inline unsigned long
  187. svc_sock_wspace(struct svc_sock *svsk)
  188. {
  189. int wspace;
  190. if (svsk->sk_sock->type == SOCK_STREAM)
  191. wspace = sk_stream_wspace(svsk->sk_sk);
  192. else
  193. wspace = sock_wspace(svsk->sk_sk);
  194. return wspace;
  195. }
  196. /*
  197. * Queue up a socket with data pending. If there are idle nfsd
  198. * processes, wake 'em up.
  199. *
  200. */
  201. static void
  202. svc_sock_enqueue(struct svc_sock *svsk)
  203. {
  204. struct svc_serv *serv = svsk->sk_server;
  205. struct svc_pool *pool;
  206. struct svc_rqst *rqstp;
  207. int cpu;
  208. if (!(svsk->sk_flags &
  209. ( (1<<SK_CONN)|(1<<SK_DATA)|(1<<SK_CLOSE)|(1<<SK_DEFERRED)) ))
  210. return;
  211. if (test_bit(SK_DEAD, &svsk->sk_flags))
  212. return;
  213. cpu = get_cpu();
  214. pool = svc_pool_for_cpu(svsk->sk_server, cpu);
  215. put_cpu();
  216. spin_lock_bh(&pool->sp_lock);
  217. if (!list_empty(&pool->sp_threads) &&
  218. !list_empty(&pool->sp_sockets))
  219. printk(KERN_ERR
  220. "svc_sock_enqueue: threads and sockets both waiting??\n");
  221. if (test_bit(SK_DEAD, &svsk->sk_flags)) {
  222. /* Don't enqueue dead sockets */
  223. dprintk("svc: socket %p is dead, not enqueued\n", svsk->sk_sk);
  224. goto out_unlock;
  225. }
  226. /* Mark socket as busy. It will remain in this state until the
  227. * server has processed all pending data and put the socket back
  228. * on the idle list. We update SK_BUSY atomically because
  229. * it also guards against trying to enqueue the svc_sock twice.
  230. */
  231. if (test_and_set_bit(SK_BUSY, &svsk->sk_flags)) {
  232. /* Don't enqueue socket while already enqueued */
  233. dprintk("svc: socket %p busy, not enqueued\n", svsk->sk_sk);
  234. goto out_unlock;
  235. }
  236. BUG_ON(svsk->sk_pool != NULL);
  237. svsk->sk_pool = pool;
  238. set_bit(SOCK_NOSPACE, &svsk->sk_sock->flags);
  239. if (((atomic_read(&svsk->sk_reserved) + serv->sv_max_mesg)*2
  240. > svc_sock_wspace(svsk))
  241. && !test_bit(SK_CLOSE, &svsk->sk_flags)
  242. && !test_bit(SK_CONN, &svsk->sk_flags)) {
  243. /* Don't enqueue while not enough space for reply */
  244. dprintk("svc: socket %p no space, %d*2 > %ld, not enqueued\n",
  245. svsk->sk_sk, atomic_read(&svsk->sk_reserved)+serv->sv_max_mesg,
  246. svc_sock_wspace(svsk));
  247. svsk->sk_pool = NULL;
  248. clear_bit(SK_BUSY, &svsk->sk_flags);
  249. goto out_unlock;
  250. }
  251. clear_bit(SOCK_NOSPACE, &svsk->sk_sock->flags);
  252. if (!list_empty(&pool->sp_threads)) {
  253. rqstp = list_entry(pool->sp_threads.next,
  254. struct svc_rqst,
  255. rq_list);
  256. dprintk("svc: socket %p served by daemon %p\n",
  257. svsk->sk_sk, rqstp);
  258. svc_thread_dequeue(pool, rqstp);
  259. if (rqstp->rq_sock)
  260. printk(KERN_ERR
  261. "svc_sock_enqueue: server %p, rq_sock=%p!\n",
  262. rqstp, rqstp->rq_sock);
  263. rqstp->rq_sock = svsk;
  264. atomic_inc(&svsk->sk_inuse);
  265. rqstp->rq_reserved = serv->sv_max_mesg;
  266. atomic_add(rqstp->rq_reserved, &svsk->sk_reserved);
  267. BUG_ON(svsk->sk_pool != pool);
  268. wake_up(&rqstp->rq_wait);
  269. } else {
  270. dprintk("svc: socket %p put into queue\n", svsk->sk_sk);
  271. list_add_tail(&svsk->sk_ready, &pool->sp_sockets);
  272. BUG_ON(svsk->sk_pool != pool);
  273. }
  274. out_unlock:
  275. spin_unlock_bh(&pool->sp_lock);
  276. }
  277. /*
  278. * Dequeue the first socket. Must be called with the pool->sp_lock held.
  279. */
  280. static inline struct svc_sock *
  281. svc_sock_dequeue(struct svc_pool *pool)
  282. {
  283. struct svc_sock *svsk;
  284. if (list_empty(&pool->sp_sockets))
  285. return NULL;
  286. svsk = list_entry(pool->sp_sockets.next,
  287. struct svc_sock, sk_ready);
  288. list_del_init(&svsk->sk_ready);
  289. dprintk("svc: socket %p dequeued, inuse=%d\n",
  290. svsk->sk_sk, atomic_read(&svsk->sk_inuse));
  291. return svsk;
  292. }
  293. /*
  294. * Having read something from a socket, check whether it
  295. * needs to be re-enqueued.
  296. * Note: SK_DATA only gets cleared when a read-attempt finds
  297. * no (or insufficient) data.
  298. */
  299. static inline void
  300. svc_sock_received(struct svc_sock *svsk)
  301. {
  302. svsk->sk_pool = NULL;
  303. clear_bit(SK_BUSY, &svsk->sk_flags);
  304. svc_sock_enqueue(svsk);
  305. }
  306. /**
  307. * svc_reserve - change the space reserved for the reply to a request.
  308. * @rqstp: The request in question
  309. * @space: new max space to reserve
  310. *
  311. * Each request reserves some space on the output queue of the socket
  312. * to make sure the reply fits. This function reduces that reserved
  313. * space to be the amount of space used already, plus @space.
  314. *
  315. */
  316. void svc_reserve(struct svc_rqst *rqstp, int space)
  317. {
  318. space += rqstp->rq_res.head[0].iov_len;
  319. if (space < rqstp->rq_reserved) {
  320. struct svc_sock *svsk = rqstp->rq_sock;
  321. atomic_sub((rqstp->rq_reserved - space), &svsk->sk_reserved);
  322. rqstp->rq_reserved = space;
  323. svc_sock_enqueue(svsk);
  324. }
  325. }
  326. /*
  327. * Release a socket after use.
  328. */
  329. static inline void
  330. svc_sock_put(struct svc_sock *svsk)
  331. {
  332. if (atomic_dec_and_test(&svsk->sk_inuse)) {
  333. BUG_ON(! test_bit(SK_DEAD, &svsk->sk_flags));
  334. dprintk("svc: releasing dead socket\n");
  335. if (svsk->sk_sock->file)
  336. sockfd_put(svsk->sk_sock);
  337. else
  338. sock_release(svsk->sk_sock);
  339. if (svsk->sk_info_authunix != NULL)
  340. svcauth_unix_info_release(svsk->sk_info_authunix);
  341. kfree(svsk);
  342. }
  343. }
  344. static void
  345. svc_sock_release(struct svc_rqst *rqstp)
  346. {
  347. struct svc_sock *svsk = rqstp->rq_sock;
  348. svc_release_skb(rqstp);
  349. svc_free_res_pages(rqstp);
  350. rqstp->rq_res.page_len = 0;
  351. rqstp->rq_res.page_base = 0;
  352. /* Reset response buffer and release
  353. * the reservation.
  354. * But first, check that enough space was reserved
  355. * for the reply, otherwise we have a bug!
  356. */
  357. if ((rqstp->rq_res.len) > rqstp->rq_reserved)
  358. printk(KERN_ERR "RPC request reserved %d but used %d\n",
  359. rqstp->rq_reserved,
  360. rqstp->rq_res.len);
  361. rqstp->rq_res.head[0].iov_len = 0;
  362. svc_reserve(rqstp, 0);
  363. rqstp->rq_sock = NULL;
  364. svc_sock_put(svsk);
  365. }
  366. /*
  367. * External function to wake up a server waiting for data
  368. * This really only makes sense for services like lockd
  369. * which have exactly one thread anyway.
  370. */
  371. void
  372. svc_wake_up(struct svc_serv *serv)
  373. {
  374. struct svc_rqst *rqstp;
  375. unsigned int i;
  376. struct svc_pool *pool;
  377. for (i = 0; i < serv->sv_nrpools; i++) {
  378. pool = &serv->sv_pools[i];
  379. spin_lock_bh(&pool->sp_lock);
  380. if (!list_empty(&pool->sp_threads)) {
  381. rqstp = list_entry(pool->sp_threads.next,
  382. struct svc_rqst,
  383. rq_list);
  384. dprintk("svc: daemon %p woken up.\n", rqstp);
  385. /*
  386. svc_thread_dequeue(pool, rqstp);
  387. rqstp->rq_sock = NULL;
  388. */
  389. wake_up(&rqstp->rq_wait);
  390. }
  391. spin_unlock_bh(&pool->sp_lock);
  392. }
  393. }
  394. union svc_pktinfo_u {
  395. struct in_pktinfo pkti;
  396. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  397. struct in6_pktinfo pkti6;
  398. #endif
  399. };
  400. static void svc_set_cmsg_data(struct svc_rqst *rqstp, struct cmsghdr *cmh)
  401. {
  402. switch (rqstp->rq_sock->sk_sk->sk_family) {
  403. case AF_INET: {
  404. struct in_pktinfo *pki = CMSG_DATA(cmh);
  405. cmh->cmsg_level = SOL_IP;
  406. cmh->cmsg_type = IP_PKTINFO;
  407. pki->ipi_ifindex = 0;
  408. pki->ipi_spec_dst.s_addr = rqstp->rq_daddr.addr.s_addr;
  409. cmh->cmsg_len = CMSG_LEN(sizeof(*pki));
  410. }
  411. break;
  412. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  413. case AF_INET6: {
  414. struct in6_pktinfo *pki = CMSG_DATA(cmh);
  415. cmh->cmsg_level = SOL_IPV6;
  416. cmh->cmsg_type = IPV6_PKTINFO;
  417. pki->ipi6_ifindex = 0;
  418. ipv6_addr_copy(&pki->ipi6_addr,
  419. &rqstp->rq_daddr.addr6);
  420. cmh->cmsg_len = CMSG_LEN(sizeof(*pki));
  421. }
  422. break;
  423. #endif
  424. }
  425. return;
  426. }
  427. /*
  428. * Generic sendto routine
  429. */
  430. static int
  431. svc_sendto(struct svc_rqst *rqstp, struct xdr_buf *xdr)
  432. {
  433. struct svc_sock *svsk = rqstp->rq_sock;
  434. struct socket *sock = svsk->sk_sock;
  435. int slen;
  436. char buffer[CMSG_SPACE(sizeof(union svc_pktinfo_u))];
  437. struct cmsghdr *cmh = (struct cmsghdr *)buffer;
  438. int len = 0;
  439. int result;
  440. int size;
  441. struct page **ppage = xdr->pages;
  442. size_t base = xdr->page_base;
  443. unsigned int pglen = xdr->page_len;
  444. unsigned int flags = MSG_MORE;
  445. char buf[RPC_MAX_ADDRBUFLEN];
  446. slen = xdr->len;
  447. if (rqstp->rq_prot == IPPROTO_UDP) {
  448. struct msghdr msg = {
  449. .msg_name = &rqstp->rq_addr,
  450. .msg_namelen = rqstp->rq_addrlen,
  451. .msg_control = cmh,
  452. .msg_controllen = sizeof(buffer),
  453. .msg_flags = MSG_MORE,
  454. };
  455. svc_set_cmsg_data(rqstp, cmh);
  456. if (sock_sendmsg(sock, &msg, 0) < 0)
  457. goto out;
  458. }
  459. /* send head */
  460. if (slen == xdr->head[0].iov_len)
  461. flags = 0;
  462. len = kernel_sendpage(sock, rqstp->rq_respages[0], 0,
  463. xdr->head[0].iov_len, flags);
  464. if (len != xdr->head[0].iov_len)
  465. goto out;
  466. slen -= xdr->head[0].iov_len;
  467. if (slen == 0)
  468. goto out;
  469. /* send page data */
  470. size = PAGE_SIZE - base < pglen ? PAGE_SIZE - base : pglen;
  471. while (pglen > 0) {
  472. if (slen == size)
  473. flags = 0;
  474. result = kernel_sendpage(sock, *ppage, base, size, flags);
  475. if (result > 0)
  476. len += result;
  477. if (result != size)
  478. goto out;
  479. slen -= size;
  480. pglen -= size;
  481. size = PAGE_SIZE < pglen ? PAGE_SIZE : pglen;
  482. base = 0;
  483. ppage++;
  484. }
  485. /* send tail */
  486. if (xdr->tail[0].iov_len) {
  487. result = kernel_sendpage(sock, rqstp->rq_respages[0],
  488. ((unsigned long)xdr->tail[0].iov_base)
  489. & (PAGE_SIZE-1),
  490. xdr->tail[0].iov_len, 0);
  491. if (result > 0)
  492. len += result;
  493. }
  494. out:
  495. dprintk("svc: socket %p sendto([%p %Zu... ], %d) = %d (addr %s)\n",
  496. rqstp->rq_sock, xdr->head[0].iov_base, xdr->head[0].iov_len,
  497. xdr->len, len, svc_print_addr(rqstp, buf, sizeof(buf)));
  498. return len;
  499. }
  500. /*
  501. * Report socket names for nfsdfs
  502. */
  503. static int one_sock_name(char *buf, struct svc_sock *svsk)
  504. {
  505. int len;
  506. switch(svsk->sk_sk->sk_family) {
  507. case AF_INET:
  508. len = sprintf(buf, "ipv4 %s %u.%u.%u.%u %d\n",
  509. svsk->sk_sk->sk_protocol==IPPROTO_UDP?
  510. "udp" : "tcp",
  511. NIPQUAD(inet_sk(svsk->sk_sk)->rcv_saddr),
  512. inet_sk(svsk->sk_sk)->num);
  513. break;
  514. default:
  515. len = sprintf(buf, "*unknown-%d*\n",
  516. svsk->sk_sk->sk_family);
  517. }
  518. return len;
  519. }
  520. int
  521. svc_sock_names(char *buf, struct svc_serv *serv, char *toclose)
  522. {
  523. struct svc_sock *svsk, *closesk = NULL;
  524. int len = 0;
  525. if (!serv)
  526. return 0;
  527. spin_lock_bh(&serv->sv_lock);
  528. list_for_each_entry(svsk, &serv->sv_permsocks, sk_list) {
  529. int onelen = one_sock_name(buf+len, svsk);
  530. if (toclose && strcmp(toclose, buf+len) == 0)
  531. closesk = svsk;
  532. else
  533. len += onelen;
  534. }
  535. spin_unlock_bh(&serv->sv_lock);
  536. if (closesk)
  537. /* Should unregister with portmap, but you cannot
  538. * unregister just one protocol...
  539. */
  540. svc_close_socket(closesk);
  541. else if (toclose)
  542. return -ENOENT;
  543. return len;
  544. }
  545. EXPORT_SYMBOL(svc_sock_names);
  546. /*
  547. * Check input queue length
  548. */
  549. static int
  550. svc_recv_available(struct svc_sock *svsk)
  551. {
  552. struct socket *sock = svsk->sk_sock;
  553. int avail, err;
  554. err = kernel_sock_ioctl(sock, TIOCINQ, (unsigned long) &avail);
  555. return (err >= 0)? avail : err;
  556. }
  557. /*
  558. * Generic recvfrom routine.
  559. */
  560. static int
  561. svc_recvfrom(struct svc_rqst *rqstp, struct kvec *iov, int nr, int buflen)
  562. {
  563. struct svc_sock *svsk = rqstp->rq_sock;
  564. struct msghdr msg = {
  565. .msg_flags = MSG_DONTWAIT,
  566. };
  567. int len;
  568. len = kernel_recvmsg(svsk->sk_sock, &msg, iov, nr, buflen,
  569. msg.msg_flags);
  570. /* sock_recvmsg doesn't fill in the name/namelen, so we must..
  571. */
  572. memcpy(&rqstp->rq_addr, &svsk->sk_remote, svsk->sk_remotelen);
  573. rqstp->rq_addrlen = svsk->sk_remotelen;
  574. dprintk("svc: socket %p recvfrom(%p, %Zu) = %d\n",
  575. svsk, iov[0].iov_base, iov[0].iov_len, len);
  576. return len;
  577. }
  578. /*
  579. * Set socket snd and rcv buffer lengths
  580. */
  581. static inline void
  582. svc_sock_setbufsize(struct socket *sock, unsigned int snd, unsigned int rcv)
  583. {
  584. #if 0
  585. mm_segment_t oldfs;
  586. oldfs = get_fs(); set_fs(KERNEL_DS);
  587. sock_setsockopt(sock, SOL_SOCKET, SO_SNDBUF,
  588. (char*)&snd, sizeof(snd));
  589. sock_setsockopt(sock, SOL_SOCKET, SO_RCVBUF,
  590. (char*)&rcv, sizeof(rcv));
  591. #else
  592. /* sock_setsockopt limits use to sysctl_?mem_max,
  593. * which isn't acceptable. Until that is made conditional
  594. * on not having CAP_SYS_RESOURCE or similar, we go direct...
  595. * DaveM said I could!
  596. */
  597. lock_sock(sock->sk);
  598. sock->sk->sk_sndbuf = snd * 2;
  599. sock->sk->sk_rcvbuf = rcv * 2;
  600. sock->sk->sk_userlocks |= SOCK_SNDBUF_LOCK|SOCK_RCVBUF_LOCK;
  601. release_sock(sock->sk);
  602. #endif
  603. }
  604. /*
  605. * INET callback when data has been received on the socket.
  606. */
  607. static void
  608. svc_udp_data_ready(struct sock *sk, int count)
  609. {
  610. struct svc_sock *svsk = (struct svc_sock *)sk->sk_user_data;
  611. if (svsk) {
  612. dprintk("svc: socket %p(inet %p), count=%d, busy=%d\n",
  613. svsk, sk, count, test_bit(SK_BUSY, &svsk->sk_flags));
  614. set_bit(SK_DATA, &svsk->sk_flags);
  615. svc_sock_enqueue(svsk);
  616. }
  617. if (sk->sk_sleep && waitqueue_active(sk->sk_sleep))
  618. wake_up_interruptible(sk->sk_sleep);
  619. }
  620. /*
  621. * INET callback when space is newly available on the socket.
  622. */
  623. static void
  624. svc_write_space(struct sock *sk)
  625. {
  626. struct svc_sock *svsk = (struct svc_sock *)(sk->sk_user_data);
  627. if (svsk) {
  628. dprintk("svc: socket %p(inet %p), write_space busy=%d\n",
  629. svsk, sk, test_bit(SK_BUSY, &svsk->sk_flags));
  630. svc_sock_enqueue(svsk);
  631. }
  632. if (sk->sk_sleep && waitqueue_active(sk->sk_sleep)) {
  633. dprintk("RPC svc_write_space: someone sleeping on %p\n",
  634. svsk);
  635. wake_up_interruptible(sk->sk_sleep);
  636. }
  637. }
  638. static inline void svc_udp_get_dest_address(struct svc_rqst *rqstp,
  639. struct cmsghdr *cmh)
  640. {
  641. switch (rqstp->rq_sock->sk_sk->sk_family) {
  642. case AF_INET: {
  643. struct in_pktinfo *pki = CMSG_DATA(cmh);
  644. rqstp->rq_daddr.addr.s_addr = pki->ipi_spec_dst.s_addr;
  645. break;
  646. }
  647. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  648. case AF_INET6: {
  649. struct in6_pktinfo *pki = CMSG_DATA(cmh);
  650. ipv6_addr_copy(&rqstp->rq_daddr.addr6, &pki->ipi6_addr);
  651. break;
  652. }
  653. #endif
  654. }
  655. }
  656. /*
  657. * Receive a datagram from a UDP socket.
  658. */
  659. static int
  660. svc_udp_recvfrom(struct svc_rqst *rqstp)
  661. {
  662. struct svc_sock *svsk = rqstp->rq_sock;
  663. struct svc_serv *serv = svsk->sk_server;
  664. struct sk_buff *skb;
  665. char buffer[CMSG_SPACE(sizeof(union svc_pktinfo_u))];
  666. struct cmsghdr *cmh = (struct cmsghdr *)buffer;
  667. int err, len;
  668. struct msghdr msg = {
  669. .msg_name = svc_addr(rqstp),
  670. .msg_control = cmh,
  671. .msg_controllen = sizeof(buffer),
  672. .msg_flags = MSG_DONTWAIT,
  673. };
  674. if (test_and_clear_bit(SK_CHNGBUF, &svsk->sk_flags))
  675. /* udp sockets need large rcvbuf as all pending
  676. * requests are still in that buffer. sndbuf must
  677. * also be large enough that there is enough space
  678. * for one reply per thread. We count all threads
  679. * rather than threads in a particular pool, which
  680. * provides an upper bound on the number of threads
  681. * which will access the socket.
  682. */
  683. svc_sock_setbufsize(svsk->sk_sock,
  684. (serv->sv_nrthreads+3) * serv->sv_max_mesg,
  685. (serv->sv_nrthreads+3) * serv->sv_max_mesg);
  686. if ((rqstp->rq_deferred = svc_deferred_dequeue(svsk))) {
  687. svc_sock_received(svsk);
  688. return svc_deferred_recv(rqstp);
  689. }
  690. if (test_bit(SK_CLOSE, &svsk->sk_flags)) {
  691. svc_delete_socket(svsk);
  692. return 0;
  693. }
  694. clear_bit(SK_DATA, &svsk->sk_flags);
  695. while ((err == kernel_recvmsg(svsk->sk_sock, &msg, NULL,
  696. 0, 0, MSG_PEEK | MSG_DONTWAIT)) < 0 ||
  697. (skb = skb_recv_datagram(svsk->sk_sk, 0, 1, &err)) == NULL) {
  698. if (err == -EAGAIN) {
  699. svc_sock_received(svsk);
  700. return err;
  701. }
  702. /* possibly an icmp error */
  703. dprintk("svc: recvfrom returned error %d\n", -err);
  704. }
  705. rqstp->rq_addrlen = sizeof(rqstp->rq_addr);
  706. if (skb->tstamp.off_sec == 0) {
  707. struct timeval tv;
  708. tv.tv_sec = xtime.tv_sec;
  709. tv.tv_usec = xtime.tv_nsec / NSEC_PER_USEC;
  710. skb_set_timestamp(skb, &tv);
  711. /* Don't enable netstamp, sunrpc doesn't
  712. need that much accuracy */
  713. }
  714. skb_get_timestamp(skb, &svsk->sk_sk->sk_stamp);
  715. set_bit(SK_DATA, &svsk->sk_flags); /* there may be more data... */
  716. /*
  717. * Maybe more packets - kick another thread ASAP.
  718. */
  719. svc_sock_received(svsk);
  720. len = skb->len - sizeof(struct udphdr);
  721. rqstp->rq_arg.len = len;
  722. rqstp->rq_prot = IPPROTO_UDP;
  723. if (cmh->cmsg_level != IPPROTO_IP ||
  724. cmh->cmsg_type != IP_PKTINFO) {
  725. if (net_ratelimit())
  726. printk("rpcsvc: received unknown control message:"
  727. "%d/%d\n",
  728. cmh->cmsg_level, cmh->cmsg_type);
  729. skb_free_datagram(svsk->sk_sk, skb);
  730. return 0;
  731. }
  732. svc_udp_get_dest_address(rqstp, cmh);
  733. if (skb_is_nonlinear(skb)) {
  734. /* we have to copy */
  735. local_bh_disable();
  736. if (csum_partial_copy_to_xdr(&rqstp->rq_arg, skb)) {
  737. local_bh_enable();
  738. /* checksum error */
  739. skb_free_datagram(svsk->sk_sk, skb);
  740. return 0;
  741. }
  742. local_bh_enable();
  743. skb_free_datagram(svsk->sk_sk, skb);
  744. } else {
  745. /* we can use it in-place */
  746. rqstp->rq_arg.head[0].iov_base = skb->data + sizeof(struct udphdr);
  747. rqstp->rq_arg.head[0].iov_len = len;
  748. if (skb_checksum_complete(skb)) {
  749. skb_free_datagram(svsk->sk_sk, skb);
  750. return 0;
  751. }
  752. rqstp->rq_skbuff = skb;
  753. }
  754. rqstp->rq_arg.page_base = 0;
  755. if (len <= rqstp->rq_arg.head[0].iov_len) {
  756. rqstp->rq_arg.head[0].iov_len = len;
  757. rqstp->rq_arg.page_len = 0;
  758. rqstp->rq_respages = rqstp->rq_pages+1;
  759. } else {
  760. rqstp->rq_arg.page_len = len - rqstp->rq_arg.head[0].iov_len;
  761. rqstp->rq_respages = rqstp->rq_pages + 1 +
  762. (rqstp->rq_arg.page_len + PAGE_SIZE - 1)/ PAGE_SIZE;
  763. }
  764. if (serv->sv_stats)
  765. serv->sv_stats->netudpcnt++;
  766. return len;
  767. }
  768. static int
  769. svc_udp_sendto(struct svc_rqst *rqstp)
  770. {
  771. int error;
  772. error = svc_sendto(rqstp, &rqstp->rq_res);
  773. if (error == -ECONNREFUSED)
  774. /* ICMP error on earlier request. */
  775. error = svc_sendto(rqstp, &rqstp->rq_res);
  776. return error;
  777. }
  778. static void
  779. svc_udp_init(struct svc_sock *svsk)
  780. {
  781. int one = 1;
  782. mm_segment_t oldfs;
  783. svsk->sk_sk->sk_data_ready = svc_udp_data_ready;
  784. svsk->sk_sk->sk_write_space = svc_write_space;
  785. svsk->sk_recvfrom = svc_udp_recvfrom;
  786. svsk->sk_sendto = svc_udp_sendto;
  787. /* initialise setting must have enough space to
  788. * receive and respond to one request.
  789. * svc_udp_recvfrom will re-adjust if necessary
  790. */
  791. svc_sock_setbufsize(svsk->sk_sock,
  792. 3 * svsk->sk_server->sv_max_mesg,
  793. 3 * svsk->sk_server->sv_max_mesg);
  794. set_bit(SK_DATA, &svsk->sk_flags); /* might have come in before data_ready set up */
  795. set_bit(SK_CHNGBUF, &svsk->sk_flags);
  796. oldfs = get_fs();
  797. set_fs(KERNEL_DS);
  798. /* make sure we get destination address info */
  799. svsk->sk_sock->ops->setsockopt(svsk->sk_sock, IPPROTO_IP, IP_PKTINFO,
  800. (char __user *)&one, sizeof(one));
  801. set_fs(oldfs);
  802. }
  803. /*
  804. * A data_ready event on a listening socket means there's a connection
  805. * pending. Do not use state_change as a substitute for it.
  806. */
  807. static void
  808. svc_tcp_listen_data_ready(struct sock *sk, int count_unused)
  809. {
  810. struct svc_sock *svsk = (struct svc_sock *)sk->sk_user_data;
  811. dprintk("svc: socket %p TCP (listen) state change %d\n",
  812. sk, sk->sk_state);
  813. /*
  814. * This callback may called twice when a new connection
  815. * is established as a child socket inherits everything
  816. * from a parent LISTEN socket.
  817. * 1) data_ready method of the parent socket will be called
  818. * when one of child sockets become ESTABLISHED.
  819. * 2) data_ready method of the child socket may be called
  820. * when it receives data before the socket is accepted.
  821. * In case of 2, we should ignore it silently.
  822. */
  823. if (sk->sk_state == TCP_LISTEN) {
  824. if (svsk) {
  825. set_bit(SK_CONN, &svsk->sk_flags);
  826. svc_sock_enqueue(svsk);
  827. } else
  828. printk("svc: socket %p: no user data\n", sk);
  829. }
  830. if (sk->sk_sleep && waitqueue_active(sk->sk_sleep))
  831. wake_up_interruptible_all(sk->sk_sleep);
  832. }
  833. /*
  834. * A state change on a connected socket means it's dying or dead.
  835. */
  836. static void
  837. svc_tcp_state_change(struct sock *sk)
  838. {
  839. struct svc_sock *svsk = (struct svc_sock *)sk->sk_user_data;
  840. dprintk("svc: socket %p TCP (connected) state change %d (svsk %p)\n",
  841. sk, sk->sk_state, sk->sk_user_data);
  842. if (!svsk)
  843. printk("svc: socket %p: no user data\n", sk);
  844. else {
  845. set_bit(SK_CLOSE, &svsk->sk_flags);
  846. svc_sock_enqueue(svsk);
  847. }
  848. if (sk->sk_sleep && waitqueue_active(sk->sk_sleep))
  849. wake_up_interruptible_all(sk->sk_sleep);
  850. }
  851. static void
  852. svc_tcp_data_ready(struct sock *sk, int count)
  853. {
  854. struct svc_sock *svsk = (struct svc_sock *)sk->sk_user_data;
  855. dprintk("svc: socket %p TCP data ready (svsk %p)\n",
  856. sk, sk->sk_user_data);
  857. if (svsk) {
  858. set_bit(SK_DATA, &svsk->sk_flags);
  859. svc_sock_enqueue(svsk);
  860. }
  861. if (sk->sk_sleep && waitqueue_active(sk->sk_sleep))
  862. wake_up_interruptible(sk->sk_sleep);
  863. }
  864. static inline int svc_port_is_privileged(struct sockaddr *sin)
  865. {
  866. switch (sin->sa_family) {
  867. case AF_INET:
  868. return ntohs(((struct sockaddr_in *)sin)->sin_port)
  869. < PROT_SOCK;
  870. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  871. case AF_INET6:
  872. return ntohs(((struct sockaddr_in6 *)sin)->sin6_port)
  873. < PROT_SOCK;
  874. #endif
  875. default:
  876. return 0;
  877. }
  878. }
  879. /*
  880. * Accept a TCP connection
  881. */
  882. static void
  883. svc_tcp_accept(struct svc_sock *svsk)
  884. {
  885. struct sockaddr_storage addr;
  886. struct sockaddr *sin = (struct sockaddr *) &addr;
  887. struct svc_serv *serv = svsk->sk_server;
  888. struct socket *sock = svsk->sk_sock;
  889. struct socket *newsock;
  890. struct svc_sock *newsvsk;
  891. int err, slen;
  892. char buf[RPC_MAX_ADDRBUFLEN];
  893. dprintk("svc: tcp_accept %p sock %p\n", svsk, sock);
  894. if (!sock)
  895. return;
  896. clear_bit(SK_CONN, &svsk->sk_flags);
  897. err = kernel_accept(sock, &newsock, O_NONBLOCK);
  898. if (err < 0) {
  899. if (err == -ENOMEM)
  900. printk(KERN_WARNING "%s: no more sockets!\n",
  901. serv->sv_name);
  902. else if (err != -EAGAIN && net_ratelimit())
  903. printk(KERN_WARNING "%s: accept failed (err %d)!\n",
  904. serv->sv_name, -err);
  905. return;
  906. }
  907. set_bit(SK_CONN, &svsk->sk_flags);
  908. svc_sock_enqueue(svsk);
  909. err = kernel_getpeername(newsock, sin, &slen);
  910. if (err < 0) {
  911. if (net_ratelimit())
  912. printk(KERN_WARNING "%s: peername failed (err %d)!\n",
  913. serv->sv_name, -err);
  914. goto failed; /* aborted connection or whatever */
  915. }
  916. /* Ideally, we would want to reject connections from unauthorized
  917. * hosts here, but when we get encryption, the IP of the host won't
  918. * tell us anything. For now just warn about unpriv connections.
  919. */
  920. if (!svc_port_is_privileged(sin)) {
  921. dprintk(KERN_WARNING
  922. "%s: connect from unprivileged port: %s\n",
  923. serv->sv_name,
  924. __svc_print_addr(sin, buf, sizeof(buf)));
  925. }
  926. dprintk("%s: connect from %s\n", serv->sv_name,
  927. __svc_print_addr(sin, buf, sizeof(buf)));
  928. /* make sure that a write doesn't block forever when
  929. * low on memory
  930. */
  931. newsock->sk->sk_sndtimeo = HZ*30;
  932. if (!(newsvsk = svc_setup_socket(serv, newsock, &err,
  933. (SVC_SOCK_ANONYMOUS | SVC_SOCK_TEMPORARY))))
  934. goto failed;
  935. memcpy(&newsvsk->sk_remote, sin, slen);
  936. newsvsk->sk_remotelen = slen;
  937. svc_sock_received(newsvsk);
  938. /* make sure that we don't have too many active connections.
  939. * If we have, something must be dropped.
  940. *
  941. * There's no point in trying to do random drop here for
  942. * DoS prevention. The NFS clients does 1 reconnect in 15
  943. * seconds. An attacker can easily beat that.
  944. *
  945. * The only somewhat efficient mechanism would be if drop
  946. * old connections from the same IP first. But right now
  947. * we don't even record the client IP in svc_sock.
  948. */
  949. if (serv->sv_tmpcnt > (serv->sv_nrthreads+3)*20) {
  950. struct svc_sock *svsk = NULL;
  951. spin_lock_bh(&serv->sv_lock);
  952. if (!list_empty(&serv->sv_tempsocks)) {
  953. if (net_ratelimit()) {
  954. /* Try to help the admin */
  955. printk(KERN_NOTICE "%s: too many open TCP "
  956. "sockets, consider increasing the "
  957. "number of nfsd threads\n",
  958. serv->sv_name);
  959. printk(KERN_NOTICE
  960. "%s: last TCP connect from %s\n",
  961. serv->sv_name, buf);
  962. }
  963. /*
  964. * Always select the oldest socket. It's not fair,
  965. * but so is life
  966. */
  967. svsk = list_entry(serv->sv_tempsocks.prev,
  968. struct svc_sock,
  969. sk_list);
  970. set_bit(SK_CLOSE, &svsk->sk_flags);
  971. atomic_inc(&svsk->sk_inuse);
  972. }
  973. spin_unlock_bh(&serv->sv_lock);
  974. if (svsk) {
  975. svc_sock_enqueue(svsk);
  976. svc_sock_put(svsk);
  977. }
  978. }
  979. if (serv->sv_stats)
  980. serv->sv_stats->nettcpconn++;
  981. return;
  982. failed:
  983. sock_release(newsock);
  984. return;
  985. }
  986. /*
  987. * Receive data from a TCP socket.
  988. */
  989. static int
  990. svc_tcp_recvfrom(struct svc_rqst *rqstp)
  991. {
  992. struct svc_sock *svsk = rqstp->rq_sock;
  993. struct svc_serv *serv = svsk->sk_server;
  994. int len;
  995. struct kvec *vec;
  996. int pnum, vlen;
  997. dprintk("svc: tcp_recv %p data %d conn %d close %d\n",
  998. svsk, test_bit(SK_DATA, &svsk->sk_flags),
  999. test_bit(SK_CONN, &svsk->sk_flags),
  1000. test_bit(SK_CLOSE, &svsk->sk_flags));
  1001. if ((rqstp->rq_deferred = svc_deferred_dequeue(svsk))) {
  1002. svc_sock_received(svsk);
  1003. return svc_deferred_recv(rqstp);
  1004. }
  1005. if (test_bit(SK_CLOSE, &svsk->sk_flags)) {
  1006. svc_delete_socket(svsk);
  1007. return 0;
  1008. }
  1009. if (svsk->sk_sk->sk_state == TCP_LISTEN) {
  1010. svc_tcp_accept(svsk);
  1011. svc_sock_received(svsk);
  1012. return 0;
  1013. }
  1014. if (test_and_clear_bit(SK_CHNGBUF, &svsk->sk_flags))
  1015. /* sndbuf needs to have room for one request
  1016. * per thread, otherwise we can stall even when the
  1017. * network isn't a bottleneck.
  1018. *
  1019. * We count all threads rather than threads in a
  1020. * particular pool, which provides an upper bound
  1021. * on the number of threads which will access the socket.
  1022. *
  1023. * rcvbuf just needs to be able to hold a few requests.
  1024. * Normally they will be removed from the queue
  1025. * as soon a a complete request arrives.
  1026. */
  1027. svc_sock_setbufsize(svsk->sk_sock,
  1028. (serv->sv_nrthreads+3) * serv->sv_max_mesg,
  1029. 3 * serv->sv_max_mesg);
  1030. clear_bit(SK_DATA, &svsk->sk_flags);
  1031. /* Receive data. If we haven't got the record length yet, get
  1032. * the next four bytes. Otherwise try to gobble up as much as
  1033. * possible up to the complete record length.
  1034. */
  1035. if (svsk->sk_tcplen < 4) {
  1036. unsigned long want = 4 - svsk->sk_tcplen;
  1037. struct kvec iov;
  1038. iov.iov_base = ((char *) &svsk->sk_reclen) + svsk->sk_tcplen;
  1039. iov.iov_len = want;
  1040. if ((len = svc_recvfrom(rqstp, &iov, 1, want)) < 0)
  1041. goto error;
  1042. svsk->sk_tcplen += len;
  1043. if (len < want) {
  1044. dprintk("svc: short recvfrom while reading record length (%d of %lu)\n",
  1045. len, want);
  1046. svc_sock_received(svsk);
  1047. return -EAGAIN; /* record header not complete */
  1048. }
  1049. svsk->sk_reclen = ntohl(svsk->sk_reclen);
  1050. if (!(svsk->sk_reclen & 0x80000000)) {
  1051. /* FIXME: technically, a record can be fragmented,
  1052. * and non-terminal fragments will not have the top
  1053. * bit set in the fragment length header.
  1054. * But apparently no known nfs clients send fragmented
  1055. * records. */
  1056. if (net_ratelimit())
  1057. printk(KERN_NOTICE "RPC: bad TCP reclen 0x%08lx"
  1058. " (non-terminal)\n",
  1059. (unsigned long) svsk->sk_reclen);
  1060. goto err_delete;
  1061. }
  1062. svsk->sk_reclen &= 0x7fffffff;
  1063. dprintk("svc: TCP record, %d bytes\n", svsk->sk_reclen);
  1064. if (svsk->sk_reclen > serv->sv_max_mesg) {
  1065. if (net_ratelimit())
  1066. printk(KERN_NOTICE "RPC: bad TCP reclen 0x%08lx"
  1067. " (large)\n",
  1068. (unsigned long) svsk->sk_reclen);
  1069. goto err_delete;
  1070. }
  1071. }
  1072. /* Check whether enough data is available */
  1073. len = svc_recv_available(svsk);
  1074. if (len < 0)
  1075. goto error;
  1076. if (len < svsk->sk_reclen) {
  1077. dprintk("svc: incomplete TCP record (%d of %d)\n",
  1078. len, svsk->sk_reclen);
  1079. svc_sock_received(svsk);
  1080. return -EAGAIN; /* record not complete */
  1081. }
  1082. len = svsk->sk_reclen;
  1083. set_bit(SK_DATA, &svsk->sk_flags);
  1084. vec = rqstp->rq_vec;
  1085. vec[0] = rqstp->rq_arg.head[0];
  1086. vlen = PAGE_SIZE;
  1087. pnum = 1;
  1088. while (vlen < len) {
  1089. vec[pnum].iov_base = page_address(rqstp->rq_pages[pnum]);
  1090. vec[pnum].iov_len = PAGE_SIZE;
  1091. pnum++;
  1092. vlen += PAGE_SIZE;
  1093. }
  1094. rqstp->rq_respages = &rqstp->rq_pages[pnum];
  1095. /* Now receive data */
  1096. len = svc_recvfrom(rqstp, vec, pnum, len);
  1097. if (len < 0)
  1098. goto error;
  1099. dprintk("svc: TCP complete record (%d bytes)\n", len);
  1100. rqstp->rq_arg.len = len;
  1101. rqstp->rq_arg.page_base = 0;
  1102. if (len <= rqstp->rq_arg.head[0].iov_len) {
  1103. rqstp->rq_arg.head[0].iov_len = len;
  1104. rqstp->rq_arg.page_len = 0;
  1105. } else {
  1106. rqstp->rq_arg.page_len = len - rqstp->rq_arg.head[0].iov_len;
  1107. }
  1108. rqstp->rq_skbuff = NULL;
  1109. rqstp->rq_prot = IPPROTO_TCP;
  1110. /* Reset TCP read info */
  1111. svsk->sk_reclen = 0;
  1112. svsk->sk_tcplen = 0;
  1113. svc_sock_received(svsk);
  1114. if (serv->sv_stats)
  1115. serv->sv_stats->nettcpcnt++;
  1116. return len;
  1117. err_delete:
  1118. svc_delete_socket(svsk);
  1119. return -EAGAIN;
  1120. error:
  1121. if (len == -EAGAIN) {
  1122. dprintk("RPC: TCP recvfrom got EAGAIN\n");
  1123. svc_sock_received(svsk);
  1124. } else {
  1125. printk(KERN_NOTICE "%s: recvfrom returned errno %d\n",
  1126. svsk->sk_server->sv_name, -len);
  1127. goto err_delete;
  1128. }
  1129. return len;
  1130. }
  1131. /*
  1132. * Send out data on TCP socket.
  1133. */
  1134. static int
  1135. svc_tcp_sendto(struct svc_rqst *rqstp)
  1136. {
  1137. struct xdr_buf *xbufp = &rqstp->rq_res;
  1138. int sent;
  1139. __be32 reclen;
  1140. /* Set up the first element of the reply kvec.
  1141. * Any other kvecs that may be in use have been taken
  1142. * care of by the server implementation itself.
  1143. */
  1144. reclen = htonl(0x80000000|((xbufp->len ) - 4));
  1145. memcpy(xbufp->head[0].iov_base, &reclen, 4);
  1146. if (test_bit(SK_DEAD, &rqstp->rq_sock->sk_flags))
  1147. return -ENOTCONN;
  1148. sent = svc_sendto(rqstp, &rqstp->rq_res);
  1149. if (sent != xbufp->len) {
  1150. printk(KERN_NOTICE "rpc-srv/tcp: %s: %s %d when sending %d bytes - shutting down socket\n",
  1151. rqstp->rq_sock->sk_server->sv_name,
  1152. (sent<0)?"got error":"sent only",
  1153. sent, xbufp->len);
  1154. set_bit(SK_CLOSE, &rqstp->rq_sock->sk_flags);
  1155. svc_sock_enqueue(rqstp->rq_sock);
  1156. sent = -EAGAIN;
  1157. }
  1158. return sent;
  1159. }
  1160. static void
  1161. svc_tcp_init(struct svc_sock *svsk)
  1162. {
  1163. struct sock *sk = svsk->sk_sk;
  1164. struct tcp_sock *tp = tcp_sk(sk);
  1165. svsk->sk_recvfrom = svc_tcp_recvfrom;
  1166. svsk->sk_sendto = svc_tcp_sendto;
  1167. if (sk->sk_state == TCP_LISTEN) {
  1168. dprintk("setting up TCP socket for listening\n");
  1169. sk->sk_data_ready = svc_tcp_listen_data_ready;
  1170. set_bit(SK_CONN, &svsk->sk_flags);
  1171. } else {
  1172. dprintk("setting up TCP socket for reading\n");
  1173. sk->sk_state_change = svc_tcp_state_change;
  1174. sk->sk_data_ready = svc_tcp_data_ready;
  1175. sk->sk_write_space = svc_write_space;
  1176. svsk->sk_reclen = 0;
  1177. svsk->sk_tcplen = 0;
  1178. tp->nonagle = 1; /* disable Nagle's algorithm */
  1179. /* initialise setting must have enough space to
  1180. * receive and respond to one request.
  1181. * svc_tcp_recvfrom will re-adjust if necessary
  1182. */
  1183. svc_sock_setbufsize(svsk->sk_sock,
  1184. 3 * svsk->sk_server->sv_max_mesg,
  1185. 3 * svsk->sk_server->sv_max_mesg);
  1186. set_bit(SK_CHNGBUF, &svsk->sk_flags);
  1187. set_bit(SK_DATA, &svsk->sk_flags);
  1188. if (sk->sk_state != TCP_ESTABLISHED)
  1189. set_bit(SK_CLOSE, &svsk->sk_flags);
  1190. }
  1191. }
  1192. void
  1193. svc_sock_update_bufs(struct svc_serv *serv)
  1194. {
  1195. /*
  1196. * The number of server threads has changed. Update
  1197. * rcvbuf and sndbuf accordingly on all sockets
  1198. */
  1199. struct list_head *le;
  1200. spin_lock_bh(&serv->sv_lock);
  1201. list_for_each(le, &serv->sv_permsocks) {
  1202. struct svc_sock *svsk =
  1203. list_entry(le, struct svc_sock, sk_list);
  1204. set_bit(SK_CHNGBUF, &svsk->sk_flags);
  1205. }
  1206. list_for_each(le, &serv->sv_tempsocks) {
  1207. struct svc_sock *svsk =
  1208. list_entry(le, struct svc_sock, sk_list);
  1209. set_bit(SK_CHNGBUF, &svsk->sk_flags);
  1210. }
  1211. spin_unlock_bh(&serv->sv_lock);
  1212. }
  1213. /*
  1214. * Receive the next request on any socket. This code is carefully
  1215. * organised not to touch any cachelines in the shared svc_serv
  1216. * structure, only cachelines in the local svc_pool.
  1217. */
  1218. int
  1219. svc_recv(struct svc_rqst *rqstp, long timeout)
  1220. {
  1221. struct svc_sock *svsk = NULL;
  1222. struct svc_serv *serv = rqstp->rq_server;
  1223. struct svc_pool *pool = rqstp->rq_pool;
  1224. int len, i;
  1225. int pages;
  1226. struct xdr_buf *arg;
  1227. DECLARE_WAITQUEUE(wait, current);
  1228. dprintk("svc: server %p waiting for data (to = %ld)\n",
  1229. rqstp, timeout);
  1230. if (rqstp->rq_sock)
  1231. printk(KERN_ERR
  1232. "svc_recv: service %p, socket not NULL!\n",
  1233. rqstp);
  1234. if (waitqueue_active(&rqstp->rq_wait))
  1235. printk(KERN_ERR
  1236. "svc_recv: service %p, wait queue active!\n",
  1237. rqstp);
  1238. /* now allocate needed pages. If we get a failure, sleep briefly */
  1239. pages = (serv->sv_max_mesg + PAGE_SIZE) / PAGE_SIZE;
  1240. for (i=0; i < pages ; i++)
  1241. while (rqstp->rq_pages[i] == NULL) {
  1242. struct page *p = alloc_page(GFP_KERNEL);
  1243. if (!p)
  1244. schedule_timeout_uninterruptible(msecs_to_jiffies(500));
  1245. rqstp->rq_pages[i] = p;
  1246. }
  1247. rqstp->rq_pages[i++] = NULL; /* this might be seen in nfs_read_actor */
  1248. BUG_ON(pages >= RPCSVC_MAXPAGES);
  1249. /* Make arg->head point to first page and arg->pages point to rest */
  1250. arg = &rqstp->rq_arg;
  1251. arg->head[0].iov_base = page_address(rqstp->rq_pages[0]);
  1252. arg->head[0].iov_len = PAGE_SIZE;
  1253. arg->pages = rqstp->rq_pages + 1;
  1254. arg->page_base = 0;
  1255. /* save at least one page for response */
  1256. arg->page_len = (pages-2)*PAGE_SIZE;
  1257. arg->len = (pages-1)*PAGE_SIZE;
  1258. arg->tail[0].iov_len = 0;
  1259. try_to_freeze();
  1260. cond_resched();
  1261. if (signalled())
  1262. return -EINTR;
  1263. spin_lock_bh(&pool->sp_lock);
  1264. if ((svsk = svc_sock_dequeue(pool)) != NULL) {
  1265. rqstp->rq_sock = svsk;
  1266. atomic_inc(&svsk->sk_inuse);
  1267. rqstp->rq_reserved = serv->sv_max_mesg;
  1268. atomic_add(rqstp->rq_reserved, &svsk->sk_reserved);
  1269. } else {
  1270. /* No data pending. Go to sleep */
  1271. svc_thread_enqueue(pool, rqstp);
  1272. /*
  1273. * We have to be able to interrupt this wait
  1274. * to bring down the daemons ...
  1275. */
  1276. set_current_state(TASK_INTERRUPTIBLE);
  1277. add_wait_queue(&rqstp->rq_wait, &wait);
  1278. spin_unlock_bh(&pool->sp_lock);
  1279. schedule_timeout(timeout);
  1280. try_to_freeze();
  1281. spin_lock_bh(&pool->sp_lock);
  1282. remove_wait_queue(&rqstp->rq_wait, &wait);
  1283. if (!(svsk = rqstp->rq_sock)) {
  1284. svc_thread_dequeue(pool, rqstp);
  1285. spin_unlock_bh(&pool->sp_lock);
  1286. dprintk("svc: server %p, no data yet\n", rqstp);
  1287. return signalled()? -EINTR : -EAGAIN;
  1288. }
  1289. }
  1290. spin_unlock_bh(&pool->sp_lock);
  1291. dprintk("svc: server %p, pool %u, socket %p, inuse=%d\n",
  1292. rqstp, pool->sp_id, svsk, atomic_read(&svsk->sk_inuse));
  1293. len = svsk->sk_recvfrom(rqstp);
  1294. dprintk("svc: got len=%d\n", len);
  1295. /* No data, incomplete (TCP) read, or accept() */
  1296. if (len == 0 || len == -EAGAIN) {
  1297. rqstp->rq_res.len = 0;
  1298. svc_sock_release(rqstp);
  1299. return -EAGAIN;
  1300. }
  1301. svsk->sk_lastrecv = get_seconds();
  1302. clear_bit(SK_OLD, &svsk->sk_flags);
  1303. rqstp->rq_secure = svc_port_is_privileged(svc_addr(rqstp));
  1304. rqstp->rq_chandle.defer = svc_defer;
  1305. if (serv->sv_stats)
  1306. serv->sv_stats->netcnt++;
  1307. return len;
  1308. }
  1309. /*
  1310. * Drop request
  1311. */
  1312. void
  1313. svc_drop(struct svc_rqst *rqstp)
  1314. {
  1315. dprintk("svc: socket %p dropped request\n", rqstp->rq_sock);
  1316. svc_sock_release(rqstp);
  1317. }
  1318. /*
  1319. * Return reply to client.
  1320. */
  1321. int
  1322. svc_send(struct svc_rqst *rqstp)
  1323. {
  1324. struct svc_sock *svsk;
  1325. int len;
  1326. struct xdr_buf *xb;
  1327. if ((svsk = rqstp->rq_sock) == NULL) {
  1328. printk(KERN_WARNING "NULL socket pointer in %s:%d\n",
  1329. __FILE__, __LINE__);
  1330. return -EFAULT;
  1331. }
  1332. /* release the receive skb before sending the reply */
  1333. svc_release_skb(rqstp);
  1334. /* calculate over-all length */
  1335. xb = & rqstp->rq_res;
  1336. xb->len = xb->head[0].iov_len +
  1337. xb->page_len +
  1338. xb->tail[0].iov_len;
  1339. /* Grab svsk->sk_mutex to serialize outgoing data. */
  1340. mutex_lock(&svsk->sk_mutex);
  1341. if (test_bit(SK_DEAD, &svsk->sk_flags))
  1342. len = -ENOTCONN;
  1343. else
  1344. len = svsk->sk_sendto(rqstp);
  1345. mutex_unlock(&svsk->sk_mutex);
  1346. svc_sock_release(rqstp);
  1347. if (len == -ECONNREFUSED || len == -ENOTCONN || len == -EAGAIN)
  1348. return 0;
  1349. return len;
  1350. }
  1351. /*
  1352. * Timer function to close old temporary sockets, using
  1353. * a mark-and-sweep algorithm.
  1354. */
  1355. static void
  1356. svc_age_temp_sockets(unsigned long closure)
  1357. {
  1358. struct svc_serv *serv = (struct svc_serv *)closure;
  1359. struct svc_sock *svsk;
  1360. struct list_head *le, *next;
  1361. LIST_HEAD(to_be_aged);
  1362. dprintk("svc_age_temp_sockets\n");
  1363. if (!spin_trylock_bh(&serv->sv_lock)) {
  1364. /* busy, try again 1 sec later */
  1365. dprintk("svc_age_temp_sockets: busy\n");
  1366. mod_timer(&serv->sv_temptimer, jiffies + HZ);
  1367. return;
  1368. }
  1369. list_for_each_safe(le, next, &serv->sv_tempsocks) {
  1370. svsk = list_entry(le, struct svc_sock, sk_list);
  1371. if (!test_and_set_bit(SK_OLD, &svsk->sk_flags))
  1372. continue;
  1373. if (atomic_read(&svsk->sk_inuse) || test_bit(SK_BUSY, &svsk->sk_flags))
  1374. continue;
  1375. atomic_inc(&svsk->sk_inuse);
  1376. list_move(le, &to_be_aged);
  1377. set_bit(SK_CLOSE, &svsk->sk_flags);
  1378. set_bit(SK_DETACHED, &svsk->sk_flags);
  1379. }
  1380. spin_unlock_bh(&serv->sv_lock);
  1381. while (!list_empty(&to_be_aged)) {
  1382. le = to_be_aged.next;
  1383. /* fiddling the sk_list node is safe 'cos we're SK_DETACHED */
  1384. list_del_init(le);
  1385. svsk = list_entry(le, struct svc_sock, sk_list);
  1386. dprintk("queuing svsk %p for closing, %lu seconds old\n",
  1387. svsk, get_seconds() - svsk->sk_lastrecv);
  1388. /* a thread will dequeue and close it soon */
  1389. svc_sock_enqueue(svsk);
  1390. svc_sock_put(svsk);
  1391. }
  1392. mod_timer(&serv->sv_temptimer, jiffies + svc_conn_age_period * HZ);
  1393. }
  1394. /*
  1395. * Initialize socket for RPC use and create svc_sock struct
  1396. * XXX: May want to setsockopt SO_SNDBUF and SO_RCVBUF.
  1397. */
  1398. static struct svc_sock *svc_setup_socket(struct svc_serv *serv,
  1399. struct socket *sock,
  1400. int *errp, int flags)
  1401. {
  1402. struct svc_sock *svsk;
  1403. struct sock *inet;
  1404. int pmap_register = !(flags & SVC_SOCK_ANONYMOUS);
  1405. int is_temporary = flags & SVC_SOCK_TEMPORARY;
  1406. dprintk("svc: svc_setup_socket %p\n", sock);
  1407. if (!(svsk = kzalloc(sizeof(*svsk), GFP_KERNEL))) {
  1408. *errp = -ENOMEM;
  1409. return NULL;
  1410. }
  1411. inet = sock->sk;
  1412. /* Register socket with portmapper */
  1413. if (*errp >= 0 && pmap_register)
  1414. *errp = svc_register(serv, inet->sk_protocol,
  1415. ntohs(inet_sk(inet)->sport));
  1416. if (*errp < 0) {
  1417. kfree(svsk);
  1418. return NULL;
  1419. }
  1420. set_bit(SK_BUSY, &svsk->sk_flags);
  1421. inet->sk_user_data = svsk;
  1422. svsk->sk_sock = sock;
  1423. svsk->sk_sk = inet;
  1424. svsk->sk_ostate = inet->sk_state_change;
  1425. svsk->sk_odata = inet->sk_data_ready;
  1426. svsk->sk_owspace = inet->sk_write_space;
  1427. svsk->sk_server = serv;
  1428. atomic_set(&svsk->sk_inuse, 1);
  1429. svsk->sk_lastrecv = get_seconds();
  1430. spin_lock_init(&svsk->sk_defer_lock);
  1431. INIT_LIST_HEAD(&svsk->sk_deferred);
  1432. INIT_LIST_HEAD(&svsk->sk_ready);
  1433. mutex_init(&svsk->sk_mutex);
  1434. /* Initialize the socket */
  1435. if (sock->type == SOCK_DGRAM)
  1436. svc_udp_init(svsk);
  1437. else
  1438. svc_tcp_init(svsk);
  1439. spin_lock_bh(&serv->sv_lock);
  1440. if (is_temporary) {
  1441. set_bit(SK_TEMP, &svsk->sk_flags);
  1442. list_add(&svsk->sk_list, &serv->sv_tempsocks);
  1443. serv->sv_tmpcnt++;
  1444. if (serv->sv_temptimer.function == NULL) {
  1445. /* setup timer to age temp sockets */
  1446. setup_timer(&serv->sv_temptimer, svc_age_temp_sockets,
  1447. (unsigned long)serv);
  1448. mod_timer(&serv->sv_temptimer,
  1449. jiffies + svc_conn_age_period * HZ);
  1450. }
  1451. } else {
  1452. clear_bit(SK_TEMP, &svsk->sk_flags);
  1453. list_add(&svsk->sk_list, &serv->sv_permsocks);
  1454. }
  1455. spin_unlock_bh(&serv->sv_lock);
  1456. dprintk("svc: svc_setup_socket created %p (inet %p)\n",
  1457. svsk, svsk->sk_sk);
  1458. return svsk;
  1459. }
  1460. int svc_addsock(struct svc_serv *serv,
  1461. int fd,
  1462. char *name_return,
  1463. int *proto)
  1464. {
  1465. int err = 0;
  1466. struct socket *so = sockfd_lookup(fd, &err);
  1467. struct svc_sock *svsk = NULL;
  1468. if (!so)
  1469. return err;
  1470. if (so->sk->sk_family != AF_INET)
  1471. err = -EAFNOSUPPORT;
  1472. else if (so->sk->sk_protocol != IPPROTO_TCP &&
  1473. so->sk->sk_protocol != IPPROTO_UDP)
  1474. err = -EPROTONOSUPPORT;
  1475. else if (so->state > SS_UNCONNECTED)
  1476. err = -EISCONN;
  1477. else {
  1478. svsk = svc_setup_socket(serv, so, &err, SVC_SOCK_DEFAULTS);
  1479. if (svsk) {
  1480. svc_sock_received(svsk);
  1481. err = 0;
  1482. }
  1483. }
  1484. if (err) {
  1485. sockfd_put(so);
  1486. return err;
  1487. }
  1488. if (proto) *proto = so->sk->sk_protocol;
  1489. return one_sock_name(name_return, svsk);
  1490. }
  1491. EXPORT_SYMBOL_GPL(svc_addsock);
  1492. /*
  1493. * Create socket for RPC service.
  1494. */
  1495. static int svc_create_socket(struct svc_serv *serv, int protocol,
  1496. struct sockaddr *sin, int len, int flags)
  1497. {
  1498. struct svc_sock *svsk;
  1499. struct socket *sock;
  1500. int error;
  1501. int type;
  1502. char buf[RPC_MAX_ADDRBUFLEN];
  1503. dprintk("svc: svc_create_socket(%s, %d, %s)\n",
  1504. serv->sv_program->pg_name, protocol,
  1505. __svc_print_addr(sin, buf, sizeof(buf)));
  1506. if (protocol != IPPROTO_UDP && protocol != IPPROTO_TCP) {
  1507. printk(KERN_WARNING "svc: only UDP and TCP "
  1508. "sockets supported\n");
  1509. return -EINVAL;
  1510. }
  1511. type = (protocol == IPPROTO_UDP)? SOCK_DGRAM : SOCK_STREAM;
  1512. error = sock_create_kern(sin->sa_family, type, protocol, &sock);
  1513. if (error < 0)
  1514. return error;
  1515. svc_reclassify_socket(sock);
  1516. if (type == SOCK_STREAM)
  1517. sock->sk->sk_reuse = 1; /* allow address reuse */
  1518. error = kernel_bind(sock, sin, len);
  1519. if (error < 0)
  1520. goto bummer;
  1521. if (protocol == IPPROTO_TCP) {
  1522. if ((error = kernel_listen(sock, 64)) < 0)
  1523. goto bummer;
  1524. }
  1525. if ((svsk = svc_setup_socket(serv, sock, &error, flags)) != NULL) {
  1526. svc_sock_received(svsk);
  1527. return ntohs(inet_sk(svsk->sk_sk)->sport);
  1528. }
  1529. bummer:
  1530. dprintk("svc: svc_create_socket error = %d\n", -error);
  1531. sock_release(sock);
  1532. return error;
  1533. }
  1534. /*
  1535. * Remove a dead socket
  1536. */
  1537. static void
  1538. svc_delete_socket(struct svc_sock *svsk)
  1539. {
  1540. struct svc_serv *serv;
  1541. struct sock *sk;
  1542. dprintk("svc: svc_delete_socket(%p)\n", svsk);
  1543. serv = svsk->sk_server;
  1544. sk = svsk->sk_sk;
  1545. sk->sk_state_change = svsk->sk_ostate;
  1546. sk->sk_data_ready = svsk->sk_odata;
  1547. sk->sk_write_space = svsk->sk_owspace;
  1548. spin_lock_bh(&serv->sv_lock);
  1549. if (!test_and_set_bit(SK_DETACHED, &svsk->sk_flags))
  1550. list_del_init(&svsk->sk_list);
  1551. /*
  1552. * We used to delete the svc_sock from whichever list
  1553. * it's sk_ready node was on, but we don't actually
  1554. * need to. This is because the only time we're called
  1555. * while still attached to a queue, the queue itself
  1556. * is about to be destroyed (in svc_destroy).
  1557. */
  1558. if (!test_and_set_bit(SK_DEAD, &svsk->sk_flags)) {
  1559. BUG_ON(atomic_read(&svsk->sk_inuse)<2);
  1560. atomic_dec(&svsk->sk_inuse);
  1561. if (test_bit(SK_TEMP, &svsk->sk_flags))
  1562. serv->sv_tmpcnt--;
  1563. }
  1564. spin_unlock_bh(&serv->sv_lock);
  1565. }
  1566. void svc_close_socket(struct svc_sock *svsk)
  1567. {
  1568. set_bit(SK_CLOSE, &svsk->sk_flags);
  1569. if (test_and_set_bit(SK_BUSY, &svsk->sk_flags))
  1570. /* someone else will have to effect the close */
  1571. return;
  1572. atomic_inc(&svsk->sk_inuse);
  1573. svc_delete_socket(svsk);
  1574. clear_bit(SK_BUSY, &svsk->sk_flags);
  1575. svc_sock_put(svsk);
  1576. }
  1577. /**
  1578. * svc_makesock - Make a socket for nfsd and lockd
  1579. * @serv: RPC server structure
  1580. * @protocol: transport protocol to use
  1581. * @port: port to use
  1582. * @flags: requested socket characteristics
  1583. *
  1584. */
  1585. int svc_makesock(struct svc_serv *serv, int protocol, unsigned short port,
  1586. int flags)
  1587. {
  1588. struct sockaddr_in sin = {
  1589. .sin_family = AF_INET,
  1590. .sin_addr.s_addr = INADDR_ANY,
  1591. .sin_port = htons(port),
  1592. };
  1593. dprintk("svc: creating socket proto = %d\n", protocol);
  1594. return svc_create_socket(serv, protocol, (struct sockaddr *) &sin,
  1595. sizeof(sin), flags);
  1596. }
  1597. /*
  1598. * Handle defer and revisit of requests
  1599. */
  1600. static void svc_revisit(struct cache_deferred_req *dreq, int too_many)
  1601. {
  1602. struct svc_deferred_req *dr = container_of(dreq, struct svc_deferred_req, handle);
  1603. struct svc_sock *svsk;
  1604. if (too_many) {
  1605. svc_sock_put(dr->svsk);
  1606. kfree(dr);
  1607. return;
  1608. }
  1609. dprintk("revisit queued\n");
  1610. svsk = dr->svsk;
  1611. dr->svsk = NULL;
  1612. spin_lock_bh(&svsk->sk_defer_lock);
  1613. list_add(&dr->handle.recent, &svsk->sk_deferred);
  1614. spin_unlock_bh(&svsk->sk_defer_lock);
  1615. set_bit(SK_DEFERRED, &svsk->sk_flags);
  1616. svc_sock_enqueue(svsk);
  1617. svc_sock_put(svsk);
  1618. }
  1619. static struct cache_deferred_req *
  1620. svc_defer(struct cache_req *req)
  1621. {
  1622. struct svc_rqst *rqstp = container_of(req, struct svc_rqst, rq_chandle);
  1623. int size = sizeof(struct svc_deferred_req) + (rqstp->rq_arg.len);
  1624. struct svc_deferred_req *dr;
  1625. if (rqstp->rq_arg.page_len)
  1626. return NULL; /* if more than a page, give up FIXME */
  1627. if (rqstp->rq_deferred) {
  1628. dr = rqstp->rq_deferred;
  1629. rqstp->rq_deferred = NULL;
  1630. } else {
  1631. int skip = rqstp->rq_arg.len - rqstp->rq_arg.head[0].iov_len;
  1632. /* FIXME maybe discard if size too large */
  1633. dr = kmalloc(size, GFP_KERNEL);
  1634. if (dr == NULL)
  1635. return NULL;
  1636. dr->handle.owner = rqstp->rq_server;
  1637. dr->prot = rqstp->rq_prot;
  1638. memcpy(&dr->addr, &rqstp->rq_addr, rqstp->rq_addrlen);
  1639. dr->addrlen = rqstp->rq_addrlen;
  1640. dr->daddr = rqstp->rq_daddr;
  1641. dr->argslen = rqstp->rq_arg.len >> 2;
  1642. memcpy(dr->args, rqstp->rq_arg.head[0].iov_base-skip, dr->argslen<<2);
  1643. }
  1644. atomic_inc(&rqstp->rq_sock->sk_inuse);
  1645. dr->svsk = rqstp->rq_sock;
  1646. dr->handle.revisit = svc_revisit;
  1647. return &dr->handle;
  1648. }
  1649. /*
  1650. * recv data from a deferred request into an active one
  1651. */
  1652. static int svc_deferred_recv(struct svc_rqst *rqstp)
  1653. {
  1654. struct svc_deferred_req *dr = rqstp->rq_deferred;
  1655. rqstp->rq_arg.head[0].iov_base = dr->args;
  1656. rqstp->rq_arg.head[0].iov_len = dr->argslen<<2;
  1657. rqstp->rq_arg.page_len = 0;
  1658. rqstp->rq_arg.len = dr->argslen<<2;
  1659. rqstp->rq_prot = dr->prot;
  1660. memcpy(&rqstp->rq_addr, &dr->addr, dr->addrlen);
  1661. rqstp->rq_addrlen = dr->addrlen;
  1662. rqstp->rq_daddr = dr->daddr;
  1663. rqstp->rq_respages = rqstp->rq_pages;
  1664. return dr->argslen<<2;
  1665. }
  1666. static struct svc_deferred_req *svc_deferred_dequeue(struct svc_sock *svsk)
  1667. {
  1668. struct svc_deferred_req *dr = NULL;
  1669. if (!test_bit(SK_DEFERRED, &svsk->sk_flags))
  1670. return NULL;
  1671. spin_lock_bh(&svsk->sk_defer_lock);
  1672. clear_bit(SK_DEFERRED, &svsk->sk_flags);
  1673. if (!list_empty(&svsk->sk_deferred)) {
  1674. dr = list_entry(svsk->sk_deferred.next,
  1675. struct svc_deferred_req,
  1676. handle.recent);
  1677. list_del_init(&dr->handle.recent);
  1678. set_bit(SK_DEFERRED, &svsk->sk_flags);
  1679. }
  1680. spin_unlock_bh(&svsk->sk_defer_lock);
  1681. return dr;
  1682. }