sock.c 70 KB

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  1. /*
  2. * INET An implementation of the TCP/IP protocol suite for the LINUX
  3. * operating system. INET is implemented using the BSD Socket
  4. * interface as the means of communication with the user level.
  5. *
  6. * Generic socket support routines. Memory allocators, socket lock/release
  7. * handler for protocols to use and generic option handler.
  8. *
  9. *
  10. * Authors: Ross Biro
  11. * Fred N. van Kempen, <waltje@uWalt.NL.Mugnet.ORG>
  12. * Florian La Roche, <flla@stud.uni-sb.de>
  13. * Alan Cox, <A.Cox@swansea.ac.uk>
  14. *
  15. * Fixes:
  16. * Alan Cox : Numerous verify_area() problems
  17. * Alan Cox : Connecting on a connecting socket
  18. * now returns an error for tcp.
  19. * Alan Cox : sock->protocol is set correctly.
  20. * and is not sometimes left as 0.
  21. * Alan Cox : connect handles icmp errors on a
  22. * connect properly. Unfortunately there
  23. * is a restart syscall nasty there. I
  24. * can't match BSD without hacking the C
  25. * library. Ideas urgently sought!
  26. * Alan Cox : Disallow bind() to addresses that are
  27. * not ours - especially broadcast ones!!
  28. * Alan Cox : Socket 1024 _IS_ ok for users. (fencepost)
  29. * Alan Cox : sock_wfree/sock_rfree don't destroy sockets,
  30. * instead they leave that for the DESTROY timer.
  31. * Alan Cox : Clean up error flag in accept
  32. * Alan Cox : TCP ack handling is buggy, the DESTROY timer
  33. * was buggy. Put a remove_sock() in the handler
  34. * for memory when we hit 0. Also altered the timer
  35. * code. The ACK stuff can wait and needs major
  36. * TCP layer surgery.
  37. * Alan Cox : Fixed TCP ack bug, removed remove sock
  38. * and fixed timer/inet_bh race.
  39. * Alan Cox : Added zapped flag for TCP
  40. * Alan Cox : Move kfree_skb into skbuff.c and tidied up surplus code
  41. * Alan Cox : for new sk_buff allocations wmalloc/rmalloc now call alloc_skb
  42. * Alan Cox : kfree_s calls now are kfree_skbmem so we can track skb resources
  43. * Alan Cox : Supports socket option broadcast now as does udp. Packet and raw need fixing.
  44. * Alan Cox : Added RCVBUF,SNDBUF size setting. It suddenly occurred to me how easy it was so...
  45. * Rick Sladkey : Relaxed UDP rules for matching packets.
  46. * C.E.Hawkins : IFF_PROMISC/SIOCGHWADDR support
  47. * Pauline Middelink : identd support
  48. * Alan Cox : Fixed connect() taking signals I think.
  49. * Alan Cox : SO_LINGER supported
  50. * Alan Cox : Error reporting fixes
  51. * Anonymous : inet_create tidied up (sk->reuse setting)
  52. * Alan Cox : inet sockets don't set sk->type!
  53. * Alan Cox : Split socket option code
  54. * Alan Cox : Callbacks
  55. * Alan Cox : Nagle flag for Charles & Johannes stuff
  56. * Alex : Removed restriction on inet fioctl
  57. * Alan Cox : Splitting INET from NET core
  58. * Alan Cox : Fixed bogus SO_TYPE handling in getsockopt()
  59. * Adam Caldwell : Missing return in SO_DONTROUTE/SO_DEBUG code
  60. * Alan Cox : Split IP from generic code
  61. * Alan Cox : New kfree_skbmem()
  62. * Alan Cox : Make SO_DEBUG superuser only.
  63. * Alan Cox : Allow anyone to clear SO_DEBUG
  64. * (compatibility fix)
  65. * Alan Cox : Added optimistic memory grabbing for AF_UNIX throughput.
  66. * Alan Cox : Allocator for a socket is settable.
  67. * Alan Cox : SO_ERROR includes soft errors.
  68. * Alan Cox : Allow NULL arguments on some SO_ opts
  69. * Alan Cox : Generic socket allocation to make hooks
  70. * easier (suggested by Craig Metz).
  71. * Michael Pall : SO_ERROR returns positive errno again
  72. * Steve Whitehouse: Added default destructor to free
  73. * protocol private data.
  74. * Steve Whitehouse: Added various other default routines
  75. * common to several socket families.
  76. * Chris Evans : Call suser() check last on F_SETOWN
  77. * Jay Schulist : Added SO_ATTACH_FILTER and SO_DETACH_FILTER.
  78. * Andi Kleen : Add sock_kmalloc()/sock_kfree_s()
  79. * Andi Kleen : Fix write_space callback
  80. * Chris Evans : Security fixes - signedness again
  81. * Arnaldo C. Melo : cleanups, use skb_queue_purge
  82. *
  83. * To Fix:
  84. *
  85. *
  86. * This program is free software; you can redistribute it and/or
  87. * modify it under the terms of the GNU General Public License
  88. * as published by the Free Software Foundation; either version
  89. * 2 of the License, or (at your option) any later version.
  90. */
  91. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  92. #include <linux/capability.h>
  93. #include <linux/errno.h>
  94. #include <linux/types.h>
  95. #include <linux/socket.h>
  96. #include <linux/in.h>
  97. #include <linux/kernel.h>
  98. #include <linux/module.h>
  99. #include <linux/proc_fs.h>
  100. #include <linux/seq_file.h>
  101. #include <linux/sched.h>
  102. #include <linux/timer.h>
  103. #include <linux/string.h>
  104. #include <linux/sockios.h>
  105. #include <linux/net.h>
  106. #include <linux/mm.h>
  107. #include <linux/slab.h>
  108. #include <linux/interrupt.h>
  109. #include <linux/poll.h>
  110. #include <linux/tcp.h>
  111. #include <linux/init.h>
  112. #include <linux/highmem.h>
  113. #include <linux/user_namespace.h>
  114. #include <linux/static_key.h>
  115. #include <linux/memcontrol.h>
  116. #include <linux/prefetch.h>
  117. #include <asm/uaccess.h>
  118. #include <linux/netdevice.h>
  119. #include <net/protocol.h>
  120. #include <linux/skbuff.h>
  121. #include <net/net_namespace.h>
  122. #include <net/request_sock.h>
  123. #include <net/sock.h>
  124. #include <linux/net_tstamp.h>
  125. #include <net/xfrm.h>
  126. #include <linux/ipsec.h>
  127. #include <net/cls_cgroup.h>
  128. #include <net/netprio_cgroup.h>
  129. #include <linux/filter.h>
  130. #include <trace/events/sock.h>
  131. #ifdef CONFIG_INET
  132. #include <net/tcp.h>
  133. #endif
  134. static DEFINE_MUTEX(proto_list_mutex);
  135. static LIST_HEAD(proto_list);
  136. #ifdef CONFIG_MEMCG_KMEM
  137. int mem_cgroup_sockets_init(struct mem_cgroup *memcg, struct cgroup_subsys *ss)
  138. {
  139. struct proto *proto;
  140. int ret = 0;
  141. mutex_lock(&proto_list_mutex);
  142. list_for_each_entry(proto, &proto_list, node) {
  143. if (proto->init_cgroup) {
  144. ret = proto->init_cgroup(memcg, ss);
  145. if (ret)
  146. goto out;
  147. }
  148. }
  149. mutex_unlock(&proto_list_mutex);
  150. return ret;
  151. out:
  152. list_for_each_entry_continue_reverse(proto, &proto_list, node)
  153. if (proto->destroy_cgroup)
  154. proto->destroy_cgroup(memcg);
  155. mutex_unlock(&proto_list_mutex);
  156. return ret;
  157. }
  158. void mem_cgroup_sockets_destroy(struct mem_cgroup *memcg)
  159. {
  160. struct proto *proto;
  161. mutex_lock(&proto_list_mutex);
  162. list_for_each_entry_reverse(proto, &proto_list, node)
  163. if (proto->destroy_cgroup)
  164. proto->destroy_cgroup(memcg);
  165. mutex_unlock(&proto_list_mutex);
  166. }
  167. #endif
  168. /*
  169. * Each address family might have different locking rules, so we have
  170. * one slock key per address family:
  171. */
  172. static struct lock_class_key af_family_keys[AF_MAX];
  173. static struct lock_class_key af_family_slock_keys[AF_MAX];
  174. struct static_key memcg_socket_limit_enabled;
  175. EXPORT_SYMBOL(memcg_socket_limit_enabled);
  176. /*
  177. * Make lock validator output more readable. (we pre-construct these
  178. * strings build-time, so that runtime initialization of socket
  179. * locks is fast):
  180. */
  181. static const char *const af_family_key_strings[AF_MAX+1] = {
  182. "sk_lock-AF_UNSPEC", "sk_lock-AF_UNIX" , "sk_lock-AF_INET" ,
  183. "sk_lock-AF_AX25" , "sk_lock-AF_IPX" , "sk_lock-AF_APPLETALK",
  184. "sk_lock-AF_NETROM", "sk_lock-AF_BRIDGE" , "sk_lock-AF_ATMPVC" ,
  185. "sk_lock-AF_X25" , "sk_lock-AF_INET6" , "sk_lock-AF_ROSE" ,
  186. "sk_lock-AF_DECnet", "sk_lock-AF_NETBEUI" , "sk_lock-AF_SECURITY" ,
  187. "sk_lock-AF_KEY" , "sk_lock-AF_NETLINK" , "sk_lock-AF_PACKET" ,
  188. "sk_lock-AF_ASH" , "sk_lock-AF_ECONET" , "sk_lock-AF_ATMSVC" ,
  189. "sk_lock-AF_RDS" , "sk_lock-AF_SNA" , "sk_lock-AF_IRDA" ,
  190. "sk_lock-AF_PPPOX" , "sk_lock-AF_WANPIPE" , "sk_lock-AF_LLC" ,
  191. "sk_lock-27" , "sk_lock-28" , "sk_lock-AF_CAN" ,
  192. "sk_lock-AF_TIPC" , "sk_lock-AF_BLUETOOTH", "sk_lock-IUCV" ,
  193. "sk_lock-AF_RXRPC" , "sk_lock-AF_ISDN" , "sk_lock-AF_PHONET" ,
  194. "sk_lock-AF_IEEE802154", "sk_lock-AF_CAIF" , "sk_lock-AF_ALG" ,
  195. "sk_lock-AF_NFC" , "sk_lock-AF_MAX"
  196. };
  197. static const char *const af_family_slock_key_strings[AF_MAX+1] = {
  198. "slock-AF_UNSPEC", "slock-AF_UNIX" , "slock-AF_INET" ,
  199. "slock-AF_AX25" , "slock-AF_IPX" , "slock-AF_APPLETALK",
  200. "slock-AF_NETROM", "slock-AF_BRIDGE" , "slock-AF_ATMPVC" ,
  201. "slock-AF_X25" , "slock-AF_INET6" , "slock-AF_ROSE" ,
  202. "slock-AF_DECnet", "slock-AF_NETBEUI" , "slock-AF_SECURITY" ,
  203. "slock-AF_KEY" , "slock-AF_NETLINK" , "slock-AF_PACKET" ,
  204. "slock-AF_ASH" , "slock-AF_ECONET" , "slock-AF_ATMSVC" ,
  205. "slock-AF_RDS" , "slock-AF_SNA" , "slock-AF_IRDA" ,
  206. "slock-AF_PPPOX" , "slock-AF_WANPIPE" , "slock-AF_LLC" ,
  207. "slock-27" , "slock-28" , "slock-AF_CAN" ,
  208. "slock-AF_TIPC" , "slock-AF_BLUETOOTH", "slock-AF_IUCV" ,
  209. "slock-AF_RXRPC" , "slock-AF_ISDN" , "slock-AF_PHONET" ,
  210. "slock-AF_IEEE802154", "slock-AF_CAIF" , "slock-AF_ALG" ,
  211. "slock-AF_NFC" , "slock-AF_MAX"
  212. };
  213. static const char *const af_family_clock_key_strings[AF_MAX+1] = {
  214. "clock-AF_UNSPEC", "clock-AF_UNIX" , "clock-AF_INET" ,
  215. "clock-AF_AX25" , "clock-AF_IPX" , "clock-AF_APPLETALK",
  216. "clock-AF_NETROM", "clock-AF_BRIDGE" , "clock-AF_ATMPVC" ,
  217. "clock-AF_X25" , "clock-AF_INET6" , "clock-AF_ROSE" ,
  218. "clock-AF_DECnet", "clock-AF_NETBEUI" , "clock-AF_SECURITY" ,
  219. "clock-AF_KEY" , "clock-AF_NETLINK" , "clock-AF_PACKET" ,
  220. "clock-AF_ASH" , "clock-AF_ECONET" , "clock-AF_ATMSVC" ,
  221. "clock-AF_RDS" , "clock-AF_SNA" , "clock-AF_IRDA" ,
  222. "clock-AF_PPPOX" , "clock-AF_WANPIPE" , "clock-AF_LLC" ,
  223. "clock-27" , "clock-28" , "clock-AF_CAN" ,
  224. "clock-AF_TIPC" , "clock-AF_BLUETOOTH", "clock-AF_IUCV" ,
  225. "clock-AF_RXRPC" , "clock-AF_ISDN" , "clock-AF_PHONET" ,
  226. "clock-AF_IEEE802154", "clock-AF_CAIF" , "clock-AF_ALG" ,
  227. "clock-AF_NFC" , "clock-AF_MAX"
  228. };
  229. /*
  230. * sk_callback_lock locking rules are per-address-family,
  231. * so split the lock classes by using a per-AF key:
  232. */
  233. static struct lock_class_key af_callback_keys[AF_MAX];
  234. /* Take into consideration the size of the struct sk_buff overhead in the
  235. * determination of these values, since that is non-constant across
  236. * platforms. This makes socket queueing behavior and performance
  237. * not depend upon such differences.
  238. */
  239. #define _SK_MEM_PACKETS 256
  240. #define _SK_MEM_OVERHEAD SKB_TRUESIZE(256)
  241. #define SK_WMEM_MAX (_SK_MEM_OVERHEAD * _SK_MEM_PACKETS)
  242. #define SK_RMEM_MAX (_SK_MEM_OVERHEAD * _SK_MEM_PACKETS)
  243. /* Run time adjustable parameters. */
  244. __u32 sysctl_wmem_max __read_mostly = SK_WMEM_MAX;
  245. EXPORT_SYMBOL(sysctl_wmem_max);
  246. __u32 sysctl_rmem_max __read_mostly = SK_RMEM_MAX;
  247. EXPORT_SYMBOL(sysctl_rmem_max);
  248. __u32 sysctl_wmem_default __read_mostly = SK_WMEM_MAX;
  249. __u32 sysctl_rmem_default __read_mostly = SK_RMEM_MAX;
  250. /* Maximal space eaten by iovec or ancillary data plus some space */
  251. int sysctl_optmem_max __read_mostly = sizeof(unsigned long)*(2*UIO_MAXIOV+512);
  252. EXPORT_SYMBOL(sysctl_optmem_max);
  253. struct static_key memalloc_socks = STATIC_KEY_INIT_FALSE;
  254. EXPORT_SYMBOL_GPL(memalloc_socks);
  255. /**
  256. * sk_set_memalloc - sets %SOCK_MEMALLOC
  257. * @sk: socket to set it on
  258. *
  259. * Set %SOCK_MEMALLOC on a socket for access to emergency reserves.
  260. * It's the responsibility of the admin to adjust min_free_kbytes
  261. * to meet the requirements
  262. */
  263. void sk_set_memalloc(struct sock *sk)
  264. {
  265. sock_set_flag(sk, SOCK_MEMALLOC);
  266. sk->sk_allocation |= __GFP_MEMALLOC;
  267. static_key_slow_inc(&memalloc_socks);
  268. }
  269. EXPORT_SYMBOL_GPL(sk_set_memalloc);
  270. void sk_clear_memalloc(struct sock *sk)
  271. {
  272. sock_reset_flag(sk, SOCK_MEMALLOC);
  273. sk->sk_allocation &= ~__GFP_MEMALLOC;
  274. static_key_slow_dec(&memalloc_socks);
  275. /*
  276. * SOCK_MEMALLOC is allowed to ignore rmem limits to ensure forward
  277. * progress of swapping. However, if SOCK_MEMALLOC is cleared while
  278. * it has rmem allocations there is a risk that the user of the
  279. * socket cannot make forward progress due to exceeding the rmem
  280. * limits. By rights, sk_clear_memalloc() should only be called
  281. * on sockets being torn down but warn and reset the accounting if
  282. * that assumption breaks.
  283. */
  284. if (WARN_ON(sk->sk_forward_alloc))
  285. sk_mem_reclaim(sk);
  286. }
  287. EXPORT_SYMBOL_GPL(sk_clear_memalloc);
  288. int __sk_backlog_rcv(struct sock *sk, struct sk_buff *skb)
  289. {
  290. int ret;
  291. unsigned long pflags = current->flags;
  292. /* these should have been dropped before queueing */
  293. BUG_ON(!sock_flag(sk, SOCK_MEMALLOC));
  294. current->flags |= PF_MEMALLOC;
  295. ret = sk->sk_backlog_rcv(sk, skb);
  296. tsk_restore_flags(current, pflags, PF_MEMALLOC);
  297. return ret;
  298. }
  299. EXPORT_SYMBOL(__sk_backlog_rcv);
  300. static int sock_set_timeout(long *timeo_p, char __user *optval, int optlen)
  301. {
  302. struct timeval tv;
  303. if (optlen < sizeof(tv))
  304. return -EINVAL;
  305. if (copy_from_user(&tv, optval, sizeof(tv)))
  306. return -EFAULT;
  307. if (tv.tv_usec < 0 || tv.tv_usec >= USEC_PER_SEC)
  308. return -EDOM;
  309. if (tv.tv_sec < 0) {
  310. static int warned __read_mostly;
  311. *timeo_p = 0;
  312. if (warned < 10 && net_ratelimit()) {
  313. warned++;
  314. pr_info("%s: `%s' (pid %d) tries to set negative timeout\n",
  315. __func__, current->comm, task_pid_nr(current));
  316. }
  317. return 0;
  318. }
  319. *timeo_p = MAX_SCHEDULE_TIMEOUT;
  320. if (tv.tv_sec == 0 && tv.tv_usec == 0)
  321. return 0;
  322. if (tv.tv_sec < (MAX_SCHEDULE_TIMEOUT/HZ - 1))
  323. *timeo_p = tv.tv_sec*HZ + (tv.tv_usec+(1000000/HZ-1))/(1000000/HZ);
  324. return 0;
  325. }
  326. static void sock_warn_obsolete_bsdism(const char *name)
  327. {
  328. static int warned;
  329. static char warncomm[TASK_COMM_LEN];
  330. if (strcmp(warncomm, current->comm) && warned < 5) {
  331. strcpy(warncomm, current->comm);
  332. pr_warn("process `%s' is using obsolete %s SO_BSDCOMPAT\n",
  333. warncomm, name);
  334. warned++;
  335. }
  336. }
  337. #define SK_FLAGS_TIMESTAMP ((1UL << SOCK_TIMESTAMP) | (1UL << SOCK_TIMESTAMPING_RX_SOFTWARE))
  338. static void sock_disable_timestamp(struct sock *sk, unsigned long flags)
  339. {
  340. if (sk->sk_flags & flags) {
  341. sk->sk_flags &= ~flags;
  342. if (!(sk->sk_flags & SK_FLAGS_TIMESTAMP))
  343. net_disable_timestamp();
  344. }
  345. }
  346. int sock_queue_rcv_skb(struct sock *sk, struct sk_buff *skb)
  347. {
  348. int err;
  349. int skb_len;
  350. unsigned long flags;
  351. struct sk_buff_head *list = &sk->sk_receive_queue;
  352. if (atomic_read(&sk->sk_rmem_alloc) >= sk->sk_rcvbuf) {
  353. atomic_inc(&sk->sk_drops);
  354. trace_sock_rcvqueue_full(sk, skb);
  355. return -ENOMEM;
  356. }
  357. err = sk_filter(sk, skb);
  358. if (err)
  359. return err;
  360. if (!sk_rmem_schedule(sk, skb, skb->truesize)) {
  361. atomic_inc(&sk->sk_drops);
  362. return -ENOBUFS;
  363. }
  364. skb->dev = NULL;
  365. skb_set_owner_r(skb, sk);
  366. /* Cache the SKB length before we tack it onto the receive
  367. * queue. Once it is added it no longer belongs to us and
  368. * may be freed by other threads of control pulling packets
  369. * from the queue.
  370. */
  371. skb_len = skb->len;
  372. /* we escape from rcu protected region, make sure we dont leak
  373. * a norefcounted dst
  374. */
  375. skb_dst_force(skb);
  376. spin_lock_irqsave(&list->lock, flags);
  377. skb->dropcount = atomic_read(&sk->sk_drops);
  378. __skb_queue_tail(list, skb);
  379. spin_unlock_irqrestore(&list->lock, flags);
  380. if (!sock_flag(sk, SOCK_DEAD))
  381. sk->sk_data_ready(sk, skb_len);
  382. return 0;
  383. }
  384. EXPORT_SYMBOL(sock_queue_rcv_skb);
  385. int sk_receive_skb(struct sock *sk, struct sk_buff *skb, const int nested)
  386. {
  387. int rc = NET_RX_SUCCESS;
  388. if (sk_filter(sk, skb))
  389. goto discard_and_relse;
  390. skb->dev = NULL;
  391. if (sk_rcvqueues_full(sk, skb, sk->sk_rcvbuf)) {
  392. atomic_inc(&sk->sk_drops);
  393. goto discard_and_relse;
  394. }
  395. if (nested)
  396. bh_lock_sock_nested(sk);
  397. else
  398. bh_lock_sock(sk);
  399. if (!sock_owned_by_user(sk)) {
  400. /*
  401. * trylock + unlock semantics:
  402. */
  403. mutex_acquire(&sk->sk_lock.dep_map, 0, 1, _RET_IP_);
  404. rc = sk_backlog_rcv(sk, skb);
  405. mutex_release(&sk->sk_lock.dep_map, 1, _RET_IP_);
  406. } else if (sk_add_backlog(sk, skb, sk->sk_rcvbuf)) {
  407. bh_unlock_sock(sk);
  408. atomic_inc(&sk->sk_drops);
  409. goto discard_and_relse;
  410. }
  411. bh_unlock_sock(sk);
  412. out:
  413. sock_put(sk);
  414. return rc;
  415. discard_and_relse:
  416. kfree_skb(skb);
  417. goto out;
  418. }
  419. EXPORT_SYMBOL(sk_receive_skb);
  420. void sk_reset_txq(struct sock *sk)
  421. {
  422. sk_tx_queue_clear(sk);
  423. }
  424. EXPORT_SYMBOL(sk_reset_txq);
  425. struct dst_entry *__sk_dst_check(struct sock *sk, u32 cookie)
  426. {
  427. struct dst_entry *dst = __sk_dst_get(sk);
  428. if (dst && dst->obsolete && dst->ops->check(dst, cookie) == NULL) {
  429. sk_tx_queue_clear(sk);
  430. RCU_INIT_POINTER(sk->sk_dst_cache, NULL);
  431. dst_release(dst);
  432. return NULL;
  433. }
  434. return dst;
  435. }
  436. EXPORT_SYMBOL(__sk_dst_check);
  437. struct dst_entry *sk_dst_check(struct sock *sk, u32 cookie)
  438. {
  439. struct dst_entry *dst = sk_dst_get(sk);
  440. if (dst && dst->obsolete && dst->ops->check(dst, cookie) == NULL) {
  441. sk_dst_reset(sk);
  442. dst_release(dst);
  443. return NULL;
  444. }
  445. return dst;
  446. }
  447. EXPORT_SYMBOL(sk_dst_check);
  448. static int sock_setbindtodevice(struct sock *sk, char __user *optval,
  449. int optlen)
  450. {
  451. int ret = -ENOPROTOOPT;
  452. #ifdef CONFIG_NETDEVICES
  453. struct net *net = sock_net(sk);
  454. char devname[IFNAMSIZ];
  455. int index;
  456. /* Sorry... */
  457. ret = -EPERM;
  458. if (!ns_capable(net->user_ns, CAP_NET_RAW))
  459. goto out;
  460. ret = -EINVAL;
  461. if (optlen < 0)
  462. goto out;
  463. /* Bind this socket to a particular device like "eth0",
  464. * as specified in the passed interface name. If the
  465. * name is "" or the option length is zero the socket
  466. * is not bound.
  467. */
  468. if (optlen > IFNAMSIZ - 1)
  469. optlen = IFNAMSIZ - 1;
  470. memset(devname, 0, sizeof(devname));
  471. ret = -EFAULT;
  472. if (copy_from_user(devname, optval, optlen))
  473. goto out;
  474. index = 0;
  475. if (devname[0] != '\0') {
  476. struct net_device *dev;
  477. rcu_read_lock();
  478. dev = dev_get_by_name_rcu(net, devname);
  479. if (dev)
  480. index = dev->ifindex;
  481. rcu_read_unlock();
  482. ret = -ENODEV;
  483. if (!dev)
  484. goto out;
  485. }
  486. lock_sock(sk);
  487. sk->sk_bound_dev_if = index;
  488. sk_dst_reset(sk);
  489. release_sock(sk);
  490. ret = 0;
  491. out:
  492. #endif
  493. return ret;
  494. }
  495. static int sock_getbindtodevice(struct sock *sk, char __user *optval,
  496. int __user *optlen, int len)
  497. {
  498. int ret = -ENOPROTOOPT;
  499. #ifdef CONFIG_NETDEVICES
  500. struct net *net = sock_net(sk);
  501. struct net_device *dev;
  502. char devname[IFNAMSIZ];
  503. unsigned seq;
  504. if (sk->sk_bound_dev_if == 0) {
  505. len = 0;
  506. goto zero;
  507. }
  508. ret = -EINVAL;
  509. if (len < IFNAMSIZ)
  510. goto out;
  511. retry:
  512. seq = read_seqbegin(&devnet_rename_seq);
  513. rcu_read_lock();
  514. dev = dev_get_by_index_rcu(net, sk->sk_bound_dev_if);
  515. ret = -ENODEV;
  516. if (!dev) {
  517. rcu_read_unlock();
  518. goto out;
  519. }
  520. strcpy(devname, dev->name);
  521. rcu_read_unlock();
  522. if (read_seqretry(&devnet_rename_seq, seq))
  523. goto retry;
  524. len = strlen(devname) + 1;
  525. ret = -EFAULT;
  526. if (copy_to_user(optval, devname, len))
  527. goto out;
  528. zero:
  529. ret = -EFAULT;
  530. if (put_user(len, optlen))
  531. goto out;
  532. ret = 0;
  533. out:
  534. #endif
  535. return ret;
  536. }
  537. static inline void sock_valbool_flag(struct sock *sk, int bit, int valbool)
  538. {
  539. if (valbool)
  540. sock_set_flag(sk, bit);
  541. else
  542. sock_reset_flag(sk, bit);
  543. }
  544. /*
  545. * This is meant for all protocols to use and covers goings on
  546. * at the socket level. Everything here is generic.
  547. */
  548. int sock_setsockopt(struct socket *sock, int level, int optname,
  549. char __user *optval, unsigned int optlen)
  550. {
  551. struct sock *sk = sock->sk;
  552. int val;
  553. int valbool;
  554. struct linger ling;
  555. int ret = 0;
  556. /*
  557. * Options without arguments
  558. */
  559. if (optname == SO_BINDTODEVICE)
  560. return sock_setbindtodevice(sk, optval, optlen);
  561. if (optlen < sizeof(int))
  562. return -EINVAL;
  563. if (get_user(val, (int __user *)optval))
  564. return -EFAULT;
  565. valbool = val ? 1 : 0;
  566. lock_sock(sk);
  567. switch (optname) {
  568. case SO_DEBUG:
  569. if (val && !capable(CAP_NET_ADMIN))
  570. ret = -EACCES;
  571. else
  572. sock_valbool_flag(sk, SOCK_DBG, valbool);
  573. break;
  574. case SO_REUSEADDR:
  575. sk->sk_reuse = (valbool ? SK_CAN_REUSE : SK_NO_REUSE);
  576. break;
  577. case SO_TYPE:
  578. case SO_PROTOCOL:
  579. case SO_DOMAIN:
  580. case SO_ERROR:
  581. ret = -ENOPROTOOPT;
  582. break;
  583. case SO_DONTROUTE:
  584. sock_valbool_flag(sk, SOCK_LOCALROUTE, valbool);
  585. break;
  586. case SO_BROADCAST:
  587. sock_valbool_flag(sk, SOCK_BROADCAST, valbool);
  588. break;
  589. case SO_SNDBUF:
  590. /* Don't error on this BSD doesn't and if you think
  591. * about it this is right. Otherwise apps have to
  592. * play 'guess the biggest size' games. RCVBUF/SNDBUF
  593. * are treated in BSD as hints
  594. */
  595. val = min_t(u32, val, sysctl_wmem_max);
  596. set_sndbuf:
  597. sk->sk_userlocks |= SOCK_SNDBUF_LOCK;
  598. sk->sk_sndbuf = max_t(u32, val * 2, SOCK_MIN_SNDBUF);
  599. /* Wake up sending tasks if we upped the value. */
  600. sk->sk_write_space(sk);
  601. break;
  602. case SO_SNDBUFFORCE:
  603. if (!capable(CAP_NET_ADMIN)) {
  604. ret = -EPERM;
  605. break;
  606. }
  607. goto set_sndbuf;
  608. case SO_RCVBUF:
  609. /* Don't error on this BSD doesn't and if you think
  610. * about it this is right. Otherwise apps have to
  611. * play 'guess the biggest size' games. RCVBUF/SNDBUF
  612. * are treated in BSD as hints
  613. */
  614. val = min_t(u32, val, sysctl_rmem_max);
  615. set_rcvbuf:
  616. sk->sk_userlocks |= SOCK_RCVBUF_LOCK;
  617. /*
  618. * We double it on the way in to account for
  619. * "struct sk_buff" etc. overhead. Applications
  620. * assume that the SO_RCVBUF setting they make will
  621. * allow that much actual data to be received on that
  622. * socket.
  623. *
  624. * Applications are unaware that "struct sk_buff" and
  625. * other overheads allocate from the receive buffer
  626. * during socket buffer allocation.
  627. *
  628. * And after considering the possible alternatives,
  629. * returning the value we actually used in getsockopt
  630. * is the most desirable behavior.
  631. */
  632. sk->sk_rcvbuf = max_t(u32, val * 2, SOCK_MIN_RCVBUF);
  633. break;
  634. case SO_RCVBUFFORCE:
  635. if (!capable(CAP_NET_ADMIN)) {
  636. ret = -EPERM;
  637. break;
  638. }
  639. goto set_rcvbuf;
  640. case SO_KEEPALIVE:
  641. #ifdef CONFIG_INET
  642. if (sk->sk_protocol == IPPROTO_TCP &&
  643. sk->sk_type == SOCK_STREAM)
  644. tcp_set_keepalive(sk, valbool);
  645. #endif
  646. sock_valbool_flag(sk, SOCK_KEEPOPEN, valbool);
  647. break;
  648. case SO_OOBINLINE:
  649. sock_valbool_flag(sk, SOCK_URGINLINE, valbool);
  650. break;
  651. case SO_NO_CHECK:
  652. sk->sk_no_check = valbool;
  653. break;
  654. case SO_PRIORITY:
  655. if ((val >= 0 && val <= 6) ||
  656. ns_capable(sock_net(sk)->user_ns, CAP_NET_ADMIN))
  657. sk->sk_priority = val;
  658. else
  659. ret = -EPERM;
  660. break;
  661. case SO_LINGER:
  662. if (optlen < sizeof(ling)) {
  663. ret = -EINVAL; /* 1003.1g */
  664. break;
  665. }
  666. if (copy_from_user(&ling, optval, sizeof(ling))) {
  667. ret = -EFAULT;
  668. break;
  669. }
  670. if (!ling.l_onoff)
  671. sock_reset_flag(sk, SOCK_LINGER);
  672. else {
  673. #if (BITS_PER_LONG == 32)
  674. if ((unsigned int)ling.l_linger >= MAX_SCHEDULE_TIMEOUT/HZ)
  675. sk->sk_lingertime = MAX_SCHEDULE_TIMEOUT;
  676. else
  677. #endif
  678. sk->sk_lingertime = (unsigned int)ling.l_linger * HZ;
  679. sock_set_flag(sk, SOCK_LINGER);
  680. }
  681. break;
  682. case SO_BSDCOMPAT:
  683. sock_warn_obsolete_bsdism("setsockopt");
  684. break;
  685. case SO_PASSCRED:
  686. if (valbool)
  687. set_bit(SOCK_PASSCRED, &sock->flags);
  688. else
  689. clear_bit(SOCK_PASSCRED, &sock->flags);
  690. break;
  691. case SO_TIMESTAMP:
  692. case SO_TIMESTAMPNS:
  693. if (valbool) {
  694. if (optname == SO_TIMESTAMP)
  695. sock_reset_flag(sk, SOCK_RCVTSTAMPNS);
  696. else
  697. sock_set_flag(sk, SOCK_RCVTSTAMPNS);
  698. sock_set_flag(sk, SOCK_RCVTSTAMP);
  699. sock_enable_timestamp(sk, SOCK_TIMESTAMP);
  700. } else {
  701. sock_reset_flag(sk, SOCK_RCVTSTAMP);
  702. sock_reset_flag(sk, SOCK_RCVTSTAMPNS);
  703. }
  704. break;
  705. case SO_TIMESTAMPING:
  706. if (val & ~SOF_TIMESTAMPING_MASK) {
  707. ret = -EINVAL;
  708. break;
  709. }
  710. sock_valbool_flag(sk, SOCK_TIMESTAMPING_TX_HARDWARE,
  711. val & SOF_TIMESTAMPING_TX_HARDWARE);
  712. sock_valbool_flag(sk, SOCK_TIMESTAMPING_TX_SOFTWARE,
  713. val & SOF_TIMESTAMPING_TX_SOFTWARE);
  714. sock_valbool_flag(sk, SOCK_TIMESTAMPING_RX_HARDWARE,
  715. val & SOF_TIMESTAMPING_RX_HARDWARE);
  716. if (val & SOF_TIMESTAMPING_RX_SOFTWARE)
  717. sock_enable_timestamp(sk,
  718. SOCK_TIMESTAMPING_RX_SOFTWARE);
  719. else
  720. sock_disable_timestamp(sk,
  721. (1UL << SOCK_TIMESTAMPING_RX_SOFTWARE));
  722. sock_valbool_flag(sk, SOCK_TIMESTAMPING_SOFTWARE,
  723. val & SOF_TIMESTAMPING_SOFTWARE);
  724. sock_valbool_flag(sk, SOCK_TIMESTAMPING_SYS_HARDWARE,
  725. val & SOF_TIMESTAMPING_SYS_HARDWARE);
  726. sock_valbool_flag(sk, SOCK_TIMESTAMPING_RAW_HARDWARE,
  727. val & SOF_TIMESTAMPING_RAW_HARDWARE);
  728. break;
  729. case SO_RCVLOWAT:
  730. if (val < 0)
  731. val = INT_MAX;
  732. sk->sk_rcvlowat = val ? : 1;
  733. break;
  734. case SO_RCVTIMEO:
  735. ret = sock_set_timeout(&sk->sk_rcvtimeo, optval, optlen);
  736. break;
  737. case SO_SNDTIMEO:
  738. ret = sock_set_timeout(&sk->sk_sndtimeo, optval, optlen);
  739. break;
  740. case SO_ATTACH_FILTER:
  741. ret = -EINVAL;
  742. if (optlen == sizeof(struct sock_fprog)) {
  743. struct sock_fprog fprog;
  744. ret = -EFAULT;
  745. if (copy_from_user(&fprog, optval, sizeof(fprog)))
  746. break;
  747. ret = sk_attach_filter(&fprog, sk);
  748. }
  749. break;
  750. case SO_DETACH_FILTER:
  751. ret = sk_detach_filter(sk);
  752. break;
  753. case SO_PASSSEC:
  754. if (valbool)
  755. set_bit(SOCK_PASSSEC, &sock->flags);
  756. else
  757. clear_bit(SOCK_PASSSEC, &sock->flags);
  758. break;
  759. case SO_MARK:
  760. if (!ns_capable(sock_net(sk)->user_ns, CAP_NET_ADMIN))
  761. ret = -EPERM;
  762. else
  763. sk->sk_mark = val;
  764. break;
  765. /* We implement the SO_SNDLOWAT etc to
  766. not be settable (1003.1g 5.3) */
  767. case SO_RXQ_OVFL:
  768. sock_valbool_flag(sk, SOCK_RXQ_OVFL, valbool);
  769. break;
  770. case SO_WIFI_STATUS:
  771. sock_valbool_flag(sk, SOCK_WIFI_STATUS, valbool);
  772. break;
  773. case SO_PEEK_OFF:
  774. if (sock->ops->set_peek_off)
  775. sock->ops->set_peek_off(sk, val);
  776. else
  777. ret = -EOPNOTSUPP;
  778. break;
  779. case SO_NOFCS:
  780. sock_valbool_flag(sk, SOCK_NOFCS, valbool);
  781. break;
  782. default:
  783. ret = -ENOPROTOOPT;
  784. break;
  785. }
  786. release_sock(sk);
  787. return ret;
  788. }
  789. EXPORT_SYMBOL(sock_setsockopt);
  790. void cred_to_ucred(struct pid *pid, const struct cred *cred,
  791. struct ucred *ucred)
  792. {
  793. ucred->pid = pid_vnr(pid);
  794. ucred->uid = ucred->gid = -1;
  795. if (cred) {
  796. struct user_namespace *current_ns = current_user_ns();
  797. ucred->uid = from_kuid_munged(current_ns, cred->euid);
  798. ucred->gid = from_kgid_munged(current_ns, cred->egid);
  799. }
  800. }
  801. EXPORT_SYMBOL_GPL(cred_to_ucred);
  802. int sock_getsockopt(struct socket *sock, int level, int optname,
  803. char __user *optval, int __user *optlen)
  804. {
  805. struct sock *sk = sock->sk;
  806. union {
  807. int val;
  808. struct linger ling;
  809. struct timeval tm;
  810. } v;
  811. int lv = sizeof(int);
  812. int len;
  813. if (get_user(len, optlen))
  814. return -EFAULT;
  815. if (len < 0)
  816. return -EINVAL;
  817. memset(&v, 0, sizeof(v));
  818. switch (optname) {
  819. case SO_DEBUG:
  820. v.val = sock_flag(sk, SOCK_DBG);
  821. break;
  822. case SO_DONTROUTE:
  823. v.val = sock_flag(sk, SOCK_LOCALROUTE);
  824. break;
  825. case SO_BROADCAST:
  826. v.val = sock_flag(sk, SOCK_BROADCAST);
  827. break;
  828. case SO_SNDBUF:
  829. v.val = sk->sk_sndbuf;
  830. break;
  831. case SO_RCVBUF:
  832. v.val = sk->sk_rcvbuf;
  833. break;
  834. case SO_REUSEADDR:
  835. v.val = sk->sk_reuse;
  836. break;
  837. case SO_KEEPALIVE:
  838. v.val = sock_flag(sk, SOCK_KEEPOPEN);
  839. break;
  840. case SO_TYPE:
  841. v.val = sk->sk_type;
  842. break;
  843. case SO_PROTOCOL:
  844. v.val = sk->sk_protocol;
  845. break;
  846. case SO_DOMAIN:
  847. v.val = sk->sk_family;
  848. break;
  849. case SO_ERROR:
  850. v.val = -sock_error(sk);
  851. if (v.val == 0)
  852. v.val = xchg(&sk->sk_err_soft, 0);
  853. break;
  854. case SO_OOBINLINE:
  855. v.val = sock_flag(sk, SOCK_URGINLINE);
  856. break;
  857. case SO_NO_CHECK:
  858. v.val = sk->sk_no_check;
  859. break;
  860. case SO_PRIORITY:
  861. v.val = sk->sk_priority;
  862. break;
  863. case SO_LINGER:
  864. lv = sizeof(v.ling);
  865. v.ling.l_onoff = sock_flag(sk, SOCK_LINGER);
  866. v.ling.l_linger = sk->sk_lingertime / HZ;
  867. break;
  868. case SO_BSDCOMPAT:
  869. sock_warn_obsolete_bsdism("getsockopt");
  870. break;
  871. case SO_TIMESTAMP:
  872. v.val = sock_flag(sk, SOCK_RCVTSTAMP) &&
  873. !sock_flag(sk, SOCK_RCVTSTAMPNS);
  874. break;
  875. case SO_TIMESTAMPNS:
  876. v.val = sock_flag(sk, SOCK_RCVTSTAMPNS);
  877. break;
  878. case SO_TIMESTAMPING:
  879. v.val = 0;
  880. if (sock_flag(sk, SOCK_TIMESTAMPING_TX_HARDWARE))
  881. v.val |= SOF_TIMESTAMPING_TX_HARDWARE;
  882. if (sock_flag(sk, SOCK_TIMESTAMPING_TX_SOFTWARE))
  883. v.val |= SOF_TIMESTAMPING_TX_SOFTWARE;
  884. if (sock_flag(sk, SOCK_TIMESTAMPING_RX_HARDWARE))
  885. v.val |= SOF_TIMESTAMPING_RX_HARDWARE;
  886. if (sock_flag(sk, SOCK_TIMESTAMPING_RX_SOFTWARE))
  887. v.val |= SOF_TIMESTAMPING_RX_SOFTWARE;
  888. if (sock_flag(sk, SOCK_TIMESTAMPING_SOFTWARE))
  889. v.val |= SOF_TIMESTAMPING_SOFTWARE;
  890. if (sock_flag(sk, SOCK_TIMESTAMPING_SYS_HARDWARE))
  891. v.val |= SOF_TIMESTAMPING_SYS_HARDWARE;
  892. if (sock_flag(sk, SOCK_TIMESTAMPING_RAW_HARDWARE))
  893. v.val |= SOF_TIMESTAMPING_RAW_HARDWARE;
  894. break;
  895. case SO_RCVTIMEO:
  896. lv = sizeof(struct timeval);
  897. if (sk->sk_rcvtimeo == MAX_SCHEDULE_TIMEOUT) {
  898. v.tm.tv_sec = 0;
  899. v.tm.tv_usec = 0;
  900. } else {
  901. v.tm.tv_sec = sk->sk_rcvtimeo / HZ;
  902. v.tm.tv_usec = ((sk->sk_rcvtimeo % HZ) * 1000000) / HZ;
  903. }
  904. break;
  905. case SO_SNDTIMEO:
  906. lv = sizeof(struct timeval);
  907. if (sk->sk_sndtimeo == MAX_SCHEDULE_TIMEOUT) {
  908. v.tm.tv_sec = 0;
  909. v.tm.tv_usec = 0;
  910. } else {
  911. v.tm.tv_sec = sk->sk_sndtimeo / HZ;
  912. v.tm.tv_usec = ((sk->sk_sndtimeo % HZ) * 1000000) / HZ;
  913. }
  914. break;
  915. case SO_RCVLOWAT:
  916. v.val = sk->sk_rcvlowat;
  917. break;
  918. case SO_SNDLOWAT:
  919. v.val = 1;
  920. break;
  921. case SO_PASSCRED:
  922. v.val = !!test_bit(SOCK_PASSCRED, &sock->flags);
  923. break;
  924. case SO_PEERCRED:
  925. {
  926. struct ucred peercred;
  927. if (len > sizeof(peercred))
  928. len = sizeof(peercred);
  929. cred_to_ucred(sk->sk_peer_pid, sk->sk_peer_cred, &peercred);
  930. if (copy_to_user(optval, &peercred, len))
  931. return -EFAULT;
  932. goto lenout;
  933. }
  934. case SO_PEERNAME:
  935. {
  936. char address[128];
  937. if (sock->ops->getname(sock, (struct sockaddr *)address, &lv, 2))
  938. return -ENOTCONN;
  939. if (lv < len)
  940. return -EINVAL;
  941. if (copy_to_user(optval, address, len))
  942. return -EFAULT;
  943. goto lenout;
  944. }
  945. /* Dubious BSD thing... Probably nobody even uses it, but
  946. * the UNIX standard wants it for whatever reason... -DaveM
  947. */
  948. case SO_ACCEPTCONN:
  949. v.val = sk->sk_state == TCP_LISTEN;
  950. break;
  951. case SO_PASSSEC:
  952. v.val = !!test_bit(SOCK_PASSSEC, &sock->flags);
  953. break;
  954. case SO_PEERSEC:
  955. return security_socket_getpeersec_stream(sock, optval, optlen, len);
  956. case SO_MARK:
  957. v.val = sk->sk_mark;
  958. break;
  959. case SO_RXQ_OVFL:
  960. v.val = sock_flag(sk, SOCK_RXQ_OVFL);
  961. break;
  962. case SO_WIFI_STATUS:
  963. v.val = sock_flag(sk, SOCK_WIFI_STATUS);
  964. break;
  965. case SO_PEEK_OFF:
  966. if (!sock->ops->set_peek_off)
  967. return -EOPNOTSUPP;
  968. v.val = sk->sk_peek_off;
  969. break;
  970. case SO_NOFCS:
  971. v.val = sock_flag(sk, SOCK_NOFCS);
  972. break;
  973. case SO_BINDTODEVICE:
  974. return sock_getbindtodevice(sk, optval, optlen, len);
  975. case SO_GET_FILTER:
  976. len = sk_get_filter(sk, (struct sock_filter __user *)optval, len);
  977. if (len < 0)
  978. return len;
  979. goto lenout;
  980. default:
  981. return -ENOPROTOOPT;
  982. }
  983. if (len > lv)
  984. len = lv;
  985. if (copy_to_user(optval, &v, len))
  986. return -EFAULT;
  987. lenout:
  988. if (put_user(len, optlen))
  989. return -EFAULT;
  990. return 0;
  991. }
  992. /*
  993. * Initialize an sk_lock.
  994. *
  995. * (We also register the sk_lock with the lock validator.)
  996. */
  997. static inline void sock_lock_init(struct sock *sk)
  998. {
  999. sock_lock_init_class_and_name(sk,
  1000. af_family_slock_key_strings[sk->sk_family],
  1001. af_family_slock_keys + sk->sk_family,
  1002. af_family_key_strings[sk->sk_family],
  1003. af_family_keys + sk->sk_family);
  1004. }
  1005. /*
  1006. * Copy all fields from osk to nsk but nsk->sk_refcnt must not change yet,
  1007. * even temporarly, because of RCU lookups. sk_node should also be left as is.
  1008. * We must not copy fields between sk_dontcopy_begin and sk_dontcopy_end
  1009. */
  1010. static void sock_copy(struct sock *nsk, const struct sock *osk)
  1011. {
  1012. #ifdef CONFIG_SECURITY_NETWORK
  1013. void *sptr = nsk->sk_security;
  1014. #endif
  1015. memcpy(nsk, osk, offsetof(struct sock, sk_dontcopy_begin));
  1016. memcpy(&nsk->sk_dontcopy_end, &osk->sk_dontcopy_end,
  1017. osk->sk_prot->obj_size - offsetof(struct sock, sk_dontcopy_end));
  1018. #ifdef CONFIG_SECURITY_NETWORK
  1019. nsk->sk_security = sptr;
  1020. security_sk_clone(osk, nsk);
  1021. #endif
  1022. }
  1023. /*
  1024. * caches using SLAB_DESTROY_BY_RCU should let .next pointer from nulls nodes
  1025. * un-modified. Special care is taken when initializing object to zero.
  1026. */
  1027. static inline void sk_prot_clear_nulls(struct sock *sk, int size)
  1028. {
  1029. if (offsetof(struct sock, sk_node.next) != 0)
  1030. memset(sk, 0, offsetof(struct sock, sk_node.next));
  1031. memset(&sk->sk_node.pprev, 0,
  1032. size - offsetof(struct sock, sk_node.pprev));
  1033. }
  1034. void sk_prot_clear_portaddr_nulls(struct sock *sk, int size)
  1035. {
  1036. unsigned long nulls1, nulls2;
  1037. nulls1 = offsetof(struct sock, __sk_common.skc_node.next);
  1038. nulls2 = offsetof(struct sock, __sk_common.skc_portaddr_node.next);
  1039. if (nulls1 > nulls2)
  1040. swap(nulls1, nulls2);
  1041. if (nulls1 != 0)
  1042. memset((char *)sk, 0, nulls1);
  1043. memset((char *)sk + nulls1 + sizeof(void *), 0,
  1044. nulls2 - nulls1 - sizeof(void *));
  1045. memset((char *)sk + nulls2 + sizeof(void *), 0,
  1046. size - nulls2 - sizeof(void *));
  1047. }
  1048. EXPORT_SYMBOL(sk_prot_clear_portaddr_nulls);
  1049. static struct sock *sk_prot_alloc(struct proto *prot, gfp_t priority,
  1050. int family)
  1051. {
  1052. struct sock *sk;
  1053. struct kmem_cache *slab;
  1054. slab = prot->slab;
  1055. if (slab != NULL) {
  1056. sk = kmem_cache_alloc(slab, priority & ~__GFP_ZERO);
  1057. if (!sk)
  1058. return sk;
  1059. if (priority & __GFP_ZERO) {
  1060. if (prot->clear_sk)
  1061. prot->clear_sk(sk, prot->obj_size);
  1062. else
  1063. sk_prot_clear_nulls(sk, prot->obj_size);
  1064. }
  1065. } else
  1066. sk = kmalloc(prot->obj_size, priority);
  1067. if (sk != NULL) {
  1068. kmemcheck_annotate_bitfield(sk, flags);
  1069. if (security_sk_alloc(sk, family, priority))
  1070. goto out_free;
  1071. if (!try_module_get(prot->owner))
  1072. goto out_free_sec;
  1073. sk_tx_queue_clear(sk);
  1074. }
  1075. return sk;
  1076. out_free_sec:
  1077. security_sk_free(sk);
  1078. out_free:
  1079. if (slab != NULL)
  1080. kmem_cache_free(slab, sk);
  1081. else
  1082. kfree(sk);
  1083. return NULL;
  1084. }
  1085. static void sk_prot_free(struct proto *prot, struct sock *sk)
  1086. {
  1087. struct kmem_cache *slab;
  1088. struct module *owner;
  1089. owner = prot->owner;
  1090. slab = prot->slab;
  1091. security_sk_free(sk);
  1092. if (slab != NULL)
  1093. kmem_cache_free(slab, sk);
  1094. else
  1095. kfree(sk);
  1096. module_put(owner);
  1097. }
  1098. #ifdef CONFIG_CGROUPS
  1099. #if IS_ENABLED(CONFIG_NET_CLS_CGROUP)
  1100. void sock_update_classid(struct sock *sk, struct task_struct *task)
  1101. {
  1102. u32 classid;
  1103. classid = task_cls_classid(task);
  1104. if (classid != sk->sk_classid)
  1105. sk->sk_classid = classid;
  1106. }
  1107. EXPORT_SYMBOL(sock_update_classid);
  1108. #endif
  1109. #if IS_ENABLED(CONFIG_NETPRIO_CGROUP)
  1110. void sock_update_netprioidx(struct sock *sk, struct task_struct *task)
  1111. {
  1112. if (in_interrupt())
  1113. return;
  1114. sk->sk_cgrp_prioidx = task_netprioidx(task);
  1115. }
  1116. EXPORT_SYMBOL_GPL(sock_update_netprioidx);
  1117. #endif
  1118. #endif
  1119. /**
  1120. * sk_alloc - All socket objects are allocated here
  1121. * @net: the applicable net namespace
  1122. * @family: protocol family
  1123. * @priority: for allocation (%GFP_KERNEL, %GFP_ATOMIC, etc)
  1124. * @prot: struct proto associated with this new sock instance
  1125. */
  1126. struct sock *sk_alloc(struct net *net, int family, gfp_t priority,
  1127. struct proto *prot)
  1128. {
  1129. struct sock *sk;
  1130. sk = sk_prot_alloc(prot, priority | __GFP_ZERO, family);
  1131. if (sk) {
  1132. sk->sk_family = family;
  1133. /*
  1134. * See comment in struct sock definition to understand
  1135. * why we need sk_prot_creator -acme
  1136. */
  1137. sk->sk_prot = sk->sk_prot_creator = prot;
  1138. sock_lock_init(sk);
  1139. sock_net_set(sk, get_net(net));
  1140. atomic_set(&sk->sk_wmem_alloc, 1);
  1141. sock_update_classid(sk, current);
  1142. sock_update_netprioidx(sk, current);
  1143. }
  1144. return sk;
  1145. }
  1146. EXPORT_SYMBOL(sk_alloc);
  1147. static void __sk_free(struct sock *sk)
  1148. {
  1149. struct sk_filter *filter;
  1150. if (sk->sk_destruct)
  1151. sk->sk_destruct(sk);
  1152. filter = rcu_dereference_check(sk->sk_filter,
  1153. atomic_read(&sk->sk_wmem_alloc) == 0);
  1154. if (filter) {
  1155. sk_filter_uncharge(sk, filter);
  1156. RCU_INIT_POINTER(sk->sk_filter, NULL);
  1157. }
  1158. sock_disable_timestamp(sk, SK_FLAGS_TIMESTAMP);
  1159. if (atomic_read(&sk->sk_omem_alloc))
  1160. pr_debug("%s: optmem leakage (%d bytes) detected\n",
  1161. __func__, atomic_read(&sk->sk_omem_alloc));
  1162. if (sk->sk_peer_cred)
  1163. put_cred(sk->sk_peer_cred);
  1164. put_pid(sk->sk_peer_pid);
  1165. put_net(sock_net(sk));
  1166. sk_prot_free(sk->sk_prot_creator, sk);
  1167. }
  1168. void sk_free(struct sock *sk)
  1169. {
  1170. /*
  1171. * We subtract one from sk_wmem_alloc and can know if
  1172. * some packets are still in some tx queue.
  1173. * If not null, sock_wfree() will call __sk_free(sk) later
  1174. */
  1175. if (atomic_dec_and_test(&sk->sk_wmem_alloc))
  1176. __sk_free(sk);
  1177. }
  1178. EXPORT_SYMBOL(sk_free);
  1179. /*
  1180. * Last sock_put should drop reference to sk->sk_net. It has already
  1181. * been dropped in sk_change_net. Taking reference to stopping namespace
  1182. * is not an option.
  1183. * Take reference to a socket to remove it from hash _alive_ and after that
  1184. * destroy it in the context of init_net.
  1185. */
  1186. void sk_release_kernel(struct sock *sk)
  1187. {
  1188. if (sk == NULL || sk->sk_socket == NULL)
  1189. return;
  1190. sock_hold(sk);
  1191. sock_release(sk->sk_socket);
  1192. release_net(sock_net(sk));
  1193. sock_net_set(sk, get_net(&init_net));
  1194. sock_put(sk);
  1195. }
  1196. EXPORT_SYMBOL(sk_release_kernel);
  1197. static void sk_update_clone(const struct sock *sk, struct sock *newsk)
  1198. {
  1199. if (mem_cgroup_sockets_enabled && sk->sk_cgrp)
  1200. sock_update_memcg(newsk);
  1201. }
  1202. /**
  1203. * sk_clone_lock - clone a socket, and lock its clone
  1204. * @sk: the socket to clone
  1205. * @priority: for allocation (%GFP_KERNEL, %GFP_ATOMIC, etc)
  1206. *
  1207. * Caller must unlock socket even in error path (bh_unlock_sock(newsk))
  1208. */
  1209. struct sock *sk_clone_lock(const struct sock *sk, const gfp_t priority)
  1210. {
  1211. struct sock *newsk;
  1212. newsk = sk_prot_alloc(sk->sk_prot, priority, sk->sk_family);
  1213. if (newsk != NULL) {
  1214. struct sk_filter *filter;
  1215. sock_copy(newsk, sk);
  1216. /* SANITY */
  1217. get_net(sock_net(newsk));
  1218. sk_node_init(&newsk->sk_node);
  1219. sock_lock_init(newsk);
  1220. bh_lock_sock(newsk);
  1221. newsk->sk_backlog.head = newsk->sk_backlog.tail = NULL;
  1222. newsk->sk_backlog.len = 0;
  1223. atomic_set(&newsk->sk_rmem_alloc, 0);
  1224. /*
  1225. * sk_wmem_alloc set to one (see sk_free() and sock_wfree())
  1226. */
  1227. atomic_set(&newsk->sk_wmem_alloc, 1);
  1228. atomic_set(&newsk->sk_omem_alloc, 0);
  1229. skb_queue_head_init(&newsk->sk_receive_queue);
  1230. skb_queue_head_init(&newsk->sk_write_queue);
  1231. #ifdef CONFIG_NET_DMA
  1232. skb_queue_head_init(&newsk->sk_async_wait_queue);
  1233. #endif
  1234. spin_lock_init(&newsk->sk_dst_lock);
  1235. rwlock_init(&newsk->sk_callback_lock);
  1236. lockdep_set_class_and_name(&newsk->sk_callback_lock,
  1237. af_callback_keys + newsk->sk_family,
  1238. af_family_clock_key_strings[newsk->sk_family]);
  1239. newsk->sk_dst_cache = NULL;
  1240. newsk->sk_wmem_queued = 0;
  1241. newsk->sk_forward_alloc = 0;
  1242. newsk->sk_send_head = NULL;
  1243. newsk->sk_userlocks = sk->sk_userlocks & ~SOCK_BINDPORT_LOCK;
  1244. sock_reset_flag(newsk, SOCK_DONE);
  1245. skb_queue_head_init(&newsk->sk_error_queue);
  1246. filter = rcu_dereference_protected(newsk->sk_filter, 1);
  1247. if (filter != NULL)
  1248. sk_filter_charge(newsk, filter);
  1249. if (unlikely(xfrm_sk_clone_policy(newsk))) {
  1250. /* It is still raw copy of parent, so invalidate
  1251. * destructor and make plain sk_free() */
  1252. newsk->sk_destruct = NULL;
  1253. bh_unlock_sock(newsk);
  1254. sk_free(newsk);
  1255. newsk = NULL;
  1256. goto out;
  1257. }
  1258. newsk->sk_err = 0;
  1259. newsk->sk_priority = 0;
  1260. /*
  1261. * Before updating sk_refcnt, we must commit prior changes to memory
  1262. * (Documentation/RCU/rculist_nulls.txt for details)
  1263. */
  1264. smp_wmb();
  1265. atomic_set(&newsk->sk_refcnt, 2);
  1266. /*
  1267. * Increment the counter in the same struct proto as the master
  1268. * sock (sk_refcnt_debug_inc uses newsk->sk_prot->socks, that
  1269. * is the same as sk->sk_prot->socks, as this field was copied
  1270. * with memcpy).
  1271. *
  1272. * This _changes_ the previous behaviour, where
  1273. * tcp_create_openreq_child always was incrementing the
  1274. * equivalent to tcp_prot->socks (inet_sock_nr), so this have
  1275. * to be taken into account in all callers. -acme
  1276. */
  1277. sk_refcnt_debug_inc(newsk);
  1278. sk_set_socket(newsk, NULL);
  1279. newsk->sk_wq = NULL;
  1280. sk_update_clone(sk, newsk);
  1281. if (newsk->sk_prot->sockets_allocated)
  1282. sk_sockets_allocated_inc(newsk);
  1283. if (newsk->sk_flags & SK_FLAGS_TIMESTAMP)
  1284. net_enable_timestamp();
  1285. }
  1286. out:
  1287. return newsk;
  1288. }
  1289. EXPORT_SYMBOL_GPL(sk_clone_lock);
  1290. void sk_setup_caps(struct sock *sk, struct dst_entry *dst)
  1291. {
  1292. __sk_dst_set(sk, dst);
  1293. sk->sk_route_caps = dst->dev->features;
  1294. if (sk->sk_route_caps & NETIF_F_GSO)
  1295. sk->sk_route_caps |= NETIF_F_GSO_SOFTWARE;
  1296. sk->sk_route_caps &= ~sk->sk_route_nocaps;
  1297. if (sk_can_gso(sk)) {
  1298. if (dst->header_len) {
  1299. sk->sk_route_caps &= ~NETIF_F_GSO_MASK;
  1300. } else {
  1301. sk->sk_route_caps |= NETIF_F_SG | NETIF_F_HW_CSUM;
  1302. sk->sk_gso_max_size = dst->dev->gso_max_size;
  1303. sk->sk_gso_max_segs = dst->dev->gso_max_segs;
  1304. }
  1305. }
  1306. }
  1307. EXPORT_SYMBOL_GPL(sk_setup_caps);
  1308. /*
  1309. * Simple resource managers for sockets.
  1310. */
  1311. /*
  1312. * Write buffer destructor automatically called from kfree_skb.
  1313. */
  1314. void sock_wfree(struct sk_buff *skb)
  1315. {
  1316. struct sock *sk = skb->sk;
  1317. unsigned int len = skb->truesize;
  1318. if (!sock_flag(sk, SOCK_USE_WRITE_QUEUE)) {
  1319. /*
  1320. * Keep a reference on sk_wmem_alloc, this will be released
  1321. * after sk_write_space() call
  1322. */
  1323. atomic_sub(len - 1, &sk->sk_wmem_alloc);
  1324. sk->sk_write_space(sk);
  1325. len = 1;
  1326. }
  1327. /*
  1328. * if sk_wmem_alloc reaches 0, we must finish what sk_free()
  1329. * could not do because of in-flight packets
  1330. */
  1331. if (atomic_sub_and_test(len, &sk->sk_wmem_alloc))
  1332. __sk_free(sk);
  1333. }
  1334. EXPORT_SYMBOL(sock_wfree);
  1335. /*
  1336. * Read buffer destructor automatically called from kfree_skb.
  1337. */
  1338. void sock_rfree(struct sk_buff *skb)
  1339. {
  1340. struct sock *sk = skb->sk;
  1341. unsigned int len = skb->truesize;
  1342. atomic_sub(len, &sk->sk_rmem_alloc);
  1343. sk_mem_uncharge(sk, len);
  1344. }
  1345. EXPORT_SYMBOL(sock_rfree);
  1346. void sock_edemux(struct sk_buff *skb)
  1347. {
  1348. struct sock *sk = skb->sk;
  1349. #ifdef CONFIG_INET
  1350. if (sk->sk_state == TCP_TIME_WAIT)
  1351. inet_twsk_put(inet_twsk(sk));
  1352. else
  1353. #endif
  1354. sock_put(sk);
  1355. }
  1356. EXPORT_SYMBOL(sock_edemux);
  1357. kuid_t sock_i_uid(struct sock *sk)
  1358. {
  1359. kuid_t uid;
  1360. read_lock_bh(&sk->sk_callback_lock);
  1361. uid = sk->sk_socket ? SOCK_INODE(sk->sk_socket)->i_uid : GLOBAL_ROOT_UID;
  1362. read_unlock_bh(&sk->sk_callback_lock);
  1363. return uid;
  1364. }
  1365. EXPORT_SYMBOL(sock_i_uid);
  1366. unsigned long sock_i_ino(struct sock *sk)
  1367. {
  1368. unsigned long ino;
  1369. read_lock_bh(&sk->sk_callback_lock);
  1370. ino = sk->sk_socket ? SOCK_INODE(sk->sk_socket)->i_ino : 0;
  1371. read_unlock_bh(&sk->sk_callback_lock);
  1372. return ino;
  1373. }
  1374. EXPORT_SYMBOL(sock_i_ino);
  1375. /*
  1376. * Allocate a skb from the socket's send buffer.
  1377. */
  1378. struct sk_buff *sock_wmalloc(struct sock *sk, unsigned long size, int force,
  1379. gfp_t priority)
  1380. {
  1381. if (force || atomic_read(&sk->sk_wmem_alloc) < sk->sk_sndbuf) {
  1382. struct sk_buff *skb = alloc_skb(size, priority);
  1383. if (skb) {
  1384. skb_set_owner_w(skb, sk);
  1385. return skb;
  1386. }
  1387. }
  1388. return NULL;
  1389. }
  1390. EXPORT_SYMBOL(sock_wmalloc);
  1391. /*
  1392. * Allocate a skb from the socket's receive buffer.
  1393. */
  1394. struct sk_buff *sock_rmalloc(struct sock *sk, unsigned long size, int force,
  1395. gfp_t priority)
  1396. {
  1397. if (force || atomic_read(&sk->sk_rmem_alloc) < sk->sk_rcvbuf) {
  1398. struct sk_buff *skb = alloc_skb(size, priority);
  1399. if (skb) {
  1400. skb_set_owner_r(skb, sk);
  1401. return skb;
  1402. }
  1403. }
  1404. return NULL;
  1405. }
  1406. /*
  1407. * Allocate a memory block from the socket's option memory buffer.
  1408. */
  1409. void *sock_kmalloc(struct sock *sk, int size, gfp_t priority)
  1410. {
  1411. if ((unsigned int)size <= sysctl_optmem_max &&
  1412. atomic_read(&sk->sk_omem_alloc) + size < sysctl_optmem_max) {
  1413. void *mem;
  1414. /* First do the add, to avoid the race if kmalloc
  1415. * might sleep.
  1416. */
  1417. atomic_add(size, &sk->sk_omem_alloc);
  1418. mem = kmalloc(size, priority);
  1419. if (mem)
  1420. return mem;
  1421. atomic_sub(size, &sk->sk_omem_alloc);
  1422. }
  1423. return NULL;
  1424. }
  1425. EXPORT_SYMBOL(sock_kmalloc);
  1426. /*
  1427. * Free an option memory block.
  1428. */
  1429. void sock_kfree_s(struct sock *sk, void *mem, int size)
  1430. {
  1431. kfree(mem);
  1432. atomic_sub(size, &sk->sk_omem_alloc);
  1433. }
  1434. EXPORT_SYMBOL(sock_kfree_s);
  1435. /* It is almost wait_for_tcp_memory minus release_sock/lock_sock.
  1436. I think, these locks should be removed for datagram sockets.
  1437. */
  1438. static long sock_wait_for_wmem(struct sock *sk, long timeo)
  1439. {
  1440. DEFINE_WAIT(wait);
  1441. clear_bit(SOCK_ASYNC_NOSPACE, &sk->sk_socket->flags);
  1442. for (;;) {
  1443. if (!timeo)
  1444. break;
  1445. if (signal_pending(current))
  1446. break;
  1447. set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
  1448. prepare_to_wait(sk_sleep(sk), &wait, TASK_INTERRUPTIBLE);
  1449. if (atomic_read(&sk->sk_wmem_alloc) < sk->sk_sndbuf)
  1450. break;
  1451. if (sk->sk_shutdown & SEND_SHUTDOWN)
  1452. break;
  1453. if (sk->sk_err)
  1454. break;
  1455. timeo = schedule_timeout(timeo);
  1456. }
  1457. finish_wait(sk_sleep(sk), &wait);
  1458. return timeo;
  1459. }
  1460. /*
  1461. * Generic send/receive buffer handlers
  1462. */
  1463. struct sk_buff *sock_alloc_send_pskb(struct sock *sk, unsigned long header_len,
  1464. unsigned long data_len, int noblock,
  1465. int *errcode)
  1466. {
  1467. struct sk_buff *skb;
  1468. gfp_t gfp_mask;
  1469. long timeo;
  1470. int err;
  1471. int npages = (data_len + (PAGE_SIZE - 1)) >> PAGE_SHIFT;
  1472. err = -EMSGSIZE;
  1473. if (npages > MAX_SKB_FRAGS)
  1474. goto failure;
  1475. gfp_mask = sk->sk_allocation;
  1476. if (gfp_mask & __GFP_WAIT)
  1477. gfp_mask |= __GFP_REPEAT;
  1478. timeo = sock_sndtimeo(sk, noblock);
  1479. while (1) {
  1480. err = sock_error(sk);
  1481. if (err != 0)
  1482. goto failure;
  1483. err = -EPIPE;
  1484. if (sk->sk_shutdown & SEND_SHUTDOWN)
  1485. goto failure;
  1486. if (atomic_read(&sk->sk_wmem_alloc) < sk->sk_sndbuf) {
  1487. skb = alloc_skb(header_len, gfp_mask);
  1488. if (skb) {
  1489. int i;
  1490. /* No pages, we're done... */
  1491. if (!data_len)
  1492. break;
  1493. skb->truesize += data_len;
  1494. skb_shinfo(skb)->nr_frags = npages;
  1495. for (i = 0; i < npages; i++) {
  1496. struct page *page;
  1497. page = alloc_pages(sk->sk_allocation, 0);
  1498. if (!page) {
  1499. err = -ENOBUFS;
  1500. skb_shinfo(skb)->nr_frags = i;
  1501. kfree_skb(skb);
  1502. goto failure;
  1503. }
  1504. __skb_fill_page_desc(skb, i,
  1505. page, 0,
  1506. (data_len >= PAGE_SIZE ?
  1507. PAGE_SIZE :
  1508. data_len));
  1509. data_len -= PAGE_SIZE;
  1510. }
  1511. /* Full success... */
  1512. break;
  1513. }
  1514. err = -ENOBUFS;
  1515. goto failure;
  1516. }
  1517. set_bit(SOCK_ASYNC_NOSPACE, &sk->sk_socket->flags);
  1518. set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
  1519. err = -EAGAIN;
  1520. if (!timeo)
  1521. goto failure;
  1522. if (signal_pending(current))
  1523. goto interrupted;
  1524. timeo = sock_wait_for_wmem(sk, timeo);
  1525. }
  1526. skb_set_owner_w(skb, sk);
  1527. return skb;
  1528. interrupted:
  1529. err = sock_intr_errno(timeo);
  1530. failure:
  1531. *errcode = err;
  1532. return NULL;
  1533. }
  1534. EXPORT_SYMBOL(sock_alloc_send_pskb);
  1535. struct sk_buff *sock_alloc_send_skb(struct sock *sk, unsigned long size,
  1536. int noblock, int *errcode)
  1537. {
  1538. return sock_alloc_send_pskb(sk, size, 0, noblock, errcode);
  1539. }
  1540. EXPORT_SYMBOL(sock_alloc_send_skb);
  1541. /* On 32bit arches, an skb frag is limited to 2^15 */
  1542. #define SKB_FRAG_PAGE_ORDER get_order(32768)
  1543. bool sk_page_frag_refill(struct sock *sk, struct page_frag *pfrag)
  1544. {
  1545. int order;
  1546. if (pfrag->page) {
  1547. if (atomic_read(&pfrag->page->_count) == 1) {
  1548. pfrag->offset = 0;
  1549. return true;
  1550. }
  1551. if (pfrag->offset < pfrag->size)
  1552. return true;
  1553. put_page(pfrag->page);
  1554. }
  1555. /* We restrict high order allocations to users that can afford to wait */
  1556. order = (sk->sk_allocation & __GFP_WAIT) ? SKB_FRAG_PAGE_ORDER : 0;
  1557. do {
  1558. gfp_t gfp = sk->sk_allocation;
  1559. if (order)
  1560. gfp |= __GFP_COMP | __GFP_NOWARN;
  1561. pfrag->page = alloc_pages(gfp, order);
  1562. if (likely(pfrag->page)) {
  1563. pfrag->offset = 0;
  1564. pfrag->size = PAGE_SIZE << order;
  1565. return true;
  1566. }
  1567. } while (--order >= 0);
  1568. sk_enter_memory_pressure(sk);
  1569. sk_stream_moderate_sndbuf(sk);
  1570. return false;
  1571. }
  1572. EXPORT_SYMBOL(sk_page_frag_refill);
  1573. static void __lock_sock(struct sock *sk)
  1574. __releases(&sk->sk_lock.slock)
  1575. __acquires(&sk->sk_lock.slock)
  1576. {
  1577. DEFINE_WAIT(wait);
  1578. for (;;) {
  1579. prepare_to_wait_exclusive(&sk->sk_lock.wq, &wait,
  1580. TASK_UNINTERRUPTIBLE);
  1581. spin_unlock_bh(&sk->sk_lock.slock);
  1582. schedule();
  1583. spin_lock_bh(&sk->sk_lock.slock);
  1584. if (!sock_owned_by_user(sk))
  1585. break;
  1586. }
  1587. finish_wait(&sk->sk_lock.wq, &wait);
  1588. }
  1589. static void __release_sock(struct sock *sk)
  1590. __releases(&sk->sk_lock.slock)
  1591. __acquires(&sk->sk_lock.slock)
  1592. {
  1593. struct sk_buff *skb = sk->sk_backlog.head;
  1594. do {
  1595. sk->sk_backlog.head = sk->sk_backlog.tail = NULL;
  1596. bh_unlock_sock(sk);
  1597. do {
  1598. struct sk_buff *next = skb->next;
  1599. prefetch(next);
  1600. WARN_ON_ONCE(skb_dst_is_noref(skb));
  1601. skb->next = NULL;
  1602. sk_backlog_rcv(sk, skb);
  1603. /*
  1604. * We are in process context here with softirqs
  1605. * disabled, use cond_resched_softirq() to preempt.
  1606. * This is safe to do because we've taken the backlog
  1607. * queue private:
  1608. */
  1609. cond_resched_softirq();
  1610. skb = next;
  1611. } while (skb != NULL);
  1612. bh_lock_sock(sk);
  1613. } while ((skb = sk->sk_backlog.head) != NULL);
  1614. /*
  1615. * Doing the zeroing here guarantee we can not loop forever
  1616. * while a wild producer attempts to flood us.
  1617. */
  1618. sk->sk_backlog.len = 0;
  1619. }
  1620. /**
  1621. * sk_wait_data - wait for data to arrive at sk_receive_queue
  1622. * @sk: sock to wait on
  1623. * @timeo: for how long
  1624. *
  1625. * Now socket state including sk->sk_err is changed only under lock,
  1626. * hence we may omit checks after joining wait queue.
  1627. * We check receive queue before schedule() only as optimization;
  1628. * it is very likely that release_sock() added new data.
  1629. */
  1630. int sk_wait_data(struct sock *sk, long *timeo)
  1631. {
  1632. int rc;
  1633. DEFINE_WAIT(wait);
  1634. prepare_to_wait(sk_sleep(sk), &wait, TASK_INTERRUPTIBLE);
  1635. set_bit(SOCK_ASYNC_WAITDATA, &sk->sk_socket->flags);
  1636. rc = sk_wait_event(sk, timeo, !skb_queue_empty(&sk->sk_receive_queue));
  1637. clear_bit(SOCK_ASYNC_WAITDATA, &sk->sk_socket->flags);
  1638. finish_wait(sk_sleep(sk), &wait);
  1639. return rc;
  1640. }
  1641. EXPORT_SYMBOL(sk_wait_data);
  1642. /**
  1643. * __sk_mem_schedule - increase sk_forward_alloc and memory_allocated
  1644. * @sk: socket
  1645. * @size: memory size to allocate
  1646. * @kind: allocation type
  1647. *
  1648. * If kind is SK_MEM_SEND, it means wmem allocation. Otherwise it means
  1649. * rmem allocation. This function assumes that protocols which have
  1650. * memory_pressure use sk_wmem_queued as write buffer accounting.
  1651. */
  1652. int __sk_mem_schedule(struct sock *sk, int size, int kind)
  1653. {
  1654. struct proto *prot = sk->sk_prot;
  1655. int amt = sk_mem_pages(size);
  1656. long allocated;
  1657. int parent_status = UNDER_LIMIT;
  1658. sk->sk_forward_alloc += amt * SK_MEM_QUANTUM;
  1659. allocated = sk_memory_allocated_add(sk, amt, &parent_status);
  1660. /* Under limit. */
  1661. if (parent_status == UNDER_LIMIT &&
  1662. allocated <= sk_prot_mem_limits(sk, 0)) {
  1663. sk_leave_memory_pressure(sk);
  1664. return 1;
  1665. }
  1666. /* Under pressure. (we or our parents) */
  1667. if ((parent_status > SOFT_LIMIT) ||
  1668. allocated > sk_prot_mem_limits(sk, 1))
  1669. sk_enter_memory_pressure(sk);
  1670. /* Over hard limit (we or our parents) */
  1671. if ((parent_status == OVER_LIMIT) ||
  1672. (allocated > sk_prot_mem_limits(sk, 2)))
  1673. goto suppress_allocation;
  1674. /* guarantee minimum buffer size under pressure */
  1675. if (kind == SK_MEM_RECV) {
  1676. if (atomic_read(&sk->sk_rmem_alloc) < prot->sysctl_rmem[0])
  1677. return 1;
  1678. } else { /* SK_MEM_SEND */
  1679. if (sk->sk_type == SOCK_STREAM) {
  1680. if (sk->sk_wmem_queued < prot->sysctl_wmem[0])
  1681. return 1;
  1682. } else if (atomic_read(&sk->sk_wmem_alloc) <
  1683. prot->sysctl_wmem[0])
  1684. return 1;
  1685. }
  1686. if (sk_has_memory_pressure(sk)) {
  1687. int alloc;
  1688. if (!sk_under_memory_pressure(sk))
  1689. return 1;
  1690. alloc = sk_sockets_allocated_read_positive(sk);
  1691. if (sk_prot_mem_limits(sk, 2) > alloc *
  1692. sk_mem_pages(sk->sk_wmem_queued +
  1693. atomic_read(&sk->sk_rmem_alloc) +
  1694. sk->sk_forward_alloc))
  1695. return 1;
  1696. }
  1697. suppress_allocation:
  1698. if (kind == SK_MEM_SEND && sk->sk_type == SOCK_STREAM) {
  1699. sk_stream_moderate_sndbuf(sk);
  1700. /* Fail only if socket is _under_ its sndbuf.
  1701. * In this case we cannot block, so that we have to fail.
  1702. */
  1703. if (sk->sk_wmem_queued + size >= sk->sk_sndbuf)
  1704. return 1;
  1705. }
  1706. trace_sock_exceed_buf_limit(sk, prot, allocated);
  1707. /* Alas. Undo changes. */
  1708. sk->sk_forward_alloc -= amt * SK_MEM_QUANTUM;
  1709. sk_memory_allocated_sub(sk, amt);
  1710. return 0;
  1711. }
  1712. EXPORT_SYMBOL(__sk_mem_schedule);
  1713. /**
  1714. * __sk_reclaim - reclaim memory_allocated
  1715. * @sk: socket
  1716. */
  1717. void __sk_mem_reclaim(struct sock *sk)
  1718. {
  1719. sk_memory_allocated_sub(sk,
  1720. sk->sk_forward_alloc >> SK_MEM_QUANTUM_SHIFT);
  1721. sk->sk_forward_alloc &= SK_MEM_QUANTUM - 1;
  1722. if (sk_under_memory_pressure(sk) &&
  1723. (sk_memory_allocated(sk) < sk_prot_mem_limits(sk, 0)))
  1724. sk_leave_memory_pressure(sk);
  1725. }
  1726. EXPORT_SYMBOL(__sk_mem_reclaim);
  1727. /*
  1728. * Set of default routines for initialising struct proto_ops when
  1729. * the protocol does not support a particular function. In certain
  1730. * cases where it makes no sense for a protocol to have a "do nothing"
  1731. * function, some default processing is provided.
  1732. */
  1733. int sock_no_bind(struct socket *sock, struct sockaddr *saddr, int len)
  1734. {
  1735. return -EOPNOTSUPP;
  1736. }
  1737. EXPORT_SYMBOL(sock_no_bind);
  1738. int sock_no_connect(struct socket *sock, struct sockaddr *saddr,
  1739. int len, int flags)
  1740. {
  1741. return -EOPNOTSUPP;
  1742. }
  1743. EXPORT_SYMBOL(sock_no_connect);
  1744. int sock_no_socketpair(struct socket *sock1, struct socket *sock2)
  1745. {
  1746. return -EOPNOTSUPP;
  1747. }
  1748. EXPORT_SYMBOL(sock_no_socketpair);
  1749. int sock_no_accept(struct socket *sock, struct socket *newsock, int flags)
  1750. {
  1751. return -EOPNOTSUPP;
  1752. }
  1753. EXPORT_SYMBOL(sock_no_accept);
  1754. int sock_no_getname(struct socket *sock, struct sockaddr *saddr,
  1755. int *len, int peer)
  1756. {
  1757. return -EOPNOTSUPP;
  1758. }
  1759. EXPORT_SYMBOL(sock_no_getname);
  1760. unsigned int sock_no_poll(struct file *file, struct socket *sock, poll_table *pt)
  1761. {
  1762. return 0;
  1763. }
  1764. EXPORT_SYMBOL(sock_no_poll);
  1765. int sock_no_ioctl(struct socket *sock, unsigned int cmd, unsigned long arg)
  1766. {
  1767. return -EOPNOTSUPP;
  1768. }
  1769. EXPORT_SYMBOL(sock_no_ioctl);
  1770. int sock_no_listen(struct socket *sock, int backlog)
  1771. {
  1772. return -EOPNOTSUPP;
  1773. }
  1774. EXPORT_SYMBOL(sock_no_listen);
  1775. int sock_no_shutdown(struct socket *sock, int how)
  1776. {
  1777. return -EOPNOTSUPP;
  1778. }
  1779. EXPORT_SYMBOL(sock_no_shutdown);
  1780. int sock_no_setsockopt(struct socket *sock, int level, int optname,
  1781. char __user *optval, unsigned int optlen)
  1782. {
  1783. return -EOPNOTSUPP;
  1784. }
  1785. EXPORT_SYMBOL(sock_no_setsockopt);
  1786. int sock_no_getsockopt(struct socket *sock, int level, int optname,
  1787. char __user *optval, int __user *optlen)
  1788. {
  1789. return -EOPNOTSUPP;
  1790. }
  1791. EXPORT_SYMBOL(sock_no_getsockopt);
  1792. int sock_no_sendmsg(struct kiocb *iocb, struct socket *sock, struct msghdr *m,
  1793. size_t len)
  1794. {
  1795. return -EOPNOTSUPP;
  1796. }
  1797. EXPORT_SYMBOL(sock_no_sendmsg);
  1798. int sock_no_recvmsg(struct kiocb *iocb, struct socket *sock, struct msghdr *m,
  1799. size_t len, int flags)
  1800. {
  1801. return -EOPNOTSUPP;
  1802. }
  1803. EXPORT_SYMBOL(sock_no_recvmsg);
  1804. int sock_no_mmap(struct file *file, struct socket *sock, struct vm_area_struct *vma)
  1805. {
  1806. /* Mirror missing mmap method error code */
  1807. return -ENODEV;
  1808. }
  1809. EXPORT_SYMBOL(sock_no_mmap);
  1810. ssize_t sock_no_sendpage(struct socket *sock, struct page *page, int offset, size_t size, int flags)
  1811. {
  1812. ssize_t res;
  1813. struct msghdr msg = {.msg_flags = flags};
  1814. struct kvec iov;
  1815. char *kaddr = kmap(page);
  1816. iov.iov_base = kaddr + offset;
  1817. iov.iov_len = size;
  1818. res = kernel_sendmsg(sock, &msg, &iov, 1, size);
  1819. kunmap(page);
  1820. return res;
  1821. }
  1822. EXPORT_SYMBOL(sock_no_sendpage);
  1823. /*
  1824. * Default Socket Callbacks
  1825. */
  1826. static void sock_def_wakeup(struct sock *sk)
  1827. {
  1828. struct socket_wq *wq;
  1829. rcu_read_lock();
  1830. wq = rcu_dereference(sk->sk_wq);
  1831. if (wq_has_sleeper(wq))
  1832. wake_up_interruptible_all(&wq->wait);
  1833. rcu_read_unlock();
  1834. }
  1835. static void sock_def_error_report(struct sock *sk)
  1836. {
  1837. struct socket_wq *wq;
  1838. rcu_read_lock();
  1839. wq = rcu_dereference(sk->sk_wq);
  1840. if (wq_has_sleeper(wq))
  1841. wake_up_interruptible_poll(&wq->wait, POLLERR);
  1842. sk_wake_async(sk, SOCK_WAKE_IO, POLL_ERR);
  1843. rcu_read_unlock();
  1844. }
  1845. static void sock_def_readable(struct sock *sk, int len)
  1846. {
  1847. struct socket_wq *wq;
  1848. rcu_read_lock();
  1849. wq = rcu_dereference(sk->sk_wq);
  1850. if (wq_has_sleeper(wq))
  1851. wake_up_interruptible_sync_poll(&wq->wait, POLLIN | POLLPRI |
  1852. POLLRDNORM | POLLRDBAND);
  1853. sk_wake_async(sk, SOCK_WAKE_WAITD, POLL_IN);
  1854. rcu_read_unlock();
  1855. }
  1856. static void sock_def_write_space(struct sock *sk)
  1857. {
  1858. struct socket_wq *wq;
  1859. rcu_read_lock();
  1860. /* Do not wake up a writer until he can make "significant"
  1861. * progress. --DaveM
  1862. */
  1863. if ((atomic_read(&sk->sk_wmem_alloc) << 1) <= sk->sk_sndbuf) {
  1864. wq = rcu_dereference(sk->sk_wq);
  1865. if (wq_has_sleeper(wq))
  1866. wake_up_interruptible_sync_poll(&wq->wait, POLLOUT |
  1867. POLLWRNORM | POLLWRBAND);
  1868. /* Should agree with poll, otherwise some programs break */
  1869. if (sock_writeable(sk))
  1870. sk_wake_async(sk, SOCK_WAKE_SPACE, POLL_OUT);
  1871. }
  1872. rcu_read_unlock();
  1873. }
  1874. static void sock_def_destruct(struct sock *sk)
  1875. {
  1876. kfree(sk->sk_protinfo);
  1877. }
  1878. void sk_send_sigurg(struct sock *sk)
  1879. {
  1880. if (sk->sk_socket && sk->sk_socket->file)
  1881. if (send_sigurg(&sk->sk_socket->file->f_owner))
  1882. sk_wake_async(sk, SOCK_WAKE_URG, POLL_PRI);
  1883. }
  1884. EXPORT_SYMBOL(sk_send_sigurg);
  1885. void sk_reset_timer(struct sock *sk, struct timer_list* timer,
  1886. unsigned long expires)
  1887. {
  1888. if (!mod_timer(timer, expires))
  1889. sock_hold(sk);
  1890. }
  1891. EXPORT_SYMBOL(sk_reset_timer);
  1892. void sk_stop_timer(struct sock *sk, struct timer_list* timer)
  1893. {
  1894. if (timer_pending(timer) && del_timer(timer))
  1895. __sock_put(sk);
  1896. }
  1897. EXPORT_SYMBOL(sk_stop_timer);
  1898. void sock_init_data(struct socket *sock, struct sock *sk)
  1899. {
  1900. skb_queue_head_init(&sk->sk_receive_queue);
  1901. skb_queue_head_init(&sk->sk_write_queue);
  1902. skb_queue_head_init(&sk->sk_error_queue);
  1903. #ifdef CONFIG_NET_DMA
  1904. skb_queue_head_init(&sk->sk_async_wait_queue);
  1905. #endif
  1906. sk->sk_send_head = NULL;
  1907. init_timer(&sk->sk_timer);
  1908. sk->sk_allocation = GFP_KERNEL;
  1909. sk->sk_rcvbuf = sysctl_rmem_default;
  1910. sk->sk_sndbuf = sysctl_wmem_default;
  1911. sk->sk_state = TCP_CLOSE;
  1912. sk_set_socket(sk, sock);
  1913. sock_set_flag(sk, SOCK_ZAPPED);
  1914. if (sock) {
  1915. sk->sk_type = sock->type;
  1916. sk->sk_wq = sock->wq;
  1917. sock->sk = sk;
  1918. } else
  1919. sk->sk_wq = NULL;
  1920. spin_lock_init(&sk->sk_dst_lock);
  1921. rwlock_init(&sk->sk_callback_lock);
  1922. lockdep_set_class_and_name(&sk->sk_callback_lock,
  1923. af_callback_keys + sk->sk_family,
  1924. af_family_clock_key_strings[sk->sk_family]);
  1925. sk->sk_state_change = sock_def_wakeup;
  1926. sk->sk_data_ready = sock_def_readable;
  1927. sk->sk_write_space = sock_def_write_space;
  1928. sk->sk_error_report = sock_def_error_report;
  1929. sk->sk_destruct = sock_def_destruct;
  1930. sk->sk_frag.page = NULL;
  1931. sk->sk_frag.offset = 0;
  1932. sk->sk_peek_off = -1;
  1933. sk->sk_peer_pid = NULL;
  1934. sk->sk_peer_cred = NULL;
  1935. sk->sk_write_pending = 0;
  1936. sk->sk_rcvlowat = 1;
  1937. sk->sk_rcvtimeo = MAX_SCHEDULE_TIMEOUT;
  1938. sk->sk_sndtimeo = MAX_SCHEDULE_TIMEOUT;
  1939. sk->sk_stamp = ktime_set(-1L, 0);
  1940. /*
  1941. * Before updating sk_refcnt, we must commit prior changes to memory
  1942. * (Documentation/RCU/rculist_nulls.txt for details)
  1943. */
  1944. smp_wmb();
  1945. atomic_set(&sk->sk_refcnt, 1);
  1946. atomic_set(&sk->sk_drops, 0);
  1947. }
  1948. EXPORT_SYMBOL(sock_init_data);
  1949. void lock_sock_nested(struct sock *sk, int subclass)
  1950. {
  1951. might_sleep();
  1952. spin_lock_bh(&sk->sk_lock.slock);
  1953. if (sk->sk_lock.owned)
  1954. __lock_sock(sk);
  1955. sk->sk_lock.owned = 1;
  1956. spin_unlock(&sk->sk_lock.slock);
  1957. /*
  1958. * The sk_lock has mutex_lock() semantics here:
  1959. */
  1960. mutex_acquire(&sk->sk_lock.dep_map, subclass, 0, _RET_IP_);
  1961. local_bh_enable();
  1962. }
  1963. EXPORT_SYMBOL(lock_sock_nested);
  1964. void release_sock(struct sock *sk)
  1965. {
  1966. /*
  1967. * The sk_lock has mutex_unlock() semantics:
  1968. */
  1969. mutex_release(&sk->sk_lock.dep_map, 1, _RET_IP_);
  1970. spin_lock_bh(&sk->sk_lock.slock);
  1971. if (sk->sk_backlog.tail)
  1972. __release_sock(sk);
  1973. if (sk->sk_prot->release_cb)
  1974. sk->sk_prot->release_cb(sk);
  1975. sk->sk_lock.owned = 0;
  1976. if (waitqueue_active(&sk->sk_lock.wq))
  1977. wake_up(&sk->sk_lock.wq);
  1978. spin_unlock_bh(&sk->sk_lock.slock);
  1979. }
  1980. EXPORT_SYMBOL(release_sock);
  1981. /**
  1982. * lock_sock_fast - fast version of lock_sock
  1983. * @sk: socket
  1984. *
  1985. * This version should be used for very small section, where process wont block
  1986. * return false if fast path is taken
  1987. * sk_lock.slock locked, owned = 0, BH disabled
  1988. * return true if slow path is taken
  1989. * sk_lock.slock unlocked, owned = 1, BH enabled
  1990. */
  1991. bool lock_sock_fast(struct sock *sk)
  1992. {
  1993. might_sleep();
  1994. spin_lock_bh(&sk->sk_lock.slock);
  1995. if (!sk->sk_lock.owned)
  1996. /*
  1997. * Note : We must disable BH
  1998. */
  1999. return false;
  2000. __lock_sock(sk);
  2001. sk->sk_lock.owned = 1;
  2002. spin_unlock(&sk->sk_lock.slock);
  2003. /*
  2004. * The sk_lock has mutex_lock() semantics here:
  2005. */
  2006. mutex_acquire(&sk->sk_lock.dep_map, 0, 0, _RET_IP_);
  2007. local_bh_enable();
  2008. return true;
  2009. }
  2010. EXPORT_SYMBOL(lock_sock_fast);
  2011. int sock_get_timestamp(struct sock *sk, struct timeval __user *userstamp)
  2012. {
  2013. struct timeval tv;
  2014. if (!sock_flag(sk, SOCK_TIMESTAMP))
  2015. sock_enable_timestamp(sk, SOCK_TIMESTAMP);
  2016. tv = ktime_to_timeval(sk->sk_stamp);
  2017. if (tv.tv_sec == -1)
  2018. return -ENOENT;
  2019. if (tv.tv_sec == 0) {
  2020. sk->sk_stamp = ktime_get_real();
  2021. tv = ktime_to_timeval(sk->sk_stamp);
  2022. }
  2023. return copy_to_user(userstamp, &tv, sizeof(tv)) ? -EFAULT : 0;
  2024. }
  2025. EXPORT_SYMBOL(sock_get_timestamp);
  2026. int sock_get_timestampns(struct sock *sk, struct timespec __user *userstamp)
  2027. {
  2028. struct timespec ts;
  2029. if (!sock_flag(sk, SOCK_TIMESTAMP))
  2030. sock_enable_timestamp(sk, SOCK_TIMESTAMP);
  2031. ts = ktime_to_timespec(sk->sk_stamp);
  2032. if (ts.tv_sec == -1)
  2033. return -ENOENT;
  2034. if (ts.tv_sec == 0) {
  2035. sk->sk_stamp = ktime_get_real();
  2036. ts = ktime_to_timespec(sk->sk_stamp);
  2037. }
  2038. return copy_to_user(userstamp, &ts, sizeof(ts)) ? -EFAULT : 0;
  2039. }
  2040. EXPORT_SYMBOL(sock_get_timestampns);
  2041. void sock_enable_timestamp(struct sock *sk, int flag)
  2042. {
  2043. if (!sock_flag(sk, flag)) {
  2044. unsigned long previous_flags = sk->sk_flags;
  2045. sock_set_flag(sk, flag);
  2046. /*
  2047. * we just set one of the two flags which require net
  2048. * time stamping, but time stamping might have been on
  2049. * already because of the other one
  2050. */
  2051. if (!(previous_flags & SK_FLAGS_TIMESTAMP))
  2052. net_enable_timestamp();
  2053. }
  2054. }
  2055. /*
  2056. * Get a socket option on an socket.
  2057. *
  2058. * FIX: POSIX 1003.1g is very ambiguous here. It states that
  2059. * asynchronous errors should be reported by getsockopt. We assume
  2060. * this means if you specify SO_ERROR (otherwise whats the point of it).
  2061. */
  2062. int sock_common_getsockopt(struct socket *sock, int level, int optname,
  2063. char __user *optval, int __user *optlen)
  2064. {
  2065. struct sock *sk = sock->sk;
  2066. return sk->sk_prot->getsockopt(sk, level, optname, optval, optlen);
  2067. }
  2068. EXPORT_SYMBOL(sock_common_getsockopt);
  2069. #ifdef CONFIG_COMPAT
  2070. int compat_sock_common_getsockopt(struct socket *sock, int level, int optname,
  2071. char __user *optval, int __user *optlen)
  2072. {
  2073. struct sock *sk = sock->sk;
  2074. if (sk->sk_prot->compat_getsockopt != NULL)
  2075. return sk->sk_prot->compat_getsockopt(sk, level, optname,
  2076. optval, optlen);
  2077. return sk->sk_prot->getsockopt(sk, level, optname, optval, optlen);
  2078. }
  2079. EXPORT_SYMBOL(compat_sock_common_getsockopt);
  2080. #endif
  2081. int sock_common_recvmsg(struct kiocb *iocb, struct socket *sock,
  2082. struct msghdr *msg, size_t size, int flags)
  2083. {
  2084. struct sock *sk = sock->sk;
  2085. int addr_len = 0;
  2086. int err;
  2087. err = sk->sk_prot->recvmsg(iocb, sk, msg, size, flags & MSG_DONTWAIT,
  2088. flags & ~MSG_DONTWAIT, &addr_len);
  2089. if (err >= 0)
  2090. msg->msg_namelen = addr_len;
  2091. return err;
  2092. }
  2093. EXPORT_SYMBOL(sock_common_recvmsg);
  2094. /*
  2095. * Set socket options on an inet socket.
  2096. */
  2097. int sock_common_setsockopt(struct socket *sock, int level, int optname,
  2098. char __user *optval, unsigned int optlen)
  2099. {
  2100. struct sock *sk = sock->sk;
  2101. return sk->sk_prot->setsockopt(sk, level, optname, optval, optlen);
  2102. }
  2103. EXPORT_SYMBOL(sock_common_setsockopt);
  2104. #ifdef CONFIG_COMPAT
  2105. int compat_sock_common_setsockopt(struct socket *sock, int level, int optname,
  2106. char __user *optval, unsigned int optlen)
  2107. {
  2108. struct sock *sk = sock->sk;
  2109. if (sk->sk_prot->compat_setsockopt != NULL)
  2110. return sk->sk_prot->compat_setsockopt(sk, level, optname,
  2111. optval, optlen);
  2112. return sk->sk_prot->setsockopt(sk, level, optname, optval, optlen);
  2113. }
  2114. EXPORT_SYMBOL(compat_sock_common_setsockopt);
  2115. #endif
  2116. void sk_common_release(struct sock *sk)
  2117. {
  2118. if (sk->sk_prot->destroy)
  2119. sk->sk_prot->destroy(sk);
  2120. /*
  2121. * Observation: when sock_common_release is called, processes have
  2122. * no access to socket. But net still has.
  2123. * Step one, detach it from networking:
  2124. *
  2125. * A. Remove from hash tables.
  2126. */
  2127. sk->sk_prot->unhash(sk);
  2128. /*
  2129. * In this point socket cannot receive new packets, but it is possible
  2130. * that some packets are in flight because some CPU runs receiver and
  2131. * did hash table lookup before we unhashed socket. They will achieve
  2132. * receive queue and will be purged by socket destructor.
  2133. *
  2134. * Also we still have packets pending on receive queue and probably,
  2135. * our own packets waiting in device queues. sock_destroy will drain
  2136. * receive queue, but transmitted packets will delay socket destruction
  2137. * until the last reference will be released.
  2138. */
  2139. sock_orphan(sk);
  2140. xfrm_sk_free_policy(sk);
  2141. sk_refcnt_debug_release(sk);
  2142. if (sk->sk_frag.page) {
  2143. put_page(sk->sk_frag.page);
  2144. sk->sk_frag.page = NULL;
  2145. }
  2146. sock_put(sk);
  2147. }
  2148. EXPORT_SYMBOL(sk_common_release);
  2149. #ifdef CONFIG_PROC_FS
  2150. #define PROTO_INUSE_NR 64 /* should be enough for the first time */
  2151. struct prot_inuse {
  2152. int val[PROTO_INUSE_NR];
  2153. };
  2154. static DECLARE_BITMAP(proto_inuse_idx, PROTO_INUSE_NR);
  2155. #ifdef CONFIG_NET_NS
  2156. void sock_prot_inuse_add(struct net *net, struct proto *prot, int val)
  2157. {
  2158. __this_cpu_add(net->core.inuse->val[prot->inuse_idx], val);
  2159. }
  2160. EXPORT_SYMBOL_GPL(sock_prot_inuse_add);
  2161. int sock_prot_inuse_get(struct net *net, struct proto *prot)
  2162. {
  2163. int cpu, idx = prot->inuse_idx;
  2164. int res = 0;
  2165. for_each_possible_cpu(cpu)
  2166. res += per_cpu_ptr(net->core.inuse, cpu)->val[idx];
  2167. return res >= 0 ? res : 0;
  2168. }
  2169. EXPORT_SYMBOL_GPL(sock_prot_inuse_get);
  2170. static int __net_init sock_inuse_init_net(struct net *net)
  2171. {
  2172. net->core.inuse = alloc_percpu(struct prot_inuse);
  2173. return net->core.inuse ? 0 : -ENOMEM;
  2174. }
  2175. static void __net_exit sock_inuse_exit_net(struct net *net)
  2176. {
  2177. free_percpu(net->core.inuse);
  2178. }
  2179. static struct pernet_operations net_inuse_ops = {
  2180. .init = sock_inuse_init_net,
  2181. .exit = sock_inuse_exit_net,
  2182. };
  2183. static __init int net_inuse_init(void)
  2184. {
  2185. if (register_pernet_subsys(&net_inuse_ops))
  2186. panic("Cannot initialize net inuse counters");
  2187. return 0;
  2188. }
  2189. core_initcall(net_inuse_init);
  2190. #else
  2191. static DEFINE_PER_CPU(struct prot_inuse, prot_inuse);
  2192. void sock_prot_inuse_add(struct net *net, struct proto *prot, int val)
  2193. {
  2194. __this_cpu_add(prot_inuse.val[prot->inuse_idx], val);
  2195. }
  2196. EXPORT_SYMBOL_GPL(sock_prot_inuse_add);
  2197. int sock_prot_inuse_get(struct net *net, struct proto *prot)
  2198. {
  2199. int cpu, idx = prot->inuse_idx;
  2200. int res = 0;
  2201. for_each_possible_cpu(cpu)
  2202. res += per_cpu(prot_inuse, cpu).val[idx];
  2203. return res >= 0 ? res : 0;
  2204. }
  2205. EXPORT_SYMBOL_GPL(sock_prot_inuse_get);
  2206. #endif
  2207. static void assign_proto_idx(struct proto *prot)
  2208. {
  2209. prot->inuse_idx = find_first_zero_bit(proto_inuse_idx, PROTO_INUSE_NR);
  2210. if (unlikely(prot->inuse_idx == PROTO_INUSE_NR - 1)) {
  2211. pr_err("PROTO_INUSE_NR exhausted\n");
  2212. return;
  2213. }
  2214. set_bit(prot->inuse_idx, proto_inuse_idx);
  2215. }
  2216. static void release_proto_idx(struct proto *prot)
  2217. {
  2218. if (prot->inuse_idx != PROTO_INUSE_NR - 1)
  2219. clear_bit(prot->inuse_idx, proto_inuse_idx);
  2220. }
  2221. #else
  2222. static inline void assign_proto_idx(struct proto *prot)
  2223. {
  2224. }
  2225. static inline void release_proto_idx(struct proto *prot)
  2226. {
  2227. }
  2228. #endif
  2229. int proto_register(struct proto *prot, int alloc_slab)
  2230. {
  2231. if (alloc_slab) {
  2232. prot->slab = kmem_cache_create(prot->name, prot->obj_size, 0,
  2233. SLAB_HWCACHE_ALIGN | prot->slab_flags,
  2234. NULL);
  2235. if (prot->slab == NULL) {
  2236. pr_crit("%s: Can't create sock SLAB cache!\n",
  2237. prot->name);
  2238. goto out;
  2239. }
  2240. if (prot->rsk_prot != NULL) {
  2241. prot->rsk_prot->slab_name = kasprintf(GFP_KERNEL, "request_sock_%s", prot->name);
  2242. if (prot->rsk_prot->slab_name == NULL)
  2243. goto out_free_sock_slab;
  2244. prot->rsk_prot->slab = kmem_cache_create(prot->rsk_prot->slab_name,
  2245. prot->rsk_prot->obj_size, 0,
  2246. SLAB_HWCACHE_ALIGN, NULL);
  2247. if (prot->rsk_prot->slab == NULL) {
  2248. pr_crit("%s: Can't create request sock SLAB cache!\n",
  2249. prot->name);
  2250. goto out_free_request_sock_slab_name;
  2251. }
  2252. }
  2253. if (prot->twsk_prot != NULL) {
  2254. prot->twsk_prot->twsk_slab_name = kasprintf(GFP_KERNEL, "tw_sock_%s", prot->name);
  2255. if (prot->twsk_prot->twsk_slab_name == NULL)
  2256. goto out_free_request_sock_slab;
  2257. prot->twsk_prot->twsk_slab =
  2258. kmem_cache_create(prot->twsk_prot->twsk_slab_name,
  2259. prot->twsk_prot->twsk_obj_size,
  2260. 0,
  2261. SLAB_HWCACHE_ALIGN |
  2262. prot->slab_flags,
  2263. NULL);
  2264. if (prot->twsk_prot->twsk_slab == NULL)
  2265. goto out_free_timewait_sock_slab_name;
  2266. }
  2267. }
  2268. mutex_lock(&proto_list_mutex);
  2269. list_add(&prot->node, &proto_list);
  2270. assign_proto_idx(prot);
  2271. mutex_unlock(&proto_list_mutex);
  2272. return 0;
  2273. out_free_timewait_sock_slab_name:
  2274. kfree(prot->twsk_prot->twsk_slab_name);
  2275. out_free_request_sock_slab:
  2276. if (prot->rsk_prot && prot->rsk_prot->slab) {
  2277. kmem_cache_destroy(prot->rsk_prot->slab);
  2278. prot->rsk_prot->slab = NULL;
  2279. }
  2280. out_free_request_sock_slab_name:
  2281. if (prot->rsk_prot)
  2282. kfree(prot->rsk_prot->slab_name);
  2283. out_free_sock_slab:
  2284. kmem_cache_destroy(prot->slab);
  2285. prot->slab = NULL;
  2286. out:
  2287. return -ENOBUFS;
  2288. }
  2289. EXPORT_SYMBOL(proto_register);
  2290. void proto_unregister(struct proto *prot)
  2291. {
  2292. mutex_lock(&proto_list_mutex);
  2293. release_proto_idx(prot);
  2294. list_del(&prot->node);
  2295. mutex_unlock(&proto_list_mutex);
  2296. if (prot->slab != NULL) {
  2297. kmem_cache_destroy(prot->slab);
  2298. prot->slab = NULL;
  2299. }
  2300. if (prot->rsk_prot != NULL && prot->rsk_prot->slab != NULL) {
  2301. kmem_cache_destroy(prot->rsk_prot->slab);
  2302. kfree(prot->rsk_prot->slab_name);
  2303. prot->rsk_prot->slab = NULL;
  2304. }
  2305. if (prot->twsk_prot != NULL && prot->twsk_prot->twsk_slab != NULL) {
  2306. kmem_cache_destroy(prot->twsk_prot->twsk_slab);
  2307. kfree(prot->twsk_prot->twsk_slab_name);
  2308. prot->twsk_prot->twsk_slab = NULL;
  2309. }
  2310. }
  2311. EXPORT_SYMBOL(proto_unregister);
  2312. #ifdef CONFIG_PROC_FS
  2313. static void *proto_seq_start(struct seq_file *seq, loff_t *pos)
  2314. __acquires(proto_list_mutex)
  2315. {
  2316. mutex_lock(&proto_list_mutex);
  2317. return seq_list_start_head(&proto_list, *pos);
  2318. }
  2319. static void *proto_seq_next(struct seq_file *seq, void *v, loff_t *pos)
  2320. {
  2321. return seq_list_next(v, &proto_list, pos);
  2322. }
  2323. static void proto_seq_stop(struct seq_file *seq, void *v)
  2324. __releases(proto_list_mutex)
  2325. {
  2326. mutex_unlock(&proto_list_mutex);
  2327. }
  2328. static char proto_method_implemented(const void *method)
  2329. {
  2330. return method == NULL ? 'n' : 'y';
  2331. }
  2332. static long sock_prot_memory_allocated(struct proto *proto)
  2333. {
  2334. return proto->memory_allocated != NULL ? proto_memory_allocated(proto) : -1L;
  2335. }
  2336. static char *sock_prot_memory_pressure(struct proto *proto)
  2337. {
  2338. return proto->memory_pressure != NULL ?
  2339. proto_memory_pressure(proto) ? "yes" : "no" : "NI";
  2340. }
  2341. static void proto_seq_printf(struct seq_file *seq, struct proto *proto)
  2342. {
  2343. seq_printf(seq, "%-9s %4u %6d %6ld %-3s %6u %-3s %-10s "
  2344. "%2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c %2c\n",
  2345. proto->name,
  2346. proto->obj_size,
  2347. sock_prot_inuse_get(seq_file_net(seq), proto),
  2348. sock_prot_memory_allocated(proto),
  2349. sock_prot_memory_pressure(proto),
  2350. proto->max_header,
  2351. proto->slab == NULL ? "no" : "yes",
  2352. module_name(proto->owner),
  2353. proto_method_implemented(proto->close),
  2354. proto_method_implemented(proto->connect),
  2355. proto_method_implemented(proto->disconnect),
  2356. proto_method_implemented(proto->accept),
  2357. proto_method_implemented(proto->ioctl),
  2358. proto_method_implemented(proto->init),
  2359. proto_method_implemented(proto->destroy),
  2360. proto_method_implemented(proto->shutdown),
  2361. proto_method_implemented(proto->setsockopt),
  2362. proto_method_implemented(proto->getsockopt),
  2363. proto_method_implemented(proto->sendmsg),
  2364. proto_method_implemented(proto->recvmsg),
  2365. proto_method_implemented(proto->sendpage),
  2366. proto_method_implemented(proto->bind),
  2367. proto_method_implemented(proto->backlog_rcv),
  2368. proto_method_implemented(proto->hash),
  2369. proto_method_implemented(proto->unhash),
  2370. proto_method_implemented(proto->get_port),
  2371. proto_method_implemented(proto->enter_memory_pressure));
  2372. }
  2373. static int proto_seq_show(struct seq_file *seq, void *v)
  2374. {
  2375. if (v == &proto_list)
  2376. seq_printf(seq, "%-9s %-4s %-8s %-6s %-5s %-7s %-4s %-10s %s",
  2377. "protocol",
  2378. "size",
  2379. "sockets",
  2380. "memory",
  2381. "press",
  2382. "maxhdr",
  2383. "slab",
  2384. "module",
  2385. "cl co di ac io in de sh ss gs se re sp bi br ha uh gp em\n");
  2386. else
  2387. proto_seq_printf(seq, list_entry(v, struct proto, node));
  2388. return 0;
  2389. }
  2390. static const struct seq_operations proto_seq_ops = {
  2391. .start = proto_seq_start,
  2392. .next = proto_seq_next,
  2393. .stop = proto_seq_stop,
  2394. .show = proto_seq_show,
  2395. };
  2396. static int proto_seq_open(struct inode *inode, struct file *file)
  2397. {
  2398. return seq_open_net(inode, file, &proto_seq_ops,
  2399. sizeof(struct seq_net_private));
  2400. }
  2401. static const struct file_operations proto_seq_fops = {
  2402. .owner = THIS_MODULE,
  2403. .open = proto_seq_open,
  2404. .read = seq_read,
  2405. .llseek = seq_lseek,
  2406. .release = seq_release_net,
  2407. };
  2408. static __net_init int proto_init_net(struct net *net)
  2409. {
  2410. if (!proc_net_fops_create(net, "protocols", S_IRUGO, &proto_seq_fops))
  2411. return -ENOMEM;
  2412. return 0;
  2413. }
  2414. static __net_exit void proto_exit_net(struct net *net)
  2415. {
  2416. proc_net_remove(net, "protocols");
  2417. }
  2418. static __net_initdata struct pernet_operations proto_net_ops = {
  2419. .init = proto_init_net,
  2420. .exit = proto_exit_net,
  2421. };
  2422. static int __init proto_init(void)
  2423. {
  2424. return register_pernet_subsys(&proto_net_ops);
  2425. }
  2426. subsys_initcall(proto_init);
  2427. #endif /* PROC_FS */