socket.c 83 KB

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  1. /*
  2. * NET An implementation of the SOCKET network access protocol.
  3. *
  4. * Version: @(#)socket.c 1.1.93 18/02/95
  5. *
  6. * Authors: Orest Zborowski, <obz@Kodak.COM>
  7. * Ross Biro
  8. * Fred N. van Kempen, <waltje@uWalt.NL.Mugnet.ORG>
  9. *
  10. * Fixes:
  11. * Anonymous : NOTSOCK/BADF cleanup. Error fix in
  12. * shutdown()
  13. * Alan Cox : verify_area() fixes
  14. * Alan Cox : Removed DDI
  15. * Jonathan Kamens : SOCK_DGRAM reconnect bug
  16. * Alan Cox : Moved a load of checks to the very
  17. * top level.
  18. * Alan Cox : Move address structures to/from user
  19. * mode above the protocol layers.
  20. * Rob Janssen : Allow 0 length sends.
  21. * Alan Cox : Asynchronous I/O support (cribbed from the
  22. * tty drivers).
  23. * Niibe Yutaka : Asynchronous I/O for writes (4.4BSD style)
  24. * Jeff Uphoff : Made max number of sockets command-line
  25. * configurable.
  26. * Matti Aarnio : Made the number of sockets dynamic,
  27. * to be allocated when needed, and mr.
  28. * Uphoff's max is used as max to be
  29. * allowed to allocate.
  30. * Linus : Argh. removed all the socket allocation
  31. * altogether: it's in the inode now.
  32. * Alan Cox : Made sock_alloc()/sock_release() public
  33. * for NetROM and future kernel nfsd type
  34. * stuff.
  35. * Alan Cox : sendmsg/recvmsg basics.
  36. * Tom Dyas : Export net symbols.
  37. * Marcin Dalecki : Fixed problems with CONFIG_NET="n".
  38. * Alan Cox : Added thread locking to sys_* calls
  39. * for sockets. May have errors at the
  40. * moment.
  41. * Kevin Buhr : Fixed the dumb errors in the above.
  42. * Andi Kleen : Some small cleanups, optimizations,
  43. * and fixed a copy_from_user() bug.
  44. * Tigran Aivazian : sys_send(args) calls sys_sendto(args, NULL, 0)
  45. * Tigran Aivazian : Made listen(2) backlog sanity checks
  46. * protocol-independent
  47. *
  48. *
  49. * This program is free software; you can redistribute it and/or
  50. * modify it under the terms of the GNU General Public License
  51. * as published by the Free Software Foundation; either version
  52. * 2 of the License, or (at your option) any later version.
  53. *
  54. *
  55. * This module is effectively the top level interface to the BSD socket
  56. * paradigm.
  57. *
  58. * Based upon Swansea University Computer Society NET3.039
  59. */
  60. #include <linux/mm.h>
  61. #include <linux/socket.h>
  62. #include <linux/file.h>
  63. #include <linux/net.h>
  64. #include <linux/interrupt.h>
  65. #include <linux/thread_info.h>
  66. #include <linux/rcupdate.h>
  67. #include <linux/netdevice.h>
  68. #include <linux/proc_fs.h>
  69. #include <linux/seq_file.h>
  70. #include <linux/mutex.h>
  71. #include <linux/if_bridge.h>
  72. #include <linux/if_frad.h>
  73. #include <linux/if_vlan.h>
  74. #include <linux/ptp_classify.h>
  75. #include <linux/init.h>
  76. #include <linux/poll.h>
  77. #include <linux/cache.h>
  78. #include <linux/module.h>
  79. #include <linux/highmem.h>
  80. #include <linux/mount.h>
  81. #include <linux/security.h>
  82. #include <linux/syscalls.h>
  83. #include <linux/compat.h>
  84. #include <linux/kmod.h>
  85. #include <linux/audit.h>
  86. #include <linux/wireless.h>
  87. #include <linux/nsproxy.h>
  88. #include <linux/magic.h>
  89. #include <linux/slab.h>
  90. #include <linux/xattr.h>
  91. #include <linux/uaccess.h>
  92. #include <asm/unistd.h>
  93. #include <net/compat.h>
  94. #include <net/wext.h>
  95. #include <net/cls_cgroup.h>
  96. #include <net/sock.h>
  97. #include <linux/netfilter.h>
  98. #include <linux/if_tun.h>
  99. #include <linux/ipv6_route.h>
  100. #include <linux/route.h>
  101. #include <linux/sockios.h>
  102. #include <net/busy_poll.h>
  103. #include <linux/errqueue.h>
  104. #ifdef CONFIG_NET_RX_BUSY_POLL
  105. unsigned int sysctl_net_busy_read __read_mostly;
  106. unsigned int sysctl_net_busy_poll __read_mostly;
  107. #endif
  108. static ssize_t sock_read_iter(struct kiocb *iocb, struct iov_iter *to);
  109. static ssize_t sock_write_iter(struct kiocb *iocb, struct iov_iter *from);
  110. static int sock_mmap(struct file *file, struct vm_area_struct *vma);
  111. static int sock_close(struct inode *inode, struct file *file);
  112. static __poll_t sock_poll(struct file *file,
  113. struct poll_table_struct *wait);
  114. static long sock_ioctl(struct file *file, unsigned int cmd, unsigned long arg);
  115. #ifdef CONFIG_COMPAT
  116. static long compat_sock_ioctl(struct file *file,
  117. unsigned int cmd, unsigned long arg);
  118. #endif
  119. static int sock_fasync(int fd, struct file *filp, int on);
  120. static ssize_t sock_sendpage(struct file *file, struct page *page,
  121. int offset, size_t size, loff_t *ppos, int more);
  122. static ssize_t sock_splice_read(struct file *file, loff_t *ppos,
  123. struct pipe_inode_info *pipe, size_t len,
  124. unsigned int flags);
  125. /*
  126. * Socket files have a set of 'special' operations as well as the generic file ones. These don't appear
  127. * in the operation structures but are done directly via the socketcall() multiplexor.
  128. */
  129. static const struct file_operations socket_file_ops = {
  130. .owner = THIS_MODULE,
  131. .llseek = no_llseek,
  132. .read_iter = sock_read_iter,
  133. .write_iter = sock_write_iter,
  134. .poll = sock_poll,
  135. .unlocked_ioctl = sock_ioctl,
  136. #ifdef CONFIG_COMPAT
  137. .compat_ioctl = compat_sock_ioctl,
  138. #endif
  139. .mmap = sock_mmap,
  140. .release = sock_close,
  141. .fasync = sock_fasync,
  142. .sendpage = sock_sendpage,
  143. .splice_write = generic_splice_sendpage,
  144. .splice_read = sock_splice_read,
  145. };
  146. /*
  147. * The protocol list. Each protocol is registered in here.
  148. */
  149. static DEFINE_SPINLOCK(net_family_lock);
  150. static const struct net_proto_family __rcu *net_families[NPROTO] __read_mostly;
  151. /*
  152. * Support routines.
  153. * Move socket addresses back and forth across the kernel/user
  154. * divide and look after the messy bits.
  155. */
  156. /**
  157. * move_addr_to_kernel - copy a socket address into kernel space
  158. * @uaddr: Address in user space
  159. * @kaddr: Address in kernel space
  160. * @ulen: Length in user space
  161. *
  162. * The address is copied into kernel space. If the provided address is
  163. * too long an error code of -EINVAL is returned. If the copy gives
  164. * invalid addresses -EFAULT is returned. On a success 0 is returned.
  165. */
  166. int move_addr_to_kernel(void __user *uaddr, int ulen, struct sockaddr_storage *kaddr)
  167. {
  168. if (ulen < 0 || ulen > sizeof(struct sockaddr_storage))
  169. return -EINVAL;
  170. if (ulen == 0)
  171. return 0;
  172. if (copy_from_user(kaddr, uaddr, ulen))
  173. return -EFAULT;
  174. return audit_sockaddr(ulen, kaddr);
  175. }
  176. /**
  177. * move_addr_to_user - copy an address to user space
  178. * @kaddr: kernel space address
  179. * @klen: length of address in kernel
  180. * @uaddr: user space address
  181. * @ulen: pointer to user length field
  182. *
  183. * The value pointed to by ulen on entry is the buffer length available.
  184. * This is overwritten with the buffer space used. -EINVAL is returned
  185. * if an overlong buffer is specified or a negative buffer size. -EFAULT
  186. * is returned if either the buffer or the length field are not
  187. * accessible.
  188. * After copying the data up to the limit the user specifies, the true
  189. * length of the data is written over the length limit the user
  190. * specified. Zero is returned for a success.
  191. */
  192. static int move_addr_to_user(struct sockaddr_storage *kaddr, int klen,
  193. void __user *uaddr, int __user *ulen)
  194. {
  195. int err;
  196. int len;
  197. BUG_ON(klen > sizeof(struct sockaddr_storage));
  198. err = get_user(len, ulen);
  199. if (err)
  200. return err;
  201. if (len > klen)
  202. len = klen;
  203. if (len < 0)
  204. return -EINVAL;
  205. if (len) {
  206. if (audit_sockaddr(klen, kaddr))
  207. return -ENOMEM;
  208. if (copy_to_user(uaddr, kaddr, len))
  209. return -EFAULT;
  210. }
  211. /*
  212. * "fromlen shall refer to the value before truncation.."
  213. * 1003.1g
  214. */
  215. return __put_user(klen, ulen);
  216. }
  217. static struct kmem_cache *sock_inode_cachep __ro_after_init;
  218. static struct inode *sock_alloc_inode(struct super_block *sb)
  219. {
  220. struct socket_alloc *ei;
  221. struct socket_wq *wq;
  222. ei = kmem_cache_alloc(sock_inode_cachep, GFP_KERNEL);
  223. if (!ei)
  224. return NULL;
  225. wq = kmalloc(sizeof(*wq), GFP_KERNEL);
  226. if (!wq) {
  227. kmem_cache_free(sock_inode_cachep, ei);
  228. return NULL;
  229. }
  230. init_waitqueue_head(&wq->wait);
  231. wq->fasync_list = NULL;
  232. wq->flags = 0;
  233. RCU_INIT_POINTER(ei->socket.wq, wq);
  234. ei->socket.state = SS_UNCONNECTED;
  235. ei->socket.flags = 0;
  236. ei->socket.ops = NULL;
  237. ei->socket.sk = NULL;
  238. ei->socket.file = NULL;
  239. return &ei->vfs_inode;
  240. }
  241. static void sock_destroy_inode(struct inode *inode)
  242. {
  243. struct socket_alloc *ei;
  244. struct socket_wq *wq;
  245. ei = container_of(inode, struct socket_alloc, vfs_inode);
  246. wq = rcu_dereference_protected(ei->socket.wq, 1);
  247. kfree_rcu(wq, rcu);
  248. kmem_cache_free(sock_inode_cachep, ei);
  249. }
  250. static void init_once(void *foo)
  251. {
  252. struct socket_alloc *ei = (struct socket_alloc *)foo;
  253. inode_init_once(&ei->vfs_inode);
  254. }
  255. static void init_inodecache(void)
  256. {
  257. sock_inode_cachep = kmem_cache_create("sock_inode_cache",
  258. sizeof(struct socket_alloc),
  259. 0,
  260. (SLAB_HWCACHE_ALIGN |
  261. SLAB_RECLAIM_ACCOUNT |
  262. SLAB_MEM_SPREAD | SLAB_ACCOUNT),
  263. init_once);
  264. BUG_ON(sock_inode_cachep == NULL);
  265. }
  266. static const struct super_operations sockfs_ops = {
  267. .alloc_inode = sock_alloc_inode,
  268. .destroy_inode = sock_destroy_inode,
  269. .statfs = simple_statfs,
  270. };
  271. /*
  272. * sockfs_dname() is called from d_path().
  273. */
  274. static char *sockfs_dname(struct dentry *dentry, char *buffer, int buflen)
  275. {
  276. return dynamic_dname(dentry, buffer, buflen, "socket:[%lu]",
  277. d_inode(dentry)->i_ino);
  278. }
  279. static const struct dentry_operations sockfs_dentry_operations = {
  280. .d_dname = sockfs_dname,
  281. };
  282. static int sockfs_xattr_get(const struct xattr_handler *handler,
  283. struct dentry *dentry, struct inode *inode,
  284. const char *suffix, void *value, size_t size)
  285. {
  286. if (value) {
  287. if (dentry->d_name.len + 1 > size)
  288. return -ERANGE;
  289. memcpy(value, dentry->d_name.name, dentry->d_name.len + 1);
  290. }
  291. return dentry->d_name.len + 1;
  292. }
  293. #define XATTR_SOCKPROTONAME_SUFFIX "sockprotoname"
  294. #define XATTR_NAME_SOCKPROTONAME (XATTR_SYSTEM_PREFIX XATTR_SOCKPROTONAME_SUFFIX)
  295. #define XATTR_NAME_SOCKPROTONAME_LEN (sizeof(XATTR_NAME_SOCKPROTONAME)-1)
  296. static const struct xattr_handler sockfs_xattr_handler = {
  297. .name = XATTR_NAME_SOCKPROTONAME,
  298. .get = sockfs_xattr_get,
  299. };
  300. static int sockfs_security_xattr_set(const struct xattr_handler *handler,
  301. struct dentry *dentry, struct inode *inode,
  302. const char *suffix, const void *value,
  303. size_t size, int flags)
  304. {
  305. /* Handled by LSM. */
  306. return -EAGAIN;
  307. }
  308. static const struct xattr_handler sockfs_security_xattr_handler = {
  309. .prefix = XATTR_SECURITY_PREFIX,
  310. .set = sockfs_security_xattr_set,
  311. };
  312. static const struct xattr_handler *sockfs_xattr_handlers[] = {
  313. &sockfs_xattr_handler,
  314. &sockfs_security_xattr_handler,
  315. NULL
  316. };
  317. static struct dentry *sockfs_mount(struct file_system_type *fs_type,
  318. int flags, const char *dev_name, void *data)
  319. {
  320. return mount_pseudo_xattr(fs_type, "socket:", &sockfs_ops,
  321. sockfs_xattr_handlers,
  322. &sockfs_dentry_operations, SOCKFS_MAGIC);
  323. }
  324. static struct vfsmount *sock_mnt __read_mostly;
  325. static struct file_system_type sock_fs_type = {
  326. .name = "sockfs",
  327. .mount = sockfs_mount,
  328. .kill_sb = kill_anon_super,
  329. };
  330. /*
  331. * Obtains the first available file descriptor and sets it up for use.
  332. *
  333. * These functions create file structures and maps them to fd space
  334. * of the current process. On success it returns file descriptor
  335. * and file struct implicitly stored in sock->file.
  336. * Note that another thread may close file descriptor before we return
  337. * from this function. We use the fact that now we do not refer
  338. * to socket after mapping. If one day we will need it, this
  339. * function will increment ref. count on file by 1.
  340. *
  341. * In any case returned fd MAY BE not valid!
  342. * This race condition is unavoidable
  343. * with shared fd spaces, we cannot solve it inside kernel,
  344. * but we take care of internal coherence yet.
  345. */
  346. struct file *sock_alloc_file(struct socket *sock, int flags, const char *dname)
  347. {
  348. struct qstr name = { .name = "" };
  349. struct path path;
  350. struct file *file;
  351. if (dname) {
  352. name.name = dname;
  353. name.len = strlen(name.name);
  354. } else if (sock->sk) {
  355. name.name = sock->sk->sk_prot_creator->name;
  356. name.len = strlen(name.name);
  357. }
  358. path.dentry = d_alloc_pseudo(sock_mnt->mnt_sb, &name);
  359. if (unlikely(!path.dentry)) {
  360. sock_release(sock);
  361. return ERR_PTR(-ENOMEM);
  362. }
  363. path.mnt = mntget(sock_mnt);
  364. d_instantiate(path.dentry, SOCK_INODE(sock));
  365. file = alloc_file(&path, FMODE_READ | FMODE_WRITE,
  366. &socket_file_ops);
  367. if (IS_ERR(file)) {
  368. /* drop dentry, keep inode for a bit */
  369. ihold(d_inode(path.dentry));
  370. path_put(&path);
  371. /* ... and now kill it properly */
  372. sock_release(sock);
  373. return file;
  374. }
  375. sock->file = file;
  376. file->f_flags = O_RDWR | (flags & O_NONBLOCK);
  377. file->private_data = sock;
  378. return file;
  379. }
  380. EXPORT_SYMBOL(sock_alloc_file);
  381. static int sock_map_fd(struct socket *sock, int flags)
  382. {
  383. struct file *newfile;
  384. int fd = get_unused_fd_flags(flags);
  385. if (unlikely(fd < 0)) {
  386. sock_release(sock);
  387. return fd;
  388. }
  389. newfile = sock_alloc_file(sock, flags, NULL);
  390. if (likely(!IS_ERR(newfile))) {
  391. fd_install(fd, newfile);
  392. return fd;
  393. }
  394. put_unused_fd(fd);
  395. return PTR_ERR(newfile);
  396. }
  397. struct socket *sock_from_file(struct file *file, int *err)
  398. {
  399. if (file->f_op == &socket_file_ops)
  400. return file->private_data; /* set in sock_map_fd */
  401. *err = -ENOTSOCK;
  402. return NULL;
  403. }
  404. EXPORT_SYMBOL(sock_from_file);
  405. /**
  406. * sockfd_lookup - Go from a file number to its socket slot
  407. * @fd: file handle
  408. * @err: pointer to an error code return
  409. *
  410. * The file handle passed in is locked and the socket it is bound
  411. * to is returned. If an error occurs the err pointer is overwritten
  412. * with a negative errno code and NULL is returned. The function checks
  413. * for both invalid handles and passing a handle which is not a socket.
  414. *
  415. * On a success the socket object pointer is returned.
  416. */
  417. struct socket *sockfd_lookup(int fd, int *err)
  418. {
  419. struct file *file;
  420. struct socket *sock;
  421. file = fget(fd);
  422. if (!file) {
  423. *err = -EBADF;
  424. return NULL;
  425. }
  426. sock = sock_from_file(file, err);
  427. if (!sock)
  428. fput(file);
  429. return sock;
  430. }
  431. EXPORT_SYMBOL(sockfd_lookup);
  432. static struct socket *sockfd_lookup_light(int fd, int *err, int *fput_needed)
  433. {
  434. struct fd f = fdget(fd);
  435. struct socket *sock;
  436. *err = -EBADF;
  437. if (f.file) {
  438. sock = sock_from_file(f.file, err);
  439. if (likely(sock)) {
  440. *fput_needed = f.flags;
  441. return sock;
  442. }
  443. fdput(f);
  444. }
  445. return NULL;
  446. }
  447. static ssize_t sockfs_listxattr(struct dentry *dentry, char *buffer,
  448. size_t size)
  449. {
  450. ssize_t len;
  451. ssize_t used = 0;
  452. len = security_inode_listsecurity(d_inode(dentry), buffer, size);
  453. if (len < 0)
  454. return len;
  455. used += len;
  456. if (buffer) {
  457. if (size < used)
  458. return -ERANGE;
  459. buffer += len;
  460. }
  461. len = (XATTR_NAME_SOCKPROTONAME_LEN + 1);
  462. used += len;
  463. if (buffer) {
  464. if (size < used)
  465. return -ERANGE;
  466. memcpy(buffer, XATTR_NAME_SOCKPROTONAME, len);
  467. buffer += len;
  468. }
  469. return used;
  470. }
  471. static int sockfs_setattr(struct dentry *dentry, struct iattr *iattr)
  472. {
  473. int err = simple_setattr(dentry, iattr);
  474. if (!err && (iattr->ia_valid & ATTR_UID)) {
  475. struct socket *sock = SOCKET_I(d_inode(dentry));
  476. sock->sk->sk_uid = iattr->ia_uid;
  477. }
  478. return err;
  479. }
  480. static const struct inode_operations sockfs_inode_ops = {
  481. .listxattr = sockfs_listxattr,
  482. .setattr = sockfs_setattr,
  483. };
  484. /**
  485. * sock_alloc - allocate a socket
  486. *
  487. * Allocate a new inode and socket object. The two are bound together
  488. * and initialised. The socket is then returned. If we are out of inodes
  489. * NULL is returned.
  490. */
  491. struct socket *sock_alloc(void)
  492. {
  493. struct inode *inode;
  494. struct socket *sock;
  495. inode = new_inode_pseudo(sock_mnt->mnt_sb);
  496. if (!inode)
  497. return NULL;
  498. sock = SOCKET_I(inode);
  499. inode->i_ino = get_next_ino();
  500. inode->i_mode = S_IFSOCK | S_IRWXUGO;
  501. inode->i_uid = current_fsuid();
  502. inode->i_gid = current_fsgid();
  503. inode->i_op = &sockfs_inode_ops;
  504. return sock;
  505. }
  506. EXPORT_SYMBOL(sock_alloc);
  507. /**
  508. * sock_release - close a socket
  509. * @sock: socket to close
  510. *
  511. * The socket is released from the protocol stack if it has a release
  512. * callback, and the inode is then released if the socket is bound to
  513. * an inode not a file.
  514. */
  515. void sock_release(struct socket *sock)
  516. {
  517. if (sock->ops) {
  518. struct module *owner = sock->ops->owner;
  519. sock->ops->release(sock);
  520. sock->ops = NULL;
  521. module_put(owner);
  522. }
  523. if (rcu_dereference_protected(sock->wq, 1)->fasync_list)
  524. pr_err("%s: fasync list not empty!\n", __func__);
  525. if (!sock->file) {
  526. iput(SOCK_INODE(sock));
  527. return;
  528. }
  529. sock->file = NULL;
  530. }
  531. EXPORT_SYMBOL(sock_release);
  532. void __sock_tx_timestamp(__u16 tsflags, __u8 *tx_flags)
  533. {
  534. u8 flags = *tx_flags;
  535. if (tsflags & SOF_TIMESTAMPING_TX_HARDWARE)
  536. flags |= SKBTX_HW_TSTAMP;
  537. if (tsflags & SOF_TIMESTAMPING_TX_SOFTWARE)
  538. flags |= SKBTX_SW_TSTAMP;
  539. if (tsflags & SOF_TIMESTAMPING_TX_SCHED)
  540. flags |= SKBTX_SCHED_TSTAMP;
  541. *tx_flags = flags;
  542. }
  543. EXPORT_SYMBOL(__sock_tx_timestamp);
  544. static inline int sock_sendmsg_nosec(struct socket *sock, struct msghdr *msg)
  545. {
  546. int ret = sock->ops->sendmsg(sock, msg, msg_data_left(msg));
  547. BUG_ON(ret == -EIOCBQUEUED);
  548. return ret;
  549. }
  550. int sock_sendmsg(struct socket *sock, struct msghdr *msg)
  551. {
  552. int err = security_socket_sendmsg(sock, msg,
  553. msg_data_left(msg));
  554. return err ?: sock_sendmsg_nosec(sock, msg);
  555. }
  556. EXPORT_SYMBOL(sock_sendmsg);
  557. int kernel_sendmsg(struct socket *sock, struct msghdr *msg,
  558. struct kvec *vec, size_t num, size_t size)
  559. {
  560. iov_iter_kvec(&msg->msg_iter, WRITE | ITER_KVEC, vec, num, size);
  561. return sock_sendmsg(sock, msg);
  562. }
  563. EXPORT_SYMBOL(kernel_sendmsg);
  564. int kernel_sendmsg_locked(struct sock *sk, struct msghdr *msg,
  565. struct kvec *vec, size_t num, size_t size)
  566. {
  567. struct socket *sock = sk->sk_socket;
  568. if (!sock->ops->sendmsg_locked)
  569. return sock_no_sendmsg_locked(sk, msg, size);
  570. iov_iter_kvec(&msg->msg_iter, WRITE | ITER_KVEC, vec, num, size);
  571. return sock->ops->sendmsg_locked(sk, msg, msg_data_left(msg));
  572. }
  573. EXPORT_SYMBOL(kernel_sendmsg_locked);
  574. static bool skb_is_err_queue(const struct sk_buff *skb)
  575. {
  576. /* pkt_type of skbs enqueued on the error queue are set to
  577. * PACKET_OUTGOING in skb_set_err_queue(). This is only safe to do
  578. * in recvmsg, since skbs received on a local socket will never
  579. * have a pkt_type of PACKET_OUTGOING.
  580. */
  581. return skb->pkt_type == PACKET_OUTGOING;
  582. }
  583. /* On transmit, software and hardware timestamps are returned independently.
  584. * As the two skb clones share the hardware timestamp, which may be updated
  585. * before the software timestamp is received, a hardware TX timestamp may be
  586. * returned only if there is no software TX timestamp. Ignore false software
  587. * timestamps, which may be made in the __sock_recv_timestamp() call when the
  588. * option SO_TIMESTAMP(NS) is enabled on the socket, even when the skb has a
  589. * hardware timestamp.
  590. */
  591. static bool skb_is_swtx_tstamp(const struct sk_buff *skb, int false_tstamp)
  592. {
  593. return skb->tstamp && !false_tstamp && skb_is_err_queue(skb);
  594. }
  595. static void put_ts_pktinfo(struct msghdr *msg, struct sk_buff *skb)
  596. {
  597. struct scm_ts_pktinfo ts_pktinfo;
  598. struct net_device *orig_dev;
  599. if (!skb_mac_header_was_set(skb))
  600. return;
  601. memset(&ts_pktinfo, 0, sizeof(ts_pktinfo));
  602. rcu_read_lock();
  603. orig_dev = dev_get_by_napi_id(skb_napi_id(skb));
  604. if (orig_dev)
  605. ts_pktinfo.if_index = orig_dev->ifindex;
  606. rcu_read_unlock();
  607. ts_pktinfo.pkt_length = skb->len - skb_mac_offset(skb);
  608. put_cmsg(msg, SOL_SOCKET, SCM_TIMESTAMPING_PKTINFO,
  609. sizeof(ts_pktinfo), &ts_pktinfo);
  610. }
  611. /*
  612. * called from sock_recv_timestamp() if sock_flag(sk, SOCK_RCVTSTAMP)
  613. */
  614. void __sock_recv_timestamp(struct msghdr *msg, struct sock *sk,
  615. struct sk_buff *skb)
  616. {
  617. int need_software_tstamp = sock_flag(sk, SOCK_RCVTSTAMP);
  618. struct scm_timestamping tss;
  619. int empty = 1, false_tstamp = 0;
  620. struct skb_shared_hwtstamps *shhwtstamps =
  621. skb_hwtstamps(skb);
  622. /* Race occurred between timestamp enabling and packet
  623. receiving. Fill in the current time for now. */
  624. if (need_software_tstamp && skb->tstamp == 0) {
  625. __net_timestamp(skb);
  626. false_tstamp = 1;
  627. }
  628. if (need_software_tstamp) {
  629. if (!sock_flag(sk, SOCK_RCVTSTAMPNS)) {
  630. struct timeval tv;
  631. skb_get_timestamp(skb, &tv);
  632. put_cmsg(msg, SOL_SOCKET, SCM_TIMESTAMP,
  633. sizeof(tv), &tv);
  634. } else {
  635. struct timespec ts;
  636. skb_get_timestampns(skb, &ts);
  637. put_cmsg(msg, SOL_SOCKET, SCM_TIMESTAMPNS,
  638. sizeof(ts), &ts);
  639. }
  640. }
  641. memset(&tss, 0, sizeof(tss));
  642. if ((sk->sk_tsflags & SOF_TIMESTAMPING_SOFTWARE) &&
  643. ktime_to_timespec_cond(skb->tstamp, tss.ts + 0))
  644. empty = 0;
  645. if (shhwtstamps &&
  646. (sk->sk_tsflags & SOF_TIMESTAMPING_RAW_HARDWARE) &&
  647. !skb_is_swtx_tstamp(skb, false_tstamp) &&
  648. ktime_to_timespec_cond(shhwtstamps->hwtstamp, tss.ts + 2)) {
  649. empty = 0;
  650. if ((sk->sk_tsflags & SOF_TIMESTAMPING_OPT_PKTINFO) &&
  651. !skb_is_err_queue(skb))
  652. put_ts_pktinfo(msg, skb);
  653. }
  654. if (!empty) {
  655. put_cmsg(msg, SOL_SOCKET,
  656. SCM_TIMESTAMPING, sizeof(tss), &tss);
  657. if (skb_is_err_queue(skb) && skb->len &&
  658. SKB_EXT_ERR(skb)->opt_stats)
  659. put_cmsg(msg, SOL_SOCKET, SCM_TIMESTAMPING_OPT_STATS,
  660. skb->len, skb->data);
  661. }
  662. }
  663. EXPORT_SYMBOL_GPL(__sock_recv_timestamp);
  664. void __sock_recv_wifi_status(struct msghdr *msg, struct sock *sk,
  665. struct sk_buff *skb)
  666. {
  667. int ack;
  668. if (!sock_flag(sk, SOCK_WIFI_STATUS))
  669. return;
  670. if (!skb->wifi_acked_valid)
  671. return;
  672. ack = skb->wifi_acked;
  673. put_cmsg(msg, SOL_SOCKET, SCM_WIFI_STATUS, sizeof(ack), &ack);
  674. }
  675. EXPORT_SYMBOL_GPL(__sock_recv_wifi_status);
  676. static inline void sock_recv_drops(struct msghdr *msg, struct sock *sk,
  677. struct sk_buff *skb)
  678. {
  679. if (sock_flag(sk, SOCK_RXQ_OVFL) && skb && SOCK_SKB_CB(skb)->dropcount)
  680. put_cmsg(msg, SOL_SOCKET, SO_RXQ_OVFL,
  681. sizeof(__u32), &SOCK_SKB_CB(skb)->dropcount);
  682. }
  683. void __sock_recv_ts_and_drops(struct msghdr *msg, struct sock *sk,
  684. struct sk_buff *skb)
  685. {
  686. sock_recv_timestamp(msg, sk, skb);
  687. sock_recv_drops(msg, sk, skb);
  688. }
  689. EXPORT_SYMBOL_GPL(__sock_recv_ts_and_drops);
  690. static inline int sock_recvmsg_nosec(struct socket *sock, struct msghdr *msg,
  691. int flags)
  692. {
  693. return sock->ops->recvmsg(sock, msg, msg_data_left(msg), flags);
  694. }
  695. int sock_recvmsg(struct socket *sock, struct msghdr *msg, int flags)
  696. {
  697. int err = security_socket_recvmsg(sock, msg, msg_data_left(msg), flags);
  698. return err ?: sock_recvmsg_nosec(sock, msg, flags);
  699. }
  700. EXPORT_SYMBOL(sock_recvmsg);
  701. /**
  702. * kernel_recvmsg - Receive a message from a socket (kernel space)
  703. * @sock: The socket to receive the message from
  704. * @msg: Received message
  705. * @vec: Input s/g array for message data
  706. * @num: Size of input s/g array
  707. * @size: Number of bytes to read
  708. * @flags: Message flags (MSG_DONTWAIT, etc...)
  709. *
  710. * On return the msg structure contains the scatter/gather array passed in the
  711. * vec argument. The array is modified so that it consists of the unfilled
  712. * portion of the original array.
  713. *
  714. * The returned value is the total number of bytes received, or an error.
  715. */
  716. int kernel_recvmsg(struct socket *sock, struct msghdr *msg,
  717. struct kvec *vec, size_t num, size_t size, int flags)
  718. {
  719. mm_segment_t oldfs = get_fs();
  720. int result;
  721. iov_iter_kvec(&msg->msg_iter, READ | ITER_KVEC, vec, num, size);
  722. set_fs(KERNEL_DS);
  723. result = sock_recvmsg(sock, msg, flags);
  724. set_fs(oldfs);
  725. return result;
  726. }
  727. EXPORT_SYMBOL(kernel_recvmsg);
  728. static ssize_t sock_sendpage(struct file *file, struct page *page,
  729. int offset, size_t size, loff_t *ppos, int more)
  730. {
  731. struct socket *sock;
  732. int flags;
  733. sock = file->private_data;
  734. flags = (file->f_flags & O_NONBLOCK) ? MSG_DONTWAIT : 0;
  735. /* more is a combination of MSG_MORE and MSG_SENDPAGE_NOTLAST */
  736. flags |= more;
  737. return kernel_sendpage(sock, page, offset, size, flags);
  738. }
  739. static ssize_t sock_splice_read(struct file *file, loff_t *ppos,
  740. struct pipe_inode_info *pipe, size_t len,
  741. unsigned int flags)
  742. {
  743. struct socket *sock = file->private_data;
  744. if (unlikely(!sock->ops->splice_read))
  745. return -EINVAL;
  746. return sock->ops->splice_read(sock, ppos, pipe, len, flags);
  747. }
  748. static ssize_t sock_read_iter(struct kiocb *iocb, struct iov_iter *to)
  749. {
  750. struct file *file = iocb->ki_filp;
  751. struct socket *sock = file->private_data;
  752. struct msghdr msg = {.msg_iter = *to,
  753. .msg_iocb = iocb};
  754. ssize_t res;
  755. if (file->f_flags & O_NONBLOCK)
  756. msg.msg_flags = MSG_DONTWAIT;
  757. if (iocb->ki_pos != 0)
  758. return -ESPIPE;
  759. if (!iov_iter_count(to)) /* Match SYS5 behaviour */
  760. return 0;
  761. res = sock_recvmsg(sock, &msg, msg.msg_flags);
  762. *to = msg.msg_iter;
  763. return res;
  764. }
  765. static ssize_t sock_write_iter(struct kiocb *iocb, struct iov_iter *from)
  766. {
  767. struct file *file = iocb->ki_filp;
  768. struct socket *sock = file->private_data;
  769. struct msghdr msg = {.msg_iter = *from,
  770. .msg_iocb = iocb};
  771. ssize_t res;
  772. if (iocb->ki_pos != 0)
  773. return -ESPIPE;
  774. if (file->f_flags & O_NONBLOCK)
  775. msg.msg_flags = MSG_DONTWAIT;
  776. if (sock->type == SOCK_SEQPACKET)
  777. msg.msg_flags |= MSG_EOR;
  778. res = sock_sendmsg(sock, &msg);
  779. *from = msg.msg_iter;
  780. return res;
  781. }
  782. /*
  783. * Atomic setting of ioctl hooks to avoid race
  784. * with module unload.
  785. */
  786. static DEFINE_MUTEX(br_ioctl_mutex);
  787. static int (*br_ioctl_hook) (struct net *, unsigned int cmd, void __user *arg);
  788. void brioctl_set(int (*hook) (struct net *, unsigned int, void __user *))
  789. {
  790. mutex_lock(&br_ioctl_mutex);
  791. br_ioctl_hook = hook;
  792. mutex_unlock(&br_ioctl_mutex);
  793. }
  794. EXPORT_SYMBOL(brioctl_set);
  795. static DEFINE_MUTEX(vlan_ioctl_mutex);
  796. static int (*vlan_ioctl_hook) (struct net *, void __user *arg);
  797. void vlan_ioctl_set(int (*hook) (struct net *, void __user *))
  798. {
  799. mutex_lock(&vlan_ioctl_mutex);
  800. vlan_ioctl_hook = hook;
  801. mutex_unlock(&vlan_ioctl_mutex);
  802. }
  803. EXPORT_SYMBOL(vlan_ioctl_set);
  804. static DEFINE_MUTEX(dlci_ioctl_mutex);
  805. static int (*dlci_ioctl_hook) (unsigned int, void __user *);
  806. void dlci_ioctl_set(int (*hook) (unsigned int, void __user *))
  807. {
  808. mutex_lock(&dlci_ioctl_mutex);
  809. dlci_ioctl_hook = hook;
  810. mutex_unlock(&dlci_ioctl_mutex);
  811. }
  812. EXPORT_SYMBOL(dlci_ioctl_set);
  813. static long sock_do_ioctl(struct net *net, struct socket *sock,
  814. unsigned int cmd, unsigned long arg)
  815. {
  816. int err;
  817. void __user *argp = (void __user *)arg;
  818. err = sock->ops->ioctl(sock, cmd, arg);
  819. /*
  820. * If this ioctl is unknown try to hand it down
  821. * to the NIC driver.
  822. */
  823. if (err != -ENOIOCTLCMD)
  824. return err;
  825. if (cmd == SIOCGIFCONF) {
  826. struct ifconf ifc;
  827. if (copy_from_user(&ifc, argp, sizeof(struct ifconf)))
  828. return -EFAULT;
  829. rtnl_lock();
  830. err = dev_ifconf(net, &ifc, sizeof(struct ifreq));
  831. rtnl_unlock();
  832. if (!err && copy_to_user(argp, &ifc, sizeof(struct ifconf)))
  833. err = -EFAULT;
  834. } else {
  835. struct ifreq ifr;
  836. bool need_copyout;
  837. if (copy_from_user(&ifr, argp, sizeof(struct ifreq)))
  838. return -EFAULT;
  839. err = dev_ioctl(net, cmd, &ifr, &need_copyout);
  840. if (!err && need_copyout)
  841. if (copy_to_user(argp, &ifr, sizeof(struct ifreq)))
  842. return -EFAULT;
  843. }
  844. return err;
  845. }
  846. /*
  847. * With an ioctl, arg may well be a user mode pointer, but we don't know
  848. * what to do with it - that's up to the protocol still.
  849. */
  850. struct ns_common *get_net_ns(struct ns_common *ns)
  851. {
  852. return &get_net(container_of(ns, struct net, ns))->ns;
  853. }
  854. EXPORT_SYMBOL_GPL(get_net_ns);
  855. static long sock_ioctl(struct file *file, unsigned cmd, unsigned long arg)
  856. {
  857. struct socket *sock;
  858. struct sock *sk;
  859. void __user *argp = (void __user *)arg;
  860. int pid, err;
  861. struct net *net;
  862. sock = file->private_data;
  863. sk = sock->sk;
  864. net = sock_net(sk);
  865. if (unlikely(cmd >= SIOCDEVPRIVATE && cmd <= (SIOCDEVPRIVATE + 15))) {
  866. struct ifreq ifr;
  867. bool need_copyout;
  868. if (copy_from_user(&ifr, argp, sizeof(struct ifreq)))
  869. return -EFAULT;
  870. err = dev_ioctl(net, cmd, &ifr, &need_copyout);
  871. if (!err && need_copyout)
  872. if (copy_to_user(argp, &ifr, sizeof(struct ifreq)))
  873. return -EFAULT;
  874. } else
  875. #ifdef CONFIG_WEXT_CORE
  876. if (cmd >= SIOCIWFIRST && cmd <= SIOCIWLAST) {
  877. err = wext_handle_ioctl(net, cmd, argp);
  878. } else
  879. #endif
  880. switch (cmd) {
  881. case FIOSETOWN:
  882. case SIOCSPGRP:
  883. err = -EFAULT;
  884. if (get_user(pid, (int __user *)argp))
  885. break;
  886. err = f_setown(sock->file, pid, 1);
  887. break;
  888. case FIOGETOWN:
  889. case SIOCGPGRP:
  890. err = put_user(f_getown(sock->file),
  891. (int __user *)argp);
  892. break;
  893. case SIOCGIFBR:
  894. case SIOCSIFBR:
  895. case SIOCBRADDBR:
  896. case SIOCBRDELBR:
  897. err = -ENOPKG;
  898. if (!br_ioctl_hook)
  899. request_module("bridge");
  900. mutex_lock(&br_ioctl_mutex);
  901. if (br_ioctl_hook)
  902. err = br_ioctl_hook(net, cmd, argp);
  903. mutex_unlock(&br_ioctl_mutex);
  904. break;
  905. case SIOCGIFVLAN:
  906. case SIOCSIFVLAN:
  907. err = -ENOPKG;
  908. if (!vlan_ioctl_hook)
  909. request_module("8021q");
  910. mutex_lock(&vlan_ioctl_mutex);
  911. if (vlan_ioctl_hook)
  912. err = vlan_ioctl_hook(net, argp);
  913. mutex_unlock(&vlan_ioctl_mutex);
  914. break;
  915. case SIOCADDDLCI:
  916. case SIOCDELDLCI:
  917. err = -ENOPKG;
  918. if (!dlci_ioctl_hook)
  919. request_module("dlci");
  920. mutex_lock(&dlci_ioctl_mutex);
  921. if (dlci_ioctl_hook)
  922. err = dlci_ioctl_hook(cmd, argp);
  923. mutex_unlock(&dlci_ioctl_mutex);
  924. break;
  925. case SIOCGSKNS:
  926. err = -EPERM;
  927. if (!ns_capable(net->user_ns, CAP_NET_ADMIN))
  928. break;
  929. err = open_related_ns(&net->ns, get_net_ns);
  930. break;
  931. default:
  932. err = sock_do_ioctl(net, sock, cmd, arg);
  933. break;
  934. }
  935. return err;
  936. }
  937. int sock_create_lite(int family, int type, int protocol, struct socket **res)
  938. {
  939. int err;
  940. struct socket *sock = NULL;
  941. err = security_socket_create(family, type, protocol, 1);
  942. if (err)
  943. goto out;
  944. sock = sock_alloc();
  945. if (!sock) {
  946. err = -ENOMEM;
  947. goto out;
  948. }
  949. sock->type = type;
  950. err = security_socket_post_create(sock, family, type, protocol, 1);
  951. if (err)
  952. goto out_release;
  953. out:
  954. *res = sock;
  955. return err;
  956. out_release:
  957. sock_release(sock);
  958. sock = NULL;
  959. goto out;
  960. }
  961. EXPORT_SYMBOL(sock_create_lite);
  962. /* No kernel lock held - perfect */
  963. static __poll_t sock_poll(struct file *file, poll_table *wait)
  964. {
  965. __poll_t busy_flag = 0;
  966. struct socket *sock;
  967. /*
  968. * We can't return errors to poll, so it's either yes or no.
  969. */
  970. sock = file->private_data;
  971. if (sk_can_busy_loop(sock->sk)) {
  972. /* this socket can poll_ll so tell the system call */
  973. busy_flag = POLL_BUSY_LOOP;
  974. /* once, only if requested by syscall */
  975. if (wait && (wait->_key & POLL_BUSY_LOOP))
  976. sk_busy_loop(sock->sk, 1);
  977. }
  978. return busy_flag | sock->ops->poll(file, sock, wait);
  979. }
  980. static int sock_mmap(struct file *file, struct vm_area_struct *vma)
  981. {
  982. struct socket *sock = file->private_data;
  983. return sock->ops->mmap(file, sock, vma);
  984. }
  985. static int sock_close(struct inode *inode, struct file *filp)
  986. {
  987. sock_release(SOCKET_I(inode));
  988. return 0;
  989. }
  990. /*
  991. * Update the socket async list
  992. *
  993. * Fasync_list locking strategy.
  994. *
  995. * 1. fasync_list is modified only under process context socket lock
  996. * i.e. under semaphore.
  997. * 2. fasync_list is used under read_lock(&sk->sk_callback_lock)
  998. * or under socket lock
  999. */
  1000. static int sock_fasync(int fd, struct file *filp, int on)
  1001. {
  1002. struct socket *sock = filp->private_data;
  1003. struct sock *sk = sock->sk;
  1004. struct socket_wq *wq;
  1005. if (sk == NULL)
  1006. return -EINVAL;
  1007. lock_sock(sk);
  1008. wq = rcu_dereference_protected(sock->wq, lockdep_sock_is_held(sk));
  1009. fasync_helper(fd, filp, on, &wq->fasync_list);
  1010. if (!wq->fasync_list)
  1011. sock_reset_flag(sk, SOCK_FASYNC);
  1012. else
  1013. sock_set_flag(sk, SOCK_FASYNC);
  1014. release_sock(sk);
  1015. return 0;
  1016. }
  1017. /* This function may be called only under rcu_lock */
  1018. int sock_wake_async(struct socket_wq *wq, int how, int band)
  1019. {
  1020. if (!wq || !wq->fasync_list)
  1021. return -1;
  1022. switch (how) {
  1023. case SOCK_WAKE_WAITD:
  1024. if (test_bit(SOCKWQ_ASYNC_WAITDATA, &wq->flags))
  1025. break;
  1026. goto call_kill;
  1027. case SOCK_WAKE_SPACE:
  1028. if (!test_and_clear_bit(SOCKWQ_ASYNC_NOSPACE, &wq->flags))
  1029. break;
  1030. /* fall through */
  1031. case SOCK_WAKE_IO:
  1032. call_kill:
  1033. kill_fasync(&wq->fasync_list, SIGIO, band);
  1034. break;
  1035. case SOCK_WAKE_URG:
  1036. kill_fasync(&wq->fasync_list, SIGURG, band);
  1037. }
  1038. return 0;
  1039. }
  1040. EXPORT_SYMBOL(sock_wake_async);
  1041. int __sock_create(struct net *net, int family, int type, int protocol,
  1042. struct socket **res, int kern)
  1043. {
  1044. int err;
  1045. struct socket *sock;
  1046. const struct net_proto_family *pf;
  1047. /*
  1048. * Check protocol is in range
  1049. */
  1050. if (family < 0 || family >= NPROTO)
  1051. return -EAFNOSUPPORT;
  1052. if (type < 0 || type >= SOCK_MAX)
  1053. return -EINVAL;
  1054. /* Compatibility.
  1055. This uglymoron is moved from INET layer to here to avoid
  1056. deadlock in module load.
  1057. */
  1058. if (family == PF_INET && type == SOCK_PACKET) {
  1059. pr_info_once("%s uses obsolete (PF_INET,SOCK_PACKET)\n",
  1060. current->comm);
  1061. family = PF_PACKET;
  1062. }
  1063. err = security_socket_create(family, type, protocol, kern);
  1064. if (err)
  1065. return err;
  1066. /*
  1067. * Allocate the socket and allow the family to set things up. if
  1068. * the protocol is 0, the family is instructed to select an appropriate
  1069. * default.
  1070. */
  1071. sock = sock_alloc();
  1072. if (!sock) {
  1073. net_warn_ratelimited("socket: no more sockets\n");
  1074. return -ENFILE; /* Not exactly a match, but its the
  1075. closest posix thing */
  1076. }
  1077. sock->type = type;
  1078. #ifdef CONFIG_MODULES
  1079. /* Attempt to load a protocol module if the find failed.
  1080. *
  1081. * 12/09/1996 Marcin: But! this makes REALLY only sense, if the user
  1082. * requested real, full-featured networking support upon configuration.
  1083. * Otherwise module support will break!
  1084. */
  1085. if (rcu_access_pointer(net_families[family]) == NULL)
  1086. request_module("net-pf-%d", family);
  1087. #endif
  1088. rcu_read_lock();
  1089. pf = rcu_dereference(net_families[family]);
  1090. err = -EAFNOSUPPORT;
  1091. if (!pf)
  1092. goto out_release;
  1093. /*
  1094. * We will call the ->create function, that possibly is in a loadable
  1095. * module, so we have to bump that loadable module refcnt first.
  1096. */
  1097. if (!try_module_get(pf->owner))
  1098. goto out_release;
  1099. /* Now protected by module ref count */
  1100. rcu_read_unlock();
  1101. err = pf->create(net, sock, protocol, kern);
  1102. if (err < 0)
  1103. goto out_module_put;
  1104. /*
  1105. * Now to bump the refcnt of the [loadable] module that owns this
  1106. * socket at sock_release time we decrement its refcnt.
  1107. */
  1108. if (!try_module_get(sock->ops->owner))
  1109. goto out_module_busy;
  1110. /*
  1111. * Now that we're done with the ->create function, the [loadable]
  1112. * module can have its refcnt decremented
  1113. */
  1114. module_put(pf->owner);
  1115. err = security_socket_post_create(sock, family, type, protocol, kern);
  1116. if (err)
  1117. goto out_sock_release;
  1118. *res = sock;
  1119. return 0;
  1120. out_module_busy:
  1121. err = -EAFNOSUPPORT;
  1122. out_module_put:
  1123. sock->ops = NULL;
  1124. module_put(pf->owner);
  1125. out_sock_release:
  1126. sock_release(sock);
  1127. return err;
  1128. out_release:
  1129. rcu_read_unlock();
  1130. goto out_sock_release;
  1131. }
  1132. EXPORT_SYMBOL(__sock_create);
  1133. int sock_create(int family, int type, int protocol, struct socket **res)
  1134. {
  1135. return __sock_create(current->nsproxy->net_ns, family, type, protocol, res, 0);
  1136. }
  1137. EXPORT_SYMBOL(sock_create);
  1138. int sock_create_kern(struct net *net, int family, int type, int protocol, struct socket **res)
  1139. {
  1140. return __sock_create(net, family, type, protocol, res, 1);
  1141. }
  1142. EXPORT_SYMBOL(sock_create_kern);
  1143. int __sys_socket(int family, int type, int protocol)
  1144. {
  1145. int retval;
  1146. struct socket *sock;
  1147. int flags;
  1148. /* Check the SOCK_* constants for consistency. */
  1149. BUILD_BUG_ON(SOCK_CLOEXEC != O_CLOEXEC);
  1150. BUILD_BUG_ON((SOCK_MAX | SOCK_TYPE_MASK) != SOCK_TYPE_MASK);
  1151. BUILD_BUG_ON(SOCK_CLOEXEC & SOCK_TYPE_MASK);
  1152. BUILD_BUG_ON(SOCK_NONBLOCK & SOCK_TYPE_MASK);
  1153. flags = type & ~SOCK_TYPE_MASK;
  1154. if (flags & ~(SOCK_CLOEXEC | SOCK_NONBLOCK))
  1155. return -EINVAL;
  1156. type &= SOCK_TYPE_MASK;
  1157. if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
  1158. flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
  1159. retval = sock_create(family, type, protocol, &sock);
  1160. if (retval < 0)
  1161. return retval;
  1162. return sock_map_fd(sock, flags & (O_CLOEXEC | O_NONBLOCK));
  1163. }
  1164. SYSCALL_DEFINE3(socket, int, family, int, type, int, protocol)
  1165. {
  1166. return __sys_socket(family, type, protocol);
  1167. }
  1168. /*
  1169. * Create a pair of connected sockets.
  1170. */
  1171. int __sys_socketpair(int family, int type, int protocol, int __user *usockvec)
  1172. {
  1173. struct socket *sock1, *sock2;
  1174. int fd1, fd2, err;
  1175. struct file *newfile1, *newfile2;
  1176. int flags;
  1177. flags = type & ~SOCK_TYPE_MASK;
  1178. if (flags & ~(SOCK_CLOEXEC | SOCK_NONBLOCK))
  1179. return -EINVAL;
  1180. type &= SOCK_TYPE_MASK;
  1181. if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
  1182. flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
  1183. /*
  1184. * reserve descriptors and make sure we won't fail
  1185. * to return them to userland.
  1186. */
  1187. fd1 = get_unused_fd_flags(flags);
  1188. if (unlikely(fd1 < 0))
  1189. return fd1;
  1190. fd2 = get_unused_fd_flags(flags);
  1191. if (unlikely(fd2 < 0)) {
  1192. put_unused_fd(fd1);
  1193. return fd2;
  1194. }
  1195. err = put_user(fd1, &usockvec[0]);
  1196. if (err)
  1197. goto out;
  1198. err = put_user(fd2, &usockvec[1]);
  1199. if (err)
  1200. goto out;
  1201. /*
  1202. * Obtain the first socket and check if the underlying protocol
  1203. * supports the socketpair call.
  1204. */
  1205. err = sock_create(family, type, protocol, &sock1);
  1206. if (unlikely(err < 0))
  1207. goto out;
  1208. err = sock_create(family, type, protocol, &sock2);
  1209. if (unlikely(err < 0)) {
  1210. sock_release(sock1);
  1211. goto out;
  1212. }
  1213. err = sock1->ops->socketpair(sock1, sock2);
  1214. if (unlikely(err < 0)) {
  1215. sock_release(sock2);
  1216. sock_release(sock1);
  1217. goto out;
  1218. }
  1219. newfile1 = sock_alloc_file(sock1, flags, NULL);
  1220. if (IS_ERR(newfile1)) {
  1221. err = PTR_ERR(newfile1);
  1222. sock_release(sock2);
  1223. goto out;
  1224. }
  1225. newfile2 = sock_alloc_file(sock2, flags, NULL);
  1226. if (IS_ERR(newfile2)) {
  1227. err = PTR_ERR(newfile2);
  1228. fput(newfile1);
  1229. goto out;
  1230. }
  1231. audit_fd_pair(fd1, fd2);
  1232. fd_install(fd1, newfile1);
  1233. fd_install(fd2, newfile2);
  1234. return 0;
  1235. out:
  1236. put_unused_fd(fd2);
  1237. put_unused_fd(fd1);
  1238. return err;
  1239. }
  1240. SYSCALL_DEFINE4(socketpair, int, family, int, type, int, protocol,
  1241. int __user *, usockvec)
  1242. {
  1243. return __sys_socketpair(family, type, protocol, usockvec);
  1244. }
  1245. /*
  1246. * Bind a name to a socket. Nothing much to do here since it's
  1247. * the protocol's responsibility to handle the local address.
  1248. *
  1249. * We move the socket address to kernel space before we call
  1250. * the protocol layer (having also checked the address is ok).
  1251. */
  1252. int __sys_bind(int fd, struct sockaddr __user *umyaddr, int addrlen)
  1253. {
  1254. struct socket *sock;
  1255. struct sockaddr_storage address;
  1256. int err, fput_needed;
  1257. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1258. if (sock) {
  1259. err = move_addr_to_kernel(umyaddr, addrlen, &address);
  1260. if (err >= 0) {
  1261. err = security_socket_bind(sock,
  1262. (struct sockaddr *)&address,
  1263. addrlen);
  1264. if (!err)
  1265. err = sock->ops->bind(sock,
  1266. (struct sockaddr *)
  1267. &address, addrlen);
  1268. }
  1269. fput_light(sock->file, fput_needed);
  1270. }
  1271. return err;
  1272. }
  1273. SYSCALL_DEFINE3(bind, int, fd, struct sockaddr __user *, umyaddr, int, addrlen)
  1274. {
  1275. return __sys_bind(fd, umyaddr, addrlen);
  1276. }
  1277. /*
  1278. * Perform a listen. Basically, we allow the protocol to do anything
  1279. * necessary for a listen, and if that works, we mark the socket as
  1280. * ready for listening.
  1281. */
  1282. int __sys_listen(int fd, int backlog)
  1283. {
  1284. struct socket *sock;
  1285. int err, fput_needed;
  1286. int somaxconn;
  1287. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1288. if (sock) {
  1289. somaxconn = sock_net(sock->sk)->core.sysctl_somaxconn;
  1290. if ((unsigned int)backlog > somaxconn)
  1291. backlog = somaxconn;
  1292. err = security_socket_listen(sock, backlog);
  1293. if (!err)
  1294. err = sock->ops->listen(sock, backlog);
  1295. fput_light(sock->file, fput_needed);
  1296. }
  1297. return err;
  1298. }
  1299. SYSCALL_DEFINE2(listen, int, fd, int, backlog)
  1300. {
  1301. return __sys_listen(fd, backlog);
  1302. }
  1303. /*
  1304. * For accept, we attempt to create a new socket, set up the link
  1305. * with the client, wake up the client, then return the new
  1306. * connected fd. We collect the address of the connector in kernel
  1307. * space and move it to user at the very end. This is unclean because
  1308. * we open the socket then return an error.
  1309. *
  1310. * 1003.1g adds the ability to recvmsg() to query connection pending
  1311. * status to recvmsg. We need to add that support in a way thats
  1312. * clean when we restructure accept also.
  1313. */
  1314. int __sys_accept4(int fd, struct sockaddr __user *upeer_sockaddr,
  1315. int __user *upeer_addrlen, int flags)
  1316. {
  1317. struct socket *sock, *newsock;
  1318. struct file *newfile;
  1319. int err, len, newfd, fput_needed;
  1320. struct sockaddr_storage address;
  1321. if (flags & ~(SOCK_CLOEXEC | SOCK_NONBLOCK))
  1322. return -EINVAL;
  1323. if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
  1324. flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
  1325. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1326. if (!sock)
  1327. goto out;
  1328. err = -ENFILE;
  1329. newsock = sock_alloc();
  1330. if (!newsock)
  1331. goto out_put;
  1332. newsock->type = sock->type;
  1333. newsock->ops = sock->ops;
  1334. /*
  1335. * We don't need try_module_get here, as the listening socket (sock)
  1336. * has the protocol module (sock->ops->owner) held.
  1337. */
  1338. __module_get(newsock->ops->owner);
  1339. newfd = get_unused_fd_flags(flags);
  1340. if (unlikely(newfd < 0)) {
  1341. err = newfd;
  1342. sock_release(newsock);
  1343. goto out_put;
  1344. }
  1345. newfile = sock_alloc_file(newsock, flags, sock->sk->sk_prot_creator->name);
  1346. if (IS_ERR(newfile)) {
  1347. err = PTR_ERR(newfile);
  1348. put_unused_fd(newfd);
  1349. goto out_put;
  1350. }
  1351. err = security_socket_accept(sock, newsock);
  1352. if (err)
  1353. goto out_fd;
  1354. err = sock->ops->accept(sock, newsock, sock->file->f_flags, false);
  1355. if (err < 0)
  1356. goto out_fd;
  1357. if (upeer_sockaddr) {
  1358. len = newsock->ops->getname(newsock,
  1359. (struct sockaddr *)&address, 2);
  1360. if (len < 0) {
  1361. err = -ECONNABORTED;
  1362. goto out_fd;
  1363. }
  1364. err = move_addr_to_user(&address,
  1365. len, upeer_sockaddr, upeer_addrlen);
  1366. if (err < 0)
  1367. goto out_fd;
  1368. }
  1369. /* File flags are not inherited via accept() unlike another OSes. */
  1370. fd_install(newfd, newfile);
  1371. err = newfd;
  1372. out_put:
  1373. fput_light(sock->file, fput_needed);
  1374. out:
  1375. return err;
  1376. out_fd:
  1377. fput(newfile);
  1378. put_unused_fd(newfd);
  1379. goto out_put;
  1380. }
  1381. SYSCALL_DEFINE4(accept4, int, fd, struct sockaddr __user *, upeer_sockaddr,
  1382. int __user *, upeer_addrlen, int, flags)
  1383. {
  1384. return __sys_accept4(fd, upeer_sockaddr, upeer_addrlen, flags);
  1385. }
  1386. SYSCALL_DEFINE3(accept, int, fd, struct sockaddr __user *, upeer_sockaddr,
  1387. int __user *, upeer_addrlen)
  1388. {
  1389. return __sys_accept4(fd, upeer_sockaddr, upeer_addrlen, 0);
  1390. }
  1391. /*
  1392. * Attempt to connect to a socket with the server address. The address
  1393. * is in user space so we verify it is OK and move it to kernel space.
  1394. *
  1395. * For 1003.1g we need to add clean support for a bind to AF_UNSPEC to
  1396. * break bindings
  1397. *
  1398. * NOTE: 1003.1g draft 6.3 is broken with respect to AX.25/NetROM and
  1399. * other SEQPACKET protocols that take time to connect() as it doesn't
  1400. * include the -EINPROGRESS status for such sockets.
  1401. */
  1402. int __sys_connect(int fd, struct sockaddr __user *uservaddr, int addrlen)
  1403. {
  1404. struct socket *sock;
  1405. struct sockaddr_storage address;
  1406. int err, fput_needed;
  1407. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1408. if (!sock)
  1409. goto out;
  1410. err = move_addr_to_kernel(uservaddr, addrlen, &address);
  1411. if (err < 0)
  1412. goto out_put;
  1413. err =
  1414. security_socket_connect(sock, (struct sockaddr *)&address, addrlen);
  1415. if (err)
  1416. goto out_put;
  1417. err = sock->ops->connect(sock, (struct sockaddr *)&address, addrlen,
  1418. sock->file->f_flags);
  1419. out_put:
  1420. fput_light(sock->file, fput_needed);
  1421. out:
  1422. return err;
  1423. }
  1424. SYSCALL_DEFINE3(connect, int, fd, struct sockaddr __user *, uservaddr,
  1425. int, addrlen)
  1426. {
  1427. return __sys_connect(fd, uservaddr, addrlen);
  1428. }
  1429. /*
  1430. * Get the local address ('name') of a socket object. Move the obtained
  1431. * name to user space.
  1432. */
  1433. int __sys_getsockname(int fd, struct sockaddr __user *usockaddr,
  1434. int __user *usockaddr_len)
  1435. {
  1436. struct socket *sock;
  1437. struct sockaddr_storage address;
  1438. int err, fput_needed;
  1439. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1440. if (!sock)
  1441. goto out;
  1442. err = security_socket_getsockname(sock);
  1443. if (err)
  1444. goto out_put;
  1445. err = sock->ops->getname(sock, (struct sockaddr *)&address, 0);
  1446. if (err < 0)
  1447. goto out_put;
  1448. /* "err" is actually length in this case */
  1449. err = move_addr_to_user(&address, err, usockaddr, usockaddr_len);
  1450. out_put:
  1451. fput_light(sock->file, fput_needed);
  1452. out:
  1453. return err;
  1454. }
  1455. SYSCALL_DEFINE3(getsockname, int, fd, struct sockaddr __user *, usockaddr,
  1456. int __user *, usockaddr_len)
  1457. {
  1458. return __sys_getsockname(fd, usockaddr, usockaddr_len);
  1459. }
  1460. /*
  1461. * Get the remote address ('name') of a socket object. Move the obtained
  1462. * name to user space.
  1463. */
  1464. int __sys_getpeername(int fd, struct sockaddr __user *usockaddr,
  1465. int __user *usockaddr_len)
  1466. {
  1467. struct socket *sock;
  1468. struct sockaddr_storage address;
  1469. int err, fput_needed;
  1470. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1471. if (sock != NULL) {
  1472. err = security_socket_getpeername(sock);
  1473. if (err) {
  1474. fput_light(sock->file, fput_needed);
  1475. return err;
  1476. }
  1477. err = sock->ops->getname(sock, (struct sockaddr *)&address, 1);
  1478. if (err >= 0)
  1479. /* "err" is actually length in this case */
  1480. err = move_addr_to_user(&address, err, usockaddr,
  1481. usockaddr_len);
  1482. fput_light(sock->file, fput_needed);
  1483. }
  1484. return err;
  1485. }
  1486. SYSCALL_DEFINE3(getpeername, int, fd, struct sockaddr __user *, usockaddr,
  1487. int __user *, usockaddr_len)
  1488. {
  1489. return __sys_getpeername(fd, usockaddr, usockaddr_len);
  1490. }
  1491. /*
  1492. * Send a datagram to a given address. We move the address into kernel
  1493. * space and check the user space data area is readable before invoking
  1494. * the protocol.
  1495. */
  1496. int __sys_sendto(int fd, void __user *buff, size_t len, unsigned int flags,
  1497. struct sockaddr __user *addr, int addr_len)
  1498. {
  1499. struct socket *sock;
  1500. struct sockaddr_storage address;
  1501. int err;
  1502. struct msghdr msg;
  1503. struct iovec iov;
  1504. int fput_needed;
  1505. err = import_single_range(WRITE, buff, len, &iov, &msg.msg_iter);
  1506. if (unlikely(err))
  1507. return err;
  1508. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1509. if (!sock)
  1510. goto out;
  1511. msg.msg_name = NULL;
  1512. msg.msg_control = NULL;
  1513. msg.msg_controllen = 0;
  1514. msg.msg_namelen = 0;
  1515. if (addr) {
  1516. err = move_addr_to_kernel(addr, addr_len, &address);
  1517. if (err < 0)
  1518. goto out_put;
  1519. msg.msg_name = (struct sockaddr *)&address;
  1520. msg.msg_namelen = addr_len;
  1521. }
  1522. if (sock->file->f_flags & O_NONBLOCK)
  1523. flags |= MSG_DONTWAIT;
  1524. msg.msg_flags = flags;
  1525. err = sock_sendmsg(sock, &msg);
  1526. out_put:
  1527. fput_light(sock->file, fput_needed);
  1528. out:
  1529. return err;
  1530. }
  1531. SYSCALL_DEFINE6(sendto, int, fd, void __user *, buff, size_t, len,
  1532. unsigned int, flags, struct sockaddr __user *, addr,
  1533. int, addr_len)
  1534. {
  1535. return __sys_sendto(fd, buff, len, flags, addr, addr_len);
  1536. }
  1537. /*
  1538. * Send a datagram down a socket.
  1539. */
  1540. SYSCALL_DEFINE4(send, int, fd, void __user *, buff, size_t, len,
  1541. unsigned int, flags)
  1542. {
  1543. return __sys_sendto(fd, buff, len, flags, NULL, 0);
  1544. }
  1545. /*
  1546. * Receive a frame from the socket and optionally record the address of the
  1547. * sender. We verify the buffers are writable and if needed move the
  1548. * sender address from kernel to user space.
  1549. */
  1550. int __sys_recvfrom(int fd, void __user *ubuf, size_t size, unsigned int flags,
  1551. struct sockaddr __user *addr, int __user *addr_len)
  1552. {
  1553. struct socket *sock;
  1554. struct iovec iov;
  1555. struct msghdr msg;
  1556. struct sockaddr_storage address;
  1557. int err, err2;
  1558. int fput_needed;
  1559. err = import_single_range(READ, ubuf, size, &iov, &msg.msg_iter);
  1560. if (unlikely(err))
  1561. return err;
  1562. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1563. if (!sock)
  1564. goto out;
  1565. msg.msg_control = NULL;
  1566. msg.msg_controllen = 0;
  1567. /* Save some cycles and don't copy the address if not needed */
  1568. msg.msg_name = addr ? (struct sockaddr *)&address : NULL;
  1569. /* We assume all kernel code knows the size of sockaddr_storage */
  1570. msg.msg_namelen = 0;
  1571. msg.msg_iocb = NULL;
  1572. msg.msg_flags = 0;
  1573. if (sock->file->f_flags & O_NONBLOCK)
  1574. flags |= MSG_DONTWAIT;
  1575. err = sock_recvmsg(sock, &msg, flags);
  1576. if (err >= 0 && addr != NULL) {
  1577. err2 = move_addr_to_user(&address,
  1578. msg.msg_namelen, addr, addr_len);
  1579. if (err2 < 0)
  1580. err = err2;
  1581. }
  1582. fput_light(sock->file, fput_needed);
  1583. out:
  1584. return err;
  1585. }
  1586. SYSCALL_DEFINE6(recvfrom, int, fd, void __user *, ubuf, size_t, size,
  1587. unsigned int, flags, struct sockaddr __user *, addr,
  1588. int __user *, addr_len)
  1589. {
  1590. return __sys_recvfrom(fd, ubuf, size, flags, addr, addr_len);
  1591. }
  1592. /*
  1593. * Receive a datagram from a socket.
  1594. */
  1595. SYSCALL_DEFINE4(recv, int, fd, void __user *, ubuf, size_t, size,
  1596. unsigned int, flags)
  1597. {
  1598. return __sys_recvfrom(fd, ubuf, size, flags, NULL, NULL);
  1599. }
  1600. /*
  1601. * Set a socket option. Because we don't know the option lengths we have
  1602. * to pass the user mode parameter for the protocols to sort out.
  1603. */
  1604. static int __sys_setsockopt(int fd, int level, int optname,
  1605. char __user *optval, int optlen)
  1606. {
  1607. int err, fput_needed;
  1608. struct socket *sock;
  1609. if (optlen < 0)
  1610. return -EINVAL;
  1611. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1612. if (sock != NULL) {
  1613. err = security_socket_setsockopt(sock, level, optname);
  1614. if (err)
  1615. goto out_put;
  1616. if (level == SOL_SOCKET)
  1617. err =
  1618. sock_setsockopt(sock, level, optname, optval,
  1619. optlen);
  1620. else
  1621. err =
  1622. sock->ops->setsockopt(sock, level, optname, optval,
  1623. optlen);
  1624. out_put:
  1625. fput_light(sock->file, fput_needed);
  1626. }
  1627. return err;
  1628. }
  1629. SYSCALL_DEFINE5(setsockopt, int, fd, int, level, int, optname,
  1630. char __user *, optval, int, optlen)
  1631. {
  1632. return __sys_setsockopt(fd, level, optname, optval, optlen);
  1633. }
  1634. /*
  1635. * Get a socket option. Because we don't know the option lengths we have
  1636. * to pass a user mode parameter for the protocols to sort out.
  1637. */
  1638. static int __sys_getsockopt(int fd, int level, int optname,
  1639. char __user *optval, int __user *optlen)
  1640. {
  1641. int err, fput_needed;
  1642. struct socket *sock;
  1643. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1644. if (sock != NULL) {
  1645. err = security_socket_getsockopt(sock, level, optname);
  1646. if (err)
  1647. goto out_put;
  1648. if (level == SOL_SOCKET)
  1649. err =
  1650. sock_getsockopt(sock, level, optname, optval,
  1651. optlen);
  1652. else
  1653. err =
  1654. sock->ops->getsockopt(sock, level, optname, optval,
  1655. optlen);
  1656. out_put:
  1657. fput_light(sock->file, fput_needed);
  1658. }
  1659. return err;
  1660. }
  1661. SYSCALL_DEFINE5(getsockopt, int, fd, int, level, int, optname,
  1662. char __user *, optval, int __user *, optlen)
  1663. {
  1664. return __sys_getsockopt(fd, level, optname, optval, optlen);
  1665. }
  1666. /*
  1667. * Shutdown a socket.
  1668. */
  1669. int __sys_shutdown(int fd, int how)
  1670. {
  1671. int err, fput_needed;
  1672. struct socket *sock;
  1673. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1674. if (sock != NULL) {
  1675. err = security_socket_shutdown(sock, how);
  1676. if (!err)
  1677. err = sock->ops->shutdown(sock, how);
  1678. fput_light(sock->file, fput_needed);
  1679. }
  1680. return err;
  1681. }
  1682. SYSCALL_DEFINE2(shutdown, int, fd, int, how)
  1683. {
  1684. return __sys_shutdown(fd, how);
  1685. }
  1686. /* A couple of helpful macros for getting the address of the 32/64 bit
  1687. * fields which are the same type (int / unsigned) on our platforms.
  1688. */
  1689. #define COMPAT_MSG(msg, member) ((MSG_CMSG_COMPAT & flags) ? &msg##_compat->member : &msg->member)
  1690. #define COMPAT_NAMELEN(msg) COMPAT_MSG(msg, msg_namelen)
  1691. #define COMPAT_FLAGS(msg) COMPAT_MSG(msg, msg_flags)
  1692. struct used_address {
  1693. struct sockaddr_storage name;
  1694. unsigned int name_len;
  1695. };
  1696. static int copy_msghdr_from_user(struct msghdr *kmsg,
  1697. struct user_msghdr __user *umsg,
  1698. struct sockaddr __user **save_addr,
  1699. struct iovec **iov)
  1700. {
  1701. struct user_msghdr msg;
  1702. ssize_t err;
  1703. if (copy_from_user(&msg, umsg, sizeof(*umsg)))
  1704. return -EFAULT;
  1705. kmsg->msg_control = (void __force *)msg.msg_control;
  1706. kmsg->msg_controllen = msg.msg_controllen;
  1707. kmsg->msg_flags = msg.msg_flags;
  1708. kmsg->msg_namelen = msg.msg_namelen;
  1709. if (!msg.msg_name)
  1710. kmsg->msg_namelen = 0;
  1711. if (kmsg->msg_namelen < 0)
  1712. return -EINVAL;
  1713. if (kmsg->msg_namelen > sizeof(struct sockaddr_storage))
  1714. kmsg->msg_namelen = sizeof(struct sockaddr_storage);
  1715. if (save_addr)
  1716. *save_addr = msg.msg_name;
  1717. if (msg.msg_name && kmsg->msg_namelen) {
  1718. if (!save_addr) {
  1719. err = move_addr_to_kernel(msg.msg_name,
  1720. kmsg->msg_namelen,
  1721. kmsg->msg_name);
  1722. if (err < 0)
  1723. return err;
  1724. }
  1725. } else {
  1726. kmsg->msg_name = NULL;
  1727. kmsg->msg_namelen = 0;
  1728. }
  1729. if (msg.msg_iovlen > UIO_MAXIOV)
  1730. return -EMSGSIZE;
  1731. kmsg->msg_iocb = NULL;
  1732. return import_iovec(save_addr ? READ : WRITE,
  1733. msg.msg_iov, msg.msg_iovlen,
  1734. UIO_FASTIOV, iov, &kmsg->msg_iter);
  1735. }
  1736. static int ___sys_sendmsg(struct socket *sock, struct user_msghdr __user *msg,
  1737. struct msghdr *msg_sys, unsigned int flags,
  1738. struct used_address *used_address,
  1739. unsigned int allowed_msghdr_flags)
  1740. {
  1741. struct compat_msghdr __user *msg_compat =
  1742. (struct compat_msghdr __user *)msg;
  1743. struct sockaddr_storage address;
  1744. struct iovec iovstack[UIO_FASTIOV], *iov = iovstack;
  1745. unsigned char ctl[sizeof(struct cmsghdr) + 20]
  1746. __aligned(sizeof(__kernel_size_t));
  1747. /* 20 is size of ipv6_pktinfo */
  1748. unsigned char *ctl_buf = ctl;
  1749. int ctl_len;
  1750. ssize_t err;
  1751. msg_sys->msg_name = &address;
  1752. if (MSG_CMSG_COMPAT & flags)
  1753. err = get_compat_msghdr(msg_sys, msg_compat, NULL, &iov);
  1754. else
  1755. err = copy_msghdr_from_user(msg_sys, msg, NULL, &iov);
  1756. if (err < 0)
  1757. return err;
  1758. err = -ENOBUFS;
  1759. if (msg_sys->msg_controllen > INT_MAX)
  1760. goto out_freeiov;
  1761. flags |= (msg_sys->msg_flags & allowed_msghdr_flags);
  1762. ctl_len = msg_sys->msg_controllen;
  1763. if ((MSG_CMSG_COMPAT & flags) && ctl_len) {
  1764. err =
  1765. cmsghdr_from_user_compat_to_kern(msg_sys, sock->sk, ctl,
  1766. sizeof(ctl));
  1767. if (err)
  1768. goto out_freeiov;
  1769. ctl_buf = msg_sys->msg_control;
  1770. ctl_len = msg_sys->msg_controllen;
  1771. } else if (ctl_len) {
  1772. BUILD_BUG_ON(sizeof(struct cmsghdr) !=
  1773. CMSG_ALIGN(sizeof(struct cmsghdr)));
  1774. if (ctl_len > sizeof(ctl)) {
  1775. ctl_buf = sock_kmalloc(sock->sk, ctl_len, GFP_KERNEL);
  1776. if (ctl_buf == NULL)
  1777. goto out_freeiov;
  1778. }
  1779. err = -EFAULT;
  1780. /*
  1781. * Careful! Before this, msg_sys->msg_control contains a user pointer.
  1782. * Afterwards, it will be a kernel pointer. Thus the compiler-assisted
  1783. * checking falls down on this.
  1784. */
  1785. if (copy_from_user(ctl_buf,
  1786. (void __user __force *)msg_sys->msg_control,
  1787. ctl_len))
  1788. goto out_freectl;
  1789. msg_sys->msg_control = ctl_buf;
  1790. }
  1791. msg_sys->msg_flags = flags;
  1792. if (sock->file->f_flags & O_NONBLOCK)
  1793. msg_sys->msg_flags |= MSG_DONTWAIT;
  1794. /*
  1795. * If this is sendmmsg() and current destination address is same as
  1796. * previously succeeded address, omit asking LSM's decision.
  1797. * used_address->name_len is initialized to UINT_MAX so that the first
  1798. * destination address never matches.
  1799. */
  1800. if (used_address && msg_sys->msg_name &&
  1801. used_address->name_len == msg_sys->msg_namelen &&
  1802. !memcmp(&used_address->name, msg_sys->msg_name,
  1803. used_address->name_len)) {
  1804. err = sock_sendmsg_nosec(sock, msg_sys);
  1805. goto out_freectl;
  1806. }
  1807. err = sock_sendmsg(sock, msg_sys);
  1808. /*
  1809. * If this is sendmmsg() and sending to current destination address was
  1810. * successful, remember it.
  1811. */
  1812. if (used_address && err >= 0) {
  1813. used_address->name_len = msg_sys->msg_namelen;
  1814. if (msg_sys->msg_name)
  1815. memcpy(&used_address->name, msg_sys->msg_name,
  1816. used_address->name_len);
  1817. }
  1818. out_freectl:
  1819. if (ctl_buf != ctl)
  1820. sock_kfree_s(sock->sk, ctl_buf, ctl_len);
  1821. out_freeiov:
  1822. kfree(iov);
  1823. return err;
  1824. }
  1825. /*
  1826. * BSD sendmsg interface
  1827. */
  1828. long __sys_sendmsg(int fd, struct user_msghdr __user *msg, unsigned int flags,
  1829. bool forbid_cmsg_compat)
  1830. {
  1831. int fput_needed, err;
  1832. struct msghdr msg_sys;
  1833. struct socket *sock;
  1834. if (forbid_cmsg_compat && (flags & MSG_CMSG_COMPAT))
  1835. return -EINVAL;
  1836. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1837. if (!sock)
  1838. goto out;
  1839. err = ___sys_sendmsg(sock, msg, &msg_sys, flags, NULL, 0);
  1840. fput_light(sock->file, fput_needed);
  1841. out:
  1842. return err;
  1843. }
  1844. SYSCALL_DEFINE3(sendmsg, int, fd, struct user_msghdr __user *, msg, unsigned int, flags)
  1845. {
  1846. return __sys_sendmsg(fd, msg, flags, true);
  1847. }
  1848. /*
  1849. * Linux sendmmsg interface
  1850. */
  1851. int __sys_sendmmsg(int fd, struct mmsghdr __user *mmsg, unsigned int vlen,
  1852. unsigned int flags, bool forbid_cmsg_compat)
  1853. {
  1854. int fput_needed, err, datagrams;
  1855. struct socket *sock;
  1856. struct mmsghdr __user *entry;
  1857. struct compat_mmsghdr __user *compat_entry;
  1858. struct msghdr msg_sys;
  1859. struct used_address used_address;
  1860. unsigned int oflags = flags;
  1861. if (forbid_cmsg_compat && (flags & MSG_CMSG_COMPAT))
  1862. return -EINVAL;
  1863. if (vlen > UIO_MAXIOV)
  1864. vlen = UIO_MAXIOV;
  1865. datagrams = 0;
  1866. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1867. if (!sock)
  1868. return err;
  1869. used_address.name_len = UINT_MAX;
  1870. entry = mmsg;
  1871. compat_entry = (struct compat_mmsghdr __user *)mmsg;
  1872. err = 0;
  1873. flags |= MSG_BATCH;
  1874. while (datagrams < vlen) {
  1875. if (datagrams == vlen - 1)
  1876. flags = oflags;
  1877. if (MSG_CMSG_COMPAT & flags) {
  1878. err = ___sys_sendmsg(sock, (struct user_msghdr __user *)compat_entry,
  1879. &msg_sys, flags, &used_address, MSG_EOR);
  1880. if (err < 0)
  1881. break;
  1882. err = __put_user(err, &compat_entry->msg_len);
  1883. ++compat_entry;
  1884. } else {
  1885. err = ___sys_sendmsg(sock,
  1886. (struct user_msghdr __user *)entry,
  1887. &msg_sys, flags, &used_address, MSG_EOR);
  1888. if (err < 0)
  1889. break;
  1890. err = put_user(err, &entry->msg_len);
  1891. ++entry;
  1892. }
  1893. if (err)
  1894. break;
  1895. ++datagrams;
  1896. if (msg_data_left(&msg_sys))
  1897. break;
  1898. cond_resched();
  1899. }
  1900. fput_light(sock->file, fput_needed);
  1901. /* We only return an error if no datagrams were able to be sent */
  1902. if (datagrams != 0)
  1903. return datagrams;
  1904. return err;
  1905. }
  1906. SYSCALL_DEFINE4(sendmmsg, int, fd, struct mmsghdr __user *, mmsg,
  1907. unsigned int, vlen, unsigned int, flags)
  1908. {
  1909. return __sys_sendmmsg(fd, mmsg, vlen, flags, true);
  1910. }
  1911. static int ___sys_recvmsg(struct socket *sock, struct user_msghdr __user *msg,
  1912. struct msghdr *msg_sys, unsigned int flags, int nosec)
  1913. {
  1914. struct compat_msghdr __user *msg_compat =
  1915. (struct compat_msghdr __user *)msg;
  1916. struct iovec iovstack[UIO_FASTIOV];
  1917. struct iovec *iov = iovstack;
  1918. unsigned long cmsg_ptr;
  1919. int len;
  1920. ssize_t err;
  1921. /* kernel mode address */
  1922. struct sockaddr_storage addr;
  1923. /* user mode address pointers */
  1924. struct sockaddr __user *uaddr;
  1925. int __user *uaddr_len = COMPAT_NAMELEN(msg);
  1926. msg_sys->msg_name = &addr;
  1927. if (MSG_CMSG_COMPAT & flags)
  1928. err = get_compat_msghdr(msg_sys, msg_compat, &uaddr, &iov);
  1929. else
  1930. err = copy_msghdr_from_user(msg_sys, msg, &uaddr, &iov);
  1931. if (err < 0)
  1932. return err;
  1933. cmsg_ptr = (unsigned long)msg_sys->msg_control;
  1934. msg_sys->msg_flags = flags & (MSG_CMSG_CLOEXEC|MSG_CMSG_COMPAT);
  1935. /* We assume all kernel code knows the size of sockaddr_storage */
  1936. msg_sys->msg_namelen = 0;
  1937. if (sock->file->f_flags & O_NONBLOCK)
  1938. flags |= MSG_DONTWAIT;
  1939. err = (nosec ? sock_recvmsg_nosec : sock_recvmsg)(sock, msg_sys, flags);
  1940. if (err < 0)
  1941. goto out_freeiov;
  1942. len = err;
  1943. if (uaddr != NULL) {
  1944. err = move_addr_to_user(&addr,
  1945. msg_sys->msg_namelen, uaddr,
  1946. uaddr_len);
  1947. if (err < 0)
  1948. goto out_freeiov;
  1949. }
  1950. err = __put_user((msg_sys->msg_flags & ~MSG_CMSG_COMPAT),
  1951. COMPAT_FLAGS(msg));
  1952. if (err)
  1953. goto out_freeiov;
  1954. if (MSG_CMSG_COMPAT & flags)
  1955. err = __put_user((unsigned long)msg_sys->msg_control - cmsg_ptr,
  1956. &msg_compat->msg_controllen);
  1957. else
  1958. err = __put_user((unsigned long)msg_sys->msg_control - cmsg_ptr,
  1959. &msg->msg_controllen);
  1960. if (err)
  1961. goto out_freeiov;
  1962. err = len;
  1963. out_freeiov:
  1964. kfree(iov);
  1965. return err;
  1966. }
  1967. /*
  1968. * BSD recvmsg interface
  1969. */
  1970. long __sys_recvmsg(int fd, struct user_msghdr __user *msg, unsigned int flags,
  1971. bool forbid_cmsg_compat)
  1972. {
  1973. int fput_needed, err;
  1974. struct msghdr msg_sys;
  1975. struct socket *sock;
  1976. if (forbid_cmsg_compat && (flags & MSG_CMSG_COMPAT))
  1977. return -EINVAL;
  1978. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  1979. if (!sock)
  1980. goto out;
  1981. err = ___sys_recvmsg(sock, msg, &msg_sys, flags, 0);
  1982. fput_light(sock->file, fput_needed);
  1983. out:
  1984. return err;
  1985. }
  1986. SYSCALL_DEFINE3(recvmsg, int, fd, struct user_msghdr __user *, msg,
  1987. unsigned int, flags)
  1988. {
  1989. return __sys_recvmsg(fd, msg, flags, true);
  1990. }
  1991. /*
  1992. * Linux recvmmsg interface
  1993. */
  1994. int __sys_recvmmsg(int fd, struct mmsghdr __user *mmsg, unsigned int vlen,
  1995. unsigned int flags, struct timespec *timeout)
  1996. {
  1997. int fput_needed, err, datagrams;
  1998. struct socket *sock;
  1999. struct mmsghdr __user *entry;
  2000. struct compat_mmsghdr __user *compat_entry;
  2001. struct msghdr msg_sys;
  2002. struct timespec64 end_time;
  2003. struct timespec64 timeout64;
  2004. if (timeout &&
  2005. poll_select_set_timeout(&end_time, timeout->tv_sec,
  2006. timeout->tv_nsec))
  2007. return -EINVAL;
  2008. datagrams = 0;
  2009. sock = sockfd_lookup_light(fd, &err, &fput_needed);
  2010. if (!sock)
  2011. return err;
  2012. if (likely(!(flags & MSG_ERRQUEUE))) {
  2013. err = sock_error(sock->sk);
  2014. if (err) {
  2015. datagrams = err;
  2016. goto out_put;
  2017. }
  2018. }
  2019. entry = mmsg;
  2020. compat_entry = (struct compat_mmsghdr __user *)mmsg;
  2021. while (datagrams < vlen) {
  2022. /*
  2023. * No need to ask LSM for more than the first datagram.
  2024. */
  2025. if (MSG_CMSG_COMPAT & flags) {
  2026. err = ___sys_recvmsg(sock, (struct user_msghdr __user *)compat_entry,
  2027. &msg_sys, flags & ~MSG_WAITFORONE,
  2028. datagrams);
  2029. if (err < 0)
  2030. break;
  2031. err = __put_user(err, &compat_entry->msg_len);
  2032. ++compat_entry;
  2033. } else {
  2034. err = ___sys_recvmsg(sock,
  2035. (struct user_msghdr __user *)entry,
  2036. &msg_sys, flags & ~MSG_WAITFORONE,
  2037. datagrams);
  2038. if (err < 0)
  2039. break;
  2040. err = put_user(err, &entry->msg_len);
  2041. ++entry;
  2042. }
  2043. if (err)
  2044. break;
  2045. ++datagrams;
  2046. /* MSG_WAITFORONE turns on MSG_DONTWAIT after one packet */
  2047. if (flags & MSG_WAITFORONE)
  2048. flags |= MSG_DONTWAIT;
  2049. if (timeout) {
  2050. ktime_get_ts64(&timeout64);
  2051. *timeout = timespec64_to_timespec(
  2052. timespec64_sub(end_time, timeout64));
  2053. if (timeout->tv_sec < 0) {
  2054. timeout->tv_sec = timeout->tv_nsec = 0;
  2055. break;
  2056. }
  2057. /* Timeout, return less than vlen datagrams */
  2058. if (timeout->tv_nsec == 0 && timeout->tv_sec == 0)
  2059. break;
  2060. }
  2061. /* Out of band data, return right away */
  2062. if (msg_sys.msg_flags & MSG_OOB)
  2063. break;
  2064. cond_resched();
  2065. }
  2066. if (err == 0)
  2067. goto out_put;
  2068. if (datagrams == 0) {
  2069. datagrams = err;
  2070. goto out_put;
  2071. }
  2072. /*
  2073. * We may return less entries than requested (vlen) if the
  2074. * sock is non block and there aren't enough datagrams...
  2075. */
  2076. if (err != -EAGAIN) {
  2077. /*
  2078. * ... or if recvmsg returns an error after we
  2079. * received some datagrams, where we record the
  2080. * error to return on the next call or if the
  2081. * app asks about it using getsockopt(SO_ERROR).
  2082. */
  2083. sock->sk->sk_err = -err;
  2084. }
  2085. out_put:
  2086. fput_light(sock->file, fput_needed);
  2087. return datagrams;
  2088. }
  2089. static int do_sys_recvmmsg(int fd, struct mmsghdr __user *mmsg,
  2090. unsigned int vlen, unsigned int flags,
  2091. struct timespec __user *timeout)
  2092. {
  2093. int datagrams;
  2094. struct timespec timeout_sys;
  2095. if (flags & MSG_CMSG_COMPAT)
  2096. return -EINVAL;
  2097. if (!timeout)
  2098. return __sys_recvmmsg(fd, mmsg, vlen, flags, NULL);
  2099. if (copy_from_user(&timeout_sys, timeout, sizeof(timeout_sys)))
  2100. return -EFAULT;
  2101. datagrams = __sys_recvmmsg(fd, mmsg, vlen, flags, &timeout_sys);
  2102. if (datagrams > 0 &&
  2103. copy_to_user(timeout, &timeout_sys, sizeof(timeout_sys)))
  2104. datagrams = -EFAULT;
  2105. return datagrams;
  2106. }
  2107. SYSCALL_DEFINE5(recvmmsg, int, fd, struct mmsghdr __user *, mmsg,
  2108. unsigned int, vlen, unsigned int, flags,
  2109. struct timespec __user *, timeout)
  2110. {
  2111. return do_sys_recvmmsg(fd, mmsg, vlen, flags, timeout);
  2112. }
  2113. #ifdef __ARCH_WANT_SYS_SOCKETCALL
  2114. /* Argument list sizes for sys_socketcall */
  2115. #define AL(x) ((x) * sizeof(unsigned long))
  2116. static const unsigned char nargs[21] = {
  2117. AL(0), AL(3), AL(3), AL(3), AL(2), AL(3),
  2118. AL(3), AL(3), AL(4), AL(4), AL(4), AL(6),
  2119. AL(6), AL(2), AL(5), AL(5), AL(3), AL(3),
  2120. AL(4), AL(5), AL(4)
  2121. };
  2122. #undef AL
  2123. /*
  2124. * System call vectors.
  2125. *
  2126. * Argument checking cleaned up. Saved 20% in size.
  2127. * This function doesn't need to set the kernel lock because
  2128. * it is set by the callees.
  2129. */
  2130. SYSCALL_DEFINE2(socketcall, int, call, unsigned long __user *, args)
  2131. {
  2132. unsigned long a[AUDITSC_ARGS];
  2133. unsigned long a0, a1;
  2134. int err;
  2135. unsigned int len;
  2136. if (call < 1 || call > SYS_SENDMMSG)
  2137. return -EINVAL;
  2138. len = nargs[call];
  2139. if (len > sizeof(a))
  2140. return -EINVAL;
  2141. /* copy_from_user should be SMP safe. */
  2142. if (copy_from_user(a, args, len))
  2143. return -EFAULT;
  2144. err = audit_socketcall(nargs[call] / sizeof(unsigned long), a);
  2145. if (err)
  2146. return err;
  2147. a0 = a[0];
  2148. a1 = a[1];
  2149. switch (call) {
  2150. case SYS_SOCKET:
  2151. err = __sys_socket(a0, a1, a[2]);
  2152. break;
  2153. case SYS_BIND:
  2154. err = __sys_bind(a0, (struct sockaddr __user *)a1, a[2]);
  2155. break;
  2156. case SYS_CONNECT:
  2157. err = __sys_connect(a0, (struct sockaddr __user *)a1, a[2]);
  2158. break;
  2159. case SYS_LISTEN:
  2160. err = __sys_listen(a0, a1);
  2161. break;
  2162. case SYS_ACCEPT:
  2163. err = __sys_accept4(a0, (struct sockaddr __user *)a1,
  2164. (int __user *)a[2], 0);
  2165. break;
  2166. case SYS_GETSOCKNAME:
  2167. err =
  2168. __sys_getsockname(a0, (struct sockaddr __user *)a1,
  2169. (int __user *)a[2]);
  2170. break;
  2171. case SYS_GETPEERNAME:
  2172. err =
  2173. __sys_getpeername(a0, (struct sockaddr __user *)a1,
  2174. (int __user *)a[2]);
  2175. break;
  2176. case SYS_SOCKETPAIR:
  2177. err = __sys_socketpair(a0, a1, a[2], (int __user *)a[3]);
  2178. break;
  2179. case SYS_SEND:
  2180. err = __sys_sendto(a0, (void __user *)a1, a[2], a[3],
  2181. NULL, 0);
  2182. break;
  2183. case SYS_SENDTO:
  2184. err = __sys_sendto(a0, (void __user *)a1, a[2], a[3],
  2185. (struct sockaddr __user *)a[4], a[5]);
  2186. break;
  2187. case SYS_RECV:
  2188. err = __sys_recvfrom(a0, (void __user *)a1, a[2], a[3],
  2189. NULL, NULL);
  2190. break;
  2191. case SYS_RECVFROM:
  2192. err = __sys_recvfrom(a0, (void __user *)a1, a[2], a[3],
  2193. (struct sockaddr __user *)a[4],
  2194. (int __user *)a[5]);
  2195. break;
  2196. case SYS_SHUTDOWN:
  2197. err = __sys_shutdown(a0, a1);
  2198. break;
  2199. case SYS_SETSOCKOPT:
  2200. err = __sys_setsockopt(a0, a1, a[2], (char __user *)a[3],
  2201. a[4]);
  2202. break;
  2203. case SYS_GETSOCKOPT:
  2204. err =
  2205. __sys_getsockopt(a0, a1, a[2], (char __user *)a[3],
  2206. (int __user *)a[4]);
  2207. break;
  2208. case SYS_SENDMSG:
  2209. err = __sys_sendmsg(a0, (struct user_msghdr __user *)a1,
  2210. a[2], true);
  2211. break;
  2212. case SYS_SENDMMSG:
  2213. err = __sys_sendmmsg(a0, (struct mmsghdr __user *)a1, a[2],
  2214. a[3], true);
  2215. break;
  2216. case SYS_RECVMSG:
  2217. err = __sys_recvmsg(a0, (struct user_msghdr __user *)a1,
  2218. a[2], true);
  2219. break;
  2220. case SYS_RECVMMSG:
  2221. err = do_sys_recvmmsg(a0, (struct mmsghdr __user *)a1, a[2],
  2222. a[3], (struct timespec __user *)a[4]);
  2223. break;
  2224. case SYS_ACCEPT4:
  2225. err = __sys_accept4(a0, (struct sockaddr __user *)a1,
  2226. (int __user *)a[2], a[3]);
  2227. break;
  2228. default:
  2229. err = -EINVAL;
  2230. break;
  2231. }
  2232. return err;
  2233. }
  2234. #endif /* __ARCH_WANT_SYS_SOCKETCALL */
  2235. /**
  2236. * sock_register - add a socket protocol handler
  2237. * @ops: description of protocol
  2238. *
  2239. * This function is called by a protocol handler that wants to
  2240. * advertise its address family, and have it linked into the
  2241. * socket interface. The value ops->family corresponds to the
  2242. * socket system call protocol family.
  2243. */
  2244. int sock_register(const struct net_proto_family *ops)
  2245. {
  2246. int err;
  2247. if (ops->family >= NPROTO) {
  2248. pr_crit("protocol %d >= NPROTO(%d)\n", ops->family, NPROTO);
  2249. return -ENOBUFS;
  2250. }
  2251. spin_lock(&net_family_lock);
  2252. if (rcu_dereference_protected(net_families[ops->family],
  2253. lockdep_is_held(&net_family_lock)))
  2254. err = -EEXIST;
  2255. else {
  2256. rcu_assign_pointer(net_families[ops->family], ops);
  2257. err = 0;
  2258. }
  2259. spin_unlock(&net_family_lock);
  2260. pr_info("NET: Registered protocol family %d\n", ops->family);
  2261. return err;
  2262. }
  2263. EXPORT_SYMBOL(sock_register);
  2264. /**
  2265. * sock_unregister - remove a protocol handler
  2266. * @family: protocol family to remove
  2267. *
  2268. * This function is called by a protocol handler that wants to
  2269. * remove its address family, and have it unlinked from the
  2270. * new socket creation.
  2271. *
  2272. * If protocol handler is a module, then it can use module reference
  2273. * counts to protect against new references. If protocol handler is not
  2274. * a module then it needs to provide its own protection in
  2275. * the ops->create routine.
  2276. */
  2277. void sock_unregister(int family)
  2278. {
  2279. BUG_ON(family < 0 || family >= NPROTO);
  2280. spin_lock(&net_family_lock);
  2281. RCU_INIT_POINTER(net_families[family], NULL);
  2282. spin_unlock(&net_family_lock);
  2283. synchronize_rcu();
  2284. pr_info("NET: Unregistered protocol family %d\n", family);
  2285. }
  2286. EXPORT_SYMBOL(sock_unregister);
  2287. bool sock_is_registered(int family)
  2288. {
  2289. return family < NPROTO && rcu_access_pointer(net_families[family]);
  2290. }
  2291. static int __init sock_init(void)
  2292. {
  2293. int err;
  2294. /*
  2295. * Initialize the network sysctl infrastructure.
  2296. */
  2297. err = net_sysctl_init();
  2298. if (err)
  2299. goto out;
  2300. /*
  2301. * Initialize skbuff SLAB cache
  2302. */
  2303. skb_init();
  2304. /*
  2305. * Initialize the protocols module.
  2306. */
  2307. init_inodecache();
  2308. err = register_filesystem(&sock_fs_type);
  2309. if (err)
  2310. goto out_fs;
  2311. sock_mnt = kern_mount(&sock_fs_type);
  2312. if (IS_ERR(sock_mnt)) {
  2313. err = PTR_ERR(sock_mnt);
  2314. goto out_mount;
  2315. }
  2316. /* The real protocol initialization is performed in later initcalls.
  2317. */
  2318. #ifdef CONFIG_NETFILTER
  2319. err = netfilter_init();
  2320. if (err)
  2321. goto out;
  2322. #endif
  2323. ptp_classifier_init();
  2324. out:
  2325. return err;
  2326. out_mount:
  2327. unregister_filesystem(&sock_fs_type);
  2328. out_fs:
  2329. goto out;
  2330. }
  2331. core_initcall(sock_init); /* early initcall */
  2332. #ifdef CONFIG_PROC_FS
  2333. void socket_seq_show(struct seq_file *seq)
  2334. {
  2335. seq_printf(seq, "sockets: used %d\n",
  2336. sock_inuse_get(seq->private));
  2337. }
  2338. #endif /* CONFIG_PROC_FS */
  2339. #ifdef CONFIG_COMPAT
  2340. static int do_siocgstamp(struct net *net, struct socket *sock,
  2341. unsigned int cmd, void __user *up)
  2342. {
  2343. mm_segment_t old_fs = get_fs();
  2344. struct timeval ktv;
  2345. int err;
  2346. set_fs(KERNEL_DS);
  2347. err = sock_do_ioctl(net, sock, cmd, (unsigned long)&ktv);
  2348. set_fs(old_fs);
  2349. if (!err)
  2350. err = compat_put_timeval(&ktv, up);
  2351. return err;
  2352. }
  2353. static int do_siocgstampns(struct net *net, struct socket *sock,
  2354. unsigned int cmd, void __user *up)
  2355. {
  2356. mm_segment_t old_fs = get_fs();
  2357. struct timespec kts;
  2358. int err;
  2359. set_fs(KERNEL_DS);
  2360. err = sock_do_ioctl(net, sock, cmd, (unsigned long)&kts);
  2361. set_fs(old_fs);
  2362. if (!err)
  2363. err = compat_put_timespec(&kts, up);
  2364. return err;
  2365. }
  2366. static int compat_dev_ifconf(struct net *net, struct compat_ifconf __user *uifc32)
  2367. {
  2368. struct compat_ifconf ifc32;
  2369. struct ifconf ifc;
  2370. int err;
  2371. if (copy_from_user(&ifc32, uifc32, sizeof(struct compat_ifconf)))
  2372. return -EFAULT;
  2373. ifc.ifc_len = ifc32.ifc_len;
  2374. ifc.ifc_req = compat_ptr(ifc32.ifcbuf);
  2375. rtnl_lock();
  2376. err = dev_ifconf(net, &ifc, sizeof(struct compat_ifreq));
  2377. rtnl_unlock();
  2378. if (err)
  2379. return err;
  2380. ifc32.ifc_len = ifc.ifc_len;
  2381. if (copy_to_user(uifc32, &ifc32, sizeof(struct compat_ifconf)))
  2382. return -EFAULT;
  2383. return 0;
  2384. }
  2385. static int ethtool_ioctl(struct net *net, struct compat_ifreq __user *ifr32)
  2386. {
  2387. struct compat_ethtool_rxnfc __user *compat_rxnfc;
  2388. bool convert_in = false, convert_out = false;
  2389. size_t buf_size = 0;
  2390. struct ethtool_rxnfc __user *rxnfc = NULL;
  2391. struct ifreq ifr;
  2392. u32 rule_cnt = 0, actual_rule_cnt;
  2393. u32 ethcmd;
  2394. u32 data;
  2395. int ret;
  2396. if (get_user(data, &ifr32->ifr_ifru.ifru_data))
  2397. return -EFAULT;
  2398. compat_rxnfc = compat_ptr(data);
  2399. if (get_user(ethcmd, &compat_rxnfc->cmd))
  2400. return -EFAULT;
  2401. /* Most ethtool structures are defined without padding.
  2402. * Unfortunately struct ethtool_rxnfc is an exception.
  2403. */
  2404. switch (ethcmd) {
  2405. default:
  2406. break;
  2407. case ETHTOOL_GRXCLSRLALL:
  2408. /* Buffer size is variable */
  2409. if (get_user(rule_cnt, &compat_rxnfc->rule_cnt))
  2410. return -EFAULT;
  2411. if (rule_cnt > KMALLOC_MAX_SIZE / sizeof(u32))
  2412. return -ENOMEM;
  2413. buf_size += rule_cnt * sizeof(u32);
  2414. /* fall through */
  2415. case ETHTOOL_GRXRINGS:
  2416. case ETHTOOL_GRXCLSRLCNT:
  2417. case ETHTOOL_GRXCLSRULE:
  2418. case ETHTOOL_SRXCLSRLINS:
  2419. convert_out = true;
  2420. /* fall through */
  2421. case ETHTOOL_SRXCLSRLDEL:
  2422. buf_size += sizeof(struct ethtool_rxnfc);
  2423. convert_in = true;
  2424. rxnfc = compat_alloc_user_space(buf_size);
  2425. break;
  2426. }
  2427. if (copy_from_user(&ifr.ifr_name, &ifr32->ifr_name, IFNAMSIZ))
  2428. return -EFAULT;
  2429. ifr.ifr_data = convert_in ? rxnfc : (void __user *)compat_rxnfc;
  2430. if (convert_in) {
  2431. /* We expect there to be holes between fs.m_ext and
  2432. * fs.ring_cookie and at the end of fs, but nowhere else.
  2433. */
  2434. BUILD_BUG_ON(offsetof(struct compat_ethtool_rxnfc, fs.m_ext) +
  2435. sizeof(compat_rxnfc->fs.m_ext) !=
  2436. offsetof(struct ethtool_rxnfc, fs.m_ext) +
  2437. sizeof(rxnfc->fs.m_ext));
  2438. BUILD_BUG_ON(
  2439. offsetof(struct compat_ethtool_rxnfc, fs.location) -
  2440. offsetof(struct compat_ethtool_rxnfc, fs.ring_cookie) !=
  2441. offsetof(struct ethtool_rxnfc, fs.location) -
  2442. offsetof(struct ethtool_rxnfc, fs.ring_cookie));
  2443. if (copy_in_user(rxnfc, compat_rxnfc,
  2444. (void __user *)(&rxnfc->fs.m_ext + 1) -
  2445. (void __user *)rxnfc) ||
  2446. copy_in_user(&rxnfc->fs.ring_cookie,
  2447. &compat_rxnfc->fs.ring_cookie,
  2448. (void __user *)(&rxnfc->fs.location + 1) -
  2449. (void __user *)&rxnfc->fs.ring_cookie) ||
  2450. copy_in_user(&rxnfc->rule_cnt, &compat_rxnfc->rule_cnt,
  2451. sizeof(rxnfc->rule_cnt)))
  2452. return -EFAULT;
  2453. }
  2454. ret = dev_ioctl(net, SIOCETHTOOL, &ifr, NULL);
  2455. if (ret)
  2456. return ret;
  2457. if (convert_out) {
  2458. if (copy_in_user(compat_rxnfc, rxnfc,
  2459. (const void __user *)(&rxnfc->fs.m_ext + 1) -
  2460. (const void __user *)rxnfc) ||
  2461. copy_in_user(&compat_rxnfc->fs.ring_cookie,
  2462. &rxnfc->fs.ring_cookie,
  2463. (const void __user *)(&rxnfc->fs.location + 1) -
  2464. (const void __user *)&rxnfc->fs.ring_cookie) ||
  2465. copy_in_user(&compat_rxnfc->rule_cnt, &rxnfc->rule_cnt,
  2466. sizeof(rxnfc->rule_cnt)))
  2467. return -EFAULT;
  2468. if (ethcmd == ETHTOOL_GRXCLSRLALL) {
  2469. /* As an optimisation, we only copy the actual
  2470. * number of rules that the underlying
  2471. * function returned. Since Mallory might
  2472. * change the rule count in user memory, we
  2473. * check that it is less than the rule count
  2474. * originally given (as the user buffer size),
  2475. * which has been range-checked.
  2476. */
  2477. if (get_user(actual_rule_cnt, &rxnfc->rule_cnt))
  2478. return -EFAULT;
  2479. if (actual_rule_cnt < rule_cnt)
  2480. rule_cnt = actual_rule_cnt;
  2481. if (copy_in_user(&compat_rxnfc->rule_locs[0],
  2482. &rxnfc->rule_locs[0],
  2483. rule_cnt * sizeof(u32)))
  2484. return -EFAULT;
  2485. }
  2486. }
  2487. return 0;
  2488. }
  2489. static int compat_siocwandev(struct net *net, struct compat_ifreq __user *uifr32)
  2490. {
  2491. compat_uptr_t uptr32;
  2492. struct ifreq ifr;
  2493. void __user *saved;
  2494. int err;
  2495. if (copy_from_user(&ifr, uifr32, sizeof(struct compat_ifreq)))
  2496. return -EFAULT;
  2497. if (get_user(uptr32, &uifr32->ifr_settings.ifs_ifsu))
  2498. return -EFAULT;
  2499. saved = ifr.ifr_settings.ifs_ifsu.raw_hdlc;
  2500. ifr.ifr_settings.ifs_ifsu.raw_hdlc = compat_ptr(uptr32);
  2501. err = dev_ioctl(net, SIOCWANDEV, &ifr, NULL);
  2502. if (!err) {
  2503. ifr.ifr_settings.ifs_ifsu.raw_hdlc = saved;
  2504. if (copy_to_user(uifr32, &ifr, sizeof(struct compat_ifreq)))
  2505. err = -EFAULT;
  2506. }
  2507. return err;
  2508. }
  2509. /* Handle ioctls that use ifreq::ifr_data and just need struct ifreq converted */
  2510. static int compat_ifr_data_ioctl(struct net *net, unsigned int cmd,
  2511. struct compat_ifreq __user *u_ifreq32)
  2512. {
  2513. struct ifreq ifreq;
  2514. u32 data32;
  2515. if (copy_from_user(ifreq.ifr_name, u_ifreq32->ifr_name, IFNAMSIZ))
  2516. return -EFAULT;
  2517. if (get_user(data32, &u_ifreq32->ifr_data))
  2518. return -EFAULT;
  2519. ifreq.ifr_data = compat_ptr(data32);
  2520. return dev_ioctl(net, cmd, &ifreq, NULL);
  2521. }
  2522. static int compat_sioc_ifmap(struct net *net, unsigned int cmd,
  2523. struct compat_ifreq __user *uifr32)
  2524. {
  2525. struct ifreq ifr;
  2526. struct compat_ifmap __user *uifmap32;
  2527. int err;
  2528. uifmap32 = &uifr32->ifr_ifru.ifru_map;
  2529. err = copy_from_user(&ifr, uifr32, sizeof(ifr.ifr_name));
  2530. err |= get_user(ifr.ifr_map.mem_start, &uifmap32->mem_start);
  2531. err |= get_user(ifr.ifr_map.mem_end, &uifmap32->mem_end);
  2532. err |= get_user(ifr.ifr_map.base_addr, &uifmap32->base_addr);
  2533. err |= get_user(ifr.ifr_map.irq, &uifmap32->irq);
  2534. err |= get_user(ifr.ifr_map.dma, &uifmap32->dma);
  2535. err |= get_user(ifr.ifr_map.port, &uifmap32->port);
  2536. if (err)
  2537. return -EFAULT;
  2538. err = dev_ioctl(net, cmd, &ifr, NULL);
  2539. if (cmd == SIOCGIFMAP && !err) {
  2540. err = copy_to_user(uifr32, &ifr, sizeof(ifr.ifr_name));
  2541. err |= put_user(ifr.ifr_map.mem_start, &uifmap32->mem_start);
  2542. err |= put_user(ifr.ifr_map.mem_end, &uifmap32->mem_end);
  2543. err |= put_user(ifr.ifr_map.base_addr, &uifmap32->base_addr);
  2544. err |= put_user(ifr.ifr_map.irq, &uifmap32->irq);
  2545. err |= put_user(ifr.ifr_map.dma, &uifmap32->dma);
  2546. err |= put_user(ifr.ifr_map.port, &uifmap32->port);
  2547. if (err)
  2548. err = -EFAULT;
  2549. }
  2550. return err;
  2551. }
  2552. struct rtentry32 {
  2553. u32 rt_pad1;
  2554. struct sockaddr rt_dst; /* target address */
  2555. struct sockaddr rt_gateway; /* gateway addr (RTF_GATEWAY) */
  2556. struct sockaddr rt_genmask; /* target network mask (IP) */
  2557. unsigned short rt_flags;
  2558. short rt_pad2;
  2559. u32 rt_pad3;
  2560. unsigned char rt_tos;
  2561. unsigned char rt_class;
  2562. short rt_pad4;
  2563. short rt_metric; /* +1 for binary compatibility! */
  2564. /* char * */ u32 rt_dev; /* forcing the device at add */
  2565. u32 rt_mtu; /* per route MTU/Window */
  2566. u32 rt_window; /* Window clamping */
  2567. unsigned short rt_irtt; /* Initial RTT */
  2568. };
  2569. struct in6_rtmsg32 {
  2570. struct in6_addr rtmsg_dst;
  2571. struct in6_addr rtmsg_src;
  2572. struct in6_addr rtmsg_gateway;
  2573. u32 rtmsg_type;
  2574. u16 rtmsg_dst_len;
  2575. u16 rtmsg_src_len;
  2576. u32 rtmsg_metric;
  2577. u32 rtmsg_info;
  2578. u32 rtmsg_flags;
  2579. s32 rtmsg_ifindex;
  2580. };
  2581. static int routing_ioctl(struct net *net, struct socket *sock,
  2582. unsigned int cmd, void __user *argp)
  2583. {
  2584. int ret;
  2585. void *r = NULL;
  2586. struct in6_rtmsg r6;
  2587. struct rtentry r4;
  2588. char devname[16];
  2589. u32 rtdev;
  2590. mm_segment_t old_fs = get_fs();
  2591. if (sock && sock->sk && sock->sk->sk_family == AF_INET6) { /* ipv6 */
  2592. struct in6_rtmsg32 __user *ur6 = argp;
  2593. ret = copy_from_user(&r6.rtmsg_dst, &(ur6->rtmsg_dst),
  2594. 3 * sizeof(struct in6_addr));
  2595. ret |= get_user(r6.rtmsg_type, &(ur6->rtmsg_type));
  2596. ret |= get_user(r6.rtmsg_dst_len, &(ur6->rtmsg_dst_len));
  2597. ret |= get_user(r6.rtmsg_src_len, &(ur6->rtmsg_src_len));
  2598. ret |= get_user(r6.rtmsg_metric, &(ur6->rtmsg_metric));
  2599. ret |= get_user(r6.rtmsg_info, &(ur6->rtmsg_info));
  2600. ret |= get_user(r6.rtmsg_flags, &(ur6->rtmsg_flags));
  2601. ret |= get_user(r6.rtmsg_ifindex, &(ur6->rtmsg_ifindex));
  2602. r = (void *) &r6;
  2603. } else { /* ipv4 */
  2604. struct rtentry32 __user *ur4 = argp;
  2605. ret = copy_from_user(&r4.rt_dst, &(ur4->rt_dst),
  2606. 3 * sizeof(struct sockaddr));
  2607. ret |= get_user(r4.rt_flags, &(ur4->rt_flags));
  2608. ret |= get_user(r4.rt_metric, &(ur4->rt_metric));
  2609. ret |= get_user(r4.rt_mtu, &(ur4->rt_mtu));
  2610. ret |= get_user(r4.rt_window, &(ur4->rt_window));
  2611. ret |= get_user(r4.rt_irtt, &(ur4->rt_irtt));
  2612. ret |= get_user(rtdev, &(ur4->rt_dev));
  2613. if (rtdev) {
  2614. ret |= copy_from_user(devname, compat_ptr(rtdev), 15);
  2615. r4.rt_dev = (char __user __force *)devname;
  2616. devname[15] = 0;
  2617. } else
  2618. r4.rt_dev = NULL;
  2619. r = (void *) &r4;
  2620. }
  2621. if (ret) {
  2622. ret = -EFAULT;
  2623. goto out;
  2624. }
  2625. set_fs(KERNEL_DS);
  2626. ret = sock_do_ioctl(net, sock, cmd, (unsigned long) r);
  2627. set_fs(old_fs);
  2628. out:
  2629. return ret;
  2630. }
  2631. /* Since old style bridge ioctl's endup using SIOCDEVPRIVATE
  2632. * for some operations; this forces use of the newer bridge-utils that
  2633. * use compatible ioctls
  2634. */
  2635. static int old_bridge_ioctl(compat_ulong_t __user *argp)
  2636. {
  2637. compat_ulong_t tmp;
  2638. if (get_user(tmp, argp))
  2639. return -EFAULT;
  2640. if (tmp == BRCTL_GET_VERSION)
  2641. return BRCTL_VERSION + 1;
  2642. return -EINVAL;
  2643. }
  2644. static int compat_sock_ioctl_trans(struct file *file, struct socket *sock,
  2645. unsigned int cmd, unsigned long arg)
  2646. {
  2647. void __user *argp = compat_ptr(arg);
  2648. struct sock *sk = sock->sk;
  2649. struct net *net = sock_net(sk);
  2650. if (cmd >= SIOCDEVPRIVATE && cmd <= (SIOCDEVPRIVATE + 15))
  2651. return compat_ifr_data_ioctl(net, cmd, argp);
  2652. switch (cmd) {
  2653. case SIOCSIFBR:
  2654. case SIOCGIFBR:
  2655. return old_bridge_ioctl(argp);
  2656. case SIOCGIFCONF:
  2657. return compat_dev_ifconf(net, argp);
  2658. case SIOCETHTOOL:
  2659. return ethtool_ioctl(net, argp);
  2660. case SIOCWANDEV:
  2661. return compat_siocwandev(net, argp);
  2662. case SIOCGIFMAP:
  2663. case SIOCSIFMAP:
  2664. return compat_sioc_ifmap(net, cmd, argp);
  2665. case SIOCADDRT:
  2666. case SIOCDELRT:
  2667. return routing_ioctl(net, sock, cmd, argp);
  2668. case SIOCGSTAMP:
  2669. return do_siocgstamp(net, sock, cmd, argp);
  2670. case SIOCGSTAMPNS:
  2671. return do_siocgstampns(net, sock, cmd, argp);
  2672. case SIOCBONDSLAVEINFOQUERY:
  2673. case SIOCBONDINFOQUERY:
  2674. case SIOCSHWTSTAMP:
  2675. case SIOCGHWTSTAMP:
  2676. return compat_ifr_data_ioctl(net, cmd, argp);
  2677. case FIOSETOWN:
  2678. case SIOCSPGRP:
  2679. case FIOGETOWN:
  2680. case SIOCGPGRP:
  2681. case SIOCBRADDBR:
  2682. case SIOCBRDELBR:
  2683. case SIOCGIFVLAN:
  2684. case SIOCSIFVLAN:
  2685. case SIOCADDDLCI:
  2686. case SIOCDELDLCI:
  2687. case SIOCGSKNS:
  2688. return sock_ioctl(file, cmd, arg);
  2689. case SIOCGIFFLAGS:
  2690. case SIOCSIFFLAGS:
  2691. case SIOCGIFMETRIC:
  2692. case SIOCSIFMETRIC:
  2693. case SIOCGIFMTU:
  2694. case SIOCSIFMTU:
  2695. case SIOCGIFMEM:
  2696. case SIOCSIFMEM:
  2697. case SIOCGIFHWADDR:
  2698. case SIOCSIFHWADDR:
  2699. case SIOCADDMULTI:
  2700. case SIOCDELMULTI:
  2701. case SIOCGIFINDEX:
  2702. case SIOCGIFADDR:
  2703. case SIOCSIFADDR:
  2704. case SIOCSIFHWBROADCAST:
  2705. case SIOCDIFADDR:
  2706. case SIOCGIFBRDADDR:
  2707. case SIOCSIFBRDADDR:
  2708. case SIOCGIFDSTADDR:
  2709. case SIOCSIFDSTADDR:
  2710. case SIOCGIFNETMASK:
  2711. case SIOCSIFNETMASK:
  2712. case SIOCSIFPFLAGS:
  2713. case SIOCGIFPFLAGS:
  2714. case SIOCGIFTXQLEN:
  2715. case SIOCSIFTXQLEN:
  2716. case SIOCBRADDIF:
  2717. case SIOCBRDELIF:
  2718. case SIOCSIFNAME:
  2719. case SIOCGMIIPHY:
  2720. case SIOCGMIIREG:
  2721. case SIOCSMIIREG:
  2722. case SIOCSARP:
  2723. case SIOCGARP:
  2724. case SIOCDARP:
  2725. case SIOCATMARK:
  2726. case SIOCBONDENSLAVE:
  2727. case SIOCBONDRELEASE:
  2728. case SIOCBONDSETHWADDR:
  2729. case SIOCBONDCHANGEACTIVE:
  2730. case SIOCGIFNAME:
  2731. return sock_do_ioctl(net, sock, cmd, arg);
  2732. }
  2733. return -ENOIOCTLCMD;
  2734. }
  2735. static long compat_sock_ioctl(struct file *file, unsigned int cmd,
  2736. unsigned long arg)
  2737. {
  2738. struct socket *sock = file->private_data;
  2739. int ret = -ENOIOCTLCMD;
  2740. struct sock *sk;
  2741. struct net *net;
  2742. sk = sock->sk;
  2743. net = sock_net(sk);
  2744. if (sock->ops->compat_ioctl)
  2745. ret = sock->ops->compat_ioctl(sock, cmd, arg);
  2746. if (ret == -ENOIOCTLCMD &&
  2747. (cmd >= SIOCIWFIRST && cmd <= SIOCIWLAST))
  2748. ret = compat_wext_handle_ioctl(net, cmd, arg);
  2749. if (ret == -ENOIOCTLCMD)
  2750. ret = compat_sock_ioctl_trans(file, sock, cmd, arg);
  2751. return ret;
  2752. }
  2753. #endif
  2754. int kernel_bind(struct socket *sock, struct sockaddr *addr, int addrlen)
  2755. {
  2756. return sock->ops->bind(sock, addr, addrlen);
  2757. }
  2758. EXPORT_SYMBOL(kernel_bind);
  2759. int kernel_listen(struct socket *sock, int backlog)
  2760. {
  2761. return sock->ops->listen(sock, backlog);
  2762. }
  2763. EXPORT_SYMBOL(kernel_listen);
  2764. int kernel_accept(struct socket *sock, struct socket **newsock, int flags)
  2765. {
  2766. struct sock *sk = sock->sk;
  2767. int err;
  2768. err = sock_create_lite(sk->sk_family, sk->sk_type, sk->sk_protocol,
  2769. newsock);
  2770. if (err < 0)
  2771. goto done;
  2772. err = sock->ops->accept(sock, *newsock, flags, true);
  2773. if (err < 0) {
  2774. sock_release(*newsock);
  2775. *newsock = NULL;
  2776. goto done;
  2777. }
  2778. (*newsock)->ops = sock->ops;
  2779. __module_get((*newsock)->ops->owner);
  2780. done:
  2781. return err;
  2782. }
  2783. EXPORT_SYMBOL(kernel_accept);
  2784. int kernel_connect(struct socket *sock, struct sockaddr *addr, int addrlen,
  2785. int flags)
  2786. {
  2787. return sock->ops->connect(sock, addr, addrlen, flags);
  2788. }
  2789. EXPORT_SYMBOL(kernel_connect);
  2790. int kernel_getsockname(struct socket *sock, struct sockaddr *addr)
  2791. {
  2792. return sock->ops->getname(sock, addr, 0);
  2793. }
  2794. EXPORT_SYMBOL(kernel_getsockname);
  2795. int kernel_getpeername(struct socket *sock, struct sockaddr *addr)
  2796. {
  2797. return sock->ops->getname(sock, addr, 1);
  2798. }
  2799. EXPORT_SYMBOL(kernel_getpeername);
  2800. int kernel_getsockopt(struct socket *sock, int level, int optname,
  2801. char *optval, int *optlen)
  2802. {
  2803. mm_segment_t oldfs = get_fs();
  2804. char __user *uoptval;
  2805. int __user *uoptlen;
  2806. int err;
  2807. uoptval = (char __user __force *) optval;
  2808. uoptlen = (int __user __force *) optlen;
  2809. set_fs(KERNEL_DS);
  2810. if (level == SOL_SOCKET)
  2811. err = sock_getsockopt(sock, level, optname, uoptval, uoptlen);
  2812. else
  2813. err = sock->ops->getsockopt(sock, level, optname, uoptval,
  2814. uoptlen);
  2815. set_fs(oldfs);
  2816. return err;
  2817. }
  2818. EXPORT_SYMBOL(kernel_getsockopt);
  2819. int kernel_setsockopt(struct socket *sock, int level, int optname,
  2820. char *optval, unsigned int optlen)
  2821. {
  2822. mm_segment_t oldfs = get_fs();
  2823. char __user *uoptval;
  2824. int err;
  2825. uoptval = (char __user __force *) optval;
  2826. set_fs(KERNEL_DS);
  2827. if (level == SOL_SOCKET)
  2828. err = sock_setsockopt(sock, level, optname, uoptval, optlen);
  2829. else
  2830. err = sock->ops->setsockopt(sock, level, optname, uoptval,
  2831. optlen);
  2832. set_fs(oldfs);
  2833. return err;
  2834. }
  2835. EXPORT_SYMBOL(kernel_setsockopt);
  2836. int kernel_sendpage(struct socket *sock, struct page *page, int offset,
  2837. size_t size, int flags)
  2838. {
  2839. if (sock->ops->sendpage)
  2840. return sock->ops->sendpage(sock, page, offset, size, flags);
  2841. return sock_no_sendpage(sock, page, offset, size, flags);
  2842. }
  2843. EXPORT_SYMBOL(kernel_sendpage);
  2844. int kernel_sendpage_locked(struct sock *sk, struct page *page, int offset,
  2845. size_t size, int flags)
  2846. {
  2847. struct socket *sock = sk->sk_socket;
  2848. if (sock->ops->sendpage_locked)
  2849. return sock->ops->sendpage_locked(sk, page, offset, size,
  2850. flags);
  2851. return sock_no_sendpage_locked(sk, page, offset, size, flags);
  2852. }
  2853. EXPORT_SYMBOL(kernel_sendpage_locked);
  2854. int kernel_sock_shutdown(struct socket *sock, enum sock_shutdown_cmd how)
  2855. {
  2856. return sock->ops->shutdown(sock, how);
  2857. }
  2858. EXPORT_SYMBOL(kernel_sock_shutdown);
  2859. /* This routine returns the IP overhead imposed by a socket i.e.
  2860. * the length of the underlying IP header, depending on whether
  2861. * this is an IPv4 or IPv6 socket and the length from IP options turned
  2862. * on at the socket. Assumes that the caller has a lock on the socket.
  2863. */
  2864. u32 kernel_sock_ip_overhead(struct sock *sk)
  2865. {
  2866. struct inet_sock *inet;
  2867. struct ip_options_rcu *opt;
  2868. u32 overhead = 0;
  2869. #if IS_ENABLED(CONFIG_IPV6)
  2870. struct ipv6_pinfo *np;
  2871. struct ipv6_txoptions *optv6 = NULL;
  2872. #endif /* IS_ENABLED(CONFIG_IPV6) */
  2873. if (!sk)
  2874. return overhead;
  2875. switch (sk->sk_family) {
  2876. case AF_INET:
  2877. inet = inet_sk(sk);
  2878. overhead += sizeof(struct iphdr);
  2879. opt = rcu_dereference_protected(inet->inet_opt,
  2880. sock_owned_by_user(sk));
  2881. if (opt)
  2882. overhead += opt->opt.optlen;
  2883. return overhead;
  2884. #if IS_ENABLED(CONFIG_IPV6)
  2885. case AF_INET6:
  2886. np = inet6_sk(sk);
  2887. overhead += sizeof(struct ipv6hdr);
  2888. if (np)
  2889. optv6 = rcu_dereference_protected(np->opt,
  2890. sock_owned_by_user(sk));
  2891. if (optv6)
  2892. overhead += (optv6->opt_flen + optv6->opt_nflen);
  2893. return overhead;
  2894. #endif /* IS_ENABLED(CONFIG_IPV6) */
  2895. default: /* Returns 0 overhead if the socket is not ipv4 or ipv6 */
  2896. return overhead;
  2897. }
  2898. }
  2899. EXPORT_SYMBOL(kernel_sock_ip_overhead);