xref: /linux/net/socket.c (revision 44b11a56c3fb1596542fcdea190c1bd7bd67b05b)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * NET		An implementation of the SOCKET network access protocol.
4  *
5  * Version:	@(#)socket.c	1.1.93	18/02/95
6  *
7  * Authors:	Orest Zborowski, <obz@Kodak.COM>
8  *		Ross Biro
9  *		Fred N. van Kempen, <waltje@uWalt.NL.Mugnet.ORG>
10  *
11  * Fixes:
12  *		Anonymous	:	NOTSOCK/BADF cleanup. Error fix in
13  *					shutdown()
14  *		Alan Cox	:	verify_area() fixes
15  *		Alan Cox	:	Removed DDI
16  *		Jonathan Kamens	:	SOCK_DGRAM reconnect bug
17  *		Alan Cox	:	Moved a load of checks to the very
18  *					top level.
19  *		Alan Cox	:	Move address structures to/from user
20  *					mode above the protocol layers.
21  *		Rob Janssen	:	Allow 0 length sends.
22  *		Alan Cox	:	Asynchronous I/O support (cribbed from the
23  *					tty drivers).
24  *		Niibe Yutaka	:	Asynchronous I/O for writes (4.4BSD style)
25  *		Jeff Uphoff	:	Made max number of sockets command-line
26  *					configurable.
27  *		Matti Aarnio	:	Made the number of sockets dynamic,
28  *					to be allocated when needed, and mr.
29  *					Uphoff's max is used as max to be
30  *					allowed to allocate.
31  *		Linus		:	Argh. removed all the socket allocation
32  *					altogether: it's in the inode now.
33  *		Alan Cox	:	Made sock_alloc()/sock_release() public
34  *					for NetROM and future kernel nfsd type
35  *					stuff.
36  *		Alan Cox	:	sendmsg/recvmsg basics.
37  *		Tom Dyas	:	Export net symbols.
38  *		Marcin Dalecki	:	Fixed problems with CONFIG_NET="n".
39  *		Alan Cox	:	Added thread locking to sys_* calls
40  *					for sockets. May have errors at the
41  *					moment.
42  *		Kevin Buhr	:	Fixed the dumb errors in the above.
43  *		Andi Kleen	:	Some small cleanups, optimizations,
44  *					and fixed a copy_from_user() bug.
45  *		Tigran Aivazian	:	sys_send(args) calls sys_sendto(args, NULL, 0)
46  *		Tigran Aivazian	:	Made listen(2) backlog sanity checks
47  *					protocol-independent
48  *
49  *	This module is effectively the top level interface to the BSD socket
50  *	paradigm.
51  *
52  *	Based upon Swansea University Computer Society NET3.039
53  */
54 
55 #include <linux/bpf-cgroup.h>
56 #include <linux/ethtool.h>
57 #include <linux/mm.h>
58 #include <linux/socket.h>
59 #include <linux/file.h>
60 #include <linux/splice.h>
61 #include <linux/net.h>
62 #include <linux/interrupt.h>
63 #include <linux/thread_info.h>
64 #include <linux/rcupdate.h>
65 #include <linux/netdevice.h>
66 #include <linux/proc_fs.h>
67 #include <linux/seq_file.h>
68 #include <linux/mutex.h>
69 #include <linux/if_bridge.h>
70 #include <linux/if_vlan.h>
71 #include <linux/ptp_classify.h>
72 #include <linux/init.h>
73 #include <linux/poll.h>
74 #include <linux/cache.h>
75 #include <linux/module.h>
76 #include <linux/highmem.h>
77 #include <linux/mount.h>
78 #include <linux/pseudo_fs.h>
79 #include <linux/security.h>
80 #include <linux/syscalls.h>
81 #include <linux/compat.h>
82 #include <linux/kmod.h>
83 #include <linux/audit.h>
84 #include <linux/wireless.h>
85 #include <linux/nsproxy.h>
86 #include <linux/magic.h>
87 #include <linux/slab.h>
88 #include <linux/xattr.h>
89 #include <linux/nospec.h>
90 #include <linux/indirect_call_wrapper.h>
91 #include <linux/io_uring/net.h>
92 
93 #include <linux/uaccess.h>
94 #include <asm/unistd.h>
95 
96 #include <net/compat.h>
97 #include <net/wext.h>
98 #include <net/cls_cgroup.h>
99 
100 #include <net/sock.h>
101 #include <linux/netfilter.h>
102 
103 #include <linux/if_tun.h>
104 #include <linux/ipv6_route.h>
105 #include <linux/route.h>
106 #include <linux/termios.h>
107 #include <linux/sockios.h>
108 #include <net/busy_poll.h>
109 #include <linux/errqueue.h>
110 #include <linux/ptp_clock_kernel.h>
111 #include <trace/events/sock.h>
112 
113 #ifdef CONFIG_NET_RX_BUSY_POLL
114 unsigned int sysctl_net_busy_read __read_mostly;
115 unsigned int sysctl_net_busy_poll __read_mostly;
116 #endif
117 
118 static ssize_t sock_read_iter(struct kiocb *iocb, struct iov_iter *to);
119 static ssize_t sock_write_iter(struct kiocb *iocb, struct iov_iter *from);
120 static int sock_mmap(struct file *file, struct vm_area_struct *vma);
121 
122 static int sock_close(struct inode *inode, struct file *file);
123 static __poll_t sock_poll(struct file *file,
124 			      struct poll_table_struct *wait);
125 static long sock_ioctl(struct file *file, unsigned int cmd, unsigned long arg);
126 #ifdef CONFIG_COMPAT
127 static long compat_sock_ioctl(struct file *file,
128 			      unsigned int cmd, unsigned long arg);
129 #endif
130 static int sock_fasync(int fd, struct file *filp, int on);
131 static ssize_t sock_splice_read(struct file *file, loff_t *ppos,
132 				struct pipe_inode_info *pipe, size_t len,
133 				unsigned int flags);
134 static void sock_splice_eof(struct file *file);
135 
136 #ifdef CONFIG_PROC_FS
137 static void sock_show_fdinfo(struct seq_file *m, struct file *f)
138 {
139 	struct socket *sock = f->private_data;
140 	const struct proto_ops *ops = READ_ONCE(sock->ops);
141 
142 	if (ops->show_fdinfo)
143 		ops->show_fdinfo(m, sock);
144 }
145 #else
146 #define sock_show_fdinfo NULL
147 #endif
148 
149 /*
150  *	Socket files have a set of 'special' operations as well as the generic file ones. These don't appear
151  *	in the operation structures but are done directly via the socketcall() multiplexor.
152  */
153 
154 static const struct file_operations socket_file_ops = {
155 	.owner =	THIS_MODULE,
156 	.read_iter =	sock_read_iter,
157 	.write_iter =	sock_write_iter,
158 	.poll =		sock_poll,
159 	.unlocked_ioctl = sock_ioctl,
160 #ifdef CONFIG_COMPAT
161 	.compat_ioctl = compat_sock_ioctl,
162 #endif
163 	.uring_cmd =    io_uring_cmd_sock,
164 	.mmap =		sock_mmap,
165 	.release =	sock_close,
166 	.fasync =	sock_fasync,
167 	.splice_write = splice_to_socket,
168 	.splice_read =	sock_splice_read,
169 	.splice_eof =	sock_splice_eof,
170 	.show_fdinfo =	sock_show_fdinfo,
171 };
172 
173 static const char * const pf_family_names[] = {
174 	[PF_UNSPEC]	= "PF_UNSPEC",
175 	[PF_UNIX]	= "PF_UNIX/PF_LOCAL",
176 	[PF_INET]	= "PF_INET",
177 	[PF_AX25]	= "PF_AX25",
178 	[PF_IPX]	= "PF_IPX",
179 	[PF_APPLETALK]	= "PF_APPLETALK",
180 	[PF_NETROM]	= "PF_NETROM",
181 	[PF_BRIDGE]	= "PF_BRIDGE",
182 	[PF_ATMPVC]	= "PF_ATMPVC",
183 	[PF_X25]	= "PF_X25",
184 	[PF_INET6]	= "PF_INET6",
185 	[PF_ROSE]	= "PF_ROSE",
186 	[PF_DECnet]	= "PF_DECnet",
187 	[PF_NETBEUI]	= "PF_NETBEUI",
188 	[PF_SECURITY]	= "PF_SECURITY",
189 	[PF_KEY]	= "PF_KEY",
190 	[PF_NETLINK]	= "PF_NETLINK/PF_ROUTE",
191 	[PF_PACKET]	= "PF_PACKET",
192 	[PF_ASH]	= "PF_ASH",
193 	[PF_ECONET]	= "PF_ECONET",
194 	[PF_ATMSVC]	= "PF_ATMSVC",
195 	[PF_RDS]	= "PF_RDS",
196 	[PF_SNA]	= "PF_SNA",
197 	[PF_IRDA]	= "PF_IRDA",
198 	[PF_PPPOX]	= "PF_PPPOX",
199 	[PF_WANPIPE]	= "PF_WANPIPE",
200 	[PF_LLC]	= "PF_LLC",
201 	[PF_IB]		= "PF_IB",
202 	[PF_MPLS]	= "PF_MPLS",
203 	[PF_CAN]	= "PF_CAN",
204 	[PF_TIPC]	= "PF_TIPC",
205 	[PF_BLUETOOTH]	= "PF_BLUETOOTH",
206 	[PF_IUCV]	= "PF_IUCV",
207 	[PF_RXRPC]	= "PF_RXRPC",
208 	[PF_ISDN]	= "PF_ISDN",
209 	[PF_PHONET]	= "PF_PHONET",
210 	[PF_IEEE802154]	= "PF_IEEE802154",
211 	[PF_CAIF]	= "PF_CAIF",
212 	[PF_ALG]	= "PF_ALG",
213 	[PF_NFC]	= "PF_NFC",
214 	[PF_VSOCK]	= "PF_VSOCK",
215 	[PF_KCM]	= "PF_KCM",
216 	[PF_QIPCRTR]	= "PF_QIPCRTR",
217 	[PF_SMC]	= "PF_SMC",
218 	[PF_XDP]	= "PF_XDP",
219 	[PF_MCTP]	= "PF_MCTP",
220 };
221 
222 /*
223  *	The protocol list. Each protocol is registered in here.
224  */
225 
226 static DEFINE_SPINLOCK(net_family_lock);
227 static const struct net_proto_family __rcu *net_families[NPROTO] __read_mostly;
228 
229 /*
230  * Support routines.
231  * Move socket addresses back and forth across the kernel/user
232  * divide and look after the messy bits.
233  */
234 
235 /**
236  *	move_addr_to_kernel	-	copy a socket address into kernel space
237  *	@uaddr: Address in user space
238  *	@kaddr: Address in kernel space
239  *	@ulen: Length in user space
240  *
241  *	The address is copied into kernel space. If the provided address is
242  *	too long an error code of -EINVAL is returned. If the copy gives
243  *	invalid addresses -EFAULT is returned. On a success 0 is returned.
244  */
245 
246 int move_addr_to_kernel(void __user *uaddr, int ulen, struct sockaddr_storage *kaddr)
247 {
248 	if (ulen < 0 || ulen > sizeof(struct sockaddr_storage))
249 		return -EINVAL;
250 	if (ulen == 0)
251 		return 0;
252 	if (copy_from_user(kaddr, uaddr, ulen))
253 		return -EFAULT;
254 	return audit_sockaddr(ulen, kaddr);
255 }
256 
257 /**
258  *	move_addr_to_user	-	copy an address to user space
259  *	@kaddr: kernel space address
260  *	@klen: length of address in kernel
261  *	@uaddr: user space address
262  *	@ulen: pointer to user length field
263  *
264  *	The value pointed to by ulen on entry is the buffer length available.
265  *	This is overwritten with the buffer space used. -EINVAL is returned
266  *	if an overlong buffer is specified or a negative buffer size. -EFAULT
267  *	is returned if either the buffer or the length field are not
268  *	accessible.
269  *	After copying the data up to the limit the user specifies, the true
270  *	length of the data is written over the length limit the user
271  *	specified. Zero is returned for a success.
272  */
273 
274 static int move_addr_to_user(struct sockaddr_storage *kaddr, int klen,
275 			     void __user *uaddr, int __user *ulen)
276 {
277 	int err;
278 	int len;
279 
280 	BUG_ON(klen > sizeof(struct sockaddr_storage));
281 	err = get_user(len, ulen);
282 	if (err)
283 		return err;
284 	if (len > klen)
285 		len = klen;
286 	if (len < 0)
287 		return -EINVAL;
288 	if (len) {
289 		if (audit_sockaddr(klen, kaddr))
290 			return -ENOMEM;
291 		if (copy_to_user(uaddr, kaddr, len))
292 			return -EFAULT;
293 	}
294 	/*
295 	 *      "fromlen shall refer to the value before truncation.."
296 	 *                      1003.1g
297 	 */
298 	return __put_user(klen, ulen);
299 }
300 
301 static struct kmem_cache *sock_inode_cachep __ro_after_init;
302 
303 static struct inode *sock_alloc_inode(struct super_block *sb)
304 {
305 	struct socket_alloc *ei;
306 
307 	ei = alloc_inode_sb(sb, sock_inode_cachep, GFP_KERNEL);
308 	if (!ei)
309 		return NULL;
310 	init_waitqueue_head(&ei->socket.wq.wait);
311 	ei->socket.wq.fasync_list = NULL;
312 	ei->socket.wq.flags = 0;
313 
314 	ei->socket.state = SS_UNCONNECTED;
315 	ei->socket.flags = 0;
316 	ei->socket.ops = NULL;
317 	ei->socket.sk = NULL;
318 	ei->socket.file = NULL;
319 
320 	return &ei->vfs_inode;
321 }
322 
323 static void sock_free_inode(struct inode *inode)
324 {
325 	struct socket_alloc *ei;
326 
327 	ei = container_of(inode, struct socket_alloc, vfs_inode);
328 	kmem_cache_free(sock_inode_cachep, ei);
329 }
330 
331 static void init_once(void *foo)
332 {
333 	struct socket_alloc *ei = (struct socket_alloc *)foo;
334 
335 	inode_init_once(&ei->vfs_inode);
336 }
337 
338 static void init_inodecache(void)
339 {
340 	sock_inode_cachep = kmem_cache_create("sock_inode_cache",
341 					      sizeof(struct socket_alloc),
342 					      0,
343 					      (SLAB_HWCACHE_ALIGN |
344 					       SLAB_RECLAIM_ACCOUNT |
345 					       SLAB_ACCOUNT),
346 					      init_once);
347 	BUG_ON(sock_inode_cachep == NULL);
348 }
349 
350 static const struct super_operations sockfs_ops = {
351 	.alloc_inode	= sock_alloc_inode,
352 	.free_inode	= sock_free_inode,
353 	.statfs		= simple_statfs,
354 };
355 
356 /*
357  * sockfs_dname() is called from d_path().
358  */
359 static char *sockfs_dname(struct dentry *dentry, char *buffer, int buflen)
360 {
361 	return dynamic_dname(buffer, buflen, "socket:[%lu]",
362 				d_inode(dentry)->i_ino);
363 }
364 
365 static const struct dentry_operations sockfs_dentry_operations = {
366 	.d_dname  = sockfs_dname,
367 };
368 
369 static int sockfs_xattr_get(const struct xattr_handler *handler,
370 			    struct dentry *dentry, struct inode *inode,
371 			    const char *suffix, void *value, size_t size)
372 {
373 	if (value) {
374 		if (dentry->d_name.len + 1 > size)
375 			return -ERANGE;
376 		memcpy(value, dentry->d_name.name, dentry->d_name.len + 1);
377 	}
378 	return dentry->d_name.len + 1;
379 }
380 
381 #define XATTR_SOCKPROTONAME_SUFFIX "sockprotoname"
382 #define XATTR_NAME_SOCKPROTONAME (XATTR_SYSTEM_PREFIX XATTR_SOCKPROTONAME_SUFFIX)
383 #define XATTR_NAME_SOCKPROTONAME_LEN (sizeof(XATTR_NAME_SOCKPROTONAME)-1)
384 
385 static const struct xattr_handler sockfs_xattr_handler = {
386 	.name = XATTR_NAME_SOCKPROTONAME,
387 	.get = sockfs_xattr_get,
388 };
389 
390 static int sockfs_security_xattr_set(const struct xattr_handler *handler,
391 				     struct mnt_idmap *idmap,
392 				     struct dentry *dentry, struct inode *inode,
393 				     const char *suffix, const void *value,
394 				     size_t size, int flags)
395 {
396 	/* Handled by LSM. */
397 	return -EAGAIN;
398 }
399 
400 static const struct xattr_handler sockfs_security_xattr_handler = {
401 	.prefix = XATTR_SECURITY_PREFIX,
402 	.set = sockfs_security_xattr_set,
403 };
404 
405 static const struct xattr_handler * const sockfs_xattr_handlers[] = {
406 	&sockfs_xattr_handler,
407 	&sockfs_security_xattr_handler,
408 	NULL
409 };
410 
411 static int sockfs_init_fs_context(struct fs_context *fc)
412 {
413 	struct pseudo_fs_context *ctx = init_pseudo(fc, SOCKFS_MAGIC);
414 	if (!ctx)
415 		return -ENOMEM;
416 	ctx->ops = &sockfs_ops;
417 	ctx->dops = &sockfs_dentry_operations;
418 	ctx->xattr = sockfs_xattr_handlers;
419 	return 0;
420 }
421 
422 static struct vfsmount *sock_mnt __read_mostly;
423 
424 static struct file_system_type sock_fs_type = {
425 	.name =		"sockfs",
426 	.init_fs_context = sockfs_init_fs_context,
427 	.kill_sb =	kill_anon_super,
428 };
429 
430 /*
431  *	Obtains the first available file descriptor and sets it up for use.
432  *
433  *	These functions create file structures and maps them to fd space
434  *	of the current process. On success it returns file descriptor
435  *	and file struct implicitly stored in sock->file.
436  *	Note that another thread may close file descriptor before we return
437  *	from this function. We use the fact that now we do not refer
438  *	to socket after mapping. If one day we will need it, this
439  *	function will increment ref. count on file by 1.
440  *
441  *	In any case returned fd MAY BE not valid!
442  *	This race condition is unavoidable
443  *	with shared fd spaces, we cannot solve it inside kernel,
444  *	but we take care of internal coherence yet.
445  */
446 
447 /**
448  *	sock_alloc_file - Bind a &socket to a &file
449  *	@sock: socket
450  *	@flags: file status flags
451  *	@dname: protocol name
452  *
453  *	Returns the &file bound with @sock, implicitly storing it
454  *	in sock->file. If dname is %NULL, sets to "".
455  *
456  *	On failure @sock is released, and an ERR pointer is returned.
457  *
458  *	This function uses GFP_KERNEL internally.
459  */
460 
461 struct file *sock_alloc_file(struct socket *sock, int flags, const char *dname)
462 {
463 	struct file *file;
464 
465 	if (!dname)
466 		dname = sock->sk ? sock->sk->sk_prot_creator->name : "";
467 
468 	file = alloc_file_pseudo(SOCK_INODE(sock), sock_mnt, dname,
469 				O_RDWR | (flags & O_NONBLOCK),
470 				&socket_file_ops);
471 	if (IS_ERR(file)) {
472 		sock_release(sock);
473 		return file;
474 	}
475 
476 	file->f_mode |= FMODE_NOWAIT;
477 	sock->file = file;
478 	file->private_data = sock;
479 	stream_open(SOCK_INODE(sock), file);
480 	return file;
481 }
482 EXPORT_SYMBOL(sock_alloc_file);
483 
484 static int sock_map_fd(struct socket *sock, int flags)
485 {
486 	struct file *newfile;
487 	int fd = get_unused_fd_flags(flags);
488 	if (unlikely(fd < 0)) {
489 		sock_release(sock);
490 		return fd;
491 	}
492 
493 	newfile = sock_alloc_file(sock, flags, NULL);
494 	if (!IS_ERR(newfile)) {
495 		fd_install(fd, newfile);
496 		return fd;
497 	}
498 
499 	put_unused_fd(fd);
500 	return PTR_ERR(newfile);
501 }
502 
503 /**
504  *	sock_from_file - Return the &socket bounded to @file.
505  *	@file: file
506  *
507  *	On failure returns %NULL.
508  */
509 
510 struct socket *sock_from_file(struct file *file)
511 {
512 	if (likely(file->f_op == &socket_file_ops))
513 		return file->private_data;	/* set in sock_alloc_file */
514 
515 	return NULL;
516 }
517 EXPORT_SYMBOL(sock_from_file);
518 
519 /**
520  *	sockfd_lookup - Go from a file number to its socket slot
521  *	@fd: file handle
522  *	@err: pointer to an error code return
523  *
524  *	The file handle passed in is locked and the socket it is bound
525  *	to is returned. If an error occurs the err pointer is overwritten
526  *	with a negative errno code and NULL is returned. The function checks
527  *	for both invalid handles and passing a handle which is not a socket.
528  *
529  *	On a success the socket object pointer is returned.
530  */
531 
532 struct socket *sockfd_lookup(int fd, int *err)
533 {
534 	struct file *file;
535 	struct socket *sock;
536 
537 	file = fget(fd);
538 	if (!file) {
539 		*err = -EBADF;
540 		return NULL;
541 	}
542 
543 	sock = sock_from_file(file);
544 	if (!sock) {
545 		*err = -ENOTSOCK;
546 		fput(file);
547 	}
548 	return sock;
549 }
550 EXPORT_SYMBOL(sockfd_lookup);
551 
552 static ssize_t sockfs_listxattr(struct dentry *dentry, char *buffer,
553 				size_t size)
554 {
555 	ssize_t len;
556 	ssize_t used = 0;
557 
558 	len = security_inode_listsecurity(d_inode(dentry), buffer, size);
559 	if (len < 0)
560 		return len;
561 	used += len;
562 	if (buffer) {
563 		if (size < used)
564 			return -ERANGE;
565 		buffer += len;
566 	}
567 
568 	len = (XATTR_NAME_SOCKPROTONAME_LEN + 1);
569 	used += len;
570 	if (buffer) {
571 		if (size < used)
572 			return -ERANGE;
573 		memcpy(buffer, XATTR_NAME_SOCKPROTONAME, len);
574 		buffer += len;
575 	}
576 
577 	return used;
578 }
579 
580 static int sockfs_setattr(struct mnt_idmap *idmap,
581 			  struct dentry *dentry, struct iattr *iattr)
582 {
583 	int err = simple_setattr(&nop_mnt_idmap, dentry, iattr);
584 
585 	if (!err && (iattr->ia_valid & ATTR_UID)) {
586 		struct socket *sock = SOCKET_I(d_inode(dentry));
587 
588 		if (sock->sk)
589 			sock->sk->sk_uid = iattr->ia_uid;
590 		else
591 			err = -ENOENT;
592 	}
593 
594 	return err;
595 }
596 
597 static const struct inode_operations sockfs_inode_ops = {
598 	.listxattr = sockfs_listxattr,
599 	.setattr = sockfs_setattr,
600 };
601 
602 /**
603  *	sock_alloc - allocate a socket
604  *
605  *	Allocate a new inode and socket object. The two are bound together
606  *	and initialised. The socket is then returned. If we are out of inodes
607  *	NULL is returned. This functions uses GFP_KERNEL internally.
608  */
609 
610 struct socket *sock_alloc(void)
611 {
612 	struct inode *inode;
613 	struct socket *sock;
614 
615 	inode = new_inode_pseudo(sock_mnt->mnt_sb);
616 	if (!inode)
617 		return NULL;
618 
619 	sock = SOCKET_I(inode);
620 
621 	inode->i_ino = get_next_ino();
622 	inode->i_mode = S_IFSOCK | S_IRWXUGO;
623 	inode->i_uid = current_fsuid();
624 	inode->i_gid = current_fsgid();
625 	inode->i_op = &sockfs_inode_ops;
626 
627 	return sock;
628 }
629 EXPORT_SYMBOL(sock_alloc);
630 
631 static void __sock_release(struct socket *sock, struct inode *inode)
632 {
633 	const struct proto_ops *ops = READ_ONCE(sock->ops);
634 
635 	if (ops) {
636 		struct module *owner = ops->owner;
637 
638 		if (inode)
639 			inode_lock(inode);
640 		ops->release(sock);
641 		sock->sk = NULL;
642 		if (inode)
643 			inode_unlock(inode);
644 		sock->ops = NULL;
645 		module_put(owner);
646 	}
647 
648 	if (sock->wq.fasync_list)
649 		pr_err("%s: fasync list not empty!\n", __func__);
650 
651 	if (!sock->file) {
652 		iput(SOCK_INODE(sock));
653 		return;
654 	}
655 	sock->file = NULL;
656 }
657 
658 /**
659  *	sock_release - close a socket
660  *	@sock: socket to close
661  *
662  *	The socket is released from the protocol stack if it has a release
663  *	callback, and the inode is then released if the socket is bound to
664  *	an inode not a file.
665  */
666 void sock_release(struct socket *sock)
667 {
668 	__sock_release(sock, NULL);
669 }
670 EXPORT_SYMBOL(sock_release);
671 
672 void __sock_tx_timestamp(__u16 tsflags, __u8 *tx_flags)
673 {
674 	u8 flags = *tx_flags;
675 
676 	if (tsflags & SOF_TIMESTAMPING_TX_HARDWARE) {
677 		flags |= SKBTX_HW_TSTAMP;
678 
679 		/* PTP hardware clocks can provide a free running cycle counter
680 		 * as a time base for virtual clocks. Tell driver to use the
681 		 * free running cycle counter for timestamp if socket is bound
682 		 * to virtual clock.
683 		 */
684 		if (tsflags & SOF_TIMESTAMPING_BIND_PHC)
685 			flags |= SKBTX_HW_TSTAMP_USE_CYCLES;
686 	}
687 
688 	if (tsflags & SOF_TIMESTAMPING_TX_SOFTWARE)
689 		flags |= SKBTX_SW_TSTAMP;
690 
691 	if (tsflags & SOF_TIMESTAMPING_TX_SCHED)
692 		flags |= SKBTX_SCHED_TSTAMP;
693 
694 	*tx_flags = flags;
695 }
696 EXPORT_SYMBOL(__sock_tx_timestamp);
697 
698 INDIRECT_CALLABLE_DECLARE(int inet_sendmsg(struct socket *, struct msghdr *,
699 					   size_t));
700 INDIRECT_CALLABLE_DECLARE(int inet6_sendmsg(struct socket *, struct msghdr *,
701 					    size_t));
702 
703 static noinline void call_trace_sock_send_length(struct sock *sk, int ret,
704 						 int flags)
705 {
706 	trace_sock_send_length(sk, ret, 0);
707 }
708 
709 static inline int sock_sendmsg_nosec(struct socket *sock, struct msghdr *msg)
710 {
711 	int ret = INDIRECT_CALL_INET(READ_ONCE(sock->ops)->sendmsg, inet6_sendmsg,
712 				     inet_sendmsg, sock, msg,
713 				     msg_data_left(msg));
714 	BUG_ON(ret == -EIOCBQUEUED);
715 
716 	if (trace_sock_send_length_enabled())
717 		call_trace_sock_send_length(sock->sk, ret, 0);
718 	return ret;
719 }
720 
721 static int __sock_sendmsg(struct socket *sock, struct msghdr *msg)
722 {
723 	int err = security_socket_sendmsg(sock, msg,
724 					  msg_data_left(msg));
725 
726 	return err ?: sock_sendmsg_nosec(sock, msg);
727 }
728 
729 /**
730  *	sock_sendmsg - send a message through @sock
731  *	@sock: socket
732  *	@msg: message to send
733  *
734  *	Sends @msg through @sock, passing through LSM.
735  *	Returns the number of bytes sent, or an error code.
736  */
737 int sock_sendmsg(struct socket *sock, struct msghdr *msg)
738 {
739 	struct sockaddr_storage *save_addr = (struct sockaddr_storage *)msg->msg_name;
740 	struct sockaddr_storage address;
741 	int save_len = msg->msg_namelen;
742 	int ret;
743 
744 	if (msg->msg_name) {
745 		memcpy(&address, msg->msg_name, msg->msg_namelen);
746 		msg->msg_name = &address;
747 	}
748 
749 	ret = __sock_sendmsg(sock, msg);
750 	msg->msg_name = save_addr;
751 	msg->msg_namelen = save_len;
752 
753 	return ret;
754 }
755 EXPORT_SYMBOL(sock_sendmsg);
756 
757 /**
758  *	kernel_sendmsg - send a message through @sock (kernel-space)
759  *	@sock: socket
760  *	@msg: message header
761  *	@vec: kernel vec
762  *	@num: vec array length
763  *	@size: total message data size
764  *
765  *	Builds the message data with @vec and sends it through @sock.
766  *	Returns the number of bytes sent, or an error code.
767  */
768 
769 int kernel_sendmsg(struct socket *sock, struct msghdr *msg,
770 		   struct kvec *vec, size_t num, size_t size)
771 {
772 	iov_iter_kvec(&msg->msg_iter, ITER_SOURCE, vec, num, size);
773 	return sock_sendmsg(sock, msg);
774 }
775 EXPORT_SYMBOL(kernel_sendmsg);
776 
777 /**
778  *	kernel_sendmsg_locked - send a message through @sock (kernel-space)
779  *	@sk: sock
780  *	@msg: message header
781  *	@vec: output s/g array
782  *	@num: output s/g array length
783  *	@size: total message data size
784  *
785  *	Builds the message data with @vec and sends it through @sock.
786  *	Returns the number of bytes sent, or an error code.
787  *	Caller must hold @sk.
788  */
789 
790 int kernel_sendmsg_locked(struct sock *sk, struct msghdr *msg,
791 			  struct kvec *vec, size_t num, size_t size)
792 {
793 	struct socket *sock = sk->sk_socket;
794 	const struct proto_ops *ops = READ_ONCE(sock->ops);
795 
796 	if (!ops->sendmsg_locked)
797 		return sock_no_sendmsg_locked(sk, msg, size);
798 
799 	iov_iter_kvec(&msg->msg_iter, ITER_SOURCE, vec, num, size);
800 
801 	return ops->sendmsg_locked(sk, msg, msg_data_left(msg));
802 }
803 EXPORT_SYMBOL(kernel_sendmsg_locked);
804 
805 static bool skb_is_err_queue(const struct sk_buff *skb)
806 {
807 	/* pkt_type of skbs enqueued on the error queue are set to
808 	 * PACKET_OUTGOING in skb_set_err_queue(). This is only safe to do
809 	 * in recvmsg, since skbs received on a local socket will never
810 	 * have a pkt_type of PACKET_OUTGOING.
811 	 */
812 	return skb->pkt_type == PACKET_OUTGOING;
813 }
814 
815 /* On transmit, software and hardware timestamps are returned independently.
816  * As the two skb clones share the hardware timestamp, which may be updated
817  * before the software timestamp is received, a hardware TX timestamp may be
818  * returned only if there is no software TX timestamp. Ignore false software
819  * timestamps, which may be made in the __sock_recv_timestamp() call when the
820  * option SO_TIMESTAMP_OLD(NS) is enabled on the socket, even when the skb has a
821  * hardware timestamp.
822  */
823 static bool skb_is_swtx_tstamp(const struct sk_buff *skb, int false_tstamp)
824 {
825 	return skb->tstamp && !false_tstamp && skb_is_err_queue(skb);
826 }
827 
828 static ktime_t get_timestamp(struct sock *sk, struct sk_buff *skb, int *if_index)
829 {
830 	bool cycles = READ_ONCE(sk->sk_tsflags) & SOF_TIMESTAMPING_BIND_PHC;
831 	struct skb_shared_hwtstamps *shhwtstamps = skb_hwtstamps(skb);
832 	struct net_device *orig_dev;
833 	ktime_t hwtstamp;
834 
835 	rcu_read_lock();
836 	orig_dev = dev_get_by_napi_id(skb_napi_id(skb));
837 	if (orig_dev) {
838 		*if_index = orig_dev->ifindex;
839 		hwtstamp = netdev_get_tstamp(orig_dev, shhwtstamps, cycles);
840 	} else {
841 		hwtstamp = shhwtstamps->hwtstamp;
842 	}
843 	rcu_read_unlock();
844 
845 	return hwtstamp;
846 }
847 
848 static void put_ts_pktinfo(struct msghdr *msg, struct sk_buff *skb,
849 			   int if_index)
850 {
851 	struct scm_ts_pktinfo ts_pktinfo;
852 	struct net_device *orig_dev;
853 
854 	if (!skb_mac_header_was_set(skb))
855 		return;
856 
857 	memset(&ts_pktinfo, 0, sizeof(ts_pktinfo));
858 
859 	if (!if_index) {
860 		rcu_read_lock();
861 		orig_dev = dev_get_by_napi_id(skb_napi_id(skb));
862 		if (orig_dev)
863 			if_index = orig_dev->ifindex;
864 		rcu_read_unlock();
865 	}
866 	ts_pktinfo.if_index = if_index;
867 
868 	ts_pktinfo.pkt_length = skb->len - skb_mac_offset(skb);
869 	put_cmsg(msg, SOL_SOCKET, SCM_TIMESTAMPING_PKTINFO,
870 		 sizeof(ts_pktinfo), &ts_pktinfo);
871 }
872 
873 /*
874  * called from sock_recv_timestamp() if sock_flag(sk, SOCK_RCVTSTAMP)
875  */
876 void __sock_recv_timestamp(struct msghdr *msg, struct sock *sk,
877 	struct sk_buff *skb)
878 {
879 	int need_software_tstamp = sock_flag(sk, SOCK_RCVTSTAMP);
880 	int new_tstamp = sock_flag(sk, SOCK_TSTAMP_NEW);
881 	struct scm_timestamping_internal tss;
882 	int empty = 1, false_tstamp = 0;
883 	struct skb_shared_hwtstamps *shhwtstamps =
884 		skb_hwtstamps(skb);
885 	int if_index;
886 	ktime_t hwtstamp;
887 	u32 tsflags;
888 
889 	/* Race occurred between timestamp enabling and packet
890 	   receiving.  Fill in the current time for now. */
891 	if (need_software_tstamp && skb->tstamp == 0) {
892 		__net_timestamp(skb);
893 		false_tstamp = 1;
894 	}
895 
896 	if (need_software_tstamp) {
897 		if (!sock_flag(sk, SOCK_RCVTSTAMPNS)) {
898 			if (new_tstamp) {
899 				struct __kernel_sock_timeval tv;
900 
901 				skb_get_new_timestamp(skb, &tv);
902 				put_cmsg(msg, SOL_SOCKET, SO_TIMESTAMP_NEW,
903 					 sizeof(tv), &tv);
904 			} else {
905 				struct __kernel_old_timeval tv;
906 
907 				skb_get_timestamp(skb, &tv);
908 				put_cmsg(msg, SOL_SOCKET, SO_TIMESTAMP_OLD,
909 					 sizeof(tv), &tv);
910 			}
911 		} else {
912 			if (new_tstamp) {
913 				struct __kernel_timespec ts;
914 
915 				skb_get_new_timestampns(skb, &ts);
916 				put_cmsg(msg, SOL_SOCKET, SO_TIMESTAMPNS_NEW,
917 					 sizeof(ts), &ts);
918 			} else {
919 				struct __kernel_old_timespec ts;
920 
921 				skb_get_timestampns(skb, &ts);
922 				put_cmsg(msg, SOL_SOCKET, SO_TIMESTAMPNS_OLD,
923 					 sizeof(ts), &ts);
924 			}
925 		}
926 	}
927 
928 	memset(&tss, 0, sizeof(tss));
929 	tsflags = READ_ONCE(sk->sk_tsflags);
930 	if ((tsflags & SOF_TIMESTAMPING_SOFTWARE &&
931 	     (tsflags & SOF_TIMESTAMPING_RX_SOFTWARE ||
932 	      skb_is_err_queue(skb) ||
933 	      !(tsflags & SOF_TIMESTAMPING_OPT_RX_FILTER))) &&
934 	    ktime_to_timespec64_cond(skb->tstamp, tss.ts + 0))
935 		empty = 0;
936 	if (shhwtstamps &&
937 	    (tsflags & SOF_TIMESTAMPING_RAW_HARDWARE &&
938 	     (tsflags & SOF_TIMESTAMPING_RX_HARDWARE ||
939 	      skb_is_err_queue(skb) ||
940 	      !(tsflags & SOF_TIMESTAMPING_OPT_RX_FILTER))) &&
941 	    !skb_is_swtx_tstamp(skb, false_tstamp)) {
942 		if_index = 0;
943 		if (skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP_NETDEV)
944 			hwtstamp = get_timestamp(sk, skb, &if_index);
945 		else
946 			hwtstamp = shhwtstamps->hwtstamp;
947 
948 		if (tsflags & SOF_TIMESTAMPING_BIND_PHC)
949 			hwtstamp = ptp_convert_timestamp(&hwtstamp,
950 							 READ_ONCE(sk->sk_bind_phc));
951 
952 		if (ktime_to_timespec64_cond(hwtstamp, tss.ts + 2)) {
953 			empty = 0;
954 
955 			if ((tsflags & SOF_TIMESTAMPING_OPT_PKTINFO) &&
956 			    !skb_is_err_queue(skb))
957 				put_ts_pktinfo(msg, skb, if_index);
958 		}
959 	}
960 	if (!empty) {
961 		if (sock_flag(sk, SOCK_TSTAMP_NEW))
962 			put_cmsg_scm_timestamping64(msg, &tss);
963 		else
964 			put_cmsg_scm_timestamping(msg, &tss);
965 
966 		if (skb_is_err_queue(skb) && skb->len &&
967 		    SKB_EXT_ERR(skb)->opt_stats)
968 			put_cmsg(msg, SOL_SOCKET, SCM_TIMESTAMPING_OPT_STATS,
969 				 skb->len, skb->data);
970 	}
971 }
972 EXPORT_SYMBOL_GPL(__sock_recv_timestamp);
973 
974 #ifdef CONFIG_WIRELESS
975 void __sock_recv_wifi_status(struct msghdr *msg, struct sock *sk,
976 	struct sk_buff *skb)
977 {
978 	int ack;
979 
980 	if (!sock_flag(sk, SOCK_WIFI_STATUS))
981 		return;
982 	if (!skb->wifi_acked_valid)
983 		return;
984 
985 	ack = skb->wifi_acked;
986 
987 	put_cmsg(msg, SOL_SOCKET, SCM_WIFI_STATUS, sizeof(ack), &ack);
988 }
989 EXPORT_SYMBOL_GPL(__sock_recv_wifi_status);
990 #endif
991 
992 static inline void sock_recv_drops(struct msghdr *msg, struct sock *sk,
993 				   struct sk_buff *skb)
994 {
995 	if (sock_flag(sk, SOCK_RXQ_OVFL) && skb && SOCK_SKB_CB(skb)->dropcount)
996 		put_cmsg(msg, SOL_SOCKET, SO_RXQ_OVFL,
997 			sizeof(__u32), &SOCK_SKB_CB(skb)->dropcount);
998 }
999 
1000 static void sock_recv_mark(struct msghdr *msg, struct sock *sk,
1001 			   struct sk_buff *skb)
1002 {
1003 	if (sock_flag(sk, SOCK_RCVMARK) && skb) {
1004 		/* We must use a bounce buffer for CONFIG_HARDENED_USERCOPY=y */
1005 		__u32 mark = skb->mark;
1006 
1007 		put_cmsg(msg, SOL_SOCKET, SO_MARK, sizeof(__u32), &mark);
1008 	}
1009 }
1010 
1011 void __sock_recv_cmsgs(struct msghdr *msg, struct sock *sk,
1012 		       struct sk_buff *skb)
1013 {
1014 	sock_recv_timestamp(msg, sk, skb);
1015 	sock_recv_drops(msg, sk, skb);
1016 	sock_recv_mark(msg, sk, skb);
1017 }
1018 EXPORT_SYMBOL_GPL(__sock_recv_cmsgs);
1019 
1020 INDIRECT_CALLABLE_DECLARE(int inet_recvmsg(struct socket *, struct msghdr *,
1021 					   size_t, int));
1022 INDIRECT_CALLABLE_DECLARE(int inet6_recvmsg(struct socket *, struct msghdr *,
1023 					    size_t, int));
1024 
1025 static noinline void call_trace_sock_recv_length(struct sock *sk, int ret, int flags)
1026 {
1027 	trace_sock_recv_length(sk, ret, flags);
1028 }
1029 
1030 static inline int sock_recvmsg_nosec(struct socket *sock, struct msghdr *msg,
1031 				     int flags)
1032 {
1033 	int ret = INDIRECT_CALL_INET(READ_ONCE(sock->ops)->recvmsg,
1034 				     inet6_recvmsg,
1035 				     inet_recvmsg, sock, msg,
1036 				     msg_data_left(msg), flags);
1037 	if (trace_sock_recv_length_enabled())
1038 		call_trace_sock_recv_length(sock->sk, ret, flags);
1039 	return ret;
1040 }
1041 
1042 /**
1043  *	sock_recvmsg - receive a message from @sock
1044  *	@sock: socket
1045  *	@msg: message to receive
1046  *	@flags: message flags
1047  *
1048  *	Receives @msg from @sock, passing through LSM. Returns the total number
1049  *	of bytes received, or an error.
1050  */
1051 int sock_recvmsg(struct socket *sock, struct msghdr *msg, int flags)
1052 {
1053 	int err = security_socket_recvmsg(sock, msg, msg_data_left(msg), flags);
1054 
1055 	return err ?: sock_recvmsg_nosec(sock, msg, flags);
1056 }
1057 EXPORT_SYMBOL(sock_recvmsg);
1058 
1059 /**
1060  *	kernel_recvmsg - Receive a message from a socket (kernel space)
1061  *	@sock: The socket to receive the message from
1062  *	@msg: Received message
1063  *	@vec: Input s/g array for message data
1064  *	@num: Size of input s/g array
1065  *	@size: Number of bytes to read
1066  *	@flags: Message flags (MSG_DONTWAIT, etc...)
1067  *
1068  *	On return the msg structure contains the scatter/gather array passed in the
1069  *	vec argument. The array is modified so that it consists of the unfilled
1070  *	portion of the original array.
1071  *
1072  *	The returned value is the total number of bytes received, or an error.
1073  */
1074 
1075 int kernel_recvmsg(struct socket *sock, struct msghdr *msg,
1076 		   struct kvec *vec, size_t num, size_t size, int flags)
1077 {
1078 	msg->msg_control_is_user = false;
1079 	iov_iter_kvec(&msg->msg_iter, ITER_DEST, vec, num, size);
1080 	return sock_recvmsg(sock, msg, flags);
1081 }
1082 EXPORT_SYMBOL(kernel_recvmsg);
1083 
1084 static ssize_t sock_splice_read(struct file *file, loff_t *ppos,
1085 				struct pipe_inode_info *pipe, size_t len,
1086 				unsigned int flags)
1087 {
1088 	struct socket *sock = file->private_data;
1089 	const struct proto_ops *ops;
1090 
1091 	ops = READ_ONCE(sock->ops);
1092 	if (unlikely(!ops->splice_read))
1093 		return copy_splice_read(file, ppos, pipe, len, flags);
1094 
1095 	return ops->splice_read(sock, ppos, pipe, len, flags);
1096 }
1097 
1098 static void sock_splice_eof(struct file *file)
1099 {
1100 	struct socket *sock = file->private_data;
1101 	const struct proto_ops *ops;
1102 
1103 	ops = READ_ONCE(sock->ops);
1104 	if (ops->splice_eof)
1105 		ops->splice_eof(sock);
1106 }
1107 
1108 static ssize_t sock_read_iter(struct kiocb *iocb, struct iov_iter *to)
1109 {
1110 	struct file *file = iocb->ki_filp;
1111 	struct socket *sock = file->private_data;
1112 	struct msghdr msg = {.msg_iter = *to,
1113 			     .msg_iocb = iocb};
1114 	ssize_t res;
1115 
1116 	if (file->f_flags & O_NONBLOCK || (iocb->ki_flags & IOCB_NOWAIT))
1117 		msg.msg_flags = MSG_DONTWAIT;
1118 
1119 	if (iocb->ki_pos != 0)
1120 		return -ESPIPE;
1121 
1122 	if (!iov_iter_count(to))	/* Match SYS5 behaviour */
1123 		return 0;
1124 
1125 	res = sock_recvmsg(sock, &msg, msg.msg_flags);
1126 	*to = msg.msg_iter;
1127 	return res;
1128 }
1129 
1130 static ssize_t sock_write_iter(struct kiocb *iocb, struct iov_iter *from)
1131 {
1132 	struct file *file = iocb->ki_filp;
1133 	struct socket *sock = file->private_data;
1134 	struct msghdr msg = {.msg_iter = *from,
1135 			     .msg_iocb = iocb};
1136 	ssize_t res;
1137 
1138 	if (iocb->ki_pos != 0)
1139 		return -ESPIPE;
1140 
1141 	if (file->f_flags & O_NONBLOCK || (iocb->ki_flags & IOCB_NOWAIT))
1142 		msg.msg_flags = MSG_DONTWAIT;
1143 
1144 	if (sock->type == SOCK_SEQPACKET)
1145 		msg.msg_flags |= MSG_EOR;
1146 
1147 	res = __sock_sendmsg(sock, &msg);
1148 	*from = msg.msg_iter;
1149 	return res;
1150 }
1151 
1152 /*
1153  * Atomic setting of ioctl hooks to avoid race
1154  * with module unload.
1155  */
1156 
1157 static DEFINE_MUTEX(br_ioctl_mutex);
1158 static int (*br_ioctl_hook)(struct net *net, struct net_bridge *br,
1159 			    unsigned int cmd, struct ifreq *ifr,
1160 			    void __user *uarg);
1161 
1162 void brioctl_set(int (*hook)(struct net *net, struct net_bridge *br,
1163 			     unsigned int cmd, struct ifreq *ifr,
1164 			     void __user *uarg))
1165 {
1166 	mutex_lock(&br_ioctl_mutex);
1167 	br_ioctl_hook = hook;
1168 	mutex_unlock(&br_ioctl_mutex);
1169 }
1170 EXPORT_SYMBOL(brioctl_set);
1171 
1172 int br_ioctl_call(struct net *net, struct net_bridge *br, unsigned int cmd,
1173 		  struct ifreq *ifr, void __user *uarg)
1174 {
1175 	int err = -ENOPKG;
1176 
1177 	if (!br_ioctl_hook)
1178 		request_module("bridge");
1179 
1180 	mutex_lock(&br_ioctl_mutex);
1181 	if (br_ioctl_hook)
1182 		err = br_ioctl_hook(net, br, cmd, ifr, uarg);
1183 	mutex_unlock(&br_ioctl_mutex);
1184 
1185 	return err;
1186 }
1187 
1188 static DEFINE_MUTEX(vlan_ioctl_mutex);
1189 static int (*vlan_ioctl_hook) (struct net *, void __user *arg);
1190 
1191 void vlan_ioctl_set(int (*hook) (struct net *, void __user *))
1192 {
1193 	mutex_lock(&vlan_ioctl_mutex);
1194 	vlan_ioctl_hook = hook;
1195 	mutex_unlock(&vlan_ioctl_mutex);
1196 }
1197 EXPORT_SYMBOL(vlan_ioctl_set);
1198 
1199 static long sock_do_ioctl(struct net *net, struct socket *sock,
1200 			  unsigned int cmd, unsigned long arg)
1201 {
1202 	const struct proto_ops *ops = READ_ONCE(sock->ops);
1203 	struct ifreq ifr;
1204 	bool need_copyout;
1205 	int err;
1206 	void __user *argp = (void __user *)arg;
1207 	void __user *data;
1208 
1209 	err = ops->ioctl(sock, cmd, arg);
1210 
1211 	/*
1212 	 * If this ioctl is unknown try to hand it down
1213 	 * to the NIC driver.
1214 	 */
1215 	if (err != -ENOIOCTLCMD)
1216 		return err;
1217 
1218 	if (!is_socket_ioctl_cmd(cmd))
1219 		return -ENOTTY;
1220 
1221 	if (get_user_ifreq(&ifr, &data, argp))
1222 		return -EFAULT;
1223 	err = dev_ioctl(net, cmd, &ifr, data, &need_copyout);
1224 	if (!err && need_copyout)
1225 		if (put_user_ifreq(&ifr, argp))
1226 			return -EFAULT;
1227 
1228 	return err;
1229 }
1230 
1231 /*
1232  *	With an ioctl, arg may well be a user mode pointer, but we don't know
1233  *	what to do with it - that's up to the protocol still.
1234  */
1235 
1236 static long sock_ioctl(struct file *file, unsigned cmd, unsigned long arg)
1237 {
1238 	const struct proto_ops  *ops;
1239 	struct socket *sock;
1240 	struct sock *sk;
1241 	void __user *argp = (void __user *)arg;
1242 	int pid, err;
1243 	struct net *net;
1244 
1245 	sock = file->private_data;
1246 	ops = READ_ONCE(sock->ops);
1247 	sk = sock->sk;
1248 	net = sock_net(sk);
1249 	if (unlikely(cmd >= SIOCDEVPRIVATE && cmd <= (SIOCDEVPRIVATE + 15))) {
1250 		struct ifreq ifr;
1251 		void __user *data;
1252 		bool need_copyout;
1253 		if (get_user_ifreq(&ifr, &data, argp))
1254 			return -EFAULT;
1255 		err = dev_ioctl(net, cmd, &ifr, data, &need_copyout);
1256 		if (!err && need_copyout)
1257 			if (put_user_ifreq(&ifr, argp))
1258 				return -EFAULT;
1259 	} else
1260 #ifdef CONFIG_WEXT_CORE
1261 	if (cmd >= SIOCIWFIRST && cmd <= SIOCIWLAST) {
1262 		err = wext_handle_ioctl(net, cmd, argp);
1263 	} else
1264 #endif
1265 		switch (cmd) {
1266 		case FIOSETOWN:
1267 		case SIOCSPGRP:
1268 			err = -EFAULT;
1269 			if (get_user(pid, (int __user *)argp))
1270 				break;
1271 			err = f_setown(sock->file, pid, 1);
1272 			break;
1273 		case FIOGETOWN:
1274 		case SIOCGPGRP:
1275 			err = put_user(f_getown(sock->file),
1276 				       (int __user *)argp);
1277 			break;
1278 		case SIOCGIFBR:
1279 		case SIOCSIFBR:
1280 		case SIOCBRADDBR:
1281 		case SIOCBRDELBR:
1282 			err = br_ioctl_call(net, NULL, cmd, NULL, argp);
1283 			break;
1284 		case SIOCGIFVLAN:
1285 		case SIOCSIFVLAN:
1286 			err = -ENOPKG;
1287 			if (!vlan_ioctl_hook)
1288 				request_module("8021q");
1289 
1290 			mutex_lock(&vlan_ioctl_mutex);
1291 			if (vlan_ioctl_hook)
1292 				err = vlan_ioctl_hook(net, argp);
1293 			mutex_unlock(&vlan_ioctl_mutex);
1294 			break;
1295 		case SIOCGSKNS:
1296 			err = -EPERM;
1297 			if (!ns_capable(net->user_ns, CAP_NET_ADMIN))
1298 				break;
1299 
1300 			err = open_related_ns(&net->ns, get_net_ns);
1301 			break;
1302 		case SIOCGSTAMP_OLD:
1303 		case SIOCGSTAMPNS_OLD:
1304 			if (!ops->gettstamp) {
1305 				err = -ENOIOCTLCMD;
1306 				break;
1307 			}
1308 			err = ops->gettstamp(sock, argp,
1309 					     cmd == SIOCGSTAMP_OLD,
1310 					     !IS_ENABLED(CONFIG_64BIT));
1311 			break;
1312 		case SIOCGSTAMP_NEW:
1313 		case SIOCGSTAMPNS_NEW:
1314 			if (!ops->gettstamp) {
1315 				err = -ENOIOCTLCMD;
1316 				break;
1317 			}
1318 			err = ops->gettstamp(sock, argp,
1319 					     cmd == SIOCGSTAMP_NEW,
1320 					     false);
1321 			break;
1322 
1323 		case SIOCGIFCONF:
1324 			err = dev_ifconf(net, argp);
1325 			break;
1326 
1327 		default:
1328 			err = sock_do_ioctl(net, sock, cmd, arg);
1329 			break;
1330 		}
1331 	return err;
1332 }
1333 
1334 /**
1335  *	sock_create_lite - creates a socket
1336  *	@family: protocol family (AF_INET, ...)
1337  *	@type: communication type (SOCK_STREAM, ...)
1338  *	@protocol: protocol (0, ...)
1339  *	@res: new socket
1340  *
1341  *	Creates a new socket and assigns it to @res, passing through LSM.
1342  *	The new socket initialization is not complete, see kernel_accept().
1343  *	Returns 0 or an error. On failure @res is set to %NULL.
1344  *	This function internally uses GFP_KERNEL.
1345  */
1346 
1347 int sock_create_lite(int family, int type, int protocol, struct socket **res)
1348 {
1349 	int err;
1350 	struct socket *sock = NULL;
1351 
1352 	err = security_socket_create(family, type, protocol, 1);
1353 	if (err)
1354 		goto out;
1355 
1356 	sock = sock_alloc();
1357 	if (!sock) {
1358 		err = -ENOMEM;
1359 		goto out;
1360 	}
1361 
1362 	sock->type = type;
1363 	err = security_socket_post_create(sock, family, type, protocol, 1);
1364 	if (err)
1365 		goto out_release;
1366 
1367 out:
1368 	*res = sock;
1369 	return err;
1370 out_release:
1371 	sock_release(sock);
1372 	sock = NULL;
1373 	goto out;
1374 }
1375 EXPORT_SYMBOL(sock_create_lite);
1376 
1377 /* No kernel lock held - perfect */
1378 static __poll_t sock_poll(struct file *file, poll_table *wait)
1379 {
1380 	struct socket *sock = file->private_data;
1381 	const struct proto_ops *ops = READ_ONCE(sock->ops);
1382 	__poll_t events = poll_requested_events(wait), flag = 0;
1383 
1384 	if (!ops->poll)
1385 		return 0;
1386 
1387 	if (sk_can_busy_loop(sock->sk)) {
1388 		/* poll once if requested by the syscall */
1389 		if (events & POLL_BUSY_LOOP)
1390 			sk_busy_loop(sock->sk, 1);
1391 
1392 		/* if this socket can poll_ll, tell the system call */
1393 		flag = POLL_BUSY_LOOP;
1394 	}
1395 
1396 	return ops->poll(file, sock, wait) | flag;
1397 }
1398 
1399 static int sock_mmap(struct file *file, struct vm_area_struct *vma)
1400 {
1401 	struct socket *sock = file->private_data;
1402 
1403 	return READ_ONCE(sock->ops)->mmap(file, sock, vma);
1404 }
1405 
1406 static int sock_close(struct inode *inode, struct file *filp)
1407 {
1408 	__sock_release(SOCKET_I(inode), inode);
1409 	return 0;
1410 }
1411 
1412 /*
1413  *	Update the socket async list
1414  *
1415  *	Fasync_list locking strategy.
1416  *
1417  *	1. fasync_list is modified only under process context socket lock
1418  *	   i.e. under semaphore.
1419  *	2. fasync_list is used under read_lock(&sk->sk_callback_lock)
1420  *	   or under socket lock
1421  */
1422 
1423 static int sock_fasync(int fd, struct file *filp, int on)
1424 {
1425 	struct socket *sock = filp->private_data;
1426 	struct sock *sk = sock->sk;
1427 	struct socket_wq *wq = &sock->wq;
1428 
1429 	if (sk == NULL)
1430 		return -EINVAL;
1431 
1432 	lock_sock(sk);
1433 	fasync_helper(fd, filp, on, &wq->fasync_list);
1434 
1435 	if (!wq->fasync_list)
1436 		sock_reset_flag(sk, SOCK_FASYNC);
1437 	else
1438 		sock_set_flag(sk, SOCK_FASYNC);
1439 
1440 	release_sock(sk);
1441 	return 0;
1442 }
1443 
1444 /* This function may be called only under rcu_lock */
1445 
1446 int sock_wake_async(struct socket_wq *wq, int how, int band)
1447 {
1448 	if (!wq || !wq->fasync_list)
1449 		return -1;
1450 
1451 	switch (how) {
1452 	case SOCK_WAKE_WAITD:
1453 		if (test_bit(SOCKWQ_ASYNC_WAITDATA, &wq->flags))
1454 			break;
1455 		goto call_kill;
1456 	case SOCK_WAKE_SPACE:
1457 		if (!test_and_clear_bit(SOCKWQ_ASYNC_NOSPACE, &wq->flags))
1458 			break;
1459 		fallthrough;
1460 	case SOCK_WAKE_IO:
1461 call_kill:
1462 		kill_fasync(&wq->fasync_list, SIGIO, band);
1463 		break;
1464 	case SOCK_WAKE_URG:
1465 		kill_fasync(&wq->fasync_list, SIGURG, band);
1466 	}
1467 
1468 	return 0;
1469 }
1470 EXPORT_SYMBOL(sock_wake_async);
1471 
1472 /**
1473  *	__sock_create - creates a socket
1474  *	@net: net namespace
1475  *	@family: protocol family (AF_INET, ...)
1476  *	@type: communication type (SOCK_STREAM, ...)
1477  *	@protocol: protocol (0, ...)
1478  *	@res: new socket
1479  *	@kern: boolean for kernel space sockets
1480  *
1481  *	Creates a new socket and assigns it to @res, passing through LSM.
1482  *	Returns 0 or an error. On failure @res is set to %NULL. @kern must
1483  *	be set to true if the socket resides in kernel space.
1484  *	This function internally uses GFP_KERNEL.
1485  */
1486 
1487 int __sock_create(struct net *net, int family, int type, int protocol,
1488 			 struct socket **res, int kern)
1489 {
1490 	int err;
1491 	struct socket *sock;
1492 	const struct net_proto_family *pf;
1493 
1494 	/*
1495 	 *      Check protocol is in range
1496 	 */
1497 	if (family < 0 || family >= NPROTO)
1498 		return -EAFNOSUPPORT;
1499 	if (type < 0 || type >= SOCK_MAX)
1500 		return -EINVAL;
1501 
1502 	/* Compatibility.
1503 
1504 	   This uglymoron is moved from INET layer to here to avoid
1505 	   deadlock in module load.
1506 	 */
1507 	if (family == PF_INET && type == SOCK_PACKET) {
1508 		pr_info_once("%s uses obsolete (PF_INET,SOCK_PACKET)\n",
1509 			     current->comm);
1510 		family = PF_PACKET;
1511 	}
1512 
1513 	err = security_socket_create(family, type, protocol, kern);
1514 	if (err)
1515 		return err;
1516 
1517 	/*
1518 	 *	Allocate the socket and allow the family to set things up. if
1519 	 *	the protocol is 0, the family is instructed to select an appropriate
1520 	 *	default.
1521 	 */
1522 	sock = sock_alloc();
1523 	if (!sock) {
1524 		net_warn_ratelimited("socket: no more sockets\n");
1525 		return -ENFILE;	/* Not exactly a match, but its the
1526 				   closest posix thing */
1527 	}
1528 
1529 	sock->type = type;
1530 
1531 #ifdef CONFIG_MODULES
1532 	/* Attempt to load a protocol module if the find failed.
1533 	 *
1534 	 * 12/09/1996 Marcin: But! this makes REALLY only sense, if the user
1535 	 * requested real, full-featured networking support upon configuration.
1536 	 * Otherwise module support will break!
1537 	 */
1538 	if (rcu_access_pointer(net_families[family]) == NULL)
1539 		request_module("net-pf-%d", family);
1540 #endif
1541 
1542 	rcu_read_lock();
1543 	pf = rcu_dereference(net_families[family]);
1544 	err = -EAFNOSUPPORT;
1545 	if (!pf)
1546 		goto out_release;
1547 
1548 	/*
1549 	 * We will call the ->create function, that possibly is in a loadable
1550 	 * module, so we have to bump that loadable module refcnt first.
1551 	 */
1552 	if (!try_module_get(pf->owner))
1553 		goto out_release;
1554 
1555 	/* Now protected by module ref count */
1556 	rcu_read_unlock();
1557 
1558 	err = pf->create(net, sock, protocol, kern);
1559 	if (err < 0)
1560 		goto out_module_put;
1561 
1562 	/*
1563 	 * Now to bump the refcnt of the [loadable] module that owns this
1564 	 * socket at sock_release time we decrement its refcnt.
1565 	 */
1566 	if (!try_module_get(sock->ops->owner))
1567 		goto out_module_busy;
1568 
1569 	/*
1570 	 * Now that we're done with the ->create function, the [loadable]
1571 	 * module can have its refcnt decremented
1572 	 */
1573 	module_put(pf->owner);
1574 	err = security_socket_post_create(sock, family, type, protocol, kern);
1575 	if (err)
1576 		goto out_sock_release;
1577 	*res = sock;
1578 
1579 	return 0;
1580 
1581 out_module_busy:
1582 	err = -EAFNOSUPPORT;
1583 out_module_put:
1584 	sock->ops = NULL;
1585 	module_put(pf->owner);
1586 out_sock_release:
1587 	sock_release(sock);
1588 	return err;
1589 
1590 out_release:
1591 	rcu_read_unlock();
1592 	goto out_sock_release;
1593 }
1594 EXPORT_SYMBOL(__sock_create);
1595 
1596 /**
1597  *	sock_create - creates a socket
1598  *	@family: protocol family (AF_INET, ...)
1599  *	@type: communication type (SOCK_STREAM, ...)
1600  *	@protocol: protocol (0, ...)
1601  *	@res: new socket
1602  *
1603  *	A wrapper around __sock_create().
1604  *	Returns 0 or an error. This function internally uses GFP_KERNEL.
1605  */
1606 
1607 int sock_create(int family, int type, int protocol, struct socket **res)
1608 {
1609 	return __sock_create(current->nsproxy->net_ns, family, type, protocol, res, 0);
1610 }
1611 EXPORT_SYMBOL(sock_create);
1612 
1613 /**
1614  *	sock_create_kern - creates a socket (kernel space)
1615  *	@net: net namespace
1616  *	@family: protocol family (AF_INET, ...)
1617  *	@type: communication type (SOCK_STREAM, ...)
1618  *	@protocol: protocol (0, ...)
1619  *	@res: new socket
1620  *
1621  *	A wrapper around __sock_create().
1622  *	Returns 0 or an error. This function internally uses GFP_KERNEL.
1623  */
1624 
1625 int sock_create_kern(struct net *net, int family, int type, int protocol, struct socket **res)
1626 {
1627 	return __sock_create(net, family, type, protocol, res, 1);
1628 }
1629 EXPORT_SYMBOL(sock_create_kern);
1630 
1631 static struct socket *__sys_socket_create(int family, int type, int protocol)
1632 {
1633 	struct socket *sock;
1634 	int retval;
1635 
1636 	/* Check the SOCK_* constants for consistency.  */
1637 	BUILD_BUG_ON(SOCK_CLOEXEC != O_CLOEXEC);
1638 	BUILD_BUG_ON((SOCK_MAX | SOCK_TYPE_MASK) != SOCK_TYPE_MASK);
1639 	BUILD_BUG_ON(SOCK_CLOEXEC & SOCK_TYPE_MASK);
1640 	BUILD_BUG_ON(SOCK_NONBLOCK & SOCK_TYPE_MASK);
1641 
1642 	if ((type & ~SOCK_TYPE_MASK) & ~(SOCK_CLOEXEC | SOCK_NONBLOCK))
1643 		return ERR_PTR(-EINVAL);
1644 	type &= SOCK_TYPE_MASK;
1645 
1646 	retval = sock_create(family, type, protocol, &sock);
1647 	if (retval < 0)
1648 		return ERR_PTR(retval);
1649 
1650 	return sock;
1651 }
1652 
1653 struct file *__sys_socket_file(int family, int type, int protocol)
1654 {
1655 	struct socket *sock;
1656 	int flags;
1657 
1658 	sock = __sys_socket_create(family, type, protocol);
1659 	if (IS_ERR(sock))
1660 		return ERR_CAST(sock);
1661 
1662 	flags = type & ~SOCK_TYPE_MASK;
1663 	if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
1664 		flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
1665 
1666 	return sock_alloc_file(sock, flags, NULL);
1667 }
1668 
1669 /*	A hook for bpf progs to attach to and update socket protocol.
1670  *
1671  *	A static noinline declaration here could cause the compiler to
1672  *	optimize away the function. A global noinline declaration will
1673  *	keep the definition, but may optimize away the callsite.
1674  *	Therefore, __weak is needed to ensure that the call is still
1675  *	emitted, by telling the compiler that we don't know what the
1676  *	function might eventually be.
1677  */
1678 
1679 __bpf_hook_start();
1680 
1681 __weak noinline int update_socket_protocol(int family, int type, int protocol)
1682 {
1683 	return protocol;
1684 }
1685 
1686 __bpf_hook_end();
1687 
1688 int __sys_socket(int family, int type, int protocol)
1689 {
1690 	struct socket *sock;
1691 	int flags;
1692 
1693 	sock = __sys_socket_create(family, type,
1694 				   update_socket_protocol(family, type, protocol));
1695 	if (IS_ERR(sock))
1696 		return PTR_ERR(sock);
1697 
1698 	flags = type & ~SOCK_TYPE_MASK;
1699 	if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
1700 		flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
1701 
1702 	return sock_map_fd(sock, flags & (O_CLOEXEC | O_NONBLOCK));
1703 }
1704 
1705 SYSCALL_DEFINE3(socket, int, family, int, type, int, protocol)
1706 {
1707 	return __sys_socket(family, type, protocol);
1708 }
1709 
1710 /*
1711  *	Create a pair of connected sockets.
1712  */
1713 
1714 int __sys_socketpair(int family, int type, int protocol, int __user *usockvec)
1715 {
1716 	struct socket *sock1, *sock2;
1717 	int fd1, fd2, err;
1718 	struct file *newfile1, *newfile2;
1719 	int flags;
1720 
1721 	flags = type & ~SOCK_TYPE_MASK;
1722 	if (flags & ~(SOCK_CLOEXEC | SOCK_NONBLOCK))
1723 		return -EINVAL;
1724 	type &= SOCK_TYPE_MASK;
1725 
1726 	if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
1727 		flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
1728 
1729 	/*
1730 	 * reserve descriptors and make sure we won't fail
1731 	 * to return them to userland.
1732 	 */
1733 	fd1 = get_unused_fd_flags(flags);
1734 	if (unlikely(fd1 < 0))
1735 		return fd1;
1736 
1737 	fd2 = get_unused_fd_flags(flags);
1738 	if (unlikely(fd2 < 0)) {
1739 		put_unused_fd(fd1);
1740 		return fd2;
1741 	}
1742 
1743 	err = put_user(fd1, &usockvec[0]);
1744 	if (err)
1745 		goto out;
1746 
1747 	err = put_user(fd2, &usockvec[1]);
1748 	if (err)
1749 		goto out;
1750 
1751 	/*
1752 	 * Obtain the first socket and check if the underlying protocol
1753 	 * supports the socketpair call.
1754 	 */
1755 
1756 	err = sock_create(family, type, protocol, &sock1);
1757 	if (unlikely(err < 0))
1758 		goto out;
1759 
1760 	err = sock_create(family, type, protocol, &sock2);
1761 	if (unlikely(err < 0)) {
1762 		sock_release(sock1);
1763 		goto out;
1764 	}
1765 
1766 	err = security_socket_socketpair(sock1, sock2);
1767 	if (unlikely(err)) {
1768 		sock_release(sock2);
1769 		sock_release(sock1);
1770 		goto out;
1771 	}
1772 
1773 	err = READ_ONCE(sock1->ops)->socketpair(sock1, sock2);
1774 	if (unlikely(err < 0)) {
1775 		sock_release(sock2);
1776 		sock_release(sock1);
1777 		goto out;
1778 	}
1779 
1780 	newfile1 = sock_alloc_file(sock1, flags, NULL);
1781 	if (IS_ERR(newfile1)) {
1782 		err = PTR_ERR(newfile1);
1783 		sock_release(sock2);
1784 		goto out;
1785 	}
1786 
1787 	newfile2 = sock_alloc_file(sock2, flags, NULL);
1788 	if (IS_ERR(newfile2)) {
1789 		err = PTR_ERR(newfile2);
1790 		fput(newfile1);
1791 		goto out;
1792 	}
1793 
1794 	audit_fd_pair(fd1, fd2);
1795 
1796 	fd_install(fd1, newfile1);
1797 	fd_install(fd2, newfile2);
1798 	return 0;
1799 
1800 out:
1801 	put_unused_fd(fd2);
1802 	put_unused_fd(fd1);
1803 	return err;
1804 }
1805 
1806 SYSCALL_DEFINE4(socketpair, int, family, int, type, int, protocol,
1807 		int __user *, usockvec)
1808 {
1809 	return __sys_socketpair(family, type, protocol, usockvec);
1810 }
1811 
1812 int __sys_bind_socket(struct socket *sock, struct sockaddr_storage *address,
1813 		      int addrlen)
1814 {
1815 	int err;
1816 
1817 	err = security_socket_bind(sock, (struct sockaddr *)address,
1818 				   addrlen);
1819 	if (!err)
1820 		err = READ_ONCE(sock->ops)->bind(sock,
1821 						 (struct sockaddr *)address,
1822 						 addrlen);
1823 	return err;
1824 }
1825 
1826 /*
1827  *	Bind a name to a socket. Nothing much to do here since it's
1828  *	the protocol's responsibility to handle the local address.
1829  *
1830  *	We move the socket address to kernel space before we call
1831  *	the protocol layer (having also checked the address is ok).
1832  */
1833 
1834 int __sys_bind(int fd, struct sockaddr __user *umyaddr, int addrlen)
1835 {
1836 	struct socket *sock;
1837 	struct sockaddr_storage address;
1838 	CLASS(fd, f)(fd);
1839 	int err;
1840 
1841 	if (fd_empty(f))
1842 		return -EBADF;
1843 	sock = sock_from_file(fd_file(f));
1844 	if (unlikely(!sock))
1845 		return -ENOTSOCK;
1846 
1847 	err = move_addr_to_kernel(umyaddr, addrlen, &address);
1848 	if (unlikely(err))
1849 		return err;
1850 
1851 	return __sys_bind_socket(sock, &address, addrlen);
1852 }
1853 
1854 SYSCALL_DEFINE3(bind, int, fd, struct sockaddr __user *, umyaddr, int, addrlen)
1855 {
1856 	return __sys_bind(fd, umyaddr, addrlen);
1857 }
1858 
1859 /*
1860  *	Perform a listen. Basically, we allow the protocol to do anything
1861  *	necessary for a listen, and if that works, we mark the socket as
1862  *	ready for listening.
1863  */
1864 int __sys_listen_socket(struct socket *sock, int backlog)
1865 {
1866 	int somaxconn, err;
1867 
1868 	somaxconn = READ_ONCE(sock_net(sock->sk)->core.sysctl_somaxconn);
1869 	if ((unsigned int)backlog > somaxconn)
1870 		backlog = somaxconn;
1871 
1872 	err = security_socket_listen(sock, backlog);
1873 	if (!err)
1874 		err = READ_ONCE(sock->ops)->listen(sock, backlog);
1875 	return err;
1876 }
1877 
1878 int __sys_listen(int fd, int backlog)
1879 {
1880 	CLASS(fd, f)(fd);
1881 	struct socket *sock;
1882 
1883 	if (fd_empty(f))
1884 		return -EBADF;
1885 	sock = sock_from_file(fd_file(f));
1886 	if (unlikely(!sock))
1887 		return -ENOTSOCK;
1888 
1889 	return __sys_listen_socket(sock, backlog);
1890 }
1891 
1892 SYSCALL_DEFINE2(listen, int, fd, int, backlog)
1893 {
1894 	return __sys_listen(fd, backlog);
1895 }
1896 
1897 struct file *do_accept(struct file *file, struct proto_accept_arg *arg,
1898 		       struct sockaddr __user *upeer_sockaddr,
1899 		       int __user *upeer_addrlen, int flags)
1900 {
1901 	struct socket *sock, *newsock;
1902 	struct file *newfile;
1903 	int err, len;
1904 	struct sockaddr_storage address;
1905 	const struct proto_ops *ops;
1906 
1907 	sock = sock_from_file(file);
1908 	if (!sock)
1909 		return ERR_PTR(-ENOTSOCK);
1910 
1911 	newsock = sock_alloc();
1912 	if (!newsock)
1913 		return ERR_PTR(-ENFILE);
1914 	ops = READ_ONCE(sock->ops);
1915 
1916 	newsock->type = sock->type;
1917 	newsock->ops = ops;
1918 
1919 	/*
1920 	 * We don't need try_module_get here, as the listening socket (sock)
1921 	 * has the protocol module (sock->ops->owner) held.
1922 	 */
1923 	__module_get(ops->owner);
1924 
1925 	newfile = sock_alloc_file(newsock, flags, sock->sk->sk_prot_creator->name);
1926 	if (IS_ERR(newfile))
1927 		return newfile;
1928 
1929 	err = security_socket_accept(sock, newsock);
1930 	if (err)
1931 		goto out_fd;
1932 
1933 	arg->flags |= sock->file->f_flags;
1934 	err = ops->accept(sock, newsock, arg);
1935 	if (err < 0)
1936 		goto out_fd;
1937 
1938 	if (upeer_sockaddr) {
1939 		len = ops->getname(newsock, (struct sockaddr *)&address, 2);
1940 		if (len < 0) {
1941 			err = -ECONNABORTED;
1942 			goto out_fd;
1943 		}
1944 		err = move_addr_to_user(&address,
1945 					len, upeer_sockaddr, upeer_addrlen);
1946 		if (err < 0)
1947 			goto out_fd;
1948 	}
1949 
1950 	/* File flags are not inherited via accept() unlike another OSes. */
1951 	return newfile;
1952 out_fd:
1953 	fput(newfile);
1954 	return ERR_PTR(err);
1955 }
1956 
1957 static int __sys_accept4_file(struct file *file, struct sockaddr __user *upeer_sockaddr,
1958 			      int __user *upeer_addrlen, int flags)
1959 {
1960 	struct proto_accept_arg arg = { };
1961 	struct file *newfile;
1962 	int newfd;
1963 
1964 	if (flags & ~(SOCK_CLOEXEC | SOCK_NONBLOCK))
1965 		return -EINVAL;
1966 
1967 	if (SOCK_NONBLOCK != O_NONBLOCK && (flags & SOCK_NONBLOCK))
1968 		flags = (flags & ~SOCK_NONBLOCK) | O_NONBLOCK;
1969 
1970 	newfd = get_unused_fd_flags(flags);
1971 	if (unlikely(newfd < 0))
1972 		return newfd;
1973 
1974 	newfile = do_accept(file, &arg, upeer_sockaddr, upeer_addrlen,
1975 			    flags);
1976 	if (IS_ERR(newfile)) {
1977 		put_unused_fd(newfd);
1978 		return PTR_ERR(newfile);
1979 	}
1980 	fd_install(newfd, newfile);
1981 	return newfd;
1982 }
1983 
1984 /*
1985  *	For accept, we attempt to create a new socket, set up the link
1986  *	with the client, wake up the client, then return the new
1987  *	connected fd. We collect the address of the connector in kernel
1988  *	space and move it to user at the very end. This is unclean because
1989  *	we open the socket then return an error.
1990  *
1991  *	1003.1g adds the ability to recvmsg() to query connection pending
1992  *	status to recvmsg. We need to add that support in a way thats
1993  *	clean when we restructure accept also.
1994  */
1995 
1996 int __sys_accept4(int fd, struct sockaddr __user *upeer_sockaddr,
1997 		  int __user *upeer_addrlen, int flags)
1998 {
1999 	CLASS(fd, f)(fd);
2000 
2001 	if (fd_empty(f))
2002 		return -EBADF;
2003 	return __sys_accept4_file(fd_file(f), upeer_sockaddr,
2004 					 upeer_addrlen, flags);
2005 }
2006 
2007 SYSCALL_DEFINE4(accept4, int, fd, struct sockaddr __user *, upeer_sockaddr,
2008 		int __user *, upeer_addrlen, int, flags)
2009 {
2010 	return __sys_accept4(fd, upeer_sockaddr, upeer_addrlen, flags);
2011 }
2012 
2013 SYSCALL_DEFINE3(accept, int, fd, struct sockaddr __user *, upeer_sockaddr,
2014 		int __user *, upeer_addrlen)
2015 {
2016 	return __sys_accept4(fd, upeer_sockaddr, upeer_addrlen, 0);
2017 }
2018 
2019 /*
2020  *	Attempt to connect to a socket with the server address.  The address
2021  *	is in user space so we verify it is OK and move it to kernel space.
2022  *
2023  *	For 1003.1g we need to add clean support for a bind to AF_UNSPEC to
2024  *	break bindings
2025  *
2026  *	NOTE: 1003.1g draft 6.3 is broken with respect to AX.25/NetROM and
2027  *	other SEQPACKET protocols that take time to connect() as it doesn't
2028  *	include the -EINPROGRESS status for such sockets.
2029  */
2030 
2031 int __sys_connect_file(struct file *file, struct sockaddr_storage *address,
2032 		       int addrlen, int file_flags)
2033 {
2034 	struct socket *sock;
2035 	int err;
2036 
2037 	sock = sock_from_file(file);
2038 	if (!sock) {
2039 		err = -ENOTSOCK;
2040 		goto out;
2041 	}
2042 
2043 	err =
2044 	    security_socket_connect(sock, (struct sockaddr *)address, addrlen);
2045 	if (err)
2046 		goto out;
2047 
2048 	err = READ_ONCE(sock->ops)->connect(sock, (struct sockaddr *)address,
2049 				addrlen, sock->file->f_flags | file_flags);
2050 out:
2051 	return err;
2052 }
2053 
2054 int __sys_connect(int fd, struct sockaddr __user *uservaddr, int addrlen)
2055 {
2056 	struct sockaddr_storage address;
2057 	CLASS(fd, f)(fd);
2058 	int ret;
2059 
2060 	if (fd_empty(f))
2061 		return -EBADF;
2062 
2063 	ret = move_addr_to_kernel(uservaddr, addrlen, &address);
2064 	if (ret)
2065 		return ret;
2066 
2067 	return __sys_connect_file(fd_file(f), &address, addrlen, 0);
2068 }
2069 
2070 SYSCALL_DEFINE3(connect, int, fd, struct sockaddr __user *, uservaddr,
2071 		int, addrlen)
2072 {
2073 	return __sys_connect(fd, uservaddr, addrlen);
2074 }
2075 
2076 /*
2077  *	Get the local address ('name') of a socket object. Move the obtained
2078  *	name to user space.
2079  */
2080 
2081 int __sys_getsockname(int fd, struct sockaddr __user *usockaddr,
2082 		      int __user *usockaddr_len)
2083 {
2084 	struct socket *sock;
2085 	struct sockaddr_storage address;
2086 	CLASS(fd, f)(fd);
2087 	int err;
2088 
2089 	if (fd_empty(f))
2090 		return -EBADF;
2091 	sock = sock_from_file(fd_file(f));
2092 	if (unlikely(!sock))
2093 		return -ENOTSOCK;
2094 
2095 	err = security_socket_getsockname(sock);
2096 	if (err)
2097 		return err;
2098 
2099 	err = READ_ONCE(sock->ops)->getname(sock, (struct sockaddr *)&address, 0);
2100 	if (err < 0)
2101 		return err;
2102 
2103 	/* "err" is actually length in this case */
2104 	return move_addr_to_user(&address, err, usockaddr, usockaddr_len);
2105 }
2106 
2107 SYSCALL_DEFINE3(getsockname, int, fd, struct sockaddr __user *, usockaddr,
2108 		int __user *, usockaddr_len)
2109 {
2110 	return __sys_getsockname(fd, usockaddr, usockaddr_len);
2111 }
2112 
2113 /*
2114  *	Get the remote address ('name') of a socket object. Move the obtained
2115  *	name to user space.
2116  */
2117 
2118 int __sys_getpeername(int fd, struct sockaddr __user *usockaddr,
2119 		      int __user *usockaddr_len)
2120 {
2121 	struct socket *sock;
2122 	struct sockaddr_storage address;
2123 	CLASS(fd, f)(fd);
2124 	int err;
2125 
2126 	if (fd_empty(f))
2127 		return -EBADF;
2128 	sock = sock_from_file(fd_file(f));
2129 	if (unlikely(!sock))
2130 		return -ENOTSOCK;
2131 
2132 	err = security_socket_getpeername(sock);
2133 	if (err)
2134 		return err;
2135 
2136 	err = READ_ONCE(sock->ops)->getname(sock, (struct sockaddr *)&address, 1);
2137 	if (err < 0)
2138 		return err;
2139 
2140 	/* "err" is actually length in this case */
2141 	return move_addr_to_user(&address, err, usockaddr, usockaddr_len);
2142 }
2143 
2144 SYSCALL_DEFINE3(getpeername, int, fd, struct sockaddr __user *, usockaddr,
2145 		int __user *, usockaddr_len)
2146 {
2147 	return __sys_getpeername(fd, usockaddr, usockaddr_len);
2148 }
2149 
2150 /*
2151  *	Send a datagram to a given address. We move the address into kernel
2152  *	space and check the user space data area is readable before invoking
2153  *	the protocol.
2154  */
2155 int __sys_sendto(int fd, void __user *buff, size_t len, unsigned int flags,
2156 		 struct sockaddr __user *addr,  int addr_len)
2157 {
2158 	struct socket *sock;
2159 	struct sockaddr_storage address;
2160 	int err;
2161 	struct msghdr msg;
2162 
2163 	err = import_ubuf(ITER_SOURCE, buff, len, &msg.msg_iter);
2164 	if (unlikely(err))
2165 		return err;
2166 
2167 	CLASS(fd, f)(fd);
2168 	if (fd_empty(f))
2169 		return -EBADF;
2170 	sock = sock_from_file(fd_file(f));
2171 	if (unlikely(!sock))
2172 		return -ENOTSOCK;
2173 
2174 	msg.msg_name = NULL;
2175 	msg.msg_control = NULL;
2176 	msg.msg_controllen = 0;
2177 	msg.msg_namelen = 0;
2178 	msg.msg_ubuf = NULL;
2179 	if (addr) {
2180 		err = move_addr_to_kernel(addr, addr_len, &address);
2181 		if (err < 0)
2182 			return err;
2183 		msg.msg_name = (struct sockaddr *)&address;
2184 		msg.msg_namelen = addr_len;
2185 	}
2186 	flags &= ~MSG_INTERNAL_SENDMSG_FLAGS;
2187 	if (sock->file->f_flags & O_NONBLOCK)
2188 		flags |= MSG_DONTWAIT;
2189 	msg.msg_flags = flags;
2190 	return __sock_sendmsg(sock, &msg);
2191 }
2192 
2193 SYSCALL_DEFINE6(sendto, int, fd, void __user *, buff, size_t, len,
2194 		unsigned int, flags, struct sockaddr __user *, addr,
2195 		int, addr_len)
2196 {
2197 	return __sys_sendto(fd, buff, len, flags, addr, addr_len);
2198 }
2199 
2200 /*
2201  *	Send a datagram down a socket.
2202  */
2203 
2204 SYSCALL_DEFINE4(send, int, fd, void __user *, buff, size_t, len,
2205 		unsigned int, flags)
2206 {
2207 	return __sys_sendto(fd, buff, len, flags, NULL, 0);
2208 }
2209 
2210 /*
2211  *	Receive a frame from the socket and optionally record the address of the
2212  *	sender. We verify the buffers are writable and if needed move the
2213  *	sender address from kernel to user space.
2214  */
2215 int __sys_recvfrom(int fd, void __user *ubuf, size_t size, unsigned int flags,
2216 		   struct sockaddr __user *addr, int __user *addr_len)
2217 {
2218 	struct sockaddr_storage address;
2219 	struct msghdr msg = {
2220 		/* Save some cycles and don't copy the address if not needed */
2221 		.msg_name = addr ? (struct sockaddr *)&address : NULL,
2222 	};
2223 	struct socket *sock;
2224 	int err, err2;
2225 
2226 	err = import_ubuf(ITER_DEST, ubuf, size, &msg.msg_iter);
2227 	if (unlikely(err))
2228 		return err;
2229 
2230 	CLASS(fd, f)(fd);
2231 
2232 	if (fd_empty(f))
2233 		return -EBADF;
2234 	sock = sock_from_file(fd_file(f));
2235 	if (unlikely(!sock))
2236 		return -ENOTSOCK;
2237 
2238 	if (sock->file->f_flags & O_NONBLOCK)
2239 		flags |= MSG_DONTWAIT;
2240 	err = sock_recvmsg(sock, &msg, flags);
2241 
2242 	if (err >= 0 && addr != NULL) {
2243 		err2 = move_addr_to_user(&address,
2244 					 msg.msg_namelen, addr, addr_len);
2245 		if (err2 < 0)
2246 			err = err2;
2247 	}
2248 	return err;
2249 }
2250 
2251 SYSCALL_DEFINE6(recvfrom, int, fd, void __user *, ubuf, size_t, size,
2252 		unsigned int, flags, struct sockaddr __user *, addr,
2253 		int __user *, addr_len)
2254 {
2255 	return __sys_recvfrom(fd, ubuf, size, flags, addr, addr_len);
2256 }
2257 
2258 /*
2259  *	Receive a datagram from a socket.
2260  */
2261 
2262 SYSCALL_DEFINE4(recv, int, fd, void __user *, ubuf, size_t, size,
2263 		unsigned int, flags)
2264 {
2265 	return __sys_recvfrom(fd, ubuf, size, flags, NULL, NULL);
2266 }
2267 
2268 static bool sock_use_custom_sol_socket(const struct socket *sock)
2269 {
2270 	return test_bit(SOCK_CUSTOM_SOCKOPT, &sock->flags);
2271 }
2272 
2273 int do_sock_setsockopt(struct socket *sock, bool compat, int level,
2274 		       int optname, sockptr_t optval, int optlen)
2275 {
2276 	const struct proto_ops *ops;
2277 	char *kernel_optval = NULL;
2278 	int err;
2279 
2280 	if (optlen < 0)
2281 		return -EINVAL;
2282 
2283 	err = security_socket_setsockopt(sock, level, optname);
2284 	if (err)
2285 		goto out_put;
2286 
2287 	if (!compat)
2288 		err = BPF_CGROUP_RUN_PROG_SETSOCKOPT(sock->sk, &level, &optname,
2289 						     optval, &optlen,
2290 						     &kernel_optval);
2291 	if (err < 0)
2292 		goto out_put;
2293 	if (err > 0) {
2294 		err = 0;
2295 		goto out_put;
2296 	}
2297 
2298 	if (kernel_optval)
2299 		optval = KERNEL_SOCKPTR(kernel_optval);
2300 	ops = READ_ONCE(sock->ops);
2301 	if (level == SOL_SOCKET && !sock_use_custom_sol_socket(sock))
2302 		err = sock_setsockopt(sock, level, optname, optval, optlen);
2303 	else if (unlikely(!ops->setsockopt))
2304 		err = -EOPNOTSUPP;
2305 	else
2306 		err = ops->setsockopt(sock, level, optname, optval,
2307 					    optlen);
2308 	kfree(kernel_optval);
2309 out_put:
2310 	return err;
2311 }
2312 EXPORT_SYMBOL(do_sock_setsockopt);
2313 
2314 /* Set a socket option. Because we don't know the option lengths we have
2315  * to pass the user mode parameter for the protocols to sort out.
2316  */
2317 int __sys_setsockopt(int fd, int level, int optname, char __user *user_optval,
2318 		     int optlen)
2319 {
2320 	sockptr_t optval = USER_SOCKPTR(user_optval);
2321 	bool compat = in_compat_syscall();
2322 	struct socket *sock;
2323 	CLASS(fd, f)(fd);
2324 
2325 	if (fd_empty(f))
2326 		return -EBADF;
2327 	sock = sock_from_file(fd_file(f));
2328 	if (unlikely(!sock))
2329 		return -ENOTSOCK;
2330 
2331 	return do_sock_setsockopt(sock, compat, level, optname, optval, optlen);
2332 }
2333 
2334 SYSCALL_DEFINE5(setsockopt, int, fd, int, level, int, optname,
2335 		char __user *, optval, int, optlen)
2336 {
2337 	return __sys_setsockopt(fd, level, optname, optval, optlen);
2338 }
2339 
2340 INDIRECT_CALLABLE_DECLARE(bool tcp_bpf_bypass_getsockopt(int level,
2341 							 int optname));
2342 
2343 int do_sock_getsockopt(struct socket *sock, bool compat, int level,
2344 		       int optname, sockptr_t optval, sockptr_t optlen)
2345 {
2346 	int max_optlen __maybe_unused = 0;
2347 	const struct proto_ops *ops;
2348 	int err;
2349 
2350 	err = security_socket_getsockopt(sock, level, optname);
2351 	if (err)
2352 		return err;
2353 
2354 	if (!compat)
2355 		copy_from_sockptr(&max_optlen, optlen, sizeof(int));
2356 
2357 	ops = READ_ONCE(sock->ops);
2358 	if (level == SOL_SOCKET) {
2359 		err = sk_getsockopt(sock->sk, level, optname, optval, optlen);
2360 	} else if (unlikely(!ops->getsockopt)) {
2361 		err = -EOPNOTSUPP;
2362 	} else {
2363 		if (WARN_ONCE(optval.is_kernel || optlen.is_kernel,
2364 			      "Invalid argument type"))
2365 			return -EOPNOTSUPP;
2366 
2367 		err = ops->getsockopt(sock, level, optname, optval.user,
2368 				      optlen.user);
2369 	}
2370 
2371 	if (!compat)
2372 		err = BPF_CGROUP_RUN_PROG_GETSOCKOPT(sock->sk, level, optname,
2373 						     optval, optlen, max_optlen,
2374 						     err);
2375 
2376 	return err;
2377 }
2378 EXPORT_SYMBOL(do_sock_getsockopt);
2379 
2380 /*
2381  *	Get a socket option. Because we don't know the option lengths we have
2382  *	to pass a user mode parameter for the protocols to sort out.
2383  */
2384 int __sys_getsockopt(int fd, int level, int optname, char __user *optval,
2385 		int __user *optlen)
2386 {
2387 	struct socket *sock;
2388 	CLASS(fd, f)(fd);
2389 
2390 	if (fd_empty(f))
2391 		return -EBADF;
2392 	sock = sock_from_file(fd_file(f));
2393 	if (unlikely(!sock))
2394 		return -ENOTSOCK;
2395 
2396 	return do_sock_getsockopt(sock, in_compat_syscall(), level, optname,
2397 				 USER_SOCKPTR(optval), USER_SOCKPTR(optlen));
2398 }
2399 
2400 SYSCALL_DEFINE5(getsockopt, int, fd, int, level, int, optname,
2401 		char __user *, optval, int __user *, optlen)
2402 {
2403 	return __sys_getsockopt(fd, level, optname, optval, optlen);
2404 }
2405 
2406 /*
2407  *	Shutdown a socket.
2408  */
2409 
2410 int __sys_shutdown_sock(struct socket *sock, int how)
2411 {
2412 	int err;
2413 
2414 	err = security_socket_shutdown(sock, how);
2415 	if (!err)
2416 		err = READ_ONCE(sock->ops)->shutdown(sock, how);
2417 
2418 	return err;
2419 }
2420 
2421 int __sys_shutdown(int fd, int how)
2422 {
2423 	struct socket *sock;
2424 	CLASS(fd, f)(fd);
2425 
2426 	if (fd_empty(f))
2427 		return -EBADF;
2428 	sock = sock_from_file(fd_file(f));
2429 	if (unlikely(!sock))
2430 		return -ENOTSOCK;
2431 
2432 	return __sys_shutdown_sock(sock, how);
2433 }
2434 
2435 SYSCALL_DEFINE2(shutdown, int, fd, int, how)
2436 {
2437 	return __sys_shutdown(fd, how);
2438 }
2439 
2440 /* A couple of helpful macros for getting the address of the 32/64 bit
2441  * fields which are the same type (int / unsigned) on our platforms.
2442  */
2443 #define COMPAT_MSG(msg, member)	((MSG_CMSG_COMPAT & flags) ? &msg##_compat->member : &msg->member)
2444 #define COMPAT_NAMELEN(msg)	COMPAT_MSG(msg, msg_namelen)
2445 #define COMPAT_FLAGS(msg)	COMPAT_MSG(msg, msg_flags)
2446 
2447 struct used_address {
2448 	struct sockaddr_storage name;
2449 	unsigned int name_len;
2450 };
2451 
2452 int __copy_msghdr(struct msghdr *kmsg,
2453 		  struct user_msghdr *msg,
2454 		  struct sockaddr __user **save_addr)
2455 {
2456 	ssize_t err;
2457 
2458 	kmsg->msg_control_is_user = true;
2459 	kmsg->msg_get_inq = 0;
2460 	kmsg->msg_control_user = msg->msg_control;
2461 	kmsg->msg_controllen = msg->msg_controllen;
2462 	kmsg->msg_flags = msg->msg_flags;
2463 
2464 	kmsg->msg_namelen = msg->msg_namelen;
2465 	if (!msg->msg_name)
2466 		kmsg->msg_namelen = 0;
2467 
2468 	if (kmsg->msg_namelen < 0)
2469 		return -EINVAL;
2470 
2471 	if (kmsg->msg_namelen > sizeof(struct sockaddr_storage))
2472 		kmsg->msg_namelen = sizeof(struct sockaddr_storage);
2473 
2474 	if (save_addr)
2475 		*save_addr = msg->msg_name;
2476 
2477 	if (msg->msg_name && kmsg->msg_namelen) {
2478 		if (!save_addr) {
2479 			err = move_addr_to_kernel(msg->msg_name,
2480 						  kmsg->msg_namelen,
2481 						  kmsg->msg_name);
2482 			if (err < 0)
2483 				return err;
2484 		}
2485 	} else {
2486 		kmsg->msg_name = NULL;
2487 		kmsg->msg_namelen = 0;
2488 	}
2489 
2490 	if (msg->msg_iovlen > UIO_MAXIOV)
2491 		return -EMSGSIZE;
2492 
2493 	kmsg->msg_iocb = NULL;
2494 	kmsg->msg_ubuf = NULL;
2495 	return 0;
2496 }
2497 
2498 static int copy_msghdr_from_user(struct msghdr *kmsg,
2499 				 struct user_msghdr __user *umsg,
2500 				 struct sockaddr __user **save_addr,
2501 				 struct iovec **iov)
2502 {
2503 	struct user_msghdr msg;
2504 	ssize_t err;
2505 
2506 	if (copy_from_user(&msg, umsg, sizeof(*umsg)))
2507 		return -EFAULT;
2508 
2509 	err = __copy_msghdr(kmsg, &msg, save_addr);
2510 	if (err)
2511 		return err;
2512 
2513 	err = import_iovec(save_addr ? ITER_DEST : ITER_SOURCE,
2514 			    msg.msg_iov, msg.msg_iovlen,
2515 			    UIO_FASTIOV, iov, &kmsg->msg_iter);
2516 	return err < 0 ? err : 0;
2517 }
2518 
2519 static int ____sys_sendmsg(struct socket *sock, struct msghdr *msg_sys,
2520 			   unsigned int flags, struct used_address *used_address,
2521 			   unsigned int allowed_msghdr_flags)
2522 {
2523 	unsigned char ctl[sizeof(struct cmsghdr) + 20]
2524 				__aligned(sizeof(__kernel_size_t));
2525 	/* 20 is size of ipv6_pktinfo */
2526 	unsigned char *ctl_buf = ctl;
2527 	int ctl_len;
2528 	ssize_t err;
2529 
2530 	err = -ENOBUFS;
2531 
2532 	if (msg_sys->msg_controllen > INT_MAX)
2533 		goto out;
2534 	flags |= (msg_sys->msg_flags & allowed_msghdr_flags);
2535 	ctl_len = msg_sys->msg_controllen;
2536 	if ((MSG_CMSG_COMPAT & flags) && ctl_len) {
2537 		err =
2538 		    cmsghdr_from_user_compat_to_kern(msg_sys, sock->sk, ctl,
2539 						     sizeof(ctl));
2540 		if (err)
2541 			goto out;
2542 		ctl_buf = msg_sys->msg_control;
2543 		ctl_len = msg_sys->msg_controllen;
2544 	} else if (ctl_len) {
2545 		BUILD_BUG_ON(sizeof(struct cmsghdr) !=
2546 			     CMSG_ALIGN(sizeof(struct cmsghdr)));
2547 		if (ctl_len > sizeof(ctl)) {
2548 			ctl_buf = sock_kmalloc(sock->sk, ctl_len, GFP_KERNEL);
2549 			if (ctl_buf == NULL)
2550 				goto out;
2551 		}
2552 		err = -EFAULT;
2553 		if (copy_from_user(ctl_buf, msg_sys->msg_control_user, ctl_len))
2554 			goto out_freectl;
2555 		msg_sys->msg_control = ctl_buf;
2556 		msg_sys->msg_control_is_user = false;
2557 	}
2558 	flags &= ~MSG_INTERNAL_SENDMSG_FLAGS;
2559 	msg_sys->msg_flags = flags;
2560 
2561 	if (sock->file->f_flags & O_NONBLOCK)
2562 		msg_sys->msg_flags |= MSG_DONTWAIT;
2563 	/*
2564 	 * If this is sendmmsg() and current destination address is same as
2565 	 * previously succeeded address, omit asking LSM's decision.
2566 	 * used_address->name_len is initialized to UINT_MAX so that the first
2567 	 * destination address never matches.
2568 	 */
2569 	if (used_address && msg_sys->msg_name &&
2570 	    used_address->name_len == msg_sys->msg_namelen &&
2571 	    !memcmp(&used_address->name, msg_sys->msg_name,
2572 		    used_address->name_len)) {
2573 		err = sock_sendmsg_nosec(sock, msg_sys);
2574 		goto out_freectl;
2575 	}
2576 	err = __sock_sendmsg(sock, msg_sys);
2577 	/*
2578 	 * If this is sendmmsg() and sending to current destination address was
2579 	 * successful, remember it.
2580 	 */
2581 	if (used_address && err >= 0) {
2582 		used_address->name_len = msg_sys->msg_namelen;
2583 		if (msg_sys->msg_name)
2584 			memcpy(&used_address->name, msg_sys->msg_name,
2585 			       used_address->name_len);
2586 	}
2587 
2588 out_freectl:
2589 	if (ctl_buf != ctl)
2590 		sock_kfree_s(sock->sk, ctl_buf, ctl_len);
2591 out:
2592 	return err;
2593 }
2594 
2595 static int sendmsg_copy_msghdr(struct msghdr *msg,
2596 			       struct user_msghdr __user *umsg, unsigned flags,
2597 			       struct iovec **iov)
2598 {
2599 	int err;
2600 
2601 	if (flags & MSG_CMSG_COMPAT) {
2602 		struct compat_msghdr __user *msg_compat;
2603 
2604 		msg_compat = (struct compat_msghdr __user *) umsg;
2605 		err = get_compat_msghdr(msg, msg_compat, NULL, iov);
2606 	} else {
2607 		err = copy_msghdr_from_user(msg, umsg, NULL, iov);
2608 	}
2609 	if (err < 0)
2610 		return err;
2611 
2612 	return 0;
2613 }
2614 
2615 static int ___sys_sendmsg(struct socket *sock, struct user_msghdr __user *msg,
2616 			 struct msghdr *msg_sys, unsigned int flags,
2617 			 struct used_address *used_address,
2618 			 unsigned int allowed_msghdr_flags)
2619 {
2620 	struct sockaddr_storage address;
2621 	struct iovec iovstack[UIO_FASTIOV], *iov = iovstack;
2622 	ssize_t err;
2623 
2624 	msg_sys->msg_name = &address;
2625 
2626 	err = sendmsg_copy_msghdr(msg_sys, msg, flags, &iov);
2627 	if (err < 0)
2628 		return err;
2629 
2630 	err = ____sys_sendmsg(sock, msg_sys, flags, used_address,
2631 				allowed_msghdr_flags);
2632 	kfree(iov);
2633 	return err;
2634 }
2635 
2636 /*
2637  *	BSD sendmsg interface
2638  */
2639 long __sys_sendmsg_sock(struct socket *sock, struct msghdr *msg,
2640 			unsigned int flags)
2641 {
2642 	return ____sys_sendmsg(sock, msg, flags, NULL, 0);
2643 }
2644 
2645 long __sys_sendmsg(int fd, struct user_msghdr __user *msg, unsigned int flags,
2646 		   bool forbid_cmsg_compat)
2647 {
2648 	struct msghdr msg_sys;
2649 	struct socket *sock;
2650 
2651 	if (forbid_cmsg_compat && (flags & MSG_CMSG_COMPAT))
2652 		return -EINVAL;
2653 
2654 	CLASS(fd, f)(fd);
2655 
2656 	if (fd_empty(f))
2657 		return -EBADF;
2658 	sock = sock_from_file(fd_file(f));
2659 	if (unlikely(!sock))
2660 		return -ENOTSOCK;
2661 
2662 	return ___sys_sendmsg(sock, msg, &msg_sys, flags, NULL, 0);
2663 }
2664 
2665 SYSCALL_DEFINE3(sendmsg, int, fd, struct user_msghdr __user *, msg, unsigned int, flags)
2666 {
2667 	return __sys_sendmsg(fd, msg, flags, true);
2668 }
2669 
2670 /*
2671  *	Linux sendmmsg interface
2672  */
2673 
2674 int __sys_sendmmsg(int fd, struct mmsghdr __user *mmsg, unsigned int vlen,
2675 		   unsigned int flags, bool forbid_cmsg_compat)
2676 {
2677 	int err, datagrams;
2678 	struct socket *sock;
2679 	struct mmsghdr __user *entry;
2680 	struct compat_mmsghdr __user *compat_entry;
2681 	struct msghdr msg_sys;
2682 	struct used_address used_address;
2683 	unsigned int oflags = flags;
2684 
2685 	if (forbid_cmsg_compat && (flags & MSG_CMSG_COMPAT))
2686 		return -EINVAL;
2687 
2688 	if (vlen > UIO_MAXIOV)
2689 		vlen = UIO_MAXIOV;
2690 
2691 	datagrams = 0;
2692 
2693 	CLASS(fd, f)(fd);
2694 
2695 	if (fd_empty(f))
2696 		return -EBADF;
2697 	sock = sock_from_file(fd_file(f));
2698 	if (unlikely(!sock))
2699 		return -ENOTSOCK;
2700 
2701 	used_address.name_len = UINT_MAX;
2702 	entry = mmsg;
2703 	compat_entry = (struct compat_mmsghdr __user *)mmsg;
2704 	err = 0;
2705 	flags |= MSG_BATCH;
2706 
2707 	while (datagrams < vlen) {
2708 		if (datagrams == vlen - 1)
2709 			flags = oflags;
2710 
2711 		if (MSG_CMSG_COMPAT & flags) {
2712 			err = ___sys_sendmsg(sock, (struct user_msghdr __user *)compat_entry,
2713 					     &msg_sys, flags, &used_address, MSG_EOR);
2714 			if (err < 0)
2715 				break;
2716 			err = __put_user(err, &compat_entry->msg_len);
2717 			++compat_entry;
2718 		} else {
2719 			err = ___sys_sendmsg(sock,
2720 					     (struct user_msghdr __user *)entry,
2721 					     &msg_sys, flags, &used_address, MSG_EOR);
2722 			if (err < 0)
2723 				break;
2724 			err = put_user(err, &entry->msg_len);
2725 			++entry;
2726 		}
2727 
2728 		if (err)
2729 			break;
2730 		++datagrams;
2731 		if (msg_data_left(&msg_sys))
2732 			break;
2733 		cond_resched();
2734 	}
2735 
2736 	/* We only return an error if no datagrams were able to be sent */
2737 	if (datagrams != 0)
2738 		return datagrams;
2739 
2740 	return err;
2741 }
2742 
2743 SYSCALL_DEFINE4(sendmmsg, int, fd, struct mmsghdr __user *, mmsg,
2744 		unsigned int, vlen, unsigned int, flags)
2745 {
2746 	return __sys_sendmmsg(fd, mmsg, vlen, flags, true);
2747 }
2748 
2749 static int recvmsg_copy_msghdr(struct msghdr *msg,
2750 			       struct user_msghdr __user *umsg, unsigned flags,
2751 			       struct sockaddr __user **uaddr,
2752 			       struct iovec **iov)
2753 {
2754 	ssize_t err;
2755 
2756 	if (MSG_CMSG_COMPAT & flags) {
2757 		struct compat_msghdr __user *msg_compat;
2758 
2759 		msg_compat = (struct compat_msghdr __user *) umsg;
2760 		err = get_compat_msghdr(msg, msg_compat, uaddr, iov);
2761 	} else {
2762 		err = copy_msghdr_from_user(msg, umsg, uaddr, iov);
2763 	}
2764 	if (err < 0)
2765 		return err;
2766 
2767 	return 0;
2768 }
2769 
2770 static int ____sys_recvmsg(struct socket *sock, struct msghdr *msg_sys,
2771 			   struct user_msghdr __user *msg,
2772 			   struct sockaddr __user *uaddr,
2773 			   unsigned int flags, int nosec)
2774 {
2775 	struct compat_msghdr __user *msg_compat =
2776 					(struct compat_msghdr __user *) msg;
2777 	int __user *uaddr_len = COMPAT_NAMELEN(msg);
2778 	struct sockaddr_storage addr;
2779 	unsigned long cmsg_ptr;
2780 	int len;
2781 	ssize_t err;
2782 
2783 	msg_sys->msg_name = &addr;
2784 	cmsg_ptr = (unsigned long)msg_sys->msg_control;
2785 	msg_sys->msg_flags = flags & (MSG_CMSG_CLOEXEC|MSG_CMSG_COMPAT);
2786 
2787 	/* We assume all kernel code knows the size of sockaddr_storage */
2788 	msg_sys->msg_namelen = 0;
2789 
2790 	if (sock->file->f_flags & O_NONBLOCK)
2791 		flags |= MSG_DONTWAIT;
2792 
2793 	if (unlikely(nosec))
2794 		err = sock_recvmsg_nosec(sock, msg_sys, flags);
2795 	else
2796 		err = sock_recvmsg(sock, msg_sys, flags);
2797 
2798 	if (err < 0)
2799 		goto out;
2800 	len = err;
2801 
2802 	if (uaddr != NULL) {
2803 		err = move_addr_to_user(&addr,
2804 					msg_sys->msg_namelen, uaddr,
2805 					uaddr_len);
2806 		if (err < 0)
2807 			goto out;
2808 	}
2809 	err = __put_user((msg_sys->msg_flags & ~MSG_CMSG_COMPAT),
2810 			 COMPAT_FLAGS(msg));
2811 	if (err)
2812 		goto out;
2813 	if (MSG_CMSG_COMPAT & flags)
2814 		err = __put_user((unsigned long)msg_sys->msg_control - cmsg_ptr,
2815 				 &msg_compat->msg_controllen);
2816 	else
2817 		err = __put_user((unsigned long)msg_sys->msg_control - cmsg_ptr,
2818 				 &msg->msg_controllen);
2819 	if (err)
2820 		goto out;
2821 	err = len;
2822 out:
2823 	return err;
2824 }
2825 
2826 static int ___sys_recvmsg(struct socket *sock, struct user_msghdr __user *msg,
2827 			 struct msghdr *msg_sys, unsigned int flags, int nosec)
2828 {
2829 	struct iovec iovstack[UIO_FASTIOV], *iov = iovstack;
2830 	/* user mode address pointers */
2831 	struct sockaddr __user *uaddr;
2832 	ssize_t err;
2833 
2834 	err = recvmsg_copy_msghdr(msg_sys, msg, flags, &uaddr, &iov);
2835 	if (err < 0)
2836 		return err;
2837 
2838 	err = ____sys_recvmsg(sock, msg_sys, msg, uaddr, flags, nosec);
2839 	kfree(iov);
2840 	return err;
2841 }
2842 
2843 /*
2844  *	BSD recvmsg interface
2845  */
2846 
2847 long __sys_recvmsg_sock(struct socket *sock, struct msghdr *msg,
2848 			struct user_msghdr __user *umsg,
2849 			struct sockaddr __user *uaddr, unsigned int flags)
2850 {
2851 	return ____sys_recvmsg(sock, msg, umsg, uaddr, flags, 0);
2852 }
2853 
2854 long __sys_recvmsg(int fd, struct user_msghdr __user *msg, unsigned int flags,
2855 		   bool forbid_cmsg_compat)
2856 {
2857 	struct msghdr msg_sys;
2858 	struct socket *sock;
2859 
2860 	if (forbid_cmsg_compat && (flags & MSG_CMSG_COMPAT))
2861 		return -EINVAL;
2862 
2863 	CLASS(fd, f)(fd);
2864 
2865 	if (fd_empty(f))
2866 		return -EBADF;
2867 	sock = sock_from_file(fd_file(f));
2868 	if (unlikely(!sock))
2869 		return -ENOTSOCK;
2870 
2871 	return ___sys_recvmsg(sock, msg, &msg_sys, flags, 0);
2872 }
2873 
2874 SYSCALL_DEFINE3(recvmsg, int, fd, struct user_msghdr __user *, msg,
2875 		unsigned int, flags)
2876 {
2877 	return __sys_recvmsg(fd, msg, flags, true);
2878 }
2879 
2880 /*
2881  *     Linux recvmmsg interface
2882  */
2883 
2884 static int do_recvmmsg(int fd, struct mmsghdr __user *mmsg,
2885 			  unsigned int vlen, unsigned int flags,
2886 			  struct timespec64 *timeout)
2887 {
2888 	int err = 0, datagrams;
2889 	struct socket *sock;
2890 	struct mmsghdr __user *entry;
2891 	struct compat_mmsghdr __user *compat_entry;
2892 	struct msghdr msg_sys;
2893 	struct timespec64 end_time;
2894 	struct timespec64 timeout64;
2895 
2896 	if (timeout &&
2897 	    poll_select_set_timeout(&end_time, timeout->tv_sec,
2898 				    timeout->tv_nsec))
2899 		return -EINVAL;
2900 
2901 	datagrams = 0;
2902 
2903 	CLASS(fd, f)(fd);
2904 
2905 	if (fd_empty(f))
2906 		return -EBADF;
2907 	sock = sock_from_file(fd_file(f));
2908 	if (unlikely(!sock))
2909 		return -ENOTSOCK;
2910 
2911 	if (likely(!(flags & MSG_ERRQUEUE))) {
2912 		err = sock_error(sock->sk);
2913 		if (err)
2914 			return err;
2915 	}
2916 
2917 	entry = mmsg;
2918 	compat_entry = (struct compat_mmsghdr __user *)mmsg;
2919 
2920 	while (datagrams < vlen) {
2921 		/*
2922 		 * No need to ask LSM for more than the first datagram.
2923 		 */
2924 		if (MSG_CMSG_COMPAT & flags) {
2925 			err = ___sys_recvmsg(sock, (struct user_msghdr __user *)compat_entry,
2926 					     &msg_sys, flags & ~MSG_WAITFORONE,
2927 					     datagrams);
2928 			if (err < 0)
2929 				break;
2930 			err = __put_user(err, &compat_entry->msg_len);
2931 			++compat_entry;
2932 		} else {
2933 			err = ___sys_recvmsg(sock,
2934 					     (struct user_msghdr __user *)entry,
2935 					     &msg_sys, flags & ~MSG_WAITFORONE,
2936 					     datagrams);
2937 			if (err < 0)
2938 				break;
2939 			err = put_user(err, &entry->msg_len);
2940 			++entry;
2941 		}
2942 
2943 		if (err)
2944 			break;
2945 		++datagrams;
2946 
2947 		/* MSG_WAITFORONE turns on MSG_DONTWAIT after one packet */
2948 		if (flags & MSG_WAITFORONE)
2949 			flags |= MSG_DONTWAIT;
2950 
2951 		if (timeout) {
2952 			ktime_get_ts64(&timeout64);
2953 			*timeout = timespec64_sub(end_time, timeout64);
2954 			if (timeout->tv_sec < 0) {
2955 				timeout->tv_sec = timeout->tv_nsec = 0;
2956 				break;
2957 			}
2958 
2959 			/* Timeout, return less than vlen datagrams */
2960 			if (timeout->tv_nsec == 0 && timeout->tv_sec == 0)
2961 				break;
2962 		}
2963 
2964 		/* Out of band data, return right away */
2965 		if (msg_sys.msg_flags & MSG_OOB)
2966 			break;
2967 		cond_resched();
2968 	}
2969 
2970 	if (err == 0)
2971 		return datagrams;
2972 
2973 	if (datagrams == 0)
2974 		return err;
2975 
2976 	/*
2977 	 * We may return less entries than requested (vlen) if the
2978 	 * sock is non block and there aren't enough datagrams...
2979 	 */
2980 	if (err != -EAGAIN) {
2981 		/*
2982 		 * ... or  if recvmsg returns an error after we
2983 		 * received some datagrams, where we record the
2984 		 * error to return on the next call or if the
2985 		 * app asks about it using getsockopt(SO_ERROR).
2986 		 */
2987 		WRITE_ONCE(sock->sk->sk_err, -err);
2988 	}
2989 	return datagrams;
2990 }
2991 
2992 int __sys_recvmmsg(int fd, struct mmsghdr __user *mmsg,
2993 		   unsigned int vlen, unsigned int flags,
2994 		   struct __kernel_timespec __user *timeout,
2995 		   struct old_timespec32 __user *timeout32)
2996 {
2997 	int datagrams;
2998 	struct timespec64 timeout_sys;
2999 
3000 	if (timeout && get_timespec64(&timeout_sys, timeout))
3001 		return -EFAULT;
3002 
3003 	if (timeout32 && get_old_timespec32(&timeout_sys, timeout32))
3004 		return -EFAULT;
3005 
3006 	if (!timeout && !timeout32)
3007 		return do_recvmmsg(fd, mmsg, vlen, flags, NULL);
3008 
3009 	datagrams = do_recvmmsg(fd, mmsg, vlen, flags, &timeout_sys);
3010 
3011 	if (datagrams <= 0)
3012 		return datagrams;
3013 
3014 	if (timeout && put_timespec64(&timeout_sys, timeout))
3015 		datagrams = -EFAULT;
3016 
3017 	if (timeout32 && put_old_timespec32(&timeout_sys, timeout32))
3018 		datagrams = -EFAULT;
3019 
3020 	return datagrams;
3021 }
3022 
3023 SYSCALL_DEFINE5(recvmmsg, int, fd, struct mmsghdr __user *, mmsg,
3024 		unsigned int, vlen, unsigned int, flags,
3025 		struct __kernel_timespec __user *, timeout)
3026 {
3027 	if (flags & MSG_CMSG_COMPAT)
3028 		return -EINVAL;
3029 
3030 	return __sys_recvmmsg(fd, mmsg, vlen, flags, timeout, NULL);
3031 }
3032 
3033 #ifdef CONFIG_COMPAT_32BIT_TIME
3034 SYSCALL_DEFINE5(recvmmsg_time32, int, fd, struct mmsghdr __user *, mmsg,
3035 		unsigned int, vlen, unsigned int, flags,
3036 		struct old_timespec32 __user *, timeout)
3037 {
3038 	if (flags & MSG_CMSG_COMPAT)
3039 		return -EINVAL;
3040 
3041 	return __sys_recvmmsg(fd, mmsg, vlen, flags, NULL, timeout);
3042 }
3043 #endif
3044 
3045 #ifdef __ARCH_WANT_SYS_SOCKETCALL
3046 /* Argument list sizes for sys_socketcall */
3047 #define AL(x) ((x) * sizeof(unsigned long))
3048 static const unsigned char nargs[21] = {
3049 	AL(0), AL(3), AL(3), AL(3), AL(2), AL(3),
3050 	AL(3), AL(3), AL(4), AL(4), AL(4), AL(6),
3051 	AL(6), AL(2), AL(5), AL(5), AL(3), AL(3),
3052 	AL(4), AL(5), AL(4)
3053 };
3054 
3055 #undef AL
3056 
3057 /*
3058  *	System call vectors.
3059  *
3060  *	Argument checking cleaned up. Saved 20% in size.
3061  *  This function doesn't need to set the kernel lock because
3062  *  it is set by the callees.
3063  */
3064 
3065 SYSCALL_DEFINE2(socketcall, int, call, unsigned long __user *, args)
3066 {
3067 	unsigned long a[AUDITSC_ARGS];
3068 	unsigned long a0, a1;
3069 	int err;
3070 	unsigned int len;
3071 
3072 	if (call < 1 || call > SYS_SENDMMSG)
3073 		return -EINVAL;
3074 	call = array_index_nospec(call, SYS_SENDMMSG + 1);
3075 
3076 	len = nargs[call];
3077 	if (len > sizeof(a))
3078 		return -EINVAL;
3079 
3080 	/* copy_from_user should be SMP safe. */
3081 	if (copy_from_user(a, args, len))
3082 		return -EFAULT;
3083 
3084 	err = audit_socketcall(nargs[call] / sizeof(unsigned long), a);
3085 	if (err)
3086 		return err;
3087 
3088 	a0 = a[0];
3089 	a1 = a[1];
3090 
3091 	switch (call) {
3092 	case SYS_SOCKET:
3093 		err = __sys_socket(a0, a1, a[2]);
3094 		break;
3095 	case SYS_BIND:
3096 		err = __sys_bind(a0, (struct sockaddr __user *)a1, a[2]);
3097 		break;
3098 	case SYS_CONNECT:
3099 		err = __sys_connect(a0, (struct sockaddr __user *)a1, a[2]);
3100 		break;
3101 	case SYS_LISTEN:
3102 		err = __sys_listen(a0, a1);
3103 		break;
3104 	case SYS_ACCEPT:
3105 		err = __sys_accept4(a0, (struct sockaddr __user *)a1,
3106 				    (int __user *)a[2], 0);
3107 		break;
3108 	case SYS_GETSOCKNAME:
3109 		err =
3110 		    __sys_getsockname(a0, (struct sockaddr __user *)a1,
3111 				      (int __user *)a[2]);
3112 		break;
3113 	case SYS_GETPEERNAME:
3114 		err =
3115 		    __sys_getpeername(a0, (struct sockaddr __user *)a1,
3116 				      (int __user *)a[2]);
3117 		break;
3118 	case SYS_SOCKETPAIR:
3119 		err = __sys_socketpair(a0, a1, a[2], (int __user *)a[3]);
3120 		break;
3121 	case SYS_SEND:
3122 		err = __sys_sendto(a0, (void __user *)a1, a[2], a[3],
3123 				   NULL, 0);
3124 		break;
3125 	case SYS_SENDTO:
3126 		err = __sys_sendto(a0, (void __user *)a1, a[2], a[3],
3127 				   (struct sockaddr __user *)a[4], a[5]);
3128 		break;
3129 	case SYS_RECV:
3130 		err = __sys_recvfrom(a0, (void __user *)a1, a[2], a[3],
3131 				     NULL, NULL);
3132 		break;
3133 	case SYS_RECVFROM:
3134 		err = __sys_recvfrom(a0, (void __user *)a1, a[2], a[3],
3135 				     (struct sockaddr __user *)a[4],
3136 				     (int __user *)a[5]);
3137 		break;
3138 	case SYS_SHUTDOWN:
3139 		err = __sys_shutdown(a0, a1);
3140 		break;
3141 	case SYS_SETSOCKOPT:
3142 		err = __sys_setsockopt(a0, a1, a[2], (char __user *)a[3],
3143 				       a[4]);
3144 		break;
3145 	case SYS_GETSOCKOPT:
3146 		err =
3147 		    __sys_getsockopt(a0, a1, a[2], (char __user *)a[3],
3148 				     (int __user *)a[4]);
3149 		break;
3150 	case SYS_SENDMSG:
3151 		err = __sys_sendmsg(a0, (struct user_msghdr __user *)a1,
3152 				    a[2], true);
3153 		break;
3154 	case SYS_SENDMMSG:
3155 		err = __sys_sendmmsg(a0, (struct mmsghdr __user *)a1, a[2],
3156 				     a[3], true);
3157 		break;
3158 	case SYS_RECVMSG:
3159 		err = __sys_recvmsg(a0, (struct user_msghdr __user *)a1,
3160 				    a[2], true);
3161 		break;
3162 	case SYS_RECVMMSG:
3163 		if (IS_ENABLED(CONFIG_64BIT))
3164 			err = __sys_recvmmsg(a0, (struct mmsghdr __user *)a1,
3165 					     a[2], a[3],
3166 					     (struct __kernel_timespec __user *)a[4],
3167 					     NULL);
3168 		else
3169 			err = __sys_recvmmsg(a0, (struct mmsghdr __user *)a1,
3170 					     a[2], a[3], NULL,
3171 					     (struct old_timespec32 __user *)a[4]);
3172 		break;
3173 	case SYS_ACCEPT4:
3174 		err = __sys_accept4(a0, (struct sockaddr __user *)a1,
3175 				    (int __user *)a[2], a[3]);
3176 		break;
3177 	default:
3178 		err = -EINVAL;
3179 		break;
3180 	}
3181 	return err;
3182 }
3183 
3184 #endif				/* __ARCH_WANT_SYS_SOCKETCALL */
3185 
3186 /**
3187  *	sock_register - add a socket protocol handler
3188  *	@ops: description of protocol
3189  *
3190  *	This function is called by a protocol handler that wants to
3191  *	advertise its address family, and have it linked into the
3192  *	socket interface. The value ops->family corresponds to the
3193  *	socket system call protocol family.
3194  */
3195 int sock_register(const struct net_proto_family *ops)
3196 {
3197 	int err;
3198 
3199 	if (ops->family >= NPROTO) {
3200 		pr_crit("protocol %d >= NPROTO(%d)\n", ops->family, NPROTO);
3201 		return -ENOBUFS;
3202 	}
3203 
3204 	spin_lock(&net_family_lock);
3205 	if (rcu_dereference_protected(net_families[ops->family],
3206 				      lockdep_is_held(&net_family_lock)))
3207 		err = -EEXIST;
3208 	else {
3209 		rcu_assign_pointer(net_families[ops->family], ops);
3210 		err = 0;
3211 	}
3212 	spin_unlock(&net_family_lock);
3213 
3214 	pr_info("NET: Registered %s protocol family\n", pf_family_names[ops->family]);
3215 	return err;
3216 }
3217 EXPORT_SYMBOL(sock_register);
3218 
3219 /**
3220  *	sock_unregister - remove a protocol handler
3221  *	@family: protocol family to remove
3222  *
3223  *	This function is called by a protocol handler that wants to
3224  *	remove its address family, and have it unlinked from the
3225  *	new socket creation.
3226  *
3227  *	If protocol handler is a module, then it can use module reference
3228  *	counts to protect against new references. If protocol handler is not
3229  *	a module then it needs to provide its own protection in
3230  *	the ops->create routine.
3231  */
3232 void sock_unregister(int family)
3233 {
3234 	BUG_ON(family < 0 || family >= NPROTO);
3235 
3236 	spin_lock(&net_family_lock);
3237 	RCU_INIT_POINTER(net_families[family], NULL);
3238 	spin_unlock(&net_family_lock);
3239 
3240 	synchronize_rcu();
3241 
3242 	pr_info("NET: Unregistered %s protocol family\n", pf_family_names[family]);
3243 }
3244 EXPORT_SYMBOL(sock_unregister);
3245 
3246 bool sock_is_registered(int family)
3247 {
3248 	return family < NPROTO && rcu_access_pointer(net_families[family]);
3249 }
3250 
3251 static int __init sock_init(void)
3252 {
3253 	int err;
3254 	/*
3255 	 *      Initialize the network sysctl infrastructure.
3256 	 */
3257 	err = net_sysctl_init();
3258 	if (err)
3259 		goto out;
3260 
3261 	/*
3262 	 *      Initialize skbuff SLAB cache
3263 	 */
3264 	skb_init();
3265 
3266 	/*
3267 	 *      Initialize the protocols module.
3268 	 */
3269 
3270 	init_inodecache();
3271 
3272 	err = register_filesystem(&sock_fs_type);
3273 	if (err)
3274 		goto out;
3275 	sock_mnt = kern_mount(&sock_fs_type);
3276 	if (IS_ERR(sock_mnt)) {
3277 		err = PTR_ERR(sock_mnt);
3278 		goto out_mount;
3279 	}
3280 
3281 	/* The real protocol initialization is performed in later initcalls.
3282 	 */
3283 
3284 #ifdef CONFIG_NETFILTER
3285 	err = netfilter_init();
3286 	if (err)
3287 		goto out;
3288 #endif
3289 
3290 	ptp_classifier_init();
3291 
3292 out:
3293 	return err;
3294 
3295 out_mount:
3296 	unregister_filesystem(&sock_fs_type);
3297 	goto out;
3298 }
3299 
3300 core_initcall(sock_init);	/* early initcall */
3301 
3302 #ifdef CONFIG_PROC_FS
3303 void socket_seq_show(struct seq_file *seq)
3304 {
3305 	seq_printf(seq, "sockets: used %d\n",
3306 		   sock_inuse_get(seq->private));
3307 }
3308 #endif				/* CONFIG_PROC_FS */
3309 
3310 /* Handle the fact that while struct ifreq has the same *layout* on
3311  * 32/64 for everything but ifreq::ifru_ifmap and ifreq::ifru_data,
3312  * which are handled elsewhere, it still has different *size* due to
3313  * ifreq::ifru_ifmap (which is 16 bytes on 32 bit, 24 bytes on 64-bit,
3314  * resulting in struct ifreq being 32 and 40 bytes respectively).
3315  * As a result, if the struct happens to be at the end of a page and
3316  * the next page isn't readable/writable, we get a fault. To prevent
3317  * that, copy back and forth to the full size.
3318  */
3319 int get_user_ifreq(struct ifreq *ifr, void __user **ifrdata, void __user *arg)
3320 {
3321 	if (in_compat_syscall()) {
3322 		struct compat_ifreq *ifr32 = (struct compat_ifreq *)ifr;
3323 
3324 		memset(ifr, 0, sizeof(*ifr));
3325 		if (copy_from_user(ifr32, arg, sizeof(*ifr32)))
3326 			return -EFAULT;
3327 
3328 		if (ifrdata)
3329 			*ifrdata = compat_ptr(ifr32->ifr_data);
3330 
3331 		return 0;
3332 	}
3333 
3334 	if (copy_from_user(ifr, arg, sizeof(*ifr)))
3335 		return -EFAULT;
3336 
3337 	if (ifrdata)
3338 		*ifrdata = ifr->ifr_data;
3339 
3340 	return 0;
3341 }
3342 EXPORT_SYMBOL(get_user_ifreq);
3343 
3344 int put_user_ifreq(struct ifreq *ifr, void __user *arg)
3345 {
3346 	size_t size = sizeof(*ifr);
3347 
3348 	if (in_compat_syscall())
3349 		size = sizeof(struct compat_ifreq);
3350 
3351 	if (copy_to_user(arg, ifr, size))
3352 		return -EFAULT;
3353 
3354 	return 0;
3355 }
3356 EXPORT_SYMBOL(put_user_ifreq);
3357 
3358 #ifdef CONFIG_COMPAT
3359 static int compat_siocwandev(struct net *net, struct compat_ifreq __user *uifr32)
3360 {
3361 	compat_uptr_t uptr32;
3362 	struct ifreq ifr;
3363 	void __user *saved;
3364 	int err;
3365 
3366 	if (get_user_ifreq(&ifr, NULL, uifr32))
3367 		return -EFAULT;
3368 
3369 	if (get_user(uptr32, &uifr32->ifr_settings.ifs_ifsu))
3370 		return -EFAULT;
3371 
3372 	saved = ifr.ifr_settings.ifs_ifsu.raw_hdlc;
3373 	ifr.ifr_settings.ifs_ifsu.raw_hdlc = compat_ptr(uptr32);
3374 
3375 	err = dev_ioctl(net, SIOCWANDEV, &ifr, NULL, NULL);
3376 	if (!err) {
3377 		ifr.ifr_settings.ifs_ifsu.raw_hdlc = saved;
3378 		if (put_user_ifreq(&ifr, uifr32))
3379 			err = -EFAULT;
3380 	}
3381 	return err;
3382 }
3383 
3384 /* Handle ioctls that use ifreq::ifr_data and just need struct ifreq converted */
3385 static int compat_ifr_data_ioctl(struct net *net, unsigned int cmd,
3386 				 struct compat_ifreq __user *u_ifreq32)
3387 {
3388 	struct ifreq ifreq;
3389 	void __user *data;
3390 
3391 	if (!is_socket_ioctl_cmd(cmd))
3392 		return -ENOTTY;
3393 	if (get_user_ifreq(&ifreq, &data, u_ifreq32))
3394 		return -EFAULT;
3395 	ifreq.ifr_data = data;
3396 
3397 	return dev_ioctl(net, cmd, &ifreq, data, NULL);
3398 }
3399 
3400 static int compat_sock_ioctl_trans(struct file *file, struct socket *sock,
3401 			 unsigned int cmd, unsigned long arg)
3402 {
3403 	void __user *argp = compat_ptr(arg);
3404 	struct sock *sk = sock->sk;
3405 	struct net *net = sock_net(sk);
3406 	const struct proto_ops *ops;
3407 
3408 	if (cmd >= SIOCDEVPRIVATE && cmd <= (SIOCDEVPRIVATE + 15))
3409 		return sock_ioctl(file, cmd, (unsigned long)argp);
3410 
3411 	switch (cmd) {
3412 	case SIOCWANDEV:
3413 		return compat_siocwandev(net, argp);
3414 	case SIOCGSTAMP_OLD:
3415 	case SIOCGSTAMPNS_OLD:
3416 		ops = READ_ONCE(sock->ops);
3417 		if (!ops->gettstamp)
3418 			return -ENOIOCTLCMD;
3419 		return ops->gettstamp(sock, argp, cmd == SIOCGSTAMP_OLD,
3420 				      !COMPAT_USE_64BIT_TIME);
3421 
3422 	case SIOCETHTOOL:
3423 	case SIOCBONDSLAVEINFOQUERY:
3424 	case SIOCBONDINFOQUERY:
3425 	case SIOCSHWTSTAMP:
3426 	case SIOCGHWTSTAMP:
3427 		return compat_ifr_data_ioctl(net, cmd, argp);
3428 
3429 	case FIOSETOWN:
3430 	case SIOCSPGRP:
3431 	case FIOGETOWN:
3432 	case SIOCGPGRP:
3433 	case SIOCBRADDBR:
3434 	case SIOCBRDELBR:
3435 	case SIOCGIFVLAN:
3436 	case SIOCSIFVLAN:
3437 	case SIOCGSKNS:
3438 	case SIOCGSTAMP_NEW:
3439 	case SIOCGSTAMPNS_NEW:
3440 	case SIOCGIFCONF:
3441 	case SIOCSIFBR:
3442 	case SIOCGIFBR:
3443 		return sock_ioctl(file, cmd, arg);
3444 
3445 	case SIOCGIFFLAGS:
3446 	case SIOCSIFFLAGS:
3447 	case SIOCGIFMAP:
3448 	case SIOCSIFMAP:
3449 	case SIOCGIFMETRIC:
3450 	case SIOCSIFMETRIC:
3451 	case SIOCGIFMTU:
3452 	case SIOCSIFMTU:
3453 	case SIOCGIFMEM:
3454 	case SIOCSIFMEM:
3455 	case SIOCGIFHWADDR:
3456 	case SIOCSIFHWADDR:
3457 	case SIOCADDMULTI:
3458 	case SIOCDELMULTI:
3459 	case SIOCGIFINDEX:
3460 	case SIOCGIFADDR:
3461 	case SIOCSIFADDR:
3462 	case SIOCSIFHWBROADCAST:
3463 	case SIOCDIFADDR:
3464 	case SIOCGIFBRDADDR:
3465 	case SIOCSIFBRDADDR:
3466 	case SIOCGIFDSTADDR:
3467 	case SIOCSIFDSTADDR:
3468 	case SIOCGIFNETMASK:
3469 	case SIOCSIFNETMASK:
3470 	case SIOCSIFPFLAGS:
3471 	case SIOCGIFPFLAGS:
3472 	case SIOCGIFTXQLEN:
3473 	case SIOCSIFTXQLEN:
3474 	case SIOCBRADDIF:
3475 	case SIOCBRDELIF:
3476 	case SIOCGIFNAME:
3477 	case SIOCSIFNAME:
3478 	case SIOCGMIIPHY:
3479 	case SIOCGMIIREG:
3480 	case SIOCSMIIREG:
3481 	case SIOCBONDENSLAVE:
3482 	case SIOCBONDRELEASE:
3483 	case SIOCBONDSETHWADDR:
3484 	case SIOCBONDCHANGEACTIVE:
3485 	case SIOCSARP:
3486 	case SIOCGARP:
3487 	case SIOCDARP:
3488 	case SIOCOUTQ:
3489 	case SIOCOUTQNSD:
3490 	case SIOCATMARK:
3491 		return sock_do_ioctl(net, sock, cmd, arg);
3492 	}
3493 
3494 	return -ENOIOCTLCMD;
3495 }
3496 
3497 static long compat_sock_ioctl(struct file *file, unsigned int cmd,
3498 			      unsigned long arg)
3499 {
3500 	struct socket *sock = file->private_data;
3501 	const struct proto_ops *ops = READ_ONCE(sock->ops);
3502 	int ret = -ENOIOCTLCMD;
3503 	struct sock *sk;
3504 	struct net *net;
3505 
3506 	sk = sock->sk;
3507 	net = sock_net(sk);
3508 
3509 	if (ops->compat_ioctl)
3510 		ret = ops->compat_ioctl(sock, cmd, arg);
3511 
3512 	if (ret == -ENOIOCTLCMD &&
3513 	    (cmd >= SIOCIWFIRST && cmd <= SIOCIWLAST))
3514 		ret = compat_wext_handle_ioctl(net, cmd, arg);
3515 
3516 	if (ret == -ENOIOCTLCMD)
3517 		ret = compat_sock_ioctl_trans(file, sock, cmd, arg);
3518 
3519 	return ret;
3520 }
3521 #endif
3522 
3523 /**
3524  *	kernel_bind - bind an address to a socket (kernel space)
3525  *	@sock: socket
3526  *	@addr: address
3527  *	@addrlen: length of address
3528  *
3529  *	Returns 0 or an error.
3530  */
3531 
3532 int kernel_bind(struct socket *sock, struct sockaddr *addr, int addrlen)
3533 {
3534 	struct sockaddr_storage address;
3535 
3536 	memcpy(&address, addr, addrlen);
3537 
3538 	return READ_ONCE(sock->ops)->bind(sock, (struct sockaddr *)&address,
3539 					  addrlen);
3540 }
3541 EXPORT_SYMBOL(kernel_bind);
3542 
3543 /**
3544  *	kernel_listen - move socket to listening state (kernel space)
3545  *	@sock: socket
3546  *	@backlog: pending connections queue size
3547  *
3548  *	Returns 0 or an error.
3549  */
3550 
3551 int kernel_listen(struct socket *sock, int backlog)
3552 {
3553 	return READ_ONCE(sock->ops)->listen(sock, backlog);
3554 }
3555 EXPORT_SYMBOL(kernel_listen);
3556 
3557 /**
3558  *	kernel_accept - accept a connection (kernel space)
3559  *	@sock: listening socket
3560  *	@newsock: new connected socket
3561  *	@flags: flags
3562  *
3563  *	@flags must be SOCK_CLOEXEC, SOCK_NONBLOCK or 0.
3564  *	If it fails, @newsock is guaranteed to be %NULL.
3565  *	Returns 0 or an error.
3566  */
3567 
3568 int kernel_accept(struct socket *sock, struct socket **newsock, int flags)
3569 {
3570 	struct sock *sk = sock->sk;
3571 	const struct proto_ops *ops = READ_ONCE(sock->ops);
3572 	struct proto_accept_arg arg = {
3573 		.flags = flags,
3574 		.kern = true,
3575 	};
3576 	int err;
3577 
3578 	err = sock_create_lite(sk->sk_family, sk->sk_type, sk->sk_protocol,
3579 			       newsock);
3580 	if (err < 0)
3581 		goto done;
3582 
3583 	err = ops->accept(sock, *newsock, &arg);
3584 	if (err < 0) {
3585 		sock_release(*newsock);
3586 		*newsock = NULL;
3587 		goto done;
3588 	}
3589 
3590 	(*newsock)->ops = ops;
3591 	__module_get(ops->owner);
3592 
3593 done:
3594 	return err;
3595 }
3596 EXPORT_SYMBOL(kernel_accept);
3597 
3598 /**
3599  *	kernel_connect - connect a socket (kernel space)
3600  *	@sock: socket
3601  *	@addr: address
3602  *	@addrlen: address length
3603  *	@flags: flags (O_NONBLOCK, ...)
3604  *
3605  *	For datagram sockets, @addr is the address to which datagrams are sent
3606  *	by default, and the only address from which datagrams are received.
3607  *	For stream sockets, attempts to connect to @addr.
3608  *	Returns 0 or an error code.
3609  */
3610 
3611 int kernel_connect(struct socket *sock, struct sockaddr *addr, int addrlen,
3612 		   int flags)
3613 {
3614 	struct sockaddr_storage address;
3615 
3616 	memcpy(&address, addr, addrlen);
3617 
3618 	return READ_ONCE(sock->ops)->connect(sock, (struct sockaddr *)&address,
3619 					     addrlen, flags);
3620 }
3621 EXPORT_SYMBOL(kernel_connect);
3622 
3623 /**
3624  *	kernel_getsockname - get the address which the socket is bound (kernel space)
3625  *	@sock: socket
3626  *	@addr: address holder
3627  *
3628  * 	Fills the @addr pointer with the address which the socket is bound.
3629  *	Returns the length of the address in bytes or an error code.
3630  */
3631 
3632 int kernel_getsockname(struct socket *sock, struct sockaddr *addr)
3633 {
3634 	return READ_ONCE(sock->ops)->getname(sock, addr, 0);
3635 }
3636 EXPORT_SYMBOL(kernel_getsockname);
3637 
3638 /**
3639  *	kernel_getpeername - get the address which the socket is connected (kernel space)
3640  *	@sock: socket
3641  *	@addr: address holder
3642  *
3643  * 	Fills the @addr pointer with the address which the socket is connected.
3644  *	Returns the length of the address in bytes or an error code.
3645  */
3646 
3647 int kernel_getpeername(struct socket *sock, struct sockaddr *addr)
3648 {
3649 	return READ_ONCE(sock->ops)->getname(sock, addr, 1);
3650 }
3651 EXPORT_SYMBOL(kernel_getpeername);
3652 
3653 /**
3654  *	kernel_sock_shutdown - shut down part of a full-duplex connection (kernel space)
3655  *	@sock: socket
3656  *	@how: connection part
3657  *
3658  *	Returns 0 or an error.
3659  */
3660 
3661 int kernel_sock_shutdown(struct socket *sock, enum sock_shutdown_cmd how)
3662 {
3663 	return READ_ONCE(sock->ops)->shutdown(sock, how);
3664 }
3665 EXPORT_SYMBOL(kernel_sock_shutdown);
3666 
3667 /**
3668  *	kernel_sock_ip_overhead - returns the IP overhead imposed by a socket
3669  *	@sk: socket
3670  *
3671  *	This routine returns the IP overhead imposed by a socket i.e.
3672  *	the length of the underlying IP header, depending on whether
3673  *	this is an IPv4 or IPv6 socket and the length from IP options turned
3674  *	on at the socket. Assumes that the caller has a lock on the socket.
3675  */
3676 
3677 u32 kernel_sock_ip_overhead(struct sock *sk)
3678 {
3679 	struct inet_sock *inet;
3680 	struct ip_options_rcu *opt;
3681 	u32 overhead = 0;
3682 #if IS_ENABLED(CONFIG_IPV6)
3683 	struct ipv6_pinfo *np;
3684 	struct ipv6_txoptions *optv6 = NULL;
3685 #endif /* IS_ENABLED(CONFIG_IPV6) */
3686 
3687 	if (!sk)
3688 		return overhead;
3689 
3690 	switch (sk->sk_family) {
3691 	case AF_INET:
3692 		inet = inet_sk(sk);
3693 		overhead += sizeof(struct iphdr);
3694 		opt = rcu_dereference_protected(inet->inet_opt,
3695 						sock_owned_by_user(sk));
3696 		if (opt)
3697 			overhead += opt->opt.optlen;
3698 		return overhead;
3699 #if IS_ENABLED(CONFIG_IPV6)
3700 	case AF_INET6:
3701 		np = inet6_sk(sk);
3702 		overhead += sizeof(struct ipv6hdr);
3703 		if (np)
3704 			optv6 = rcu_dereference_protected(np->opt,
3705 							  sock_owned_by_user(sk));
3706 		if (optv6)
3707 			overhead += (optv6->opt_flen + optv6->opt_nflen);
3708 		return overhead;
3709 #endif /* IS_ENABLED(CONFIG_IPV6) */
3710 	default: /* Returns 0 overhead if the socket is not ipv4 or ipv6 */
3711 		return overhead;
3712 	}
3713 }
3714 EXPORT_SYMBOL(kernel_sock_ip_overhead);
3715