xref: /linux/net/vmw_vsock/af_vsock.c (revision dee44f41f206becb41c492899c1996cfd7f82a1b)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * VMware vSockets Driver
4  *
5  * Copyright (C) 2007-2013 VMware, Inc. All rights reserved.
6  */
7 
8 /* Implementation notes:
9  *
10  * - There are two kinds of sockets: those created by user action (such as
11  * calling socket(2)) and those created by incoming connection request packets.
12  *
13  * - There are two "global" tables, one for bound sockets (sockets that have
14  * specified an address that they are responsible for) and one for connected
15  * sockets (sockets that have established a connection with another socket).
16  * These tables are "global" in that all sockets on the system are placed
17  * within them. - Note, though, that the bound table contains an extra entry
18  * for a list of unbound sockets and SOCK_DGRAM sockets will always remain in
19  * that list. The bound table is used solely for lookup of sockets when packets
20  * are received and that's not necessary for SOCK_DGRAM sockets since we create
21  * a datagram handle for each and need not perform a lookup.  Keeping SOCK_DGRAM
22  * sockets out of the bound hash buckets will reduce the chance of collisions
23  * when looking for SOCK_STREAM sockets and prevents us from having to check the
24  * socket type in the hash table lookups.
25  *
26  * - Sockets created by user action will either be "client" sockets that
27  * initiate a connection or "server" sockets that listen for connections; we do
28  * not support simultaneous connects (two "client" sockets connecting).
29  *
30  * - "Server" sockets are referred to as listener sockets throughout this
31  * implementation because they are in the TCP_LISTEN state.  When a
32  * connection request is received (the second kind of socket mentioned above),
33  * we create a new socket and refer to it as a pending socket.  These pending
34  * sockets are placed on the pending connection list of the listener socket.
35  * When future packets are received for the address the listener socket is
36  * bound to, we check if the source of the packet is from one that has an
37  * existing pending connection.  If it does, we process the packet for the
38  * pending socket.  When that socket reaches the connected state, it is removed
39  * from the listener socket's pending list and enqueued in the listener
40  * socket's accept queue.  Callers of accept(2) will accept connected sockets
41  * from the listener socket's accept queue. Once the connection is accepted,
42  * it is owned by the user process and the responsibility for cleanup falls
43  * with that user process.
44  *
45  * - It is possible that these pending sockets will never reach the connected
46  * state; in fact, we may never receive another packet after the connection
47  * request.  Because of this, we must schedule a cleanup function to run in the
48  * future, after some amount of time passes where a connection should have been
49  * established.  This function ensures that the socket is off all lists so it
50  * cannot be retrieved, then drops all references to the socket so it is cleaned
51  * up (sock_put() -> sk_free() -> our sk_destruct implementation).
52  *
53  * - Lock ordering for pending or accept queue sockets is:
54  *
55  *     lock_sock(listener);
56  *     lock_sock_nested(pending, SINGLE_DEPTH_NESTING);
57  *
58  * Using explicit nested locking keeps lockdep happy since normally only one
59  * lock of a given class may be taken at a time.
60  *
61  * - Sockets created by user action will be cleaned up when the user process
62  * calls close(2), causing our release implementation to be called. Our release
63  * implementation will perform some cleanup then drop the last reference so our
64  * sk_destruct implementation is invoked.  Our sk_destruct implementation will
65  * perform additional cleanup that's common for both types of sockets.
66  *
67  * - A socket's reference count is what ensures that the structure won't be
68  * freed.  Each entry in a list (such as the "global" bound and connected tables
69  * and the listener socket's pending list and connected queue) ensures a
70  * reference.  When we defer work until process context and pass a socket as our
71  * argument, we must ensure the reference count is increased to ensure the
72  * socket isn't freed before the function is run; the deferred function will
73  * then drop the reference.
74  *
75  * - sk->sk_state uses the TCP state constants because they are widely used by
76  * other address families and exposed to userspace tools like ss(8):
77  *
78  *   TCP_CLOSE - unconnected
79  *   TCP_SYN_SENT - connecting
80  *   TCP_ESTABLISHED - connected
81  *   TCP_CLOSING - disconnecting
82  *   TCP_LISTEN - listening
83  *
84  * - Namespaces in vsock support two different modes: "local" and "global".
85  *   Each mode defines how the namespace interacts with CIDs.
86  *   Each namespace exposes two sysctl files:
87  *
88  *   - /proc/sys/net/vsock/ns_mode (read-only) reports the current namespace's
89  *     mode, which is set at namespace creation and immutable thereafter.
90  *   - /proc/sys/net/vsock/child_ns_mode (write-once) controls what mode future
91  *     child namespaces will inherit when created. The initial value matches
92  *     the namespace's own ns_mode.
93  *
94  *   Changing child_ns_mode only affects newly created namespaces, not the
95  *   current namespace or existing children. A "local" namespace cannot set
96  *   child_ns_mode to "global". child_ns_mode is write-once, so that it may be
97  *   configured and locked down by a namespace manager. Writing a different
98  *   value after the first write returns -EBUSY. At namespace creation, ns_mode
99  *   is inherited from the parent's child_ns_mode.
100  *
101  *   The init_net mode is "global" and cannot be modified. The init_net
102  *   child_ns_mode is also write-once, so an init process (e.g. systemd) can
103  *   set it to "local" to ensure all new namespaces inherit local mode.
104  *
105  *   The modes affect the allocation and accessibility of CIDs as follows:
106  *
107  *   - global - access and allocation are all system-wide
108  *      - all CID allocation from global namespaces draw from the same
109  *        system-wide pool.
110  *      - if one global namespace has already allocated some CID, another
111  *        global namespace will not be able to allocate the same CID.
112  *      - global mode AF_VSOCK sockets can reach any VM or socket in any global
113  *        namespace, they are not contained to only their own namespace.
114  *      - AF_VSOCK sockets in a global mode namespace cannot reach VMs or
115  *        sockets in any local mode namespace.
116  *   - local - access and allocation are contained within the namespace
117  *     - CID allocation draws only from a private pool local only to the
118  *       namespace, and does not affect the CIDs available for allocation in any
119  *       other namespace (global or local).
120  *     - VMs in a local namespace do not collide with CIDs in any other local
121  *       namespace or any global namespace. For example, if a VM in a local mode
122  *       namespace is given CID 10, then CID 10 is still available for
123  *       allocation in any other namespace, but not in the same namespace.
124  *     - AF_VSOCK sockets in a local mode namespace can connect only to VMs or
125  *       other sockets within their own namespace.
126  *     - sockets bound to VMADDR_CID_ANY in local namespaces will never resolve
127  *       to any transport that is not compatible with local mode. There is no
128  *       error that propagates to the user (as there is for connection attempts)
129  *       because it is possible for some packet to reach this socket from
130  *       a different transport that *does* support local mode. For
131  *       example, virtio-vsock may not support local mode, but the socket
132  *       may still accept a connection from vhost-vsock which does.
133  */
134 
135 #include <linux/compat.h>
136 #include <linux/types.h>
137 #include <linux/bitops.h>
138 #include <linux/cred.h>
139 #include <linux/errqueue.h>
140 #include <linux/init.h>
141 #include <linux/io.h>
142 #include <linux/kernel.h>
143 #include <linux/sched/signal.h>
144 #include <linux/kmod.h>
145 #include <linux/list.h>
146 #include <linux/miscdevice.h>
147 #include <linux/module.h>
148 #include <linux/mutex.h>
149 #include <linux/net.h>
150 #include <linux/proc_fs.h>
151 #include <linux/poll.h>
152 #include <linux/random.h>
153 #include <linux/skbuff.h>
154 #include <linux/smp.h>
155 #include <linux/uio.h>
156 #include <linux/socket.h>
157 #include <linux/stddef.h>
158 #include <linux/sysctl.h>
159 #include <linux/unistd.h>
160 #include <linux/wait.h>
161 #include <linux/workqueue.h>
162 #include <net/sock.h>
163 #include <net/af_vsock.h>
164 #include <net/netns/vsock.h>
165 #include <uapi/linux/vm_sockets.h>
166 #include <uapi/asm-generic/ioctls.h>
167 
168 #define VSOCK_NET_MODE_STR_GLOBAL "global"
169 #define VSOCK_NET_MODE_STR_LOCAL "local"
170 
171 /* 6 chars for "global", 1 for null-terminator, and 1 more for '\n'.
172  * The newline is added by proc_dostring() for read operations.
173  */
174 #define VSOCK_NET_MODE_STR_MAX 8
175 
176 static int __vsock_bind(struct sock *sk, struct sockaddr_vm *addr);
177 static void vsock_sk_destruct(struct sock *sk);
178 static int vsock_queue_rcv_skb(struct sock *sk, struct sk_buff *skb);
179 static void vsock_close(struct sock *sk, long timeout);
180 
181 /* Protocol family. */
182 struct proto vsock_proto = {
183 	.name = "AF_VSOCK",
184 	.owner = THIS_MODULE,
185 	.obj_size = sizeof(struct vsock_sock),
186 	.close = vsock_close,
187 #ifdef CONFIG_BPF_SYSCALL
188 	.psock_update_sk_prot = vsock_bpf_update_proto,
189 #endif
190 };
191 
192 /* The default peer timeout indicates how long we will wait for a peer response
193  * to a control message.
194  */
195 #define VSOCK_DEFAULT_CONNECT_TIMEOUT (2 * HZ)
196 
197 #define VSOCK_DEFAULT_BUFFER_SIZE     (1024 * 256)
198 #define VSOCK_DEFAULT_BUFFER_MAX_SIZE (1024 * 256)
199 #define VSOCK_DEFAULT_BUFFER_MIN_SIZE 128
200 
201 /* Transport used for host->guest communication */
202 static const struct vsock_transport *transport_h2g;
203 /* Transport used for guest->host communication */
204 static const struct vsock_transport *transport_g2h;
205 /* Transport used for DGRAM communication */
206 static const struct vsock_transport *transport_dgram;
207 /* Transport used for local communication */
208 static const struct vsock_transport *transport_local;
209 static DEFINE_MUTEX(vsock_register_mutex);
210 
211 /**** UTILS ****/
212 
213 /* Each bound VSocket is stored in the bind hash table and each connected
214  * VSocket is stored in the connected hash table.
215  *
216  * Unbound sockets are all put on the same list attached to the end of the hash
217  * table (vsock_unbound_sockets).  Bound sockets are added to the hash table in
218  * the bucket that their local address hashes to (vsock_bound_sockets(addr)
219  * represents the list that addr hashes to).
220  *
221  * Specifically, we initialize the vsock_bind_table array to a size of
222  * VSOCK_HASH_SIZE + 1 so that vsock_bind_table[0] through
223  * vsock_bind_table[VSOCK_HASH_SIZE - 1] are for bound sockets and
224  * vsock_bind_table[VSOCK_HASH_SIZE] is for unbound sockets.  The hash function
225  * mods with VSOCK_HASH_SIZE to ensure this.
226  */
227 #define MAX_PORT_RETRIES        24
228 
229 #define VSOCK_HASH(addr)        ((addr)->svm_port % VSOCK_HASH_SIZE)
230 #define vsock_bound_sockets(addr) (&vsock_bind_table[VSOCK_HASH(addr)])
231 #define vsock_unbound_sockets     (&vsock_bind_table[VSOCK_HASH_SIZE])
232 
233 /* XXX This can probably be implemented in a better way. */
234 #define VSOCK_CONN_HASH(src, dst)				\
235 	(((src)->svm_cid ^ (dst)->svm_port) % VSOCK_HASH_SIZE)
236 #define vsock_connected_sockets(src, dst)		\
237 	(&vsock_connected_table[VSOCK_CONN_HASH(src, dst)])
238 #define vsock_connected_sockets_vsk(vsk)				\
239 	vsock_connected_sockets(&(vsk)->remote_addr, &(vsk)->local_addr)
240 
241 struct list_head vsock_bind_table[VSOCK_HASH_SIZE + 1];
242 EXPORT_SYMBOL_GPL(vsock_bind_table);
243 struct list_head vsock_connected_table[VSOCK_HASH_SIZE];
244 EXPORT_SYMBOL_GPL(vsock_connected_table);
245 DEFINE_SPINLOCK(vsock_table_lock);
246 EXPORT_SYMBOL_GPL(vsock_table_lock);
247 
248 /* Autobind this socket to the local address if necessary. */
249 static int vsock_auto_bind(struct vsock_sock *vsk)
250 {
251 	struct sock *sk = sk_vsock(vsk);
252 	struct sockaddr_vm local_addr;
253 
254 	if (vsock_addr_bound(&vsk->local_addr))
255 		return 0;
256 	vsock_addr_init(&local_addr, VMADDR_CID_ANY, VMADDR_PORT_ANY);
257 	return __vsock_bind(sk, &local_addr);
258 }
259 
260 static void vsock_init_tables(void)
261 {
262 	int i;
263 
264 	for (i = 0; i < ARRAY_SIZE(vsock_bind_table); i++)
265 		INIT_LIST_HEAD(&vsock_bind_table[i]);
266 
267 	for (i = 0; i < ARRAY_SIZE(vsock_connected_table); i++)
268 		INIT_LIST_HEAD(&vsock_connected_table[i]);
269 }
270 
271 static void __vsock_insert_bound(struct list_head *list,
272 				 struct vsock_sock *vsk)
273 {
274 	sock_hold(&vsk->sk);
275 	list_add(&vsk->bound_table, list);
276 }
277 
278 static void __vsock_insert_connected(struct list_head *list,
279 				     struct vsock_sock *vsk)
280 {
281 	sock_hold(&vsk->sk);
282 	list_add(&vsk->connected_table, list);
283 }
284 
285 static void __vsock_remove_bound(struct vsock_sock *vsk)
286 {
287 	list_del_init(&vsk->bound_table);
288 	sock_put(&vsk->sk);
289 }
290 
291 static void __vsock_remove_connected(struct vsock_sock *vsk)
292 {
293 	list_del_init(&vsk->connected_table);
294 	sock_put(&vsk->sk);
295 }
296 
297 static struct sock *__vsock_find_bound_socket_net(struct sockaddr_vm *addr,
298 						  struct net *net)
299 {
300 	struct vsock_sock *vsk;
301 
302 	list_for_each_entry(vsk, vsock_bound_sockets(addr), bound_table) {
303 		struct sock *sk = sk_vsock(vsk);
304 
305 		if (vsock_addr_equals_addr(addr, &vsk->local_addr) &&
306 		    vsock_net_check_mode(sock_net(sk), net))
307 			return sk;
308 
309 		if (addr->svm_port == vsk->local_addr.svm_port &&
310 		    (vsk->local_addr.svm_cid == VMADDR_CID_ANY ||
311 		     addr->svm_cid == VMADDR_CID_ANY) &&
312 		     vsock_net_check_mode(sock_net(sk), net))
313 			return sk;
314 	}
315 
316 	return NULL;
317 }
318 
319 static struct sock *
320 __vsock_find_connected_socket_net(struct sockaddr_vm *src,
321 				  struct sockaddr_vm *dst, struct net *net)
322 {
323 	struct vsock_sock *vsk;
324 
325 	list_for_each_entry(vsk, vsock_connected_sockets(src, dst),
326 			    connected_table) {
327 		struct sock *sk = sk_vsock(vsk);
328 
329 		if (vsock_addr_equals_addr(src, &vsk->remote_addr) &&
330 		    dst->svm_port == vsk->local_addr.svm_port &&
331 		    vsock_net_check_mode(sock_net(sk), net)) {
332 			return sk;
333 		}
334 	}
335 
336 	return NULL;
337 }
338 
339 static void vsock_insert_unbound(struct vsock_sock *vsk)
340 {
341 	spin_lock_bh(&vsock_table_lock);
342 	__vsock_insert_bound(vsock_unbound_sockets, vsk);
343 	spin_unlock_bh(&vsock_table_lock);
344 }
345 
346 void vsock_insert_connected(struct vsock_sock *vsk)
347 {
348 	struct list_head *list = vsock_connected_sockets(
349 		&vsk->remote_addr, &vsk->local_addr);
350 
351 	spin_lock_bh(&vsock_table_lock);
352 	__vsock_insert_connected(list, vsk);
353 	spin_unlock_bh(&vsock_table_lock);
354 }
355 EXPORT_SYMBOL_GPL(vsock_insert_connected);
356 
357 void vsock_remove_bound(struct vsock_sock *vsk)
358 {
359 	spin_lock_bh(&vsock_table_lock);
360 	if (__vsock_in_bound_table(vsk))
361 		__vsock_remove_bound(vsk);
362 	spin_unlock_bh(&vsock_table_lock);
363 }
364 EXPORT_SYMBOL_GPL(vsock_remove_bound);
365 
366 void vsock_remove_connected(struct vsock_sock *vsk)
367 {
368 	spin_lock_bh(&vsock_table_lock);
369 	if (__vsock_in_connected_table(vsk))
370 		__vsock_remove_connected(vsk);
371 	spin_unlock_bh(&vsock_table_lock);
372 }
373 EXPORT_SYMBOL_GPL(vsock_remove_connected);
374 
375 /* Find a bound socket, filtering by namespace and namespace mode.
376  *
377  * Use this in transports that are namespace-aware and can provide the
378  * network namespace context.
379  */
380 struct sock *vsock_find_bound_socket_net(struct sockaddr_vm *addr,
381 					 struct net *net)
382 {
383 	struct sock *sk;
384 
385 	spin_lock_bh(&vsock_table_lock);
386 	sk = __vsock_find_bound_socket_net(addr, net);
387 	if (sk)
388 		sock_hold(sk);
389 
390 	spin_unlock_bh(&vsock_table_lock);
391 
392 	return sk;
393 }
394 EXPORT_SYMBOL_GPL(vsock_find_bound_socket_net);
395 
396 /* Find a bound socket without namespace filtering.
397  *
398  * Use this in transports that lack namespace context. All sockets are
399  * treated as if in global mode.
400  */
401 struct sock *vsock_find_bound_socket(struct sockaddr_vm *addr)
402 {
403 	return vsock_find_bound_socket_net(addr, NULL);
404 }
405 EXPORT_SYMBOL_GPL(vsock_find_bound_socket);
406 
407 /* Find a connected socket, filtering by namespace and namespace mode.
408  *
409  * Use this in transports that are namespace-aware and can provide the
410  * network namespace context.
411  */
412 struct sock *vsock_find_connected_socket_net(struct sockaddr_vm *src,
413 					     struct sockaddr_vm *dst,
414 					     struct net *net)
415 {
416 	struct sock *sk;
417 
418 	spin_lock_bh(&vsock_table_lock);
419 	sk = __vsock_find_connected_socket_net(src, dst, net);
420 	if (sk)
421 		sock_hold(sk);
422 
423 	spin_unlock_bh(&vsock_table_lock);
424 
425 	return sk;
426 }
427 EXPORT_SYMBOL_GPL(vsock_find_connected_socket_net);
428 
429 /* Find a connected socket without namespace filtering.
430  *
431  * Use this in transports that lack namespace context. All sockets are
432  * treated as if in global mode.
433  */
434 struct sock *vsock_find_connected_socket(struct sockaddr_vm *src,
435 					 struct sockaddr_vm *dst)
436 {
437 	return vsock_find_connected_socket_net(src, dst, NULL);
438 }
439 EXPORT_SYMBOL_GPL(vsock_find_connected_socket);
440 
441 /**
442  * vsock_check_source - validate a packet source against a socket peer
443  * @vsk: socket receiving the packet
444  * @transport: transport receiving the packet
445  * @src: source address from the packet
446  *
447  * Return: true if the packet arrived on the socket's assigned transport and
448  * its source matches the stored peer. Loopback packets are generated
449  * internally and always use the local CID as their source, including
450  * connections using a valid CID alias.
451  *
452  * The caller must hold the socket lock and must not call this for listening
453  * sockets, which accept packets from any source and have no assigned
454  * transport.
455  */
456 bool vsock_check_source(const struct vsock_sock *vsk,
457 			const struct vsock_transport *transport,
458 			const struct sockaddr_vm *src)
459 {
460 	if (vsk->transport != transport)
461 		return false;
462 
463 	if (src->svm_port != vsk->remote_addr.svm_port)
464 		return false;
465 
466 	if (src->svm_cid == vsk->remote_addr.svm_cid)
467 		return true;
468 
469 	return transport->get_local_cid() == VMADDR_CID_LOCAL;
470 }
471 EXPORT_SYMBOL_GPL(vsock_check_source);
472 
473 void vsock_remove_sock(struct vsock_sock *vsk)
474 {
475 	/* Transport reassignment must not remove the binding. */
476 	if (sock_flag(sk_vsock(vsk), SOCK_DEAD))
477 		vsock_remove_bound(vsk);
478 
479 	vsock_remove_connected(vsk);
480 }
481 EXPORT_SYMBOL_GPL(vsock_remove_sock);
482 
483 void vsock_for_each_connected_socket(struct vsock_transport *transport,
484 				     void (*fn)(struct sock *sk))
485 {
486 	int i;
487 
488 	spin_lock_bh(&vsock_table_lock);
489 
490 	for (i = 0; i < ARRAY_SIZE(vsock_connected_table); i++) {
491 		struct vsock_sock *vsk;
492 		list_for_each_entry(vsk, &vsock_connected_table[i],
493 				    connected_table) {
494 			if (vsk->transport != transport)
495 				continue;
496 
497 			fn(sk_vsock(vsk));
498 		}
499 	}
500 
501 	spin_unlock_bh(&vsock_table_lock);
502 }
503 EXPORT_SYMBOL_GPL(vsock_for_each_connected_socket);
504 
505 void vsock_add_pending(struct sock *listener, struct sock *pending)
506 {
507 	struct vsock_sock *vlistener;
508 	struct vsock_sock *vpending;
509 
510 	vlistener = vsock_sk(listener);
511 	vpending = vsock_sk(pending);
512 
513 	sock_hold(pending);
514 	sock_hold(listener);
515 	list_add_tail(&vpending->pending_links, &vlistener->pending_links);
516 	sk_acceptq_added(listener);
517 }
518 EXPORT_SYMBOL_GPL(vsock_add_pending);
519 
520 void vsock_remove_pending(struct sock *listener, struct sock *pending)
521 {
522 	struct vsock_sock *vpending = vsock_sk(pending);
523 
524 	list_del_init(&vpending->pending_links);
525 	sock_put(listener);
526 	sock_put(pending);
527 	sk_acceptq_removed(listener);
528 }
529 EXPORT_SYMBOL_GPL(vsock_remove_pending);
530 
531 void vsock_pending_to_accept(struct sock *listener, struct sock *pending)
532 {
533 	struct vsock_sock *vpending = vsock_sk(pending);
534 	struct vsock_sock *vlistener = vsock_sk(listener);
535 
536 	list_del_init(&vpending->pending_links);
537 	list_add_tail(&vpending->accept_queue, &vlistener->accept_queue);
538 }
539 EXPORT_SYMBOL_GPL(vsock_pending_to_accept);
540 
541 void vsock_enqueue_accept(struct sock *listener, struct sock *connected)
542 {
543 	struct vsock_sock *vlistener;
544 	struct vsock_sock *vconnected;
545 
546 	vlistener = vsock_sk(listener);
547 	vconnected = vsock_sk(connected);
548 
549 	sock_hold(connected);
550 	sock_hold(listener);
551 	list_add_tail(&vconnected->accept_queue, &vlistener->accept_queue);
552 	sk_acceptq_added(listener);
553 }
554 EXPORT_SYMBOL_GPL(vsock_enqueue_accept);
555 
556 static bool vsock_use_local_transport(unsigned int remote_cid)
557 {
558 	lockdep_assert_held(&vsock_register_mutex);
559 
560 	if (!transport_local)
561 		return false;
562 
563 	if (remote_cid == VMADDR_CID_LOCAL)
564 		return true;
565 
566 	if (transport_g2h) {
567 		return remote_cid == transport_g2h->get_local_cid();
568 	} else {
569 		return remote_cid == VMADDR_CID_HOST;
570 	}
571 }
572 
573 static void vsock_deassign_transport(struct vsock_sock *vsk)
574 {
575 	if (!vsk->transport)
576 		return;
577 
578 	vsk->transport->destruct(vsk);
579 	module_put(vsk->transport->module);
580 	vsk->transport = NULL;
581 }
582 
583 /* Assign a transport to a socket and call the .init transport callback.
584  *
585  * Note: for connection oriented socket this must be called when vsk->remote_addr
586  * is set (e.g. during the connect() or when a connection request on a listener
587  * socket is received).
588  * The vsk->remote_addr is used to decide which transport to use:
589  *  - remote CID == VMADDR_CID_LOCAL or g2h->local_cid or VMADDR_CID_HOST if
590  *    g2h is not loaded, will use local transport;
591  *  - remote CID <= VMADDR_CID_HOST or remote flags field includes
592  *    VMADDR_FLAG_TO_HOST, will use guest->host transport;
593  *  - remote CID > VMADDR_CID_HOST and h2g is loaded and h2g claims that CID,
594  *    will use host->guest transport;
595  *  - h2g not loaded or h2g does not claim that CID and g2h claims the CID via
596  *    has_remote_cid, will use guest->host transport (when g2h_fallback=1)
597  *  - anything else goes to h2g or returns -ENODEV if no h2g is available
598  */
599 int vsock_assign_transport(struct vsock_sock *vsk, struct vsock_sock *psk)
600 {
601 	const struct vsock_transport *new_transport;
602 	struct sock *sk = sk_vsock(vsk);
603 	unsigned int remote_cid = vsk->remote_addr.svm_cid;
604 	__u8 remote_flags;
605 	int ret;
606 
607 	/* If the packet is coming with the source and destination CIDs higher
608 	 * than VMADDR_CID_HOST, then a vsock channel where all the packets are
609 	 * forwarded to the host should be established. Then the host will
610 	 * need to forward the packets to the guest.
611 	 *
612 	 * The flag is set on the (listen) receive path (psk is not NULL). On
613 	 * the connect path the flag can be set by the user space application.
614 	 */
615 	if (psk && vsk->local_addr.svm_cid > VMADDR_CID_HOST &&
616 	    vsk->remote_addr.svm_cid > VMADDR_CID_HOST)
617 		vsk->remote_addr.svm_flags |= VMADDR_FLAG_TO_HOST;
618 
619 	remote_flags = vsk->remote_addr.svm_flags;
620 
621 	mutex_lock(&vsock_register_mutex);
622 
623 	switch (sk->sk_type) {
624 	case SOCK_DGRAM:
625 		new_transport = transport_dgram;
626 		break;
627 	case SOCK_STREAM:
628 	case SOCK_SEQPACKET:
629 		if (vsock_use_local_transport(remote_cid))
630 			new_transport = transport_local;
631 		else if (remote_cid <= VMADDR_CID_HOST ||
632 			 (remote_flags & VMADDR_FLAG_TO_HOST))
633 			new_transport = transport_g2h;
634 		else if (transport_h2g &&
635 			 (!transport_h2g->has_remote_cid ||
636 			  transport_h2g->has_remote_cid(vsk, remote_cid)))
637 			new_transport = transport_h2g;
638 		else if (sock_net(sk)->vsock.g2h_fallback &&
639 			 transport_g2h && transport_g2h->has_remote_cid &&
640 			 transport_g2h->has_remote_cid(vsk, remote_cid)) {
641 			vsk->remote_addr.svm_flags |= VMADDR_FLAG_TO_HOST;
642 			new_transport = transport_g2h;
643 		} else {
644 			new_transport = transport_h2g;
645 		}
646 		break;
647 	default:
648 		ret = -ESOCKTNOSUPPORT;
649 		goto err;
650 	}
651 
652 	if (vsk->transport && vsk->transport == new_transport) {
653 		ret = 0;
654 		goto err;
655 	}
656 
657 	/* We increase the module refcnt to prevent the transport unloading
658 	 * while there are open sockets assigned to it.
659 	 */
660 	if (!new_transport || !try_module_get(new_transport->module)) {
661 		ret = -ENODEV;
662 		goto err;
663 	}
664 
665 	/* It's safe to release the mutex after a successful try_module_get().
666 	 * Whichever transport `new_transport` points at, it won't go away until
667 	 * the last module_put() below or in vsock_deassign_transport().
668 	 */
669 	mutex_unlock(&vsock_register_mutex);
670 
671 	if (vsk->transport) {
672 		/* transport->release() must be called with sock lock acquired.
673 		 * This path can only be taken during vsock_connect(), where we
674 		 * have already held the sock lock. In the other cases, this
675 		 * function is called on a new socket which is not assigned to
676 		 * any transport.
677 		 */
678 		vsk->transport->release(vsk);
679 		vsock_deassign_transport(vsk);
680 
681 		/* transport's release() and destruct() can touch some socket
682 		 * state, since we are reassigning the socket to a new transport
683 		 * during vsock_connect(), let's reset these fields to have a
684 		 * clean state.
685 		 */
686 		sock_reset_flag(sk, SOCK_DONE);
687 		sk->sk_state = TCP_CLOSE;
688 		WRITE_ONCE(vsk->peer_shutdown, 0);
689 	}
690 
691 	if (sk->sk_type == SOCK_SEQPACKET) {
692 		if (!new_transport->seqpacket_allow ||
693 		    !new_transport->seqpacket_allow(vsk, remote_cid)) {
694 			module_put(new_transport->module);
695 			return -ESOCKTNOSUPPORT;
696 		}
697 	}
698 
699 	ret = new_transport->init(vsk, psk);
700 	if (ret) {
701 		module_put(new_transport->module);
702 		return ret;
703 	}
704 
705 	vsk->transport = new_transport;
706 
707 	return 0;
708 err:
709 	mutex_unlock(&vsock_register_mutex);
710 	return ret;
711 }
712 EXPORT_SYMBOL_GPL(vsock_assign_transport);
713 
714 /*
715  * Provide safe access to static transport_{h2g,g2h,dgram,local} callbacks.
716  * Otherwise we may race with module removal. Do not use on `vsk->transport`.
717  */
718 static u32 vsock_registered_transport_cid(const struct vsock_transport **transport)
719 {
720 	u32 cid = VMADDR_CID_ANY;
721 
722 	mutex_lock(&vsock_register_mutex);
723 	if (*transport)
724 		cid = (*transport)->get_local_cid();
725 	mutex_unlock(&vsock_register_mutex);
726 
727 	return cid;
728 }
729 
730 bool vsock_find_cid(unsigned int cid)
731 {
732 	if (cid == vsock_registered_transport_cid(&transport_g2h))
733 		return true;
734 
735 	if (transport_h2g && cid == VMADDR_CID_HOST)
736 		return true;
737 
738 	if (transport_local && cid == VMADDR_CID_LOCAL)
739 		return true;
740 
741 	return false;
742 }
743 EXPORT_SYMBOL_GPL(vsock_find_cid);
744 
745 static struct sock *vsock_dequeue_accept(struct sock *listener)
746 {
747 	struct vsock_sock *vlistener;
748 	struct vsock_sock *vconnected;
749 
750 	vlistener = vsock_sk(listener);
751 
752 	if (list_empty(&vlistener->accept_queue))
753 		return NULL;
754 
755 	vconnected = list_entry(vlistener->accept_queue.next,
756 				struct vsock_sock, accept_queue);
757 
758 	list_del_init(&vconnected->accept_queue);
759 	sock_put(listener);
760 	/* The caller will need a reference on the connected socket so we let
761 	 * it call sock_put().
762 	 */
763 
764 	return sk_vsock(vconnected);
765 }
766 
767 static bool vsock_is_accept_queue_empty(struct sock *sk)
768 {
769 	struct vsock_sock *vsk = vsock_sk(sk);
770 	return list_empty(&vsk->accept_queue);
771 }
772 
773 static bool vsock_is_pending(struct sock *sk)
774 {
775 	struct vsock_sock *vsk = vsock_sk(sk);
776 	return !list_empty(&vsk->pending_links);
777 }
778 
779 static int vsock_send_shutdown(struct sock *sk, int mode)
780 {
781 	struct vsock_sock *vsk = vsock_sk(sk);
782 
783 	if (!vsk->transport)
784 		return -ENODEV;
785 
786 	return vsk->transport->shutdown(vsk, mode);
787 }
788 
789 static void vsock_pending_work(struct work_struct *work)
790 {
791 	struct sock *sk;
792 	struct sock *listener;
793 	struct vsock_sock *vsk;
794 	bool cleanup;
795 
796 	vsk = container_of(work, struct vsock_sock, pending_work.work);
797 	sk = sk_vsock(vsk);
798 	listener = vsk->listener;
799 	cleanup = true;
800 
801 	lock_sock(listener);
802 	lock_sock_nested(sk, SINGLE_DEPTH_NESTING);
803 
804 	if (vsock_is_pending(sk)) {
805 		vsock_remove_pending(listener, sk);
806 	} else {
807 		/* We are not on the pending list so we must have been accepted
808 		 * by our user process. We just need to drop our references to
809 		 * the sockets and be on our way.
810 		 */
811 		cleanup = false;
812 		goto out;
813 	}
814 
815 	/* We need to remove ourself from the global connected sockets list so
816 	 * incoming packets can't find this socket, and to reduce the reference
817 	 * count.
818 	 */
819 	vsock_remove_connected(vsk);
820 
821 	sk->sk_state = TCP_CLOSE;
822 
823 out:
824 	release_sock(sk);
825 	release_sock(listener);
826 	if (cleanup)
827 		sock_put(sk);
828 
829 	sock_put(sk);
830 	sock_put(listener);
831 }
832 
833 /**** SOCKET OPERATIONS ****/
834 
835 static int __vsock_bind_connectible(struct vsock_sock *vsk,
836 				    struct sockaddr_vm *addr)
837 {
838 	struct net *net = sock_net(sk_vsock(vsk));
839 	struct sockaddr_vm new_addr;
840 
841 	if (!net->vsock.port)
842 		net->vsock.port = get_random_u32_above(LAST_RESERVED_PORT);
843 
844 	vsock_addr_init(&new_addr, addr->svm_cid, addr->svm_port);
845 
846 	if (addr->svm_port == VMADDR_PORT_ANY) {
847 		bool found = false;
848 		unsigned int i;
849 
850 		for (i = 0; i < MAX_PORT_RETRIES; i++) {
851 			if (net->vsock.port == VMADDR_PORT_ANY ||
852 			    net->vsock.port <= LAST_RESERVED_PORT)
853 				net->vsock.port = LAST_RESERVED_PORT + 1;
854 
855 			new_addr.svm_port = net->vsock.port++;
856 
857 			if (!__vsock_find_bound_socket_net(&new_addr, net)) {
858 				found = true;
859 				break;
860 			}
861 		}
862 
863 		if (!found)
864 			return -EADDRNOTAVAIL;
865 	} else {
866 		/* If port is in reserved range, ensure caller
867 		 * has necessary privileges.
868 		 */
869 		if (addr->svm_port <= LAST_RESERVED_PORT &&
870 		    !capable(CAP_NET_BIND_SERVICE)) {
871 			return -EACCES;
872 		}
873 
874 		if (__vsock_find_bound_socket_net(&new_addr, net))
875 			return -EADDRINUSE;
876 	}
877 
878 	vsock_addr_init(&vsk->local_addr, new_addr.svm_cid, new_addr.svm_port);
879 
880 	/* Remove connection oriented sockets from the unbound list and add them
881 	 * to the hash table for easy lookup by its address.  The unbound list
882 	 * is simply an extra entry at the end of the hash table, a trick used
883 	 * by AF_UNIX.
884 	 */
885 	__vsock_remove_bound(vsk);
886 	__vsock_insert_bound(vsock_bound_sockets(&vsk->local_addr), vsk);
887 
888 	return 0;
889 }
890 
891 static int __vsock_bind_dgram(struct vsock_sock *vsk,
892 			      struct sockaddr_vm *addr)
893 {
894 	return vsk->transport->dgram_bind(vsk, addr);
895 }
896 
897 static int __vsock_bind(struct sock *sk, struct sockaddr_vm *addr)
898 {
899 	struct vsock_sock *vsk = vsock_sk(sk);
900 	int retval;
901 
902 	/* First ensure this socket isn't already bound. */
903 	if (vsock_addr_bound(&vsk->local_addr))
904 		return -EINVAL;
905 
906 	/* Now bind to the provided address or select appropriate values if
907 	 * none are provided (VMADDR_CID_ANY and VMADDR_PORT_ANY).  Note that
908 	 * like AF_INET prevents binding to a non-local IP address (in most
909 	 * cases), we only allow binding to a local CID.
910 	 */
911 	if (addr->svm_cid != VMADDR_CID_ANY && !vsock_find_cid(addr->svm_cid))
912 		return -EADDRNOTAVAIL;
913 
914 	switch (sk->sk_socket->type) {
915 	case SOCK_STREAM:
916 	case SOCK_SEQPACKET:
917 		spin_lock_bh(&vsock_table_lock);
918 		retval = __vsock_bind_connectible(vsk, addr);
919 		spin_unlock_bh(&vsock_table_lock);
920 		break;
921 
922 	case SOCK_DGRAM:
923 		retval = __vsock_bind_dgram(vsk, addr);
924 		break;
925 
926 	default:
927 		retval = -EINVAL;
928 		break;
929 	}
930 
931 	return retval;
932 }
933 
934 static void vsock_connect_timeout(struct work_struct *work);
935 
936 static struct sock *__vsock_create(struct net *net,
937 				   struct socket *sock,
938 				   struct sock *parent,
939 				   gfp_t priority,
940 				   unsigned short type,
941 				   int kern)
942 {
943 	struct sock *sk;
944 	struct vsock_sock *psk;
945 	struct vsock_sock *vsk;
946 
947 	sk = sk_alloc(net, AF_VSOCK, priority, &vsock_proto, kern);
948 	if (!sk)
949 		return NULL;
950 
951 	sock_init_data(sock, sk);
952 
953 	/* sk->sk_type is normally set in sock_init_data, but only if sock is
954 	 * non-NULL. We make sure that our sockets always have a type by
955 	 * setting it here if needed.
956 	 */
957 	if (!sock)
958 		sk->sk_type = type;
959 
960 	vsk = vsock_sk(sk);
961 	vsock_addr_init(&vsk->local_addr, VMADDR_CID_ANY, VMADDR_PORT_ANY);
962 	vsock_addr_init(&vsk->remote_addr, VMADDR_CID_ANY, VMADDR_PORT_ANY);
963 
964 	sk->sk_destruct = vsock_sk_destruct;
965 	sk->sk_backlog_rcv = vsock_queue_rcv_skb;
966 	sock_reset_flag(sk, SOCK_DONE);
967 
968 	INIT_LIST_HEAD(&vsk->bound_table);
969 	INIT_LIST_HEAD(&vsk->connected_table);
970 	vsk->listener = NULL;
971 	INIT_LIST_HEAD(&vsk->pending_links);
972 	INIT_LIST_HEAD(&vsk->accept_queue);
973 	vsk->sent_request = false;
974 	vsk->ignore_connecting_rst = false;
975 	WRITE_ONCE(vsk->peer_shutdown, 0);
976 	INIT_DELAYED_WORK(&vsk->connect_work, vsock_connect_timeout);
977 	INIT_DELAYED_WORK(&vsk->pending_work, vsock_pending_work);
978 
979 	psk = parent ? vsock_sk(parent) : NULL;
980 	if (parent) {
981 		vsk->trusted = psk->trusted;
982 		vsk->owner = get_cred(psk->owner);
983 		vsk->connect_timeout = psk->connect_timeout;
984 		vsk->buffer_size = psk->buffer_size;
985 		vsk->buffer_min_size = psk->buffer_min_size;
986 		vsk->buffer_max_size = psk->buffer_max_size;
987 		security_sk_clone(parent, sk);
988 	} else {
989 		vsk->trusted = ns_capable_noaudit(&init_user_ns, CAP_NET_ADMIN);
990 		vsk->owner = get_current_cred();
991 		vsk->connect_timeout = VSOCK_DEFAULT_CONNECT_TIMEOUT;
992 		vsk->buffer_size = VSOCK_DEFAULT_BUFFER_SIZE;
993 		vsk->buffer_min_size = VSOCK_DEFAULT_BUFFER_MIN_SIZE;
994 		vsk->buffer_max_size = VSOCK_DEFAULT_BUFFER_MAX_SIZE;
995 	}
996 
997 	return sk;
998 }
999 
1000 static bool sock_type_connectible(u16 type)
1001 {
1002 	return (type == SOCK_STREAM) || (type == SOCK_SEQPACKET);
1003 }
1004 
1005 static void __vsock_release(struct sock *sk, int level)
1006 {
1007 	struct vsock_sock *vsk;
1008 	struct sock *pending;
1009 
1010 	vsk = vsock_sk(sk);
1011 	pending = NULL;	/* Compiler warning. */
1012 
1013 	/* When "level" is SINGLE_DEPTH_NESTING, use the nested
1014 	 * version to avoid the warning "possible recursive locking
1015 	 * detected". When "level" is 0, lock_sock_nested(sk, level)
1016 	 * is the same as lock_sock(sk).
1017 	 */
1018 	lock_sock_nested(sk, level);
1019 
1020 	/* Indicate to vsock_remove_sock() that the socket is being released and
1021 	 * can be removed from the bound_table. Unlike transport reassignment
1022 	 * case, where the socket must remain bound despite vsock_remove_sock()
1023 	 * being called from the transport release() callback.
1024 	 */
1025 	sock_set_flag(sk, SOCK_DEAD);
1026 
1027 	if (vsk->transport)
1028 		vsk->transport->release(vsk);
1029 	else if (sock_type_connectible(sk->sk_type))
1030 		vsock_remove_sock(vsk);
1031 
1032 	sock_orphan(sk);
1033 	sk->sk_shutdown = SHUTDOWN_MASK;
1034 
1035 	skb_queue_purge(&sk->sk_receive_queue);
1036 
1037 	/* Clean up any sockets that never were accepted. */
1038 	while ((pending = vsock_dequeue_accept(sk)) != NULL) {
1039 		__vsock_release(pending, SINGLE_DEPTH_NESTING);
1040 		sock_put(pending);
1041 	}
1042 
1043 	release_sock(sk);
1044 	sock_put(sk);
1045 }
1046 
1047 static void vsock_sk_destruct(struct sock *sk)
1048 {
1049 	struct vsock_sock *vsk = vsock_sk(sk);
1050 
1051 	/* Flush MSG_ZEROCOPY leftovers. */
1052 	__skb_queue_purge(&sk->sk_error_queue);
1053 
1054 	vsock_deassign_transport(vsk);
1055 
1056 	/* When clearing these addresses, there's no need to set the family and
1057 	 * possibly register the address family with the kernel.
1058 	 */
1059 	vsock_addr_init(&vsk->local_addr, VMADDR_CID_ANY, VMADDR_PORT_ANY);
1060 	vsock_addr_init(&vsk->remote_addr, VMADDR_CID_ANY, VMADDR_PORT_ANY);
1061 
1062 	put_cred(vsk->owner);
1063 }
1064 
1065 static int vsock_queue_rcv_skb(struct sock *sk, struct sk_buff *skb)
1066 {
1067 	int err;
1068 
1069 	err = sock_queue_rcv_skb(sk, skb);
1070 	if (err)
1071 		kfree_skb(skb);
1072 
1073 	return err;
1074 }
1075 
1076 struct sock *vsock_create_connected(struct sock *parent)
1077 {
1078 	return __vsock_create(sock_net(parent), NULL, parent, GFP_KERNEL,
1079 			      parent->sk_type, 0);
1080 }
1081 EXPORT_SYMBOL_GPL(vsock_create_connected);
1082 
1083 s64 vsock_stream_has_data(struct vsock_sock *vsk)
1084 {
1085 	if (WARN_ON(!vsk->transport))
1086 		return 0;
1087 
1088 	return vsk->transport->stream_has_data(vsk);
1089 }
1090 EXPORT_SYMBOL_GPL(vsock_stream_has_data);
1091 
1092 s64 vsock_connectible_has_data(struct vsock_sock *vsk)
1093 {
1094 	struct sock *sk = sk_vsock(vsk);
1095 
1096 	if (WARN_ON(!vsk->transport))
1097 		return 0;
1098 
1099 	if (sk->sk_type == SOCK_SEQPACKET)
1100 		return vsk->transport->seqpacket_has_data(vsk);
1101 	else
1102 		return vsock_stream_has_data(vsk);
1103 }
1104 EXPORT_SYMBOL_GPL(vsock_connectible_has_data);
1105 
1106 s64 vsock_stream_has_space(struct vsock_sock *vsk)
1107 {
1108 	if (WARN_ON(!vsk->transport))
1109 		return 0;
1110 
1111 	return vsk->transport->stream_has_space(vsk);
1112 }
1113 EXPORT_SYMBOL_GPL(vsock_stream_has_space);
1114 
1115 void vsock_data_ready(struct sock *sk)
1116 {
1117 	struct vsock_sock *vsk = vsock_sk(sk);
1118 
1119 	if (vsock_stream_has_data(vsk) >= sk->sk_rcvlowat ||
1120 	    sock_flag(sk, SOCK_DONE))
1121 		sk->sk_data_ready(sk);
1122 }
1123 EXPORT_SYMBOL_GPL(vsock_data_ready);
1124 
1125 /* Dummy callback required by sockmap.
1126  * See unconditional call of saved_close() in sock_map_close().
1127  */
1128 static void vsock_close(struct sock *sk, long timeout)
1129 {
1130 }
1131 
1132 static int vsock_release(struct socket *sock)
1133 {
1134 	struct sock *sk = sock->sk;
1135 
1136 	if (!sk)
1137 		return 0;
1138 
1139 	sk->sk_prot->close(sk, 0);
1140 	__vsock_release(sk, 0);
1141 	sock->sk = NULL;
1142 	sock->state = SS_FREE;
1143 
1144 	return 0;
1145 }
1146 
1147 static int
1148 vsock_bind(struct socket *sock, struct sockaddr_unsized *addr, int addr_len)
1149 {
1150 	int err;
1151 	struct sock *sk;
1152 	struct sockaddr_vm *vm_addr;
1153 
1154 	sk = sock->sk;
1155 
1156 	if (vsock_addr_cast(addr, addr_len, &vm_addr) != 0)
1157 		return -EINVAL;
1158 
1159 	lock_sock(sk);
1160 	err = __vsock_bind(sk, vm_addr);
1161 	release_sock(sk);
1162 
1163 	return err;
1164 }
1165 
1166 static int vsock_getname(struct socket *sock,
1167 			 struct sockaddr *addr, int peer)
1168 {
1169 	int err;
1170 	struct sock *sk;
1171 	struct vsock_sock *vsk;
1172 	struct sockaddr_vm *vm_addr;
1173 
1174 	sk = sock->sk;
1175 	vsk = vsock_sk(sk);
1176 	err = 0;
1177 
1178 	lock_sock(sk);
1179 
1180 	if (peer) {
1181 		if (sock->state != SS_CONNECTED) {
1182 			err = -ENOTCONN;
1183 			goto out;
1184 		}
1185 		vm_addr = &vsk->remote_addr;
1186 	} else {
1187 		vm_addr = &vsk->local_addr;
1188 	}
1189 
1190 	BUILD_BUG_ON(sizeof(*vm_addr) > sizeof(struct sockaddr_storage));
1191 	memcpy(addr, vm_addr, sizeof(*vm_addr));
1192 	err = sizeof(*vm_addr);
1193 
1194 out:
1195 	release_sock(sk);
1196 	return err;
1197 }
1198 
1199 void vsock_linger(struct sock *sk)
1200 {
1201 	DEFINE_WAIT_FUNC(wait, woken_wake_function);
1202 	ssize_t (*unsent)(struct vsock_sock *vsk);
1203 	struct vsock_sock *vsk = vsock_sk(sk);
1204 	long timeout;
1205 
1206 	if (!sock_flag(sk, SOCK_LINGER))
1207 		return;
1208 
1209 	timeout = sk->sk_lingertime;
1210 	if (!timeout)
1211 		return;
1212 
1213 	/* Transports must implement `unsent_bytes` if they want to support
1214 	 * SOCK_LINGER through `vsock_linger()` since we use it to check when
1215 	 * the socket can be closed.
1216 	 */
1217 	unsent = vsk->transport->unsent_bytes;
1218 	if (!unsent)
1219 		return;
1220 
1221 	add_wait_queue(sk_sleep(sk), &wait);
1222 
1223 	do {
1224 		if (sk_wait_event(sk, &timeout, unsent(vsk) == 0, &wait))
1225 			break;
1226 	} while (!signal_pending(current) && timeout);
1227 
1228 	remove_wait_queue(sk_sleep(sk), &wait);
1229 }
1230 EXPORT_SYMBOL_GPL(vsock_linger);
1231 
1232 static int vsock_shutdown(struct socket *sock, int mode)
1233 {
1234 	int err;
1235 	struct sock *sk;
1236 
1237 	/* User level uses SHUT_RD (0) and SHUT_WR (1), but the kernel uses
1238 	 * RCV_SHUTDOWN (1) and SEND_SHUTDOWN (2), so we must increment mode
1239 	 * here like the other address families do.  Note also that the
1240 	 * increment makes SHUT_RDWR (2) into RCV_SHUTDOWN | SEND_SHUTDOWN (3),
1241 	 * which is what we want.
1242 	 */
1243 	mode++;
1244 
1245 	if ((mode & ~SHUTDOWN_MASK) || !mode)
1246 		return -EINVAL;
1247 
1248 	/* If this is a connection oriented socket and it is not connected then
1249 	 * bail out immediately.  If it is a DGRAM socket then we must first
1250 	 * kick the socket so that it wakes up from any sleeping calls, for
1251 	 * example recv(), and then afterwards return the error.
1252 	 */
1253 
1254 	sk = sock->sk;
1255 
1256 	lock_sock(sk);
1257 	if (sock->state == SS_UNCONNECTED) {
1258 		err = -ENOTCONN;
1259 		if (sock_type_connectible(sk->sk_type))
1260 			goto out;
1261 	} else {
1262 		sock->state = SS_DISCONNECTING;
1263 		err = 0;
1264 	}
1265 
1266 	/* Receive and send shutdowns are treated alike. */
1267 	mode = mode & (RCV_SHUTDOWN | SEND_SHUTDOWN);
1268 	if (mode) {
1269 		sk->sk_shutdown |= mode;
1270 		sk->sk_state_change(sk);
1271 
1272 		if (sock_type_connectible(sk->sk_type)) {
1273 			sock_reset_flag(sk, SOCK_DONE);
1274 			vsock_send_shutdown(sk, mode);
1275 		}
1276 	}
1277 
1278 out:
1279 	release_sock(sk);
1280 	return err;
1281 }
1282 
1283 static __poll_t vsock_poll_shutdown(struct sock *sk, u32 peer_shutdown)
1284 {
1285 	__poll_t mask = 0;
1286 
1287 	/* INET sockets treat local write shutdown and peer write shutdown as a
1288 	 * case of EPOLLHUP set.
1289 	 */
1290 	if (sk->sk_shutdown == SHUTDOWN_MASK ||
1291 	    ((sk->sk_shutdown & SEND_SHUTDOWN) &&
1292 	     (peer_shutdown & SEND_SHUTDOWN)))
1293 		mask |= EPOLLHUP;
1294 
1295 	if (sk->sk_shutdown & RCV_SHUTDOWN ||
1296 	    peer_shutdown & SEND_SHUTDOWN)
1297 		mask |= EPOLLRDHUP;
1298 
1299 	return mask;
1300 }
1301 
1302 static __poll_t vsock_poll(struct file *file, struct socket *sock,
1303 			       poll_table *wait)
1304 {
1305 	struct sock *sk;
1306 	__poll_t mask;
1307 	struct vsock_sock *vsk;
1308 
1309 	sk = sock->sk;
1310 	vsk = vsock_sk(sk);
1311 
1312 	poll_wait(file, sk_sleep(sk), wait);
1313 	mask = 0;
1314 
1315 	if (sk->sk_err || !skb_queue_empty_lockless(&sk->sk_error_queue))
1316 		/* Signify that there has been an error on this socket. */
1317 		mask |= EPOLLERR;
1318 
1319 	if (sk_is_readable(sk))
1320 		mask |= EPOLLIN | EPOLLRDNORM;
1321 
1322 	if (sock->type == SOCK_DGRAM) {
1323 		u32 peer_shutdown = READ_ONCE(vsk->peer_shutdown);
1324 
1325 		/* DGRAM sockets do not take lock_sock() in poll(), so use one
1326 		 * lockless snapshot for all shutdown-derived mask bits.
1327 		 */
1328 		mask |= vsock_poll_shutdown(sk, peer_shutdown);
1329 
1330 		/* For datagram sockets we can read if there is something in
1331 		 * the queue and write as long as the socket isn't shutdown for
1332 		 * sending.
1333 		 */
1334 		if (!skb_queue_empty_lockless(&sk->sk_receive_queue) ||
1335 		    (sk->sk_shutdown & RCV_SHUTDOWN)) {
1336 			mask |= EPOLLIN | EPOLLRDNORM;
1337 		}
1338 
1339 		if (!(sk->sk_shutdown & SEND_SHUTDOWN))
1340 			mask |= EPOLLOUT | EPOLLWRNORM | EPOLLWRBAND;
1341 
1342 	} else if (sock_type_connectible(sk->sk_type)) {
1343 		const struct vsock_transport *transport;
1344 		u32 peer_shutdown;
1345 
1346 		lock_sock(sk);
1347 
1348 		transport = vsk->transport;
1349 
1350 		/* Listening sockets that have connections in their accept
1351 		 * queue can be read.
1352 		 */
1353 		if (sk->sk_state == TCP_LISTEN
1354 		    && !vsock_is_accept_queue_empty(sk))
1355 			mask |= EPOLLIN | EPOLLRDNORM;
1356 
1357 		/* If there is something in the queue then we can read. */
1358 		if (transport && transport->stream_is_active(vsk) &&
1359 		    !(sk->sk_shutdown & RCV_SHUTDOWN)) {
1360 			bool data_ready_now = false;
1361 			int target = sock_rcvlowat(sk, 0, INT_MAX);
1362 			int ret = transport->notify_poll_in(
1363 					vsk, target, &data_ready_now);
1364 			if (ret < 0) {
1365 				mask |= EPOLLERR;
1366 			} else {
1367 				if (data_ready_now)
1368 					mask |= EPOLLIN | EPOLLRDNORM;
1369 
1370 			}
1371 		}
1372 
1373 		/* Sockets whose connections have been closed, reset, or
1374 		 * terminated should also be considered read, and we check the
1375 		 * shutdown flag for that.
1376 		 */
1377 		peer_shutdown = READ_ONCE(vsk->peer_shutdown);
1378 		mask |= vsock_poll_shutdown(sk, peer_shutdown);
1379 		if (sk->sk_shutdown & RCV_SHUTDOWN ||
1380 		    peer_shutdown & SEND_SHUTDOWN) {
1381 			mask |= EPOLLIN | EPOLLRDNORM;
1382 		}
1383 
1384 		/* Connected sockets that can produce data can be written. */
1385 		if (transport && sk->sk_state == TCP_ESTABLISHED) {
1386 			if (!(sk->sk_shutdown & SEND_SHUTDOWN)) {
1387 				bool space_avail_now = false;
1388 				int ret = transport->notify_poll_out(
1389 						vsk, 1, &space_avail_now);
1390 				if (ret < 0) {
1391 					mask |= EPOLLERR;
1392 				} else {
1393 					if (space_avail_now)
1394 						/* Remove EPOLLWRBAND since INET
1395 						 * sockets are not setting it.
1396 						 */
1397 						mask |= EPOLLOUT | EPOLLWRNORM;
1398 
1399 				}
1400 			}
1401 		}
1402 
1403 		/* Simulate INET socket poll behaviors, which sets
1404 		 * EPOLLOUT|EPOLLWRNORM when peer is closed and nothing to read,
1405 		 * but local send is not shutdown.
1406 		 */
1407 		if (sk->sk_state == TCP_CLOSE || sk->sk_state == TCP_CLOSING) {
1408 			if (!(sk->sk_shutdown & SEND_SHUTDOWN))
1409 				mask |= EPOLLOUT | EPOLLWRNORM;
1410 
1411 		}
1412 
1413 		release_sock(sk);
1414 	}
1415 
1416 	return mask;
1417 }
1418 
1419 static int vsock_read_skb(struct sock *sk, skb_read_actor_t read_actor)
1420 {
1421 	struct vsock_sock *vsk = vsock_sk(sk);
1422 
1423 	if (WARN_ON_ONCE(!vsk->transport))
1424 		return -ENODEV;
1425 
1426 	return vsk->transport->read_skb(vsk, read_actor);
1427 }
1428 
1429 static int vsock_dgram_sendmsg(struct socket *sock, struct msghdr *msg,
1430 			       size_t len)
1431 {
1432 	int err;
1433 	struct sock *sk;
1434 	struct vsock_sock *vsk;
1435 	struct sockaddr_vm *remote_addr;
1436 	const struct vsock_transport *transport;
1437 
1438 	if (msg->msg_flags & MSG_OOB)
1439 		return -EOPNOTSUPP;
1440 
1441 	/* For now, MSG_DONTWAIT is always assumed... */
1442 	err = 0;
1443 	sk = sock->sk;
1444 	vsk = vsock_sk(sk);
1445 
1446 	lock_sock(sk);
1447 
1448 	transport = vsk->transport;
1449 
1450 	err = vsock_auto_bind(vsk);
1451 	if (err)
1452 		goto out;
1453 
1454 
1455 	/* If the provided message contains an address, use that.  Otherwise
1456 	 * fall back on the socket's remote handle (if it has been connected).
1457 	 */
1458 	if (msg->msg_name &&
1459 	    vsock_addr_cast(msg->msg_name, msg->msg_namelen,
1460 			    &remote_addr) == 0) {
1461 		/* Ensure this address is of the right type and is a valid
1462 		 * destination.
1463 		 */
1464 
1465 		if (remote_addr->svm_cid == VMADDR_CID_ANY)
1466 			remote_addr->svm_cid = transport->get_local_cid();
1467 
1468 		if (!vsock_addr_bound(remote_addr)) {
1469 			err = -EINVAL;
1470 			goto out;
1471 		}
1472 	} else if (sock->state == SS_CONNECTED) {
1473 		remote_addr = &vsk->remote_addr;
1474 
1475 		if (remote_addr->svm_cid == VMADDR_CID_ANY)
1476 			remote_addr->svm_cid = transport->get_local_cid();
1477 
1478 		/* XXX Should connect() or this function ensure remote_addr is
1479 		 * bound?
1480 		 */
1481 		if (!vsock_addr_bound(&vsk->remote_addr)) {
1482 			err = -EINVAL;
1483 			goto out;
1484 		}
1485 	} else {
1486 		err = -EINVAL;
1487 		goto out;
1488 	}
1489 
1490 	if (!transport->dgram_allow(vsk, remote_addr->svm_cid,
1491 				    remote_addr->svm_port)) {
1492 		err = -EINVAL;
1493 		goto out;
1494 	}
1495 
1496 	err = transport->dgram_enqueue(vsk, remote_addr, msg, len);
1497 
1498 out:
1499 	release_sock(sk);
1500 	return err;
1501 }
1502 
1503 static int vsock_dgram_connect(struct socket *sock,
1504 			       struct sockaddr_unsized *addr, int addr_len, int flags)
1505 {
1506 	int err;
1507 	struct sock *sk;
1508 	struct vsock_sock *vsk;
1509 	struct sockaddr_vm *remote_addr;
1510 
1511 	sk = sock->sk;
1512 	vsk = vsock_sk(sk);
1513 
1514 	err = vsock_addr_cast(addr, addr_len, &remote_addr);
1515 	if (err == -EAFNOSUPPORT && remote_addr->svm_family == AF_UNSPEC) {
1516 		lock_sock(sk);
1517 		vsock_addr_init(&vsk->remote_addr, VMADDR_CID_ANY,
1518 				VMADDR_PORT_ANY);
1519 		sock->state = SS_UNCONNECTED;
1520 		release_sock(sk);
1521 		return 0;
1522 	} else if (err != 0)
1523 		return -EINVAL;
1524 
1525 	lock_sock(sk);
1526 
1527 	err = vsock_auto_bind(vsk);
1528 	if (err)
1529 		goto out;
1530 
1531 	if (!vsk->transport->dgram_allow(vsk, remote_addr->svm_cid,
1532 					 remote_addr->svm_port)) {
1533 		err = -EINVAL;
1534 		goto out;
1535 	}
1536 
1537 	memcpy(&vsk->remote_addr, remote_addr, sizeof(vsk->remote_addr));
1538 	sock->state = SS_CONNECTED;
1539 
1540 	/* sock map disallows redirection of non-TCP sockets with sk_state !=
1541 	 * TCP_ESTABLISHED (see sock_map_redirect_allowed()), so we set
1542 	 * TCP_ESTABLISHED here to allow redirection of connected vsock dgrams.
1543 	 *
1544 	 * This doesn't seem to be abnormal state for datagram sockets, as the
1545 	 * same approach can be see in other datagram socket types as well
1546 	 * (such as unix sockets).
1547 	 */
1548 	sk->sk_state = TCP_ESTABLISHED;
1549 
1550 out:
1551 	release_sock(sk);
1552 	return err;
1553 }
1554 
1555 int __vsock_dgram_recvmsg(struct socket *sock, struct msghdr *msg,
1556 			  size_t len, int flags)
1557 {
1558 	struct sock *sk = sock->sk;
1559 	struct vsock_sock *vsk = vsock_sk(sk);
1560 
1561 	return vsk->transport->dgram_dequeue(vsk, msg, len, flags);
1562 }
1563 
1564 int vsock_dgram_recvmsg(struct socket *sock, struct msghdr *msg,
1565 			size_t len, int flags)
1566 {
1567 #ifdef CONFIG_BPF_SYSCALL
1568 	struct sock *sk = sock->sk;
1569 	const struct proto *prot;
1570 
1571 	prot = READ_ONCE(sk->sk_prot);
1572 	if (prot != &vsock_proto)
1573 		return prot->recvmsg(sk, msg, len, flags);
1574 #endif
1575 
1576 	return __vsock_dgram_recvmsg(sock, msg, len, flags);
1577 }
1578 EXPORT_SYMBOL_GPL(vsock_dgram_recvmsg);
1579 
1580 static int vsock_do_ioctl(struct socket *sock, unsigned int cmd,
1581 			  int __user *arg)
1582 {
1583 	struct sock *sk = sock->sk;
1584 	struct vsock_sock *vsk;
1585 	int ret;
1586 
1587 	vsk = vsock_sk(sk);
1588 
1589 	switch (cmd) {
1590 	case SIOCINQ: {
1591 		ssize_t n_bytes;
1592 
1593 		if (!vsk->transport) {
1594 			ret = -EOPNOTSUPP;
1595 			break;
1596 		}
1597 
1598 		if (sock_type_connectible(sk->sk_type) &&
1599 		    sk->sk_state == TCP_LISTEN) {
1600 			ret = -EINVAL;
1601 			break;
1602 		}
1603 
1604 		n_bytes = vsock_stream_has_data(vsk);
1605 		if (n_bytes < 0) {
1606 			ret = n_bytes;
1607 			break;
1608 		}
1609 		ret = put_user(n_bytes, arg);
1610 		break;
1611 	}
1612 	case SIOCOUTQ: {
1613 		ssize_t n_bytes;
1614 
1615 		if (!vsk->transport || !vsk->transport->unsent_bytes) {
1616 			ret = -EOPNOTSUPP;
1617 			break;
1618 		}
1619 
1620 		if (sock_type_connectible(sk->sk_type) && sk->sk_state == TCP_LISTEN) {
1621 			ret = -EINVAL;
1622 			break;
1623 		}
1624 
1625 		n_bytes = vsk->transport->unsent_bytes(vsk);
1626 		if (n_bytes < 0) {
1627 			ret = n_bytes;
1628 			break;
1629 		}
1630 
1631 		ret = put_user(n_bytes, arg);
1632 		break;
1633 	}
1634 	default:
1635 		ret = -ENOIOCTLCMD;
1636 	}
1637 
1638 	return ret;
1639 }
1640 
1641 static int vsock_ioctl(struct socket *sock, unsigned int cmd,
1642 		       unsigned long arg)
1643 {
1644 	int ret;
1645 
1646 	lock_sock(sock->sk);
1647 	ret = vsock_do_ioctl(sock, cmd, (int __user *)arg);
1648 	release_sock(sock->sk);
1649 
1650 	return ret;
1651 }
1652 
1653 static const struct proto_ops vsock_dgram_ops = {
1654 	.family = PF_VSOCK,
1655 	.owner = THIS_MODULE,
1656 	.release = vsock_release,
1657 	.bind = vsock_bind,
1658 	.connect = vsock_dgram_connect,
1659 	.socketpair = sock_no_socketpair,
1660 	.accept = sock_no_accept,
1661 	.getname = vsock_getname,
1662 	.poll = vsock_poll,
1663 	.ioctl = vsock_ioctl,
1664 	.listen = sock_no_listen,
1665 	.shutdown = vsock_shutdown,
1666 	.sendmsg = vsock_dgram_sendmsg,
1667 	.recvmsg = vsock_dgram_recvmsg,
1668 	.mmap = sock_no_mmap,
1669 	.read_skb = vsock_read_skb,
1670 };
1671 
1672 static int vsock_transport_cancel_pkt(struct vsock_sock *vsk)
1673 {
1674 	const struct vsock_transport *transport = vsk->transport;
1675 
1676 	if (!transport || !transport->cancel_pkt)
1677 		return -EOPNOTSUPP;
1678 
1679 	return transport->cancel_pkt(vsk);
1680 }
1681 
1682 static void vsock_connect_timeout(struct work_struct *work)
1683 {
1684 	struct sock *sk;
1685 	struct vsock_sock *vsk;
1686 
1687 	vsk = container_of(work, struct vsock_sock, connect_work.work);
1688 	sk = sk_vsock(vsk);
1689 
1690 	lock_sock(sk);
1691 	if (sk->sk_state == TCP_SYN_SENT &&
1692 	    (sk->sk_shutdown != SHUTDOWN_MASK)) {
1693 		sk->sk_state = TCP_CLOSE;
1694 		sk->sk_socket->state = SS_UNCONNECTED;
1695 		sk->sk_err = ETIMEDOUT;
1696 		sk_error_report(sk);
1697 		vsock_transport_cancel_pkt(vsk);
1698 	}
1699 	release_sock(sk);
1700 
1701 	sock_put(sk);
1702 }
1703 
1704 static int vsock_connect(struct socket *sock, struct sockaddr_unsized *addr,
1705 			 int addr_len, int flags)
1706 {
1707 	int err;
1708 	struct sock *sk;
1709 	struct vsock_sock *vsk;
1710 	const struct vsock_transport *transport;
1711 	struct sockaddr_vm *remote_addr;
1712 	long timeout;
1713 	DEFINE_WAIT(wait);
1714 
1715 	err = 0;
1716 	sk = sock->sk;
1717 	vsk = vsock_sk(sk);
1718 
1719 	lock_sock(sk);
1720 
1721 	/* XXX AF_UNSPEC should make us disconnect like AF_INET. */
1722 	switch (sock->state) {
1723 	case SS_CONNECTED:
1724 		err = -EISCONN;
1725 		goto out;
1726 	case SS_DISCONNECTING:
1727 		err = -EINVAL;
1728 		goto out;
1729 	case SS_CONNECTING:
1730 		/* This continues on so we can move sock into the SS_CONNECTED
1731 		 * state once the connection has completed (at which point err
1732 		 * will be set to zero also).  Otherwise, we will either wait
1733 		 * for the connection or return -EALREADY should this be a
1734 		 * non-blocking call.
1735 		 */
1736 		err = -EALREADY;
1737 		if (flags & O_NONBLOCK)
1738 			goto out;
1739 		break;
1740 	default:
1741 		if ((sk->sk_state == TCP_LISTEN) ||
1742 		    vsock_addr_cast(addr, addr_len, &remote_addr) != 0) {
1743 			err = -EINVAL;
1744 			goto out;
1745 		}
1746 
1747 		/* Set the remote address that we are connecting to. */
1748 		memcpy(&vsk->remote_addr, remote_addr,
1749 		       sizeof(vsk->remote_addr));
1750 
1751 		err = vsock_assign_transport(vsk, NULL);
1752 		if (err)
1753 			goto out;
1754 
1755 		transport = vsk->transport;
1756 
1757 		/* The hypervisor and well-known contexts do not have socket
1758 		 * endpoints.
1759 		 */
1760 		if (!transport ||
1761 		    !transport->stream_allow(vsk, remote_addr->svm_cid,
1762 					     remote_addr->svm_port)) {
1763 			err = -ENETUNREACH;
1764 			goto out;
1765 		}
1766 
1767 		if (vsock_msgzerocopy_allow(transport)) {
1768 			set_bit(SOCK_SUPPORT_ZC, &sk->sk_socket->flags);
1769 		} else if (sock_flag(sk, SOCK_ZEROCOPY)) {
1770 			/* If this option was set before 'connect()',
1771 			 * when transport was unknown, check that this
1772 			 * feature is supported here.
1773 			 */
1774 			err = -EOPNOTSUPP;
1775 			goto out;
1776 		}
1777 
1778 		err = vsock_auto_bind(vsk);
1779 		if (err)
1780 			goto out;
1781 
1782 		sk->sk_state = TCP_SYN_SENT;
1783 
1784 		err = transport->connect(vsk);
1785 		if (err < 0)
1786 			goto out;
1787 
1788 		/* sk_err might have been set as a result of an earlier
1789 		 * (failed) connect attempt.
1790 		 */
1791 		sk->sk_err = 0;
1792 
1793 		/* Mark sock as connecting and set the error code to in
1794 		 * progress in case this is a non-blocking connect.
1795 		 */
1796 		sock->state = SS_CONNECTING;
1797 		err = -EINPROGRESS;
1798 	}
1799 
1800 	/* The receive path will handle all communication until we are able to
1801 	 * enter the connected state.  Here we wait for the connection to be
1802 	 * completed or a notification of an error.
1803 	 */
1804 	timeout = vsk->connect_timeout;
1805 	prepare_to_wait(sk_sleep(sk), &wait, TASK_INTERRUPTIBLE);
1806 
1807 	/* If the socket is already closing or it is in an error state, there
1808 	 * is no point in waiting.
1809 	 */
1810 	while (sk->sk_state != TCP_ESTABLISHED &&
1811 	       sk->sk_state != TCP_CLOSING && sk->sk_err == 0) {
1812 		if (flags & O_NONBLOCK) {
1813 			/* If we're not going to block, we schedule a timeout
1814 			 * function to generate a timeout on the connection
1815 			 * attempt, in case the peer doesn't respond in a
1816 			 * timely manner. We hold on to the socket until the
1817 			 * timeout fires.
1818 			 */
1819 			sock_hold(sk);
1820 
1821 			/* If the timeout function is already scheduled,
1822 			 * reschedule it, then ungrab the socket refcount to
1823 			 * keep it balanced.
1824 			 */
1825 			if (mod_delayed_work(system_percpu_wq, &vsk->connect_work,
1826 					     timeout))
1827 				sock_put(sk);
1828 
1829 			/* Skip ahead to preserve error code set above. */
1830 			goto out_wait;
1831 		}
1832 
1833 		release_sock(sk);
1834 		timeout = schedule_timeout(timeout);
1835 		lock_sock(sk);
1836 
1837 		/* Connection established. Whatever happens to socket once we
1838 		 * release it, that's not connect()'s concern. No need to go
1839 		 * into signal and timeout handling. Call it a day.
1840 		 *
1841 		 * Note that allowing to "reset" an already established socket
1842 		 * here is racy and insecure.
1843 		 */
1844 		if (sk->sk_state == TCP_ESTABLISHED)
1845 			break;
1846 
1847 		/* If connection was _not_ established and a signal/timeout came
1848 		 * to be, we want the socket's state reset. User space may want
1849 		 * to retry.
1850 		 *
1851 		 * sk_state != TCP_ESTABLISHED implies that socket is not on
1852 		 * vsock_connected_table. We keep the binding and the transport
1853 		 * assigned.
1854 		 */
1855 		if (signal_pending(current) || timeout == 0) {
1856 			err = timeout == 0 ? -ETIMEDOUT : sock_intr_errno(timeout);
1857 
1858 			/* Listener might have already responded with
1859 			 * VIRTIO_VSOCK_OP_RESPONSE. Its handling expects our
1860 			 * sk_state == TCP_SYN_SENT, which hereby we break.
1861 			 * In such case VIRTIO_VSOCK_OP_RST will follow.
1862 			 */
1863 			sk->sk_state = TCP_CLOSE;
1864 			sock->state = SS_UNCONNECTED;
1865 
1866 			/* Try to cancel VIRTIO_VSOCK_OP_REQUEST skb sent out by
1867 			 * transport->connect().
1868 			 */
1869 			vsock_transport_cancel_pkt(vsk);
1870 
1871 			goto out_wait;
1872 		}
1873 
1874 		prepare_to_wait(sk_sleep(sk), &wait, TASK_INTERRUPTIBLE);
1875 	}
1876 
1877 	err = sock_error(sk);
1878 	if (err) {
1879 		sk->sk_state = TCP_CLOSE;
1880 		sock->state = SS_UNCONNECTED;
1881 	}
1882 
1883 out_wait:
1884 	finish_wait(sk_sleep(sk), &wait);
1885 out:
1886 	release_sock(sk);
1887 	return err;
1888 }
1889 
1890 static int vsock_accept(struct socket *sock, struct socket *newsock,
1891 			struct proto_accept_arg *arg)
1892 {
1893 	struct sock *listener;
1894 	int err;
1895 	struct sock *connected;
1896 	struct vsock_sock *vconnected;
1897 	long timeout;
1898 	DEFINE_WAIT(wait);
1899 
1900 	err = 0;
1901 	listener = sock->sk;
1902 
1903 	lock_sock(listener);
1904 
1905 	if (!sock_type_connectible(sock->type)) {
1906 		err = -EOPNOTSUPP;
1907 		goto out;
1908 	}
1909 
1910 	if (listener->sk_state != TCP_LISTEN) {
1911 		err = -EINVAL;
1912 		goto out;
1913 	}
1914 
1915 	/* Wait for children sockets to appear; these are the new sockets
1916 	 * created upon connection establishment.
1917 	 */
1918 	timeout = sock_rcvtimeo(listener, arg->flags & O_NONBLOCK);
1919 
1920 	while ((connected = vsock_dequeue_accept(listener)) == NULL &&
1921 		timeout != 0) {
1922 		prepare_to_wait(sk_sleep(listener), &wait, TASK_INTERRUPTIBLE);
1923 		release_sock(listener);
1924 		timeout = schedule_timeout(timeout);
1925 		finish_wait(sk_sleep(listener), &wait);
1926 		lock_sock(listener);
1927 
1928 		if (signal_pending(current)) {
1929 			err = sock_intr_errno(timeout);
1930 			goto out;
1931 		}
1932 	}
1933 
1934 	if (!connected) {
1935 		err = -EAGAIN;
1936 	} else {
1937 		sk_acceptq_removed(listener);
1938 
1939 		lock_sock_nested(connected, SINGLE_DEPTH_NESTING);
1940 		vconnected = vsock_sk(connected);
1941 
1942 		newsock->state = SS_CONNECTED;
1943 		sock_graft(connected, newsock);
1944 
1945 		set_bit(SOCK_CUSTOM_SOCKOPT,
1946 			&connected->sk_socket->flags);
1947 
1948 		if (vsock_msgzerocopy_allow(vconnected->transport))
1949 			set_bit(SOCK_SUPPORT_ZC,
1950 				&connected->sk_socket->flags);
1951 
1952 		release_sock(connected);
1953 		sock_put(connected);
1954 	}
1955 
1956 out:
1957 	release_sock(listener);
1958 	return err;
1959 }
1960 
1961 static int vsock_listen(struct socket *sock, int backlog)
1962 {
1963 	int err;
1964 	struct sock *sk;
1965 	struct vsock_sock *vsk;
1966 
1967 	sk = sock->sk;
1968 
1969 	lock_sock(sk);
1970 
1971 	if (!sock_type_connectible(sk->sk_type)) {
1972 		err = -EOPNOTSUPP;
1973 		goto out;
1974 	}
1975 
1976 	if (sock->state != SS_UNCONNECTED) {
1977 		err = -EINVAL;
1978 		goto out;
1979 	}
1980 
1981 	vsk = vsock_sk(sk);
1982 
1983 	if (!vsock_addr_bound(&vsk->local_addr)) {
1984 		err = -EINVAL;
1985 		goto out;
1986 	}
1987 
1988 	sk->sk_max_ack_backlog = backlog;
1989 	sk->sk_state = TCP_LISTEN;
1990 
1991 	err = 0;
1992 
1993 out:
1994 	release_sock(sk);
1995 	return err;
1996 }
1997 
1998 static void vsock_update_buffer_size(struct vsock_sock *vsk,
1999 				     const struct vsock_transport *transport,
2000 				     u64 val)
2001 {
2002 	if (val < vsk->buffer_min_size)
2003 		val = vsk->buffer_min_size;
2004 
2005 	if (val > vsk->buffer_max_size)
2006 		val = vsk->buffer_max_size;
2007 
2008 	if (val != vsk->buffer_size &&
2009 	    transport && transport->notify_buffer_size)
2010 		transport->notify_buffer_size(vsk, &val);
2011 
2012 	vsk->buffer_size = val;
2013 }
2014 
2015 static int vsock_connectible_setsockopt(struct socket *sock,
2016 					int level,
2017 					int optname,
2018 					sockptr_t optval,
2019 					unsigned int optlen)
2020 {
2021 	int err;
2022 	struct sock *sk;
2023 	struct vsock_sock *vsk;
2024 	const struct vsock_transport *transport;
2025 	u64 val;
2026 
2027 	if (level != AF_VSOCK && level != SOL_SOCKET)
2028 		return -ENOPROTOOPT;
2029 
2030 #define COPY_IN(_v)                                       \
2031 	do {						  \
2032 		if (optlen < sizeof(_v)) {		  \
2033 			err = -EINVAL;			  \
2034 			goto exit;			  \
2035 		}					  \
2036 		if (copy_from_sockptr(&_v, optval, sizeof(_v)) != 0) {	\
2037 			err = -EFAULT;					\
2038 			goto exit;					\
2039 		}							\
2040 	} while (0)
2041 
2042 	err = 0;
2043 	sk = sock->sk;
2044 	vsk = vsock_sk(sk);
2045 
2046 	lock_sock(sk);
2047 
2048 	transport = vsk->transport;
2049 
2050 	if (level == SOL_SOCKET) {
2051 		int zerocopy;
2052 
2053 		if (optname != SO_ZEROCOPY) {
2054 			release_sock(sk);
2055 			return sock_setsockopt(sock, level, optname, optval, optlen);
2056 		}
2057 
2058 		/* Use 'int' type here, because variable to
2059 		 * set this option usually has this type.
2060 		 */
2061 		COPY_IN(zerocopy);
2062 
2063 		if (zerocopy < 0 || zerocopy > 1) {
2064 			err = -EINVAL;
2065 			goto exit;
2066 		}
2067 
2068 		if (transport && !vsock_msgzerocopy_allow(transport)) {
2069 			err = -EOPNOTSUPP;
2070 			goto exit;
2071 		}
2072 
2073 		sock_valbool_flag(sk, SOCK_ZEROCOPY, zerocopy);
2074 		goto exit;
2075 	}
2076 
2077 	switch (optname) {
2078 	case SO_VM_SOCKETS_BUFFER_SIZE:
2079 		COPY_IN(val);
2080 		vsock_update_buffer_size(vsk, transport, val);
2081 		break;
2082 
2083 	case SO_VM_SOCKETS_BUFFER_MAX_SIZE:
2084 		COPY_IN(val);
2085 		vsk->buffer_max_size = val;
2086 		vsock_update_buffer_size(vsk, transport, vsk->buffer_size);
2087 		break;
2088 
2089 	case SO_VM_SOCKETS_BUFFER_MIN_SIZE:
2090 		COPY_IN(val);
2091 		vsk->buffer_min_size = val;
2092 		vsock_update_buffer_size(vsk, transport, vsk->buffer_size);
2093 		break;
2094 
2095 	case SO_VM_SOCKETS_CONNECT_TIMEOUT_NEW:
2096 	case SO_VM_SOCKETS_CONNECT_TIMEOUT_OLD: {
2097 		struct __kernel_sock_timeval tv;
2098 
2099 		err = sock_copy_user_timeval(&tv, optval, optlen,
2100 					     optname == SO_VM_SOCKETS_CONNECT_TIMEOUT_OLD);
2101 		if (err)
2102 			break;
2103 		if (tv.tv_sec >= 0 && tv.tv_usec < USEC_PER_SEC &&
2104 		    tv.tv_sec < (MAX_SCHEDULE_TIMEOUT / HZ - 1)) {
2105 			vsk->connect_timeout = tv.tv_sec * HZ +
2106 				DIV_ROUND_UP((unsigned long)tv.tv_usec, (USEC_PER_SEC / HZ));
2107 			if (vsk->connect_timeout == 0)
2108 				vsk->connect_timeout =
2109 				    VSOCK_DEFAULT_CONNECT_TIMEOUT;
2110 
2111 		} else {
2112 			err = -ERANGE;
2113 		}
2114 		break;
2115 	}
2116 
2117 	default:
2118 		err = -ENOPROTOOPT;
2119 		break;
2120 	}
2121 
2122 #undef COPY_IN
2123 
2124 exit:
2125 	release_sock(sk);
2126 	return err;
2127 }
2128 
2129 static int vsock_connectible_getsockopt(struct socket *sock,
2130 					int level, int optname,
2131 					sockopt_t *opt)
2132 {
2133 	struct sock *sk = sock->sk;
2134 	struct vsock_sock *vsk = vsock_sk(sk);
2135 
2136 	union {
2137 		u64 val64;
2138 		struct old_timeval32 tm32;
2139 		struct __kernel_old_timeval tm;
2140 		struct  __kernel_sock_timeval stm;
2141 	} v;
2142 
2143 	int lv = sizeof(v.val64);
2144 	int len;
2145 
2146 	if (level != AF_VSOCK)
2147 		return -ENOPROTOOPT;
2148 
2149 	len = opt->optlen;
2150 
2151 	memset(&v, 0, sizeof(v));
2152 
2153 	switch (optname) {
2154 	case SO_VM_SOCKETS_BUFFER_SIZE:
2155 		v.val64 = vsk->buffer_size;
2156 		break;
2157 
2158 	case SO_VM_SOCKETS_BUFFER_MAX_SIZE:
2159 		v.val64 = vsk->buffer_max_size;
2160 		break;
2161 
2162 	case SO_VM_SOCKETS_BUFFER_MIN_SIZE:
2163 		v.val64 = vsk->buffer_min_size;
2164 		break;
2165 
2166 	case SO_VM_SOCKETS_CONNECT_TIMEOUT_NEW:
2167 	case SO_VM_SOCKETS_CONNECT_TIMEOUT_OLD:
2168 		lv = sock_get_timeout(vsk->connect_timeout, &v,
2169 				      optname == SO_VM_SOCKETS_CONNECT_TIMEOUT_OLD);
2170 		break;
2171 
2172 	default:
2173 		return -ENOPROTOOPT;
2174 	}
2175 
2176 	if (len < lv)
2177 		return -EINVAL;
2178 	if (len > lv)
2179 		len = lv;
2180 	if (copy_to_iter(&v, len, &opt->iter_out) != len)
2181 		return -EFAULT;
2182 
2183 	opt->optlen = len;
2184 
2185 	return 0;
2186 }
2187 
2188 static int vsock_connectible_sendmsg(struct socket *sock, struct msghdr *msg,
2189 				     size_t len)
2190 {
2191 	struct sock *sk;
2192 	struct vsock_sock *vsk;
2193 	const struct vsock_transport *transport;
2194 	ssize_t total_written;
2195 	long timeout;
2196 	int err;
2197 	struct vsock_transport_send_notify_data send_data;
2198 	DEFINE_WAIT_FUNC(wait, woken_wake_function);
2199 
2200 	sk = sock->sk;
2201 	vsk = vsock_sk(sk);
2202 	total_written = 0;
2203 	err = 0;
2204 
2205 	if (msg->msg_flags & MSG_OOB)
2206 		return -EOPNOTSUPP;
2207 
2208 	lock_sock(sk);
2209 
2210 	transport = vsk->transport;
2211 
2212 	/* Callers should not provide a destination with connection oriented
2213 	 * sockets.
2214 	 */
2215 	if (msg->msg_namelen) {
2216 		err = sk->sk_state == TCP_ESTABLISHED ? -EISCONN : -EOPNOTSUPP;
2217 		goto out;
2218 	}
2219 
2220 	/* Send data only if both sides are not shutdown in the direction. */
2221 	if (sk->sk_shutdown & SEND_SHUTDOWN ||
2222 	    vsk->peer_shutdown & RCV_SHUTDOWN) {
2223 		err = -EPIPE;
2224 		goto out;
2225 	}
2226 
2227 	if (!transport || sk->sk_state != TCP_ESTABLISHED ||
2228 	    !vsock_addr_bound(&vsk->local_addr)) {
2229 		err = -ENOTCONN;
2230 		goto out;
2231 	}
2232 
2233 	if (!vsock_addr_bound(&vsk->remote_addr)) {
2234 		err = -EDESTADDRREQ;
2235 		goto out;
2236 	}
2237 
2238 	if (msg->msg_flags & MSG_ZEROCOPY &&
2239 	    !vsock_msgzerocopy_allow(transport)) {
2240 		err = -EOPNOTSUPP;
2241 		goto out;
2242 	}
2243 
2244 	/* Wait for room in the produce queue to enqueue our user's data. */
2245 	timeout = sock_sndtimeo(sk, msg->msg_flags & MSG_DONTWAIT);
2246 
2247 	err = transport->notify_send_init(vsk, &send_data);
2248 	if (err < 0)
2249 		goto out;
2250 
2251 	while (total_written < len) {
2252 		ssize_t written;
2253 
2254 		add_wait_queue(sk_sleep(sk), &wait);
2255 		while (vsock_stream_has_space(vsk) == 0 &&
2256 		       sk->sk_err == 0 &&
2257 		       !(sk->sk_shutdown & SEND_SHUTDOWN) &&
2258 		       !(vsk->peer_shutdown & RCV_SHUTDOWN)) {
2259 
2260 			/* Don't wait for non-blocking sockets. */
2261 			if (timeout == 0) {
2262 				err = -EAGAIN;
2263 				remove_wait_queue(sk_sleep(sk), &wait);
2264 				goto out_err;
2265 			}
2266 
2267 			err = transport->notify_send_pre_block(vsk, &send_data);
2268 			if (err < 0) {
2269 				remove_wait_queue(sk_sleep(sk), &wait);
2270 				goto out_err;
2271 			}
2272 
2273 			release_sock(sk);
2274 			timeout = wait_woken(&wait, TASK_INTERRUPTIBLE, timeout);
2275 			lock_sock(sk);
2276 			if (signal_pending(current)) {
2277 				err = sock_intr_errno(timeout);
2278 				remove_wait_queue(sk_sleep(sk), &wait);
2279 				goto out_err;
2280 			} else if (timeout == 0) {
2281 				err = -EAGAIN;
2282 				remove_wait_queue(sk_sleep(sk), &wait);
2283 				goto out_err;
2284 			}
2285 		}
2286 		remove_wait_queue(sk_sleep(sk), &wait);
2287 
2288 		/* These checks occur both as part of and after the loop
2289 		 * conditional since we need to check before and after
2290 		 * sleeping.
2291 		 */
2292 		if (sk->sk_err) {
2293 			err = -sk->sk_err;
2294 			goto out_err;
2295 		} else if ((sk->sk_shutdown & SEND_SHUTDOWN) ||
2296 			   (vsk->peer_shutdown & RCV_SHUTDOWN)) {
2297 			err = -EPIPE;
2298 			goto out_err;
2299 		}
2300 
2301 		err = transport->notify_send_pre_enqueue(vsk, &send_data);
2302 		if (err < 0)
2303 			goto out_err;
2304 
2305 		/* Note that enqueue will only write as many bytes as are free
2306 		 * in the produce queue, so we don't need to ensure len is
2307 		 * smaller than the queue size.  It is the caller's
2308 		 * responsibility to check how many bytes we were able to send.
2309 		 */
2310 
2311 		if (sk->sk_type == SOCK_SEQPACKET) {
2312 			written = transport->seqpacket_enqueue(vsk,
2313 						msg, len - total_written);
2314 		} else {
2315 			written = transport->stream_enqueue(vsk,
2316 					msg, len - total_written);
2317 		}
2318 
2319 		if (written < 0) {
2320 			err = written;
2321 			goto out_err;
2322 		}
2323 
2324 		total_written += written;
2325 
2326 		err = transport->notify_send_post_enqueue(
2327 				vsk, written, &send_data);
2328 		if (err < 0)
2329 			goto out_err;
2330 
2331 	}
2332 
2333 out_err:
2334 	if (total_written > 0) {
2335 		/* Return number of written bytes only if:
2336 		 * 1) SOCK_STREAM socket.
2337 		 * 2) SOCK_SEQPACKET socket when whole buffer is sent.
2338 		 */
2339 		if (sk->sk_type == SOCK_STREAM || total_written == len)
2340 			err = total_written;
2341 	}
2342 out:
2343 	if (sk->sk_type == SOCK_STREAM)
2344 		err = sk_stream_error(sk, msg->msg_flags, err);
2345 
2346 	release_sock(sk);
2347 	return err;
2348 }
2349 
2350 static int vsock_connectible_wait_data(struct sock *sk,
2351 				       struct wait_queue_entry *wait,
2352 				       long timeout,
2353 				       struct vsock_transport_recv_notify_data *recv_data,
2354 				       size_t target)
2355 {
2356 	const struct vsock_transport *transport;
2357 	struct vsock_sock *vsk;
2358 	s64 data;
2359 	int err;
2360 
2361 	vsk = vsock_sk(sk);
2362 	err = 0;
2363 	transport = vsk->transport;
2364 
2365 	while (1) {
2366 		prepare_to_wait(sk_sleep(sk), wait, TASK_INTERRUPTIBLE);
2367 		data = vsock_connectible_has_data(vsk);
2368 		if (data != 0)
2369 			break;
2370 
2371 		if (sk->sk_err != 0 ||
2372 		    (sk->sk_shutdown & RCV_SHUTDOWN) ||
2373 		    (vsk->peer_shutdown & SEND_SHUTDOWN)) {
2374 			break;
2375 		}
2376 
2377 		/* Don't wait for non-blocking sockets. */
2378 		if (timeout == 0) {
2379 			err = -EAGAIN;
2380 			break;
2381 		}
2382 
2383 		if (recv_data) {
2384 			err = transport->notify_recv_pre_block(vsk, target, recv_data);
2385 			if (err < 0)
2386 				break;
2387 		}
2388 
2389 		release_sock(sk);
2390 		timeout = schedule_timeout(timeout);
2391 		lock_sock(sk);
2392 
2393 		if (signal_pending(current)) {
2394 			err = sock_intr_errno(timeout);
2395 			break;
2396 		} else if (timeout == 0) {
2397 			err = -EAGAIN;
2398 			break;
2399 		}
2400 	}
2401 
2402 	finish_wait(sk_sleep(sk), wait);
2403 
2404 	if (err)
2405 		return err;
2406 
2407 	/* Internal transport error when checking for available
2408 	 * data. XXX This should be changed to a connection
2409 	 * reset in a later change.
2410 	 */
2411 	if (data < 0)
2412 		return -ENOMEM;
2413 
2414 	return data;
2415 }
2416 
2417 static int __vsock_stream_recvmsg(struct sock *sk, struct msghdr *msg,
2418 				  size_t len, int flags)
2419 {
2420 	struct vsock_transport_recv_notify_data recv_data;
2421 	const struct vsock_transport *transport;
2422 	struct vsock_sock *vsk;
2423 	ssize_t copied;
2424 	size_t target;
2425 	long timeout;
2426 	int err;
2427 
2428 	DEFINE_WAIT(wait);
2429 
2430 	vsk = vsock_sk(sk);
2431 	transport = vsk->transport;
2432 
2433 	/* We must not copy less than target bytes into the user's buffer
2434 	 * before returning successfully, so we wait for the consume queue to
2435 	 * have that much data to consume before dequeueing.  Note that this
2436 	 * makes it impossible to handle cases where target is greater than the
2437 	 * queue size.
2438 	 */
2439 	target = sock_rcvlowat(sk, flags & MSG_WAITALL, len);
2440 	if (target >= transport->stream_rcvhiwat(vsk)) {
2441 		err = -ENOMEM;
2442 		goto out;
2443 	}
2444 	timeout = sock_rcvtimeo(sk, flags & MSG_DONTWAIT);
2445 	copied = 0;
2446 
2447 	err = transport->notify_recv_init(vsk, target, &recv_data);
2448 	if (err < 0)
2449 		goto out;
2450 
2451 
2452 	while (1) {
2453 		ssize_t read;
2454 
2455 		err = vsock_connectible_wait_data(sk, &wait, timeout,
2456 						  &recv_data, target);
2457 		if (err <= 0)
2458 			break;
2459 
2460 		err = transport->notify_recv_pre_dequeue(vsk, target,
2461 							 &recv_data);
2462 		if (err < 0)
2463 			break;
2464 
2465 		read = transport->stream_dequeue(vsk, msg, len - copied, flags);
2466 		if (read < 0) {
2467 			err = read;
2468 			break;
2469 		}
2470 
2471 		copied += read;
2472 
2473 		err = transport->notify_recv_post_dequeue(vsk, target, read,
2474 						!(flags & MSG_PEEK), &recv_data);
2475 		if (err < 0)
2476 			goto out;
2477 
2478 		if (read >= target || flags & MSG_PEEK)
2479 			break;
2480 
2481 		target -= read;
2482 	}
2483 
2484 	if (sk->sk_err)
2485 		err = -sk->sk_err;
2486 	else if (sk->sk_shutdown & RCV_SHUTDOWN)
2487 		err = 0;
2488 
2489 	if (copied > 0)
2490 		err = copied;
2491 
2492 out:
2493 	return err;
2494 }
2495 
2496 static int __vsock_seqpacket_recvmsg(struct sock *sk, struct msghdr *msg,
2497 				     size_t len, int flags)
2498 {
2499 	const struct vsock_transport *transport;
2500 	struct vsock_sock *vsk;
2501 	ssize_t msg_len;
2502 	long timeout;
2503 	int err = 0;
2504 	DEFINE_WAIT(wait);
2505 
2506 	vsk = vsock_sk(sk);
2507 	transport = vsk->transport;
2508 
2509 	timeout = sock_rcvtimeo(sk, flags & MSG_DONTWAIT);
2510 
2511 	err = vsock_connectible_wait_data(sk, &wait, timeout, NULL, 0);
2512 	if (err <= 0)
2513 		goto out;
2514 
2515 	msg_len = transport->seqpacket_dequeue(vsk, msg, flags);
2516 
2517 	if (msg_len < 0) {
2518 		err = msg_len;
2519 		goto out;
2520 	}
2521 
2522 	if (sk->sk_err) {
2523 		err = -sk->sk_err;
2524 	} else if (sk->sk_shutdown & RCV_SHUTDOWN) {
2525 		err = 0;
2526 	} else {
2527 		/* User sets MSG_TRUNC, so return real length of
2528 		 * packet.
2529 		 */
2530 		if (flags & MSG_TRUNC)
2531 			err = msg_len;
2532 		else
2533 			err = len - msg_data_left(msg);
2534 
2535 		/* Always set MSG_TRUNC if real length of packet is
2536 		 * bigger than user's buffer.
2537 		 */
2538 		if (msg_len > len)
2539 			msg->msg_flags |= MSG_TRUNC;
2540 	}
2541 
2542 out:
2543 	return err;
2544 }
2545 
2546 int
2547 __vsock_connectible_recvmsg(struct socket *sock, struct msghdr *msg, size_t len,
2548 			    int flags)
2549 {
2550 	struct sock *sk;
2551 	struct vsock_sock *vsk;
2552 	const struct vsock_transport *transport;
2553 	int err;
2554 
2555 	sk = sock->sk;
2556 
2557 	if (unlikely(flags & MSG_ERRQUEUE))
2558 		return sock_recv_errqueue(sk, msg, len, SOL_VSOCK, VSOCK_RECVERR);
2559 
2560 	vsk = vsock_sk(sk);
2561 	err = 0;
2562 
2563 	lock_sock(sk);
2564 
2565 	transport = vsk->transport;
2566 
2567 	if (!transport || sk->sk_state != TCP_ESTABLISHED) {
2568 		/* Recvmsg is supposed to return 0 if a peer performs an
2569 		 * orderly shutdown. Differentiate between that case and when a
2570 		 * peer has not connected or a local shutdown occurred with the
2571 		 * SOCK_DONE flag.
2572 		 */
2573 		if (sock_flag(sk, SOCK_DONE))
2574 			err = 0;
2575 		else
2576 			err = -ENOTCONN;
2577 
2578 		goto out;
2579 	}
2580 
2581 	if (flags & MSG_OOB) {
2582 		err = -EOPNOTSUPP;
2583 		goto out;
2584 	}
2585 
2586 	/* We don't check peer_shutdown flag here since peer may actually shut
2587 	 * down, but there can be data in the queue that a local socket can
2588 	 * receive.
2589 	 */
2590 	if (sk->sk_shutdown & RCV_SHUTDOWN) {
2591 		err = 0;
2592 		goto out;
2593 	}
2594 
2595 	/* It is valid on Linux to pass in a zero-length receive buffer.  This
2596 	 * is not an error.  We may as well bail out now.
2597 	 */
2598 	if (!len) {
2599 		err = 0;
2600 		goto out;
2601 	}
2602 
2603 	if (sk->sk_type == SOCK_STREAM)
2604 		err = __vsock_stream_recvmsg(sk, msg, len, flags);
2605 	else
2606 		err = __vsock_seqpacket_recvmsg(sk, msg, len, flags);
2607 
2608 out:
2609 	release_sock(sk);
2610 	return err;
2611 }
2612 
2613 int
2614 vsock_connectible_recvmsg(struct socket *sock, struct msghdr *msg, size_t len,
2615 			  int flags)
2616 {
2617 #ifdef CONFIG_BPF_SYSCALL
2618 	struct sock *sk = sock->sk;
2619 	const struct proto *prot;
2620 
2621 	prot = READ_ONCE(sk->sk_prot);
2622 	if (prot != &vsock_proto)
2623 		return prot->recvmsg(sk, msg, len, flags);
2624 #endif
2625 
2626 	return __vsock_connectible_recvmsg(sock, msg, len, flags);
2627 }
2628 EXPORT_SYMBOL_GPL(vsock_connectible_recvmsg);
2629 
2630 static int vsock_set_rcvlowat(struct sock *sk, int val)
2631 {
2632 	const struct vsock_transport *transport;
2633 	struct vsock_sock *vsk;
2634 
2635 	vsk = vsock_sk(sk);
2636 
2637 	if (val > vsk->buffer_size)
2638 		return -EINVAL;
2639 
2640 	transport = vsk->transport;
2641 
2642 	if (transport && transport->notify_set_rcvlowat) {
2643 		int err;
2644 
2645 		err = transport->notify_set_rcvlowat(vsk, val);
2646 		if (err)
2647 			return err;
2648 	}
2649 
2650 	WRITE_ONCE(sk->sk_rcvlowat, val ? : 1);
2651 	return 0;
2652 }
2653 
2654 static const struct proto_ops vsock_stream_ops = {
2655 	.family = PF_VSOCK,
2656 	.owner = THIS_MODULE,
2657 	.release = vsock_release,
2658 	.bind = vsock_bind,
2659 	.connect = vsock_connect,
2660 	.socketpair = sock_no_socketpair,
2661 	.accept = vsock_accept,
2662 	.getname = vsock_getname,
2663 	.poll = vsock_poll,
2664 	.ioctl = vsock_ioctl,
2665 	.listen = vsock_listen,
2666 	.shutdown = vsock_shutdown,
2667 	.setsockopt = vsock_connectible_setsockopt,
2668 	.getsockopt_iter = vsock_connectible_getsockopt,
2669 	.sendmsg = vsock_connectible_sendmsg,
2670 	.recvmsg = vsock_connectible_recvmsg,
2671 	.mmap = sock_no_mmap,
2672 	.set_rcvlowat = vsock_set_rcvlowat,
2673 	.read_skb = vsock_read_skb,
2674 };
2675 
2676 static const struct proto_ops vsock_seqpacket_ops = {
2677 	.family = PF_VSOCK,
2678 	.owner = THIS_MODULE,
2679 	.release = vsock_release,
2680 	.bind = vsock_bind,
2681 	.connect = vsock_connect,
2682 	.socketpair = sock_no_socketpair,
2683 	.accept = vsock_accept,
2684 	.getname = vsock_getname,
2685 	.poll = vsock_poll,
2686 	.ioctl = vsock_ioctl,
2687 	.listen = vsock_listen,
2688 	.shutdown = vsock_shutdown,
2689 	.setsockopt = vsock_connectible_setsockopt,
2690 	.getsockopt_iter = vsock_connectible_getsockopt,
2691 	.sendmsg = vsock_connectible_sendmsg,
2692 	.recvmsg = vsock_connectible_recvmsg,
2693 	.mmap = sock_no_mmap,
2694 	.read_skb = vsock_read_skb,
2695 };
2696 
2697 static int vsock_create(struct net *net, struct socket *sock,
2698 			int protocol, int kern)
2699 {
2700 	struct vsock_sock *vsk;
2701 	struct sock *sk;
2702 	int ret;
2703 
2704 	if (!sock)
2705 		return -EINVAL;
2706 
2707 	if (protocol && protocol != PF_VSOCK)
2708 		return -EPROTONOSUPPORT;
2709 
2710 	switch (sock->type) {
2711 	case SOCK_DGRAM:
2712 		sock->ops = &vsock_dgram_ops;
2713 		break;
2714 	case SOCK_STREAM:
2715 		sock->ops = &vsock_stream_ops;
2716 		break;
2717 	case SOCK_SEQPACKET:
2718 		sock->ops = &vsock_seqpacket_ops;
2719 		break;
2720 	default:
2721 		return -ESOCKTNOSUPPORT;
2722 	}
2723 
2724 	sock->state = SS_UNCONNECTED;
2725 
2726 	sk = __vsock_create(net, sock, NULL, GFP_KERNEL, 0, kern);
2727 	if (!sk)
2728 		return -ENOMEM;
2729 
2730 	vsk = vsock_sk(sk);
2731 
2732 	if (sock->type == SOCK_DGRAM) {
2733 		ret = vsock_assign_transport(vsk, NULL);
2734 		if (ret < 0) {
2735 			sock->sk = NULL;
2736 			sock_put(sk);
2737 			return ret;
2738 		}
2739 	}
2740 
2741 	/* SOCK_DGRAM doesn't have 'setsockopt' callback set in its
2742 	 * proto_ops, so there is no handler for custom logic.
2743 	 */
2744 	if (sock_type_connectible(sock->type))
2745 		set_bit(SOCK_CUSTOM_SOCKOPT, &sk->sk_socket->flags);
2746 
2747 	vsock_insert_unbound(vsk);
2748 
2749 	return 0;
2750 }
2751 
2752 static const struct net_proto_family vsock_family_ops = {
2753 	.family = AF_VSOCK,
2754 	.create = vsock_create,
2755 	.owner = THIS_MODULE,
2756 };
2757 
2758 static long vsock_dev_do_ioctl(struct file *filp,
2759 			       unsigned int cmd, void __user *ptr)
2760 {
2761 	u32 __user *p = ptr;
2762 	int retval = 0;
2763 	u32 cid;
2764 
2765 	switch (cmd) {
2766 	case IOCTL_VM_SOCKETS_GET_LOCAL_CID:
2767 		/* To be compatible with the VMCI behavior, we prioritize the
2768 		 * guest CID instead of well-know host CID (VMADDR_CID_HOST).
2769 		 */
2770 		cid = vsock_registered_transport_cid(&transport_g2h);
2771 		if (cid == VMADDR_CID_ANY)
2772 			cid = vsock_registered_transport_cid(&transport_h2g);
2773 		if (cid == VMADDR_CID_ANY)
2774 			cid = vsock_registered_transport_cid(&transport_local);
2775 
2776 		if (put_user(cid, p) != 0)
2777 			retval = -EFAULT;
2778 		break;
2779 
2780 	default:
2781 		retval = -ENOIOCTLCMD;
2782 	}
2783 
2784 	return retval;
2785 }
2786 
2787 static long vsock_dev_ioctl(struct file *filp,
2788 			    unsigned int cmd, unsigned long arg)
2789 {
2790 	return vsock_dev_do_ioctl(filp, cmd, (void __user *)arg);
2791 }
2792 
2793 #ifdef CONFIG_COMPAT
2794 static long vsock_dev_compat_ioctl(struct file *filp,
2795 				   unsigned int cmd, unsigned long arg)
2796 {
2797 	return vsock_dev_do_ioctl(filp, cmd, compat_ptr(arg));
2798 }
2799 #endif
2800 
2801 static const struct file_operations vsock_device_ops = {
2802 	.owner		= THIS_MODULE,
2803 	.unlocked_ioctl	= vsock_dev_ioctl,
2804 #ifdef CONFIG_COMPAT
2805 	.compat_ioctl	= vsock_dev_compat_ioctl,
2806 #endif
2807 	.open		= nonseekable_open,
2808 };
2809 
2810 static struct miscdevice vsock_device = {
2811 	.name		= "vsock",
2812 	.fops		= &vsock_device_ops,
2813 };
2814 
2815 static int __vsock_net_mode_string(const struct ctl_table *table, int write,
2816 				   void *buffer, size_t *lenp, loff_t *ppos,
2817 				   enum vsock_net_mode mode,
2818 				   enum vsock_net_mode *new_mode)
2819 {
2820 	char data[VSOCK_NET_MODE_STR_MAX] = {0};
2821 	struct ctl_table tmp;
2822 	int ret;
2823 
2824 	if (!table->data || !table->maxlen || !*lenp) {
2825 		*lenp = 0;
2826 		return 0;
2827 	}
2828 
2829 	tmp = *table;
2830 	tmp.data = data;
2831 
2832 	if (!write) {
2833 		const char *p;
2834 
2835 		switch (mode) {
2836 		case VSOCK_NET_MODE_GLOBAL:
2837 			p = VSOCK_NET_MODE_STR_GLOBAL;
2838 			break;
2839 		case VSOCK_NET_MODE_LOCAL:
2840 			p = VSOCK_NET_MODE_STR_LOCAL;
2841 			break;
2842 		default:
2843 			WARN_ONCE(true, "netns has invalid vsock mode");
2844 			*lenp = 0;
2845 			return 0;
2846 		}
2847 
2848 		strscpy(data, p, sizeof(data));
2849 		tmp.maxlen = strlen(p);
2850 	}
2851 
2852 	ret = proc_dostring(&tmp, write, buffer, lenp, ppos);
2853 	if (ret || !write)
2854 		return ret;
2855 
2856 	if (*lenp >= sizeof(data))
2857 		return -EINVAL;
2858 
2859 	if (!strncmp(data, VSOCK_NET_MODE_STR_GLOBAL, sizeof(data)))
2860 		*new_mode = VSOCK_NET_MODE_GLOBAL;
2861 	else if (!strncmp(data, VSOCK_NET_MODE_STR_LOCAL, sizeof(data)))
2862 		*new_mode = VSOCK_NET_MODE_LOCAL;
2863 	else
2864 		return -EINVAL;
2865 
2866 	return 0;
2867 }
2868 
2869 static int vsock_net_mode_string(const struct ctl_table *table, int write,
2870 				 void *buffer, size_t *lenp, loff_t *ppos)
2871 {
2872 	struct net *net;
2873 
2874 	if (write)
2875 		return -EPERM;
2876 
2877 	net = container_of(table->data, struct net, vsock.mode);
2878 
2879 	return __vsock_net_mode_string(table, write, buffer, lenp, ppos,
2880 				       vsock_net_mode(net), NULL);
2881 }
2882 
2883 static int vsock_net_child_mode_string(const struct ctl_table *table, int write,
2884 				       void *buffer, size_t *lenp, loff_t *ppos)
2885 {
2886 	enum vsock_net_mode new_mode;
2887 	struct net *net;
2888 	int ret;
2889 
2890 	net = container_of(table->data, struct net, vsock.child_ns_mode);
2891 
2892 	ret = __vsock_net_mode_string(table, write, buffer, lenp, ppos,
2893 				      vsock_net_child_mode(net), &new_mode);
2894 	if (ret)
2895 		return ret;
2896 
2897 	if (write) {
2898 		/* Prevent a "local" namespace from escalating to "global",
2899 		 * which would give nested namespaces access to global CIDs.
2900 		 */
2901 		if (vsock_net_mode(net) == VSOCK_NET_MODE_LOCAL &&
2902 		    new_mode == VSOCK_NET_MODE_GLOBAL)
2903 			return -EPERM;
2904 
2905 		if (!vsock_net_set_child_mode(net, new_mode))
2906 			return -EBUSY;
2907 	}
2908 
2909 	return 0;
2910 }
2911 
2912 static const struct ctl_table vsock_table[] = {
2913 	{
2914 		.procname	= "ns_mode",
2915 		.data		= &init_net.vsock.mode,
2916 		.maxlen		= VSOCK_NET_MODE_STR_MAX,
2917 		.mode		= 0444,
2918 		.proc_handler	= vsock_net_mode_string
2919 	},
2920 	{
2921 		.procname	= "child_ns_mode",
2922 		.data		= &init_net.vsock.child_ns_mode,
2923 		.maxlen		= VSOCK_NET_MODE_STR_MAX,
2924 		.mode		= 0644,
2925 		.proc_handler	= vsock_net_child_mode_string
2926 	},
2927 	{
2928 		.procname	= "g2h_fallback",
2929 		.data		= &init_net.vsock.g2h_fallback,
2930 		.maxlen		= sizeof(int),
2931 		.mode		= 0644,
2932 		.proc_handler	= proc_dointvec_minmax,
2933 		.extra1		= SYSCTL_ZERO,
2934 		.extra2		= SYSCTL_ONE,
2935 	},
2936 };
2937 
2938 static const struct ctl_table *vsock_table_dup(struct net *net)
2939 {
2940 	struct ctl_table *table;
2941 
2942 	table = kmemdup(vsock_table, sizeof(vsock_table), GFP_KERNEL);
2943 	if (!table)
2944 		return NULL;
2945 
2946 	table[0].data = &net->vsock.mode;
2947 	table[1].data = &net->vsock.child_ns_mode;
2948 	table[2].data = &net->vsock.g2h_fallback;
2949 
2950 	return table;
2951 }
2952 
2953 static int __net_init vsock_sysctl_register(struct net *net)
2954 {
2955 	const struct ctl_table *table;
2956 
2957 	if (net_eq(net, &init_net)) {
2958 		table = vsock_table;
2959 	} else {
2960 		table = vsock_table_dup(net);
2961 		if (!table)
2962 			goto err_alloc;
2963 	}
2964 
2965 	net->vsock.sysctl_hdr = register_net_sysctl_sz(net, "net/vsock", table,
2966 						       ARRAY_SIZE(vsock_table));
2967 	if (!net->vsock.sysctl_hdr)
2968 		goto err_reg;
2969 
2970 	return 0;
2971 
2972 err_reg:
2973 	if (!net_eq(net, &init_net))
2974 		kfree(table);
2975 err_alloc:
2976 	return -ENOMEM;
2977 }
2978 
2979 static void vsock_sysctl_unregister(struct net *net)
2980 {
2981 	const struct ctl_table *table;
2982 
2983 	table = net->vsock.sysctl_hdr->ctl_table_arg;
2984 	unregister_net_sysctl_table(net->vsock.sysctl_hdr);
2985 	if (!net_eq(net, &init_net))
2986 		kfree(table);
2987 }
2988 
2989 static void vsock_net_init(struct net *net)
2990 {
2991 	if (net_eq(net, &init_net))
2992 		net->vsock.mode = VSOCK_NET_MODE_GLOBAL;
2993 	else
2994 		net->vsock.mode = vsock_net_child_mode(current->nsproxy->net_ns);
2995 
2996 	net->vsock.child_ns_mode = net->vsock.mode;
2997 	net->vsock.child_ns_mode_locked = 0;
2998 	net->vsock.g2h_fallback = 1;
2999 }
3000 
3001 static __net_init int vsock_sysctl_init_net(struct net *net)
3002 {
3003 	vsock_net_init(net);
3004 
3005 	if (vsock_sysctl_register(net))
3006 		return -ENOMEM;
3007 
3008 	return 0;
3009 }
3010 
3011 static __net_exit void vsock_sysctl_exit_net(struct net *net)
3012 {
3013 	vsock_sysctl_unregister(net);
3014 }
3015 
3016 static struct pernet_operations vsock_sysctl_ops = {
3017 	.init = vsock_sysctl_init_net,
3018 	.exit = vsock_sysctl_exit_net,
3019 };
3020 
3021 static int __init vsock_init(void)
3022 {
3023 	int err = 0;
3024 
3025 	vsock_init_tables();
3026 
3027 	vsock_proto.owner = THIS_MODULE;
3028 	vsock_device.minor = MISC_DYNAMIC_MINOR;
3029 	err = misc_register(&vsock_device);
3030 	if (err) {
3031 		pr_err("Failed to register misc device\n");
3032 		goto err_reset_transport;
3033 	}
3034 
3035 	err = proto_register(&vsock_proto, 1);	/* we want our slab */
3036 	if (err) {
3037 		pr_err("Cannot register vsock protocol\n");
3038 		goto err_deregister_misc;
3039 	}
3040 
3041 	err = sock_register(&vsock_family_ops);
3042 	if (err) {
3043 		pr_err("could not register af_vsock (%d) address family: %d\n",
3044 		       AF_VSOCK, err);
3045 		goto err_unregister_proto;
3046 	}
3047 
3048 	if (register_pernet_subsys(&vsock_sysctl_ops)) {
3049 		err = -ENOMEM;
3050 		goto err_unregister_sock;
3051 	}
3052 
3053 	vsock_bpf_build_proto();
3054 
3055 	return 0;
3056 
3057 err_unregister_sock:
3058 	sock_unregister(AF_VSOCK);
3059 err_unregister_proto:
3060 	proto_unregister(&vsock_proto);
3061 err_deregister_misc:
3062 	misc_deregister(&vsock_device);
3063 err_reset_transport:
3064 	return err;
3065 }
3066 
3067 static void __exit vsock_exit(void)
3068 {
3069 	misc_deregister(&vsock_device);
3070 	sock_unregister(AF_VSOCK);
3071 	proto_unregister(&vsock_proto);
3072 	unregister_pernet_subsys(&vsock_sysctl_ops);
3073 }
3074 
3075 const struct vsock_transport *vsock_core_get_transport(struct vsock_sock *vsk)
3076 {
3077 	return vsk->transport;
3078 }
3079 EXPORT_SYMBOL_GPL(vsock_core_get_transport);
3080 
3081 int vsock_core_register(const struct vsock_transport *t, int features)
3082 {
3083 	const struct vsock_transport *t_h2g, *t_g2h, *t_dgram, *t_local;
3084 	int err = mutex_lock_interruptible(&vsock_register_mutex);
3085 
3086 	if (err)
3087 		return err;
3088 
3089 	t_h2g = transport_h2g;
3090 	t_g2h = transport_g2h;
3091 	t_dgram = transport_dgram;
3092 	t_local = transport_local;
3093 
3094 	if (features & VSOCK_TRANSPORT_F_H2G) {
3095 		if (t_h2g) {
3096 			err = -EBUSY;
3097 			goto err_busy;
3098 		}
3099 		t_h2g = t;
3100 	}
3101 
3102 	if (features & VSOCK_TRANSPORT_F_G2H) {
3103 		if (t_g2h) {
3104 			err = -EBUSY;
3105 			goto err_busy;
3106 		}
3107 		t_g2h = t;
3108 	}
3109 
3110 	if (features & VSOCK_TRANSPORT_F_DGRAM) {
3111 		if (t_dgram) {
3112 			err = -EBUSY;
3113 			goto err_busy;
3114 		}
3115 		t_dgram = t;
3116 	}
3117 
3118 	if (features & VSOCK_TRANSPORT_F_LOCAL) {
3119 		if (t_local) {
3120 			err = -EBUSY;
3121 			goto err_busy;
3122 		}
3123 		t_local = t;
3124 	}
3125 
3126 	transport_h2g = t_h2g;
3127 	transport_g2h = t_g2h;
3128 	transport_dgram = t_dgram;
3129 	transport_local = t_local;
3130 
3131 err_busy:
3132 	mutex_unlock(&vsock_register_mutex);
3133 	return err;
3134 }
3135 EXPORT_SYMBOL_GPL(vsock_core_register);
3136 
3137 void vsock_core_unregister(const struct vsock_transport *t)
3138 {
3139 	mutex_lock(&vsock_register_mutex);
3140 
3141 	if (transport_h2g == t)
3142 		transport_h2g = NULL;
3143 
3144 	if (transport_g2h == t)
3145 		transport_g2h = NULL;
3146 
3147 	if (transport_dgram == t)
3148 		transport_dgram = NULL;
3149 
3150 	if (transport_local == t)
3151 		transport_local = NULL;
3152 
3153 	mutex_unlock(&vsock_register_mutex);
3154 }
3155 EXPORT_SYMBOL_GPL(vsock_core_unregister);
3156 
3157 module_init(vsock_init);
3158 module_exit(vsock_exit);
3159 
3160 MODULE_AUTHOR("VMware, Inc.");
3161 MODULE_DESCRIPTION("VMware Virtual Socket Family");
3162 MODULE_VERSION("1.0.2.0-k");
3163 MODULE_LICENSE("GPL v2");
3164