xref: /linux/net/vmw_vsock/vmci_transport.c (revision ad9a7da3fa39c2d616ec0dd3cf6e30531d032fe7)
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 #include <linux/types.h>
9 #include <linux/bitops.h>
10 #include <linux/cred.h>
11 #include <linux/init.h>
12 #include <linux/io.h>
13 #include <linux/kernel.h>
14 #include <linux/kmod.h>
15 #include <linux/list.h>
16 #include <linux/module.h>
17 #include <linux/mutex.h>
18 #include <linux/net.h>
19 #include <linux/poll.h>
20 #include <linux/skbuff.h>
21 #include <linux/smp.h>
22 #include <linux/socket.h>
23 #include <linux/stddef.h>
24 #include <linux/unistd.h>
25 #include <linux/wait.h>
26 #include <linux/workqueue.h>
27 #include <net/sock.h>
28 #include <net/af_vsock.h>
29 
30 #include "vmci_transport_notify.h"
31 
32 static int vmci_transport_recv_dgram_cb(void *data, struct vmci_datagram *dg);
33 static int vmci_transport_recv_stream_cb(void *data, struct vmci_datagram *dg);
34 static void vmci_transport_peer_detach_cb(u32 sub_id,
35 					  const struct vmci_event_data *ed,
36 					  void *client_data);
37 static void vmci_transport_recv_pkt_work(struct work_struct *work);
38 static void vmci_transport_cleanup(struct work_struct *work);
39 static int vmci_transport_recv_listen(struct sock *sk,
40 				      struct vmci_transport_packet *pkt);
41 static int vmci_transport_recv_connecting_server(
42 					struct sock *sk,
43 					struct sock *pending,
44 					struct vmci_transport_packet *pkt);
45 static int vmci_transport_recv_connecting_client(
46 					struct sock *sk,
47 					struct vmci_transport_packet *pkt);
48 static int vmci_transport_recv_connecting_client_negotiate(
49 					struct sock *sk,
50 					struct vmci_transport_packet *pkt);
51 static int vmci_transport_recv_connecting_client_invalid(
52 					struct sock *sk,
53 					struct vmci_transport_packet *pkt);
54 static int vmci_transport_recv_connected(struct sock *sk,
55 					 struct vmci_transport_packet *pkt);
56 static bool vmci_transport_old_proto_override(bool *old_pkt_proto);
57 static u16 vmci_transport_new_proto_supported_versions(void);
58 static bool vmci_transport_proto_to_notify_struct(struct sock *sk, u16 *proto,
59 						  bool old_pkt_proto);
60 static bool vmci_check_transport(struct vsock_sock *vsk);
61 
62 struct vmci_transport_recv_pkt_info {
63 	struct work_struct work;
64 	struct sock *sk;
65 	struct vmci_transport_packet pkt;
66 };
67 
68 static LIST_HEAD(vmci_transport_cleanup_list);
69 static DEFINE_SPINLOCK(vmci_transport_cleanup_lock);
70 static DECLARE_WORK(vmci_transport_cleanup_work, vmci_transport_cleanup);
71 
72 static struct vmci_handle vmci_transport_stream_handle = { VMCI_INVALID_ID,
73 							   VMCI_INVALID_ID };
74 static u32 vmci_transport_qp_resumed_sub_id = VMCI_INVALID_ID;
75 
76 static int PROTOCOL_OVERRIDE = -1;
77 
78 static struct vsock_transport vmci_transport; /* forward declaration */
79 
80 /* Helper function to convert from a VMCI error code to a VSock error code. */
81 
82 static s32 vmci_transport_error_to_vsock_error(s32 vmci_error)
83 {
84 	switch (vmci_error) {
85 	case VMCI_ERROR_NO_MEM:
86 		return -ENOMEM;
87 	case VMCI_ERROR_DUPLICATE_ENTRY:
88 	case VMCI_ERROR_ALREADY_EXISTS:
89 		return -EADDRINUSE;
90 	case VMCI_ERROR_NO_ACCESS:
91 		return -EPERM;
92 	case VMCI_ERROR_NO_RESOURCES:
93 		return -ENOBUFS;
94 	case VMCI_ERROR_INVALID_RESOURCE:
95 		return -EHOSTUNREACH;
96 	case VMCI_ERROR_INVALID_ARGS:
97 	default:
98 		break;
99 	}
100 	return -EINVAL;
101 }
102 
103 static u32 vmci_transport_peer_rid(u32 peer_cid)
104 {
105 	if (VMADDR_CID_HYPERVISOR == peer_cid)
106 		return VMCI_TRANSPORT_HYPERVISOR_PACKET_RID;
107 
108 	return VMCI_TRANSPORT_PACKET_RID;
109 }
110 
111 static inline void
112 vmci_transport_packet_init(struct vmci_transport_packet *pkt,
113 			   struct sockaddr_vm *src,
114 			   struct sockaddr_vm *dst,
115 			   u8 type,
116 			   u64 size,
117 			   u64 mode,
118 			   struct vmci_transport_waiting_info *wait,
119 			   u16 proto,
120 			   struct vmci_handle handle)
121 {
122 	memset(pkt, 0, sizeof(*pkt));
123 
124 	/* We register the stream control handler as an any cid handle so we
125 	 * must always send from a source address of VMADDR_CID_ANY
126 	 */
127 	pkt->dg.src = vmci_make_handle(VMADDR_CID_ANY,
128 				       VMCI_TRANSPORT_PACKET_RID);
129 	pkt->dg.dst = vmci_make_handle(dst->svm_cid,
130 				       vmci_transport_peer_rid(dst->svm_cid));
131 	pkt->dg.payload_size = sizeof(*pkt) - sizeof(pkt->dg);
132 	pkt->version = VMCI_TRANSPORT_PACKET_VERSION;
133 	pkt->type = type;
134 	pkt->src_port = src->svm_port;
135 	pkt->dst_port = dst->svm_port;
136 
137 	switch (pkt->type) {
138 	case VMCI_TRANSPORT_PACKET_TYPE_INVALID:
139 		pkt->u.size = 0;
140 		break;
141 
142 	case VMCI_TRANSPORT_PACKET_TYPE_REQUEST:
143 	case VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE:
144 		pkt->u.size = size;
145 		break;
146 
147 	case VMCI_TRANSPORT_PACKET_TYPE_OFFER:
148 	case VMCI_TRANSPORT_PACKET_TYPE_ATTACH:
149 		pkt->u.handle = handle;
150 		break;
151 
152 	case VMCI_TRANSPORT_PACKET_TYPE_WROTE:
153 	case VMCI_TRANSPORT_PACKET_TYPE_READ:
154 	case VMCI_TRANSPORT_PACKET_TYPE_RST:
155 		pkt->u.size = 0;
156 		break;
157 
158 	case VMCI_TRANSPORT_PACKET_TYPE_SHUTDOWN:
159 		pkt->u.mode = mode;
160 		break;
161 
162 	case VMCI_TRANSPORT_PACKET_TYPE_WAITING_READ:
163 	case VMCI_TRANSPORT_PACKET_TYPE_WAITING_WRITE:
164 		pkt->u.wait = *wait;
165 		break;
166 
167 	case VMCI_TRANSPORT_PACKET_TYPE_REQUEST2:
168 	case VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE2:
169 		pkt->u.size = size;
170 		pkt->proto = proto;
171 		break;
172 	}
173 }
174 
175 static inline void
176 vmci_transport_packet_get_addresses(struct vmci_transport_packet *pkt,
177 				    struct sockaddr_vm *local,
178 				    struct sockaddr_vm *remote)
179 {
180 	vsock_addr_init(local, pkt->dg.dst.context, pkt->dst_port);
181 	vsock_addr_init(remote, pkt->dg.src.context, pkt->src_port);
182 }
183 
184 static int
185 __vmci_transport_send_control_pkt(struct vmci_transport_packet *pkt,
186 				  struct sockaddr_vm *src,
187 				  struct sockaddr_vm *dst,
188 				  enum vmci_transport_packet_type type,
189 				  u64 size,
190 				  u64 mode,
191 				  struct vmci_transport_waiting_info *wait,
192 				  u16 proto,
193 				  struct vmci_handle handle,
194 				  bool convert_error)
195 {
196 	int err;
197 
198 	vmci_transport_packet_init(pkt, src, dst, type, size, mode, wait,
199 				   proto, handle);
200 	err = vmci_datagram_send(&pkt->dg);
201 	if (convert_error && (err < 0))
202 		return vmci_transport_error_to_vsock_error(err);
203 
204 	return err;
205 }
206 
207 static int
208 vmci_transport_reply_control_pkt_fast(struct vmci_transport_packet *pkt,
209 				      enum vmci_transport_packet_type type,
210 				      u64 size,
211 				      u64 mode,
212 				      struct vmci_transport_waiting_info *wait,
213 				      struct vmci_handle handle)
214 {
215 	struct vmci_transport_packet reply;
216 	struct sockaddr_vm src, dst;
217 
218 	if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_RST) {
219 		return 0;
220 	} else {
221 		vmci_transport_packet_get_addresses(pkt, &src, &dst);
222 		return __vmci_transport_send_control_pkt(&reply, &src, &dst,
223 							 type,
224 							 size, mode, wait,
225 							 VSOCK_PROTO_INVALID,
226 							 handle, true);
227 	}
228 }
229 
230 static int
231 vmci_transport_send_control_pkt_bh(struct sockaddr_vm *src,
232 				   struct sockaddr_vm *dst,
233 				   enum vmci_transport_packet_type type,
234 				   u64 size,
235 				   u64 mode,
236 				   struct vmci_transport_waiting_info *wait,
237 				   struct vmci_handle handle)
238 {
239 	/* Note that it is safe to use a single packet across all CPUs since
240 	 * two tasklets of the same type are guaranteed to not ever run
241 	 * simultaneously. If that ever changes, or VMCI stops using tasklets,
242 	 * we can use per-cpu packets.
243 	 */
244 	static struct vmci_transport_packet pkt;
245 
246 	return __vmci_transport_send_control_pkt(&pkt, src, dst, type,
247 						 size, mode, wait,
248 						 VSOCK_PROTO_INVALID, handle,
249 						 false);
250 }
251 
252 static int
253 vmci_transport_alloc_send_control_pkt(struct sockaddr_vm *src,
254 				      struct sockaddr_vm *dst,
255 				      enum vmci_transport_packet_type type,
256 				      u64 size,
257 				      u64 mode,
258 				      struct vmci_transport_waiting_info *wait,
259 				      u16 proto,
260 				      struct vmci_handle handle)
261 {
262 	struct vmci_transport_packet *pkt;
263 	int err;
264 
265 	pkt = kmalloc_obj(*pkt);
266 	if (!pkt)
267 		return -ENOMEM;
268 
269 	err = __vmci_transport_send_control_pkt(pkt, src, dst, type, size,
270 						mode, wait, proto, handle,
271 						true);
272 	kfree(pkt);
273 
274 	return err;
275 }
276 
277 static int
278 vmci_transport_send_control_pkt(struct sock *sk,
279 				enum vmci_transport_packet_type type,
280 				u64 size,
281 				u64 mode,
282 				struct vmci_transport_waiting_info *wait,
283 				u16 proto,
284 				struct vmci_handle handle)
285 {
286 	struct vsock_sock *vsk;
287 
288 	vsk = vsock_sk(sk);
289 
290 	if (!vsock_addr_bound(&vsk->local_addr))
291 		return -EINVAL;
292 
293 	if (!vsock_addr_bound(&vsk->remote_addr))
294 		return -EINVAL;
295 
296 	return vmci_transport_alloc_send_control_pkt(&vsk->local_addr,
297 						     &vsk->remote_addr,
298 						     type, size, mode,
299 						     wait, proto, handle);
300 }
301 
302 static int vmci_transport_send_reset_bh(struct sockaddr_vm *dst,
303 					struct sockaddr_vm *src,
304 					struct vmci_transport_packet *pkt)
305 {
306 	if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_RST)
307 		return 0;
308 	return vmci_transport_send_control_pkt_bh(
309 					dst, src,
310 					VMCI_TRANSPORT_PACKET_TYPE_RST, 0,
311 					0, NULL, VMCI_INVALID_HANDLE);
312 }
313 
314 static int vmci_transport_send_reset(struct sock *sk,
315 				     struct vmci_transport_packet *pkt)
316 {
317 	struct sockaddr_vm *dst_ptr;
318 	struct sockaddr_vm dst;
319 	struct vsock_sock *vsk;
320 
321 	if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_RST)
322 		return 0;
323 
324 	vsk = vsock_sk(sk);
325 
326 	if (!vsock_addr_bound(&vsk->local_addr))
327 		return -EINVAL;
328 
329 	if (vsock_addr_bound(&vsk->remote_addr)) {
330 		dst_ptr = &vsk->remote_addr;
331 	} else {
332 		vsock_addr_init(&dst, pkt->dg.src.context,
333 				pkt->src_port);
334 		dst_ptr = &dst;
335 	}
336 	return vmci_transport_alloc_send_control_pkt(&vsk->local_addr, dst_ptr,
337 					     VMCI_TRANSPORT_PACKET_TYPE_RST,
338 					     0, 0, NULL, VSOCK_PROTO_INVALID,
339 					     VMCI_INVALID_HANDLE);
340 }
341 
342 static int vmci_transport_send_negotiate(struct sock *sk, size_t size)
343 {
344 	return vmci_transport_send_control_pkt(
345 					sk,
346 					VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE,
347 					size, 0, NULL,
348 					VSOCK_PROTO_INVALID,
349 					VMCI_INVALID_HANDLE);
350 }
351 
352 static int vmci_transport_send_negotiate2(struct sock *sk, size_t size,
353 					  u16 version)
354 {
355 	return vmci_transport_send_control_pkt(
356 					sk,
357 					VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE2,
358 					size, 0, NULL, version,
359 					VMCI_INVALID_HANDLE);
360 }
361 
362 static int vmci_transport_send_qp_offer(struct sock *sk,
363 					struct vmci_handle handle)
364 {
365 	return vmci_transport_send_control_pkt(
366 					sk, VMCI_TRANSPORT_PACKET_TYPE_OFFER, 0,
367 					0, NULL,
368 					VSOCK_PROTO_INVALID, handle);
369 }
370 
371 static int vmci_transport_send_attach(struct sock *sk,
372 				      struct vmci_handle handle)
373 {
374 	return vmci_transport_send_control_pkt(
375 					sk, VMCI_TRANSPORT_PACKET_TYPE_ATTACH,
376 					0, 0, NULL, VSOCK_PROTO_INVALID,
377 					handle);
378 }
379 
380 static int vmci_transport_reply_reset(struct vmci_transport_packet *pkt)
381 {
382 	return vmci_transport_reply_control_pkt_fast(
383 						pkt,
384 						VMCI_TRANSPORT_PACKET_TYPE_RST,
385 						0, 0, NULL,
386 						VMCI_INVALID_HANDLE);
387 }
388 
389 static int vmci_transport_send_invalid_bh(struct sockaddr_vm *dst,
390 					  struct sockaddr_vm *src)
391 {
392 	return vmci_transport_send_control_pkt_bh(
393 					dst, src,
394 					VMCI_TRANSPORT_PACKET_TYPE_INVALID,
395 					0, 0, NULL, VMCI_INVALID_HANDLE);
396 }
397 
398 int vmci_transport_send_wrote_bh(struct sockaddr_vm *dst,
399 				 struct sockaddr_vm *src)
400 {
401 	return vmci_transport_send_control_pkt_bh(
402 					dst, src,
403 					VMCI_TRANSPORT_PACKET_TYPE_WROTE, 0,
404 					0, NULL, VMCI_INVALID_HANDLE);
405 }
406 
407 int vmci_transport_send_read_bh(struct sockaddr_vm *dst,
408 				struct sockaddr_vm *src)
409 {
410 	return vmci_transport_send_control_pkt_bh(
411 					dst, src,
412 					VMCI_TRANSPORT_PACKET_TYPE_READ, 0,
413 					0, NULL, VMCI_INVALID_HANDLE);
414 }
415 
416 int vmci_transport_send_wrote(struct sock *sk)
417 {
418 	return vmci_transport_send_control_pkt(
419 					sk, VMCI_TRANSPORT_PACKET_TYPE_WROTE, 0,
420 					0, NULL, VSOCK_PROTO_INVALID,
421 					VMCI_INVALID_HANDLE);
422 }
423 
424 int vmci_transport_send_read(struct sock *sk)
425 {
426 	return vmci_transport_send_control_pkt(
427 					sk, VMCI_TRANSPORT_PACKET_TYPE_READ, 0,
428 					0, NULL, VSOCK_PROTO_INVALID,
429 					VMCI_INVALID_HANDLE);
430 }
431 
432 int vmci_transport_send_waiting_write(struct sock *sk,
433 				      struct vmci_transport_waiting_info *wait)
434 {
435 	return vmci_transport_send_control_pkt(
436 				sk, VMCI_TRANSPORT_PACKET_TYPE_WAITING_WRITE,
437 				0, 0, wait, VSOCK_PROTO_INVALID,
438 				VMCI_INVALID_HANDLE);
439 }
440 
441 int vmci_transport_send_waiting_read(struct sock *sk,
442 				     struct vmci_transport_waiting_info *wait)
443 {
444 	return vmci_transport_send_control_pkt(
445 				sk, VMCI_TRANSPORT_PACKET_TYPE_WAITING_READ,
446 				0, 0, wait, VSOCK_PROTO_INVALID,
447 				VMCI_INVALID_HANDLE);
448 }
449 
450 static int vmci_transport_shutdown(struct vsock_sock *vsk, int mode)
451 {
452 	return vmci_transport_send_control_pkt(
453 					&vsk->sk,
454 					VMCI_TRANSPORT_PACKET_TYPE_SHUTDOWN,
455 					0, mode, NULL,
456 					VSOCK_PROTO_INVALID,
457 					VMCI_INVALID_HANDLE);
458 }
459 
460 static int vmci_transport_send_conn_request(struct sock *sk, size_t size)
461 {
462 	return vmci_transport_send_control_pkt(sk,
463 					VMCI_TRANSPORT_PACKET_TYPE_REQUEST,
464 					size, 0, NULL,
465 					VSOCK_PROTO_INVALID,
466 					VMCI_INVALID_HANDLE);
467 }
468 
469 static int vmci_transport_send_conn_request2(struct sock *sk, size_t size,
470 					     u16 version)
471 {
472 	return vmci_transport_send_control_pkt(
473 					sk, VMCI_TRANSPORT_PACKET_TYPE_REQUEST2,
474 					size, 0, NULL, version,
475 					VMCI_INVALID_HANDLE);
476 }
477 
478 static struct sock *vmci_transport_get_pending(
479 					struct sock *listener,
480 					struct vmci_transport_packet *pkt)
481 {
482 	struct vsock_sock *vlistener;
483 	struct vsock_sock *vpending;
484 	struct sock *pending;
485 	struct sockaddr_vm src;
486 
487 	vsock_addr_init(&src, pkt->dg.src.context, pkt->src_port);
488 
489 	vlistener = vsock_sk(listener);
490 
491 	list_for_each_entry(vpending, &vlistener->pending_links,
492 			    pending_links) {
493 		if (vsock_addr_equals_addr(&src, &vpending->remote_addr) &&
494 		    pkt->dst_port == vpending->local_addr.svm_port) {
495 			pending = sk_vsock(vpending);
496 			sock_hold(pending);
497 			goto found;
498 		}
499 	}
500 
501 	pending = NULL;
502 found:
503 	return pending;
504 
505 }
506 
507 static void vmci_transport_release_pending(struct sock *pending)
508 {
509 	sock_put(pending);
510 }
511 
512 /* We allow two kinds of sockets to communicate with a restricted VM: 1)
513  * trusted sockets 2) sockets from applications running as the same user as the
514  * VM (this is only true for the host side and only when using hosted products)
515  */
516 
517 static bool vmci_transport_is_trusted(struct vsock_sock *vsock, u32 peer_cid)
518 {
519 	return vsock->trusted ||
520 	       vmci_is_context_owner(peer_cid, vsock->owner->uid);
521 }
522 
523 /* We allow sending datagrams to and receiving datagrams from a restricted VM
524  * only if it is trusted as described in vmci_transport_is_trusted.
525  */
526 
527 static bool vmci_transport_allow_dgram(struct vsock_sock *vsock, u32 peer_cid)
528 {
529 	if (VMADDR_CID_HYPERVISOR == peer_cid)
530 		return true;
531 
532 	if (vsock->cached_peer != peer_cid) {
533 		vsock->cached_peer = peer_cid;
534 		if (!vmci_transport_is_trusted(vsock, peer_cid) &&
535 		    (vmci_context_get_priv_flags(peer_cid) &
536 		     VMCI_PRIVILEGE_FLAG_RESTRICTED)) {
537 			vsock->cached_peer_allow_dgram = false;
538 		} else {
539 			vsock->cached_peer_allow_dgram = true;
540 		}
541 	}
542 
543 	return vsock->cached_peer_allow_dgram;
544 }
545 
546 static int
547 vmci_transport_queue_pair_alloc(struct vmci_qp **qpair,
548 				struct vmci_handle *handle,
549 				u64 produce_size,
550 				u64 consume_size,
551 				u32 peer, u32 flags, bool trusted)
552 {
553 	int err = 0;
554 
555 	if (trusted) {
556 		/* Try to allocate our queue pair as trusted. This will only
557 		 * work if vsock is running in the host.
558 		 */
559 
560 		err = vmci_qpair_alloc(qpair, handle, produce_size,
561 				       consume_size,
562 				       peer, flags,
563 				       VMCI_PRIVILEGE_FLAG_TRUSTED);
564 		if (err != VMCI_ERROR_NO_ACCESS)
565 			goto out;
566 
567 	}
568 
569 	err = vmci_qpair_alloc(qpair, handle, produce_size, consume_size,
570 			       peer, flags, VMCI_NO_PRIVILEGE_FLAGS);
571 out:
572 	if (err < 0) {
573 		pr_err_once("Could not attach to queue pair with %d\n", err);
574 		err = vmci_transport_error_to_vsock_error(err);
575 	}
576 
577 	return err;
578 }
579 
580 static int
581 vmci_transport_datagram_create_hnd(u32 resource_id,
582 				   u32 flags,
583 				   vmci_datagram_recv_cb recv_cb,
584 				   void *client_data,
585 				   struct vmci_handle *out_handle)
586 {
587 	int err = 0;
588 
589 	/* Try to allocate our datagram handler as trusted. This will only work
590 	 * if vsock is running in the host.
591 	 */
592 
593 	err = vmci_datagram_create_handle_priv(resource_id, flags,
594 					       VMCI_PRIVILEGE_FLAG_TRUSTED,
595 					       recv_cb,
596 					       client_data, out_handle);
597 
598 	if (err == VMCI_ERROR_NO_ACCESS)
599 		err = vmci_datagram_create_handle(resource_id, flags,
600 						  recv_cb, client_data,
601 						  out_handle);
602 
603 	return err;
604 }
605 
606 /* This is invoked as part of a tasklet that's scheduled when the VMCI
607  * interrupt fires.  This is run in bottom-half context and if it ever needs to
608  * sleep it should defer that work to a work queue.
609  */
610 
611 static int vmci_transport_recv_dgram_cb(void *data, struct vmci_datagram *dg)
612 {
613 	struct sock *sk;
614 	size_t size;
615 	struct sk_buff *skb;
616 	struct vsock_sock *vsk;
617 
618 	sk = (struct sock *)data;
619 
620 	/* This handler is privileged when this module is running on the host.
621 	 * We will get datagrams from all endpoints (even VMs that are in a
622 	 * restricted context). If we get one from a restricted context then
623 	 * the destination socket must be trusted.
624 	 *
625 	 * NOTE: We access the socket struct without holding the lock here.
626 	 * This is ok because the field we are interested is never modified
627 	 * outside of the create and destruct socket functions.
628 	 */
629 	vsk = vsock_sk(sk);
630 	if (!vmci_transport_allow_dgram(vsk, dg->src.context))
631 		return VMCI_ERROR_NO_ACCESS;
632 
633 	size = VMCI_DG_SIZE(dg);
634 
635 	/* Attach the packet to the socket's receive queue as an sk_buff. */
636 	skb = alloc_skb(size, GFP_ATOMIC);
637 	if (!skb)
638 		return VMCI_ERROR_NO_MEM;
639 
640 	/* sk_receive_skb() will do a sock_put(), so hold here. */
641 	sock_hold(sk);
642 	skb_put(skb, size);
643 	memcpy(skb->data, dg, size);
644 	sk_receive_skb(sk, skb, 0);
645 
646 	return VMCI_SUCCESS;
647 }
648 
649 static bool vmci_transport_stream_allow(struct vsock_sock *vsk, u32 cid,
650 					u32 port)
651 {
652 	static const u32 non_socket_contexts[] = {
653 		VMADDR_CID_LOCAL,
654 	};
655 	int i;
656 
657 	if (!vsock_net_mode_global(vsk))
658 		return false;
659 
660 	BUILD_BUG_ON(sizeof(cid) != sizeof(*non_socket_contexts));
661 
662 	for (i = 0; i < ARRAY_SIZE(non_socket_contexts); i++) {
663 		if (cid == non_socket_contexts[i])
664 			return false;
665 	}
666 
667 	return true;
668 }
669 
670 /* This is invoked as part of a tasklet that's scheduled when the VMCI
671  * interrupt fires.  This is run in bottom-half context but it defers most of
672  * its work to the packet handling work queue.
673  */
674 
675 static int vmci_transport_recv_stream_cb(void *data, struct vmci_datagram *dg)
676 {
677 	struct sock *sk;
678 	struct sockaddr_vm dst;
679 	struct sockaddr_vm src;
680 	struct vmci_transport_packet *pkt;
681 	struct vsock_sock *vsk;
682 	bool bh_process_pkt;
683 	bool drop_pkt;
684 	int err;
685 
686 	sk = NULL;
687 	err = VMCI_SUCCESS;
688 	bh_process_pkt = false;
689 	drop_pkt = false;
690 
691 	/* Ignore incoming packets from resources that aren't vsock
692 	 * implementations.
693 	 */
694 	if (vmci_transport_peer_rid(dg->src.context) != dg->src.resource)
695 		return VMCI_ERROR_NO_ACCESS;
696 
697 	if (VMCI_DG_SIZE(dg) < sizeof(*pkt))
698 		/* Drop datagrams that do not contain full VSock packets. */
699 		return VMCI_ERROR_INVALID_ARGS;
700 
701 	pkt = (struct vmci_transport_packet *)dg;
702 
703 	/* Find the socket that should handle this packet.  First we look for a
704 	 * connected socket and if there is none we look for a socket bound to
705 	 * the destintation address.
706 	 */
707 	vsock_addr_init(&src, pkt->dg.src.context, pkt->src_port);
708 	vsock_addr_init(&dst, pkt->dg.dst.context, pkt->dst_port);
709 
710 	sk = vsock_find_connected_socket(&src, &dst);
711 	if (!sk) {
712 		sk = vsock_find_bound_socket(&dst);
713 		if (!sk) {
714 			/* We could not find a socket for this specified
715 			 * address.  If this packet is a RST, we just drop it.
716 			 * If it is another packet, we send a RST.  Note that
717 			 * we do not send a RST reply to RSTs so that we do not
718 			 * continually send RSTs between two endpoints.
719 			 *
720 			 * Note that since this is a reply, dst is src and src
721 			 * is dst.
722 			 */
723 			if (vmci_transport_send_reset_bh(&dst, &src, pkt) < 0)
724 				pr_err("unable to send reset\n");
725 
726 			err = VMCI_ERROR_NOT_FOUND;
727 			goto out;
728 		}
729 	}
730 
731 	/* If the received packet type is beyond all types known to this
732 	 * implementation, reply with an invalid message.  Hopefully this will
733 	 * help when implementing backwards compatibility in the future.
734 	 */
735 	if (pkt->type >= VMCI_TRANSPORT_PACKET_TYPE_MAX) {
736 		vmci_transport_send_invalid_bh(&dst, &src);
737 		err = VMCI_ERROR_INVALID_ARGS;
738 		goto out;
739 	}
740 
741 	/* This handler is privileged when this module is running on the host.
742 	 * We will get datagram connect requests from all endpoints (even VMs
743 	 * that are in a restricted context). If we get one from a restricted
744 	 * context then the destination socket must be trusted.
745 	 *
746 	 * NOTE: We access the socket struct without holding the lock here.
747 	 * This is ok because the field we are interested is never modified
748 	 * outside of the create and destruct socket functions.
749 	 */
750 	vsk = vsock_sk(sk);
751 	if (!vmci_transport_allow_dgram(vsk, pkt->dg.src.context)) {
752 		err = VMCI_ERROR_NO_ACCESS;
753 		goto out;
754 	}
755 
756 	/* Ignore incoming packets from contexts without sockets. */
757 	if (!vmci_transport_stream_allow(vsk, dg->src.context, -1)) {
758 		err = VMCI_ERROR_NO_ACCESS;
759 		goto out;
760 	}
761 
762 	/* We do most everything in a work queue, but let's fast path the
763 	 * notification of reads and writes to help data transfer performance.
764 	 * We can only do this if there is no process context code executing
765 	 * for this socket since that may change the state.
766 	 */
767 	bh_lock_sock(sk);
768 
769 	if (!sock_owned_by_user(sk)) {
770 		if (sk->sk_state != TCP_LISTEN &&
771 		    !vsock_check_source(vsk, &vmci_transport, &src)) {
772 			drop_pkt = true;
773 			err = VMCI_ERROR_NO_ACCESS;
774 		} else {
775 			/* The local context ID may be out of date, update it. */
776 			vsk->local_addr.svm_cid = dst.svm_cid;
777 
778 			if (sk->sk_state == TCP_ESTABLISHED)
779 				vmci_trans(vsk)->notify_ops->handle_notify_pkt(sk, pkt, true,
780 									       &dst, &src,
781 									       &bh_process_pkt);
782 		}
783 	}
784 
785 	bh_unlock_sock(sk);
786 
787 	if (drop_pkt) {
788 		if (vmci_transport_send_reset_bh(&dst, &src, pkt) < 0)
789 			pr_err("unable to send reset\n");
790 		goto out;
791 	}
792 
793 	if (!bh_process_pkt) {
794 		struct vmci_transport_recv_pkt_info *recv_pkt_info;
795 
796 		recv_pkt_info = kmalloc_obj(*recv_pkt_info, GFP_ATOMIC);
797 		if (!recv_pkt_info) {
798 			if (vmci_transport_send_reset_bh(&dst, &src, pkt) < 0)
799 				pr_err("unable to send reset\n");
800 
801 			err = VMCI_ERROR_NO_MEM;
802 			goto out;
803 		}
804 
805 		recv_pkt_info->sk = sk;
806 		memcpy(&recv_pkt_info->pkt, pkt, sizeof(recv_pkt_info->pkt));
807 		INIT_WORK(&recv_pkt_info->work, vmci_transport_recv_pkt_work);
808 
809 		schedule_work(&recv_pkt_info->work);
810 		/* Clear sk so that the reference count incremented by one of
811 		 * the Find functions above is not decremented below.  We need
812 		 * that reference count for the packet handler we've scheduled
813 		 * to run.
814 		 */
815 		sk = NULL;
816 	}
817 
818 out:
819 	if (sk)
820 		sock_put(sk);
821 
822 	return err;
823 }
824 
825 static void vmci_transport_handle_detach(struct sock *sk)
826 {
827 	struct vsock_sock *vsk;
828 
829 	vsk = vsock_sk(sk);
830 	if (!vmci_handle_is_invalid(vmci_trans(vsk)->qp_handle)) {
831 		sock_set_flag(sk, SOCK_DONE);
832 
833 		/* On a detach the peer will not be sending or receiving
834 		 * anymore.
835 		 */
836 		WRITE_ONCE(vsk->peer_shutdown, SHUTDOWN_MASK);
837 
838 		/* We should not be sending anymore since the peer won't be
839 		 * there to receive, but we can still receive if there is data
840 		 * left in our consume queue. If the local endpoint is a host,
841 		 * we can't call vsock_stream_has_data, since that may block,
842 		 * but a host endpoint can't read data once the VM has
843 		 * detached, so there is no available data in that case.
844 		 */
845 		if (vsk->local_addr.svm_cid == VMADDR_CID_HOST ||
846 		    vsock_stream_has_data(vsk) <= 0) {
847 			if (sk->sk_state == TCP_SYN_SENT) {
848 				/* The peer may detach from a queue pair while
849 				 * we are still in the connecting state, i.e.,
850 				 * if the peer VM is killed after attaching to
851 				 * a queue pair, but before we complete the
852 				 * handshake. In that case, we treat the detach
853 				 * event like a reset.
854 				 */
855 
856 				sk->sk_state = TCP_CLOSE;
857 				sk->sk_err = ECONNRESET;
858 				sk_error_report(sk);
859 				return;
860 			}
861 			sk->sk_state = TCP_CLOSE;
862 		}
863 		sk->sk_state_change(sk);
864 	}
865 }
866 
867 static void vmci_transport_peer_detach_cb(u32 sub_id,
868 					  const struct vmci_event_data *e_data,
869 					  void *client_data)
870 {
871 	struct vmci_transport *trans = client_data;
872 	const struct vmci_event_payload_qp *e_payload;
873 
874 	e_payload = vmci_event_data_const_payload(e_data);
875 
876 	/* XXX This is lame, we should provide a way to lookup sockets by
877 	 * qp_handle.
878 	 */
879 	if (vmci_handle_is_invalid(e_payload->handle) ||
880 	    !vmci_handle_is_equal(trans->qp_handle, e_payload->handle))
881 		return;
882 
883 	/* We don't ask for delayed CBs when we subscribe to this event (we
884 	 * pass 0 as flags to vmci_event_subscribe()).  VMCI makes no
885 	 * guarantees in that case about what context we might be running in,
886 	 * so it could be BH or process, blockable or non-blockable.  So we
887 	 * need to account for all possible contexts here.
888 	 */
889 	spin_lock_bh(&trans->lock);
890 	if (!trans->sk)
891 		goto out;
892 
893 	/* Apart from here, trans->lock is only grabbed as part of sk destruct,
894 	 * where trans->sk isn't locked.
895 	 */
896 	bh_lock_sock(trans->sk);
897 
898 	vmci_transport_handle_detach(trans->sk);
899 
900 	bh_unlock_sock(trans->sk);
901  out:
902 	spin_unlock_bh(&trans->lock);
903 }
904 
905 static void vmci_transport_qp_resumed_cb(u32 sub_id,
906 					 const struct vmci_event_data *e_data,
907 					 void *client_data)
908 {
909 	vsock_for_each_connected_socket(&vmci_transport,
910 					vmci_transport_handle_detach);
911 }
912 
913 static void vmci_transport_recv_pkt_work(struct work_struct *work)
914 {
915 	struct vmci_transport_recv_pkt_info *recv_pkt_info;
916 	struct vmci_transport_packet *pkt;
917 	struct sockaddr_vm src;
918 	struct sock *sk;
919 
920 	recv_pkt_info =
921 		container_of(work, struct vmci_transport_recv_pkt_info, work);
922 	sk = recv_pkt_info->sk;
923 	pkt = &recv_pkt_info->pkt;
924 
925 	lock_sock(sk);
926 	vsock_addr_init(&src, pkt->dg.src.context, pkt->src_port);
927 	if (sk->sk_state != TCP_LISTEN &&
928 	    !vsock_check_source(vsock_sk(sk), &vmci_transport, &src)) {
929 		vmci_transport_reply_reset(pkt);
930 		goto out;
931 	}
932 
933 	/* The local context ID may be out of date. */
934 	vsock_sk(sk)->local_addr.svm_cid = pkt->dg.dst.context;
935 
936 	switch (sk->sk_state) {
937 	case TCP_LISTEN:
938 		vmci_transport_recv_listen(sk, pkt);
939 		break;
940 	case TCP_SYN_SENT:
941 		/* Processing of pending connections for servers goes through
942 		 * the listening socket, so see vmci_transport_recv_listen()
943 		 * for that path.
944 		 */
945 		vmci_transport_recv_connecting_client(sk, pkt);
946 		break;
947 	case TCP_ESTABLISHED:
948 		vmci_transport_recv_connected(sk, pkt);
949 		break;
950 	default:
951 		/* Because this function does not run in the same context as
952 		 * vmci_transport_recv_stream_cb it is possible that the
953 		 * socket has closed. We need to let the other side know or it
954 		 * could be sitting in a connect and hang forever. Send a
955 		 * reset to prevent that.
956 		 */
957 		vmci_transport_send_reset(sk, pkt);
958 		break;
959 	}
960 
961 out:
962 	release_sock(sk);
963 	kfree(recv_pkt_info);
964 	/* Release reference obtained in the stream callback when we fetched
965 	 * this socket out of the bound or connected list.
966 	 */
967 	sock_put(sk);
968 }
969 
970 static int vmci_transport_recv_listen(struct sock *sk,
971 				      struct vmci_transport_packet *pkt)
972 {
973 	struct sock *pending;
974 	struct vsock_sock *vpending;
975 	int err;
976 	u64 qp_size;
977 	bool old_request = false;
978 	bool old_pkt_proto = false;
979 
980 	/* Because we are in the listen state, we could be receiving a packet
981 	 * for ourself or any previous connection requests that we received.
982 	 * If it's the latter, we try to find a socket in our list of pending
983 	 * connections and, if we do, call the appropriate handler for the
984 	 * state that socket is in.  Otherwise we try to service the
985 	 * connection request.
986 	 */
987 	pending = vmci_transport_get_pending(sk, pkt);
988 	if (pending) {
989 		lock_sock(pending);
990 
991 		/* The local context ID may be out of date. */
992 		vsock_sk(pending)->local_addr.svm_cid = pkt->dg.dst.context;
993 
994 		switch (pending->sk_state) {
995 		case TCP_SYN_SENT:
996 			err = vmci_transport_recv_connecting_server(sk,
997 								    pending,
998 								    pkt);
999 			break;
1000 		default:
1001 			vmci_transport_send_reset(pending, pkt);
1002 			err = -EINVAL;
1003 		}
1004 
1005 		if (err < 0)
1006 			vsock_remove_pending(sk, pending);
1007 
1008 		release_sock(pending);
1009 		vmci_transport_release_pending(pending);
1010 
1011 		return err;
1012 	}
1013 
1014 	/* The listen state only accepts connection requests.  Reply with a
1015 	 * reset unless we received a reset.
1016 	 */
1017 
1018 	if (!(pkt->type == VMCI_TRANSPORT_PACKET_TYPE_REQUEST ||
1019 	      pkt->type == VMCI_TRANSPORT_PACKET_TYPE_REQUEST2)) {
1020 		vmci_transport_reply_reset(pkt);
1021 		return -EINVAL;
1022 	}
1023 
1024 	if (pkt->u.size == 0) {
1025 		vmci_transport_reply_reset(pkt);
1026 		return -EINVAL;
1027 	}
1028 
1029 	/* If this socket can't accommodate this connection request, we send a
1030 	 * reset.  Otherwise we create and initialize a child socket and reply
1031 	 * with a connection negotiation.
1032 	 */
1033 	if (sk_acceptq_is_full(sk)) {
1034 		vmci_transport_reply_reset(pkt);
1035 		return -ECONNREFUSED;
1036 	}
1037 
1038 	pending = vsock_create_connected(sk);
1039 	if (!pending) {
1040 		vmci_transport_send_reset(sk, pkt);
1041 		return -ENOMEM;
1042 	}
1043 
1044 	vpending = vsock_sk(pending);
1045 
1046 	vsock_addr_init(&vpending->local_addr, pkt->dg.dst.context,
1047 			pkt->dst_port);
1048 	vsock_addr_init(&vpending->remote_addr, pkt->dg.src.context,
1049 			pkt->src_port);
1050 
1051 	err = vsock_assign_transport(vpending, vsock_sk(sk));
1052 	/* Transport assigned (looking at remote_addr) must be the same
1053 	 * where we received the request.
1054 	 */
1055 	if (err || !vmci_check_transport(vpending)) {
1056 		vmci_transport_send_reset(sk, pkt);
1057 		sock_put(pending);
1058 		return err;
1059 	}
1060 
1061 	/* If the proposed size fits within our min/max, accept it. Otherwise
1062 	 * propose our own size.
1063 	 */
1064 	if (pkt->u.size >= vpending->buffer_min_size &&
1065 	    pkt->u.size <= vpending->buffer_max_size) {
1066 		qp_size = pkt->u.size;
1067 	} else {
1068 		qp_size = vpending->buffer_size;
1069 	}
1070 
1071 	/* Figure out if we are using old or new requests based on the
1072 	 * overrides pkt types sent by our peer.
1073 	 */
1074 	if (vmci_transport_old_proto_override(&old_pkt_proto)) {
1075 		old_request = old_pkt_proto;
1076 	} else {
1077 		if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_REQUEST)
1078 			old_request = true;
1079 		else if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_REQUEST2)
1080 			old_request = false;
1081 
1082 	}
1083 
1084 	if (old_request) {
1085 		/* Handle a REQUEST (or override) */
1086 		u16 version = VSOCK_PROTO_INVALID;
1087 		if (vmci_transport_proto_to_notify_struct(
1088 			pending, &version, true))
1089 			err = vmci_transport_send_negotiate(pending, qp_size);
1090 		else
1091 			err = -EINVAL;
1092 
1093 	} else {
1094 		/* Handle a REQUEST2 (or override) */
1095 		int proto_int = pkt->proto;
1096 		int pos;
1097 		u16 active_proto_version = 0;
1098 
1099 		/* The list of possible protocols is the intersection of all
1100 		 * protocols the client supports ... plus all the protocols we
1101 		 * support.
1102 		 */
1103 		proto_int &= vmci_transport_new_proto_supported_versions();
1104 
1105 		/* We choose the highest possible protocol version and use that
1106 		 * one.
1107 		 */
1108 		pos = fls(proto_int);
1109 		if (pos) {
1110 			active_proto_version = (1 << (pos - 1));
1111 			if (vmci_transport_proto_to_notify_struct(
1112 				pending, &active_proto_version, false))
1113 				err = vmci_transport_send_negotiate2(pending,
1114 							qp_size,
1115 							active_proto_version);
1116 			else
1117 				err = -EINVAL;
1118 
1119 		} else {
1120 			err = -EINVAL;
1121 		}
1122 	}
1123 
1124 	if (err < 0) {
1125 		vmci_transport_send_reset(sk, pkt);
1126 		sock_put(pending);
1127 		err = vmci_transport_error_to_vsock_error(err);
1128 		goto out;
1129 	}
1130 
1131 	vsock_add_pending(sk, pending);
1132 
1133 	pending->sk_state = TCP_SYN_SENT;
1134 	vmci_trans(vpending)->produce_size =
1135 		vmci_trans(vpending)->consume_size = qp_size;
1136 	vpending->buffer_size = qp_size;
1137 
1138 	vmci_trans(vpending)->notify_ops->process_request(pending);
1139 
1140 	/* We might never receive another message for this socket and it's not
1141 	 * connected to any process, so we have to ensure it gets cleaned up
1142 	 * ourself.  Our delayed work function will take care of that.  Note
1143 	 * that we do not ever cancel this function since we have few
1144 	 * guarantees about its state when calling cancel_delayed_work().
1145 	 * Instead we hold a reference on the socket for that function and make
1146 	 * it capable of handling cases where it needs to do nothing but
1147 	 * release that reference.
1148 	 */
1149 	vpending->listener = sk;
1150 	sock_hold(sk);
1151 	sock_hold(pending);
1152 	schedule_delayed_work(&vpending->pending_work, HZ);
1153 
1154 out:
1155 	return err;
1156 }
1157 
1158 static int
1159 vmci_transport_recv_connecting_server(struct sock *listener,
1160 				      struct sock *pending,
1161 				      struct vmci_transport_packet *pkt)
1162 {
1163 	struct vsock_sock *vpending;
1164 	struct vmci_handle handle;
1165 	struct vmci_qp *qpair;
1166 	bool is_local;
1167 	u32 flags;
1168 	u32 detach_sub_id;
1169 	int err;
1170 	int skerr;
1171 
1172 	vpending = vsock_sk(pending);
1173 	detach_sub_id = VMCI_INVALID_ID;
1174 
1175 	switch (pkt->type) {
1176 	case VMCI_TRANSPORT_PACKET_TYPE_OFFER:
1177 		if (vmci_handle_is_invalid(pkt->u.handle)) {
1178 			vmci_transport_send_reset(pending, pkt);
1179 			skerr = EPROTO;
1180 			err = -EINVAL;
1181 			goto destroy;
1182 		}
1183 		break;
1184 	default:
1185 		/* Close and cleanup the connection. */
1186 		vmci_transport_send_reset(pending, pkt);
1187 		skerr = EPROTO;
1188 		err = -EINVAL;
1189 		goto destroy;
1190 	}
1191 
1192 	/* In order to complete the connection we need to attach to the offered
1193 	 * queue pair and send an attach notification.  We also subscribe to the
1194 	 * detach event so we know when our peer goes away, and we do that
1195 	 * before attaching so we don't miss an event.  If all this succeeds,
1196 	 * we update our state and wakeup anything waiting in accept() for a
1197 	 * connection.
1198 	 */
1199 
1200 	/* We don't care about attach since we ensure the other side has
1201 	 * attached by specifying the ATTACH_ONLY flag below.
1202 	 */
1203 	err = vmci_event_subscribe(VMCI_EVENT_QP_PEER_DETACH,
1204 				   vmci_transport_peer_detach_cb,
1205 				   vmci_trans(vpending), &detach_sub_id);
1206 	if (err < VMCI_SUCCESS) {
1207 		vmci_transport_send_reset(pending, pkt);
1208 		err = vmci_transport_error_to_vsock_error(err);
1209 		skerr = -err;
1210 		goto destroy;
1211 	}
1212 
1213 	vmci_trans(vpending)->detach_sub_id = detach_sub_id;
1214 
1215 	/* Now attach to the queue pair the client created. */
1216 	handle = pkt->u.handle;
1217 
1218 	/* vpending->local_addr always has a context id so we do not need to
1219 	 * worry about VMADDR_CID_ANY in this case.
1220 	 */
1221 	is_local =
1222 	    vpending->remote_addr.svm_cid == vpending->local_addr.svm_cid;
1223 	flags = VMCI_QPFLAG_ATTACH_ONLY;
1224 	flags |= is_local ? VMCI_QPFLAG_LOCAL : 0;
1225 
1226 	err = vmci_transport_queue_pair_alloc(
1227 					&qpair,
1228 					&handle,
1229 					vmci_trans(vpending)->produce_size,
1230 					vmci_trans(vpending)->consume_size,
1231 					pkt->dg.src.context,
1232 					flags,
1233 					vmci_transport_is_trusted(
1234 						vpending,
1235 						vpending->remote_addr.svm_cid));
1236 	if (err < 0) {
1237 		vmci_transport_send_reset(pending, pkt);
1238 		skerr = -err;
1239 		goto destroy;
1240 	}
1241 
1242 	vmci_trans(vpending)->qp_handle = handle;
1243 	vmci_trans(vpending)->qpair = qpair;
1244 
1245 	/* When we send the attach message, we must be ready to handle incoming
1246 	 * control messages on the newly connected socket. So we move the
1247 	 * pending socket to the connected state before sending the attach
1248 	 * message. Otherwise, an incoming packet triggered by the attach being
1249 	 * received by the peer may be processed concurrently with what happens
1250 	 * below after sending the attach message, and that incoming packet
1251 	 * will find the listening socket instead of the (currently) pending
1252 	 * socket. Note that enqueueing the socket increments the reference
1253 	 * count, so even if a reset comes before the connection is accepted,
1254 	 * the socket will be valid until it is removed from the queue.
1255 	 *
1256 	 * If we fail sending the attach below, we remove the socket from the
1257 	 * connected list and move the socket to TCP_CLOSE before
1258 	 * releasing the lock, so a pending slow path processing of an incoming
1259 	 * packet will not see the socket in the connected state in that case.
1260 	 */
1261 	pending->sk_state = TCP_ESTABLISHED;
1262 
1263 	vsock_insert_connected(vpending);
1264 
1265 	/* Notify our peer of our attach. */
1266 	err = vmci_transport_send_attach(pending, handle);
1267 	if (err < 0) {
1268 		vsock_remove_connected(vpending);
1269 		pr_err("Could not send attach\n");
1270 		vmci_transport_send_reset(pending, pkt);
1271 		err = vmci_transport_error_to_vsock_error(err);
1272 		skerr = -err;
1273 		goto destroy;
1274 	}
1275 
1276 	/* We have a connection. Move the now connected socket from the
1277 	 * listener's pending list to the accept queue so callers of accept()
1278 	 * can find it.
1279 	 */
1280 	vsock_pending_to_accept(listener, pending);
1281 
1282 	/* Callers of accept() will be waiting on the listening socket, not
1283 	 * the pending socket.
1284 	 */
1285 	listener->sk_data_ready(listener);
1286 
1287 	return 0;
1288 
1289 destroy:
1290 	pending->sk_err = skerr;
1291 	pending->sk_state = TCP_CLOSE;
1292 	/* As long as we drop our reference, all necessary cleanup will handle
1293 	 * when the cleanup function drops its reference and our destruct
1294 	 * implementation is called.  Note that since the listen handler will
1295 	 * remove pending from the pending list upon our failure, the cleanup
1296 	 * function won't drop the additional reference, which is why we do it
1297 	 * here.
1298 	 */
1299 	sock_put(pending);
1300 
1301 	return err;
1302 }
1303 
1304 static int
1305 vmci_transport_recv_connecting_client(struct sock *sk,
1306 				      struct vmci_transport_packet *pkt)
1307 {
1308 	struct vsock_sock *vsk;
1309 	int err;
1310 	int skerr;
1311 
1312 	vsk = vsock_sk(sk);
1313 
1314 	switch (pkt->type) {
1315 	case VMCI_TRANSPORT_PACKET_TYPE_ATTACH:
1316 		if (vmci_handle_is_invalid(pkt->u.handle) ||
1317 		    !vmci_handle_is_equal(pkt->u.handle,
1318 					  vmci_trans(vsk)->qp_handle)) {
1319 			skerr = EPROTO;
1320 			err = -EINVAL;
1321 			goto destroy;
1322 		}
1323 
1324 		/* Signify the socket is connected and wakeup the waiter in
1325 		 * connect(). Also place the socket in the connected table for
1326 		 * accounting (it can already be found since it's in the bound
1327 		 * table).
1328 		 */
1329 		sk->sk_state = TCP_ESTABLISHED;
1330 		sk->sk_socket->state = SS_CONNECTED;
1331 		vsock_insert_connected(vsk);
1332 		sk->sk_state_change(sk);
1333 
1334 		break;
1335 	case VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE:
1336 	case VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE2:
1337 		if (pkt->u.size == 0
1338 		    || pkt->dg.src.context != vsk->remote_addr.svm_cid
1339 		    || pkt->src_port != vsk->remote_addr.svm_port
1340 		    || !vmci_handle_is_invalid(vmci_trans(vsk)->qp_handle)
1341 		    || vmci_trans(vsk)->qpair
1342 		    || vmci_trans(vsk)->produce_size != 0
1343 		    || vmci_trans(vsk)->consume_size != 0
1344 		    || vmci_trans(vsk)->detach_sub_id != VMCI_INVALID_ID) {
1345 			skerr = EPROTO;
1346 			err = -EINVAL;
1347 
1348 			goto destroy;
1349 		}
1350 
1351 		err = vmci_transport_recv_connecting_client_negotiate(sk, pkt);
1352 		if (err) {
1353 			skerr = -err;
1354 			goto destroy;
1355 		}
1356 
1357 		break;
1358 	case VMCI_TRANSPORT_PACKET_TYPE_INVALID:
1359 		err = vmci_transport_recv_connecting_client_invalid(sk, pkt);
1360 		if (err) {
1361 			skerr = -err;
1362 			goto destroy;
1363 		}
1364 
1365 		break;
1366 	case VMCI_TRANSPORT_PACKET_TYPE_RST:
1367 		/* Older versions of the linux code (WS 6.5 / ESX 4.0) used to
1368 		 * continue processing here after they sent an INVALID packet.
1369 		 * This meant that we got a RST after the INVALID. We ignore a
1370 		 * RST after an INVALID. The common code doesn't send the RST
1371 		 * ... so we can hang if an old version of the common code
1372 		 * fails between getting a REQUEST and sending an OFFER back.
1373 		 * Not much we can do about it... except hope that it doesn't
1374 		 * happen.
1375 		 */
1376 		if (vsk->ignore_connecting_rst) {
1377 			vsk->ignore_connecting_rst = false;
1378 		} else {
1379 			skerr = ECONNRESET;
1380 			err = 0;
1381 			goto destroy;
1382 		}
1383 
1384 		break;
1385 	default:
1386 		/* Close and cleanup the connection. */
1387 		skerr = EPROTO;
1388 		err = -EINVAL;
1389 		goto destroy;
1390 	}
1391 
1392 	return 0;
1393 
1394 destroy:
1395 	vmci_transport_send_reset(sk, pkt);
1396 
1397 	sk->sk_state = TCP_CLOSE;
1398 	sk->sk_err = skerr;
1399 	sk_error_report(sk);
1400 	return err;
1401 }
1402 
1403 static int vmci_transport_recv_connecting_client_negotiate(
1404 					struct sock *sk,
1405 					struct vmci_transport_packet *pkt)
1406 {
1407 	int err;
1408 	struct vsock_sock *vsk;
1409 	struct vmci_handle handle;
1410 	struct vmci_qp *qpair;
1411 	u32 detach_sub_id;
1412 	bool is_local;
1413 	u32 flags;
1414 	bool old_proto = true;
1415 	bool old_pkt_proto;
1416 	u16 version;
1417 
1418 	vsk = vsock_sk(sk);
1419 	handle = VMCI_INVALID_HANDLE;
1420 	detach_sub_id = VMCI_INVALID_ID;
1421 
1422 	/* If we have gotten here then we should be past the point where old
1423 	 * linux vsock could have sent the bogus rst.
1424 	 */
1425 	vsk->sent_request = false;
1426 	vsk->ignore_connecting_rst = false;
1427 
1428 	/* Verify that we're OK with the proposed queue pair size */
1429 	if (pkt->u.size < vsk->buffer_min_size ||
1430 	    pkt->u.size > vsk->buffer_max_size) {
1431 		err = -EINVAL;
1432 		goto destroy;
1433 	}
1434 
1435 	/* At this point we know the CID the peer is using to talk to us. */
1436 
1437 	if (vsk->local_addr.svm_cid == VMADDR_CID_ANY)
1438 		vsk->local_addr.svm_cid = pkt->dg.dst.context;
1439 
1440 	/* Setup the notify ops to be the highest supported version that both
1441 	 * the server and the client support.
1442 	 */
1443 
1444 	if (vmci_transport_old_proto_override(&old_pkt_proto)) {
1445 		old_proto = old_pkt_proto;
1446 	} else {
1447 		if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE)
1448 			old_proto = true;
1449 		else if (pkt->type == VMCI_TRANSPORT_PACKET_TYPE_NEGOTIATE2)
1450 			old_proto = false;
1451 
1452 	}
1453 
1454 	if (old_proto)
1455 		version = VSOCK_PROTO_INVALID;
1456 	else
1457 		version = pkt->proto;
1458 
1459 	if (!vmci_transport_proto_to_notify_struct(sk, &version, old_proto)) {
1460 		err = -EINVAL;
1461 		goto destroy;
1462 	}
1463 
1464 	/* Subscribe to detach events first.
1465 	 *
1466 	 * XXX We attach once for each queue pair created for now so it is easy
1467 	 * to find the socket (it's provided), but later we should only
1468 	 * subscribe once and add a way to lookup sockets by queue pair handle.
1469 	 */
1470 	err = vmci_event_subscribe(VMCI_EVENT_QP_PEER_DETACH,
1471 				   vmci_transport_peer_detach_cb,
1472 				   vmci_trans(vsk), &detach_sub_id);
1473 	if (err < VMCI_SUCCESS) {
1474 		err = vmci_transport_error_to_vsock_error(err);
1475 		goto destroy;
1476 	}
1477 
1478 	/* Make VMCI select the handle for us. */
1479 	handle = VMCI_INVALID_HANDLE;
1480 	is_local = vsk->remote_addr.svm_cid == vsk->local_addr.svm_cid;
1481 	flags = is_local ? VMCI_QPFLAG_LOCAL : 0;
1482 
1483 	err = vmci_transport_queue_pair_alloc(&qpair,
1484 					      &handle,
1485 					      pkt->u.size,
1486 					      pkt->u.size,
1487 					      vsk->remote_addr.svm_cid,
1488 					      flags,
1489 					      vmci_transport_is_trusted(
1490 						  vsk,
1491 						  vsk->
1492 						  remote_addr.svm_cid));
1493 	if (err < 0)
1494 		goto destroy;
1495 
1496 	err = vmci_transport_send_qp_offer(sk, handle);
1497 	if (err < 0) {
1498 		err = vmci_transport_error_to_vsock_error(err);
1499 		goto destroy;
1500 	}
1501 
1502 	vmci_trans(vsk)->qp_handle = handle;
1503 	vmci_trans(vsk)->qpair = qpair;
1504 
1505 	vmci_trans(vsk)->produce_size = vmci_trans(vsk)->consume_size =
1506 		pkt->u.size;
1507 
1508 	vmci_trans(vsk)->detach_sub_id = detach_sub_id;
1509 
1510 	vmci_trans(vsk)->notify_ops->process_negotiate(sk);
1511 
1512 	return 0;
1513 
1514 destroy:
1515 	if (detach_sub_id != VMCI_INVALID_ID)
1516 		vmci_event_unsubscribe(detach_sub_id);
1517 
1518 	if (!vmci_handle_is_invalid(handle))
1519 		vmci_qpair_detach(&qpair);
1520 
1521 	return err;
1522 }
1523 
1524 static int
1525 vmci_transport_recv_connecting_client_invalid(struct sock *sk,
1526 					      struct vmci_transport_packet *pkt)
1527 {
1528 	int err = 0;
1529 	struct vsock_sock *vsk = vsock_sk(sk);
1530 
1531 	if (vsk->sent_request) {
1532 		vsk->sent_request = false;
1533 		vsk->ignore_connecting_rst = true;
1534 
1535 		err = vmci_transport_send_conn_request(sk, vsk->buffer_size);
1536 		if (err < 0)
1537 			err = vmci_transport_error_to_vsock_error(err);
1538 		else
1539 			err = 0;
1540 
1541 	}
1542 
1543 	return err;
1544 }
1545 
1546 static int vmci_transport_recv_connected(struct sock *sk,
1547 					 struct vmci_transport_packet *pkt)
1548 {
1549 	struct vsock_sock *vsk;
1550 	bool pkt_processed = false;
1551 
1552 	/* In cases where we are closing the connection, it's sufficient to
1553 	 * mark the state change (and maybe error) and wake up any waiting
1554 	 * threads. Since this is a connected socket, it's owned by a user
1555 	 * process and will be cleaned up when the failure is passed back on
1556 	 * the current or next system call.  Our system call implementations
1557 	 * must therefore check for error and state changes on entry and when
1558 	 * being awoken.
1559 	 */
1560 	switch (pkt->type) {
1561 	case VMCI_TRANSPORT_PACKET_TYPE_SHUTDOWN:
1562 		if (pkt->u.mode) {
1563 			vsk = vsock_sk(sk);
1564 
1565 			WRITE_ONCE(vsk->peer_shutdown,
1566 				   READ_ONCE(vsk->peer_shutdown) |
1567 				   pkt->u.mode);
1568 			sk->sk_state_change(sk);
1569 		}
1570 		break;
1571 
1572 	case VMCI_TRANSPORT_PACKET_TYPE_RST:
1573 		vsk = vsock_sk(sk);
1574 		/* It is possible that we sent our peer a message (e.g a
1575 		 * WAITING_READ) right before we got notified that the peer had
1576 		 * detached. If that happens then we can get a RST pkt back
1577 		 * from our peer even though there is data available for us to
1578 		 * read. In that case, don't shutdown the socket completely but
1579 		 * instead allow the local client to finish reading data off
1580 		 * the queuepair. Always treat a RST pkt in connected mode like
1581 		 * a clean shutdown.
1582 		 */
1583 		sock_set_flag(sk, SOCK_DONE);
1584 		WRITE_ONCE(vsk->peer_shutdown, SHUTDOWN_MASK);
1585 		if (vsock_stream_has_data(vsk) <= 0)
1586 			sk->sk_state = TCP_CLOSING;
1587 
1588 		sk->sk_state_change(sk);
1589 		break;
1590 
1591 	default:
1592 		vsk = vsock_sk(sk);
1593 		vmci_trans(vsk)->notify_ops->handle_notify_pkt(
1594 				sk, pkt, false, NULL, NULL,
1595 				&pkt_processed);
1596 		if (!pkt_processed)
1597 			return -EINVAL;
1598 
1599 		break;
1600 	}
1601 
1602 	return 0;
1603 }
1604 
1605 static int vmci_transport_socket_init(struct vsock_sock *vsk,
1606 				      struct vsock_sock *psk)
1607 {
1608 	vsk->trans = kmalloc_obj(struct vmci_transport);
1609 	if (!vsk->trans)
1610 		return -ENOMEM;
1611 
1612 	vmci_trans(vsk)->dg_handle = VMCI_INVALID_HANDLE;
1613 	vmci_trans(vsk)->qp_handle = VMCI_INVALID_HANDLE;
1614 	vmci_trans(vsk)->qpair = NULL;
1615 	vmci_trans(vsk)->produce_size = vmci_trans(vsk)->consume_size = 0;
1616 	vmci_trans(vsk)->detach_sub_id = VMCI_INVALID_ID;
1617 	vmci_trans(vsk)->notify_ops = NULL;
1618 	INIT_LIST_HEAD(&vmci_trans(vsk)->elem);
1619 	vmci_trans(vsk)->sk = &vsk->sk;
1620 	spin_lock_init(&vmci_trans(vsk)->lock);
1621 
1622 	return 0;
1623 }
1624 
1625 static void vmci_transport_free_resources(struct list_head *transport_list)
1626 {
1627 	while (!list_empty(transport_list)) {
1628 		struct vmci_transport *transport =
1629 		    list_first_entry(transport_list, struct vmci_transport,
1630 				     elem);
1631 		list_del(&transport->elem);
1632 
1633 		if (transport->detach_sub_id != VMCI_INVALID_ID) {
1634 			vmci_event_unsubscribe(transport->detach_sub_id);
1635 			transport->detach_sub_id = VMCI_INVALID_ID;
1636 		}
1637 
1638 		if (!vmci_handle_is_invalid(transport->qp_handle)) {
1639 			vmci_qpair_detach(&transport->qpair);
1640 			transport->qp_handle = VMCI_INVALID_HANDLE;
1641 			transport->produce_size = 0;
1642 			transport->consume_size = 0;
1643 		}
1644 
1645 		kfree(transport);
1646 	}
1647 }
1648 
1649 static void vmci_transport_cleanup(struct work_struct *work)
1650 {
1651 	LIST_HEAD(pending);
1652 
1653 	spin_lock_bh(&vmci_transport_cleanup_lock);
1654 	list_replace_init(&vmci_transport_cleanup_list, &pending);
1655 	spin_unlock_bh(&vmci_transport_cleanup_lock);
1656 	vmci_transport_free_resources(&pending);
1657 }
1658 
1659 static void vmci_transport_destruct(struct vsock_sock *vsk)
1660 {
1661 	/* transport can be NULL if we hit a failure at init() time */
1662 	if (!vmci_trans(vsk))
1663 		return;
1664 
1665 	/* Ensure that the detach callback doesn't use the sk/vsk
1666 	 * we are about to destruct.
1667 	 */
1668 	spin_lock_bh(&vmci_trans(vsk)->lock);
1669 	vmci_trans(vsk)->sk = NULL;
1670 	spin_unlock_bh(&vmci_trans(vsk)->lock);
1671 
1672 	if (vmci_trans(vsk)->notify_ops)
1673 		vmci_trans(vsk)->notify_ops->socket_destruct(vsk);
1674 
1675 	spin_lock_bh(&vmci_transport_cleanup_lock);
1676 	list_add(&vmci_trans(vsk)->elem, &vmci_transport_cleanup_list);
1677 	spin_unlock_bh(&vmci_transport_cleanup_lock);
1678 	schedule_work(&vmci_transport_cleanup_work);
1679 
1680 	vsk->trans = NULL;
1681 }
1682 
1683 static void vmci_transport_release(struct vsock_sock *vsk)
1684 {
1685 	vsock_remove_sock(vsk);
1686 
1687 	if (!vmci_handle_is_invalid(vmci_trans(vsk)->dg_handle)) {
1688 		vmci_datagram_destroy_handle(vmci_trans(vsk)->dg_handle);
1689 		vmci_trans(vsk)->dg_handle = VMCI_INVALID_HANDLE;
1690 	}
1691 }
1692 
1693 static int vmci_transport_dgram_bind(struct vsock_sock *vsk,
1694 				     struct sockaddr_vm *addr)
1695 {
1696 	u32 port;
1697 	u32 flags;
1698 	int err;
1699 
1700 	/* VMCI will select a resource ID for us if we provide
1701 	 * VMCI_INVALID_ID.
1702 	 */
1703 	port = addr->svm_port == VMADDR_PORT_ANY ?
1704 			VMCI_INVALID_ID : addr->svm_port;
1705 
1706 	if (port <= LAST_RESERVED_PORT && !capable(CAP_NET_BIND_SERVICE))
1707 		return -EACCES;
1708 
1709 	flags = addr->svm_cid == VMADDR_CID_ANY ?
1710 				VMCI_FLAG_ANYCID_DG_HND : 0;
1711 
1712 	err = vmci_transport_datagram_create_hnd(port, flags,
1713 						 vmci_transport_recv_dgram_cb,
1714 						 &vsk->sk,
1715 						 &vmci_trans(vsk)->dg_handle);
1716 	if (err < VMCI_SUCCESS)
1717 		return vmci_transport_error_to_vsock_error(err);
1718 	vsock_addr_init(&vsk->local_addr, addr->svm_cid,
1719 			vmci_trans(vsk)->dg_handle.resource);
1720 
1721 	return 0;
1722 }
1723 
1724 static int vmci_transport_dgram_enqueue(
1725 	struct vsock_sock *vsk,
1726 	struct sockaddr_vm *remote_addr,
1727 	struct msghdr *msg,
1728 	size_t len)
1729 {
1730 	int err;
1731 	struct vmci_datagram *dg;
1732 
1733 	if (len > VMCI_MAX_DG_PAYLOAD_SIZE)
1734 		return -EMSGSIZE;
1735 
1736 	if (!vmci_transport_allow_dgram(vsk, remote_addr->svm_cid))
1737 		return -EPERM;
1738 
1739 	/* Allocate a buffer for the user's message and our packet header. */
1740 	dg = kmalloc(len + sizeof(*dg), GFP_KERNEL);
1741 	if (!dg)
1742 		return -ENOMEM;
1743 
1744 	err = memcpy_from_msg(VMCI_DG_PAYLOAD(dg), msg, len);
1745 	if (err) {
1746 		kfree(dg);
1747 		return err;
1748 	}
1749 
1750 	dg->dst = vmci_make_handle(remote_addr->svm_cid,
1751 				   remote_addr->svm_port);
1752 	dg->src = vmci_make_handle(vsk->local_addr.svm_cid,
1753 				   vsk->local_addr.svm_port);
1754 	dg->payload_size = len;
1755 
1756 	err = vmci_datagram_send(dg);
1757 	kfree(dg);
1758 	if (err < 0)
1759 		return vmci_transport_error_to_vsock_error(err);
1760 
1761 	return err - sizeof(*dg);
1762 }
1763 
1764 static int vmci_transport_dgram_dequeue(struct vsock_sock *vsk,
1765 					struct msghdr *msg, size_t len,
1766 					int flags)
1767 {
1768 	int err;
1769 	struct vmci_datagram *dg;
1770 	size_t payload_len;
1771 	struct sk_buff *skb;
1772 
1773 	if (flags & MSG_OOB || flags & MSG_ERRQUEUE)
1774 		return -EOPNOTSUPP;
1775 
1776 	/* Retrieve the head sk_buff from the socket's receive queue. */
1777 	err = 0;
1778 	skb = skb_recv_datagram(&vsk->sk, flags, &err);
1779 	if (!skb)
1780 		return err;
1781 
1782 	dg = (struct vmci_datagram *)skb->data;
1783 	if (!dg)
1784 		/* err is 0, meaning we read zero bytes. */
1785 		goto out;
1786 
1787 	payload_len = dg->payload_size;
1788 	/* Ensure the sk_buff matches the payload size claimed in the packet. */
1789 	if (payload_len != skb->len - sizeof(*dg)) {
1790 		err = -EINVAL;
1791 		goto out;
1792 	}
1793 
1794 	if (payload_len > len) {
1795 		payload_len = len;
1796 		msg->msg_flags |= MSG_TRUNC;
1797 	}
1798 
1799 	/* Place the datagram payload in the user's iovec. */
1800 	err = skb_copy_datagram_msg(skb, sizeof(*dg), msg, payload_len);
1801 	if (err)
1802 		goto out;
1803 
1804 	if (msg->msg_name) {
1805 		/* Provide the address of the sender. */
1806 		DECLARE_SOCKADDR(struct sockaddr_vm *, vm_addr, msg->msg_name);
1807 		vsock_addr_init(vm_addr, dg->src.context, dg->src.resource);
1808 		msg->msg_namelen = sizeof(*vm_addr);
1809 	}
1810 	err = payload_len;
1811 
1812 out:
1813 	skb_free_datagram(&vsk->sk, skb);
1814 	return err;
1815 }
1816 
1817 static bool vmci_transport_dgram_allow(struct vsock_sock *vsk, u32 cid,
1818 				       u32 port)
1819 {
1820 	if (!vsock_net_mode_global(vsk))
1821 		return false;
1822 
1823 	if (cid == VMADDR_CID_HYPERVISOR) {
1824 		/* Registrations of PBRPC Servers do not modify VMX/Hypervisor
1825 		 * state and are allowed.
1826 		 */
1827 		return port == VMCI_UNITY_PBRPC_REGISTER;
1828 	}
1829 
1830 	return true;
1831 }
1832 
1833 static int vmci_transport_connect(struct vsock_sock *vsk)
1834 {
1835 	int err;
1836 	bool old_pkt_proto = false;
1837 	struct sock *sk = &vsk->sk;
1838 
1839 	if (vmci_transport_old_proto_override(&old_pkt_proto) &&
1840 		old_pkt_proto) {
1841 		err = vmci_transport_send_conn_request(sk, vsk->buffer_size);
1842 		if (err < 0) {
1843 			sk->sk_state = TCP_CLOSE;
1844 			return err;
1845 		}
1846 	} else {
1847 		int supported_proto_versions =
1848 			vmci_transport_new_proto_supported_versions();
1849 		err = vmci_transport_send_conn_request2(sk, vsk->buffer_size,
1850 				supported_proto_versions);
1851 		if (err < 0) {
1852 			sk->sk_state = TCP_CLOSE;
1853 			return err;
1854 		}
1855 
1856 		vsk->sent_request = true;
1857 	}
1858 
1859 	return err;
1860 }
1861 
1862 static ssize_t vmci_transport_stream_dequeue(
1863 	struct vsock_sock *vsk,
1864 	struct msghdr *msg,
1865 	size_t len,
1866 	int flags)
1867 {
1868 	ssize_t err;
1869 
1870 	if (flags & MSG_PEEK)
1871 		err = vmci_qpair_peekv(vmci_trans(vsk)->qpair, msg, len, 0);
1872 	else
1873 		err = vmci_qpair_dequev(vmci_trans(vsk)->qpair, msg, len, 0);
1874 
1875 	if (err < 0)
1876 		err = -ENOMEM;
1877 
1878 	return err;
1879 }
1880 
1881 static ssize_t vmci_transport_stream_enqueue(
1882 	struct vsock_sock *vsk,
1883 	struct msghdr *msg,
1884 	size_t len)
1885 {
1886 	ssize_t err;
1887 
1888 	err = vmci_qpair_enquev(vmci_trans(vsk)->qpair, msg, len, 0);
1889 	if (err < 0)
1890 		err = -ENOMEM;
1891 
1892 	return err;
1893 }
1894 
1895 static s64 vmci_transport_stream_has_data(struct vsock_sock *vsk)
1896 {
1897 	return vmci_qpair_consume_buf_ready(vmci_trans(vsk)->qpair);
1898 }
1899 
1900 static s64 vmci_transport_stream_has_space(struct vsock_sock *vsk)
1901 {
1902 	return vmci_qpair_produce_free_space(vmci_trans(vsk)->qpair);
1903 }
1904 
1905 static u64 vmci_transport_stream_rcvhiwat(struct vsock_sock *vsk)
1906 {
1907 	return vmci_trans(vsk)->consume_size;
1908 }
1909 
1910 static bool vmci_transport_stream_is_active(struct vsock_sock *vsk)
1911 {
1912 	return !vmci_handle_is_invalid(vmci_trans(vsk)->qp_handle);
1913 }
1914 
1915 static int vmci_transport_notify_poll_in(
1916 	struct vsock_sock *vsk,
1917 	size_t target,
1918 	bool *data_ready_now)
1919 {
1920 	return vmci_trans(vsk)->notify_ops->poll_in(
1921 			&vsk->sk, target, data_ready_now);
1922 }
1923 
1924 static int vmci_transport_notify_poll_out(
1925 	struct vsock_sock *vsk,
1926 	size_t target,
1927 	bool *space_available_now)
1928 {
1929 	return vmci_trans(vsk)->notify_ops->poll_out(
1930 			&vsk->sk, target, space_available_now);
1931 }
1932 
1933 static int vmci_transport_notify_recv_init(
1934 	struct vsock_sock *vsk,
1935 	size_t target,
1936 	struct vsock_transport_recv_notify_data *data)
1937 {
1938 	return vmci_trans(vsk)->notify_ops->recv_init(
1939 			&vsk->sk, target,
1940 			(struct vmci_transport_recv_notify_data *)data);
1941 }
1942 
1943 static int vmci_transport_notify_recv_pre_block(
1944 	struct vsock_sock *vsk,
1945 	size_t target,
1946 	struct vsock_transport_recv_notify_data *data)
1947 {
1948 	return vmci_trans(vsk)->notify_ops->recv_pre_block(
1949 			&vsk->sk, target,
1950 			(struct vmci_transport_recv_notify_data *)data);
1951 }
1952 
1953 static int vmci_transport_notify_recv_pre_dequeue(
1954 	struct vsock_sock *vsk,
1955 	size_t target,
1956 	struct vsock_transport_recv_notify_data *data)
1957 {
1958 	return vmci_trans(vsk)->notify_ops->recv_pre_dequeue(
1959 			&vsk->sk, target,
1960 			(struct vmci_transport_recv_notify_data *)data);
1961 }
1962 
1963 static int vmci_transport_notify_recv_post_dequeue(
1964 	struct vsock_sock *vsk,
1965 	size_t target,
1966 	ssize_t copied,
1967 	bool data_read,
1968 	struct vsock_transport_recv_notify_data *data)
1969 {
1970 	return vmci_trans(vsk)->notify_ops->recv_post_dequeue(
1971 			&vsk->sk, target, copied, data_read,
1972 			(struct vmci_transport_recv_notify_data *)data);
1973 }
1974 
1975 static int vmci_transport_notify_send_init(
1976 	struct vsock_sock *vsk,
1977 	struct vsock_transport_send_notify_data *data)
1978 {
1979 	return vmci_trans(vsk)->notify_ops->send_init(
1980 			&vsk->sk,
1981 			(struct vmci_transport_send_notify_data *)data);
1982 }
1983 
1984 static int vmci_transport_notify_send_pre_block(
1985 	struct vsock_sock *vsk,
1986 	struct vsock_transport_send_notify_data *data)
1987 {
1988 	return vmci_trans(vsk)->notify_ops->send_pre_block(
1989 			&vsk->sk,
1990 			(struct vmci_transport_send_notify_data *)data);
1991 }
1992 
1993 static int vmci_transport_notify_send_pre_enqueue(
1994 	struct vsock_sock *vsk,
1995 	struct vsock_transport_send_notify_data *data)
1996 {
1997 	return vmci_trans(vsk)->notify_ops->send_pre_enqueue(
1998 			&vsk->sk,
1999 			(struct vmci_transport_send_notify_data *)data);
2000 }
2001 
2002 static int vmci_transport_notify_send_post_enqueue(
2003 	struct vsock_sock *vsk,
2004 	ssize_t written,
2005 	struct vsock_transport_send_notify_data *data)
2006 {
2007 	return vmci_trans(vsk)->notify_ops->send_post_enqueue(
2008 			&vsk->sk, written,
2009 			(struct vmci_transport_send_notify_data *)data);
2010 }
2011 
2012 static bool vmci_transport_old_proto_override(bool *old_pkt_proto)
2013 {
2014 	if (PROTOCOL_OVERRIDE != -1) {
2015 		if (PROTOCOL_OVERRIDE == 0)
2016 			*old_pkt_proto = true;
2017 		else
2018 			*old_pkt_proto = false;
2019 
2020 		pr_info("Proto override in use\n");
2021 		return true;
2022 	}
2023 
2024 	return false;
2025 }
2026 
2027 static bool vmci_transport_proto_to_notify_struct(struct sock *sk,
2028 						  u16 *proto,
2029 						  bool old_pkt_proto)
2030 {
2031 	struct vsock_sock *vsk = vsock_sk(sk);
2032 
2033 	if (old_pkt_proto) {
2034 		if (*proto != VSOCK_PROTO_INVALID) {
2035 			pr_err("Can't set both an old and new protocol\n");
2036 			return false;
2037 		}
2038 		vmci_trans(vsk)->notify_ops = &vmci_transport_notify_pkt_ops;
2039 		goto exit;
2040 	}
2041 
2042 	switch (*proto) {
2043 	case VSOCK_PROTO_PKT_ON_NOTIFY:
2044 		vmci_trans(vsk)->notify_ops =
2045 			&vmci_transport_notify_pkt_q_state_ops;
2046 		break;
2047 	default:
2048 		pr_err("Unknown notify protocol version\n");
2049 		return false;
2050 	}
2051 
2052 exit:
2053 	vmci_trans(vsk)->notify_ops->socket_init(sk);
2054 	return true;
2055 }
2056 
2057 static u16 vmci_transport_new_proto_supported_versions(void)
2058 {
2059 	if (PROTOCOL_OVERRIDE != -1)
2060 		return PROTOCOL_OVERRIDE;
2061 
2062 	return VSOCK_PROTO_ALL_SUPPORTED;
2063 }
2064 
2065 static u32 vmci_transport_get_local_cid(void)
2066 {
2067 	return vmci_get_context_id();
2068 }
2069 
2070 static struct vsock_transport vmci_transport = {
2071 	.module = THIS_MODULE,
2072 	.init = vmci_transport_socket_init,
2073 	.destruct = vmci_transport_destruct,
2074 	.release = vmci_transport_release,
2075 	.connect = vmci_transport_connect,
2076 	.dgram_bind = vmci_transport_dgram_bind,
2077 	.dgram_dequeue = vmci_transport_dgram_dequeue,
2078 	.dgram_enqueue = vmci_transport_dgram_enqueue,
2079 	.dgram_allow = vmci_transport_dgram_allow,
2080 	.stream_dequeue = vmci_transport_stream_dequeue,
2081 	.stream_enqueue = vmci_transport_stream_enqueue,
2082 	.stream_has_data = vmci_transport_stream_has_data,
2083 	.stream_has_space = vmci_transport_stream_has_space,
2084 	.stream_rcvhiwat = vmci_transport_stream_rcvhiwat,
2085 	.stream_is_active = vmci_transport_stream_is_active,
2086 	.stream_allow = vmci_transport_stream_allow,
2087 	.notify_poll_in = vmci_transport_notify_poll_in,
2088 	.notify_poll_out = vmci_transport_notify_poll_out,
2089 	.notify_recv_init = vmci_transport_notify_recv_init,
2090 	.notify_recv_pre_block = vmci_transport_notify_recv_pre_block,
2091 	.notify_recv_pre_dequeue = vmci_transport_notify_recv_pre_dequeue,
2092 	.notify_recv_post_dequeue = vmci_transport_notify_recv_post_dequeue,
2093 	.notify_send_init = vmci_transport_notify_send_init,
2094 	.notify_send_pre_block = vmci_transport_notify_send_pre_block,
2095 	.notify_send_pre_enqueue = vmci_transport_notify_send_pre_enqueue,
2096 	.notify_send_post_enqueue = vmci_transport_notify_send_post_enqueue,
2097 	.shutdown = vmci_transport_shutdown,
2098 	.get_local_cid = vmci_transport_get_local_cid,
2099 };
2100 
2101 static bool vmci_check_transport(struct vsock_sock *vsk)
2102 {
2103 	return vsk->transport == &vmci_transport;
2104 }
2105 
2106 static void vmci_vsock_transport_cb(bool is_host)
2107 {
2108 	int features;
2109 
2110 	if (is_host)
2111 		features = VSOCK_TRANSPORT_F_H2G;
2112 	else
2113 		features = VSOCK_TRANSPORT_F_G2H;
2114 
2115 	vsock_core_register(&vmci_transport, features);
2116 }
2117 
2118 static int __init vmci_transport_init(void)
2119 {
2120 	int err;
2121 
2122 	/* Create the datagram handle that we will use to send and receive all
2123 	 * VSocket control messages for this context.
2124 	 */
2125 	err = vmci_transport_datagram_create_hnd(VMCI_TRANSPORT_PACKET_RID,
2126 						 VMCI_FLAG_ANYCID_DG_HND,
2127 						 vmci_transport_recv_stream_cb,
2128 						 NULL,
2129 						 &vmci_transport_stream_handle);
2130 	if (err < VMCI_SUCCESS) {
2131 		pr_err("Unable to create datagram handle. (%d)\n", err);
2132 		return vmci_transport_error_to_vsock_error(err);
2133 	}
2134 	err = vmci_event_subscribe(VMCI_EVENT_QP_RESUMED,
2135 				   vmci_transport_qp_resumed_cb,
2136 				   NULL, &vmci_transport_qp_resumed_sub_id);
2137 	if (err < VMCI_SUCCESS) {
2138 		pr_err("Unable to subscribe to resumed event. (%d)\n", err);
2139 		err = vmci_transport_error_to_vsock_error(err);
2140 		vmci_transport_qp_resumed_sub_id = VMCI_INVALID_ID;
2141 		goto err_destroy_stream_handle;
2142 	}
2143 
2144 	/* Register only with dgram feature, other features (H2G, G2H) will be
2145 	 * registered when the first host or guest becomes active.
2146 	 */
2147 	err = vsock_core_register(&vmci_transport, VSOCK_TRANSPORT_F_DGRAM);
2148 	if (err < 0)
2149 		goto err_unsubscribe;
2150 
2151 	err = vmci_register_vsock_callback(vmci_vsock_transport_cb);
2152 	if (err < 0)
2153 		goto err_unregister;
2154 
2155 	return 0;
2156 
2157 err_unregister:
2158 	vsock_core_unregister(&vmci_transport);
2159 err_unsubscribe:
2160 	vmci_event_unsubscribe(vmci_transport_qp_resumed_sub_id);
2161 err_destroy_stream_handle:
2162 	vmci_datagram_destroy_handle(vmci_transport_stream_handle);
2163 	return err;
2164 }
2165 module_init(vmci_transport_init);
2166 
2167 static void __exit vmci_transport_exit(void)
2168 {
2169 	cancel_work_sync(&vmci_transport_cleanup_work);
2170 	vmci_transport_free_resources(&vmci_transport_cleanup_list);
2171 
2172 	if (!vmci_handle_is_invalid(vmci_transport_stream_handle)) {
2173 		if (vmci_datagram_destroy_handle(
2174 			vmci_transport_stream_handle) != VMCI_SUCCESS)
2175 			pr_err("Couldn't destroy datagram handle\n");
2176 		vmci_transport_stream_handle = VMCI_INVALID_HANDLE;
2177 	}
2178 
2179 	if (vmci_transport_qp_resumed_sub_id != VMCI_INVALID_ID) {
2180 		vmci_event_unsubscribe(vmci_transport_qp_resumed_sub_id);
2181 		vmci_transport_qp_resumed_sub_id = VMCI_INVALID_ID;
2182 	}
2183 
2184 	vmci_register_vsock_callback(NULL);
2185 	vsock_core_unregister(&vmci_transport);
2186 }
2187 module_exit(vmci_transport_exit);
2188 
2189 MODULE_AUTHOR("VMware, Inc.");
2190 MODULE_DESCRIPTION("VMCI transport for Virtual Sockets");
2191 MODULE_VERSION("1.0.5.0-k");
2192 MODULE_LICENSE("GPL v2");
2193 MODULE_ALIAS("vmware_vsock");
2194 MODULE_ALIAS_NETPROTO(PF_VSOCK);
2195