xref: /f-stack/dpdk/lib/librte_vhost/vhost_user.c (revision 819aafb6)
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2010-2018 Intel Corporation
3  */
4 
5 /* Security model
6  * --------------
7  * The vhost-user protocol connection is an external interface, so it must be
8  * robust against invalid inputs.
9  *
10  * This is important because the vhost-user master is only one step removed
11  * from the guest.  Malicious guests that have escaped will then launch further
12  * attacks from the vhost-user master.
13  *
14  * Even in deployments where guests are trusted, a bug in the vhost-user master
15  * can still cause invalid messages to be sent.  Such messages must not
16  * compromise the stability of the DPDK application by causing crashes, memory
17  * corruption, or other problematic behavior.
18  *
19  * Do not assume received VhostUserMsg fields contain sensible values!
20  */
21 
22 #include <stdint.h>
23 #include <stdio.h>
24 #include <stdlib.h>
25 #include <string.h>
26 #include <unistd.h>
27 #include <fcntl.h>
28 #include <sys/ioctl.h>
29 #include <sys/mman.h>
30 #include <sys/types.h>
31 #include <sys/stat.h>
32 #include <sys/syscall.h>
33 #include <assert.h>
34 #ifdef RTE_LIBRTE_VHOST_NUMA
35 #include <numaif.h>
36 #endif
37 #ifdef RTE_LIBRTE_VHOST_POSTCOPY
38 #include <linux/userfaultfd.h>
39 #endif
40 
41 #include <rte_common.h>
42 #include <rte_malloc.h>
43 #include <rte_log.h>
44 
45 #include "iotlb.h"
46 #include "vhost.h"
47 #include "vhost_user.h"
48 
49 #define VIRTIO_MIN_MTU 68
50 #define VIRTIO_MAX_MTU 65535
51 
52 static const char *vhost_message_str[VHOST_USER_MAX] = {
53 	[VHOST_USER_NONE] = "VHOST_USER_NONE",
54 	[VHOST_USER_GET_FEATURES] = "VHOST_USER_GET_FEATURES",
55 	[VHOST_USER_SET_FEATURES] = "VHOST_USER_SET_FEATURES",
56 	[VHOST_USER_SET_OWNER] = "VHOST_USER_SET_OWNER",
57 	[VHOST_USER_RESET_OWNER] = "VHOST_USER_RESET_OWNER",
58 	[VHOST_USER_SET_MEM_TABLE] = "VHOST_USER_SET_MEM_TABLE",
59 	[VHOST_USER_SET_LOG_BASE] = "VHOST_USER_SET_LOG_BASE",
60 	[VHOST_USER_SET_LOG_FD] = "VHOST_USER_SET_LOG_FD",
61 	[VHOST_USER_SET_VRING_NUM] = "VHOST_USER_SET_VRING_NUM",
62 	[VHOST_USER_SET_VRING_ADDR] = "VHOST_USER_SET_VRING_ADDR",
63 	[VHOST_USER_SET_VRING_BASE] = "VHOST_USER_SET_VRING_BASE",
64 	[VHOST_USER_GET_VRING_BASE] = "VHOST_USER_GET_VRING_BASE",
65 	[VHOST_USER_SET_VRING_KICK] = "VHOST_USER_SET_VRING_KICK",
66 	[VHOST_USER_SET_VRING_CALL] = "VHOST_USER_SET_VRING_CALL",
67 	[VHOST_USER_SET_VRING_ERR]  = "VHOST_USER_SET_VRING_ERR",
68 	[VHOST_USER_GET_PROTOCOL_FEATURES]  = "VHOST_USER_GET_PROTOCOL_FEATURES",
69 	[VHOST_USER_SET_PROTOCOL_FEATURES]  = "VHOST_USER_SET_PROTOCOL_FEATURES",
70 	[VHOST_USER_GET_QUEUE_NUM]  = "VHOST_USER_GET_QUEUE_NUM",
71 	[VHOST_USER_SET_VRING_ENABLE]  = "VHOST_USER_SET_VRING_ENABLE",
72 	[VHOST_USER_SEND_RARP]  = "VHOST_USER_SEND_RARP",
73 	[VHOST_USER_NET_SET_MTU]  = "VHOST_USER_NET_SET_MTU",
74 	[VHOST_USER_SET_SLAVE_REQ_FD]  = "VHOST_USER_SET_SLAVE_REQ_FD",
75 	[VHOST_USER_IOTLB_MSG]  = "VHOST_USER_IOTLB_MSG",
76 	[VHOST_USER_CRYPTO_CREATE_SESS] = "VHOST_USER_CRYPTO_CREATE_SESS",
77 	[VHOST_USER_CRYPTO_CLOSE_SESS] = "VHOST_USER_CRYPTO_CLOSE_SESS",
78 	[VHOST_USER_POSTCOPY_ADVISE]  = "VHOST_USER_POSTCOPY_ADVISE",
79 	[VHOST_USER_POSTCOPY_LISTEN]  = "VHOST_USER_POSTCOPY_LISTEN",
80 	[VHOST_USER_POSTCOPY_END]  = "VHOST_USER_POSTCOPY_END",
81 };
82 
83 static int send_vhost_reply(int sockfd, struct VhostUserMsg *msg);
84 static int read_vhost_message(int sockfd, struct VhostUserMsg *msg);
85 
86 static void
87 close_msg_fds(struct VhostUserMsg *msg)
88 {
89 	int i;
90 
91 	for (i = 0; i < msg->fd_num; i++)
92 		close(msg->fds[i]);
93 }
94 
95 /*
96  * Ensure the expected number of FDs is received,
97  * close all FDs and return an error if this is not the case.
98  */
99 static int
100 validate_msg_fds(struct VhostUserMsg *msg, int expected_fds)
101 {
102 	if (msg->fd_num == expected_fds)
103 		return 0;
104 
105 	RTE_LOG(ERR, VHOST_CONFIG,
106 		" Expect %d FDs for request %s, received %d\n",
107 		expected_fds,
108 		vhost_message_str[msg->request.master],
109 		msg->fd_num);
110 
111 	close_msg_fds(msg);
112 
113 	return -1;
114 }
115 
116 static uint64_t
117 get_blk_size(int fd)
118 {
119 	struct stat stat;
120 	int ret;
121 
122 	ret = fstat(fd, &stat);
123 	return ret == -1 ? (uint64_t)-1 : (uint64_t)stat.st_blksize;
124 }
125 
126 /*
127  * Reclaim all the outstanding zmbufs for a virtqueue.
128  */
129 static void
130 drain_zmbuf_list(struct vhost_virtqueue *vq)
131 {
132 	struct zcopy_mbuf *zmbuf, *next;
133 
134 	for (zmbuf = TAILQ_FIRST(&vq->zmbuf_list);
135 	     zmbuf != NULL; zmbuf = next) {
136 		next = TAILQ_NEXT(zmbuf, next);
137 
138 		while (!mbuf_is_consumed(zmbuf->mbuf))
139 			usleep(1000);
140 
141 		TAILQ_REMOVE(&vq->zmbuf_list, zmbuf, next);
142 		restore_mbuf(zmbuf->mbuf);
143 		rte_pktmbuf_free(zmbuf->mbuf);
144 		put_zmbuf(zmbuf);
145 		vq->nr_zmbuf -= 1;
146 	}
147 }
148 
149 static void
150 free_mem_region(struct virtio_net *dev)
151 {
152 	uint32_t i;
153 	struct rte_vhost_mem_region *reg;
154 	struct vhost_virtqueue *vq;
155 
156 	if (!dev || !dev->mem)
157 		return;
158 
159 	if (dev->dequeue_zero_copy) {
160 		for (i = 0; i < dev->nr_vring; i++) {
161 			vq = dev->virtqueue[i];
162 			if (vq)
163 				drain_zmbuf_list(vq);
164 		}
165 	}
166 
167 	for (i = 0; i < dev->mem->nregions; i++) {
168 		reg = &dev->mem->regions[i];
169 		if (reg->host_user_addr) {
170 			munmap(reg->mmap_addr, reg->mmap_size);
171 			close(reg->fd);
172 		}
173 	}
174 }
175 
176 void
177 vhost_backend_cleanup(struct virtio_net *dev)
178 {
179 	if (dev->mem) {
180 		free_mem_region(dev);
181 		rte_free(dev->mem);
182 		dev->mem = NULL;
183 	}
184 
185 	free(dev->guest_pages);
186 	dev->guest_pages = NULL;
187 
188 	if (dev->log_addr) {
189 		munmap((void *)(uintptr_t)dev->log_addr, dev->log_size);
190 		dev->log_addr = 0;
191 	}
192 
193 	if (dev->slave_req_fd >= 0) {
194 		close(dev->slave_req_fd);
195 		dev->slave_req_fd = -1;
196 	}
197 
198 	if (dev->postcopy_ufd >= 0) {
199 		close(dev->postcopy_ufd);
200 		dev->postcopy_ufd = -1;
201 	}
202 
203 	dev->postcopy_listening = 0;
204 }
205 
206 /*
207  * This function just returns success at the moment unless
208  * the device hasn't been initialised.
209  */
210 static int
211 vhost_user_set_owner(struct virtio_net **pdev __rte_unused,
212 			struct VhostUserMsg *msg,
213 			int main_fd __rte_unused)
214 {
215 	if (validate_msg_fds(msg, 0) != 0)
216 		return VH_RESULT_ERR;
217 
218 	return VH_RESULT_OK;
219 }
220 
221 static int
222 vhost_user_reset_owner(struct virtio_net **pdev,
223 			struct VhostUserMsg *msg,
224 			int main_fd __rte_unused)
225 {
226 	struct virtio_net *dev = *pdev;
227 
228 	if (validate_msg_fds(msg, 0) != 0)
229 		return VH_RESULT_ERR;
230 
231 	vhost_destroy_device_notify(dev);
232 
233 	cleanup_device(dev, 0);
234 	reset_device(dev);
235 	return VH_RESULT_OK;
236 }
237 
238 /*
239  * The features that we support are requested.
240  */
241 static int
242 vhost_user_get_features(struct virtio_net **pdev, struct VhostUserMsg *msg,
243 			int main_fd __rte_unused)
244 {
245 	struct virtio_net *dev = *pdev;
246 	uint64_t features = 0;
247 
248 	if (validate_msg_fds(msg, 0) != 0)
249 		return VH_RESULT_ERR;
250 
251 	rte_vhost_driver_get_features(dev->ifname, &features);
252 
253 	msg->payload.u64 = features;
254 	msg->size = sizeof(msg->payload.u64);
255 	msg->fd_num = 0;
256 
257 	return VH_RESULT_REPLY;
258 }
259 
260 /*
261  * The queue number that we support are requested.
262  */
263 static int
264 vhost_user_get_queue_num(struct virtio_net **pdev, struct VhostUserMsg *msg,
265 			int main_fd __rte_unused)
266 {
267 	struct virtio_net *dev = *pdev;
268 	uint32_t queue_num = 0;
269 
270 	if (validate_msg_fds(msg, 0) != 0)
271 		return VH_RESULT_ERR;
272 
273 	rte_vhost_driver_get_queue_num(dev->ifname, &queue_num);
274 
275 	msg->payload.u64 = (uint64_t)queue_num;
276 	msg->size = sizeof(msg->payload.u64);
277 	msg->fd_num = 0;
278 
279 	return VH_RESULT_REPLY;
280 }
281 
282 /*
283  * We receive the negotiated features supported by us and the virtio device.
284  */
285 static int
286 vhost_user_set_features(struct virtio_net **pdev, struct VhostUserMsg *msg,
287 			int main_fd __rte_unused)
288 {
289 	struct virtio_net *dev = *pdev;
290 	uint64_t features = msg->payload.u64;
291 	uint64_t vhost_features = 0;
292 	struct rte_vdpa_device *vdpa_dev;
293 	int did = -1;
294 
295 	if (validate_msg_fds(msg, 0) != 0)
296 		return VH_RESULT_ERR;
297 
298 	rte_vhost_driver_get_features(dev->ifname, &vhost_features);
299 	if (features & ~vhost_features) {
300 		RTE_LOG(ERR, VHOST_CONFIG,
301 			"(%d) received invalid negotiated features.\n",
302 			dev->vid);
303 		return VH_RESULT_ERR;
304 	}
305 
306 	if (dev->flags & VIRTIO_DEV_RUNNING) {
307 		if (dev->features == features)
308 			return VH_RESULT_OK;
309 
310 		/*
311 		 * Error out if master tries to change features while device is
312 		 * in running state. The exception being VHOST_F_LOG_ALL, which
313 		 * is enabled when the live-migration starts.
314 		 */
315 		if ((dev->features ^ features) & ~(1ULL << VHOST_F_LOG_ALL)) {
316 			RTE_LOG(ERR, VHOST_CONFIG,
317 				"(%d) features changed while device is running.\n",
318 				dev->vid);
319 			return VH_RESULT_ERR;
320 		}
321 
322 		if (dev->notify_ops->features_changed)
323 			dev->notify_ops->features_changed(dev->vid, features);
324 	}
325 
326 	dev->features = features;
327 	if (dev->features &
328 		((1 << VIRTIO_NET_F_MRG_RXBUF) | (1ULL << VIRTIO_F_VERSION_1))) {
329 		dev->vhost_hlen = sizeof(struct virtio_net_hdr_mrg_rxbuf);
330 	} else {
331 		dev->vhost_hlen = sizeof(struct virtio_net_hdr);
332 	}
333 	VHOST_LOG_DEBUG(VHOST_CONFIG,
334 		"(%d) mergeable RX buffers %s, virtio 1 %s\n",
335 		dev->vid,
336 		(dev->features & (1 << VIRTIO_NET_F_MRG_RXBUF)) ? "on" : "off",
337 		(dev->features & (1ULL << VIRTIO_F_VERSION_1)) ? "on" : "off");
338 
339 	if ((dev->flags & VIRTIO_DEV_BUILTIN_VIRTIO_NET) &&
340 	    !(dev->features & (1ULL << VIRTIO_NET_F_MQ))) {
341 		/*
342 		 * Remove all but first queue pair if MQ hasn't been
343 		 * negotiated. This is safe because the device is not
344 		 * running at this stage.
345 		 */
346 		while (dev->nr_vring > 2) {
347 			struct vhost_virtqueue *vq;
348 
349 			vq = dev->virtqueue[--dev->nr_vring];
350 			if (!vq)
351 				continue;
352 
353 			dev->virtqueue[dev->nr_vring] = NULL;
354 			cleanup_vq(vq, 1);
355 			free_vq(dev, vq);
356 		}
357 	}
358 
359 	did = dev->vdpa_dev_id;
360 	vdpa_dev = rte_vdpa_get_device(did);
361 	if (vdpa_dev && vdpa_dev->ops->set_features)
362 		vdpa_dev->ops->set_features(dev->vid);
363 
364 	return VH_RESULT_OK;
365 }
366 
367 /*
368  * The virtio device sends us the size of the descriptor ring.
369  */
370 static int
371 vhost_user_set_vring_num(struct virtio_net **pdev,
372 			struct VhostUserMsg *msg,
373 			int main_fd __rte_unused)
374 {
375 	struct virtio_net *dev = *pdev;
376 	struct vhost_virtqueue *vq = dev->virtqueue[msg->payload.state.index];
377 
378 	if (validate_msg_fds(msg, 0) != 0)
379 		return VH_RESULT_ERR;
380 
381 	vq->size = msg->payload.state.num;
382 
383 	/* VIRTIO 1.0, 2.4 Virtqueues says:
384 	 *
385 	 *   Queue Size value is always a power of 2. The maximum Queue Size
386 	 *   value is 32768.
387 	 */
388 	if ((vq->size & (vq->size - 1)) || vq->size > 32768) {
389 		RTE_LOG(ERR, VHOST_CONFIG,
390 			"invalid virtqueue size %u\n", vq->size);
391 		return VH_RESULT_ERR;
392 	}
393 
394 	if (dev->dequeue_zero_copy) {
395 		vq->nr_zmbuf = 0;
396 		vq->last_zmbuf_idx = 0;
397 		vq->zmbuf_size = vq->size;
398 		if (vq->zmbufs)
399 			rte_free(vq->zmbufs);
400 		vq->zmbufs = rte_zmalloc(NULL, vq->zmbuf_size *
401 					 sizeof(struct zcopy_mbuf), 0);
402 		if (vq->zmbufs == NULL) {
403 			RTE_LOG(WARNING, VHOST_CONFIG,
404 				"failed to allocate mem for zero copy; "
405 				"zero copy is force disabled\n");
406 			dev->dequeue_zero_copy = 0;
407 		}
408 		TAILQ_INIT(&vq->zmbuf_list);
409 	}
410 
411 	if (vq_is_packed(dev)) {
412 		if (vq->shadow_used_packed)
413 			rte_free(vq->shadow_used_packed);
414 		vq->shadow_used_packed = rte_malloc(NULL,
415 				vq->size *
416 				sizeof(struct vring_used_elem_packed),
417 				RTE_CACHE_LINE_SIZE);
418 		if (!vq->shadow_used_packed) {
419 			RTE_LOG(ERR, VHOST_CONFIG,
420 					"failed to allocate memory for shadow used ring.\n");
421 			return VH_RESULT_ERR;
422 		}
423 
424 	} else {
425 		if (vq->shadow_used_split)
426 			rte_free(vq->shadow_used_split);
427 		vq->shadow_used_split = rte_malloc(NULL,
428 				vq->size * sizeof(struct vring_used_elem),
429 				RTE_CACHE_LINE_SIZE);
430 		if (!vq->shadow_used_split) {
431 			RTE_LOG(ERR, VHOST_CONFIG,
432 					"failed to allocate memory for shadow used ring.\n");
433 			return VH_RESULT_ERR;
434 		}
435 	}
436 
437 	if (vq->batch_copy_elems)
438 		rte_free(vq->batch_copy_elems);
439 	vq->batch_copy_elems = rte_malloc(NULL,
440 				vq->size * sizeof(struct batch_copy_elem),
441 				RTE_CACHE_LINE_SIZE);
442 	if (!vq->batch_copy_elems) {
443 		RTE_LOG(ERR, VHOST_CONFIG,
444 			"failed to allocate memory for batching copy.\n");
445 		return VH_RESULT_ERR;
446 	}
447 
448 	return VH_RESULT_OK;
449 }
450 
451 /*
452  * Reallocate virtio_dev and vhost_virtqueue data structure to make them on the
453  * same numa node as the memory of vring descriptor.
454  */
455 #ifdef RTE_LIBRTE_VHOST_NUMA
456 static struct virtio_net*
457 numa_realloc(struct virtio_net *dev, int index)
458 {
459 	int oldnode, newnode;
460 	struct virtio_net *old_dev;
461 	struct vhost_virtqueue *old_vq, *vq;
462 	struct zcopy_mbuf *new_zmbuf;
463 	struct vring_used_elem *new_shadow_used_split;
464 	struct vring_used_elem_packed *new_shadow_used_packed;
465 	struct batch_copy_elem *new_batch_copy_elems;
466 	int ret;
467 
468 	old_dev = dev;
469 	vq = old_vq = dev->virtqueue[index];
470 
471 	ret = get_mempolicy(&newnode, NULL, 0, old_vq->desc,
472 			    MPOL_F_NODE | MPOL_F_ADDR);
473 
474 	/* check if we need to reallocate vq */
475 	ret |= get_mempolicy(&oldnode, NULL, 0, old_vq,
476 			     MPOL_F_NODE | MPOL_F_ADDR);
477 	if (ret) {
478 		RTE_LOG(ERR, VHOST_CONFIG,
479 			"Unable to get vq numa information.\n");
480 		return dev;
481 	}
482 	if (oldnode != newnode) {
483 		RTE_LOG(INFO, VHOST_CONFIG,
484 			"reallocate vq from %d to %d node\n", oldnode, newnode);
485 		vq = rte_malloc_socket(NULL, sizeof(*vq), 0, newnode);
486 		if (!vq)
487 			return dev;
488 
489 		memcpy(vq, old_vq, sizeof(*vq));
490 		TAILQ_INIT(&vq->zmbuf_list);
491 
492 		if (dev->dequeue_zero_copy) {
493 			new_zmbuf = rte_malloc_socket(NULL, vq->zmbuf_size *
494 					sizeof(struct zcopy_mbuf), 0, newnode);
495 			if (new_zmbuf) {
496 				rte_free(vq->zmbufs);
497 				vq->zmbufs = new_zmbuf;
498 			}
499 		}
500 
501 		if (vq_is_packed(dev)) {
502 			new_shadow_used_packed = rte_malloc_socket(NULL,
503 					vq->size *
504 					sizeof(struct vring_used_elem_packed),
505 					RTE_CACHE_LINE_SIZE,
506 					newnode);
507 			if (new_shadow_used_packed) {
508 				rte_free(vq->shadow_used_packed);
509 				vq->shadow_used_packed = new_shadow_used_packed;
510 			}
511 		} else {
512 			new_shadow_used_split = rte_malloc_socket(NULL,
513 					vq->size *
514 					sizeof(struct vring_used_elem),
515 					RTE_CACHE_LINE_SIZE,
516 					newnode);
517 			if (new_shadow_used_split) {
518 				rte_free(vq->shadow_used_split);
519 				vq->shadow_used_split = new_shadow_used_split;
520 			}
521 		}
522 
523 		new_batch_copy_elems = rte_malloc_socket(NULL,
524 			vq->size * sizeof(struct batch_copy_elem),
525 			RTE_CACHE_LINE_SIZE,
526 			newnode);
527 		if (new_batch_copy_elems) {
528 			rte_free(vq->batch_copy_elems);
529 			vq->batch_copy_elems = new_batch_copy_elems;
530 		}
531 
532 		rte_free(old_vq);
533 	}
534 
535 	/* check if we need to reallocate dev */
536 	ret = get_mempolicy(&oldnode, NULL, 0, old_dev,
537 			    MPOL_F_NODE | MPOL_F_ADDR);
538 	if (ret) {
539 		RTE_LOG(ERR, VHOST_CONFIG,
540 			"Unable to get dev numa information.\n");
541 		goto out;
542 	}
543 	if (oldnode != newnode) {
544 		RTE_LOG(INFO, VHOST_CONFIG,
545 			"reallocate dev from %d to %d node\n",
546 			oldnode, newnode);
547 		dev = rte_malloc_socket(NULL, sizeof(*dev), 0, newnode);
548 		if (!dev) {
549 			dev = old_dev;
550 			goto out;
551 		}
552 
553 		memcpy(dev, old_dev, sizeof(*dev));
554 		rte_free(old_dev);
555 	}
556 
557 out:
558 	dev->virtqueue[index] = vq;
559 	vhost_devices[dev->vid] = dev;
560 
561 	if (old_vq != vq)
562 		vhost_user_iotlb_init(dev, index);
563 
564 	return dev;
565 }
566 #else
567 static struct virtio_net*
568 numa_realloc(struct virtio_net *dev, int index __rte_unused)
569 {
570 	return dev;
571 }
572 #endif
573 
574 /* Converts QEMU virtual address to Vhost virtual address. */
575 static uint64_t
576 qva_to_vva(struct virtio_net *dev, uint64_t qva, uint64_t *len)
577 {
578 	struct rte_vhost_mem_region *r;
579 	uint32_t i;
580 
581 	if (unlikely(!dev || !dev->mem))
582 		goto out_error;
583 
584 	/* Find the region where the address lives. */
585 	for (i = 0; i < dev->mem->nregions; i++) {
586 		r = &dev->mem->regions[i];
587 
588 		if (qva >= r->guest_user_addr &&
589 		    qva <  r->guest_user_addr + r->size) {
590 
591 			if (unlikely(*len > r->guest_user_addr + r->size - qva))
592 				*len = r->guest_user_addr + r->size - qva;
593 
594 			return qva - r->guest_user_addr +
595 			       r->host_user_addr;
596 		}
597 	}
598 out_error:
599 	*len = 0;
600 
601 	return 0;
602 }
603 
604 
605 /*
606  * Converts ring address to Vhost virtual address.
607  * If IOMMU is enabled, the ring address is a guest IO virtual address,
608  * else it is a QEMU virtual address.
609  */
610 static uint64_t
611 ring_addr_to_vva(struct virtio_net *dev, struct vhost_virtqueue *vq,
612 		uint64_t ra, uint64_t *size)
613 {
614 	if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM)) {
615 		uint64_t vva;
616 
617 		vva = vhost_user_iotlb_cache_find(vq, ra,
618 					size, VHOST_ACCESS_RW);
619 		if (!vva)
620 			vhost_user_iotlb_miss(dev, ra, VHOST_ACCESS_RW);
621 
622 		return vva;
623 	}
624 
625 	return qva_to_vva(dev, ra, size);
626 }
627 
628 static struct virtio_net *
629 translate_ring_addresses(struct virtio_net *dev, int vq_index)
630 {
631 	struct vhost_virtqueue *vq = dev->virtqueue[vq_index];
632 	struct vhost_vring_addr *addr = &vq->ring_addrs;
633 	uint64_t len, expected_len;
634 
635 	if (vq_is_packed(dev)) {
636 		len = sizeof(struct vring_packed_desc) * vq->size;
637 		vq->desc_packed = (struct vring_packed_desc *)(uintptr_t)
638 			ring_addr_to_vva(dev, vq, addr->desc_user_addr, &len);
639 		vq->log_guest_addr = 0;
640 		if (vq->desc_packed == NULL ||
641 				len != sizeof(struct vring_packed_desc) *
642 				vq->size) {
643 			RTE_LOG(DEBUG, VHOST_CONFIG,
644 				"(%d) failed to map desc_packed ring.\n",
645 				dev->vid);
646 			return dev;
647 		}
648 
649 		dev = numa_realloc(dev, vq_index);
650 		vq = dev->virtqueue[vq_index];
651 		addr = &vq->ring_addrs;
652 
653 		len = sizeof(struct vring_packed_desc_event);
654 		vq->driver_event = (struct vring_packed_desc_event *)
655 					(uintptr_t)ring_addr_to_vva(dev,
656 					vq, addr->avail_user_addr, &len);
657 		if (vq->driver_event == NULL ||
658 				len != sizeof(struct vring_packed_desc_event)) {
659 			RTE_LOG(DEBUG, VHOST_CONFIG,
660 				"(%d) failed to find driver area address.\n",
661 				dev->vid);
662 			return dev;
663 		}
664 
665 		len = sizeof(struct vring_packed_desc_event);
666 		vq->device_event = (struct vring_packed_desc_event *)
667 					(uintptr_t)ring_addr_to_vva(dev,
668 					vq, addr->used_user_addr, &len);
669 		if (vq->device_event == NULL ||
670 				len != sizeof(struct vring_packed_desc_event)) {
671 			RTE_LOG(DEBUG, VHOST_CONFIG,
672 				"(%d) failed to find device area address.\n",
673 				dev->vid);
674 			return dev;
675 		}
676 
677 		return dev;
678 	}
679 
680 	/* The addresses are converted from QEMU virtual to Vhost virtual. */
681 	if (vq->desc && vq->avail && vq->used)
682 		return dev;
683 
684 	len = sizeof(struct vring_desc) * vq->size;
685 	vq->desc = (struct vring_desc *)(uintptr_t)ring_addr_to_vva(dev,
686 			vq, addr->desc_user_addr, &len);
687 	if (vq->desc == 0 || len != sizeof(struct vring_desc) * vq->size) {
688 		RTE_LOG(DEBUG, VHOST_CONFIG,
689 			"(%d) failed to map desc ring.\n",
690 			dev->vid);
691 		return dev;
692 	}
693 
694 	dev = numa_realloc(dev, vq_index);
695 	vq = dev->virtqueue[vq_index];
696 	addr = &vq->ring_addrs;
697 
698 	len = sizeof(struct vring_avail) + sizeof(uint16_t) * vq->size;
699 	if (dev->features & (1ULL << VIRTIO_RING_F_EVENT_IDX))
700 		len += sizeof(uint16_t);
701 	expected_len = len;
702 	vq->avail = (struct vring_avail *)(uintptr_t)ring_addr_to_vva(dev,
703 			vq, addr->avail_user_addr, &len);
704 	if (vq->avail == 0 || len != expected_len) {
705 		RTE_LOG(DEBUG, VHOST_CONFIG,
706 			"(%d) failed to map avail ring.\n",
707 			dev->vid);
708 		return dev;
709 	}
710 
711 	len = sizeof(struct vring_used) +
712 		sizeof(struct vring_used_elem) * vq->size;
713 	if (dev->features & (1ULL << VIRTIO_RING_F_EVENT_IDX))
714 		len += sizeof(uint16_t);
715 	expected_len = len;
716 	vq->used = (struct vring_used *)(uintptr_t)ring_addr_to_vva(dev,
717 			vq, addr->used_user_addr, &len);
718 	if (vq->used == 0 || len != expected_len) {
719 		RTE_LOG(DEBUG, VHOST_CONFIG,
720 			"(%d) failed to map used ring.\n",
721 			dev->vid);
722 		return dev;
723 	}
724 
725 	if (vq->last_used_idx != vq->used->idx) {
726 		RTE_LOG(WARNING, VHOST_CONFIG,
727 			"last_used_idx (%u) and vq->used->idx (%u) mismatches; "
728 			"some packets maybe resent for Tx and dropped for Rx\n",
729 			vq->last_used_idx, vq->used->idx);
730 		vq->last_used_idx  = vq->used->idx;
731 		vq->last_avail_idx = vq->used->idx;
732 	}
733 
734 	vq->log_guest_addr = addr->log_guest_addr;
735 
736 	VHOST_LOG_DEBUG(VHOST_CONFIG, "(%d) mapped address desc: %p\n",
737 			dev->vid, vq->desc);
738 	VHOST_LOG_DEBUG(VHOST_CONFIG, "(%d) mapped address avail: %p\n",
739 			dev->vid, vq->avail);
740 	VHOST_LOG_DEBUG(VHOST_CONFIG, "(%d) mapped address used: %p\n",
741 			dev->vid, vq->used);
742 	VHOST_LOG_DEBUG(VHOST_CONFIG, "(%d) log_guest_addr: %" PRIx64 "\n",
743 			dev->vid, vq->log_guest_addr);
744 
745 	return dev;
746 }
747 
748 /*
749  * The virtio device sends us the desc, used and avail ring addresses.
750  * This function then converts these to our address space.
751  */
752 static int
753 vhost_user_set_vring_addr(struct virtio_net **pdev, struct VhostUserMsg *msg,
754 			int main_fd __rte_unused)
755 {
756 	struct virtio_net *dev = *pdev;
757 	struct vhost_virtqueue *vq;
758 	struct vhost_vring_addr *addr = &msg->payload.addr;
759 
760 	if (validate_msg_fds(msg, 0) != 0)
761 		return VH_RESULT_ERR;
762 
763 	if (dev->mem == NULL)
764 		return VH_RESULT_ERR;
765 
766 	/* addr->index refers to the queue index. The txq 1, rxq is 0. */
767 	vq = dev->virtqueue[msg->payload.addr.index];
768 
769 	/*
770 	 * Rings addresses should not be interpreted as long as the ring is not
771 	 * started and enabled
772 	 */
773 	memcpy(&vq->ring_addrs, addr, sizeof(*addr));
774 
775 	vring_invalidate(dev, vq);
776 
777 	if (vq->enabled && (dev->features &
778 				(1ULL << VHOST_USER_F_PROTOCOL_FEATURES))) {
779 		dev = translate_ring_addresses(dev, msg->payload.addr.index);
780 		if (!dev)
781 			return VH_RESULT_ERR;
782 
783 		*pdev = dev;
784 	}
785 
786 	return VH_RESULT_OK;
787 }
788 
789 /*
790  * The virtio device sends us the available ring last used index.
791  */
792 static int
793 vhost_user_set_vring_base(struct virtio_net **pdev,
794 			struct VhostUserMsg *msg,
795 			int main_fd __rte_unused)
796 {
797 	struct virtio_net *dev = *pdev;
798 	struct vhost_virtqueue *vq = dev->virtqueue[msg->payload.state.index];
799 	uint64_t val = msg->payload.state.num;
800 
801 	if (validate_msg_fds(msg, 0) != 0)
802 		return VH_RESULT_ERR;
803 
804 	if (vq_is_packed(dev)) {
805 		/*
806 		 * Bit[0:14]: avail index
807 		 * Bit[15]: avail wrap counter
808 		 */
809 		vq->last_avail_idx = val & 0x7fff;
810 		vq->avail_wrap_counter = !!(val & (0x1 << 15));
811 		/*
812 		 * Set used index to same value as available one, as
813 		 * their values should be the same since ring processing
814 		 * was stopped at get time.
815 		 */
816 		vq->last_used_idx = vq->last_avail_idx;
817 		vq->used_wrap_counter = vq->avail_wrap_counter;
818 	} else {
819 		vq->last_used_idx = msg->payload.state.num;
820 		vq->last_avail_idx = msg->payload.state.num;
821 	}
822 
823 	return VH_RESULT_OK;
824 }
825 
826 static int
827 add_one_guest_page(struct virtio_net *dev, uint64_t guest_phys_addr,
828 		   uint64_t host_phys_addr, uint64_t size)
829 {
830 	struct guest_page *page, *last_page;
831 	struct guest_page *old_pages;
832 
833 	if (dev->nr_guest_pages == dev->max_guest_pages) {
834 		dev->max_guest_pages *= 2;
835 		old_pages = dev->guest_pages;
836 		dev->guest_pages = realloc(dev->guest_pages,
837 					dev->max_guest_pages * sizeof(*page));
838 		if (!dev->guest_pages) {
839 			RTE_LOG(ERR, VHOST_CONFIG, "cannot realloc guest_pages\n");
840 			free(old_pages);
841 			return -1;
842 		}
843 	}
844 
845 	if (dev->nr_guest_pages > 0) {
846 		last_page = &dev->guest_pages[dev->nr_guest_pages - 1];
847 		/* merge if the two pages are continuous */
848 		if (host_phys_addr == last_page->host_phys_addr +
849 				      last_page->size) {
850 			last_page->size += size;
851 			return 0;
852 		}
853 	}
854 
855 	page = &dev->guest_pages[dev->nr_guest_pages++];
856 	page->guest_phys_addr = guest_phys_addr;
857 	page->host_phys_addr  = host_phys_addr;
858 	page->size = size;
859 
860 	return 0;
861 }
862 
863 static int
864 add_guest_pages(struct virtio_net *dev, struct rte_vhost_mem_region *reg,
865 		uint64_t page_size)
866 {
867 	uint64_t reg_size = reg->size;
868 	uint64_t host_user_addr  = reg->host_user_addr;
869 	uint64_t guest_phys_addr = reg->guest_phys_addr;
870 	uint64_t host_phys_addr;
871 	uint64_t size;
872 
873 	host_phys_addr = rte_mem_virt2iova((void *)(uintptr_t)host_user_addr);
874 	size = page_size - (guest_phys_addr & (page_size - 1));
875 	size = RTE_MIN(size, reg_size);
876 
877 	if (add_one_guest_page(dev, guest_phys_addr, host_phys_addr, size) < 0)
878 		return -1;
879 
880 	host_user_addr  += size;
881 	guest_phys_addr += size;
882 	reg_size -= size;
883 
884 	while (reg_size > 0) {
885 		size = RTE_MIN(reg_size, page_size);
886 		host_phys_addr = rte_mem_virt2iova((void *)(uintptr_t)
887 						  host_user_addr);
888 		if (add_one_guest_page(dev, guest_phys_addr, host_phys_addr,
889 				size) < 0)
890 			return -1;
891 
892 		host_user_addr  += size;
893 		guest_phys_addr += size;
894 		reg_size -= size;
895 	}
896 
897 	return 0;
898 }
899 
900 #ifdef RTE_LIBRTE_VHOST_DEBUG
901 /* TODO: enable it only in debug mode? */
902 static void
903 dump_guest_pages(struct virtio_net *dev)
904 {
905 	uint32_t i;
906 	struct guest_page *page;
907 
908 	for (i = 0; i < dev->nr_guest_pages; i++) {
909 		page = &dev->guest_pages[i];
910 
911 		RTE_LOG(INFO, VHOST_CONFIG,
912 			"guest physical page region %u\n"
913 			"\t guest_phys_addr: %" PRIx64 "\n"
914 			"\t host_phys_addr : %" PRIx64 "\n"
915 			"\t size           : %" PRIx64 "\n",
916 			i,
917 			page->guest_phys_addr,
918 			page->host_phys_addr,
919 			page->size);
920 	}
921 }
922 #else
923 #define dump_guest_pages(dev)
924 #endif
925 
926 static bool
927 vhost_memory_changed(struct VhostUserMemory *new,
928 		     struct rte_vhost_memory *old)
929 {
930 	uint32_t i;
931 
932 	if (new->nregions != old->nregions)
933 		return true;
934 
935 	for (i = 0; i < new->nregions; ++i) {
936 		VhostUserMemoryRegion *new_r = &new->regions[i];
937 		struct rte_vhost_mem_region *old_r = &old->regions[i];
938 
939 		if (new_r->guest_phys_addr != old_r->guest_phys_addr)
940 			return true;
941 		if (new_r->memory_size != old_r->size)
942 			return true;
943 		if (new_r->userspace_addr != old_r->guest_user_addr)
944 			return true;
945 	}
946 
947 	return false;
948 }
949 
950 static int
951 vhost_user_set_mem_table(struct virtio_net **pdev, struct VhostUserMsg *msg,
952 			int main_fd)
953 {
954 	struct virtio_net *dev = *pdev;
955 	struct VhostUserMemory *memory = &msg->payload.memory;
956 	struct rte_vhost_mem_region *reg;
957 	void *mmap_addr;
958 	uint64_t mmap_size;
959 	uint64_t mmap_offset;
960 	uint64_t alignment;
961 	uint32_t i;
962 	int populate;
963 	int fd;
964 
965 	if (validate_msg_fds(msg, memory->nregions) != 0)
966 		return VH_RESULT_ERR;
967 
968 	if (memory->nregions > VHOST_MEMORY_MAX_NREGIONS) {
969 		RTE_LOG(ERR, VHOST_CONFIG,
970 			"too many memory regions (%u)\n", memory->nregions);
971 		return VH_RESULT_ERR;
972 	}
973 
974 	if (dev->mem && !vhost_memory_changed(memory, dev->mem)) {
975 		RTE_LOG(INFO, VHOST_CONFIG,
976 			"(%d) memory regions not changed\n", dev->vid);
977 
978 		close_msg_fds(msg);
979 
980 		return VH_RESULT_OK;
981 	}
982 
983 	if (dev->mem) {
984 		free_mem_region(dev);
985 		rte_free(dev->mem);
986 		dev->mem = NULL;
987 	}
988 
989 	/* Flush IOTLB cache as previous HVAs are now invalid */
990 	if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
991 		for (i = 0; i < dev->nr_vring; i++)
992 			vhost_user_iotlb_flush_all(dev->virtqueue[i]);
993 
994 	dev->nr_guest_pages = 0;
995 	if (!dev->guest_pages) {
996 		dev->max_guest_pages = 8;
997 		dev->guest_pages = malloc(dev->max_guest_pages *
998 						sizeof(struct guest_page));
999 		if (dev->guest_pages == NULL) {
1000 			RTE_LOG(ERR, VHOST_CONFIG,
1001 				"(%d) failed to allocate memory "
1002 				"for dev->guest_pages\n",
1003 				dev->vid);
1004 			return VH_RESULT_ERR;
1005 		}
1006 	}
1007 
1008 	dev->mem = rte_zmalloc("vhost-mem-table", sizeof(struct rte_vhost_memory) +
1009 		sizeof(struct rte_vhost_mem_region) * memory->nregions, 0);
1010 	if (dev->mem == NULL) {
1011 		RTE_LOG(ERR, VHOST_CONFIG,
1012 			"(%d) failed to allocate memory for dev->mem\n",
1013 			dev->vid);
1014 		return VH_RESULT_ERR;
1015 	}
1016 	dev->mem->nregions = memory->nregions;
1017 
1018 	for (i = 0; i < memory->nregions; i++) {
1019 		fd  = msg->fds[i];
1020 		reg = &dev->mem->regions[i];
1021 
1022 		reg->guest_phys_addr = memory->regions[i].guest_phys_addr;
1023 		reg->guest_user_addr = memory->regions[i].userspace_addr;
1024 		reg->size            = memory->regions[i].memory_size;
1025 		reg->fd              = fd;
1026 
1027 		mmap_offset = memory->regions[i].mmap_offset;
1028 
1029 		/* Check for memory_size + mmap_offset overflow */
1030 		if (mmap_offset >= -reg->size) {
1031 			RTE_LOG(ERR, VHOST_CONFIG,
1032 				"mmap_offset (%#"PRIx64") and memory_size "
1033 				"(%#"PRIx64") overflow\n",
1034 				mmap_offset, reg->size);
1035 			goto err_mmap;
1036 		}
1037 
1038 		mmap_size = reg->size + mmap_offset;
1039 
1040 		/* mmap() without flag of MAP_ANONYMOUS, should be called
1041 		 * with length argument aligned with hugepagesz at older
1042 		 * longterm version Linux, like 2.6.32 and 3.2.72, or
1043 		 * mmap() will fail with EINVAL.
1044 		 *
1045 		 * to avoid failure, make sure in caller to keep length
1046 		 * aligned.
1047 		 */
1048 		alignment = get_blk_size(fd);
1049 		if (alignment == (uint64_t)-1) {
1050 			RTE_LOG(ERR, VHOST_CONFIG,
1051 				"couldn't get hugepage size through fstat\n");
1052 			goto err_mmap;
1053 		}
1054 		mmap_size = RTE_ALIGN_CEIL(mmap_size, alignment);
1055 
1056 		populate = (dev->dequeue_zero_copy) ? MAP_POPULATE : 0;
1057 		mmap_addr = mmap(NULL, mmap_size, PROT_READ | PROT_WRITE,
1058 				 MAP_SHARED | populate, fd, 0);
1059 
1060 		if (mmap_addr == MAP_FAILED) {
1061 			RTE_LOG(ERR, VHOST_CONFIG,
1062 				"mmap region %u failed.\n", i);
1063 			goto err_mmap;
1064 		}
1065 
1066 		reg->mmap_addr = mmap_addr;
1067 		reg->mmap_size = mmap_size;
1068 		reg->host_user_addr = (uint64_t)(uintptr_t)mmap_addr +
1069 				      mmap_offset;
1070 
1071 		if (dev->dequeue_zero_copy)
1072 			if (add_guest_pages(dev, reg, alignment) < 0) {
1073 				RTE_LOG(ERR, VHOST_CONFIG,
1074 					"adding guest pages to region %u failed.\n",
1075 					i);
1076 				goto err_mmap;
1077 			}
1078 
1079 		RTE_LOG(INFO, VHOST_CONFIG,
1080 			"guest memory region %u, size: 0x%" PRIx64 "\n"
1081 			"\t guest physical addr: 0x%" PRIx64 "\n"
1082 			"\t guest virtual  addr: 0x%" PRIx64 "\n"
1083 			"\t host  virtual  addr: 0x%" PRIx64 "\n"
1084 			"\t mmap addr : 0x%" PRIx64 "\n"
1085 			"\t mmap size : 0x%" PRIx64 "\n"
1086 			"\t mmap align: 0x%" PRIx64 "\n"
1087 			"\t mmap off  : 0x%" PRIx64 "\n",
1088 			i, reg->size,
1089 			reg->guest_phys_addr,
1090 			reg->guest_user_addr,
1091 			reg->host_user_addr,
1092 			(uint64_t)(uintptr_t)mmap_addr,
1093 			mmap_size,
1094 			alignment,
1095 			mmap_offset);
1096 
1097 		if (dev->postcopy_listening) {
1098 			/*
1099 			 * We haven't a better way right now than sharing
1100 			 * DPDK's virtual address with Qemu, so that Qemu can
1101 			 * retrieve the region offset when handling userfaults.
1102 			 */
1103 			memory->regions[i].userspace_addr =
1104 				reg->host_user_addr;
1105 		}
1106 	}
1107 	if (dev->postcopy_listening) {
1108 		/* Send the addresses back to qemu */
1109 		msg->fd_num = 0;
1110 		send_vhost_reply(main_fd, msg);
1111 
1112 		/* Wait for qemu to acknolwedge it's got the addresses
1113 		 * we've got to wait before we're allowed to generate faults.
1114 		 */
1115 		VhostUserMsg ack_msg;
1116 		if (read_vhost_message(main_fd, &ack_msg) <= 0) {
1117 			RTE_LOG(ERR, VHOST_CONFIG,
1118 				"Failed to read qemu ack on postcopy set-mem-table\n");
1119 			goto err_mmap;
1120 		}
1121 
1122 		if (validate_msg_fds(&ack_msg, 0) != 0)
1123 			goto err_mmap;
1124 
1125 		if (ack_msg.request.master != VHOST_USER_SET_MEM_TABLE) {
1126 			RTE_LOG(ERR, VHOST_CONFIG,
1127 				"Bad qemu ack on postcopy set-mem-table (%d)\n",
1128 				ack_msg.request.master);
1129 			goto err_mmap;
1130 		}
1131 
1132 		/* Now userfault register and we can use the memory */
1133 		for (i = 0; i < memory->nregions; i++) {
1134 #ifdef RTE_LIBRTE_VHOST_POSTCOPY
1135 			reg = &dev->mem->regions[i];
1136 			struct uffdio_register reg_struct;
1137 
1138 			/*
1139 			 * Let's register all the mmap'ed area to ensure
1140 			 * alignment on page boundary.
1141 			 */
1142 			reg_struct.range.start =
1143 				(uint64_t)(uintptr_t)reg->mmap_addr;
1144 			reg_struct.range.len = reg->mmap_size;
1145 			reg_struct.mode = UFFDIO_REGISTER_MODE_MISSING;
1146 
1147 			if (ioctl(dev->postcopy_ufd, UFFDIO_REGISTER,
1148 						&reg_struct)) {
1149 				RTE_LOG(ERR, VHOST_CONFIG,
1150 					"Failed to register ufd for region %d: (ufd = %d) %s\n",
1151 					i, dev->postcopy_ufd,
1152 					strerror(errno));
1153 				goto err_mmap;
1154 			}
1155 			RTE_LOG(INFO, VHOST_CONFIG,
1156 				"\t userfaultfd registered for range : %llx - %llx\n",
1157 				reg_struct.range.start,
1158 				reg_struct.range.start +
1159 				reg_struct.range.len - 1);
1160 #else
1161 			goto err_mmap;
1162 #endif
1163 		}
1164 	}
1165 
1166 	for (i = 0; i < dev->nr_vring; i++) {
1167 		struct vhost_virtqueue *vq = dev->virtqueue[i];
1168 
1169 		if (vq->desc || vq->avail || vq->used) {
1170 			/*
1171 			 * If the memory table got updated, the ring addresses
1172 			 * need to be translated again as virtual addresses have
1173 			 * changed.
1174 			 */
1175 			vring_invalidate(dev, vq);
1176 
1177 			dev = translate_ring_addresses(dev, i);
1178 			if (!dev) {
1179 				dev = *pdev;
1180 				goto err_mmap;
1181 			}
1182 
1183 			*pdev = dev;
1184 		}
1185 	}
1186 
1187 	dump_guest_pages(dev);
1188 
1189 	return VH_RESULT_OK;
1190 
1191 err_mmap:
1192 	free_mem_region(dev);
1193 	rte_free(dev->mem);
1194 	dev->mem = NULL;
1195 	return VH_RESULT_ERR;
1196 }
1197 
1198 static bool
1199 vq_is_ready(struct virtio_net *dev, struct vhost_virtqueue *vq)
1200 {
1201 	bool rings_ok;
1202 
1203 	if (!vq)
1204 		return false;
1205 
1206 	if (vq_is_packed(dev))
1207 		rings_ok = !!vq->desc_packed;
1208 	else
1209 		rings_ok = vq->desc && vq->avail && vq->used;
1210 
1211 	return rings_ok &&
1212 	       vq->kickfd != VIRTIO_UNINITIALIZED_EVENTFD &&
1213 	       vq->callfd != VIRTIO_UNINITIALIZED_EVENTFD;
1214 }
1215 
1216 static int
1217 virtio_is_ready(struct virtio_net *dev)
1218 {
1219 	struct vhost_virtqueue *vq;
1220 	uint32_t i;
1221 
1222 	if (dev->nr_vring == 0)
1223 		return 0;
1224 
1225 	for (i = 0; i < dev->nr_vring; i++) {
1226 		vq = dev->virtqueue[i];
1227 
1228 		if (!vq_is_ready(dev, vq))
1229 			return 0;
1230 	}
1231 
1232 	RTE_LOG(INFO, VHOST_CONFIG,
1233 		"virtio is now ready for processing.\n");
1234 	return 1;
1235 }
1236 
1237 static int
1238 vhost_user_set_vring_call(struct virtio_net **pdev, struct VhostUserMsg *msg,
1239 			int main_fd __rte_unused)
1240 {
1241 	struct virtio_net *dev = *pdev;
1242 	struct vhost_vring_file file;
1243 	struct vhost_virtqueue *vq;
1244 	int expected_fds;
1245 
1246 	expected_fds = (msg->payload.u64 & VHOST_USER_VRING_NOFD_MASK) ? 0 : 1;
1247 	if (validate_msg_fds(msg, expected_fds) != 0)
1248 		return VH_RESULT_ERR;
1249 
1250 	file.index = msg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1251 	if (msg->payload.u64 & VHOST_USER_VRING_NOFD_MASK)
1252 		file.fd = VIRTIO_INVALID_EVENTFD;
1253 	else
1254 		file.fd = msg->fds[0];
1255 	RTE_LOG(INFO, VHOST_CONFIG,
1256 		"vring call idx:%d file:%d\n", file.index, file.fd);
1257 
1258 	vq = dev->virtqueue[file.index];
1259 	if (vq->callfd >= 0)
1260 		close(vq->callfd);
1261 
1262 	vq->callfd = file.fd;
1263 
1264 	return VH_RESULT_OK;
1265 }
1266 
1267 static int vhost_user_set_vring_err(struct virtio_net **pdev __rte_unused,
1268 			struct VhostUserMsg *msg,
1269 			int main_fd __rte_unused)
1270 {
1271 	int expected_fds;
1272 
1273 	expected_fds = (msg->payload.u64 & VHOST_USER_VRING_NOFD_MASK) ? 0 : 1;
1274 	if (validate_msg_fds(msg, expected_fds) != 0)
1275 		return VH_RESULT_ERR;
1276 
1277 	if (!(msg->payload.u64 & VHOST_USER_VRING_NOFD_MASK))
1278 		close(msg->fds[0]);
1279 	RTE_LOG(INFO, VHOST_CONFIG, "not implemented\n");
1280 
1281 	return VH_RESULT_OK;
1282 }
1283 
1284 static int
1285 vhost_user_set_vring_kick(struct virtio_net **pdev, struct VhostUserMsg *msg,
1286 			int main_fd __rte_unused)
1287 {
1288 	struct virtio_net *dev = *pdev;
1289 	struct vhost_vring_file file;
1290 	struct vhost_virtqueue *vq;
1291 	int expected_fds;
1292 
1293 	expected_fds = (msg->payload.u64 & VHOST_USER_VRING_NOFD_MASK) ? 0 : 1;
1294 	if (validate_msg_fds(msg, expected_fds) != 0)
1295 		return VH_RESULT_ERR;
1296 
1297 	file.index = msg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1298 	if (msg->payload.u64 & VHOST_USER_VRING_NOFD_MASK)
1299 		file.fd = VIRTIO_INVALID_EVENTFD;
1300 	else
1301 		file.fd = msg->fds[0];
1302 	RTE_LOG(INFO, VHOST_CONFIG,
1303 		"vring kick idx:%d file:%d\n", file.index, file.fd);
1304 
1305 	/* Interpret ring addresses only when ring is started. */
1306 	dev = translate_ring_addresses(dev, file.index);
1307 	if (!dev)
1308 		return VH_RESULT_ERR;
1309 
1310 	*pdev = dev;
1311 
1312 	vq = dev->virtqueue[file.index];
1313 
1314 	/*
1315 	 * When VHOST_USER_F_PROTOCOL_FEATURES is not negotiated,
1316 	 * the ring starts already enabled. Otherwise, it is enabled via
1317 	 * the SET_VRING_ENABLE message.
1318 	 */
1319 	if (!(dev->features & (1ULL << VHOST_USER_F_PROTOCOL_FEATURES))) {
1320 		vq->enabled = 1;
1321 		if (dev->notify_ops->vring_state_changed)
1322 			dev->notify_ops->vring_state_changed(
1323 				dev->vid, file.index, 1);
1324 	}
1325 
1326 	if (vq->kickfd >= 0)
1327 		close(vq->kickfd);
1328 	vq->kickfd = file.fd;
1329 
1330 	return VH_RESULT_OK;
1331 }
1332 
1333 static void
1334 free_zmbufs(struct vhost_virtqueue *vq)
1335 {
1336 	drain_zmbuf_list(vq);
1337 
1338 	rte_free(vq->zmbufs);
1339 }
1340 
1341 /*
1342  * when virtio is stopped, qemu will send us the GET_VRING_BASE message.
1343  */
1344 static int
1345 vhost_user_get_vring_base(struct virtio_net **pdev,
1346 			struct VhostUserMsg *msg,
1347 			int main_fd __rte_unused)
1348 {
1349 	struct virtio_net *dev = *pdev;
1350 	struct vhost_virtqueue *vq = dev->virtqueue[msg->payload.state.index];
1351 	uint64_t val;
1352 
1353 	if (validate_msg_fds(msg, 0) != 0)
1354 		return VH_RESULT_ERR;
1355 
1356 	/* We have to stop the queue (virtio) if it is running. */
1357 	vhost_destroy_device_notify(dev);
1358 
1359 	dev->flags &= ~VIRTIO_DEV_READY;
1360 	dev->flags &= ~VIRTIO_DEV_VDPA_CONFIGURED;
1361 
1362 	/* Here we are safe to get the indexes */
1363 	if (vq_is_packed(dev)) {
1364 		/*
1365 		 * Bit[0:14]: avail index
1366 		 * Bit[15]: avail wrap counter
1367 		 */
1368 		val = vq->last_avail_idx & 0x7fff;
1369 		val |= vq->avail_wrap_counter << 15;
1370 		msg->payload.state.num = val;
1371 	} else {
1372 		msg->payload.state.num = vq->last_avail_idx;
1373 	}
1374 
1375 	RTE_LOG(INFO, VHOST_CONFIG,
1376 		"vring base idx:%d file:%d\n", msg->payload.state.index,
1377 		msg->payload.state.num);
1378 	/*
1379 	 * Based on current qemu vhost-user implementation, this message is
1380 	 * sent and only sent in vhost_vring_stop.
1381 	 * TODO: cleanup the vring, it isn't usable since here.
1382 	 */
1383 	if (vq->kickfd >= 0)
1384 		close(vq->kickfd);
1385 
1386 	vq->kickfd = VIRTIO_UNINITIALIZED_EVENTFD;
1387 
1388 	if (vq->callfd >= 0)
1389 		close(vq->callfd);
1390 
1391 	vq->callfd = VIRTIO_UNINITIALIZED_EVENTFD;
1392 
1393 	vq->signalled_used_valid = false;
1394 
1395 	if (dev->dequeue_zero_copy)
1396 		free_zmbufs(vq);
1397 	if (vq_is_packed(dev)) {
1398 		rte_free(vq->shadow_used_packed);
1399 		vq->shadow_used_packed = NULL;
1400 	} else {
1401 		rte_free(vq->shadow_used_split);
1402 		vq->shadow_used_split = NULL;
1403 	}
1404 
1405 	rte_free(vq->batch_copy_elems);
1406 	vq->batch_copy_elems = NULL;
1407 
1408 	msg->size = sizeof(msg->payload.state);
1409 	msg->fd_num = 0;
1410 
1411 	return VH_RESULT_REPLY;
1412 }
1413 
1414 /*
1415  * when virtio queues are ready to work, qemu will send us to
1416  * enable the virtio queue pair.
1417  */
1418 static int
1419 vhost_user_set_vring_enable(struct virtio_net **pdev,
1420 			struct VhostUserMsg *msg,
1421 			int main_fd __rte_unused)
1422 {
1423 	struct virtio_net *dev = *pdev;
1424 	int enable = (int)msg->payload.state.num;
1425 	int index = (int)msg->payload.state.index;
1426 	struct rte_vdpa_device *vdpa_dev;
1427 	int did = -1;
1428 
1429 	if (validate_msg_fds(msg, 0) != 0)
1430 		return VH_RESULT_ERR;
1431 
1432 	RTE_LOG(INFO, VHOST_CONFIG,
1433 		"set queue enable: %d to qp idx: %d\n",
1434 		enable, index);
1435 
1436 	did = dev->vdpa_dev_id;
1437 	vdpa_dev = rte_vdpa_get_device(did);
1438 	if (vdpa_dev && vdpa_dev->ops->set_vring_state)
1439 		vdpa_dev->ops->set_vring_state(dev->vid, index, enable);
1440 
1441 	if (dev->notify_ops->vring_state_changed)
1442 		dev->notify_ops->vring_state_changed(dev->vid,
1443 				index, enable);
1444 
1445 	/* On disable, rings have to be stopped being processed. */
1446 	if (!enable && dev->dequeue_zero_copy)
1447 		drain_zmbuf_list(dev->virtqueue[index]);
1448 
1449 	dev->virtqueue[index]->enabled = enable;
1450 
1451 	return VH_RESULT_OK;
1452 }
1453 
1454 static int
1455 vhost_user_get_protocol_features(struct virtio_net **pdev,
1456 			struct VhostUserMsg *msg,
1457 			int main_fd __rte_unused)
1458 {
1459 	struct virtio_net *dev = *pdev;
1460 	uint64_t features, protocol_features;
1461 
1462 	if (validate_msg_fds(msg, 0) != 0)
1463 		return VH_RESULT_ERR;
1464 
1465 	rte_vhost_driver_get_features(dev->ifname, &features);
1466 	rte_vhost_driver_get_protocol_features(dev->ifname, &protocol_features);
1467 
1468 	/*
1469 	 * REPLY_ACK protocol feature is only mandatory for now
1470 	 * for IOMMU feature. If IOMMU is explicitly disabled by the
1471 	 * application, disable also REPLY_ACK feature for older buggy
1472 	 * Qemu versions (from v2.7.0 to v2.9.0).
1473 	 */
1474 	if (!(features & (1ULL << VIRTIO_F_IOMMU_PLATFORM)))
1475 		protocol_features &= ~(1ULL << VHOST_USER_PROTOCOL_F_REPLY_ACK);
1476 
1477 	msg->payload.u64 = protocol_features;
1478 	msg->size = sizeof(msg->payload.u64);
1479 	msg->fd_num = 0;
1480 
1481 	return VH_RESULT_REPLY;
1482 }
1483 
1484 static int
1485 vhost_user_set_protocol_features(struct virtio_net **pdev,
1486 			struct VhostUserMsg *msg,
1487 			int main_fd __rte_unused)
1488 {
1489 	struct virtio_net *dev = *pdev;
1490 	uint64_t protocol_features = msg->payload.u64;
1491 	uint64_t slave_protocol_features = 0;
1492 
1493 	if (validate_msg_fds(msg, 0) != 0)
1494 		return VH_RESULT_ERR;
1495 
1496 	rte_vhost_driver_get_protocol_features(dev->ifname,
1497 			&slave_protocol_features);
1498 	if (protocol_features & ~slave_protocol_features) {
1499 		RTE_LOG(ERR, VHOST_CONFIG,
1500 			"(%d) received invalid protocol features.\n",
1501 			dev->vid);
1502 		return VH_RESULT_ERR;
1503 	}
1504 
1505 	dev->protocol_features = protocol_features;
1506 
1507 	return VH_RESULT_OK;
1508 }
1509 
1510 static int
1511 vhost_user_set_log_base(struct virtio_net **pdev, struct VhostUserMsg *msg,
1512 			int main_fd __rte_unused)
1513 {
1514 	struct virtio_net *dev = *pdev;
1515 	int fd = msg->fds[0];
1516 	uint64_t size, off;
1517 	void *addr;
1518 
1519 	if (validate_msg_fds(msg, 1) != 0)
1520 		return VH_RESULT_ERR;
1521 
1522 	if (fd < 0) {
1523 		RTE_LOG(ERR, VHOST_CONFIG, "invalid log fd: %d\n", fd);
1524 		return VH_RESULT_ERR;
1525 	}
1526 
1527 	if (msg->size != sizeof(VhostUserLog)) {
1528 		RTE_LOG(ERR, VHOST_CONFIG,
1529 			"invalid log base msg size: %"PRId32" != %d\n",
1530 			msg->size, (int)sizeof(VhostUserLog));
1531 		return VH_RESULT_ERR;
1532 	}
1533 
1534 	size = msg->payload.log.mmap_size;
1535 	off  = msg->payload.log.mmap_offset;
1536 
1537 	/* Don't allow mmap_offset to point outside the mmap region */
1538 	if (off > size) {
1539 		RTE_LOG(ERR, VHOST_CONFIG,
1540 			"log offset %#"PRIx64" exceeds log size %#"PRIx64"\n",
1541 			off, size);
1542 		return VH_RESULT_ERR;
1543 	}
1544 
1545 	RTE_LOG(INFO, VHOST_CONFIG,
1546 		"log mmap size: %"PRId64", offset: %"PRId64"\n",
1547 		size, off);
1548 
1549 	/*
1550 	 * mmap from 0 to workaround a hugepage mmap bug: mmap will
1551 	 * fail when offset is not page size aligned.
1552 	 */
1553 	addr = mmap(0, size + off, PROT_READ | PROT_WRITE, MAP_SHARED, fd, 0);
1554 	close(fd);
1555 	if (addr == MAP_FAILED) {
1556 		RTE_LOG(ERR, VHOST_CONFIG, "mmap log base failed!\n");
1557 		return VH_RESULT_ERR;
1558 	}
1559 
1560 	/*
1561 	 * Free previously mapped log memory on occasionally
1562 	 * multiple VHOST_USER_SET_LOG_BASE.
1563 	 */
1564 	if (dev->log_addr) {
1565 		munmap((void *)(uintptr_t)dev->log_addr, dev->log_size);
1566 	}
1567 	dev->log_addr = (uint64_t)(uintptr_t)addr;
1568 	dev->log_base = dev->log_addr + off;
1569 	dev->log_size = size;
1570 
1571 	/*
1572 	 * The spec is not clear about it (yet), but QEMU doesn't expect
1573 	 * any payload in the reply.
1574 	 */
1575 	msg->size = 0;
1576 	msg->fd_num = 0;
1577 
1578 	return VH_RESULT_REPLY;
1579 }
1580 
1581 static int vhost_user_set_log_fd(struct virtio_net **pdev __rte_unused,
1582 			struct VhostUserMsg *msg,
1583 			int main_fd __rte_unused)
1584 {
1585 	if (validate_msg_fds(msg, 1) != 0)
1586 		return VH_RESULT_ERR;
1587 
1588 	close(msg->fds[0]);
1589 	RTE_LOG(INFO, VHOST_CONFIG, "not implemented.\n");
1590 
1591 	return VH_RESULT_OK;
1592 }
1593 
1594 /*
1595  * An rarp packet is constructed and broadcasted to notify switches about
1596  * the new location of the migrated VM, so that packets from outside will
1597  * not be lost after migration.
1598  *
1599  * However, we don't actually "send" a rarp packet here, instead, we set
1600  * a flag 'broadcast_rarp' to let rte_vhost_dequeue_burst() inject it.
1601  */
1602 static int
1603 vhost_user_send_rarp(struct virtio_net **pdev, struct VhostUserMsg *msg,
1604 			int main_fd __rte_unused)
1605 {
1606 	struct virtio_net *dev = *pdev;
1607 	uint8_t *mac = (uint8_t *)&msg->payload.u64;
1608 	struct rte_vdpa_device *vdpa_dev;
1609 	int did = -1;
1610 
1611 	if (validate_msg_fds(msg, 0) != 0)
1612 		return VH_RESULT_ERR;
1613 
1614 	RTE_LOG(DEBUG, VHOST_CONFIG,
1615 		":: mac: %02x:%02x:%02x:%02x:%02x:%02x\n",
1616 		mac[0], mac[1], mac[2], mac[3], mac[4], mac[5]);
1617 	memcpy(dev->mac.addr_bytes, mac, 6);
1618 
1619 	/*
1620 	 * Set the flag to inject a RARP broadcast packet at
1621 	 * rte_vhost_dequeue_burst().
1622 	 *
1623 	 * rte_smp_wmb() is for making sure the mac is copied
1624 	 * before the flag is set.
1625 	 */
1626 	rte_smp_wmb();
1627 	rte_atomic16_set(&dev->broadcast_rarp, 1);
1628 	did = dev->vdpa_dev_id;
1629 	vdpa_dev = rte_vdpa_get_device(did);
1630 	if (vdpa_dev && vdpa_dev->ops->migration_done)
1631 		vdpa_dev->ops->migration_done(dev->vid);
1632 
1633 	return VH_RESULT_OK;
1634 }
1635 
1636 static int
1637 vhost_user_net_set_mtu(struct virtio_net **pdev, struct VhostUserMsg *msg,
1638 			int main_fd __rte_unused)
1639 {
1640 	struct virtio_net *dev = *pdev;
1641 
1642 	if (validate_msg_fds(msg, 0) != 0)
1643 		return VH_RESULT_ERR;
1644 
1645 	if (msg->payload.u64 < VIRTIO_MIN_MTU ||
1646 			msg->payload.u64 > VIRTIO_MAX_MTU) {
1647 		RTE_LOG(ERR, VHOST_CONFIG, "Invalid MTU size (%"PRIu64")\n",
1648 				msg->payload.u64);
1649 
1650 		return VH_RESULT_ERR;
1651 	}
1652 
1653 	dev->mtu = msg->payload.u64;
1654 
1655 	return VH_RESULT_OK;
1656 }
1657 
1658 static int
1659 vhost_user_set_req_fd(struct virtio_net **pdev, struct VhostUserMsg *msg,
1660 			int main_fd __rte_unused)
1661 {
1662 	struct virtio_net *dev = *pdev;
1663 	int fd = msg->fds[0];
1664 
1665 	if (validate_msg_fds(msg, 1) != 0)
1666 		return VH_RESULT_ERR;
1667 
1668 	if (fd < 0) {
1669 		RTE_LOG(ERR, VHOST_CONFIG,
1670 				"Invalid file descriptor for slave channel (%d)\n",
1671 				fd);
1672 		return VH_RESULT_ERR;
1673 	}
1674 
1675 	dev->slave_req_fd = fd;
1676 
1677 	return VH_RESULT_OK;
1678 }
1679 
1680 static int
1681 is_vring_iotlb_update(struct vhost_virtqueue *vq, struct vhost_iotlb_msg *imsg)
1682 {
1683 	struct vhost_vring_addr *ra;
1684 	uint64_t start, end;
1685 
1686 	start = imsg->iova;
1687 	end = start + imsg->size;
1688 
1689 	ra = &vq->ring_addrs;
1690 	if (ra->desc_user_addr >= start && ra->desc_user_addr < end)
1691 		return 1;
1692 	if (ra->avail_user_addr >= start && ra->avail_user_addr < end)
1693 		return 1;
1694 	if (ra->used_user_addr >= start && ra->used_user_addr < end)
1695 		return 1;
1696 
1697 	return 0;
1698 }
1699 
1700 static int
1701 is_vring_iotlb_invalidate(struct vhost_virtqueue *vq,
1702 				struct vhost_iotlb_msg *imsg)
1703 {
1704 	uint64_t istart, iend, vstart, vend;
1705 
1706 	istart = imsg->iova;
1707 	iend = istart + imsg->size - 1;
1708 
1709 	vstart = (uintptr_t)vq->desc;
1710 	vend = vstart + sizeof(struct vring_desc) * vq->size - 1;
1711 	if (vstart <= iend && istart <= vend)
1712 		return 1;
1713 
1714 	vstart = (uintptr_t)vq->avail;
1715 	vend = vstart + sizeof(struct vring_avail);
1716 	vend += sizeof(uint16_t) * vq->size - 1;
1717 	if (vstart <= iend && istart <= vend)
1718 		return 1;
1719 
1720 	vstart = (uintptr_t)vq->used;
1721 	vend = vstart + sizeof(struct vring_used);
1722 	vend += sizeof(struct vring_used_elem) * vq->size - 1;
1723 	if (vstart <= iend && istart <= vend)
1724 		return 1;
1725 
1726 	return 0;
1727 }
1728 
1729 static int
1730 vhost_user_iotlb_msg(struct virtio_net **pdev, struct VhostUserMsg *msg,
1731 			int main_fd __rte_unused)
1732 {
1733 	struct virtio_net *dev = *pdev;
1734 	struct vhost_iotlb_msg *imsg = &msg->payload.iotlb;
1735 	uint16_t i;
1736 	uint64_t vva, len;
1737 
1738 	if (validate_msg_fds(msg, 0) != 0)
1739 		return VH_RESULT_ERR;
1740 
1741 	switch (imsg->type) {
1742 	case VHOST_IOTLB_UPDATE:
1743 		len = imsg->size;
1744 		vva = qva_to_vva(dev, imsg->uaddr, &len);
1745 		if (!vva)
1746 			return VH_RESULT_ERR;
1747 
1748 		for (i = 0; i < dev->nr_vring; i++) {
1749 			struct vhost_virtqueue *vq = dev->virtqueue[i];
1750 
1751 			vhost_user_iotlb_cache_insert(vq, imsg->iova, vva,
1752 					len, imsg->perm);
1753 
1754 			if (is_vring_iotlb_update(vq, imsg))
1755 				*pdev = dev = translate_ring_addresses(dev, i);
1756 		}
1757 		break;
1758 	case VHOST_IOTLB_INVALIDATE:
1759 		for (i = 0; i < dev->nr_vring; i++) {
1760 			struct vhost_virtqueue *vq = dev->virtqueue[i];
1761 
1762 			vhost_user_iotlb_cache_remove(vq, imsg->iova,
1763 					imsg->size);
1764 
1765 			if (is_vring_iotlb_invalidate(vq, imsg))
1766 				vring_invalidate(dev, vq);
1767 		}
1768 		break;
1769 	default:
1770 		RTE_LOG(ERR, VHOST_CONFIG, "Invalid IOTLB message type (%d)\n",
1771 				imsg->type);
1772 		return VH_RESULT_ERR;
1773 	}
1774 
1775 	return VH_RESULT_OK;
1776 }
1777 
1778 static int
1779 vhost_user_set_postcopy_advise(struct virtio_net **pdev,
1780 			struct VhostUserMsg *msg,
1781 			int main_fd __rte_unused)
1782 {
1783 	struct virtio_net *dev = *pdev;
1784 #ifdef RTE_LIBRTE_VHOST_POSTCOPY
1785 	struct uffdio_api api_struct;
1786 
1787 	if (validate_msg_fds(msg, 0) != 0)
1788 		return VH_RESULT_ERR;
1789 
1790 	dev->postcopy_ufd = syscall(__NR_userfaultfd, O_CLOEXEC | O_NONBLOCK);
1791 
1792 	if (dev->postcopy_ufd == -1) {
1793 		RTE_LOG(ERR, VHOST_CONFIG, "Userfaultfd not available: %s\n",
1794 			strerror(errno));
1795 		return VH_RESULT_ERR;
1796 	}
1797 	api_struct.api = UFFD_API;
1798 	api_struct.features = 0;
1799 	if (ioctl(dev->postcopy_ufd, UFFDIO_API, &api_struct)) {
1800 		RTE_LOG(ERR, VHOST_CONFIG, "UFFDIO_API ioctl failure: %s\n",
1801 			strerror(errno));
1802 		close(dev->postcopy_ufd);
1803 		dev->postcopy_ufd = -1;
1804 		return VH_RESULT_ERR;
1805 	}
1806 	msg->fds[0] = dev->postcopy_ufd;
1807 	msg->fd_num = 1;
1808 
1809 	return VH_RESULT_REPLY;
1810 #else
1811 	dev->postcopy_ufd = -1;
1812 	msg->fd_num = 0;
1813 
1814 	return VH_RESULT_ERR;
1815 #endif
1816 }
1817 
1818 static int
1819 vhost_user_set_postcopy_listen(struct virtio_net **pdev,
1820 			struct VhostUserMsg *msg __rte_unused,
1821 			int main_fd __rte_unused)
1822 {
1823 	struct virtio_net *dev = *pdev;
1824 
1825 	if (validate_msg_fds(msg, 0) != 0)
1826 		return VH_RESULT_ERR;
1827 
1828 	if (dev->mem && dev->mem->nregions) {
1829 		RTE_LOG(ERR, VHOST_CONFIG,
1830 			"Regions already registered at postcopy-listen\n");
1831 		return VH_RESULT_ERR;
1832 	}
1833 	dev->postcopy_listening = 1;
1834 
1835 	return VH_RESULT_OK;
1836 }
1837 
1838 static int
1839 vhost_user_postcopy_end(struct virtio_net **pdev, struct VhostUserMsg *msg,
1840 			int main_fd __rte_unused)
1841 {
1842 	struct virtio_net *dev = *pdev;
1843 
1844 	if (validate_msg_fds(msg, 0) != 0)
1845 		return VH_RESULT_ERR;
1846 
1847 	dev->postcopy_listening = 0;
1848 	if (dev->postcopy_ufd >= 0) {
1849 		close(dev->postcopy_ufd);
1850 		dev->postcopy_ufd = -1;
1851 	}
1852 
1853 	msg->payload.u64 = 0;
1854 	msg->size = sizeof(msg->payload.u64);
1855 	msg->fd_num = 0;
1856 
1857 	return VH_RESULT_REPLY;
1858 }
1859 
1860 typedef int (*vhost_message_handler_t)(struct virtio_net **pdev,
1861 					struct VhostUserMsg *msg,
1862 					int main_fd);
1863 static vhost_message_handler_t vhost_message_handlers[VHOST_USER_MAX] = {
1864 	[VHOST_USER_NONE] = NULL,
1865 	[VHOST_USER_GET_FEATURES] = vhost_user_get_features,
1866 	[VHOST_USER_SET_FEATURES] = vhost_user_set_features,
1867 	[VHOST_USER_SET_OWNER] = vhost_user_set_owner,
1868 	[VHOST_USER_RESET_OWNER] = vhost_user_reset_owner,
1869 	[VHOST_USER_SET_MEM_TABLE] = vhost_user_set_mem_table,
1870 	[VHOST_USER_SET_LOG_BASE] = vhost_user_set_log_base,
1871 	[VHOST_USER_SET_LOG_FD] = vhost_user_set_log_fd,
1872 	[VHOST_USER_SET_VRING_NUM] = vhost_user_set_vring_num,
1873 	[VHOST_USER_SET_VRING_ADDR] = vhost_user_set_vring_addr,
1874 	[VHOST_USER_SET_VRING_BASE] = vhost_user_set_vring_base,
1875 	[VHOST_USER_GET_VRING_BASE] = vhost_user_get_vring_base,
1876 	[VHOST_USER_SET_VRING_KICK] = vhost_user_set_vring_kick,
1877 	[VHOST_USER_SET_VRING_CALL] = vhost_user_set_vring_call,
1878 	[VHOST_USER_SET_VRING_ERR] = vhost_user_set_vring_err,
1879 	[VHOST_USER_GET_PROTOCOL_FEATURES] = vhost_user_get_protocol_features,
1880 	[VHOST_USER_SET_PROTOCOL_FEATURES] = vhost_user_set_protocol_features,
1881 	[VHOST_USER_GET_QUEUE_NUM] = vhost_user_get_queue_num,
1882 	[VHOST_USER_SET_VRING_ENABLE] = vhost_user_set_vring_enable,
1883 	[VHOST_USER_SEND_RARP] = vhost_user_send_rarp,
1884 	[VHOST_USER_NET_SET_MTU] = vhost_user_net_set_mtu,
1885 	[VHOST_USER_SET_SLAVE_REQ_FD] = vhost_user_set_req_fd,
1886 	[VHOST_USER_IOTLB_MSG] = vhost_user_iotlb_msg,
1887 	[VHOST_USER_POSTCOPY_ADVISE] = vhost_user_set_postcopy_advise,
1888 	[VHOST_USER_POSTCOPY_LISTEN] = vhost_user_set_postcopy_listen,
1889 	[VHOST_USER_POSTCOPY_END] = vhost_user_postcopy_end,
1890 };
1891 
1892 
1893 /* return bytes# of read on success or negative val on failure. */
1894 static int
1895 read_vhost_message(int sockfd, struct VhostUserMsg *msg)
1896 {
1897 	int ret;
1898 
1899 	ret = read_fd_message(sockfd, (char *)msg, VHOST_USER_HDR_SIZE,
1900 		msg->fds, VHOST_MEMORY_MAX_NREGIONS, &msg->fd_num);
1901 	if (ret <= 0)
1902 		return ret;
1903 
1904 	if (msg->size) {
1905 		if (msg->size > sizeof(msg->payload)) {
1906 			RTE_LOG(ERR, VHOST_CONFIG,
1907 				"invalid msg size: %d\n", msg->size);
1908 			return -1;
1909 		}
1910 		ret = read(sockfd, &msg->payload, msg->size);
1911 		if (ret <= 0)
1912 			return ret;
1913 		if (ret != (int)msg->size) {
1914 			RTE_LOG(ERR, VHOST_CONFIG,
1915 				"read control message failed\n");
1916 			return -1;
1917 		}
1918 	}
1919 
1920 	return ret;
1921 }
1922 
1923 static int
1924 send_vhost_message(int sockfd, struct VhostUserMsg *msg)
1925 {
1926 	if (!msg)
1927 		return 0;
1928 
1929 	return send_fd_message(sockfd, (char *)msg,
1930 		VHOST_USER_HDR_SIZE + msg->size, msg->fds, msg->fd_num);
1931 }
1932 
1933 static int
1934 send_vhost_reply(int sockfd, struct VhostUserMsg *msg)
1935 {
1936 	if (!msg)
1937 		return 0;
1938 
1939 	msg->flags &= ~VHOST_USER_VERSION_MASK;
1940 	msg->flags &= ~VHOST_USER_NEED_REPLY;
1941 	msg->flags |= VHOST_USER_VERSION;
1942 	msg->flags |= VHOST_USER_REPLY_MASK;
1943 
1944 	return send_vhost_message(sockfd, msg);
1945 }
1946 
1947 static int
1948 send_vhost_slave_message(struct virtio_net *dev, struct VhostUserMsg *msg)
1949 {
1950 	int ret;
1951 
1952 	if (msg->flags & VHOST_USER_NEED_REPLY)
1953 		rte_spinlock_lock(&dev->slave_req_lock);
1954 
1955 	ret = send_vhost_message(dev->slave_req_fd, msg);
1956 	if (ret < 0 && (msg->flags & VHOST_USER_NEED_REPLY))
1957 		rte_spinlock_unlock(&dev->slave_req_lock);
1958 
1959 	return ret;
1960 }
1961 
1962 /*
1963  * Allocate a queue pair if it hasn't been allocated yet
1964  */
1965 static int
1966 vhost_user_check_and_alloc_queue_pair(struct virtio_net *dev,
1967 			struct VhostUserMsg *msg)
1968 {
1969 	uint16_t vring_idx;
1970 
1971 	switch (msg->request.master) {
1972 	case VHOST_USER_SET_VRING_KICK:
1973 	case VHOST_USER_SET_VRING_CALL:
1974 	case VHOST_USER_SET_VRING_ERR:
1975 		vring_idx = msg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1976 		break;
1977 	case VHOST_USER_SET_VRING_NUM:
1978 	case VHOST_USER_SET_VRING_BASE:
1979 	case VHOST_USER_SET_VRING_ENABLE:
1980 		vring_idx = msg->payload.state.index;
1981 		break;
1982 	case VHOST_USER_SET_VRING_ADDR:
1983 		vring_idx = msg->payload.addr.index;
1984 		break;
1985 	default:
1986 		return 0;
1987 	}
1988 
1989 	if (vring_idx >= VHOST_MAX_VRING) {
1990 		RTE_LOG(ERR, VHOST_CONFIG,
1991 			"invalid vring index: %u\n", vring_idx);
1992 		return -1;
1993 	}
1994 
1995 	if (dev->virtqueue[vring_idx])
1996 		return 0;
1997 
1998 	return alloc_vring_queue(dev, vring_idx);
1999 }
2000 
2001 static void
2002 vhost_user_lock_all_queue_pairs(struct virtio_net *dev)
2003 {
2004 	unsigned int i = 0;
2005 	unsigned int vq_num = 0;
2006 
2007 	while (vq_num < dev->nr_vring) {
2008 		struct vhost_virtqueue *vq = dev->virtqueue[i];
2009 
2010 		if (vq) {
2011 			rte_spinlock_lock(&vq->access_lock);
2012 			vq_num++;
2013 		}
2014 		i++;
2015 	}
2016 }
2017 
2018 static void
2019 vhost_user_unlock_all_queue_pairs(struct virtio_net *dev)
2020 {
2021 	unsigned int i = 0;
2022 	unsigned int vq_num = 0;
2023 
2024 	while (vq_num < dev->nr_vring) {
2025 		struct vhost_virtqueue *vq = dev->virtqueue[i];
2026 
2027 		if (vq) {
2028 			rte_spinlock_unlock(&vq->access_lock);
2029 			vq_num++;
2030 		}
2031 		i++;
2032 	}
2033 }
2034 
2035 int
2036 vhost_user_msg_handler(int vid, int fd)
2037 {
2038 	struct virtio_net *dev;
2039 	struct VhostUserMsg msg;
2040 	struct rte_vdpa_device *vdpa_dev;
2041 	int did = -1;
2042 	int ret;
2043 	int unlock_required = 0;
2044 	uint32_t skip_master = 0;
2045 	int request;
2046 
2047 	dev = get_device(vid);
2048 	if (dev == NULL)
2049 		return -1;
2050 
2051 	if (!dev->notify_ops) {
2052 		dev->notify_ops = vhost_driver_callback_get(dev->ifname);
2053 		if (!dev->notify_ops) {
2054 			RTE_LOG(ERR, VHOST_CONFIG,
2055 				"failed to get callback ops for driver %s\n",
2056 				dev->ifname);
2057 			return -1;
2058 		}
2059 	}
2060 
2061 	ret = read_vhost_message(fd, &msg);
2062 	if (ret <= 0 || msg.request.master >= VHOST_USER_MAX) {
2063 		if (ret < 0)
2064 			RTE_LOG(ERR, VHOST_CONFIG,
2065 				"vhost read message failed\n");
2066 		else if (ret == 0)
2067 			RTE_LOG(INFO, VHOST_CONFIG,
2068 				"vhost peer closed\n");
2069 		else
2070 			RTE_LOG(ERR, VHOST_CONFIG,
2071 				"vhost read incorrect message\n");
2072 
2073 		return -1;
2074 	}
2075 
2076 	ret = 0;
2077 	if (msg.request.master != VHOST_USER_IOTLB_MSG)
2078 		RTE_LOG(INFO, VHOST_CONFIG, "read message %s\n",
2079 			vhost_message_str[msg.request.master]);
2080 	else
2081 		RTE_LOG(DEBUG, VHOST_CONFIG, "read message %s\n",
2082 			vhost_message_str[msg.request.master]);
2083 
2084 	ret = vhost_user_check_and_alloc_queue_pair(dev, &msg);
2085 	if (ret < 0) {
2086 		RTE_LOG(ERR, VHOST_CONFIG,
2087 			"failed to alloc queue\n");
2088 		return -1;
2089 	}
2090 
2091 	/*
2092 	 * Note: we don't lock all queues on VHOST_USER_GET_VRING_BASE
2093 	 * and VHOST_USER_RESET_OWNER, since it is sent when virtio stops
2094 	 * and device is destroyed. destroy_device waits for queues to be
2095 	 * inactive, so it is safe. Otherwise taking the access_lock
2096 	 * would cause a dead lock.
2097 	 */
2098 	switch (msg.request.master) {
2099 	case VHOST_USER_SET_FEATURES:
2100 	case VHOST_USER_SET_PROTOCOL_FEATURES:
2101 	case VHOST_USER_SET_OWNER:
2102 	case VHOST_USER_SET_MEM_TABLE:
2103 	case VHOST_USER_SET_LOG_BASE:
2104 	case VHOST_USER_SET_LOG_FD:
2105 	case VHOST_USER_SET_VRING_NUM:
2106 	case VHOST_USER_SET_VRING_ADDR:
2107 	case VHOST_USER_SET_VRING_BASE:
2108 	case VHOST_USER_SET_VRING_KICK:
2109 	case VHOST_USER_SET_VRING_CALL:
2110 	case VHOST_USER_SET_VRING_ERR:
2111 	case VHOST_USER_SET_VRING_ENABLE:
2112 	case VHOST_USER_SEND_RARP:
2113 	case VHOST_USER_NET_SET_MTU:
2114 	case VHOST_USER_SET_SLAVE_REQ_FD:
2115 		vhost_user_lock_all_queue_pairs(dev);
2116 		unlock_required = 1;
2117 		break;
2118 	default:
2119 		break;
2120 
2121 	}
2122 
2123 	if (dev->extern_ops.pre_msg_handle) {
2124 		ret = (*dev->extern_ops.pre_msg_handle)(dev->vid,
2125 				(void *)&msg, &skip_master);
2126 		if (ret == VH_RESULT_ERR)
2127 			goto skip_to_reply;
2128 		else if (ret == VH_RESULT_REPLY)
2129 			send_vhost_reply(fd, &msg);
2130 
2131 		if (skip_master)
2132 			goto skip_to_post_handle;
2133 	}
2134 
2135 	request = msg.request.master;
2136 	if (request > VHOST_USER_NONE && request < VHOST_USER_MAX) {
2137 		if (!vhost_message_handlers[request])
2138 			goto skip_to_post_handle;
2139 		ret = vhost_message_handlers[request](&dev, &msg, fd);
2140 
2141 		switch (ret) {
2142 		case VH_RESULT_ERR:
2143 			RTE_LOG(ERR, VHOST_CONFIG,
2144 				"Processing %s failed.\n",
2145 				vhost_message_str[request]);
2146 			break;
2147 		case VH_RESULT_OK:
2148 			RTE_LOG(DEBUG, VHOST_CONFIG,
2149 				"Processing %s succeeded.\n",
2150 				vhost_message_str[request]);
2151 			break;
2152 		case VH_RESULT_REPLY:
2153 			RTE_LOG(DEBUG, VHOST_CONFIG,
2154 				"Processing %s succeeded and needs reply.\n",
2155 				vhost_message_str[request]);
2156 			send_vhost_reply(fd, &msg);
2157 			break;
2158 		}
2159 	} else {
2160 		RTE_LOG(ERR, VHOST_CONFIG,
2161 			"Requested invalid message type %d.\n", request);
2162 		ret = VH_RESULT_ERR;
2163 	}
2164 
2165 skip_to_post_handle:
2166 	if (ret != VH_RESULT_ERR && dev->extern_ops.post_msg_handle) {
2167 		ret = (*dev->extern_ops.post_msg_handle)(
2168 				dev->vid, (void *)&msg);
2169 		if (ret == VH_RESULT_ERR)
2170 			goto skip_to_reply;
2171 		else if (ret == VH_RESULT_REPLY)
2172 			send_vhost_reply(fd, &msg);
2173 	}
2174 
2175 skip_to_reply:
2176 	if (unlock_required)
2177 		vhost_user_unlock_all_queue_pairs(dev);
2178 
2179 	/*
2180 	 * If the request required a reply that was already sent,
2181 	 * this optional reply-ack won't be sent as the
2182 	 * VHOST_USER_NEED_REPLY was cleared in send_vhost_reply().
2183 	 */
2184 	if (msg.flags & VHOST_USER_NEED_REPLY) {
2185 		msg.payload.u64 = ret == VH_RESULT_ERR;
2186 		msg.size = sizeof(msg.payload.u64);
2187 		msg.fd_num = 0;
2188 		send_vhost_reply(fd, &msg);
2189 	} else if (ret == VH_RESULT_ERR) {
2190 		RTE_LOG(ERR, VHOST_CONFIG,
2191 			"vhost message handling failed.\n");
2192 		return -1;
2193 	}
2194 
2195 	if (!(dev->flags & VIRTIO_DEV_RUNNING) && virtio_is_ready(dev)) {
2196 		dev->flags |= VIRTIO_DEV_READY;
2197 
2198 		if (!(dev->flags & VIRTIO_DEV_RUNNING)) {
2199 			if (dev->dequeue_zero_copy) {
2200 				RTE_LOG(INFO, VHOST_CONFIG,
2201 						"dequeue zero copy is enabled\n");
2202 			}
2203 
2204 			if (dev->notify_ops->new_device(dev->vid) == 0)
2205 				dev->flags |= VIRTIO_DEV_RUNNING;
2206 		}
2207 	}
2208 
2209 	did = dev->vdpa_dev_id;
2210 	vdpa_dev = rte_vdpa_get_device(did);
2211 	if (vdpa_dev && virtio_is_ready(dev) &&
2212 			!(dev->flags & VIRTIO_DEV_VDPA_CONFIGURED) &&
2213 			msg.request.master == VHOST_USER_SET_VRING_ENABLE) {
2214 		if (vdpa_dev->ops->dev_conf)
2215 			vdpa_dev->ops->dev_conf(dev->vid);
2216 		dev->flags |= VIRTIO_DEV_VDPA_CONFIGURED;
2217 		if (vhost_user_host_notifier_ctrl(dev->vid, true) != 0) {
2218 			RTE_LOG(INFO, VHOST_CONFIG,
2219 				"(%d) software relay is used for vDPA, performance may be low.\n",
2220 				dev->vid);
2221 		}
2222 	}
2223 
2224 	return 0;
2225 }
2226 
2227 static int process_slave_message_reply(struct virtio_net *dev,
2228 				       const struct VhostUserMsg *msg)
2229 {
2230 	struct VhostUserMsg msg_reply;
2231 	int ret;
2232 
2233 	if ((msg->flags & VHOST_USER_NEED_REPLY) == 0)
2234 		return 0;
2235 
2236 	if (read_vhost_message(dev->slave_req_fd, &msg_reply) < 0) {
2237 		ret = -1;
2238 		goto out;
2239 	}
2240 
2241 	if (msg_reply.request.slave != msg->request.slave) {
2242 		RTE_LOG(ERR, VHOST_CONFIG,
2243 			"Received unexpected msg type (%u), expected %u\n",
2244 			msg_reply.request.slave, msg->request.slave);
2245 		ret = -1;
2246 		goto out;
2247 	}
2248 
2249 	ret = msg_reply.payload.u64 ? -1 : 0;
2250 
2251 out:
2252 	rte_spinlock_unlock(&dev->slave_req_lock);
2253 	return ret;
2254 }
2255 
2256 int
2257 vhost_user_iotlb_miss(struct virtio_net *dev, uint64_t iova, uint8_t perm)
2258 {
2259 	int ret;
2260 	struct VhostUserMsg msg = {
2261 		.request.slave = VHOST_USER_SLAVE_IOTLB_MSG,
2262 		.flags = VHOST_USER_VERSION,
2263 		.size = sizeof(msg.payload.iotlb),
2264 		.payload.iotlb = {
2265 			.iova = iova,
2266 			.perm = perm,
2267 			.type = VHOST_IOTLB_MISS,
2268 		},
2269 	};
2270 
2271 	ret = send_vhost_message(dev->slave_req_fd, &msg);
2272 	if (ret < 0) {
2273 		RTE_LOG(ERR, VHOST_CONFIG,
2274 				"Failed to send IOTLB miss message (%d)\n",
2275 				ret);
2276 		return ret;
2277 	}
2278 
2279 	return 0;
2280 }
2281 
2282 static int vhost_user_slave_set_vring_host_notifier(struct virtio_net *dev,
2283 						    int index, int fd,
2284 						    uint64_t offset,
2285 						    uint64_t size)
2286 {
2287 	int ret;
2288 	struct VhostUserMsg msg = {
2289 		.request.slave = VHOST_USER_SLAVE_VRING_HOST_NOTIFIER_MSG,
2290 		.flags = VHOST_USER_VERSION | VHOST_USER_NEED_REPLY,
2291 		.size = sizeof(msg.payload.area),
2292 		.payload.area = {
2293 			.u64 = index & VHOST_USER_VRING_IDX_MASK,
2294 			.size = size,
2295 			.offset = offset,
2296 		},
2297 	};
2298 
2299 	if (fd < 0)
2300 		msg.payload.area.u64 |= VHOST_USER_VRING_NOFD_MASK;
2301 	else {
2302 		msg.fds[0] = fd;
2303 		msg.fd_num = 1;
2304 	}
2305 
2306 	ret = send_vhost_slave_message(dev, &msg);
2307 	if (ret < 0) {
2308 		RTE_LOG(ERR, VHOST_CONFIG,
2309 			"Failed to set host notifier (%d)\n", ret);
2310 		return ret;
2311 	}
2312 
2313 	return process_slave_message_reply(dev, &msg);
2314 }
2315 
2316 int vhost_user_host_notifier_ctrl(int vid, bool enable)
2317 {
2318 	struct virtio_net *dev;
2319 	struct rte_vdpa_device *vdpa_dev;
2320 	int vfio_device_fd, did, ret = 0;
2321 	uint64_t offset, size;
2322 	unsigned int i;
2323 
2324 	dev = get_device(vid);
2325 	if (!dev)
2326 		return -ENODEV;
2327 
2328 	did = dev->vdpa_dev_id;
2329 	if (did < 0)
2330 		return -EINVAL;
2331 
2332 	if (!(dev->features & (1ULL << VIRTIO_F_VERSION_1)) ||
2333 	    !(dev->features & (1ULL << VHOST_USER_F_PROTOCOL_FEATURES)) ||
2334 	    !(dev->protocol_features &
2335 			(1ULL << VHOST_USER_PROTOCOL_F_SLAVE_REQ)) ||
2336 	    !(dev->protocol_features &
2337 			(1ULL << VHOST_USER_PROTOCOL_F_SLAVE_SEND_FD)) ||
2338 	    !(dev->protocol_features &
2339 			(1ULL << VHOST_USER_PROTOCOL_F_HOST_NOTIFIER)))
2340 		return -ENOTSUP;
2341 
2342 	vdpa_dev = rte_vdpa_get_device(did);
2343 	if (!vdpa_dev)
2344 		return -ENODEV;
2345 
2346 	RTE_FUNC_PTR_OR_ERR_RET(vdpa_dev->ops->get_vfio_device_fd, -ENOTSUP);
2347 	RTE_FUNC_PTR_OR_ERR_RET(vdpa_dev->ops->get_notify_area, -ENOTSUP);
2348 
2349 	vfio_device_fd = vdpa_dev->ops->get_vfio_device_fd(vid);
2350 	if (vfio_device_fd < 0)
2351 		return -ENOTSUP;
2352 
2353 	if (enable) {
2354 		for (i = 0; i < dev->nr_vring; i++) {
2355 			if (vdpa_dev->ops->get_notify_area(vid, i, &offset,
2356 					&size) < 0) {
2357 				ret = -ENOTSUP;
2358 				goto disable;
2359 			}
2360 
2361 			if (vhost_user_slave_set_vring_host_notifier(dev, i,
2362 					vfio_device_fd, offset, size) < 0) {
2363 				ret = -EFAULT;
2364 				goto disable;
2365 			}
2366 		}
2367 	} else {
2368 disable:
2369 		for (i = 0; i < dev->nr_vring; i++) {
2370 			vhost_user_slave_set_vring_host_notifier(dev, i, -1,
2371 					0, 0);
2372 		}
2373 	}
2374 
2375 	return ret;
2376 }
2377