1 /*
2  * Vhost User library
3  *
4  * Copyright IBM, Corp. 2007
5  * Copyright (c) 2016 Red Hat, Inc.
6  *
7  * Authors:
8  *  Anthony Liguori <aliguori@us.ibm.com>
9  *  Marc-André Lureau <mlureau@redhat.com>
10  *  Victor Kaplansky <victork@redhat.com>
11  *
12  * This work is licensed under the terms of the GNU GPL, version 2 or
13  * later.  See the COPYING file in the top-level directory.
14  */
15 
16 #ifndef _GNU_SOURCE
17 #define _GNU_SOURCE
18 #endif
19 
20 /* this code avoids GLib dependency */
21 #include <stdlib.h>
22 #include <stdio.h>
23 #include <unistd.h>
24 #include <stdarg.h>
25 #include <errno.h>
26 #include <string.h>
27 #include <assert.h>
28 #include <inttypes.h>
29 #include <sys/types.h>
30 #include <sys/socket.h>
31 #include <sys/eventfd.h>
32 #include <sys/mman.h>
33 #include <endian.h>
34 
35 /* Necessary to provide VIRTIO_F_VERSION_1 on system
36  * with older linux headers. Must appear before
37  * <linux/vhost.h> below.
38  */
39 #include "standard-headers/linux/virtio_config.h"
40 
41 #if defined(__linux__)
42 #include <sys/syscall.h>
43 #include <fcntl.h>
44 #include <sys/ioctl.h>
45 #include <linux/vhost.h>
46 
47 #ifdef __NR_userfaultfd
48 #include <linux/userfaultfd.h>
49 #endif
50 
51 #endif
52 
53 #include "include/atomic.h"
54 
55 #include "libvhost-user.h"
56 
57 /* usually provided by GLib */
58 #if     __GNUC__ > 2 || (__GNUC__ == 2 && __GNUC_MINOR__ > 4)
59 #if !defined(__clang__) && (__GNUC__ == 4 && __GNUC_MINOR__ == 4)
60 #define G_GNUC_PRINTF(format_idx, arg_idx) \
61   __attribute__((__format__(gnu_printf, format_idx, arg_idx)))
62 #else
63 #define G_GNUC_PRINTF(format_idx, arg_idx) \
64   __attribute__((__format__(__printf__, format_idx, arg_idx)))
65 #endif
66 #else   /* !__GNUC__ */
67 #define G_GNUC_PRINTF(format_idx, arg_idx)
68 #endif  /* !__GNUC__ */
69 #ifndef MIN
70 #define MIN(x, y) ({                            \
71             __typeof__(x) _min1 = (x);          \
72             __typeof__(y) _min2 = (y);          \
73             (void) (&_min1 == &_min2);          \
74             _min1 < _min2 ? _min1 : _min2; })
75 #endif
76 
77 /* Round number down to multiple */
78 #define ALIGN_DOWN(n, m) ((n) / (m) * (m))
79 
80 /* Round number up to multiple */
81 #define ALIGN_UP(n, m) ALIGN_DOWN((n) + (m) - 1, (m))
82 
83 #ifndef unlikely
84 #define unlikely(x)   __builtin_expect(!!(x), 0)
85 #endif
86 
87 /* Align each region to cache line size in inflight buffer */
88 #define INFLIGHT_ALIGNMENT 64
89 
90 /* The version of inflight buffer */
91 #define INFLIGHT_VERSION 1
92 
93 /* The version of the protocol we support */
94 #define VHOST_USER_VERSION 1
95 #define LIBVHOST_USER_DEBUG 0
96 
97 #define DPRINT(...)                             \
98     do {                                        \
99         if (LIBVHOST_USER_DEBUG) {              \
100             fprintf(stderr, __VA_ARGS__);        \
101         }                                       \
102     } while (0)
103 
104 static inline
105 bool has_feature(uint64_t features, unsigned int fbit)
106 {
107     assert(fbit < 64);
108     return !!(features & (1ULL << fbit));
109 }
110 
111 static inline
112 bool vu_has_feature(VuDev *dev,
113                     unsigned int fbit)
114 {
115     return has_feature(dev->features, fbit);
116 }
117 
118 static inline bool vu_has_protocol_feature(VuDev *dev, unsigned int fbit)
119 {
120     return has_feature(dev->protocol_features, fbit);
121 }
122 
123 const char *
124 vu_request_to_string(unsigned int req)
125 {
126 #define REQ(req) [req] = #req
127     static const char *vu_request_str[] = {
128         REQ(VHOST_USER_NONE),
129         REQ(VHOST_USER_GET_FEATURES),
130         REQ(VHOST_USER_SET_FEATURES),
131         REQ(VHOST_USER_SET_OWNER),
132         REQ(VHOST_USER_RESET_OWNER),
133         REQ(VHOST_USER_SET_MEM_TABLE),
134         REQ(VHOST_USER_SET_LOG_BASE),
135         REQ(VHOST_USER_SET_LOG_FD),
136         REQ(VHOST_USER_SET_VRING_NUM),
137         REQ(VHOST_USER_SET_VRING_ADDR),
138         REQ(VHOST_USER_SET_VRING_BASE),
139         REQ(VHOST_USER_GET_VRING_BASE),
140         REQ(VHOST_USER_SET_VRING_KICK),
141         REQ(VHOST_USER_SET_VRING_CALL),
142         REQ(VHOST_USER_SET_VRING_ERR),
143         REQ(VHOST_USER_GET_PROTOCOL_FEATURES),
144         REQ(VHOST_USER_SET_PROTOCOL_FEATURES),
145         REQ(VHOST_USER_GET_QUEUE_NUM),
146         REQ(VHOST_USER_SET_VRING_ENABLE),
147         REQ(VHOST_USER_SEND_RARP),
148         REQ(VHOST_USER_NET_SET_MTU),
149         REQ(VHOST_USER_SET_BACKEND_REQ_FD),
150         REQ(VHOST_USER_IOTLB_MSG),
151         REQ(VHOST_USER_SET_VRING_ENDIAN),
152         REQ(VHOST_USER_GET_CONFIG),
153         REQ(VHOST_USER_SET_CONFIG),
154         REQ(VHOST_USER_POSTCOPY_ADVISE),
155         REQ(VHOST_USER_POSTCOPY_LISTEN),
156         REQ(VHOST_USER_POSTCOPY_END),
157         REQ(VHOST_USER_GET_INFLIGHT_FD),
158         REQ(VHOST_USER_SET_INFLIGHT_FD),
159         REQ(VHOST_USER_GPU_SET_SOCKET),
160         REQ(VHOST_USER_VRING_KICK),
161         REQ(VHOST_USER_GET_MAX_MEM_SLOTS),
162         REQ(VHOST_USER_ADD_MEM_REG),
163         REQ(VHOST_USER_REM_MEM_REG),
164         REQ(VHOST_USER_GET_SHARED_OBJECT),
165         REQ(VHOST_USER_MAX),
166     };
167 #undef REQ
168 
169     if (req < VHOST_USER_MAX) {
170         return vu_request_str[req];
171     } else {
172         return "unknown";
173     }
174 }
175 
176 static void G_GNUC_PRINTF(2, 3)
177 vu_panic(VuDev *dev, const char *msg, ...)
178 {
179     char *buf = NULL;
180     va_list ap;
181 
182     va_start(ap, msg);
183     if (vasprintf(&buf, msg, ap) < 0) {
184         buf = NULL;
185     }
186     va_end(ap);
187 
188     dev->broken = true;
189     dev->panic(dev, buf);
190     free(buf);
191 
192     /*
193      * FIXME:
194      * find a way to call virtio_error, or perhaps close the connection?
195      */
196 }
197 
198 /* Translate guest physical address to our virtual address.  */
199 void *
200 vu_gpa_to_va(VuDev *dev, uint64_t *plen, uint64_t guest_addr)
201 {
202     unsigned int i;
203 
204     if (*plen == 0) {
205         return NULL;
206     }
207 
208     /* Find matching memory region.  */
209     for (i = 0; i < dev->nregions; i++) {
210         VuDevRegion *r = &dev->regions[i];
211 
212         if ((guest_addr >= r->gpa) && (guest_addr < (r->gpa + r->size))) {
213             if ((guest_addr + *plen) > (r->gpa + r->size)) {
214                 *plen = r->gpa + r->size - guest_addr;
215             }
216             return (void *)(uintptr_t)
217                 guest_addr - r->gpa + r->mmap_addr + r->mmap_offset;
218         }
219     }
220 
221     return NULL;
222 }
223 
224 /* Translate qemu virtual address to our virtual address.  */
225 static void *
226 qva_to_va(VuDev *dev, uint64_t qemu_addr)
227 {
228     unsigned int i;
229 
230     /* Find matching memory region.  */
231     for (i = 0; i < dev->nregions; i++) {
232         VuDevRegion *r = &dev->regions[i];
233 
234         if ((qemu_addr >= r->qva) && (qemu_addr < (r->qva + r->size))) {
235             return (void *)(uintptr_t)
236                 qemu_addr - r->qva + r->mmap_addr + r->mmap_offset;
237         }
238     }
239 
240     return NULL;
241 }
242 
243 static void
244 vu_remove_all_mem_regs(VuDev *dev)
245 {
246     unsigned int i;
247 
248     for (i = 0; i < dev->nregions; i++) {
249         VuDevRegion *r = &dev->regions[i];
250 
251         munmap((void *)(uintptr_t)r->mmap_addr, r->size + r->mmap_offset);
252     }
253     dev->nregions = 0;
254 }
255 
256 static void
257 _vu_add_mem_reg(VuDev *dev, VhostUserMemoryRegion *msg_region, int fd)
258 {
259     int prot = PROT_READ | PROT_WRITE;
260     VuDevRegion *r;
261     void *mmap_addr;
262 
263     DPRINT("Adding region %d\n", dev->nregions);
264     DPRINT("    guest_phys_addr: 0x%016"PRIx64"\n",
265            msg_region->guest_phys_addr);
266     DPRINT("    memory_size:     0x%016"PRIx64"\n",
267            msg_region->memory_size);
268     DPRINT("    userspace_addr:  0x%016"PRIx64"\n",
269            msg_region->userspace_addr);
270     DPRINT("    mmap_offset:     0x%016"PRIx64"\n",
271            msg_region->mmap_offset);
272 
273     if (dev->postcopy_listening) {
274         /*
275          * In postcopy we're using PROT_NONE here to catch anyone
276          * accessing it before we userfault
277          */
278         prot = PROT_NONE;
279     }
280 
281     /*
282      * We don't use offset argument of mmap() since the mapped address has
283      * to be page aligned, and we use huge pages.
284      */
285     mmap_addr = mmap(0, msg_region->memory_size + msg_region->mmap_offset,
286                      prot, MAP_SHARED | MAP_NORESERVE, fd, 0);
287     if (mmap_addr == MAP_FAILED) {
288         vu_panic(dev, "region mmap error: %s", strerror(errno));
289         return;
290     }
291     DPRINT("    mmap_addr:       0x%016"PRIx64"\n",
292            (uint64_t)(uintptr_t)mmap_addr);
293 
294     r = &dev->regions[dev->nregions];
295     r->gpa = msg_region->guest_phys_addr;
296     r->size = msg_region->memory_size;
297     r->qva = msg_region->userspace_addr;
298     r->mmap_addr = (uint64_t)(uintptr_t)mmap_addr;
299     r->mmap_offset = msg_region->mmap_offset;
300     dev->nregions++;
301 
302     if (dev->postcopy_listening) {
303         /*
304          * Return the address to QEMU so that it can translate the ufd
305          * fault addresses back.
306          */
307         msg_region->userspace_addr = r->mmap_addr + r->mmap_offset;
308     }
309 }
310 
311 static void
312 vmsg_close_fds(VhostUserMsg *vmsg)
313 {
314     int i;
315 
316     for (i = 0; i < vmsg->fd_num; i++) {
317         close(vmsg->fds[i]);
318     }
319 }
320 
321 /* Set reply payload.u64 and clear request flags and fd_num */
322 static void vmsg_set_reply_u64(VhostUserMsg *vmsg, uint64_t val)
323 {
324     vmsg->flags = 0; /* defaults will be set by vu_send_reply() */
325     vmsg->size = sizeof(vmsg->payload.u64);
326     vmsg->payload.u64 = val;
327     vmsg->fd_num = 0;
328 }
329 
330 /* A test to see if we have userfault available */
331 static bool
332 have_userfault(void)
333 {
334 #if defined(__linux__) && defined(__NR_userfaultfd) &&\
335         defined(UFFD_FEATURE_MISSING_SHMEM) &&\
336         defined(UFFD_FEATURE_MISSING_HUGETLBFS)
337     /* Now test the kernel we're running on really has the features */
338     int ufd = syscall(__NR_userfaultfd, O_CLOEXEC | O_NONBLOCK);
339     struct uffdio_api api_struct;
340     if (ufd < 0) {
341         return false;
342     }
343 
344     api_struct.api = UFFD_API;
345     api_struct.features = UFFD_FEATURE_MISSING_SHMEM |
346                           UFFD_FEATURE_MISSING_HUGETLBFS;
347     if (ioctl(ufd, UFFDIO_API, &api_struct)) {
348         close(ufd);
349         return false;
350     }
351     close(ufd);
352     return true;
353 
354 #else
355     return false;
356 #endif
357 }
358 
359 static bool
360 vu_message_read_default(VuDev *dev, int conn_fd, VhostUserMsg *vmsg)
361 {
362     char control[CMSG_SPACE(VHOST_MEMORY_BASELINE_NREGIONS * sizeof(int))] = {};
363     struct iovec iov = {
364         .iov_base = (char *)vmsg,
365         .iov_len = VHOST_USER_HDR_SIZE,
366     };
367     struct msghdr msg = {
368         .msg_iov = &iov,
369         .msg_iovlen = 1,
370         .msg_control = control,
371         .msg_controllen = sizeof(control),
372     };
373     size_t fd_size;
374     struct cmsghdr *cmsg;
375     int rc;
376 
377     do {
378         rc = recvmsg(conn_fd, &msg, 0);
379     } while (rc < 0 && (errno == EINTR || errno == EAGAIN));
380 
381     if (rc < 0) {
382         vu_panic(dev, "Error while recvmsg: %s", strerror(errno));
383         return false;
384     }
385 
386     vmsg->fd_num = 0;
387     for (cmsg = CMSG_FIRSTHDR(&msg);
388          cmsg != NULL;
389          cmsg = CMSG_NXTHDR(&msg, cmsg))
390     {
391         if (cmsg->cmsg_level == SOL_SOCKET && cmsg->cmsg_type == SCM_RIGHTS) {
392             fd_size = cmsg->cmsg_len - CMSG_LEN(0);
393             vmsg->fd_num = fd_size / sizeof(int);
394             assert(fd_size < VHOST_MEMORY_BASELINE_NREGIONS);
395             memcpy(vmsg->fds, CMSG_DATA(cmsg), fd_size);
396             break;
397         }
398     }
399 
400     if (vmsg->size > sizeof(vmsg->payload)) {
401         vu_panic(dev,
402                  "Error: too big message request: %d, size: vmsg->size: %u, "
403                  "while sizeof(vmsg->payload) = %zu\n",
404                  vmsg->request, vmsg->size, sizeof(vmsg->payload));
405         goto fail;
406     }
407 
408     if (vmsg->size) {
409         do {
410             rc = read(conn_fd, &vmsg->payload, vmsg->size);
411         } while (rc < 0 && (errno == EINTR || errno == EAGAIN));
412 
413         if (rc <= 0) {
414             vu_panic(dev, "Error while reading: %s", strerror(errno));
415             goto fail;
416         }
417 
418         assert((uint32_t)rc == vmsg->size);
419     }
420 
421     return true;
422 
423 fail:
424     vmsg_close_fds(vmsg);
425 
426     return false;
427 }
428 
429 static bool
430 vu_message_write(VuDev *dev, int conn_fd, VhostUserMsg *vmsg)
431 {
432     int rc;
433     uint8_t *p = (uint8_t *)vmsg;
434     char control[CMSG_SPACE(VHOST_MEMORY_BASELINE_NREGIONS * sizeof(int))] = {};
435     struct iovec iov = {
436         .iov_base = (char *)vmsg,
437         .iov_len = VHOST_USER_HDR_SIZE,
438     };
439     struct msghdr msg = {
440         .msg_iov = &iov,
441         .msg_iovlen = 1,
442         .msg_control = control,
443     };
444     struct cmsghdr *cmsg;
445 
446     memset(control, 0, sizeof(control));
447     assert(vmsg->fd_num <= VHOST_MEMORY_BASELINE_NREGIONS);
448     if (vmsg->fd_num > 0) {
449         size_t fdsize = vmsg->fd_num * sizeof(int);
450         msg.msg_controllen = CMSG_SPACE(fdsize);
451         cmsg = CMSG_FIRSTHDR(&msg);
452         cmsg->cmsg_len = CMSG_LEN(fdsize);
453         cmsg->cmsg_level = SOL_SOCKET;
454         cmsg->cmsg_type = SCM_RIGHTS;
455         memcpy(CMSG_DATA(cmsg), vmsg->fds, fdsize);
456     } else {
457         msg.msg_controllen = 0;
458     }
459 
460     do {
461         rc = sendmsg(conn_fd, &msg, 0);
462     } while (rc < 0 && (errno == EINTR || errno == EAGAIN));
463 
464     if (vmsg->size) {
465         do {
466             if (vmsg->data) {
467                 rc = write(conn_fd, vmsg->data, vmsg->size);
468             } else {
469                 rc = write(conn_fd, p + VHOST_USER_HDR_SIZE, vmsg->size);
470             }
471         } while (rc < 0 && (errno == EINTR || errno == EAGAIN));
472     }
473 
474     if (rc <= 0) {
475         vu_panic(dev, "Error while writing: %s", strerror(errno));
476         return false;
477     }
478 
479     return true;
480 }
481 
482 static bool
483 vu_send_reply(VuDev *dev, int conn_fd, VhostUserMsg *vmsg)
484 {
485     /* Set the version in the flags when sending the reply */
486     vmsg->flags &= ~VHOST_USER_VERSION_MASK;
487     vmsg->flags |= VHOST_USER_VERSION;
488     vmsg->flags |= VHOST_USER_REPLY_MASK;
489 
490     return vu_message_write(dev, conn_fd, vmsg);
491 }
492 
493 /*
494  * Processes a reply on the backend channel.
495  * Entered with backend_mutex held and releases it before exit.
496  * Returns true on success.
497  */
498 static bool
499 vu_process_message_reply(VuDev *dev, const VhostUserMsg *vmsg)
500 {
501     VhostUserMsg msg_reply;
502     bool result = false;
503 
504     if ((vmsg->flags & VHOST_USER_NEED_REPLY_MASK) == 0) {
505         result = true;
506         goto out;
507     }
508 
509     if (!vu_message_read_default(dev, dev->backend_fd, &msg_reply)) {
510         goto out;
511     }
512 
513     if (msg_reply.request != vmsg->request) {
514         DPRINT("Received unexpected msg type. Expected %d received %d",
515                vmsg->request, msg_reply.request);
516         goto out;
517     }
518 
519     result = msg_reply.payload.u64 == 0;
520 
521 out:
522     pthread_mutex_unlock(&dev->backend_mutex);
523     return result;
524 }
525 
526 /* Kick the log_call_fd if required. */
527 static void
528 vu_log_kick(VuDev *dev)
529 {
530     if (dev->log_call_fd != -1) {
531         DPRINT("Kicking the QEMU's log...\n");
532         if (eventfd_write(dev->log_call_fd, 1) < 0) {
533             vu_panic(dev, "Error writing eventfd: %s", strerror(errno));
534         }
535     }
536 }
537 
538 static void
539 vu_log_page(uint8_t *log_table, uint64_t page)
540 {
541     DPRINT("Logged dirty guest page: %"PRId64"\n", page);
542     qatomic_or(&log_table[page / 8], 1 << (page % 8));
543 }
544 
545 static void
546 vu_log_write(VuDev *dev, uint64_t address, uint64_t length)
547 {
548     uint64_t page;
549 
550     if (!(dev->features & (1ULL << VHOST_F_LOG_ALL)) ||
551         !dev->log_table || !length) {
552         return;
553     }
554 
555     assert(dev->log_size > ((address + length - 1) / VHOST_LOG_PAGE / 8));
556 
557     page = address / VHOST_LOG_PAGE;
558     while (page * VHOST_LOG_PAGE < address + length) {
559         vu_log_page(dev->log_table, page);
560         page += 1;
561     }
562 
563     vu_log_kick(dev);
564 }
565 
566 static void
567 vu_kick_cb(VuDev *dev, int condition, void *data)
568 {
569     int index = (intptr_t)data;
570     VuVirtq *vq = &dev->vq[index];
571     int sock = vq->kick_fd;
572     eventfd_t kick_data;
573     ssize_t rc;
574 
575     rc = eventfd_read(sock, &kick_data);
576     if (rc == -1) {
577         vu_panic(dev, "kick eventfd_read(): %s", strerror(errno));
578         dev->remove_watch(dev, dev->vq[index].kick_fd);
579     } else {
580         DPRINT("Got kick_data: %016"PRIx64" handler:%p idx:%d\n",
581                kick_data, vq->handler, index);
582         if (vq->handler) {
583             vq->handler(dev, index);
584         }
585     }
586 }
587 
588 static bool
589 vu_get_features_exec(VuDev *dev, VhostUserMsg *vmsg)
590 {
591     vmsg->payload.u64 =
592         /*
593          * The following VIRTIO feature bits are supported by our virtqueue
594          * implementation:
595          */
596         1ULL << VIRTIO_F_NOTIFY_ON_EMPTY |
597         1ULL << VIRTIO_RING_F_INDIRECT_DESC |
598         1ULL << VIRTIO_RING_F_EVENT_IDX |
599         1ULL << VIRTIO_F_VERSION_1 |
600 
601         /* vhost-user feature bits */
602         1ULL << VHOST_F_LOG_ALL |
603         1ULL << VHOST_USER_F_PROTOCOL_FEATURES;
604 
605     if (dev->iface->get_features) {
606         vmsg->payload.u64 |= dev->iface->get_features(dev);
607     }
608 
609     vmsg->size = sizeof(vmsg->payload.u64);
610     vmsg->fd_num = 0;
611 
612     DPRINT("Sending back to guest u64: 0x%016"PRIx64"\n", vmsg->payload.u64);
613 
614     return true;
615 }
616 
617 static void
618 vu_set_enable_all_rings(VuDev *dev, bool enabled)
619 {
620     uint16_t i;
621 
622     for (i = 0; i < dev->max_queues; i++) {
623         dev->vq[i].enable = enabled;
624     }
625 }
626 
627 static bool
628 vu_set_features_exec(VuDev *dev, VhostUserMsg *vmsg)
629 {
630     DPRINT("u64: 0x%016"PRIx64"\n", vmsg->payload.u64);
631 
632     dev->features = vmsg->payload.u64;
633     if (!vu_has_feature(dev, VIRTIO_F_VERSION_1)) {
634         /*
635          * We only support devices conforming to VIRTIO 1.0 or
636          * later
637          */
638         vu_panic(dev, "virtio legacy devices aren't supported by libvhost-user");
639         return false;
640     }
641 
642     if (!(dev->features & VHOST_USER_F_PROTOCOL_FEATURES)) {
643         vu_set_enable_all_rings(dev, true);
644     }
645 
646     if (dev->iface->set_features) {
647         dev->iface->set_features(dev, dev->features);
648     }
649 
650     return false;
651 }
652 
653 static bool
654 vu_set_owner_exec(VuDev *dev, VhostUserMsg *vmsg)
655 {
656     return false;
657 }
658 
659 static void
660 vu_close_log(VuDev *dev)
661 {
662     if (dev->log_table) {
663         if (munmap(dev->log_table, dev->log_size) != 0) {
664             perror("close log munmap() error");
665         }
666 
667         dev->log_table = NULL;
668     }
669     if (dev->log_call_fd != -1) {
670         close(dev->log_call_fd);
671         dev->log_call_fd = -1;
672     }
673 }
674 
675 static bool
676 vu_reset_device_exec(VuDev *dev, VhostUserMsg *vmsg)
677 {
678     vu_set_enable_all_rings(dev, false);
679 
680     return false;
681 }
682 
683 static bool
684 map_ring(VuDev *dev, VuVirtq *vq)
685 {
686     vq->vring.desc = qva_to_va(dev, vq->vra.desc_user_addr);
687     vq->vring.used = qva_to_va(dev, vq->vra.used_user_addr);
688     vq->vring.avail = qva_to_va(dev, vq->vra.avail_user_addr);
689 
690     DPRINT("Setting virtq addresses:\n");
691     DPRINT("    vring_desc  at %p\n", vq->vring.desc);
692     DPRINT("    vring_used  at %p\n", vq->vring.used);
693     DPRINT("    vring_avail at %p\n", vq->vring.avail);
694 
695     return !(vq->vring.desc && vq->vring.used && vq->vring.avail);
696 }
697 
698 static bool
699 generate_faults(VuDev *dev) {
700     unsigned int i;
701     for (i = 0; i < dev->nregions; i++) {
702 #ifdef UFFDIO_REGISTER
703         VuDevRegion *dev_region = &dev->regions[i];
704         int ret;
705         struct uffdio_register reg_struct;
706 
707         /*
708          * We should already have an open ufd. Mark each memory
709          * range as ufd.
710          * Discard any mapping we have here; note I can't use MADV_REMOVE
711          * or fallocate to make the hole since I don't want to lose
712          * data that's already arrived in the shared process.
713          * TODO: How to do hugepage
714          */
715         ret = madvise((void *)(uintptr_t)dev_region->mmap_addr,
716                       dev_region->size + dev_region->mmap_offset,
717                       MADV_DONTNEED);
718         if (ret) {
719             fprintf(stderr,
720                     "%s: Failed to madvise(DONTNEED) region %d: %s\n",
721                     __func__, i, strerror(errno));
722         }
723         /*
724          * Turn off transparent hugepages so we dont get lose wakeups
725          * in neighbouring pages.
726          * TODO: Turn this backon later.
727          */
728         ret = madvise((void *)(uintptr_t)dev_region->mmap_addr,
729                       dev_region->size + dev_region->mmap_offset,
730                       MADV_NOHUGEPAGE);
731         if (ret) {
732             /*
733              * Note: This can happen legally on kernels that are configured
734              * without madvise'able hugepages
735              */
736             fprintf(stderr,
737                     "%s: Failed to madvise(NOHUGEPAGE) region %d: %s\n",
738                     __func__, i, strerror(errno));
739         }
740 
741         reg_struct.range.start = (uintptr_t)dev_region->mmap_addr;
742         reg_struct.range.len = dev_region->size + dev_region->mmap_offset;
743         reg_struct.mode = UFFDIO_REGISTER_MODE_MISSING;
744 
745         if (ioctl(dev->postcopy_ufd, UFFDIO_REGISTER, &reg_struct)) {
746             vu_panic(dev, "%s: Failed to userfault region %d "
747                           "@%" PRIx64 " + size:%" PRIx64 " offset: %" PRIx64
748                           ": (ufd=%d)%s\n",
749                      __func__, i,
750                      dev_region->mmap_addr,
751                      dev_region->size, dev_region->mmap_offset,
752                      dev->postcopy_ufd, strerror(errno));
753             return false;
754         }
755         if (!(reg_struct.ioctls & (1ULL << _UFFDIO_COPY))) {
756             vu_panic(dev, "%s Region (%d) doesn't support COPY",
757                      __func__, i);
758             return false;
759         }
760         DPRINT("%s: region %d: Registered userfault for %"
761                PRIx64 " + %" PRIx64 "\n", __func__, i,
762                (uint64_t)reg_struct.range.start,
763                (uint64_t)reg_struct.range.len);
764         /* Now it's registered we can let the client at it */
765         if (mprotect((void *)(uintptr_t)dev_region->mmap_addr,
766                      dev_region->size + dev_region->mmap_offset,
767                      PROT_READ | PROT_WRITE)) {
768             vu_panic(dev, "failed to mprotect region %d for postcopy (%s)",
769                      i, strerror(errno));
770             return false;
771         }
772         /* TODO: Stash 'zero' support flags somewhere */
773 #endif
774     }
775 
776     return true;
777 }
778 
779 static bool
780 vu_add_mem_reg(VuDev *dev, VhostUserMsg *vmsg) {
781     int i;
782     VhostUserMemoryRegion m = vmsg->payload.memreg.region, *msg_region = &m;
783 
784     if (vmsg->fd_num != 1) {
785         vmsg_close_fds(vmsg);
786         vu_panic(dev, "VHOST_USER_ADD_MEM_REG received %d fds - only 1 fd "
787                       "should be sent for this message type", vmsg->fd_num);
788         return false;
789     }
790 
791     if (vmsg->size < VHOST_USER_MEM_REG_SIZE) {
792         close(vmsg->fds[0]);
793         vu_panic(dev, "VHOST_USER_ADD_MEM_REG requires a message size of at "
794                       "least %zu bytes and only %d bytes were received",
795                       VHOST_USER_MEM_REG_SIZE, vmsg->size);
796         return false;
797     }
798 
799     if (dev->nregions == VHOST_USER_MAX_RAM_SLOTS) {
800         close(vmsg->fds[0]);
801         vu_panic(dev, "failing attempt to hot add memory via "
802                       "VHOST_USER_ADD_MEM_REG message because the backend has "
803                       "no free ram slots available");
804         return false;
805     }
806 
807     /*
808      * If we are in postcopy mode and we receive a u64 payload with a 0 value
809      * we know all the postcopy client bases have been received, and we
810      * should start generating faults.
811      */
812     if (dev->postcopy_listening &&
813         vmsg->size == sizeof(vmsg->payload.u64) &&
814         vmsg->payload.u64 == 0) {
815         (void)generate_faults(dev);
816         return false;
817     }
818 
819     _vu_add_mem_reg(dev, msg_region, vmsg->fds[0]);
820     close(vmsg->fds[0]);
821 
822     if (dev->postcopy_listening) {
823         /* Send the message back to qemu with the addresses filled in. */
824         vmsg->fd_num = 0;
825         DPRINT("Successfully added new region in postcopy\n");
826         return true;
827     } else {
828         for (i = 0; i < dev->max_queues; i++) {
829             if (dev->vq[i].vring.desc) {
830                 if (map_ring(dev, &dev->vq[i])) {
831                     vu_panic(dev, "remapping queue %d for new memory region",
832                              i);
833                 }
834             }
835         }
836 
837         DPRINT("Successfully added new region\n");
838         return false;
839     }
840 }
841 
842 static inline bool reg_equal(VuDevRegion *vudev_reg,
843                              VhostUserMemoryRegion *msg_reg)
844 {
845     if (vudev_reg->gpa == msg_reg->guest_phys_addr &&
846         vudev_reg->qva == msg_reg->userspace_addr &&
847         vudev_reg->size == msg_reg->memory_size) {
848         return true;
849     }
850 
851     return false;
852 }
853 
854 static bool
855 vu_rem_mem_reg(VuDev *dev, VhostUserMsg *vmsg) {
856     VhostUserMemoryRegion m = vmsg->payload.memreg.region, *msg_region = &m;
857     unsigned int i;
858     bool found = false;
859 
860     if (vmsg->fd_num > 1) {
861         vmsg_close_fds(vmsg);
862         vu_panic(dev, "VHOST_USER_REM_MEM_REG received %d fds - at most 1 fd "
863                       "should be sent for this message type", vmsg->fd_num);
864         return false;
865     }
866 
867     if (vmsg->size < VHOST_USER_MEM_REG_SIZE) {
868         vmsg_close_fds(vmsg);
869         vu_panic(dev, "VHOST_USER_REM_MEM_REG requires a message size of at "
870                       "least %zu bytes and only %d bytes were received",
871                       VHOST_USER_MEM_REG_SIZE, vmsg->size);
872         return false;
873     }
874 
875     DPRINT("Removing region:\n");
876     DPRINT("    guest_phys_addr: 0x%016"PRIx64"\n",
877            msg_region->guest_phys_addr);
878     DPRINT("    memory_size:     0x%016"PRIx64"\n",
879            msg_region->memory_size);
880     DPRINT("    userspace_addr   0x%016"PRIx64"\n",
881            msg_region->userspace_addr);
882     DPRINT("    mmap_offset      0x%016"PRIx64"\n",
883            msg_region->mmap_offset);
884 
885     for (i = 0; i < dev->nregions; i++) {
886         if (reg_equal(&dev->regions[i], msg_region)) {
887             VuDevRegion *r = &dev->regions[i];
888 
889             munmap((void *)(uintptr_t)r->mmap_addr, r->size + r->mmap_offset);
890 
891             /* Shift all affected entries by 1 to close the hole at index. */
892             memmove(dev->regions + i, dev->regions + i + 1,
893                     sizeof(VuDevRegion) * (dev->nregions - i - 1));
894             DPRINT("Successfully removed a region\n");
895             dev->nregions--;
896             i--;
897 
898             found = true;
899 
900             /* Continue the search for eventual duplicates. */
901         }
902     }
903 
904     if (!found) {
905         vu_panic(dev, "Specified region not found\n");
906     }
907 
908     vmsg_close_fds(vmsg);
909 
910     return false;
911 }
912 
913 static bool
914 vu_get_shared_object(VuDev *dev, VhostUserMsg *vmsg)
915 {
916     int fd_num = 0;
917     int dmabuf_fd = -1;
918     if (dev->iface->get_shared_object) {
919         dmabuf_fd = dev->iface->get_shared_object(
920             dev, &vmsg->payload.object.uuid[0]);
921     }
922     if (dmabuf_fd != -1) {
923         DPRINT("dmabuf_fd found for requested UUID\n");
924         vmsg->fds[fd_num++] = dmabuf_fd;
925     }
926     vmsg->fd_num = fd_num;
927 
928     return true;
929 }
930 
931 static bool
932 vu_set_mem_table_exec(VuDev *dev, VhostUserMsg *vmsg)
933 {
934     VhostUserMemory m = vmsg->payload.memory, *memory = &m;
935     unsigned int i;
936 
937     vu_remove_all_mem_regs(dev);
938 
939     DPRINT("Nregions: %u\n", memory->nregions);
940     for (i = 0; i < memory->nregions; i++) {
941         _vu_add_mem_reg(dev, &memory->regions[i], vmsg->fds[i]);
942         close(vmsg->fds[i]);
943     }
944 
945     if (dev->postcopy_listening) {
946         /* Send the message back to qemu with the addresses filled in */
947         vmsg->fd_num = 0;
948         if (!vu_send_reply(dev, dev->sock, vmsg)) {
949             vu_panic(dev, "failed to respond to set-mem-table for postcopy");
950             return false;
951         }
952 
953         /*
954          * Wait for QEMU to confirm that it's registered the handler for the
955          * faults.
956          */
957         if (!dev->read_msg(dev, dev->sock, vmsg) ||
958             vmsg->size != sizeof(vmsg->payload.u64) ||
959             vmsg->payload.u64 != 0) {
960             vu_panic(dev, "failed to receive valid ack for postcopy set-mem-table");
961             return false;
962         }
963 
964         /* OK, now we can go and register the memory and generate faults */
965         (void)generate_faults(dev);
966         return false;
967     }
968 
969     for (i = 0; i < dev->max_queues; i++) {
970         if (dev->vq[i].vring.desc) {
971             if (map_ring(dev, &dev->vq[i])) {
972                 vu_panic(dev, "remapping queue %d during setmemtable", i);
973             }
974         }
975     }
976 
977     return false;
978 }
979 
980 static bool
981 vu_set_log_base_exec(VuDev *dev, VhostUserMsg *vmsg)
982 {
983     int fd;
984     uint64_t log_mmap_size, log_mmap_offset;
985     void *rc;
986 
987     if (vmsg->fd_num != 1 ||
988         vmsg->size != sizeof(vmsg->payload.log)) {
989         vu_panic(dev, "Invalid log_base message");
990         return true;
991     }
992 
993     fd = vmsg->fds[0];
994     log_mmap_offset = vmsg->payload.log.mmap_offset;
995     log_mmap_size = vmsg->payload.log.mmap_size;
996     DPRINT("Log mmap_offset: %"PRId64"\n", log_mmap_offset);
997     DPRINT("Log mmap_size:   %"PRId64"\n", log_mmap_size);
998 
999     rc = mmap(0, log_mmap_size, PROT_READ | PROT_WRITE, MAP_SHARED, fd,
1000               log_mmap_offset);
1001     close(fd);
1002     if (rc == MAP_FAILED) {
1003         perror("log mmap error");
1004     }
1005 
1006     if (dev->log_table) {
1007         munmap(dev->log_table, dev->log_size);
1008     }
1009     dev->log_table = rc;
1010     dev->log_size = log_mmap_size;
1011 
1012     vmsg->size = sizeof(vmsg->payload.u64);
1013     vmsg->fd_num = 0;
1014 
1015     return true;
1016 }
1017 
1018 static bool
1019 vu_set_log_fd_exec(VuDev *dev, VhostUserMsg *vmsg)
1020 {
1021     if (vmsg->fd_num != 1) {
1022         vu_panic(dev, "Invalid log_fd message");
1023         return false;
1024     }
1025 
1026     if (dev->log_call_fd != -1) {
1027         close(dev->log_call_fd);
1028     }
1029     dev->log_call_fd = vmsg->fds[0];
1030     DPRINT("Got log_call_fd: %d\n", vmsg->fds[0]);
1031 
1032     return false;
1033 }
1034 
1035 static bool
1036 vu_set_vring_num_exec(VuDev *dev, VhostUserMsg *vmsg)
1037 {
1038     unsigned int index = vmsg->payload.state.index;
1039     unsigned int num = vmsg->payload.state.num;
1040 
1041     DPRINT("State.index: %u\n", index);
1042     DPRINT("State.num:   %u\n", num);
1043     dev->vq[index].vring.num = num;
1044 
1045     return false;
1046 }
1047 
1048 static bool
1049 vu_set_vring_addr_exec(VuDev *dev, VhostUserMsg *vmsg)
1050 {
1051     struct vhost_vring_addr addr = vmsg->payload.addr, *vra = &addr;
1052     unsigned int index = vra->index;
1053     VuVirtq *vq = &dev->vq[index];
1054 
1055     DPRINT("vhost_vring_addr:\n");
1056     DPRINT("    index:  %d\n", vra->index);
1057     DPRINT("    flags:  %d\n", vra->flags);
1058     DPRINT("    desc_user_addr:   0x%016" PRIx64 "\n", (uint64_t)vra->desc_user_addr);
1059     DPRINT("    used_user_addr:   0x%016" PRIx64 "\n", (uint64_t)vra->used_user_addr);
1060     DPRINT("    avail_user_addr:  0x%016" PRIx64 "\n", (uint64_t)vra->avail_user_addr);
1061     DPRINT("    log_guest_addr:   0x%016" PRIx64 "\n", (uint64_t)vra->log_guest_addr);
1062 
1063     vq->vra = *vra;
1064     vq->vring.flags = vra->flags;
1065     vq->vring.log_guest_addr = vra->log_guest_addr;
1066 
1067 
1068     if (map_ring(dev, vq)) {
1069         vu_panic(dev, "Invalid vring_addr message");
1070         return false;
1071     }
1072 
1073     vq->used_idx = le16toh(vq->vring.used->idx);
1074 
1075     if (vq->last_avail_idx != vq->used_idx) {
1076         bool resume = dev->iface->queue_is_processed_in_order &&
1077             dev->iface->queue_is_processed_in_order(dev, index);
1078 
1079         DPRINT("Last avail index != used index: %u != %u%s\n",
1080                vq->last_avail_idx, vq->used_idx,
1081                resume ? ", resuming" : "");
1082 
1083         if (resume) {
1084             vq->shadow_avail_idx = vq->last_avail_idx = vq->used_idx;
1085         }
1086     }
1087 
1088     return false;
1089 }
1090 
1091 static bool
1092 vu_set_vring_base_exec(VuDev *dev, VhostUserMsg *vmsg)
1093 {
1094     unsigned int index = vmsg->payload.state.index;
1095     unsigned int num = vmsg->payload.state.num;
1096 
1097     DPRINT("State.index: %u\n", index);
1098     DPRINT("State.num:   %u\n", num);
1099     dev->vq[index].shadow_avail_idx = dev->vq[index].last_avail_idx = num;
1100 
1101     return false;
1102 }
1103 
1104 static bool
1105 vu_get_vring_base_exec(VuDev *dev, VhostUserMsg *vmsg)
1106 {
1107     unsigned int index = vmsg->payload.state.index;
1108 
1109     DPRINT("State.index: %u\n", index);
1110     vmsg->payload.state.num = dev->vq[index].last_avail_idx;
1111     vmsg->size = sizeof(vmsg->payload.state);
1112 
1113     dev->vq[index].started = false;
1114     if (dev->iface->queue_set_started) {
1115         dev->iface->queue_set_started(dev, index, false);
1116     }
1117 
1118     if (dev->vq[index].call_fd != -1) {
1119         close(dev->vq[index].call_fd);
1120         dev->vq[index].call_fd = -1;
1121     }
1122     if (dev->vq[index].kick_fd != -1) {
1123         dev->remove_watch(dev, dev->vq[index].kick_fd);
1124         close(dev->vq[index].kick_fd);
1125         dev->vq[index].kick_fd = -1;
1126     }
1127 
1128     return true;
1129 }
1130 
1131 static bool
1132 vu_check_queue_msg_file(VuDev *dev, VhostUserMsg *vmsg)
1133 {
1134     int index = vmsg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1135     bool nofd = vmsg->payload.u64 & VHOST_USER_VRING_NOFD_MASK;
1136 
1137     if (index >= dev->max_queues) {
1138         vmsg_close_fds(vmsg);
1139         vu_panic(dev, "Invalid queue index: %u", index);
1140         return false;
1141     }
1142 
1143     if (nofd) {
1144         vmsg_close_fds(vmsg);
1145         return true;
1146     }
1147 
1148     if (vmsg->fd_num != 1) {
1149         vmsg_close_fds(vmsg);
1150         vu_panic(dev, "Invalid fds in request: %d", vmsg->request);
1151         return false;
1152     }
1153 
1154     return true;
1155 }
1156 
1157 static int
1158 inflight_desc_compare(const void *a, const void *b)
1159 {
1160     VuVirtqInflightDesc *desc0 = (VuVirtqInflightDesc *)a,
1161                         *desc1 = (VuVirtqInflightDesc *)b;
1162 
1163     if (desc1->counter > desc0->counter &&
1164         (desc1->counter - desc0->counter) < VIRTQUEUE_MAX_SIZE * 2) {
1165         return 1;
1166     }
1167 
1168     return -1;
1169 }
1170 
1171 static int
1172 vu_check_queue_inflights(VuDev *dev, VuVirtq *vq)
1173 {
1174     int i = 0;
1175 
1176     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_INFLIGHT_SHMFD)) {
1177         return 0;
1178     }
1179 
1180     if (unlikely(!vq->inflight)) {
1181         return -1;
1182     }
1183 
1184     if (unlikely(!vq->inflight->version)) {
1185         /* initialize the buffer */
1186         vq->inflight->version = INFLIGHT_VERSION;
1187         return 0;
1188     }
1189 
1190     vq->used_idx = le16toh(vq->vring.used->idx);
1191     vq->resubmit_num = 0;
1192     vq->resubmit_list = NULL;
1193     vq->counter = 0;
1194 
1195     if (unlikely(vq->inflight->used_idx != vq->used_idx)) {
1196         vq->inflight->desc[vq->inflight->last_batch_head].inflight = 0;
1197 
1198         barrier();
1199 
1200         vq->inflight->used_idx = vq->used_idx;
1201     }
1202 
1203     for (i = 0; i < vq->inflight->desc_num; i++) {
1204         if (vq->inflight->desc[i].inflight == 1) {
1205             vq->inuse++;
1206         }
1207     }
1208 
1209     vq->shadow_avail_idx = vq->last_avail_idx = vq->inuse + vq->used_idx;
1210 
1211     if (vq->inuse) {
1212         vq->resubmit_list = calloc(vq->inuse, sizeof(VuVirtqInflightDesc));
1213         if (!vq->resubmit_list) {
1214             return -1;
1215         }
1216 
1217         for (i = 0; i < vq->inflight->desc_num; i++) {
1218             if (vq->inflight->desc[i].inflight) {
1219                 vq->resubmit_list[vq->resubmit_num].index = i;
1220                 vq->resubmit_list[vq->resubmit_num].counter =
1221                                         vq->inflight->desc[i].counter;
1222                 vq->resubmit_num++;
1223             }
1224         }
1225 
1226         if (vq->resubmit_num > 1) {
1227             qsort(vq->resubmit_list, vq->resubmit_num,
1228                   sizeof(VuVirtqInflightDesc), inflight_desc_compare);
1229         }
1230         vq->counter = vq->resubmit_list[0].counter + 1;
1231     }
1232 
1233     /* in case of I/O hang after reconnecting */
1234     if (eventfd_write(vq->kick_fd, 1)) {
1235         return -1;
1236     }
1237 
1238     return 0;
1239 }
1240 
1241 static bool
1242 vu_set_vring_kick_exec(VuDev *dev, VhostUserMsg *vmsg)
1243 {
1244     int index = vmsg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1245     bool nofd = vmsg->payload.u64 & VHOST_USER_VRING_NOFD_MASK;
1246 
1247     DPRINT("u64: 0x%016"PRIx64"\n", vmsg->payload.u64);
1248 
1249     if (!vu_check_queue_msg_file(dev, vmsg)) {
1250         return false;
1251     }
1252 
1253     if (dev->vq[index].kick_fd != -1) {
1254         dev->remove_watch(dev, dev->vq[index].kick_fd);
1255         close(dev->vq[index].kick_fd);
1256         dev->vq[index].kick_fd = -1;
1257     }
1258 
1259     dev->vq[index].kick_fd = nofd ? -1 : vmsg->fds[0];
1260     DPRINT("Got kick_fd: %d for vq: %d\n", dev->vq[index].kick_fd, index);
1261 
1262     dev->vq[index].started = true;
1263     if (dev->iface->queue_set_started) {
1264         dev->iface->queue_set_started(dev, index, true);
1265     }
1266 
1267     if (dev->vq[index].kick_fd != -1 && dev->vq[index].handler) {
1268         dev->set_watch(dev, dev->vq[index].kick_fd, VU_WATCH_IN,
1269                        vu_kick_cb, (void *)(long)index);
1270 
1271         DPRINT("Waiting for kicks on fd: %d for vq: %d\n",
1272                dev->vq[index].kick_fd, index);
1273     }
1274 
1275     if (vu_check_queue_inflights(dev, &dev->vq[index])) {
1276         vu_panic(dev, "Failed to check inflights for vq: %d\n", index);
1277     }
1278 
1279     return false;
1280 }
1281 
1282 void vu_set_queue_handler(VuDev *dev, VuVirtq *vq,
1283                           vu_queue_handler_cb handler)
1284 {
1285     int qidx = vq - dev->vq;
1286 
1287     vq->handler = handler;
1288     if (vq->kick_fd >= 0) {
1289         if (handler) {
1290             dev->set_watch(dev, vq->kick_fd, VU_WATCH_IN,
1291                            vu_kick_cb, (void *)(long)qidx);
1292         } else {
1293             dev->remove_watch(dev, vq->kick_fd);
1294         }
1295     }
1296 }
1297 
1298 bool vu_set_queue_host_notifier(VuDev *dev, VuVirtq *vq, int fd,
1299                                 int size, int offset)
1300 {
1301     int qidx = vq - dev->vq;
1302     int fd_num = 0;
1303     VhostUserMsg vmsg = {
1304         .request = VHOST_USER_BACKEND_VRING_HOST_NOTIFIER_MSG,
1305         .flags = VHOST_USER_VERSION | VHOST_USER_NEED_REPLY_MASK,
1306         .size = sizeof(vmsg.payload.area),
1307         .payload.area = {
1308             .u64 = qidx & VHOST_USER_VRING_IDX_MASK,
1309             .size = size,
1310             .offset = offset,
1311         },
1312     };
1313 
1314     if (fd == -1) {
1315         vmsg.payload.area.u64 |= VHOST_USER_VRING_NOFD_MASK;
1316     } else {
1317         vmsg.fds[fd_num++] = fd;
1318     }
1319 
1320     vmsg.fd_num = fd_num;
1321 
1322     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_BACKEND_SEND_FD)) {
1323         return false;
1324     }
1325 
1326     pthread_mutex_lock(&dev->backend_mutex);
1327     if (!vu_message_write(dev, dev->backend_fd, &vmsg)) {
1328         pthread_mutex_unlock(&dev->backend_mutex);
1329         return false;
1330     }
1331 
1332     /* Also unlocks the backend_mutex */
1333     return vu_process_message_reply(dev, &vmsg);
1334 }
1335 
1336 bool
1337 vu_lookup_shared_object(VuDev *dev, unsigned char uuid[UUID_LEN],
1338                         int *dmabuf_fd)
1339 {
1340     bool result = false;
1341     VhostUserMsg msg_reply;
1342     VhostUserMsg msg = {
1343         .request = VHOST_USER_BACKEND_SHARED_OBJECT_LOOKUP,
1344         .size = sizeof(msg.payload.object),
1345         .flags = VHOST_USER_VERSION | VHOST_USER_NEED_REPLY_MASK,
1346     };
1347 
1348     memcpy(msg.payload.object.uuid, uuid, sizeof(uuid[0]) * UUID_LEN);
1349 
1350     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_SHARED_OBJECT)) {
1351         return false;
1352     }
1353 
1354     pthread_mutex_lock(&dev->backend_mutex);
1355     if (!vu_message_write(dev, dev->backend_fd, &msg)) {
1356         goto out;
1357     }
1358 
1359     if (!vu_message_read_default(dev, dev->backend_fd, &msg_reply)) {
1360         goto out;
1361     }
1362 
1363     if (msg_reply.request != msg.request) {
1364         DPRINT("Received unexpected msg type. Expected %d, received %d",
1365                msg.request, msg_reply.request);
1366         goto out;
1367     }
1368 
1369     if (msg_reply.fd_num != 1) {
1370         DPRINT("Received unexpected number of fds. Expected 1, received %d",
1371                msg_reply.fd_num);
1372         goto out;
1373     }
1374 
1375     *dmabuf_fd = msg_reply.fds[0];
1376     result = *dmabuf_fd > 0 && msg_reply.payload.u64 == 0;
1377 out:
1378     pthread_mutex_unlock(&dev->backend_mutex);
1379 
1380     return result;
1381 }
1382 
1383 static bool
1384 vu_send_message(VuDev *dev, VhostUserMsg *vmsg)
1385 {
1386     bool result = false;
1387     pthread_mutex_lock(&dev->backend_mutex);
1388     if (!vu_message_write(dev, dev->backend_fd, vmsg)) {
1389         goto out;
1390     }
1391 
1392     result = true;
1393 out:
1394     pthread_mutex_unlock(&dev->backend_mutex);
1395 
1396     return result;
1397 }
1398 
1399 bool
1400 vu_add_shared_object(VuDev *dev, unsigned char uuid[UUID_LEN])
1401 {
1402     VhostUserMsg msg = {
1403         .request = VHOST_USER_BACKEND_SHARED_OBJECT_ADD,
1404         .size = sizeof(msg.payload.object),
1405         .flags = VHOST_USER_VERSION,
1406     };
1407 
1408     memcpy(msg.payload.object.uuid, uuid, sizeof(uuid[0]) * UUID_LEN);
1409 
1410     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_SHARED_OBJECT)) {
1411         return false;
1412     }
1413 
1414     return vu_send_message(dev, &msg);
1415 }
1416 
1417 bool
1418 vu_rm_shared_object(VuDev *dev, unsigned char uuid[UUID_LEN])
1419 {
1420     VhostUserMsg msg = {
1421         .request = VHOST_USER_BACKEND_SHARED_OBJECT_REMOVE,
1422         .size = sizeof(msg.payload.object),
1423         .flags = VHOST_USER_VERSION,
1424     };
1425 
1426     memcpy(msg.payload.object.uuid, uuid, sizeof(uuid[0]) * UUID_LEN);
1427 
1428     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_SHARED_OBJECT)) {
1429         return false;
1430     }
1431 
1432     return vu_send_message(dev, &msg);
1433 }
1434 
1435 static bool
1436 vu_set_vring_call_exec(VuDev *dev, VhostUserMsg *vmsg)
1437 {
1438     int index = vmsg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1439     bool nofd = vmsg->payload.u64 & VHOST_USER_VRING_NOFD_MASK;
1440 
1441     DPRINT("u64: 0x%016"PRIx64"\n", vmsg->payload.u64);
1442 
1443     if (!vu_check_queue_msg_file(dev, vmsg)) {
1444         return false;
1445     }
1446 
1447     if (dev->vq[index].call_fd != -1) {
1448         close(dev->vq[index].call_fd);
1449         dev->vq[index].call_fd = -1;
1450     }
1451 
1452     dev->vq[index].call_fd = nofd ? -1 : vmsg->fds[0];
1453 
1454     /* in case of I/O hang after reconnecting */
1455     if (dev->vq[index].call_fd != -1 && eventfd_write(vmsg->fds[0], 1)) {
1456         return -1;
1457     }
1458 
1459     DPRINT("Got call_fd: %d for vq: %d\n", dev->vq[index].call_fd, index);
1460 
1461     return false;
1462 }
1463 
1464 static bool
1465 vu_set_vring_err_exec(VuDev *dev, VhostUserMsg *vmsg)
1466 {
1467     int index = vmsg->payload.u64 & VHOST_USER_VRING_IDX_MASK;
1468     bool nofd = vmsg->payload.u64 & VHOST_USER_VRING_NOFD_MASK;
1469 
1470     DPRINT("u64: 0x%016"PRIx64"\n", vmsg->payload.u64);
1471 
1472     if (!vu_check_queue_msg_file(dev, vmsg)) {
1473         return false;
1474     }
1475 
1476     if (dev->vq[index].err_fd != -1) {
1477         close(dev->vq[index].err_fd);
1478         dev->vq[index].err_fd = -1;
1479     }
1480 
1481     dev->vq[index].err_fd = nofd ? -1 : vmsg->fds[0];
1482 
1483     return false;
1484 }
1485 
1486 static bool
1487 vu_get_protocol_features_exec(VuDev *dev, VhostUserMsg *vmsg)
1488 {
1489     /*
1490      * Note that we support, but intentionally do not set,
1491      * VHOST_USER_PROTOCOL_F_INBAND_NOTIFICATIONS. This means that
1492      * a device implementation can return it in its callback
1493      * (get_protocol_features) if it wants to use this for
1494      * simulation, but it is otherwise not desirable (if even
1495      * implemented by the frontend.)
1496      */
1497     uint64_t features = 1ULL << VHOST_USER_PROTOCOL_F_MQ |
1498                         1ULL << VHOST_USER_PROTOCOL_F_LOG_SHMFD |
1499                         1ULL << VHOST_USER_PROTOCOL_F_BACKEND_REQ |
1500                         1ULL << VHOST_USER_PROTOCOL_F_HOST_NOTIFIER |
1501                         1ULL << VHOST_USER_PROTOCOL_F_BACKEND_SEND_FD |
1502                         1ULL << VHOST_USER_PROTOCOL_F_REPLY_ACK |
1503                         1ULL << VHOST_USER_PROTOCOL_F_CONFIGURE_MEM_SLOTS;
1504 
1505     if (have_userfault()) {
1506         features |= 1ULL << VHOST_USER_PROTOCOL_F_PAGEFAULT;
1507     }
1508 
1509     if (dev->iface->get_config && dev->iface->set_config) {
1510         features |= 1ULL << VHOST_USER_PROTOCOL_F_CONFIG;
1511     }
1512 
1513     if (dev->iface->get_protocol_features) {
1514         features |= dev->iface->get_protocol_features(dev);
1515     }
1516 
1517     vmsg_set_reply_u64(vmsg, features);
1518     return true;
1519 }
1520 
1521 static bool
1522 vu_set_protocol_features_exec(VuDev *dev, VhostUserMsg *vmsg)
1523 {
1524     uint64_t features = vmsg->payload.u64;
1525 
1526     DPRINT("u64: 0x%016"PRIx64"\n", features);
1527 
1528     dev->protocol_features = vmsg->payload.u64;
1529 
1530     if (vu_has_protocol_feature(dev,
1531                                 VHOST_USER_PROTOCOL_F_INBAND_NOTIFICATIONS) &&
1532         (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_BACKEND_REQ) ||
1533          !vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_REPLY_ACK))) {
1534         /*
1535          * The use case for using messages for kick/call is simulation, to make
1536          * the kick and call synchronous. To actually get that behaviour, both
1537          * of the other features are required.
1538          * Theoretically, one could use only kick messages, or do them without
1539          * having F_REPLY_ACK, but too many (possibly pending) messages on the
1540          * socket will eventually cause the frontend to hang, to avoid this in
1541          * scenarios where not desired enforce that the settings are in a way
1542          * that actually enables the simulation case.
1543          */
1544         vu_panic(dev,
1545                  "F_IN_BAND_NOTIFICATIONS requires F_BACKEND_REQ && F_REPLY_ACK");
1546         return false;
1547     }
1548 
1549     if (dev->iface->set_protocol_features) {
1550         dev->iface->set_protocol_features(dev, features);
1551     }
1552 
1553     return false;
1554 }
1555 
1556 static bool
1557 vu_get_queue_num_exec(VuDev *dev, VhostUserMsg *vmsg)
1558 {
1559     vmsg_set_reply_u64(vmsg, dev->max_queues);
1560     return true;
1561 }
1562 
1563 static bool
1564 vu_set_vring_enable_exec(VuDev *dev, VhostUserMsg *vmsg)
1565 {
1566     unsigned int index = vmsg->payload.state.index;
1567     unsigned int enable = vmsg->payload.state.num;
1568 
1569     DPRINT("State.index: %u\n", index);
1570     DPRINT("State.enable:   %u\n", enable);
1571 
1572     if (index >= dev->max_queues) {
1573         vu_panic(dev, "Invalid vring_enable index: %u", index);
1574         return false;
1575     }
1576 
1577     dev->vq[index].enable = enable;
1578     return false;
1579 }
1580 
1581 static bool
1582 vu_set_backend_req_fd(VuDev *dev, VhostUserMsg *vmsg)
1583 {
1584     if (vmsg->fd_num != 1) {
1585         vu_panic(dev, "Invalid backend_req_fd message (%d fd's)", vmsg->fd_num);
1586         return false;
1587     }
1588 
1589     if (dev->backend_fd != -1) {
1590         close(dev->backend_fd);
1591     }
1592     dev->backend_fd = vmsg->fds[0];
1593     DPRINT("Got backend_fd: %d\n", vmsg->fds[0]);
1594 
1595     return false;
1596 }
1597 
1598 static bool
1599 vu_get_config(VuDev *dev, VhostUserMsg *vmsg)
1600 {
1601     int ret = -1;
1602 
1603     if (dev->iface->get_config) {
1604         ret = dev->iface->get_config(dev, vmsg->payload.config.region,
1605                                      vmsg->payload.config.size);
1606     }
1607 
1608     if (ret) {
1609         /* resize to zero to indicate an error to frontend */
1610         vmsg->size = 0;
1611     }
1612 
1613     return true;
1614 }
1615 
1616 static bool
1617 vu_set_config(VuDev *dev, VhostUserMsg *vmsg)
1618 {
1619     int ret = -1;
1620 
1621     if (dev->iface->set_config) {
1622         ret = dev->iface->set_config(dev, vmsg->payload.config.region,
1623                                      vmsg->payload.config.offset,
1624                                      vmsg->payload.config.size,
1625                                      vmsg->payload.config.flags);
1626         if (ret) {
1627             vu_panic(dev, "Set virtio configuration space failed");
1628         }
1629     }
1630 
1631     return false;
1632 }
1633 
1634 static bool
1635 vu_set_postcopy_advise(VuDev *dev, VhostUserMsg *vmsg)
1636 {
1637 #ifdef UFFDIO_API
1638     struct uffdio_api api_struct;
1639 
1640     dev->postcopy_ufd = syscall(__NR_userfaultfd, O_CLOEXEC | O_NONBLOCK);
1641     vmsg->size = 0;
1642 #else
1643     dev->postcopy_ufd = -1;
1644 #endif
1645 
1646     if (dev->postcopy_ufd == -1) {
1647         vu_panic(dev, "Userfaultfd not available: %s", strerror(errno));
1648         goto out;
1649     }
1650 
1651 #ifdef UFFDIO_API
1652     api_struct.api = UFFD_API;
1653     api_struct.features = 0;
1654     if (ioctl(dev->postcopy_ufd, UFFDIO_API, &api_struct)) {
1655         vu_panic(dev, "Failed UFFDIO_API: %s", strerror(errno));
1656         close(dev->postcopy_ufd);
1657         dev->postcopy_ufd = -1;
1658         goto out;
1659     }
1660     /* TODO: Stash feature flags somewhere */
1661 #endif
1662 
1663 out:
1664     /* Return a ufd to the QEMU */
1665     vmsg->fd_num = 1;
1666     vmsg->fds[0] = dev->postcopy_ufd;
1667     return true; /* = send a reply */
1668 }
1669 
1670 static bool
1671 vu_set_postcopy_listen(VuDev *dev, VhostUserMsg *vmsg)
1672 {
1673     if (dev->nregions) {
1674         vu_panic(dev, "Regions already registered at postcopy-listen");
1675         vmsg_set_reply_u64(vmsg, -1);
1676         return true;
1677     }
1678     dev->postcopy_listening = true;
1679 
1680     vmsg_set_reply_u64(vmsg, 0);
1681     return true;
1682 }
1683 
1684 static bool
1685 vu_set_postcopy_end(VuDev *dev, VhostUserMsg *vmsg)
1686 {
1687     DPRINT("%s: Entry\n", __func__);
1688     dev->postcopy_listening = false;
1689     if (dev->postcopy_ufd > 0) {
1690         close(dev->postcopy_ufd);
1691         dev->postcopy_ufd = -1;
1692         DPRINT("%s: Done close\n", __func__);
1693     }
1694 
1695     vmsg_set_reply_u64(vmsg, 0);
1696     DPRINT("%s: exit\n", __func__);
1697     return true;
1698 }
1699 
1700 static inline uint64_t
1701 vu_inflight_queue_size(uint16_t queue_size)
1702 {
1703     return ALIGN_UP(sizeof(VuDescStateSplit) * queue_size +
1704            sizeof(uint16_t), INFLIGHT_ALIGNMENT);
1705 }
1706 
1707 #ifdef MFD_ALLOW_SEALING
1708 static void *
1709 memfd_alloc(const char *name, size_t size, unsigned int flags, int *fd)
1710 {
1711     void *ptr;
1712     int ret;
1713 
1714     *fd = memfd_create(name, MFD_ALLOW_SEALING);
1715     if (*fd < 0) {
1716         return NULL;
1717     }
1718 
1719     ret = ftruncate(*fd, size);
1720     if (ret < 0) {
1721         close(*fd);
1722         return NULL;
1723     }
1724 
1725     ret = fcntl(*fd, F_ADD_SEALS, flags);
1726     if (ret < 0) {
1727         close(*fd);
1728         return NULL;
1729     }
1730 
1731     ptr = mmap(0, size, PROT_READ | PROT_WRITE, MAP_SHARED, *fd, 0);
1732     if (ptr == MAP_FAILED) {
1733         close(*fd);
1734         return NULL;
1735     }
1736 
1737     return ptr;
1738 }
1739 #endif
1740 
1741 static bool
1742 vu_get_inflight_fd(VuDev *dev, VhostUserMsg *vmsg)
1743 {
1744     int fd = -1;
1745     void *addr = NULL;
1746     uint64_t mmap_size;
1747     uint16_t num_queues, queue_size;
1748 
1749     if (vmsg->size != sizeof(vmsg->payload.inflight)) {
1750         vu_panic(dev, "Invalid get_inflight_fd message:%d", vmsg->size);
1751         vmsg->payload.inflight.mmap_size = 0;
1752         return true;
1753     }
1754 
1755     num_queues = vmsg->payload.inflight.num_queues;
1756     queue_size = vmsg->payload.inflight.queue_size;
1757 
1758     DPRINT("set_inflight_fd num_queues: %"PRId16"\n", num_queues);
1759     DPRINT("set_inflight_fd queue_size: %"PRId16"\n", queue_size);
1760 
1761     mmap_size = vu_inflight_queue_size(queue_size) * num_queues;
1762 
1763 #ifdef MFD_ALLOW_SEALING
1764     addr = memfd_alloc("vhost-inflight", mmap_size,
1765                        F_SEAL_GROW | F_SEAL_SHRINK | F_SEAL_SEAL,
1766                        &fd);
1767 #else
1768     vu_panic(dev, "Not implemented: memfd support is missing");
1769 #endif
1770 
1771     if (!addr) {
1772         vu_panic(dev, "Failed to alloc vhost inflight area");
1773         vmsg->payload.inflight.mmap_size = 0;
1774         return true;
1775     }
1776 
1777     memset(addr, 0, mmap_size);
1778 
1779     dev->inflight_info.addr = addr;
1780     dev->inflight_info.size = vmsg->payload.inflight.mmap_size = mmap_size;
1781     dev->inflight_info.fd = vmsg->fds[0] = fd;
1782     vmsg->fd_num = 1;
1783     vmsg->payload.inflight.mmap_offset = 0;
1784 
1785     DPRINT("send inflight mmap_size: %"PRId64"\n",
1786            vmsg->payload.inflight.mmap_size);
1787     DPRINT("send inflight mmap offset: %"PRId64"\n",
1788            vmsg->payload.inflight.mmap_offset);
1789 
1790     return true;
1791 }
1792 
1793 static bool
1794 vu_set_inflight_fd(VuDev *dev, VhostUserMsg *vmsg)
1795 {
1796     int fd, i;
1797     uint64_t mmap_size, mmap_offset;
1798     uint16_t num_queues, queue_size;
1799     void *rc;
1800 
1801     if (vmsg->fd_num != 1 ||
1802         vmsg->size != sizeof(vmsg->payload.inflight)) {
1803         vu_panic(dev, "Invalid set_inflight_fd message size:%d fds:%d",
1804                  vmsg->size, vmsg->fd_num);
1805         return false;
1806     }
1807 
1808     fd = vmsg->fds[0];
1809     mmap_size = vmsg->payload.inflight.mmap_size;
1810     mmap_offset = vmsg->payload.inflight.mmap_offset;
1811     num_queues = vmsg->payload.inflight.num_queues;
1812     queue_size = vmsg->payload.inflight.queue_size;
1813 
1814     DPRINT("set_inflight_fd mmap_size: %"PRId64"\n", mmap_size);
1815     DPRINT("set_inflight_fd mmap_offset: %"PRId64"\n", mmap_offset);
1816     DPRINT("set_inflight_fd num_queues: %"PRId16"\n", num_queues);
1817     DPRINT("set_inflight_fd queue_size: %"PRId16"\n", queue_size);
1818 
1819     rc = mmap(0, mmap_size, PROT_READ | PROT_WRITE, MAP_SHARED,
1820               fd, mmap_offset);
1821 
1822     if (rc == MAP_FAILED) {
1823         vu_panic(dev, "set_inflight_fd mmap error: %s", strerror(errno));
1824         return false;
1825     }
1826 
1827     if (dev->inflight_info.fd) {
1828         close(dev->inflight_info.fd);
1829     }
1830 
1831     if (dev->inflight_info.addr) {
1832         munmap(dev->inflight_info.addr, dev->inflight_info.size);
1833     }
1834 
1835     dev->inflight_info.fd = fd;
1836     dev->inflight_info.addr = rc;
1837     dev->inflight_info.size = mmap_size;
1838 
1839     for (i = 0; i < num_queues; i++) {
1840         dev->vq[i].inflight = (VuVirtqInflight *)rc;
1841         dev->vq[i].inflight->desc_num = queue_size;
1842         rc = (void *)((char *)rc + vu_inflight_queue_size(queue_size));
1843     }
1844 
1845     return false;
1846 }
1847 
1848 static bool
1849 vu_handle_vring_kick(VuDev *dev, VhostUserMsg *vmsg)
1850 {
1851     unsigned int index = vmsg->payload.state.index;
1852 
1853     if (index >= dev->max_queues) {
1854         vu_panic(dev, "Invalid queue index: %u", index);
1855         return false;
1856     }
1857 
1858     DPRINT("Got kick message: handler:%p idx:%u\n",
1859            dev->vq[index].handler, index);
1860 
1861     if (!dev->vq[index].started) {
1862         dev->vq[index].started = true;
1863 
1864         if (dev->iface->queue_set_started) {
1865             dev->iface->queue_set_started(dev, index, true);
1866         }
1867     }
1868 
1869     if (dev->vq[index].handler) {
1870         dev->vq[index].handler(dev, index);
1871     }
1872 
1873     return false;
1874 }
1875 
1876 static bool vu_handle_get_max_memslots(VuDev *dev, VhostUserMsg *vmsg)
1877 {
1878     vmsg_set_reply_u64(vmsg, VHOST_USER_MAX_RAM_SLOTS);
1879 
1880     DPRINT("u64: 0x%016"PRIx64"\n", (uint64_t) VHOST_USER_MAX_RAM_SLOTS);
1881 
1882     return true;
1883 }
1884 
1885 static bool
1886 vu_process_message(VuDev *dev, VhostUserMsg *vmsg)
1887 {
1888     int do_reply = 0;
1889 
1890     /* Print out generic part of the request. */
1891     DPRINT("================ Vhost user message ================\n");
1892     DPRINT("Request: %s (%d)\n", vu_request_to_string(vmsg->request),
1893            vmsg->request);
1894     DPRINT("Flags:   0x%x\n", vmsg->flags);
1895     DPRINT("Size:    %u\n", vmsg->size);
1896 
1897     if (vmsg->fd_num) {
1898         int i;
1899         DPRINT("Fds:");
1900         for (i = 0; i < vmsg->fd_num; i++) {
1901             DPRINT(" %d", vmsg->fds[i]);
1902         }
1903         DPRINT("\n");
1904     }
1905 
1906     if (dev->iface->process_msg &&
1907         dev->iface->process_msg(dev, vmsg, &do_reply)) {
1908         return do_reply;
1909     }
1910 
1911     switch (vmsg->request) {
1912     case VHOST_USER_GET_FEATURES:
1913         return vu_get_features_exec(dev, vmsg);
1914     case VHOST_USER_SET_FEATURES:
1915         return vu_set_features_exec(dev, vmsg);
1916     case VHOST_USER_GET_PROTOCOL_FEATURES:
1917         return vu_get_protocol_features_exec(dev, vmsg);
1918     case VHOST_USER_SET_PROTOCOL_FEATURES:
1919         return vu_set_protocol_features_exec(dev, vmsg);
1920     case VHOST_USER_SET_OWNER:
1921         return vu_set_owner_exec(dev, vmsg);
1922     case VHOST_USER_RESET_OWNER:
1923         return vu_reset_device_exec(dev, vmsg);
1924     case VHOST_USER_SET_MEM_TABLE:
1925         return vu_set_mem_table_exec(dev, vmsg);
1926     case VHOST_USER_SET_LOG_BASE:
1927         return vu_set_log_base_exec(dev, vmsg);
1928     case VHOST_USER_SET_LOG_FD:
1929         return vu_set_log_fd_exec(dev, vmsg);
1930     case VHOST_USER_SET_VRING_NUM:
1931         return vu_set_vring_num_exec(dev, vmsg);
1932     case VHOST_USER_SET_VRING_ADDR:
1933         return vu_set_vring_addr_exec(dev, vmsg);
1934     case VHOST_USER_SET_VRING_BASE:
1935         return vu_set_vring_base_exec(dev, vmsg);
1936     case VHOST_USER_GET_VRING_BASE:
1937         return vu_get_vring_base_exec(dev, vmsg);
1938     case VHOST_USER_SET_VRING_KICK:
1939         return vu_set_vring_kick_exec(dev, vmsg);
1940     case VHOST_USER_SET_VRING_CALL:
1941         return vu_set_vring_call_exec(dev, vmsg);
1942     case VHOST_USER_SET_VRING_ERR:
1943         return vu_set_vring_err_exec(dev, vmsg);
1944     case VHOST_USER_GET_QUEUE_NUM:
1945         return vu_get_queue_num_exec(dev, vmsg);
1946     case VHOST_USER_SET_VRING_ENABLE:
1947         return vu_set_vring_enable_exec(dev, vmsg);
1948     case VHOST_USER_SET_BACKEND_REQ_FD:
1949         return vu_set_backend_req_fd(dev, vmsg);
1950     case VHOST_USER_GET_CONFIG:
1951         return vu_get_config(dev, vmsg);
1952     case VHOST_USER_SET_CONFIG:
1953         return vu_set_config(dev, vmsg);
1954     case VHOST_USER_NONE:
1955         /* if you need processing before exit, override iface->process_msg */
1956         exit(0);
1957     case VHOST_USER_POSTCOPY_ADVISE:
1958         return vu_set_postcopy_advise(dev, vmsg);
1959     case VHOST_USER_POSTCOPY_LISTEN:
1960         return vu_set_postcopy_listen(dev, vmsg);
1961     case VHOST_USER_POSTCOPY_END:
1962         return vu_set_postcopy_end(dev, vmsg);
1963     case VHOST_USER_GET_INFLIGHT_FD:
1964         return vu_get_inflight_fd(dev, vmsg);
1965     case VHOST_USER_SET_INFLIGHT_FD:
1966         return vu_set_inflight_fd(dev, vmsg);
1967     case VHOST_USER_VRING_KICK:
1968         return vu_handle_vring_kick(dev, vmsg);
1969     case VHOST_USER_GET_MAX_MEM_SLOTS:
1970         return vu_handle_get_max_memslots(dev, vmsg);
1971     case VHOST_USER_ADD_MEM_REG:
1972         return vu_add_mem_reg(dev, vmsg);
1973     case VHOST_USER_REM_MEM_REG:
1974         return vu_rem_mem_reg(dev, vmsg);
1975     case VHOST_USER_GET_SHARED_OBJECT:
1976         return vu_get_shared_object(dev, vmsg);
1977     default:
1978         vmsg_close_fds(vmsg);
1979         vu_panic(dev, "Unhandled request: %d", vmsg->request);
1980     }
1981 
1982     return false;
1983 }
1984 
1985 bool
1986 vu_dispatch(VuDev *dev)
1987 {
1988     VhostUserMsg vmsg = { 0, };
1989     int reply_requested;
1990     bool need_reply, success = false;
1991 
1992     if (!dev->read_msg(dev, dev->sock, &vmsg)) {
1993         goto end;
1994     }
1995 
1996     need_reply = vmsg.flags & VHOST_USER_NEED_REPLY_MASK;
1997 
1998     reply_requested = vu_process_message(dev, &vmsg);
1999     if (!reply_requested && need_reply) {
2000         vmsg_set_reply_u64(&vmsg, 0);
2001         reply_requested = 1;
2002     }
2003 
2004     if (!reply_requested) {
2005         success = true;
2006         goto end;
2007     }
2008 
2009     if (!vu_send_reply(dev, dev->sock, &vmsg)) {
2010         goto end;
2011     }
2012 
2013     success = true;
2014 
2015 end:
2016     free(vmsg.data);
2017     return success;
2018 }
2019 
2020 void
2021 vu_deinit(VuDev *dev)
2022 {
2023     unsigned int i;
2024 
2025     vu_remove_all_mem_regs(dev);
2026 
2027     for (i = 0; i < dev->max_queues; i++) {
2028         VuVirtq *vq = &dev->vq[i];
2029 
2030         if (vq->call_fd != -1) {
2031             close(vq->call_fd);
2032             vq->call_fd = -1;
2033         }
2034 
2035         if (vq->kick_fd != -1) {
2036             dev->remove_watch(dev, vq->kick_fd);
2037             close(vq->kick_fd);
2038             vq->kick_fd = -1;
2039         }
2040 
2041         if (vq->err_fd != -1) {
2042             close(vq->err_fd);
2043             vq->err_fd = -1;
2044         }
2045 
2046         if (vq->resubmit_list) {
2047             free(vq->resubmit_list);
2048             vq->resubmit_list = NULL;
2049         }
2050 
2051         vq->inflight = NULL;
2052     }
2053 
2054     if (dev->inflight_info.addr) {
2055         munmap(dev->inflight_info.addr, dev->inflight_info.size);
2056         dev->inflight_info.addr = NULL;
2057     }
2058 
2059     if (dev->inflight_info.fd > 0) {
2060         close(dev->inflight_info.fd);
2061         dev->inflight_info.fd = -1;
2062     }
2063 
2064     vu_close_log(dev);
2065     if (dev->backend_fd != -1) {
2066         close(dev->backend_fd);
2067         dev->backend_fd = -1;
2068     }
2069     pthread_mutex_destroy(&dev->backend_mutex);
2070 
2071     if (dev->sock != -1) {
2072         close(dev->sock);
2073     }
2074 
2075     free(dev->vq);
2076     dev->vq = NULL;
2077     free(dev->regions);
2078     dev->regions = NULL;
2079 }
2080 
2081 bool
2082 vu_init(VuDev *dev,
2083         uint16_t max_queues,
2084         int socket,
2085         vu_panic_cb panic,
2086         vu_read_msg_cb read_msg,
2087         vu_set_watch_cb set_watch,
2088         vu_remove_watch_cb remove_watch,
2089         const VuDevIface *iface)
2090 {
2091     uint16_t i;
2092 
2093     assert(max_queues > 0);
2094     assert(socket >= 0);
2095     assert(set_watch);
2096     assert(remove_watch);
2097     assert(iface);
2098     assert(panic);
2099 
2100     memset(dev, 0, sizeof(*dev));
2101 
2102     dev->sock = socket;
2103     dev->panic = panic;
2104     dev->read_msg = read_msg ? read_msg : vu_message_read_default;
2105     dev->set_watch = set_watch;
2106     dev->remove_watch = remove_watch;
2107     dev->iface = iface;
2108     dev->log_call_fd = -1;
2109     pthread_mutex_init(&dev->backend_mutex, NULL);
2110     dev->backend_fd = -1;
2111     dev->max_queues = max_queues;
2112 
2113     dev->regions = malloc(VHOST_USER_MAX_RAM_SLOTS * sizeof(dev->regions[0]));
2114     if (!dev->regions) {
2115         DPRINT("%s: failed to malloc mem regions\n", __func__);
2116         return false;
2117     }
2118 
2119     dev->vq = malloc(max_queues * sizeof(dev->vq[0]));
2120     if (!dev->vq) {
2121         DPRINT("%s: failed to malloc virtqueues\n", __func__);
2122         free(dev->regions);
2123         dev->regions = NULL;
2124         return false;
2125     }
2126 
2127     for (i = 0; i < max_queues; i++) {
2128         dev->vq[i] = (VuVirtq) {
2129             .call_fd = -1, .kick_fd = -1, .err_fd = -1,
2130             .notification = true,
2131         };
2132     }
2133 
2134     return true;
2135 }
2136 
2137 VuVirtq *
2138 vu_get_queue(VuDev *dev, int qidx)
2139 {
2140     assert(qidx < dev->max_queues);
2141     return &dev->vq[qidx];
2142 }
2143 
2144 bool
2145 vu_queue_enabled(VuDev *dev, VuVirtq *vq)
2146 {
2147     return vq->enable;
2148 }
2149 
2150 bool
2151 vu_queue_started(const VuDev *dev, const VuVirtq *vq)
2152 {
2153     return vq->started;
2154 }
2155 
2156 static inline uint16_t
2157 vring_avail_flags(VuVirtq *vq)
2158 {
2159     return le16toh(vq->vring.avail->flags);
2160 }
2161 
2162 static inline uint16_t
2163 vring_avail_idx(VuVirtq *vq)
2164 {
2165     vq->shadow_avail_idx = le16toh(vq->vring.avail->idx);
2166 
2167     return vq->shadow_avail_idx;
2168 }
2169 
2170 static inline uint16_t
2171 vring_avail_ring(VuVirtq *vq, int i)
2172 {
2173     return le16toh(vq->vring.avail->ring[i]);
2174 }
2175 
2176 static inline uint16_t
2177 vring_get_used_event(VuVirtq *vq)
2178 {
2179     return vring_avail_ring(vq, vq->vring.num);
2180 }
2181 
2182 static int
2183 virtqueue_num_heads(VuDev *dev, VuVirtq *vq, unsigned int idx)
2184 {
2185     uint16_t num_heads = vring_avail_idx(vq) - idx;
2186 
2187     /* Check it isn't doing very strange things with descriptor numbers. */
2188     if (num_heads > vq->vring.num) {
2189         vu_panic(dev, "Guest moved used index from %u to %u",
2190                  idx, vq->shadow_avail_idx);
2191         return -1;
2192     }
2193     if (num_heads) {
2194         /* On success, callers read a descriptor at vq->last_avail_idx.
2195          * Make sure descriptor read does not bypass avail index read. */
2196         smp_rmb();
2197     }
2198 
2199     return num_heads;
2200 }
2201 
2202 static bool
2203 virtqueue_get_head(VuDev *dev, VuVirtq *vq,
2204                    unsigned int idx, unsigned int *head)
2205 {
2206     /* Grab the next descriptor number they're advertising, and increment
2207      * the index we've seen. */
2208     *head = vring_avail_ring(vq, idx % vq->vring.num);
2209 
2210     /* If their number is silly, that's a fatal mistake. */
2211     if (*head >= vq->vring.num) {
2212         vu_panic(dev, "Guest says index %u is available", *head);
2213         return false;
2214     }
2215 
2216     return true;
2217 }
2218 
2219 static int
2220 virtqueue_read_indirect_desc(VuDev *dev, struct vring_desc *desc,
2221                              uint64_t addr, size_t len)
2222 {
2223     struct vring_desc *ori_desc;
2224     uint64_t read_len;
2225 
2226     if (len > (VIRTQUEUE_MAX_SIZE * sizeof(struct vring_desc))) {
2227         return -1;
2228     }
2229 
2230     if (len == 0) {
2231         return -1;
2232     }
2233 
2234     while (len) {
2235         read_len = len;
2236         ori_desc = vu_gpa_to_va(dev, &read_len, addr);
2237         if (!ori_desc) {
2238             return -1;
2239         }
2240 
2241         memcpy(desc, ori_desc, read_len);
2242         len -= read_len;
2243         addr += read_len;
2244         desc += read_len;
2245     }
2246 
2247     return 0;
2248 }
2249 
2250 enum {
2251     VIRTQUEUE_READ_DESC_ERROR = -1,
2252     VIRTQUEUE_READ_DESC_DONE = 0,   /* end of chain */
2253     VIRTQUEUE_READ_DESC_MORE = 1,   /* more buffers in chain */
2254 };
2255 
2256 static int
2257 virtqueue_read_next_desc(VuDev *dev, struct vring_desc *desc,
2258                          int i, unsigned int max, unsigned int *next)
2259 {
2260     /* If this descriptor says it doesn't chain, we're done. */
2261     if (!(le16toh(desc[i].flags) & VRING_DESC_F_NEXT)) {
2262         return VIRTQUEUE_READ_DESC_DONE;
2263     }
2264 
2265     /* Check they're not leading us off end of descriptors. */
2266     *next = le16toh(desc[i].next);
2267     /* Make sure compiler knows to grab that: we don't want it changing! */
2268     smp_wmb();
2269 
2270     if (*next >= max) {
2271         vu_panic(dev, "Desc next is %u", *next);
2272         return VIRTQUEUE_READ_DESC_ERROR;
2273     }
2274 
2275     return VIRTQUEUE_READ_DESC_MORE;
2276 }
2277 
2278 void
2279 vu_queue_get_avail_bytes(VuDev *dev, VuVirtq *vq, unsigned int *in_bytes,
2280                          unsigned int *out_bytes,
2281                          unsigned max_in_bytes, unsigned max_out_bytes)
2282 {
2283     unsigned int idx;
2284     unsigned int total_bufs, in_total, out_total;
2285     int rc;
2286 
2287     idx = vq->last_avail_idx;
2288 
2289     total_bufs = in_total = out_total = 0;
2290     if (unlikely(dev->broken) ||
2291         unlikely(!vq->vring.avail)) {
2292         goto done;
2293     }
2294 
2295     while ((rc = virtqueue_num_heads(dev, vq, idx)) > 0) {
2296         unsigned int max, desc_len, num_bufs, indirect = 0;
2297         uint64_t desc_addr, read_len;
2298         struct vring_desc *desc;
2299         struct vring_desc desc_buf[VIRTQUEUE_MAX_SIZE];
2300         unsigned int i;
2301 
2302         max = vq->vring.num;
2303         num_bufs = total_bufs;
2304         if (!virtqueue_get_head(dev, vq, idx++, &i)) {
2305             goto err;
2306         }
2307         desc = vq->vring.desc;
2308 
2309         if (le16toh(desc[i].flags) & VRING_DESC_F_INDIRECT) {
2310             if (le32toh(desc[i].len) % sizeof(struct vring_desc)) {
2311                 vu_panic(dev, "Invalid size for indirect buffer table");
2312                 goto err;
2313             }
2314 
2315             /* If we've got too many, that implies a descriptor loop. */
2316             if (num_bufs >= max) {
2317                 vu_panic(dev, "Looped descriptor");
2318                 goto err;
2319             }
2320 
2321             /* loop over the indirect descriptor table */
2322             indirect = 1;
2323             desc_addr = le64toh(desc[i].addr);
2324             desc_len = le32toh(desc[i].len);
2325             max = desc_len / sizeof(struct vring_desc);
2326             read_len = desc_len;
2327             desc = vu_gpa_to_va(dev, &read_len, desc_addr);
2328             if (unlikely(desc && read_len != desc_len)) {
2329                 /* Failed to use zero copy */
2330                 desc = NULL;
2331                 if (!virtqueue_read_indirect_desc(dev, desc_buf,
2332                                                   desc_addr,
2333                                                   desc_len)) {
2334                     desc = desc_buf;
2335                 }
2336             }
2337             if (!desc) {
2338                 vu_panic(dev, "Invalid indirect buffer table");
2339                 goto err;
2340             }
2341             num_bufs = i = 0;
2342         }
2343 
2344         do {
2345             /* If we've got too many, that implies a descriptor loop. */
2346             if (++num_bufs > max) {
2347                 vu_panic(dev, "Looped descriptor");
2348                 goto err;
2349             }
2350 
2351             if (le16toh(desc[i].flags) & VRING_DESC_F_WRITE) {
2352                 in_total += le32toh(desc[i].len);
2353             } else {
2354                 out_total += le32toh(desc[i].len);
2355             }
2356             if (in_total >= max_in_bytes && out_total >= max_out_bytes) {
2357                 goto done;
2358             }
2359             rc = virtqueue_read_next_desc(dev, desc, i, max, &i);
2360         } while (rc == VIRTQUEUE_READ_DESC_MORE);
2361 
2362         if (rc == VIRTQUEUE_READ_DESC_ERROR) {
2363             goto err;
2364         }
2365 
2366         if (!indirect) {
2367             total_bufs = num_bufs;
2368         } else {
2369             total_bufs++;
2370         }
2371     }
2372     if (rc < 0) {
2373         goto err;
2374     }
2375 done:
2376     if (in_bytes) {
2377         *in_bytes = in_total;
2378     }
2379     if (out_bytes) {
2380         *out_bytes = out_total;
2381     }
2382     return;
2383 
2384 err:
2385     in_total = out_total = 0;
2386     goto done;
2387 }
2388 
2389 bool
2390 vu_queue_avail_bytes(VuDev *dev, VuVirtq *vq, unsigned int in_bytes,
2391                      unsigned int out_bytes)
2392 {
2393     unsigned int in_total, out_total;
2394 
2395     vu_queue_get_avail_bytes(dev, vq, &in_total, &out_total,
2396                              in_bytes, out_bytes);
2397 
2398     return in_bytes <= in_total && out_bytes <= out_total;
2399 }
2400 
2401 /* Fetch avail_idx from VQ memory only when we really need to know if
2402  * guest has added some buffers. */
2403 bool
2404 vu_queue_empty(VuDev *dev, VuVirtq *vq)
2405 {
2406     if (unlikely(dev->broken) ||
2407         unlikely(!vq->vring.avail)) {
2408         return true;
2409     }
2410 
2411     if (vq->shadow_avail_idx != vq->last_avail_idx) {
2412         return false;
2413     }
2414 
2415     return vring_avail_idx(vq) == vq->last_avail_idx;
2416 }
2417 
2418 static bool
2419 vring_notify(VuDev *dev, VuVirtq *vq)
2420 {
2421     uint16_t old, new;
2422     bool v;
2423 
2424     /* We need to expose used array entries before checking used event. */
2425     smp_mb();
2426 
2427     /* Always notify when queue is empty (when feature acknowledge) */
2428     if (vu_has_feature(dev, VIRTIO_F_NOTIFY_ON_EMPTY) &&
2429         !vq->inuse && vu_queue_empty(dev, vq)) {
2430         return true;
2431     }
2432 
2433     if (!vu_has_feature(dev, VIRTIO_RING_F_EVENT_IDX)) {
2434         return !(vring_avail_flags(vq) & VRING_AVAIL_F_NO_INTERRUPT);
2435     }
2436 
2437     v = vq->signalled_used_valid;
2438     vq->signalled_used_valid = true;
2439     old = vq->signalled_used;
2440     new = vq->signalled_used = vq->used_idx;
2441     return !v || vring_need_event(vring_get_used_event(vq), new, old);
2442 }
2443 
2444 static void _vu_queue_notify(VuDev *dev, VuVirtq *vq, bool sync)
2445 {
2446     if (unlikely(dev->broken) ||
2447         unlikely(!vq->vring.avail)) {
2448         return;
2449     }
2450 
2451     if (!vring_notify(dev, vq)) {
2452         DPRINT("skipped notify...\n");
2453         return;
2454     }
2455 
2456     if (vq->call_fd < 0 &&
2457         vu_has_protocol_feature(dev,
2458                                 VHOST_USER_PROTOCOL_F_INBAND_NOTIFICATIONS) &&
2459         vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_BACKEND_REQ)) {
2460         VhostUserMsg vmsg = {
2461             .request = VHOST_USER_BACKEND_VRING_CALL,
2462             .flags = VHOST_USER_VERSION,
2463             .size = sizeof(vmsg.payload.state),
2464             .payload.state = {
2465                 .index = vq - dev->vq,
2466             },
2467         };
2468         bool ack = sync &&
2469                    vu_has_protocol_feature(dev,
2470                                            VHOST_USER_PROTOCOL_F_REPLY_ACK);
2471 
2472         if (ack) {
2473             vmsg.flags |= VHOST_USER_NEED_REPLY_MASK;
2474         }
2475 
2476         vu_message_write(dev, dev->backend_fd, &vmsg);
2477         if (ack) {
2478             vu_message_read_default(dev, dev->backend_fd, &vmsg);
2479         }
2480         return;
2481     }
2482 
2483     if (eventfd_write(vq->call_fd, 1) < 0) {
2484         vu_panic(dev, "Error writing eventfd: %s", strerror(errno));
2485     }
2486 }
2487 
2488 void vu_queue_notify(VuDev *dev, VuVirtq *vq)
2489 {
2490     _vu_queue_notify(dev, vq, false);
2491 }
2492 
2493 void vu_queue_notify_sync(VuDev *dev, VuVirtq *vq)
2494 {
2495     _vu_queue_notify(dev, vq, true);
2496 }
2497 
2498 void vu_config_change_msg(VuDev *dev)
2499 {
2500     VhostUserMsg vmsg = {
2501         .request = VHOST_USER_BACKEND_CONFIG_CHANGE_MSG,
2502         .flags = VHOST_USER_VERSION,
2503     };
2504 
2505     vu_message_write(dev, dev->backend_fd, &vmsg);
2506 }
2507 
2508 static inline void
2509 vring_used_flags_set_bit(VuVirtq *vq, int mask)
2510 {
2511     uint16_t *flags;
2512 
2513     flags = (uint16_t *)((char*)vq->vring.used +
2514                          offsetof(struct vring_used, flags));
2515     *flags = htole16(le16toh(*flags) | mask);
2516 }
2517 
2518 static inline void
2519 vring_used_flags_unset_bit(VuVirtq *vq, int mask)
2520 {
2521     uint16_t *flags;
2522 
2523     flags = (uint16_t *)((char*)vq->vring.used +
2524                          offsetof(struct vring_used, flags));
2525     *flags = htole16(le16toh(*flags) & ~mask);
2526 }
2527 
2528 static inline void
2529 vring_set_avail_event(VuVirtq *vq, uint16_t val)
2530 {
2531     uint16_t val_le = htole16(val);
2532 
2533     if (!vq->notification) {
2534         return;
2535     }
2536 
2537     memcpy(&vq->vring.used->ring[vq->vring.num], &val_le, sizeof(uint16_t));
2538 }
2539 
2540 void
2541 vu_queue_set_notification(VuDev *dev, VuVirtq *vq, int enable)
2542 {
2543     vq->notification = enable;
2544     if (vu_has_feature(dev, VIRTIO_RING_F_EVENT_IDX)) {
2545         vring_set_avail_event(vq, vring_avail_idx(vq));
2546     } else if (enable) {
2547         vring_used_flags_unset_bit(vq, VRING_USED_F_NO_NOTIFY);
2548     } else {
2549         vring_used_flags_set_bit(vq, VRING_USED_F_NO_NOTIFY);
2550     }
2551     if (enable) {
2552         /* Expose avail event/used flags before caller checks the avail idx. */
2553         smp_mb();
2554     }
2555 }
2556 
2557 static bool
2558 virtqueue_map_desc(VuDev *dev,
2559                    unsigned int *p_num_sg, struct iovec *iov,
2560                    unsigned int max_num_sg, bool is_write,
2561                    uint64_t pa, size_t sz)
2562 {
2563     unsigned num_sg = *p_num_sg;
2564 
2565     assert(num_sg <= max_num_sg);
2566 
2567     if (!sz) {
2568         vu_panic(dev, "virtio: zero sized buffers are not allowed");
2569         return false;
2570     }
2571 
2572     while (sz) {
2573         uint64_t len = sz;
2574 
2575         if (num_sg == max_num_sg) {
2576             vu_panic(dev, "virtio: too many descriptors in indirect table");
2577             return false;
2578         }
2579 
2580         iov[num_sg].iov_base = vu_gpa_to_va(dev, &len, pa);
2581         if (iov[num_sg].iov_base == NULL) {
2582             vu_panic(dev, "virtio: invalid address for buffers");
2583             return false;
2584         }
2585         iov[num_sg].iov_len = len;
2586         num_sg++;
2587         sz -= len;
2588         pa += len;
2589     }
2590 
2591     *p_num_sg = num_sg;
2592     return true;
2593 }
2594 
2595 static void *
2596 virtqueue_alloc_element(size_t sz,
2597                                      unsigned out_num, unsigned in_num)
2598 {
2599     VuVirtqElement *elem;
2600     size_t in_sg_ofs = ALIGN_UP(sz, __alignof__(elem->in_sg[0]));
2601     size_t out_sg_ofs = in_sg_ofs + in_num * sizeof(elem->in_sg[0]);
2602     size_t out_sg_end = out_sg_ofs + out_num * sizeof(elem->out_sg[0]);
2603 
2604     assert(sz >= sizeof(VuVirtqElement));
2605     elem = malloc(out_sg_end);
2606     if (!elem) {
2607         DPRINT("%s: failed to malloc virtqueue element\n", __func__);
2608         return NULL;
2609     }
2610     elem->out_num = out_num;
2611     elem->in_num = in_num;
2612     elem->in_sg = (void *)elem + in_sg_ofs;
2613     elem->out_sg = (void *)elem + out_sg_ofs;
2614     return elem;
2615 }
2616 
2617 static void *
2618 vu_queue_map_desc(VuDev *dev, VuVirtq *vq, unsigned int idx, size_t sz)
2619 {
2620     struct vring_desc *desc = vq->vring.desc;
2621     uint64_t desc_addr, read_len;
2622     unsigned int desc_len;
2623     unsigned int max = vq->vring.num;
2624     unsigned int i = idx;
2625     VuVirtqElement *elem;
2626     unsigned int out_num = 0, in_num = 0;
2627     struct iovec iov[VIRTQUEUE_MAX_SIZE];
2628     struct vring_desc desc_buf[VIRTQUEUE_MAX_SIZE];
2629     int rc;
2630 
2631     if (le16toh(desc[i].flags) & VRING_DESC_F_INDIRECT) {
2632         if (le32toh(desc[i].len) % sizeof(struct vring_desc)) {
2633             vu_panic(dev, "Invalid size for indirect buffer table");
2634             return NULL;
2635         }
2636 
2637         /* loop over the indirect descriptor table */
2638         desc_addr = le64toh(desc[i].addr);
2639         desc_len = le32toh(desc[i].len);
2640         max = desc_len / sizeof(struct vring_desc);
2641         read_len = desc_len;
2642         desc = vu_gpa_to_va(dev, &read_len, desc_addr);
2643         if (unlikely(desc && read_len != desc_len)) {
2644             /* Failed to use zero copy */
2645             desc = NULL;
2646             if (!virtqueue_read_indirect_desc(dev, desc_buf,
2647                                               desc_addr,
2648                                               desc_len)) {
2649                 desc = desc_buf;
2650             }
2651         }
2652         if (!desc) {
2653             vu_panic(dev, "Invalid indirect buffer table");
2654             return NULL;
2655         }
2656         i = 0;
2657     }
2658 
2659     /* Collect all the descriptors */
2660     do {
2661         if (le16toh(desc[i].flags) & VRING_DESC_F_WRITE) {
2662             if (!virtqueue_map_desc(dev, &in_num, iov + out_num,
2663                                VIRTQUEUE_MAX_SIZE - out_num, true,
2664                                le64toh(desc[i].addr),
2665                                le32toh(desc[i].len))) {
2666                 return NULL;
2667             }
2668         } else {
2669             if (in_num) {
2670                 vu_panic(dev, "Incorrect order for descriptors");
2671                 return NULL;
2672             }
2673             if (!virtqueue_map_desc(dev, &out_num, iov,
2674                                VIRTQUEUE_MAX_SIZE, false,
2675                                le64toh(desc[i].addr),
2676                                le32toh(desc[i].len))) {
2677                 return NULL;
2678             }
2679         }
2680 
2681         /* If we've got too many, that implies a descriptor loop. */
2682         if ((in_num + out_num) > max) {
2683             vu_panic(dev, "Looped descriptor");
2684             return NULL;
2685         }
2686         rc = virtqueue_read_next_desc(dev, desc, i, max, &i);
2687     } while (rc == VIRTQUEUE_READ_DESC_MORE);
2688 
2689     if (rc == VIRTQUEUE_READ_DESC_ERROR) {
2690         vu_panic(dev, "read descriptor error");
2691         return NULL;
2692     }
2693 
2694     /* Now copy what we have collected and mapped */
2695     elem = virtqueue_alloc_element(sz, out_num, in_num);
2696     if (!elem) {
2697         return NULL;
2698     }
2699     elem->index = idx;
2700     for (i = 0; i < out_num; i++) {
2701         elem->out_sg[i] = iov[i];
2702     }
2703     for (i = 0; i < in_num; i++) {
2704         elem->in_sg[i] = iov[out_num + i];
2705     }
2706 
2707     return elem;
2708 }
2709 
2710 static int
2711 vu_queue_inflight_get(VuDev *dev, VuVirtq *vq, int desc_idx)
2712 {
2713     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_INFLIGHT_SHMFD)) {
2714         return 0;
2715     }
2716 
2717     if (unlikely(!vq->inflight)) {
2718         return -1;
2719     }
2720 
2721     vq->inflight->desc[desc_idx].counter = vq->counter++;
2722     vq->inflight->desc[desc_idx].inflight = 1;
2723 
2724     return 0;
2725 }
2726 
2727 static int
2728 vu_queue_inflight_pre_put(VuDev *dev, VuVirtq *vq, int desc_idx)
2729 {
2730     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_INFLIGHT_SHMFD)) {
2731         return 0;
2732     }
2733 
2734     if (unlikely(!vq->inflight)) {
2735         return -1;
2736     }
2737 
2738     vq->inflight->last_batch_head = desc_idx;
2739 
2740     return 0;
2741 }
2742 
2743 static int
2744 vu_queue_inflight_post_put(VuDev *dev, VuVirtq *vq, int desc_idx)
2745 {
2746     if (!vu_has_protocol_feature(dev, VHOST_USER_PROTOCOL_F_INFLIGHT_SHMFD)) {
2747         return 0;
2748     }
2749 
2750     if (unlikely(!vq->inflight)) {
2751         return -1;
2752     }
2753 
2754     barrier();
2755 
2756     vq->inflight->desc[desc_idx].inflight = 0;
2757 
2758     barrier();
2759 
2760     vq->inflight->used_idx = vq->used_idx;
2761 
2762     return 0;
2763 }
2764 
2765 void *
2766 vu_queue_pop(VuDev *dev, VuVirtq *vq, size_t sz)
2767 {
2768     int i;
2769     unsigned int head;
2770     VuVirtqElement *elem;
2771 
2772     if (unlikely(dev->broken) ||
2773         unlikely(!vq->vring.avail)) {
2774         return NULL;
2775     }
2776 
2777     if (unlikely(vq->resubmit_list && vq->resubmit_num > 0)) {
2778         i = (--vq->resubmit_num);
2779         elem = vu_queue_map_desc(dev, vq, vq->resubmit_list[i].index, sz);
2780 
2781         if (!vq->resubmit_num) {
2782             free(vq->resubmit_list);
2783             vq->resubmit_list = NULL;
2784         }
2785 
2786         return elem;
2787     }
2788 
2789     if (vu_queue_empty(dev, vq)) {
2790         return NULL;
2791     }
2792     /*
2793      * Needed after virtio_queue_empty(), see comment in
2794      * virtqueue_num_heads().
2795      */
2796     smp_rmb();
2797 
2798     if (vq->inuse >= vq->vring.num) {
2799         vu_panic(dev, "Virtqueue size exceeded");
2800         return NULL;
2801     }
2802 
2803     if (!virtqueue_get_head(dev, vq, vq->last_avail_idx++, &head)) {
2804         return NULL;
2805     }
2806 
2807     if (vu_has_feature(dev, VIRTIO_RING_F_EVENT_IDX)) {
2808         vring_set_avail_event(vq, vq->last_avail_idx);
2809     }
2810 
2811     elem = vu_queue_map_desc(dev, vq, head, sz);
2812 
2813     if (!elem) {
2814         return NULL;
2815     }
2816 
2817     vq->inuse++;
2818 
2819     vu_queue_inflight_get(dev, vq, head);
2820 
2821     return elem;
2822 }
2823 
2824 static void
2825 vu_queue_detach_element(VuDev *dev, VuVirtq *vq, VuVirtqElement *elem,
2826                         size_t len)
2827 {
2828     vq->inuse--;
2829     /* unmap, when DMA support is added */
2830 }
2831 
2832 void
2833 vu_queue_unpop(VuDev *dev, VuVirtq *vq, VuVirtqElement *elem,
2834                size_t len)
2835 {
2836     vq->last_avail_idx--;
2837     vu_queue_detach_element(dev, vq, elem, len);
2838 }
2839 
2840 bool
2841 vu_queue_rewind(VuDev *dev, VuVirtq *vq, unsigned int num)
2842 {
2843     if (num > vq->inuse) {
2844         return false;
2845     }
2846     vq->last_avail_idx -= num;
2847     vq->inuse -= num;
2848     return true;
2849 }
2850 
2851 static inline
2852 void vring_used_write(VuDev *dev, VuVirtq *vq,
2853                       struct vring_used_elem *uelem, int i)
2854 {
2855     struct vring_used *used = vq->vring.used;
2856 
2857     used->ring[i] = *uelem;
2858     vu_log_write(dev, vq->vring.log_guest_addr +
2859                  offsetof(struct vring_used, ring[i]),
2860                  sizeof(used->ring[i]));
2861 }
2862 
2863 
2864 static void
2865 vu_log_queue_fill(VuDev *dev, VuVirtq *vq,
2866                   const VuVirtqElement *elem,
2867                   unsigned int len)
2868 {
2869     struct vring_desc *desc = vq->vring.desc;
2870     unsigned int i, max, min, desc_len;
2871     uint64_t desc_addr, read_len;
2872     struct vring_desc desc_buf[VIRTQUEUE_MAX_SIZE];
2873     unsigned num_bufs = 0;
2874 
2875     max = vq->vring.num;
2876     i = elem->index;
2877 
2878     if (le16toh(desc[i].flags) & VRING_DESC_F_INDIRECT) {
2879         if (le32toh(desc[i].len) % sizeof(struct vring_desc)) {
2880             vu_panic(dev, "Invalid size for indirect buffer table");
2881             return;
2882         }
2883 
2884         /* loop over the indirect descriptor table */
2885         desc_addr = le64toh(desc[i].addr);
2886         desc_len = le32toh(desc[i].len);
2887         max = desc_len / sizeof(struct vring_desc);
2888         read_len = desc_len;
2889         desc = vu_gpa_to_va(dev, &read_len, desc_addr);
2890         if (unlikely(desc && read_len != desc_len)) {
2891             /* Failed to use zero copy */
2892             desc = NULL;
2893             if (!virtqueue_read_indirect_desc(dev, desc_buf,
2894                                               desc_addr,
2895                                               desc_len)) {
2896                 desc = desc_buf;
2897             }
2898         }
2899         if (!desc) {
2900             vu_panic(dev, "Invalid indirect buffer table");
2901             return;
2902         }
2903         i = 0;
2904     }
2905 
2906     do {
2907         if (++num_bufs > max) {
2908             vu_panic(dev, "Looped descriptor");
2909             return;
2910         }
2911 
2912         if (le16toh(desc[i].flags) & VRING_DESC_F_WRITE) {
2913             min = MIN(le32toh(desc[i].len), len);
2914             vu_log_write(dev, le64toh(desc[i].addr), min);
2915             len -= min;
2916         }
2917 
2918     } while (len > 0 &&
2919              (virtqueue_read_next_desc(dev, desc, i, max, &i)
2920               == VIRTQUEUE_READ_DESC_MORE));
2921 }
2922 
2923 void
2924 vu_queue_fill(VuDev *dev, VuVirtq *vq,
2925               const VuVirtqElement *elem,
2926               unsigned int len, unsigned int idx)
2927 {
2928     struct vring_used_elem uelem;
2929 
2930     if (unlikely(dev->broken) ||
2931         unlikely(!vq->vring.avail)) {
2932         return;
2933     }
2934 
2935     vu_log_queue_fill(dev, vq, elem, len);
2936 
2937     idx = (idx + vq->used_idx) % vq->vring.num;
2938 
2939     uelem.id = htole32(elem->index);
2940     uelem.len = htole32(len);
2941     vring_used_write(dev, vq, &uelem, idx);
2942 }
2943 
2944 static inline
2945 void vring_used_idx_set(VuDev *dev, VuVirtq *vq, uint16_t val)
2946 {
2947     vq->vring.used->idx = htole16(val);
2948     vu_log_write(dev,
2949                  vq->vring.log_guest_addr + offsetof(struct vring_used, idx),
2950                  sizeof(vq->vring.used->idx));
2951 
2952     vq->used_idx = val;
2953 }
2954 
2955 void
2956 vu_queue_flush(VuDev *dev, VuVirtq *vq, unsigned int count)
2957 {
2958     uint16_t old, new;
2959 
2960     if (unlikely(dev->broken) ||
2961         unlikely(!vq->vring.avail)) {
2962         return;
2963     }
2964 
2965     /* Make sure buffer is written before we update index. */
2966     smp_wmb();
2967 
2968     old = vq->used_idx;
2969     new = old + count;
2970     vring_used_idx_set(dev, vq, new);
2971     vq->inuse -= count;
2972     if (unlikely((int16_t)(new - vq->signalled_used) < (uint16_t)(new - old))) {
2973         vq->signalled_used_valid = false;
2974     }
2975 }
2976 
2977 void
2978 vu_queue_push(VuDev *dev, VuVirtq *vq,
2979               const VuVirtqElement *elem, unsigned int len)
2980 {
2981     vu_queue_fill(dev, vq, elem, len, 0);
2982     vu_queue_inflight_pre_put(dev, vq, elem->index);
2983     vu_queue_flush(dev, vq, 1);
2984     vu_queue_inflight_post_put(dev, vq, elem->index);
2985 }
2986