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, ®_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