1 // SPDX-License-Identifier: GPL-2.0-only 2 /* Copyright (C) 2009 Red Hat, Inc. 3 * Copyright (C) 2006 Rusty Russell IBM Corporation 4 * 5 * Author: Michael S. Tsirkin <mst@redhat.com> 6 * 7 * Inspiration, some code, and most witty comments come from 8 * Documentation/virtual/lguest/lguest.c, by Rusty Russell 9 * 10 * Generic code for virtio server in host kernel. 11 */ 12 13 #include <linux/eventfd.h> 14 #include <linux/vhost.h> 15 #include <linux/uio.h> 16 #include <linux/mm.h> 17 #include <linux/miscdevice.h> 18 #include <linux/mutex.h> 19 #include <linux/poll.h> 20 #include <linux/file.h> 21 #include <linux/highmem.h> 22 #include <linux/slab.h> 23 #include <linux/vmalloc.h> 24 #include <linux/kthread.h> 25 #include <linux/cgroup.h> 26 #include <linux/module.h> 27 #include <linux/sort.h> 28 #include <linux/sched/mm.h> 29 #include <linux/sched/signal.h> 30 #include <linux/sched/vhost_task.h> 31 #include <linux/interval_tree_generic.h> 32 #include <linux/nospec.h> 33 #include <linux/kcov.h> 34 35 #include "vhost.h" 36 37 static ushort max_mem_regions = 64; 38 module_param(max_mem_regions, ushort, 0444); 39 MODULE_PARM_DESC(max_mem_regions, 40 "Maximum number of memory regions in memory map. (default: 64)"); 41 static int max_iotlb_entries = 2048; 42 module_param(max_iotlb_entries, int, 0444); 43 MODULE_PARM_DESC(max_iotlb_entries, 44 "Maximum number of iotlb entries. (default: 2048)"); 45 static bool fork_from_owner_default = VHOST_FORK_OWNER_TASK; 46 47 #ifdef CONFIG_VHOST_ENABLE_FORK_OWNER_CONTROL 48 module_param(fork_from_owner_default, bool, 0444); 49 MODULE_PARM_DESC(fork_from_owner_default, 50 "Set task mode as the default(default: Y)"); 51 #endif 52 53 enum { 54 VHOST_MEMORY_F_LOG = 0x1, 55 }; 56 57 #define vhost_used_event(vq) ((__virtio16 __user *)&vq->avail->ring[vq->num]) 58 #define vhost_avail_event(vq) ((__virtio16 __user *)&vq->used->ring[vq->num]) 59 60 #ifdef CONFIG_VHOST_CROSS_ENDIAN_LEGACY 61 static void vhost_disable_cross_endian(struct vhost_virtqueue *vq) 62 { 63 vq->user_be = !virtio_legacy_is_little_endian(); 64 } 65 66 static void vhost_enable_cross_endian_big(struct vhost_virtqueue *vq) 67 { 68 vq->user_be = true; 69 } 70 71 static void vhost_enable_cross_endian_little(struct vhost_virtqueue *vq) 72 { 73 vq->user_be = false; 74 } 75 76 static long vhost_set_vring_endian(struct vhost_virtqueue *vq, int __user *argp) 77 { 78 struct vhost_vring_state s; 79 80 if (vq->private_data) 81 return -EBUSY; 82 83 if (copy_from_user(&s, argp, sizeof(s))) 84 return -EFAULT; 85 86 if (s.num != VHOST_VRING_LITTLE_ENDIAN && 87 s.num != VHOST_VRING_BIG_ENDIAN) 88 return -EINVAL; 89 90 if (s.num == VHOST_VRING_BIG_ENDIAN) 91 vhost_enable_cross_endian_big(vq); 92 else 93 vhost_enable_cross_endian_little(vq); 94 95 return 0; 96 } 97 98 static long vhost_get_vring_endian(struct vhost_virtqueue *vq, u32 idx, 99 int __user *argp) 100 { 101 struct vhost_vring_state s = { 102 .index = idx, 103 .num = vq->user_be 104 }; 105 106 if (copy_to_user(argp, &s, sizeof(s))) 107 return -EFAULT; 108 109 return 0; 110 } 111 112 static void vhost_init_is_le(struct vhost_virtqueue *vq) 113 { 114 /* Note for legacy virtio: user_be is initialized at reset time 115 * according to the host endianness. If userspace does not set an 116 * explicit endianness, the default behavior is native endian, as 117 * expected by legacy virtio. 118 */ 119 vq->is_le = vhost_has_feature(vq, VIRTIO_F_VERSION_1) || !vq->user_be; 120 } 121 #else 122 static void vhost_disable_cross_endian(struct vhost_virtqueue *vq) 123 { 124 } 125 126 static long vhost_set_vring_endian(struct vhost_virtqueue *vq, int __user *argp) 127 { 128 return -ENOIOCTLCMD; 129 } 130 131 static long vhost_get_vring_endian(struct vhost_virtqueue *vq, u32 idx, 132 int __user *argp) 133 { 134 return -ENOIOCTLCMD; 135 } 136 137 static void vhost_init_is_le(struct vhost_virtqueue *vq) 138 { 139 vq->is_le = vhost_has_feature(vq, VIRTIO_F_VERSION_1) 140 || virtio_legacy_is_little_endian(); 141 } 142 #endif /* CONFIG_VHOST_CROSS_ENDIAN_LEGACY */ 143 144 static void vhost_reset_is_le(struct vhost_virtqueue *vq) 145 { 146 vhost_init_is_le(vq); 147 } 148 149 struct vhost_flush_struct { 150 struct vhost_work work; 151 struct completion wait_event; 152 }; 153 154 static void vhost_flush_work(struct vhost_work *work) 155 { 156 struct vhost_flush_struct *s; 157 158 s = container_of(work, struct vhost_flush_struct, work); 159 complete(&s->wait_event); 160 } 161 162 static void vhost_poll_func(struct file *file, wait_queue_head_t *wqh, 163 poll_table *pt) 164 { 165 struct vhost_poll *poll; 166 167 poll = container_of(pt, struct vhost_poll, table); 168 poll->wqh = wqh; 169 add_wait_queue(wqh, &poll->wait); 170 } 171 172 static int vhost_poll_wakeup(wait_queue_entry_t *wait, unsigned mode, int sync, 173 void *key) 174 { 175 struct vhost_poll *poll = container_of(wait, struct vhost_poll, wait); 176 struct vhost_work *work = &poll->work; 177 178 if (!(key_to_poll(key) & poll->mask)) 179 return 0; 180 181 if (!poll->dev->use_worker) 182 work->fn(work); 183 else 184 vhost_poll_queue(poll); 185 186 return 0; 187 } 188 189 void vhost_work_init(struct vhost_work *work, vhost_work_fn_t fn) 190 { 191 clear_bit(VHOST_WORK_QUEUED, &work->flags); 192 work->fn = fn; 193 } 194 EXPORT_SYMBOL_GPL(vhost_work_init); 195 196 /* Init poll structure */ 197 void vhost_poll_init(struct vhost_poll *poll, vhost_work_fn_t fn, 198 __poll_t mask, struct vhost_dev *dev, 199 struct vhost_virtqueue *vq) 200 { 201 init_waitqueue_func_entry(&poll->wait, vhost_poll_wakeup); 202 init_poll_funcptr(&poll->table, vhost_poll_func); 203 poll->mask = mask; 204 poll->dev = dev; 205 poll->wqh = NULL; 206 poll->vq = vq; 207 208 vhost_work_init(&poll->work, fn); 209 } 210 EXPORT_SYMBOL_GPL(vhost_poll_init); 211 212 /* Start polling a file. We add ourselves to file's wait queue. The caller must 213 * keep a reference to a file until after vhost_poll_stop is called. */ 214 int vhost_poll_start(struct vhost_poll *poll, struct file *file) 215 { 216 __poll_t mask; 217 218 if (poll->wqh) 219 return 0; 220 221 mask = vfs_poll(file, &poll->table); 222 if (mask) 223 vhost_poll_wakeup(&poll->wait, 0, 0, poll_to_key(mask)); 224 if (mask & EPOLLERR) { 225 vhost_poll_stop(poll); 226 return -EINVAL; 227 } 228 229 return 0; 230 } 231 EXPORT_SYMBOL_GPL(vhost_poll_start); 232 233 /* Stop polling a file. After this function returns, it becomes safe to drop the 234 * file reference. You must also flush afterwards. */ 235 void vhost_poll_stop(struct vhost_poll *poll) 236 { 237 if (poll->wqh) { 238 remove_wait_queue(poll->wqh, &poll->wait); 239 poll->wqh = NULL; 240 } 241 } 242 EXPORT_SYMBOL_GPL(vhost_poll_stop); 243 244 static void vhost_worker_queue(struct vhost_worker *worker, 245 struct vhost_work *work) 246 { 247 if (!test_and_set_bit(VHOST_WORK_QUEUED, &work->flags)) { 248 /* We can only add the work to the list after we're 249 * sure it was not in the list. 250 * test_and_set_bit() implies a memory barrier. 251 */ 252 llist_add(&work->node, &worker->work_list); 253 worker->ops->wakeup(worker); 254 } 255 } 256 257 bool vhost_vq_work_queue(struct vhost_virtqueue *vq, struct vhost_work *work) 258 { 259 struct vhost_worker *worker; 260 bool queued = false; 261 262 rcu_read_lock(); 263 worker = rcu_dereference(vq->worker); 264 if (worker) { 265 queued = true; 266 vhost_worker_queue(worker, work); 267 } 268 rcu_read_unlock(); 269 270 return queued; 271 } 272 EXPORT_SYMBOL_GPL(vhost_vq_work_queue); 273 274 /** 275 * __vhost_worker_flush - flush a worker 276 * @worker: worker to flush 277 * 278 * The worker's flush_mutex must be held. 279 */ 280 static void __vhost_worker_flush(struct vhost_worker *worker) 281 { 282 struct vhost_flush_struct flush; 283 284 if (!worker->attachment_cnt || worker->killed) 285 return; 286 287 init_completion(&flush.wait_event); 288 vhost_work_init(&flush.work, vhost_flush_work); 289 290 vhost_worker_queue(worker, &flush.work); 291 /* 292 * Drop mutex in case our worker is killed and it needs to take the 293 * mutex to force cleanup. 294 */ 295 mutex_unlock(&worker->mutex); 296 wait_for_completion(&flush.wait_event); 297 mutex_lock(&worker->mutex); 298 } 299 300 static void vhost_worker_flush(struct vhost_worker *worker) 301 { 302 mutex_lock(&worker->mutex); 303 __vhost_worker_flush(worker); 304 mutex_unlock(&worker->mutex); 305 } 306 307 void vhost_dev_flush(struct vhost_dev *dev) 308 { 309 struct vhost_worker *worker; 310 unsigned long i; 311 312 xa_for_each(&dev->worker_xa, i, worker) 313 vhost_worker_flush(worker); 314 } 315 EXPORT_SYMBOL_GPL(vhost_dev_flush); 316 317 /* A lockless hint for busy polling code to exit the loop */ 318 bool vhost_vq_has_work(struct vhost_virtqueue *vq) 319 { 320 struct vhost_worker *worker; 321 bool has_work = false; 322 323 rcu_read_lock(); 324 worker = rcu_dereference(vq->worker); 325 if (worker && !llist_empty(&worker->work_list)) 326 has_work = true; 327 rcu_read_unlock(); 328 329 return has_work; 330 } 331 EXPORT_SYMBOL_GPL(vhost_vq_has_work); 332 333 void vhost_poll_queue(struct vhost_poll *poll) 334 { 335 vhost_vq_work_queue(poll->vq, &poll->work); 336 } 337 EXPORT_SYMBOL_GPL(vhost_poll_queue); 338 339 static void __vhost_vq_meta_reset(struct vhost_virtqueue *vq) 340 { 341 int j; 342 343 for (j = 0; j < VHOST_NUM_ADDRS; j++) 344 vq->meta_iotlb[j] = NULL; 345 } 346 347 static void vhost_vq_meta_reset(struct vhost_dev *d) 348 { 349 int i; 350 351 for (i = 0; i < d->nvqs; ++i) 352 __vhost_vq_meta_reset(d->vqs[i]); 353 } 354 355 static void vhost_vring_call_reset(struct vhost_vring_call *call_ctx) 356 { 357 call_ctx->ctx = NULL; 358 memset(&call_ctx->producer, 0x0, sizeof(struct irq_bypass_producer)); 359 } 360 361 bool vhost_vq_is_setup(struct vhost_virtqueue *vq) 362 { 363 return vq->avail && vq->desc && vq->used && vhost_vq_access_ok(vq); 364 } 365 EXPORT_SYMBOL_GPL(vhost_vq_is_setup); 366 367 static void vhost_vq_reset(struct vhost_dev *dev, 368 struct vhost_virtqueue *vq) 369 { 370 vq->num = 1; 371 vq->desc = NULL; 372 vq->avail = NULL; 373 vq->used = NULL; 374 vq->last_avail_idx = 0; 375 vq->next_avail_head = 0; 376 vq->avail_idx = 0; 377 vq->last_used_idx = 0; 378 vq->signalled_used = 0; 379 vq->signalled_used_valid = false; 380 vq->used_flags = 0; 381 vq->log_used = false; 382 vq->log_addr = -1ull; 383 vq->private_data = NULL; 384 virtio_features_zero(vq->acked_features_array); 385 vq->acked_backend_features = 0; 386 vq->log_base = NULL; 387 vq->error_ctx = NULL; 388 vq->kick = NULL; 389 vq->log_ctx = NULL; 390 vhost_disable_cross_endian(vq); 391 vhost_reset_is_le(vq); 392 vq->busyloop_timeout = 0; 393 vq->umem = NULL; 394 vq->iotlb = NULL; 395 rcu_assign_pointer(vq->worker, NULL); 396 vhost_vring_call_reset(&vq->call_ctx); 397 __vhost_vq_meta_reset(vq); 398 } 399 400 static int vhost_run_work_kthread_list(void *data) 401 { 402 struct vhost_worker *worker = data; 403 struct vhost_work *work, *work_next; 404 struct vhost_dev *dev = worker->dev; 405 struct llist_node *node; 406 407 kthread_use_mm(dev->mm); 408 409 for (;;) { 410 /* mb paired w/ kthread_stop */ 411 set_current_state(TASK_INTERRUPTIBLE); 412 413 if (kthread_should_stop()) { 414 __set_current_state(TASK_RUNNING); 415 break; 416 } 417 node = llist_del_all(&worker->work_list); 418 if (!node) 419 schedule(); 420 421 node = llist_reverse_order(node); 422 /* make sure flag is seen after deletion */ 423 smp_wmb(); 424 llist_for_each_entry_safe(work, work_next, node, node) { 425 clear_bit(VHOST_WORK_QUEUED, &work->flags); 426 __set_current_state(TASK_RUNNING); 427 kcov_remote_start_common(worker->kcov_handle); 428 work->fn(work); 429 kcov_remote_stop(); 430 cond_resched(); 431 } 432 } 433 kthread_unuse_mm(dev->mm); 434 435 return 0; 436 } 437 438 static bool vhost_run_work_list(void *data) 439 { 440 struct vhost_worker *worker = data; 441 struct vhost_work *work, *work_next; 442 struct llist_node *node; 443 444 node = llist_del_all(&worker->work_list); 445 if (node) { 446 __set_current_state(TASK_RUNNING); 447 448 node = llist_reverse_order(node); 449 /* make sure flag is seen after deletion */ 450 smp_wmb(); 451 llist_for_each_entry_safe(work, work_next, node, node) { 452 clear_bit(VHOST_WORK_QUEUED, &work->flags); 453 kcov_remote_start_common(worker->kcov_handle); 454 work->fn(work); 455 kcov_remote_stop(); 456 cond_resched(); 457 } 458 } 459 460 return !!node; 461 } 462 463 static void vhost_worker_killed(void *data) 464 { 465 struct vhost_worker *worker = data; 466 struct vhost_dev *dev = worker->dev; 467 struct vhost_virtqueue *vq; 468 int i, attach_cnt = 0; 469 470 mutex_lock(&worker->mutex); 471 worker->killed = true; 472 473 for (i = 0; i < dev->nvqs; i++) { 474 vq = dev->vqs[i]; 475 476 mutex_lock(&vq->mutex); 477 if (worker == 478 rcu_dereference_check(vq->worker, 479 lockdep_is_held(&vq->mutex))) { 480 rcu_assign_pointer(vq->worker, NULL); 481 attach_cnt++; 482 } 483 mutex_unlock(&vq->mutex); 484 } 485 486 worker->attachment_cnt -= attach_cnt; 487 if (attach_cnt) 488 synchronize_rcu(); 489 /* 490 * Finish vhost_worker_flush calls and any other works that snuck in 491 * before the synchronize_rcu. 492 */ 493 vhost_run_work_list(worker); 494 mutex_unlock(&worker->mutex); 495 } 496 497 static void vhost_vq_free_iovecs(struct vhost_virtqueue *vq) 498 { 499 kfree(vq->indirect); 500 vq->indirect = NULL; 501 kfree(vq->log); 502 vq->log = NULL; 503 kfree(vq->heads); 504 vq->heads = NULL; 505 kfree(vq->nheads); 506 vq->nheads = NULL; 507 } 508 509 /* Helper to allocate iovec buffers for all vqs. */ 510 static long vhost_dev_alloc_iovecs(struct vhost_dev *dev) 511 { 512 struct vhost_virtqueue *vq; 513 int i; 514 515 for (i = 0; i < dev->nvqs; ++i) { 516 vq = dev->vqs[i]; 517 vq->indirect = kmalloc_objs(*vq->indirect, UIO_MAXIOV); 518 vq->log = kmalloc_objs(*vq->log, dev->iov_limit); 519 vq->heads = kmalloc_objs(*vq->heads, dev->iov_limit); 520 vq->nheads = kmalloc_array(dev->iov_limit, sizeof(*vq->nheads), 521 GFP_KERNEL); 522 if (!vq->indirect || !vq->log || !vq->heads || !vq->nheads) 523 goto err_nomem; 524 } 525 return 0; 526 527 err_nomem: 528 for (; i >= 0; --i) 529 vhost_vq_free_iovecs(dev->vqs[i]); 530 return -ENOMEM; 531 } 532 533 static void vhost_dev_free_iovecs(struct vhost_dev *dev) 534 { 535 int i; 536 537 for (i = 0; i < dev->nvqs; ++i) 538 vhost_vq_free_iovecs(dev->vqs[i]); 539 } 540 541 bool vhost_exceeds_weight(struct vhost_virtqueue *vq, 542 int pkts, int total_len) 543 { 544 struct vhost_dev *dev = vq->dev; 545 546 if ((dev->byte_weight && total_len >= dev->byte_weight) || 547 pkts >= dev->weight) { 548 vhost_poll_queue(&vq->poll); 549 return true; 550 } 551 552 return false; 553 } 554 EXPORT_SYMBOL_GPL(vhost_exceeds_weight); 555 556 static size_t vhost_get_avail_size(struct vhost_virtqueue *vq, 557 unsigned int num) 558 { 559 size_t event __maybe_unused = 560 vhost_has_feature(vq, VIRTIO_RING_F_EVENT_IDX) ? 2 : 0; 561 562 return size_add(struct_size(vq->avail, ring, num), event); 563 } 564 565 static size_t vhost_get_used_size(struct vhost_virtqueue *vq, 566 unsigned int num) 567 { 568 size_t event __maybe_unused = 569 vhost_has_feature(vq, VIRTIO_RING_F_EVENT_IDX) ? 2 : 0; 570 571 return size_add(struct_size(vq->used, ring, num), event); 572 } 573 574 static size_t vhost_get_desc_size(struct vhost_virtqueue *vq, 575 unsigned int num) 576 { 577 return sizeof(*vq->desc) * num; 578 } 579 580 void vhost_dev_init(struct vhost_dev *dev, 581 struct vhost_virtqueue **vqs, int nvqs, 582 int iov_limit, int weight, int byte_weight, 583 bool use_worker, 584 int (*msg_handler)(struct vhost_dev *dev, u32 asid, 585 struct vhost_iotlb_msg *msg)) 586 { 587 struct vhost_virtqueue *vq; 588 int i; 589 590 dev->vqs = vqs; 591 dev->nvqs = nvqs; 592 mutex_init(&dev->mutex); 593 dev->log_ctx = NULL; 594 dev->umem = NULL; 595 dev->iotlb = NULL; 596 dev->mm = NULL; 597 dev->iov_limit = iov_limit; 598 dev->weight = weight; 599 dev->byte_weight = byte_weight; 600 dev->use_worker = use_worker; 601 dev->msg_handler = msg_handler; 602 dev->fork_owner = fork_from_owner_default; 603 init_waitqueue_head(&dev->wait); 604 INIT_LIST_HEAD(&dev->read_list); 605 INIT_LIST_HEAD(&dev->pending_list); 606 spin_lock_init(&dev->iotlb_lock); 607 xa_init_flags(&dev->worker_xa, XA_FLAGS_ALLOC); 608 609 for (i = 0; i < dev->nvqs; ++i) { 610 vq = dev->vqs[i]; 611 vq->log = NULL; 612 vq->indirect = NULL; 613 vq->heads = NULL; 614 vq->nheads = NULL; 615 vq->dev = dev; 616 mutex_init(&vq->mutex); 617 vhost_vq_reset(dev, vq); 618 if (vq->handle_kick) 619 vhost_poll_init(&vq->poll, vq->handle_kick, 620 EPOLLIN, dev, vq); 621 } 622 } 623 EXPORT_SYMBOL_GPL(vhost_dev_init); 624 625 /* Caller should have device mutex */ 626 long vhost_dev_check_owner(struct vhost_dev *dev) 627 { 628 /* Are you the owner? If not, I don't think you mean to do that */ 629 return dev->mm == current->mm ? 0 : -EPERM; 630 } 631 EXPORT_SYMBOL_GPL(vhost_dev_check_owner); 632 633 struct vhost_attach_cgroups_struct { 634 struct vhost_work work; 635 struct task_struct *owner; 636 int ret; 637 }; 638 639 static void vhost_attach_cgroups_work(struct vhost_work *work) 640 { 641 struct vhost_attach_cgroups_struct *s; 642 643 s = container_of(work, struct vhost_attach_cgroups_struct, work); 644 s->ret = cgroup_attach_task_all(s->owner, current); 645 } 646 647 static int vhost_attach_task_to_cgroups(struct vhost_worker *worker) 648 { 649 struct vhost_attach_cgroups_struct attach; 650 int saved_cnt; 651 652 attach.owner = current; 653 654 vhost_work_init(&attach.work, vhost_attach_cgroups_work); 655 vhost_worker_queue(worker, &attach.work); 656 657 mutex_lock(&worker->mutex); 658 659 /* 660 * Bypass attachment_cnt check in __vhost_worker_flush: 661 * Temporarily change it to INT_MAX to bypass the check 662 */ 663 saved_cnt = worker->attachment_cnt; 664 worker->attachment_cnt = INT_MAX; 665 __vhost_worker_flush(worker); 666 worker->attachment_cnt = saved_cnt; 667 668 mutex_unlock(&worker->mutex); 669 670 return attach.ret; 671 } 672 673 /* Caller should have device mutex */ 674 bool vhost_dev_has_owner(struct vhost_dev *dev) 675 { 676 return dev->mm; 677 } 678 EXPORT_SYMBOL_GPL(vhost_dev_has_owner); 679 680 static void vhost_attach_mm(struct vhost_dev *dev) 681 { 682 /* No owner, become one */ 683 if (dev->use_worker) { 684 dev->mm = get_task_mm(current); 685 } else { 686 /* vDPA device does not use worker thread, so there's 687 * no need to hold the address space for mm. This helps 688 * to avoid deadlock in the case of mmap() which may 689 * hold the refcnt of the file and depends on release 690 * method to remove vma. 691 */ 692 dev->mm = current->mm; 693 mmgrab(dev->mm); 694 } 695 } 696 697 static void vhost_detach_mm(struct vhost_dev *dev) 698 { 699 if (!dev->mm) 700 return; 701 702 if (dev->use_worker) 703 mmput(dev->mm); 704 else 705 mmdrop(dev->mm); 706 707 dev->mm = NULL; 708 } 709 710 static void vhost_worker_destroy(struct vhost_dev *dev, 711 struct vhost_worker *worker) 712 { 713 if (!worker) 714 return; 715 716 WARN_ON(!llist_empty(&worker->work_list)); 717 xa_erase(&dev->worker_xa, worker->id); 718 worker->ops->stop(worker); 719 kfree(worker); 720 } 721 722 static void vhost_workers_free(struct vhost_dev *dev) 723 { 724 struct vhost_worker *worker; 725 unsigned long i; 726 727 if (!dev->use_worker) 728 return; 729 730 for (i = 0; i < dev->nvqs; i++) 731 rcu_assign_pointer(dev->vqs[i]->worker, NULL); 732 /* 733 * Free the default worker we created and cleanup workers userspace 734 * created but couldn't clean up (it forgot or crashed). 735 */ 736 xa_for_each(&dev->worker_xa, i, worker) 737 vhost_worker_destroy(dev, worker); 738 xa_destroy(&dev->worker_xa); 739 } 740 741 static void vhost_task_wakeup(struct vhost_worker *worker) 742 { 743 return vhost_task_wake(worker->vtsk); 744 } 745 746 static void vhost_kthread_wakeup(struct vhost_worker *worker) 747 { 748 wake_up_process(worker->kthread_task); 749 } 750 751 static void vhost_task_do_stop(struct vhost_worker *worker) 752 { 753 return vhost_task_stop(worker->vtsk); 754 } 755 756 static void vhost_kthread_do_stop(struct vhost_worker *worker) 757 { 758 kthread_stop(worker->kthread_task); 759 } 760 761 static int vhost_task_worker_create(struct vhost_worker *worker, 762 struct vhost_dev *dev, const char *name) 763 { 764 struct vhost_task *vtsk; 765 u32 id; 766 int ret; 767 768 vtsk = vhost_task_create(vhost_run_work_list, vhost_worker_killed, 769 worker, name); 770 if (IS_ERR(vtsk)) 771 return PTR_ERR(vtsk); 772 773 worker->vtsk = vtsk; 774 vhost_task_start(vtsk); 775 ret = xa_alloc(&dev->worker_xa, &id, worker, xa_limit_32b, GFP_KERNEL); 776 if (ret < 0) { 777 vhost_task_do_stop(worker); 778 return ret; 779 } 780 worker->id = id; 781 return 0; 782 } 783 784 static int vhost_kthread_worker_create(struct vhost_worker *worker, 785 struct vhost_dev *dev, const char *name) 786 { 787 struct task_struct *task; 788 u32 id; 789 int ret; 790 791 task = kthread_create(vhost_run_work_kthread_list, worker, "%s", name); 792 if (IS_ERR(task)) 793 return PTR_ERR(task); 794 795 worker->kthread_task = task; 796 wake_up_process(task); 797 ret = xa_alloc(&dev->worker_xa, &id, worker, xa_limit_32b, GFP_KERNEL); 798 if (ret < 0) 799 goto stop_worker; 800 801 ret = vhost_attach_task_to_cgroups(worker); 802 if (ret) 803 goto free_id; 804 805 worker->id = id; 806 return 0; 807 808 free_id: 809 xa_erase(&dev->worker_xa, id); 810 stop_worker: 811 vhost_kthread_do_stop(worker); 812 return ret; 813 } 814 815 static const struct vhost_worker_ops kthread_ops = { 816 .create = vhost_kthread_worker_create, 817 .stop = vhost_kthread_do_stop, 818 .wakeup = vhost_kthread_wakeup, 819 }; 820 821 static const struct vhost_worker_ops vhost_task_ops = { 822 .create = vhost_task_worker_create, 823 .stop = vhost_task_do_stop, 824 .wakeup = vhost_task_wakeup, 825 }; 826 827 static struct vhost_worker *vhost_worker_create(struct vhost_dev *dev) 828 { 829 struct vhost_worker *worker; 830 char name[TASK_COMM_LEN]; 831 int ret; 832 const struct vhost_worker_ops *ops = dev->fork_owner ? &vhost_task_ops : 833 &kthread_ops; 834 835 worker = kzalloc_obj(*worker, GFP_KERNEL_ACCOUNT); 836 if (!worker) 837 return NULL; 838 839 worker->dev = dev; 840 worker->ops = ops; 841 snprintf(name, sizeof(name), "vhost-%d", current->pid); 842 843 mutex_init(&worker->mutex); 844 init_llist_head(&worker->work_list); 845 worker->kcov_handle = kcov_common_handle(); 846 ret = ops->create(worker, dev, name); 847 if (ret < 0) 848 goto free_worker; 849 850 return worker; 851 852 free_worker: 853 kfree(worker); 854 return NULL; 855 } 856 857 /* Caller must have device mutex */ 858 static void __vhost_vq_attach_worker(struct vhost_virtqueue *vq, 859 struct vhost_worker *worker) 860 { 861 struct vhost_worker *old_worker; 862 863 mutex_lock(&worker->mutex); 864 if (worker->killed) { 865 mutex_unlock(&worker->mutex); 866 return; 867 } 868 869 mutex_lock(&vq->mutex); 870 871 old_worker = rcu_dereference_check(vq->worker, 872 lockdep_is_held(&vq->mutex)); 873 rcu_assign_pointer(vq->worker, worker); 874 worker->attachment_cnt++; 875 876 if (!old_worker) { 877 mutex_unlock(&vq->mutex); 878 mutex_unlock(&worker->mutex); 879 return; 880 } 881 mutex_unlock(&vq->mutex); 882 mutex_unlock(&worker->mutex); 883 884 /* 885 * Take the worker mutex to make sure we see the work queued from 886 * device wide flushes which doesn't use RCU for execution. 887 */ 888 mutex_lock(&old_worker->mutex); 889 if (old_worker->killed) { 890 mutex_unlock(&old_worker->mutex); 891 return; 892 } 893 894 /* 895 * We don't want to call synchronize_rcu for every vq during setup 896 * because it will slow down VM startup. If we haven't done 897 * VHOST_SET_VRING_KICK and not done the driver specific 898 * SET_ENDPOINT/RUNNING then we can skip the sync since there will 899 * not be any works queued for scsi and net. 900 */ 901 mutex_lock(&vq->mutex); 902 if (!vhost_vq_get_backend(vq) && !vq->kick) { 903 mutex_unlock(&vq->mutex); 904 905 old_worker->attachment_cnt--; 906 mutex_unlock(&old_worker->mutex); 907 /* 908 * vsock can queue anytime after VHOST_VSOCK_SET_GUEST_CID. 909 * Warn if it adds support for multiple workers but forgets to 910 * handle the early queueing case. 911 */ 912 WARN_ON(!old_worker->attachment_cnt && 913 !llist_empty(&old_worker->work_list)); 914 return; 915 } 916 mutex_unlock(&vq->mutex); 917 918 /* Make sure new vq queue/flush/poll calls see the new worker */ 919 synchronize_rcu(); 920 /* Make sure whatever was queued gets run */ 921 __vhost_worker_flush(old_worker); 922 old_worker->attachment_cnt--; 923 mutex_unlock(&old_worker->mutex); 924 } 925 926 /* Caller must have device mutex */ 927 static int vhost_vq_attach_worker(struct vhost_virtqueue *vq, 928 struct vhost_vring_worker *info) 929 { 930 unsigned long index = info->worker_id; 931 struct vhost_dev *dev = vq->dev; 932 struct vhost_worker *worker; 933 934 if (!dev->use_worker) 935 return -EINVAL; 936 937 worker = xa_find(&dev->worker_xa, &index, UINT_MAX, XA_PRESENT); 938 if (!worker || worker->id != info->worker_id) 939 return -ENODEV; 940 941 __vhost_vq_attach_worker(vq, worker); 942 return 0; 943 } 944 945 /* Caller must have device mutex */ 946 static int vhost_new_worker(struct vhost_dev *dev, 947 struct vhost_worker_state *info) 948 { 949 struct vhost_worker *worker; 950 951 worker = vhost_worker_create(dev); 952 if (!worker) 953 return -ENOMEM; 954 955 info->worker_id = worker->id; 956 return 0; 957 } 958 959 /* Caller must have device mutex */ 960 static int vhost_free_worker(struct vhost_dev *dev, 961 struct vhost_worker_state *info) 962 { 963 unsigned long index = info->worker_id; 964 struct vhost_worker *worker; 965 966 worker = xa_find(&dev->worker_xa, &index, UINT_MAX, XA_PRESENT); 967 if (!worker || worker->id != info->worker_id) 968 return -ENODEV; 969 970 mutex_lock(&worker->mutex); 971 if (worker->attachment_cnt || worker->killed) { 972 mutex_unlock(&worker->mutex); 973 return -EBUSY; 974 } 975 /* 976 * A flush might have raced and snuck in before attachment_cnt was set 977 * to zero. Make sure flushes are flushed from the queue before 978 * freeing. 979 */ 980 __vhost_worker_flush(worker); 981 mutex_unlock(&worker->mutex); 982 983 vhost_worker_destroy(dev, worker); 984 return 0; 985 } 986 987 static int vhost_get_vq_from_user(struct vhost_dev *dev, void __user *argp, 988 struct vhost_virtqueue **vq, u32 *id) 989 { 990 u32 __user *idxp = argp; 991 u32 idx; 992 long r; 993 994 r = get_user(idx, idxp); 995 if (r < 0) 996 return r; 997 998 if (idx >= dev->nvqs) 999 return -ENOBUFS; 1000 1001 idx = array_index_nospec(idx, dev->nvqs); 1002 1003 *vq = dev->vqs[idx]; 1004 *id = idx; 1005 return 0; 1006 } 1007 1008 /* Caller must have device mutex */ 1009 long vhost_worker_ioctl(struct vhost_dev *dev, unsigned int ioctl, 1010 void __user *argp) 1011 { 1012 struct vhost_vring_worker ring_worker; 1013 struct vhost_worker_state state; 1014 struct vhost_worker *worker; 1015 struct vhost_virtqueue *vq; 1016 long ret; 1017 u32 idx; 1018 1019 if (!dev->use_worker) 1020 return -EINVAL; 1021 1022 if (!vhost_dev_has_owner(dev)) 1023 return -EINVAL; 1024 1025 ret = vhost_dev_check_owner(dev); 1026 if (ret) 1027 return ret; 1028 1029 switch (ioctl) { 1030 /* dev worker ioctls */ 1031 case VHOST_NEW_WORKER: 1032 /* 1033 * vhost_tasks will account for worker threads under the parent's 1034 * NPROC value but kthreads do not. To avoid userspace overflowing 1035 * the system with worker threads fork_owner must be true. 1036 */ 1037 if (!dev->fork_owner) 1038 return -EFAULT; 1039 1040 ret = vhost_new_worker(dev, &state); 1041 if (!ret && copy_to_user(argp, &state, sizeof(state))) 1042 ret = -EFAULT; 1043 return ret; 1044 case VHOST_FREE_WORKER: 1045 if (copy_from_user(&state, argp, sizeof(state))) 1046 return -EFAULT; 1047 return vhost_free_worker(dev, &state); 1048 /* vring worker ioctls */ 1049 case VHOST_ATTACH_VRING_WORKER: 1050 case VHOST_GET_VRING_WORKER: 1051 break; 1052 default: 1053 return -ENOIOCTLCMD; 1054 } 1055 1056 ret = vhost_get_vq_from_user(dev, argp, &vq, &idx); 1057 if (ret) 1058 return ret; 1059 1060 switch (ioctl) { 1061 case VHOST_ATTACH_VRING_WORKER: 1062 if (copy_from_user(&ring_worker, argp, sizeof(ring_worker))) { 1063 ret = -EFAULT; 1064 break; 1065 } 1066 1067 ret = vhost_vq_attach_worker(vq, &ring_worker); 1068 break; 1069 case VHOST_GET_VRING_WORKER: 1070 worker = rcu_dereference_check(vq->worker, 1071 lockdep_is_held(&dev->mutex)); 1072 if (!worker) { 1073 ret = -EINVAL; 1074 break; 1075 } 1076 1077 ring_worker.index = idx; 1078 ring_worker.worker_id = worker->id; 1079 1080 if (copy_to_user(argp, &ring_worker, sizeof(ring_worker))) 1081 ret = -EFAULT; 1082 break; 1083 default: 1084 ret = -ENOIOCTLCMD; 1085 break; 1086 } 1087 1088 return ret; 1089 } 1090 EXPORT_SYMBOL_GPL(vhost_worker_ioctl); 1091 1092 /* Caller should have device mutex */ 1093 long vhost_dev_set_owner(struct vhost_dev *dev) 1094 { 1095 struct vhost_worker *worker; 1096 int err, i; 1097 1098 /* Is there an owner already? */ 1099 if (vhost_dev_has_owner(dev)) { 1100 err = -EBUSY; 1101 goto err_mm; 1102 } 1103 1104 vhost_attach_mm(dev); 1105 1106 err = vhost_dev_alloc_iovecs(dev); 1107 if (err) 1108 goto err_iovecs; 1109 1110 if (dev->use_worker) { 1111 /* 1112 * This should be done last, because vsock can queue work 1113 * before VHOST_SET_OWNER so it simplifies the failure path 1114 * below since we don't have to worry about vsock queueing 1115 * while we free the worker. 1116 */ 1117 worker = vhost_worker_create(dev); 1118 if (!worker) { 1119 err = -ENOMEM; 1120 goto err_worker; 1121 } 1122 1123 for (i = 0; i < dev->nvqs; i++) 1124 __vhost_vq_attach_worker(dev->vqs[i], worker); 1125 } 1126 1127 return 0; 1128 1129 err_worker: 1130 vhost_dev_free_iovecs(dev); 1131 err_iovecs: 1132 vhost_detach_mm(dev); 1133 err_mm: 1134 return err; 1135 } 1136 EXPORT_SYMBOL_GPL(vhost_dev_set_owner); 1137 1138 static struct vhost_iotlb *iotlb_alloc(void) 1139 { 1140 return vhost_iotlb_alloc(max_iotlb_entries, 1141 VHOST_IOTLB_FLAG_RETIRE); 1142 } 1143 1144 struct vhost_iotlb *vhost_dev_reset_owner_prepare(void) 1145 { 1146 return iotlb_alloc(); 1147 } 1148 EXPORT_SYMBOL_GPL(vhost_dev_reset_owner_prepare); 1149 1150 /* Caller should have device mutex */ 1151 void vhost_dev_reset_owner(struct vhost_dev *dev, struct vhost_iotlb *umem) 1152 { 1153 int i; 1154 1155 vhost_dev_cleanup(dev); 1156 1157 dev->fork_owner = fork_from_owner_default; 1158 dev->umem = umem; 1159 /* We don't need VQ locks below since vhost_dev_cleanup makes sure 1160 * VQs aren't running. 1161 */ 1162 for (i = 0; i < dev->nvqs; ++i) 1163 dev->vqs[i]->umem = umem; 1164 } 1165 EXPORT_SYMBOL_GPL(vhost_dev_reset_owner); 1166 1167 void vhost_dev_stop(struct vhost_dev *dev) 1168 { 1169 int i; 1170 1171 for (i = 0; i < dev->nvqs; ++i) { 1172 if (dev->vqs[i]->kick && dev->vqs[i]->handle_kick) 1173 vhost_poll_stop(&dev->vqs[i]->poll); 1174 } 1175 1176 vhost_dev_flush(dev); 1177 } 1178 EXPORT_SYMBOL_GPL(vhost_dev_stop); 1179 1180 void vhost_clear_msg(struct vhost_dev *dev) 1181 { 1182 struct vhost_msg_node *node, *n; 1183 1184 spin_lock(&dev->iotlb_lock); 1185 1186 list_for_each_entry_safe(node, n, &dev->read_list, node) { 1187 list_del(&node->node); 1188 kfree(node); 1189 } 1190 1191 list_for_each_entry_safe(node, n, &dev->pending_list, node) { 1192 list_del(&node->node); 1193 kfree(node); 1194 } 1195 1196 spin_unlock(&dev->iotlb_lock); 1197 } 1198 EXPORT_SYMBOL_GPL(vhost_clear_msg); 1199 1200 void vhost_dev_cleanup(struct vhost_dev *dev) 1201 { 1202 int i; 1203 1204 for (i = 0; i < dev->nvqs; ++i) { 1205 if (dev->vqs[i]->error_ctx) 1206 eventfd_ctx_put(dev->vqs[i]->error_ctx); 1207 if (dev->vqs[i]->kick) 1208 fput(dev->vqs[i]->kick); 1209 if (dev->vqs[i]->call_ctx.ctx) 1210 eventfd_ctx_put(dev->vqs[i]->call_ctx.ctx); 1211 vhost_vq_reset(dev, dev->vqs[i]); 1212 } 1213 vhost_dev_free_iovecs(dev); 1214 if (dev->log_ctx) 1215 eventfd_ctx_put(dev->log_ctx); 1216 dev->log_ctx = NULL; 1217 /* No one will access memory at this point */ 1218 vhost_iotlb_free(dev->umem); 1219 dev->umem = NULL; 1220 vhost_iotlb_free(dev->iotlb); 1221 dev->iotlb = NULL; 1222 vhost_clear_msg(dev); 1223 wake_up_interruptible_poll(&dev->wait, EPOLLIN | EPOLLRDNORM); 1224 vhost_workers_free(dev); 1225 vhost_detach_mm(dev); 1226 } 1227 EXPORT_SYMBOL_GPL(vhost_dev_cleanup); 1228 1229 static bool log_access_ok(void __user *log_base, u64 addr, unsigned long sz) 1230 { 1231 u64 a = addr / VHOST_PAGE_SIZE / 8; 1232 1233 /* Make sure 64 bit math will not overflow. */ 1234 if (a > ULONG_MAX - (unsigned long)log_base || 1235 a + (unsigned long)log_base > ULONG_MAX) 1236 return false; 1237 1238 return access_ok(log_base + a, 1239 (sz + VHOST_PAGE_SIZE * 8 - 1) / VHOST_PAGE_SIZE / 8); 1240 } 1241 1242 /* Make sure 64 bit math will not overflow. */ 1243 static bool vhost_overflow(u64 uaddr, u64 size) 1244 { 1245 if (uaddr > ULONG_MAX || size > ULONG_MAX) 1246 return true; 1247 1248 if (!size) 1249 return false; 1250 1251 return uaddr > ULONG_MAX - size + 1; 1252 } 1253 1254 /* Caller should have vq mutex and device mutex. */ 1255 static bool vq_memory_access_ok(void __user *log_base, struct vhost_iotlb *umem, 1256 int log_all) 1257 { 1258 struct vhost_iotlb_map *map; 1259 1260 if (!umem) 1261 return false; 1262 1263 list_for_each_entry(map, &umem->list, link) { 1264 unsigned long a = map->addr; 1265 1266 if (vhost_overflow(map->addr, map->size)) 1267 return false; 1268 1269 1270 if (!access_ok((void __user *)a, map->size)) 1271 return false; 1272 else if (log_all && !log_access_ok(log_base, 1273 map->start, 1274 map->size)) 1275 return false; 1276 } 1277 return true; 1278 } 1279 1280 static inline void __user *vhost_vq_meta_fetch(struct vhost_virtqueue *vq, 1281 u64 addr, unsigned int size, 1282 int type) 1283 { 1284 const struct vhost_iotlb_map *map = vq->meta_iotlb[type]; 1285 1286 if (!map) 1287 return NULL; 1288 1289 return (void __user *)(uintptr_t)(map->addr + addr - map->start); 1290 } 1291 1292 /* Can we switch to this memory table? */ 1293 /* Caller should have device mutex but not vq mutex */ 1294 static bool memory_access_ok(struct vhost_dev *d, struct vhost_iotlb *umem, 1295 int log_all) 1296 { 1297 int i; 1298 1299 for (i = 0; i < d->nvqs; ++i) { 1300 bool ok; 1301 bool log; 1302 1303 mutex_lock(&d->vqs[i]->mutex); 1304 log = log_all || vhost_has_feature(d->vqs[i], VHOST_F_LOG_ALL); 1305 /* If ring is inactive, will check when it's enabled. */ 1306 if (d->vqs[i]->private_data) 1307 ok = vq_memory_access_ok(d->vqs[i]->log_base, 1308 umem, log); 1309 else 1310 ok = true; 1311 mutex_unlock(&d->vqs[i]->mutex); 1312 if (!ok) 1313 return false; 1314 } 1315 return true; 1316 } 1317 1318 static int translate_desc(struct vhost_virtqueue *vq, u64 addr, u32 len, 1319 struct iovec iov[], int iov_size, int access); 1320 1321 static int vhost_copy_to_user(struct vhost_virtqueue *vq, void __user *to, 1322 const void *from, unsigned size) 1323 { 1324 int ret; 1325 1326 if (!vq->iotlb) 1327 return __copy_to_user(to, from, size); 1328 else { 1329 /* This function should be called after iotlb 1330 * prefetch, which means we're sure that all vq 1331 * could be access through iotlb. So -EAGAIN should 1332 * not happen in this case. 1333 */ 1334 struct iov_iter t; 1335 void __user *uaddr = vhost_vq_meta_fetch(vq, 1336 (u64)(uintptr_t)to, size, 1337 VHOST_ADDR_USED); 1338 1339 if (uaddr) 1340 return __copy_to_user(uaddr, from, size); 1341 1342 ret = translate_desc(vq, (u64)(uintptr_t)to, size, vq->iotlb_iov, 1343 ARRAY_SIZE(vq->iotlb_iov), 1344 VHOST_ACCESS_WO); 1345 if (ret < 0) 1346 goto out; 1347 iov_iter_init(&t, ITER_DEST, vq->iotlb_iov, ret, size); 1348 ret = copy_to_iter(from, size, &t); 1349 if (ret == size) 1350 ret = 0; 1351 } 1352 out: 1353 return ret; 1354 } 1355 1356 static int vhost_copy_from_user(struct vhost_virtqueue *vq, void *to, 1357 void __user *from, unsigned size) 1358 { 1359 int ret; 1360 1361 if (!vq->iotlb) 1362 return __copy_from_user(to, from, size); 1363 else { 1364 /* This function should be called after iotlb 1365 * prefetch, which means we're sure that vq 1366 * could be access through iotlb. So -EAGAIN should 1367 * not happen in this case. 1368 */ 1369 void __user *uaddr = vhost_vq_meta_fetch(vq, 1370 (u64)(uintptr_t)from, size, 1371 VHOST_ADDR_DESC); 1372 struct iov_iter f; 1373 1374 if (uaddr) 1375 return __copy_from_user(to, uaddr, size); 1376 1377 ret = translate_desc(vq, (u64)(uintptr_t)from, size, vq->iotlb_iov, 1378 ARRAY_SIZE(vq->iotlb_iov), 1379 VHOST_ACCESS_RO); 1380 if (ret < 0) { 1381 vq_err(vq, "IOTLB translation failure: uaddr " 1382 "%p size 0x%llx\n", from, 1383 (unsigned long long) size); 1384 goto out; 1385 } 1386 iov_iter_init(&f, ITER_SOURCE, vq->iotlb_iov, ret, size); 1387 ret = copy_from_iter(to, size, &f); 1388 if (ret == size) 1389 ret = 0; 1390 } 1391 1392 out: 1393 return ret; 1394 } 1395 1396 static void __user *__vhost_get_user_slow(struct vhost_virtqueue *vq, 1397 void __user *addr, unsigned int size, 1398 int type) 1399 { 1400 int ret; 1401 1402 ret = translate_desc(vq, (u64)(uintptr_t)addr, size, vq->iotlb_iov, 1403 ARRAY_SIZE(vq->iotlb_iov), 1404 VHOST_ACCESS_RO); 1405 if (ret < 0) { 1406 vq_err(vq, "IOTLB translation failure: uaddr " 1407 "%p size 0x%llx\n", addr, 1408 (unsigned long long) size); 1409 return NULL; 1410 } 1411 1412 if (ret != 1 || vq->iotlb_iov[0].iov_len != size) { 1413 vq_err(vq, "Non atomic userspace memory access: uaddr " 1414 "%p size 0x%llx\n", addr, 1415 (unsigned long long) size); 1416 return NULL; 1417 } 1418 1419 return vq->iotlb_iov[0].iov_base; 1420 } 1421 1422 /* This function should be called after iotlb 1423 * prefetch, which means we're sure that vq 1424 * could be access through iotlb. So -EAGAIN should 1425 * not happen in this case. 1426 */ 1427 static inline void __user *__vhost_get_user(struct vhost_virtqueue *vq, 1428 void __user *addr, unsigned int size, 1429 int type) 1430 { 1431 void __user *uaddr = vhost_vq_meta_fetch(vq, 1432 (u64)(uintptr_t)addr, size, type); 1433 if (uaddr) 1434 return uaddr; 1435 1436 return __vhost_get_user_slow(vq, addr, size, type); 1437 } 1438 1439 #define vhost_put_user(vq, x, ptr) \ 1440 ({ \ 1441 int ret; \ 1442 if (!vq->iotlb) { \ 1443 ret = put_user(x, ptr); \ 1444 } else { \ 1445 __typeof__(ptr) to = \ 1446 (__typeof__(ptr)) __vhost_get_user(vq, ptr, \ 1447 sizeof(*ptr), VHOST_ADDR_USED); \ 1448 if (to != NULL) \ 1449 ret = put_user(x, to); \ 1450 else \ 1451 ret = -EFAULT; \ 1452 } \ 1453 ret; \ 1454 }) 1455 1456 static inline int vhost_put_avail_event(struct vhost_virtqueue *vq) 1457 { 1458 return vhost_put_user(vq, cpu_to_vhost16(vq, vq->avail_idx), 1459 vhost_avail_event(vq)); 1460 } 1461 1462 static inline int vhost_put_used(struct vhost_virtqueue *vq, 1463 struct vring_used_elem *head, int idx, 1464 int count) 1465 { 1466 return vhost_copy_to_user(vq, vq->used->ring + idx, head, 1467 count * sizeof(*head)); 1468 } 1469 1470 static inline int vhost_put_used_flags(struct vhost_virtqueue *vq) 1471 1472 { 1473 return vhost_put_user(vq, cpu_to_vhost16(vq, vq->used_flags), 1474 &vq->used->flags); 1475 } 1476 1477 static inline int vhost_put_used_idx(struct vhost_virtqueue *vq) 1478 1479 { 1480 return vhost_put_user(vq, cpu_to_vhost16(vq, vq->last_used_idx), 1481 &vq->used->idx); 1482 } 1483 1484 #define vhost_get_user(vq, x, ptr, type) \ 1485 ({ \ 1486 int ret; \ 1487 if (!vq->iotlb) { \ 1488 ret = get_user(x, ptr); \ 1489 } else { \ 1490 __typeof__(ptr) from = \ 1491 (__typeof__(ptr)) __vhost_get_user(vq, ptr, \ 1492 sizeof(*ptr), \ 1493 type); \ 1494 if (from != NULL) \ 1495 ret = get_user(x, from); \ 1496 else \ 1497 ret = -EFAULT; \ 1498 } \ 1499 ret; \ 1500 }) 1501 1502 #define vhost_get_avail(vq, x, ptr) \ 1503 vhost_get_user(vq, x, ptr, VHOST_ADDR_AVAIL) 1504 1505 #define vhost_get_used(vq, x, ptr) \ 1506 vhost_get_user(vq, x, ptr, VHOST_ADDR_USED) 1507 1508 static void vhost_dev_lock_vqs(struct vhost_dev *d) 1509 { 1510 int i = 0; 1511 for (i = 0; i < d->nvqs; ++i) 1512 mutex_lock_nested(&d->vqs[i]->mutex, i); 1513 } 1514 1515 static void vhost_dev_unlock_vqs(struct vhost_dev *d) 1516 { 1517 int i = 0; 1518 for (i = 0; i < d->nvqs; ++i) 1519 mutex_unlock(&d->vqs[i]->mutex); 1520 } 1521 1522 static inline int vhost_get_avail_idx(struct vhost_virtqueue *vq) 1523 { 1524 __virtio16 idx; 1525 int r; 1526 1527 r = vhost_get_avail(vq, idx, &vq->avail->idx); 1528 if (unlikely(r < 0)) { 1529 vq_err(vq, "Failed to access available index at %p (%d)\n", 1530 &vq->avail->idx, r); 1531 return r; 1532 } 1533 1534 /* Check it isn't doing very strange thing with available indexes */ 1535 vq->avail_idx = vhost16_to_cpu(vq, idx); 1536 if (unlikely((u16)(vq->avail_idx - vq->last_avail_idx) > vq->num)) { 1537 vq_err(vq, "Invalid available index change from %u to %u", 1538 vq->last_avail_idx, vq->avail_idx); 1539 return -EINVAL; 1540 } 1541 1542 /* We're done if there is nothing new */ 1543 if (vq->avail_idx == vq->last_avail_idx) 1544 return 0; 1545 1546 /* 1547 * We updated vq->avail_idx so we need a memory barrier between 1548 * the index read above and the caller reading avail ring entries. 1549 */ 1550 smp_rmb(); 1551 return 1; 1552 } 1553 1554 static inline int vhost_get_avail_head(struct vhost_virtqueue *vq, 1555 __virtio16 *head, int idx) 1556 { 1557 return vhost_get_avail(vq, *head, 1558 &vq->avail->ring[idx & (vq->num - 1)]); 1559 } 1560 1561 static inline int vhost_get_avail_flags(struct vhost_virtqueue *vq, 1562 __virtio16 *flags) 1563 { 1564 return vhost_get_avail(vq, *flags, &vq->avail->flags); 1565 } 1566 1567 static inline int vhost_get_used_event(struct vhost_virtqueue *vq, 1568 __virtio16 *event) 1569 { 1570 return vhost_get_avail(vq, *event, vhost_used_event(vq)); 1571 } 1572 1573 static inline int vhost_get_used_idx(struct vhost_virtqueue *vq, 1574 __virtio16 *idx) 1575 { 1576 return vhost_get_used(vq, *idx, &vq->used->idx); 1577 } 1578 1579 static inline int vhost_get_desc(struct vhost_virtqueue *vq, 1580 struct vring_desc *desc, int idx) 1581 { 1582 return vhost_copy_from_user(vq, desc, vq->desc + idx, sizeof(*desc)); 1583 } 1584 1585 static void vhost_iotlb_notify_vq(struct vhost_dev *d, 1586 struct vhost_iotlb_msg *msg) 1587 { 1588 struct vhost_msg_node *node, *n; 1589 1590 spin_lock(&d->iotlb_lock); 1591 1592 list_for_each_entry_safe(node, n, &d->pending_list, node) { 1593 struct vhost_iotlb_msg *vq_msg = &node->msg.iotlb; 1594 if (msg->iova <= vq_msg->iova && 1595 msg->iova + msg->size - 1 >= vq_msg->iova && 1596 vq_msg->type == VHOST_IOTLB_MISS) { 1597 vhost_poll_queue(&node->vq->poll); 1598 list_del(&node->node); 1599 kfree(node); 1600 } 1601 } 1602 1603 spin_unlock(&d->iotlb_lock); 1604 } 1605 1606 static bool umem_access_ok(u64 uaddr, u64 size, int access) 1607 { 1608 unsigned long a = uaddr; 1609 1610 /* Make sure 64 bit math will not overflow. */ 1611 if (vhost_overflow(uaddr, size)) 1612 return false; 1613 1614 if ((access & VHOST_ACCESS_RO) && 1615 !access_ok((void __user *)a, size)) 1616 return false; 1617 if ((access & VHOST_ACCESS_WO) && 1618 !access_ok((void __user *)a, size)) 1619 return false; 1620 return true; 1621 } 1622 1623 static int vhost_process_iotlb_msg(struct vhost_dev *dev, u32 asid, 1624 struct vhost_iotlb_msg *msg) 1625 { 1626 int ret = 0; 1627 1628 if (asid != 0) 1629 return -EINVAL; 1630 1631 mutex_lock(&dev->mutex); 1632 vhost_dev_lock_vqs(dev); 1633 switch (msg->type) { 1634 case VHOST_IOTLB_UPDATE: 1635 if (!dev->iotlb) { 1636 ret = -EFAULT; 1637 break; 1638 } 1639 if (!umem_access_ok(msg->uaddr, msg->size, msg->perm)) { 1640 ret = -EFAULT; 1641 break; 1642 } 1643 vhost_vq_meta_reset(dev); 1644 if (vhost_iotlb_add_range(dev->iotlb, msg->iova, 1645 msg->iova + msg->size - 1, 1646 msg->uaddr, msg->perm)) { 1647 ret = -ENOMEM; 1648 break; 1649 } 1650 vhost_iotlb_notify_vq(dev, msg); 1651 break; 1652 case VHOST_IOTLB_INVALIDATE: 1653 if (!dev->iotlb) { 1654 ret = -EFAULT; 1655 break; 1656 } 1657 vhost_vq_meta_reset(dev); 1658 vhost_iotlb_del_range(dev->iotlb, msg->iova, 1659 msg->iova + msg->size - 1); 1660 break; 1661 default: 1662 ret = -EINVAL; 1663 break; 1664 } 1665 1666 vhost_dev_unlock_vqs(dev); 1667 mutex_unlock(&dev->mutex); 1668 1669 return ret; 1670 } 1671 ssize_t vhost_chr_write_iter(struct vhost_dev *dev, 1672 struct iov_iter *from) 1673 { 1674 struct vhost_iotlb_msg msg; 1675 size_t offset; 1676 int type, ret; 1677 u32 asid = 0; 1678 1679 ret = copy_from_iter(&type, sizeof(type), from); 1680 if (ret != sizeof(type)) { 1681 ret = -EINVAL; 1682 goto done; 1683 } 1684 1685 switch (type) { 1686 case VHOST_IOTLB_MSG: 1687 /* There maybe a hole after type for V1 message type, 1688 * so skip it here. 1689 */ 1690 offset = offsetof(struct vhost_msg, iotlb) - sizeof(int); 1691 break; 1692 case VHOST_IOTLB_MSG_V2: 1693 if (vhost_backend_has_feature(dev->vqs[0], 1694 VHOST_BACKEND_F_IOTLB_ASID)) { 1695 ret = copy_from_iter(&asid, sizeof(asid), from); 1696 if (ret != sizeof(asid)) { 1697 ret = -EINVAL; 1698 goto done; 1699 } 1700 offset = 0; 1701 } else 1702 offset = sizeof(__u32); 1703 break; 1704 default: 1705 ret = -EINVAL; 1706 goto done; 1707 } 1708 1709 iov_iter_advance(from, offset); 1710 ret = copy_from_iter(&msg, sizeof(msg), from); 1711 if (ret != sizeof(msg)) { 1712 ret = -EINVAL; 1713 goto done; 1714 } 1715 1716 if (msg.type == VHOST_IOTLB_UPDATE && msg.size == 0) { 1717 ret = -EINVAL; 1718 goto done; 1719 } 1720 1721 if (dev->msg_handler) 1722 ret = dev->msg_handler(dev, asid, &msg); 1723 else 1724 ret = vhost_process_iotlb_msg(dev, asid, &msg); 1725 if (ret) { 1726 ret = -EFAULT; 1727 goto done; 1728 } 1729 1730 ret = (type == VHOST_IOTLB_MSG) ? sizeof(struct vhost_msg) : 1731 sizeof(struct vhost_msg_v2); 1732 done: 1733 return ret; 1734 } 1735 EXPORT_SYMBOL(vhost_chr_write_iter); 1736 1737 __poll_t vhost_chr_poll(struct file *file, struct vhost_dev *dev, 1738 poll_table *wait) 1739 { 1740 __poll_t mask = 0; 1741 1742 poll_wait(file, &dev->wait, wait); 1743 1744 if (!list_empty(&dev->read_list)) 1745 mask |= EPOLLIN | EPOLLRDNORM; 1746 1747 return mask; 1748 } 1749 EXPORT_SYMBOL(vhost_chr_poll); 1750 1751 ssize_t vhost_chr_read_iter(struct vhost_dev *dev, struct iov_iter *to, 1752 int noblock) 1753 { 1754 DEFINE_WAIT(wait); 1755 struct vhost_msg_node *node; 1756 ssize_t ret = 0; 1757 unsigned size = sizeof(struct vhost_msg); 1758 1759 if (iov_iter_count(to) < size) 1760 return 0; 1761 1762 while (1) { 1763 if (!noblock) 1764 prepare_to_wait(&dev->wait, &wait, 1765 TASK_INTERRUPTIBLE); 1766 1767 node = vhost_dequeue_msg(dev, &dev->read_list); 1768 if (node) 1769 break; 1770 if (noblock) { 1771 ret = -EAGAIN; 1772 break; 1773 } 1774 if (signal_pending(current)) { 1775 ret = -ERESTARTSYS; 1776 break; 1777 } 1778 if (!dev->iotlb) { 1779 ret = -EBADFD; 1780 break; 1781 } 1782 1783 schedule(); 1784 } 1785 1786 if (!noblock) 1787 finish_wait(&dev->wait, &wait); 1788 1789 if (node) { 1790 struct vhost_iotlb_msg *msg; 1791 void *start = &node->msg; 1792 1793 switch (node->msg.type) { 1794 case VHOST_IOTLB_MSG: 1795 size = sizeof(node->msg); 1796 msg = &node->msg.iotlb; 1797 break; 1798 case VHOST_IOTLB_MSG_V2: 1799 size = sizeof(node->msg_v2); 1800 msg = &node->msg_v2.iotlb; 1801 break; 1802 default: 1803 BUG(); 1804 break; 1805 } 1806 1807 ret = copy_to_iter(start, size, to); 1808 if (ret != size || msg->type != VHOST_IOTLB_MISS) { 1809 kfree(node); 1810 return ret; 1811 } 1812 vhost_enqueue_msg(dev, &dev->pending_list, node); 1813 } 1814 1815 return ret; 1816 } 1817 EXPORT_SYMBOL_GPL(vhost_chr_read_iter); 1818 1819 static int vhost_iotlb_miss(struct vhost_virtqueue *vq, u64 iova, int access) 1820 { 1821 struct vhost_dev *dev = vq->dev; 1822 struct vhost_msg_node *node; 1823 struct vhost_iotlb_msg *msg; 1824 bool v2 = vhost_backend_has_feature(vq, VHOST_BACKEND_F_IOTLB_MSG_V2); 1825 1826 node = vhost_new_msg(vq, v2 ? VHOST_IOTLB_MSG_V2 : VHOST_IOTLB_MSG); 1827 if (!node) 1828 return -ENOMEM; 1829 1830 if (v2) { 1831 node->msg_v2.type = VHOST_IOTLB_MSG_V2; 1832 msg = &node->msg_v2.iotlb; 1833 } else { 1834 msg = &node->msg.iotlb; 1835 } 1836 1837 msg->type = VHOST_IOTLB_MISS; 1838 msg->iova = iova; 1839 msg->perm = access; 1840 1841 vhost_enqueue_msg(dev, &dev->read_list, node); 1842 1843 return 0; 1844 } 1845 1846 static bool vq_access_ok(struct vhost_virtqueue *vq, unsigned int num, 1847 vring_desc_t __user *desc, 1848 vring_avail_t __user *avail, 1849 vring_used_t __user *used) 1850 1851 { 1852 /* If an IOTLB device is present, the vring addresses are 1853 * GIOVAs. Access validation occurs at prefetch time. */ 1854 if (vq->iotlb) 1855 return true; 1856 1857 return access_ok(desc, vhost_get_desc_size(vq, num)) && 1858 access_ok(avail, vhost_get_avail_size(vq, num)) && 1859 access_ok(used, vhost_get_used_size(vq, num)); 1860 } 1861 1862 static void vhost_vq_meta_update(struct vhost_virtqueue *vq, 1863 const struct vhost_iotlb_map *map, 1864 int type) 1865 { 1866 int access = (type == VHOST_ADDR_USED) ? 1867 VHOST_ACCESS_WO : VHOST_ACCESS_RO; 1868 1869 if (likely(map->perm & access)) 1870 vq->meta_iotlb[type] = map; 1871 } 1872 1873 static bool iotlb_access_ok(struct vhost_virtqueue *vq, 1874 int access, u64 addr, u64 len, int type) 1875 { 1876 const struct vhost_iotlb_map *map; 1877 struct vhost_iotlb *umem = vq->iotlb; 1878 u64 s = 0, size, orig_addr = addr, last = addr + len - 1; 1879 1880 if (vhost_vq_meta_fetch(vq, addr, len, type)) 1881 return true; 1882 1883 while (len > s) { 1884 map = vhost_iotlb_itree_first(umem, addr, last); 1885 if (map == NULL || map->start > addr) { 1886 vhost_iotlb_miss(vq, addr, access); 1887 return false; 1888 } else if (!(map->perm & access)) { 1889 /* Report the possible access violation by 1890 * request another translation from userspace. 1891 */ 1892 return false; 1893 } 1894 1895 size = map->size - addr + map->start; 1896 1897 if (orig_addr == addr && size >= len) 1898 vhost_vq_meta_update(vq, map, type); 1899 1900 s += size; 1901 addr += size; 1902 } 1903 1904 return true; 1905 } 1906 1907 int vq_meta_prefetch(struct vhost_virtqueue *vq) 1908 { 1909 unsigned int num = vq->num; 1910 1911 if (!vq->iotlb) 1912 return 1; 1913 1914 return iotlb_access_ok(vq, VHOST_MAP_RO, (u64)(uintptr_t)vq->desc, 1915 vhost_get_desc_size(vq, num), VHOST_ADDR_DESC) && 1916 iotlb_access_ok(vq, VHOST_MAP_RO, (u64)(uintptr_t)vq->avail, 1917 vhost_get_avail_size(vq, num), 1918 VHOST_ADDR_AVAIL) && 1919 iotlb_access_ok(vq, VHOST_MAP_WO, (u64)(uintptr_t)vq->used, 1920 vhost_get_used_size(vq, num), VHOST_ADDR_USED); 1921 } 1922 EXPORT_SYMBOL_GPL(vq_meta_prefetch); 1923 1924 /* Can we log writes? */ 1925 /* Caller should have device mutex but not vq mutex */ 1926 bool vhost_log_access_ok(struct vhost_dev *dev) 1927 { 1928 return memory_access_ok(dev, dev->umem, 1); 1929 } 1930 EXPORT_SYMBOL_GPL(vhost_log_access_ok); 1931 1932 static bool vq_log_used_access_ok(struct vhost_virtqueue *vq, 1933 void __user *log_base, 1934 bool log_used, 1935 u64 log_addr) 1936 { 1937 /* If an IOTLB device is present, log_addr is a GIOVA that 1938 * will never be logged by log_used(). */ 1939 if (vq->iotlb) 1940 return true; 1941 1942 return !log_used || log_access_ok(log_base, log_addr, 1943 vhost_get_used_size(vq, vq->num)); 1944 } 1945 1946 /* Verify access for write logging. */ 1947 /* Caller should have vq mutex and device mutex */ 1948 static bool vq_log_access_ok(struct vhost_virtqueue *vq, 1949 void __user *log_base) 1950 { 1951 return vq_memory_access_ok(log_base, vq->umem, 1952 vhost_has_feature(vq, VHOST_F_LOG_ALL)) && 1953 vq_log_used_access_ok(vq, log_base, vq->log_used, vq->log_addr); 1954 } 1955 1956 /* Can we start vq? */ 1957 /* Caller should have vq mutex and device mutex */ 1958 bool vhost_vq_access_ok(struct vhost_virtqueue *vq) 1959 { 1960 if (!vq_log_access_ok(vq, vq->log_base)) 1961 return false; 1962 1963 return vq_access_ok(vq, vq->num, vq->desc, vq->avail, vq->used); 1964 } 1965 EXPORT_SYMBOL_GPL(vhost_vq_access_ok); 1966 1967 static long vhost_set_memory(struct vhost_dev *d, struct vhost_memory __user *m) 1968 { 1969 struct vhost_memory mem, *newmem; 1970 struct vhost_memory_region *region; 1971 struct vhost_iotlb *newumem, *oldumem; 1972 unsigned long size = offsetof(struct vhost_memory, regions); 1973 int i; 1974 1975 if (copy_from_user(&mem, m, size)) 1976 return -EFAULT; 1977 if (mem.padding) 1978 return -EOPNOTSUPP; 1979 if (mem.nregions > max_mem_regions) 1980 return -E2BIG; 1981 newmem = kvzalloc_flex(*newmem, regions, mem.nregions); 1982 if (!newmem) 1983 return -ENOMEM; 1984 1985 memcpy(newmem, &mem, size); 1986 if (copy_from_user(newmem->regions, m->regions, 1987 flex_array_size(newmem, regions, mem.nregions))) { 1988 kvfree(newmem); 1989 return -EFAULT; 1990 } 1991 1992 newumem = iotlb_alloc(); 1993 if (!newumem) { 1994 kvfree(newmem); 1995 return -ENOMEM; 1996 } 1997 1998 for (region = newmem->regions; 1999 region < newmem->regions + mem.nregions; 2000 region++) { 2001 if (vhost_iotlb_add_range(newumem, 2002 region->guest_phys_addr, 2003 region->guest_phys_addr + 2004 region->memory_size - 1, 2005 region->userspace_addr, 2006 VHOST_MAP_RW)) 2007 goto err; 2008 } 2009 2010 if (!memory_access_ok(d, newumem, 0)) 2011 goto err; 2012 2013 oldumem = d->umem; 2014 d->umem = newumem; 2015 2016 /* All memory accesses are done under some VQ mutex. */ 2017 for (i = 0; i < d->nvqs; ++i) { 2018 mutex_lock(&d->vqs[i]->mutex); 2019 d->vqs[i]->umem = newumem; 2020 mutex_unlock(&d->vqs[i]->mutex); 2021 } 2022 2023 kvfree(newmem); 2024 vhost_iotlb_free(oldumem); 2025 return 0; 2026 2027 err: 2028 vhost_iotlb_free(newumem); 2029 kvfree(newmem); 2030 return -EFAULT; 2031 } 2032 2033 static long vhost_vring_set_num(struct vhost_dev *d, 2034 struct vhost_virtqueue *vq, 2035 void __user *argp) 2036 { 2037 struct vhost_vring_state s; 2038 2039 /* Resizing ring with an active backend? 2040 * You don't want to do that. */ 2041 if (vq->private_data) 2042 return -EBUSY; 2043 2044 if (copy_from_user(&s, argp, sizeof s)) 2045 return -EFAULT; 2046 2047 if (!s.num || s.num > 0xffff || (s.num & (s.num - 1))) 2048 return -EINVAL; 2049 vq->num = s.num; 2050 2051 return 0; 2052 } 2053 2054 static long vhost_vring_set_addr(struct vhost_dev *d, 2055 struct vhost_virtqueue *vq, 2056 void __user *argp) 2057 { 2058 struct vhost_vring_addr a; 2059 2060 if (copy_from_user(&a, argp, sizeof a)) 2061 return -EFAULT; 2062 if (a.flags & ~(0x1 << VHOST_VRING_F_LOG)) 2063 return -EOPNOTSUPP; 2064 2065 /* For 32bit, verify that the top 32bits of the user 2066 data are set to zero. */ 2067 if ((u64)(unsigned long)a.desc_user_addr != a.desc_user_addr || 2068 (u64)(unsigned long)a.used_user_addr != a.used_user_addr || 2069 (u64)(unsigned long)a.avail_user_addr != a.avail_user_addr) 2070 return -EFAULT; 2071 2072 /* Make sure it's safe to cast pointers to vring types. */ 2073 BUILD_BUG_ON(__alignof__ *vq->avail > VRING_AVAIL_ALIGN_SIZE); 2074 BUILD_BUG_ON(__alignof__ *vq->used > VRING_USED_ALIGN_SIZE); 2075 if ((a.avail_user_addr & (VRING_AVAIL_ALIGN_SIZE - 1)) || 2076 (a.used_user_addr & (VRING_USED_ALIGN_SIZE - 1)) || 2077 (a.log_guest_addr & (VRING_USED_ALIGN_SIZE - 1))) 2078 return -EINVAL; 2079 2080 /* We only verify access here if backend is configured. 2081 * If it is not, we don't as size might not have been setup. 2082 * We will verify when backend is configured. */ 2083 if (vq->private_data) { 2084 if (!vq_access_ok(vq, vq->num, 2085 (void __user *)(unsigned long)a.desc_user_addr, 2086 (void __user *)(unsigned long)a.avail_user_addr, 2087 (void __user *)(unsigned long)a.used_user_addr)) 2088 return -EINVAL; 2089 2090 /* Also validate log access for used ring if enabled. */ 2091 if (!vq_log_used_access_ok(vq, vq->log_base, 2092 a.flags & (0x1 << VHOST_VRING_F_LOG), 2093 a.log_guest_addr)) 2094 return -EINVAL; 2095 } 2096 2097 vq->log_used = !!(a.flags & (0x1 << VHOST_VRING_F_LOG)); 2098 vq->desc = (void __user *)(unsigned long)a.desc_user_addr; 2099 vq->avail = (void __user *)(unsigned long)a.avail_user_addr; 2100 vq->log_addr = a.log_guest_addr; 2101 vq->used = (void __user *)(unsigned long)a.used_user_addr; 2102 2103 return 0; 2104 } 2105 2106 static long vhost_vring_set_num_addr(struct vhost_dev *d, 2107 struct vhost_virtqueue *vq, 2108 unsigned int ioctl, 2109 void __user *argp) 2110 { 2111 long r; 2112 2113 mutex_lock(&vq->mutex); 2114 2115 switch (ioctl) { 2116 case VHOST_SET_VRING_NUM: 2117 r = vhost_vring_set_num(d, vq, argp); 2118 break; 2119 case VHOST_SET_VRING_ADDR: 2120 r = vhost_vring_set_addr(d, vq, argp); 2121 break; 2122 default: 2123 BUG(); 2124 } 2125 2126 mutex_unlock(&vq->mutex); 2127 2128 return r; 2129 } 2130 long vhost_vring_ioctl(struct vhost_dev *d, unsigned int ioctl, void __user *argp) 2131 { 2132 struct file *eventfp, *filep = NULL; 2133 bool pollstart = false, pollstop = false; 2134 struct eventfd_ctx *ctx = NULL; 2135 struct vhost_virtqueue *vq; 2136 struct vhost_vring_state s; 2137 struct vhost_vring_file f; 2138 u32 idx; 2139 long r; 2140 2141 r = vhost_get_vq_from_user(d, argp, &vq, &idx); 2142 if (r < 0) 2143 return r; 2144 2145 if (ioctl == VHOST_SET_VRING_NUM || 2146 ioctl == VHOST_SET_VRING_ADDR) { 2147 return vhost_vring_set_num_addr(d, vq, ioctl, argp); 2148 } 2149 2150 mutex_lock(&vq->mutex); 2151 2152 switch (ioctl) { 2153 case VHOST_SET_VRING_BASE: 2154 /* Moving base with an active backend? 2155 * You don't want to do that. */ 2156 if (vq->private_data) { 2157 r = -EBUSY; 2158 break; 2159 } 2160 if (copy_from_user(&s, argp, sizeof s)) { 2161 r = -EFAULT; 2162 break; 2163 } 2164 if (vhost_has_feature(vq, VIRTIO_F_RING_PACKED)) { 2165 vq->next_avail_head = vq->last_avail_idx = 2166 s.num & 0xffff; 2167 vq->last_used_idx = (s.num >> 16) & 0xffff; 2168 } else { 2169 if (s.num > 0xffff) { 2170 r = -EINVAL; 2171 break; 2172 } 2173 vq->next_avail_head = vq->last_avail_idx = s.num; 2174 } 2175 /* Forget the cached index value. */ 2176 vq->avail_idx = vq->last_avail_idx; 2177 break; 2178 case VHOST_GET_VRING_BASE: 2179 s.index = idx; 2180 if (vhost_has_feature(vq, VIRTIO_F_RING_PACKED)) 2181 s.num = (u32)vq->last_avail_idx | ((u32)vq->last_used_idx << 16); 2182 else 2183 s.num = vq->last_avail_idx; 2184 if (copy_to_user(argp, &s, sizeof s)) 2185 r = -EFAULT; 2186 break; 2187 case VHOST_SET_VRING_KICK: 2188 if (copy_from_user(&f, argp, sizeof f)) { 2189 r = -EFAULT; 2190 break; 2191 } 2192 eventfp = f.fd == VHOST_FILE_UNBIND ? NULL : eventfd_fget(f.fd); 2193 if (IS_ERR(eventfp)) { 2194 r = PTR_ERR(eventfp); 2195 break; 2196 } 2197 if (eventfp != vq->kick) { 2198 pollstop = (filep = vq->kick) != NULL; 2199 pollstart = (vq->kick = eventfp) != NULL; 2200 } else 2201 filep = eventfp; 2202 break; 2203 case VHOST_SET_VRING_CALL: 2204 if (copy_from_user(&f, argp, sizeof f)) { 2205 r = -EFAULT; 2206 break; 2207 } 2208 ctx = f.fd == VHOST_FILE_UNBIND ? NULL : eventfd_ctx_fdget(f.fd); 2209 if (IS_ERR(ctx)) { 2210 r = PTR_ERR(ctx); 2211 break; 2212 } 2213 2214 swap(ctx, vq->call_ctx.ctx); 2215 break; 2216 case VHOST_SET_VRING_ERR: 2217 if (copy_from_user(&f, argp, sizeof f)) { 2218 r = -EFAULT; 2219 break; 2220 } 2221 ctx = f.fd == VHOST_FILE_UNBIND ? NULL : eventfd_ctx_fdget(f.fd); 2222 if (IS_ERR(ctx)) { 2223 r = PTR_ERR(ctx); 2224 break; 2225 } 2226 swap(ctx, vq->error_ctx); 2227 break; 2228 case VHOST_SET_VRING_ENDIAN: 2229 r = vhost_set_vring_endian(vq, argp); 2230 break; 2231 case VHOST_GET_VRING_ENDIAN: 2232 r = vhost_get_vring_endian(vq, idx, argp); 2233 break; 2234 case VHOST_SET_VRING_BUSYLOOP_TIMEOUT: 2235 if (copy_from_user(&s, argp, sizeof(s))) { 2236 r = -EFAULT; 2237 break; 2238 } 2239 vq->busyloop_timeout = s.num; 2240 break; 2241 case VHOST_GET_VRING_BUSYLOOP_TIMEOUT: 2242 s.index = idx; 2243 s.num = vq->busyloop_timeout; 2244 if (copy_to_user(argp, &s, sizeof(s))) 2245 r = -EFAULT; 2246 break; 2247 default: 2248 r = -ENOIOCTLCMD; 2249 } 2250 2251 if (pollstop && vq->handle_kick) 2252 vhost_poll_stop(&vq->poll); 2253 2254 if (!IS_ERR_OR_NULL(ctx)) 2255 eventfd_ctx_put(ctx); 2256 if (filep) 2257 fput(filep); 2258 2259 if (pollstart && vq->handle_kick) 2260 r = vhost_poll_start(&vq->poll, vq->kick); 2261 2262 mutex_unlock(&vq->mutex); 2263 2264 if (pollstop && vq->handle_kick) 2265 vhost_dev_flush(vq->poll.dev); 2266 return r; 2267 } 2268 EXPORT_SYMBOL_GPL(vhost_vring_ioctl); 2269 2270 int vhost_init_device_iotlb(struct vhost_dev *d) 2271 { 2272 struct vhost_iotlb *niotlb, *oiotlb; 2273 int i; 2274 2275 niotlb = iotlb_alloc(); 2276 if (!niotlb) 2277 return -ENOMEM; 2278 2279 oiotlb = d->iotlb; 2280 d->iotlb = niotlb; 2281 2282 for (i = 0; i < d->nvqs; ++i) { 2283 struct vhost_virtqueue *vq = d->vqs[i]; 2284 2285 mutex_lock(&vq->mutex); 2286 vq->iotlb = niotlb; 2287 __vhost_vq_meta_reset(vq); 2288 mutex_unlock(&vq->mutex); 2289 } 2290 2291 vhost_iotlb_free(oiotlb); 2292 2293 return 0; 2294 } 2295 EXPORT_SYMBOL_GPL(vhost_init_device_iotlb); 2296 2297 /* Caller must have device mutex */ 2298 long vhost_dev_ioctl(struct vhost_dev *d, unsigned int ioctl, void __user *argp) 2299 { 2300 struct eventfd_ctx *ctx; 2301 u64 p; 2302 long r; 2303 int i, fd; 2304 2305 /* If you are not the owner, you can become one */ 2306 if (ioctl == VHOST_SET_OWNER) { 2307 r = vhost_dev_set_owner(d); 2308 goto done; 2309 } 2310 2311 #ifdef CONFIG_VHOST_ENABLE_FORK_OWNER_CONTROL 2312 if (ioctl == VHOST_SET_FORK_FROM_OWNER) { 2313 /* Only allow modification before owner is set */ 2314 if (vhost_dev_has_owner(d)) { 2315 r = -EBUSY; 2316 goto done; 2317 } 2318 u8 fork_owner_val; 2319 2320 if (get_user(fork_owner_val, (u8 __user *)argp)) { 2321 r = -EFAULT; 2322 goto done; 2323 } 2324 if (fork_owner_val != VHOST_FORK_OWNER_TASK && 2325 fork_owner_val != VHOST_FORK_OWNER_KTHREAD) { 2326 r = -EINVAL; 2327 goto done; 2328 } 2329 d->fork_owner = !!fork_owner_val; 2330 r = 0; 2331 goto done; 2332 } 2333 if (ioctl == VHOST_GET_FORK_FROM_OWNER) { 2334 u8 fork_owner_val = d->fork_owner; 2335 2336 if (fork_owner_val != VHOST_FORK_OWNER_TASK && 2337 fork_owner_val != VHOST_FORK_OWNER_KTHREAD) { 2338 r = -EINVAL; 2339 goto done; 2340 } 2341 if (put_user(fork_owner_val, (u8 __user *)argp)) { 2342 r = -EFAULT; 2343 goto done; 2344 } 2345 r = 0; 2346 goto done; 2347 } 2348 #endif 2349 2350 /* You must be the owner to do anything else */ 2351 r = vhost_dev_check_owner(d); 2352 if (r) 2353 goto done; 2354 2355 switch (ioctl) { 2356 case VHOST_SET_MEM_TABLE: 2357 r = vhost_set_memory(d, argp); 2358 break; 2359 case VHOST_SET_LOG_BASE: 2360 if (copy_from_user(&p, argp, sizeof p)) { 2361 r = -EFAULT; 2362 break; 2363 } 2364 if ((u64)(unsigned long)p != p) { 2365 r = -EFAULT; 2366 break; 2367 } 2368 for (i = 0; i < d->nvqs; ++i) { 2369 struct vhost_virtqueue *vq; 2370 void __user *base = (void __user *)(unsigned long)p; 2371 vq = d->vqs[i]; 2372 mutex_lock(&vq->mutex); 2373 /* If ring is inactive, will check when it's enabled. */ 2374 if (vq->private_data && !vq_log_access_ok(vq, base)) 2375 r = -EFAULT; 2376 else 2377 vq->log_base = base; 2378 mutex_unlock(&vq->mutex); 2379 } 2380 break; 2381 case VHOST_SET_LOG_FD: 2382 r = get_user(fd, (int __user *)argp); 2383 if (r < 0) 2384 break; 2385 ctx = fd == VHOST_FILE_UNBIND ? NULL : eventfd_ctx_fdget(fd); 2386 if (IS_ERR(ctx)) { 2387 r = PTR_ERR(ctx); 2388 break; 2389 } 2390 swap(ctx, d->log_ctx); 2391 for (i = 0; i < d->nvqs; ++i) { 2392 mutex_lock(&d->vqs[i]->mutex); 2393 d->vqs[i]->log_ctx = d->log_ctx; 2394 mutex_unlock(&d->vqs[i]->mutex); 2395 } 2396 if (ctx) 2397 eventfd_ctx_put(ctx); 2398 break; 2399 default: 2400 r = -ENOIOCTLCMD; 2401 break; 2402 } 2403 done: 2404 return r; 2405 } 2406 EXPORT_SYMBOL_GPL(vhost_dev_ioctl); 2407 2408 /* TODO: This is really inefficient. We need something like get_user() 2409 * (instruction directly accesses the data, with an exception table entry 2410 * returning -EFAULT). See Documentation/arch/x86/exception-tables.rst. 2411 */ 2412 static int set_bit_to_user(int nr, void __user *addr) 2413 { 2414 unsigned long log = (unsigned long)addr; 2415 struct page *page; 2416 void *base; 2417 int bit = nr + (log % PAGE_SIZE) * 8; 2418 int r; 2419 2420 r = pin_user_pages_fast(log, 1, FOLL_WRITE, &page); 2421 if (r < 0) 2422 return r; 2423 BUG_ON(r != 1); 2424 base = kmap_atomic(page); 2425 set_bit(bit, base); 2426 kunmap_atomic(base); 2427 unpin_user_pages_dirty_lock(&page, 1, true); 2428 return 0; 2429 } 2430 2431 static int log_write(void __user *log_base, 2432 u64 write_address, u64 write_length) 2433 { 2434 u64 write_page = write_address / VHOST_PAGE_SIZE; 2435 int r; 2436 2437 if (!write_length) 2438 return 0; 2439 write_length += write_address % VHOST_PAGE_SIZE; 2440 for (;;) { 2441 u64 base = (u64)(unsigned long)log_base; 2442 u64 log = base + write_page / 8; 2443 int bit = write_page % 8; 2444 if ((u64)(unsigned long)log != log) 2445 return -EFAULT; 2446 r = set_bit_to_user(bit, (void __user *)(unsigned long)log); 2447 if (r < 0) 2448 return r; 2449 if (write_length <= VHOST_PAGE_SIZE) 2450 break; 2451 write_length -= VHOST_PAGE_SIZE; 2452 write_page += 1; 2453 } 2454 return r; 2455 } 2456 2457 static int log_write_hva(struct vhost_virtqueue *vq, u64 hva, u64 len) 2458 { 2459 struct vhost_iotlb *umem = vq->umem; 2460 struct vhost_iotlb_map *u; 2461 u64 start, end, l, min; 2462 int r; 2463 bool hit = false; 2464 2465 while (len) { 2466 min = len; 2467 /* More than one GPAs can be mapped into a single HVA. So 2468 * iterate all possible umems here to be safe. 2469 */ 2470 list_for_each_entry(u, &umem->list, link) { 2471 if (u->addr > hva - 1 + len || 2472 u->addr - 1 + u->size < hva) 2473 continue; 2474 start = max(u->addr, hva); 2475 end = min(u->addr - 1 + u->size, hva - 1 + len); 2476 l = end - start + 1; 2477 r = log_write(vq->log_base, 2478 u->start + start - u->addr, 2479 l); 2480 if (r < 0) 2481 return r; 2482 hit = true; 2483 min = min(l, min); 2484 } 2485 2486 if (!hit) 2487 return -EFAULT; 2488 2489 len -= min; 2490 hva += min; 2491 } 2492 2493 return 0; 2494 } 2495 2496 static int log_used(struct vhost_virtqueue *vq, u64 used_offset, u64 len) 2497 { 2498 struct iovec *iov = vq->log_iov; 2499 int i, ret; 2500 2501 if (!vq->iotlb) 2502 return log_write(vq->log_base, vq->log_addr + used_offset, len); 2503 2504 ret = translate_desc(vq, (uintptr_t)vq->used + used_offset, 2505 len, iov, 64, VHOST_ACCESS_WO); 2506 if (ret < 0) 2507 return ret; 2508 2509 for (i = 0; i < ret; i++) { 2510 ret = log_write_hva(vq, (uintptr_t)iov[i].iov_base, 2511 iov[i].iov_len); 2512 if (ret) 2513 return ret; 2514 } 2515 2516 return 0; 2517 } 2518 2519 /* 2520 * vhost_log_write() - Log in dirty page bitmap 2521 * @vq: vhost virtqueue. 2522 * @log: Array of dirty memory in GPA. 2523 * @log_num: Size of vhost_log arrary. 2524 * @len: The total length of memory buffer to log in the dirty bitmap. 2525 * Some drivers may only partially use pages shared via the last 2526 * vring descriptor (i.e. vhost-net RX buffer). 2527 * Use (len == U64_MAX) to indicate the driver would log all 2528 * pages of vring descriptors. 2529 * @iov: Array of dirty memory in HVA. 2530 * @count: Size of iovec array. 2531 */ 2532 int vhost_log_write(struct vhost_virtqueue *vq, struct vhost_log *log, 2533 unsigned int log_num, u64 len, struct iovec *iov, int count) 2534 { 2535 int i, r; 2536 2537 /* Make sure data written is seen before log. */ 2538 smp_wmb(); 2539 2540 if (vq->iotlb) { 2541 for (i = 0; i < count; i++) { 2542 r = log_write_hva(vq, (uintptr_t)iov[i].iov_base, 2543 iov[i].iov_len); 2544 if (r < 0) 2545 return r; 2546 } 2547 return 0; 2548 } 2549 2550 for (i = 0; i < log_num; ++i) { 2551 u64 l = min(log[i].len, len); 2552 r = log_write(vq->log_base, log[i].addr, l); 2553 if (r < 0) 2554 return r; 2555 2556 if (len != U64_MAX) 2557 len -= l; 2558 } 2559 2560 if (vq->log_ctx) 2561 eventfd_signal(vq->log_ctx); 2562 2563 return 0; 2564 } 2565 EXPORT_SYMBOL_GPL(vhost_log_write); 2566 2567 static int vhost_update_used_flags(struct vhost_virtqueue *vq) 2568 { 2569 void __user *used; 2570 if (vhost_put_used_flags(vq)) 2571 return -EFAULT; 2572 if (unlikely(vq->log_used)) { 2573 /* Make sure the flag is seen before log. */ 2574 smp_wmb(); 2575 /* Log used flag write. */ 2576 used = &vq->used->flags; 2577 log_used(vq, (used - (void __user *)vq->used), 2578 sizeof vq->used->flags); 2579 if (vq->log_ctx) 2580 eventfd_signal(vq->log_ctx); 2581 } 2582 return 0; 2583 } 2584 2585 static int vhost_update_avail_event(struct vhost_virtqueue *vq) 2586 { 2587 if (vhost_put_avail_event(vq)) 2588 return -EFAULT; 2589 if (unlikely(vq->log_used)) { 2590 void __user *used; 2591 /* Make sure the event is seen before log. */ 2592 smp_wmb(); 2593 /* Log avail event write */ 2594 used = vhost_avail_event(vq); 2595 log_used(vq, (used - (void __user *)vq->used), 2596 sizeof *vhost_avail_event(vq)); 2597 if (vq->log_ctx) 2598 eventfd_signal(vq->log_ctx); 2599 } 2600 return 0; 2601 } 2602 2603 int vhost_vq_init_access(struct vhost_virtqueue *vq) 2604 { 2605 __virtio16 last_used_idx; 2606 int r; 2607 bool is_le = vq->is_le; 2608 2609 if (!vq->private_data) 2610 return 0; 2611 2612 vhost_init_is_le(vq); 2613 2614 r = vhost_update_used_flags(vq); 2615 if (r) 2616 goto err; 2617 vq->signalled_used_valid = false; 2618 if (!vq->iotlb && 2619 !access_ok(&vq->used->idx, sizeof vq->used->idx)) { 2620 r = -EFAULT; 2621 goto err; 2622 } 2623 r = vhost_get_used_idx(vq, &last_used_idx); 2624 if (r) { 2625 vq_err(vq, "Can't access used idx at %p\n", 2626 &vq->used->idx); 2627 goto err; 2628 } 2629 vq->last_used_idx = vhost16_to_cpu(vq, last_used_idx); 2630 return 0; 2631 2632 err: 2633 vq->is_le = is_le; 2634 return r; 2635 } 2636 EXPORT_SYMBOL_GPL(vhost_vq_init_access); 2637 2638 static int translate_desc(struct vhost_virtqueue *vq, u64 addr, u32 len, 2639 struct iovec iov[], int iov_size, int access) 2640 { 2641 const struct vhost_iotlb_map *map; 2642 struct vhost_dev *dev = vq->dev; 2643 struct vhost_iotlb *umem = dev->iotlb ? dev->iotlb : dev->umem; 2644 struct iovec *_iov; 2645 u64 s = 0, last = addr + len - 1; 2646 int ret = 0; 2647 2648 while ((u64)len > s) { 2649 u64 size; 2650 if (unlikely(ret >= iov_size)) { 2651 ret = -ENOBUFS; 2652 break; 2653 } 2654 2655 map = vhost_iotlb_itree_first(umem, addr, last); 2656 if (map == NULL || map->start > addr) { 2657 if (umem != dev->iotlb) { 2658 ret = -EFAULT; 2659 break; 2660 } 2661 ret = -EAGAIN; 2662 break; 2663 } else if (!(map->perm & access)) { 2664 ret = -EPERM; 2665 break; 2666 } 2667 2668 _iov = iov + ret; 2669 size = map->size - addr + map->start; 2670 _iov->iov_len = min((u64)len - s, size); 2671 _iov->iov_base = (void __user *)(unsigned long) 2672 (map->addr + addr - map->start); 2673 s += size; 2674 addr += size; 2675 ++ret; 2676 } 2677 2678 if (ret == -EAGAIN) 2679 vhost_iotlb_miss(vq, addr, access); 2680 return ret; 2681 } 2682 2683 /* Each buffer in the virtqueues is actually a chain of descriptors. This 2684 * function returns the next descriptor in the chain, 2685 * or -1U if we're at the end. */ 2686 static unsigned next_desc(struct vhost_virtqueue *vq, struct vring_desc *desc) 2687 { 2688 unsigned int next; 2689 2690 /* If this descriptor says it doesn't chain, we're done. */ 2691 if (!(desc->flags & cpu_to_vhost16(vq, VRING_DESC_F_NEXT))) 2692 return -1U; 2693 2694 /* Check they're not leading us off end of descriptors. */ 2695 next = vhost16_to_cpu(vq, READ_ONCE(desc->next)); 2696 return next; 2697 } 2698 2699 static int get_indirect(struct vhost_virtqueue *vq, 2700 struct iovec iov[], unsigned int iov_size, 2701 unsigned int *out_num, unsigned int *in_num, 2702 struct vhost_log *log, unsigned int *log_num, 2703 struct vring_desc *indirect) 2704 { 2705 struct vring_desc desc; 2706 unsigned int i = 0, count, found = 0; 2707 u32 len = vhost32_to_cpu(vq, indirect->len); 2708 struct iov_iter from; 2709 int ret, access; 2710 2711 /* Sanity check */ 2712 if (unlikely(len % sizeof desc)) { 2713 vq_err(vq, "Invalid length in indirect descriptor: " 2714 "len 0x%llx not multiple of 0x%zx\n", 2715 (unsigned long long)len, 2716 sizeof desc); 2717 return -EINVAL; 2718 } 2719 2720 ret = translate_desc(vq, vhost64_to_cpu(vq, indirect->addr), len, vq->indirect, 2721 UIO_MAXIOV, VHOST_ACCESS_RO); 2722 if (unlikely(ret < 0)) { 2723 if (ret != -EAGAIN) 2724 vq_err(vq, "Translation failure %d in indirect.\n", ret); 2725 return ret; 2726 } 2727 iov_iter_init(&from, ITER_SOURCE, vq->indirect, ret, len); 2728 count = len / sizeof desc; 2729 /* Buffers are chained via a 16 bit next field, so 2730 * we can have at most 2^16 of these. */ 2731 if (unlikely(count > USHRT_MAX + 1)) { 2732 vq_err(vq, "Indirect buffer length too big: %d\n", 2733 indirect->len); 2734 return -E2BIG; 2735 } 2736 2737 do { 2738 unsigned iov_count = *in_num + *out_num; 2739 if (unlikely(++found > count)) { 2740 vq_err(vq, "Loop detected: last one at %u " 2741 "indirect size %u\n", 2742 i, count); 2743 return -EINVAL; 2744 } 2745 if (unlikely(!copy_from_iter_full(&desc, sizeof(desc), &from))) { 2746 vq_err(vq, "Failed indirect descriptor: idx %d, %zx\n", 2747 i, (size_t)vhost64_to_cpu(vq, indirect->addr) + i * sizeof desc); 2748 return -EINVAL; 2749 } 2750 if (unlikely(desc.flags & cpu_to_vhost16(vq, VRING_DESC_F_INDIRECT))) { 2751 vq_err(vq, "Nested indirect descriptor: idx %d, %zx\n", 2752 i, (size_t)vhost64_to_cpu(vq, indirect->addr) + i * sizeof desc); 2753 return -EINVAL; 2754 } 2755 2756 if (desc.flags & cpu_to_vhost16(vq, VRING_DESC_F_WRITE)) 2757 access = VHOST_ACCESS_WO; 2758 else 2759 access = VHOST_ACCESS_RO; 2760 2761 ret = translate_desc(vq, vhost64_to_cpu(vq, desc.addr), 2762 vhost32_to_cpu(vq, desc.len), iov + iov_count, 2763 iov_size - iov_count, access); 2764 if (unlikely(ret < 0)) { 2765 if (ret != -EAGAIN) 2766 vq_err(vq, "Translation failure %d indirect idx %d\n", 2767 ret, i); 2768 return ret; 2769 } 2770 /* If this is an input descriptor, increment that count. */ 2771 if (access == VHOST_ACCESS_WO) { 2772 *in_num += ret; 2773 if (unlikely(log && ret)) { 2774 log[*log_num].addr = vhost64_to_cpu(vq, desc.addr); 2775 log[*log_num].len = vhost32_to_cpu(vq, desc.len); 2776 ++*log_num; 2777 } 2778 } else { 2779 /* If it's an output descriptor, they're all supposed 2780 * to come before any input descriptors. */ 2781 if (unlikely(*in_num)) { 2782 vq_err(vq, "Indirect descriptor " 2783 "has out after in: idx %d\n", i); 2784 return -EINVAL; 2785 } 2786 *out_num += ret; 2787 } 2788 } while ((i = next_desc(vq, &desc)) != -1); 2789 return 0; 2790 } 2791 2792 /** 2793 * vhost_get_vq_desc_n - Fetch the next available descriptor chain and build iovecs 2794 * @vq: target virtqueue 2795 * @iov: array that receives the scatter/gather segments 2796 * @iov_size: capacity of @iov in elements 2797 * @out_num: the number of output segments 2798 * @in_num: the number of input segments 2799 * @log: optional array to record addr/len for each writable segment; NULL if unused 2800 * @log_num: optional output; number of entries written to @log when provided 2801 * @ndesc: optional output; number of descriptors consumed from the available ring 2802 * (useful for rollback via vhost_discard_vq_desc) 2803 * 2804 * Extracts one available descriptor chain from @vq and translates guest addresses 2805 * into host iovecs. 2806 * 2807 * On success, advances @vq->last_avail_idx by 1 and @vq->next_avail_head by the 2808 * number of descriptors consumed (also stored via @ndesc when non-NULL). 2809 * 2810 * Return: 2811 * - head index in [0, @vq->num) on success; 2812 * - @vq->num if no descriptor is currently available; 2813 * - negative errno on failure 2814 */ 2815 int vhost_get_vq_desc_n(struct vhost_virtqueue *vq, 2816 struct iovec iov[], unsigned int iov_size, 2817 unsigned int *out_num, unsigned int *in_num, 2818 struct vhost_log *log, unsigned int *log_num, 2819 unsigned int *ndesc) 2820 { 2821 bool in_order = vhost_has_feature(vq, VIRTIO_F_IN_ORDER); 2822 struct vring_desc desc; 2823 unsigned int i, head, found = 0; 2824 u16 last_avail_idx = vq->last_avail_idx; 2825 __virtio16 ring_head; 2826 int ret, access, c = 0; 2827 2828 if (vq->avail_idx == vq->last_avail_idx) { 2829 ret = vhost_get_avail_idx(vq); 2830 if (unlikely(ret < 0)) 2831 return ret; 2832 2833 if (!ret) 2834 return vq->num; 2835 } 2836 2837 if (in_order) 2838 head = vq->next_avail_head & (vq->num - 1); 2839 else { 2840 /* Grab the next descriptor number they're 2841 * advertising, and increment the index we've seen. */ 2842 if (unlikely(vhost_get_avail_head(vq, &ring_head, 2843 last_avail_idx))) { 2844 vq_err(vq, "Failed to read head: idx %d address %p\n", 2845 last_avail_idx, 2846 &vq->avail->ring[last_avail_idx % vq->num]); 2847 return -EFAULT; 2848 } 2849 head = vhost16_to_cpu(vq, ring_head); 2850 } 2851 2852 /* If their number is silly, that's an error. */ 2853 if (unlikely(head >= vq->num)) { 2854 vq_err(vq, "Guest says index %u > %u is available", 2855 head, vq->num); 2856 return -EINVAL; 2857 } 2858 2859 /* When we start there are none of either input nor output. */ 2860 *out_num = *in_num = 0; 2861 if (unlikely(log)) 2862 *log_num = 0; 2863 2864 i = head; 2865 do { 2866 unsigned iov_count = *in_num + *out_num; 2867 if (unlikely(i >= vq->num)) { 2868 vq_err(vq, "Desc index is %u > %u, head = %u", 2869 i, vq->num, head); 2870 return -EINVAL; 2871 } 2872 if (unlikely(++found > vq->num)) { 2873 vq_err(vq, "Loop detected: last one at %u " 2874 "vq size %u head %u\n", 2875 i, vq->num, head); 2876 return -EINVAL; 2877 } 2878 ret = vhost_get_desc(vq, &desc, i); 2879 if (unlikely(ret)) { 2880 vq_err(vq, "Failed to get descriptor: idx %d addr %p\n", 2881 i, vq->desc + i); 2882 return -EFAULT; 2883 } 2884 if (desc.flags & cpu_to_vhost16(vq, VRING_DESC_F_INDIRECT)) { 2885 ret = get_indirect(vq, iov, iov_size, 2886 out_num, in_num, 2887 log, log_num, &desc); 2888 if (unlikely(ret < 0)) { 2889 if (ret != -EAGAIN) 2890 vq_err(vq, "Failure detected " 2891 "in indirect descriptor at idx %d\n", i); 2892 return ret; 2893 } 2894 ++c; 2895 continue; 2896 } 2897 2898 if (desc.flags & cpu_to_vhost16(vq, VRING_DESC_F_WRITE)) 2899 access = VHOST_ACCESS_WO; 2900 else 2901 access = VHOST_ACCESS_RO; 2902 ret = translate_desc(vq, vhost64_to_cpu(vq, desc.addr), 2903 vhost32_to_cpu(vq, desc.len), iov + iov_count, 2904 iov_size - iov_count, access); 2905 if (unlikely(ret < 0)) { 2906 if (ret != -EAGAIN) 2907 vq_err(vq, "Translation failure %d descriptor idx %d\n", 2908 ret, i); 2909 return ret; 2910 } 2911 if (access == VHOST_ACCESS_WO) { 2912 /* If this is an input descriptor, 2913 * increment that count. */ 2914 *in_num += ret; 2915 if (unlikely(log && ret)) { 2916 log[*log_num].addr = vhost64_to_cpu(vq, desc.addr); 2917 log[*log_num].len = vhost32_to_cpu(vq, desc.len); 2918 ++*log_num; 2919 } 2920 } else { 2921 /* If it's an output descriptor, they're all supposed 2922 * to come before any input descriptors. */ 2923 if (unlikely(*in_num)) { 2924 vq_err(vq, "Descriptor has out after in: " 2925 "idx %d\n", i); 2926 return -EINVAL; 2927 } 2928 *out_num += ret; 2929 } 2930 ++c; 2931 } while ((i = next_desc(vq, &desc)) != -1); 2932 2933 /* On success, increment avail index. */ 2934 vq->last_avail_idx++; 2935 vq->next_avail_head += c; 2936 2937 if (ndesc) 2938 *ndesc = c; 2939 2940 /* Assume notifications from guest are disabled at this point, 2941 * if they aren't we would need to update avail_event index. */ 2942 BUG_ON(!(vq->used_flags & VRING_USED_F_NO_NOTIFY)); 2943 return head; 2944 } 2945 EXPORT_SYMBOL_GPL(vhost_get_vq_desc_n); 2946 2947 /* This looks in the virtqueue and for the first available buffer, and converts 2948 * it to an iovec for convenient access. Since descriptors consist of some 2949 * number of output then some number of input descriptors, it's actually two 2950 * iovecs, but we pack them into one and note how many of each there were. 2951 * 2952 * This function returns the descriptor number found, or vq->num (which is 2953 * never a valid descriptor number) if none was found. A negative code is 2954 * returned on error. 2955 */ 2956 int vhost_get_vq_desc(struct vhost_virtqueue *vq, 2957 struct iovec iov[], unsigned int iov_size, 2958 unsigned int *out_num, unsigned int *in_num, 2959 struct vhost_log *log, unsigned int *log_num) 2960 { 2961 return vhost_get_vq_desc_n(vq, iov, iov_size, out_num, in_num, 2962 log, log_num, NULL); 2963 } 2964 EXPORT_SYMBOL_GPL(vhost_get_vq_desc); 2965 2966 /** 2967 * vhost_discard_vq_desc - Reverse the effect of vhost_get_vq_desc_n() 2968 * @vq: target virtqueue 2969 * @nbufs: number of buffers to roll back 2970 * @ndesc: number of descriptors to roll back 2971 * 2972 * Rewinds the internal consumer cursors after a failed attempt to use buffers 2973 * returned by vhost_get_vq_desc_n(). 2974 */ 2975 void vhost_discard_vq_desc(struct vhost_virtqueue *vq, int nbufs, 2976 unsigned int ndesc) 2977 { 2978 vq->next_avail_head -= ndesc; 2979 vq->last_avail_idx -= nbufs; 2980 } 2981 EXPORT_SYMBOL_GPL(vhost_discard_vq_desc); 2982 2983 /* After we've used one of their buffers, we tell them about it. We'll then 2984 * want to notify the guest, using eventfd. */ 2985 int vhost_add_used(struct vhost_virtqueue *vq, unsigned int head, int len) 2986 { 2987 struct vring_used_elem heads = { 2988 cpu_to_vhost32(vq, head), 2989 cpu_to_vhost32(vq, len) 2990 }; 2991 u16 nheads = 1; 2992 2993 return vhost_add_used_n(vq, &heads, &nheads, 1); 2994 } 2995 EXPORT_SYMBOL_GPL(vhost_add_used); 2996 2997 static int __vhost_add_used_n(struct vhost_virtqueue *vq, 2998 struct vring_used_elem *heads, 2999 unsigned count) 3000 { 3001 vring_used_elem_t __user *used; 3002 u16 old, new; 3003 int start; 3004 3005 start = vq->last_used_idx & (vq->num - 1); 3006 used = vq->used->ring + start; 3007 if (vhost_put_used(vq, heads, start, count)) { 3008 vq_err(vq, "Failed to write used"); 3009 return -EFAULT; 3010 } 3011 if (unlikely(vq->log_used)) { 3012 /* Make sure data is seen before log. */ 3013 smp_wmb(); 3014 /* Log used ring entry write. */ 3015 log_used(vq, ((void __user *)used - (void __user *)vq->used), 3016 count * sizeof *used); 3017 } 3018 old = vq->last_used_idx; 3019 new = (vq->last_used_idx += count); 3020 /* If the driver never bothers to signal in a very long while, 3021 * used index might wrap around. If that happens, invalidate 3022 * signalled_used index we stored. TODO: make sure driver 3023 * signals at least once in 2^16 and remove this. */ 3024 if (unlikely((u16)(new - vq->signalled_used) < (u16)(new - old))) 3025 vq->signalled_used_valid = false; 3026 return 0; 3027 } 3028 3029 static int vhost_add_used_n_ooo(struct vhost_virtqueue *vq, 3030 struct vring_used_elem *heads, 3031 unsigned count) 3032 { 3033 int start, n, r; 3034 3035 start = vq->last_used_idx & (vq->num - 1); 3036 n = vq->num - start; 3037 if (n < count) { 3038 r = __vhost_add_used_n(vq, heads, n); 3039 if (r < 0) 3040 return r; 3041 heads += n; 3042 count -= n; 3043 } 3044 return __vhost_add_used_n(vq, heads, count); 3045 } 3046 3047 static int vhost_add_used_n_in_order(struct vhost_virtqueue *vq, 3048 struct vring_used_elem *heads, 3049 const u16 *nheads, 3050 unsigned count) 3051 { 3052 vring_used_elem_t __user *used; 3053 u16 old, new = vq->last_used_idx; 3054 int start, i; 3055 3056 if (!nheads) 3057 return -EINVAL; 3058 3059 start = vq->last_used_idx & (vq->num - 1); 3060 used = vq->used->ring + start; 3061 3062 for (i = 0; i < count; i++) { 3063 if (vhost_put_used(vq, &heads[i], start, 1)) { 3064 vq_err(vq, "Failed to write used"); 3065 return -EFAULT; 3066 } 3067 start += nheads[i]; 3068 new += nheads[i]; 3069 if (start >= vq->num) 3070 start -= vq->num; 3071 } 3072 3073 if (unlikely(vq->log_used)) { 3074 /* Make sure data is seen before log. */ 3075 smp_wmb(); 3076 /* Log used ring entry write. */ 3077 log_used(vq, ((void __user *)used - (void __user *)vq->used), 3078 (vq->num - start) * sizeof *used); 3079 if (start + count > vq->num) 3080 log_used(vq, 0, 3081 (start + count - vq->num) * sizeof *used); 3082 } 3083 3084 old = vq->last_used_idx; 3085 vq->last_used_idx = new; 3086 /* If the driver never bothers to signal in a very long while, 3087 * used index might wrap around. If that happens, invalidate 3088 * signalled_used index we stored. TODO: make sure driver 3089 * signals at least once in 2^16 and remove this. */ 3090 if (unlikely((u16)(new - vq->signalled_used) < (u16)(new - old))) 3091 vq->signalled_used_valid = false; 3092 return 0; 3093 } 3094 3095 /* After we've used one of their buffers, we tell them about it. We'll then 3096 * want to notify the guest, using eventfd. */ 3097 int vhost_add_used_n(struct vhost_virtqueue *vq, struct vring_used_elem *heads, 3098 u16 *nheads, unsigned count) 3099 { 3100 bool in_order = vhost_has_feature(vq, VIRTIO_F_IN_ORDER); 3101 int r; 3102 3103 if (!in_order || !nheads) 3104 r = vhost_add_used_n_ooo(vq, heads, count); 3105 else 3106 r = vhost_add_used_n_in_order(vq, heads, nheads, count); 3107 3108 if (r < 0) 3109 return r; 3110 3111 /* Make sure buffer is written before we update index. */ 3112 smp_wmb(); 3113 if (vhost_put_used_idx(vq)) { 3114 vq_err(vq, "Failed to increment used idx"); 3115 return -EFAULT; 3116 } 3117 if (unlikely(vq->log_used)) { 3118 /* Make sure used idx is seen before log. */ 3119 smp_wmb(); 3120 /* Log used index update. */ 3121 log_used(vq, offsetof(struct vring_used, idx), 3122 sizeof vq->used->idx); 3123 if (vq->log_ctx) 3124 eventfd_signal(vq->log_ctx); 3125 } 3126 return r; 3127 } 3128 EXPORT_SYMBOL_GPL(vhost_add_used_n); 3129 3130 static bool vhost_notify(struct vhost_dev *dev, struct vhost_virtqueue *vq) 3131 { 3132 __u16 old, new; 3133 __virtio16 event; 3134 bool v; 3135 /* Flush out used index updates. This is paired 3136 * with the barrier that the Guest executes when enabling 3137 * interrupts. */ 3138 smp_mb(); 3139 3140 if (vhost_has_feature(vq, VIRTIO_F_NOTIFY_ON_EMPTY) && 3141 unlikely(vq->avail_idx == vq->last_avail_idx)) 3142 return true; 3143 3144 if (!vhost_has_feature(vq, VIRTIO_RING_F_EVENT_IDX)) { 3145 __virtio16 flags; 3146 if (vhost_get_avail_flags(vq, &flags)) { 3147 vq_err(vq, "Failed to get flags"); 3148 return true; 3149 } 3150 return !(flags & cpu_to_vhost16(vq, VRING_AVAIL_F_NO_INTERRUPT)); 3151 } 3152 old = vq->signalled_used; 3153 v = vq->signalled_used_valid; 3154 new = vq->signalled_used = vq->last_used_idx; 3155 vq->signalled_used_valid = true; 3156 3157 if (unlikely(!v)) 3158 return true; 3159 3160 if (vhost_get_used_event(vq, &event)) { 3161 vq_err(vq, "Failed to get used event idx"); 3162 return true; 3163 } 3164 return vring_need_event(vhost16_to_cpu(vq, event), new, old); 3165 } 3166 3167 /* This actually signals the guest, using eventfd. */ 3168 void vhost_signal(struct vhost_dev *dev, struct vhost_virtqueue *vq) 3169 { 3170 /* Signal the Guest tell them we used something up. */ 3171 if (vq->call_ctx.ctx && vhost_notify(dev, vq)) 3172 eventfd_signal(vq->call_ctx.ctx); 3173 } 3174 EXPORT_SYMBOL_GPL(vhost_signal); 3175 3176 /* And here's the combo meal deal. Supersize me! */ 3177 void vhost_add_used_and_signal(struct vhost_dev *dev, 3178 struct vhost_virtqueue *vq, 3179 unsigned int head, int len) 3180 { 3181 vhost_add_used(vq, head, len); 3182 vhost_signal(dev, vq); 3183 } 3184 EXPORT_SYMBOL_GPL(vhost_add_used_and_signal); 3185 3186 /* multi-buffer version of vhost_add_used_and_signal */ 3187 void vhost_add_used_and_signal_n(struct vhost_dev *dev, 3188 struct vhost_virtqueue *vq, 3189 struct vring_used_elem *heads, 3190 u16 *nheads, 3191 unsigned count) 3192 { 3193 vhost_add_used_n(vq, heads, nheads, count); 3194 vhost_signal(dev, vq); 3195 } 3196 EXPORT_SYMBOL_GPL(vhost_add_used_and_signal_n); 3197 3198 /* return true if we're sure that available ring is empty */ 3199 bool vhost_vq_avail_empty(struct vhost_dev *dev, struct vhost_virtqueue *vq) 3200 { 3201 int r; 3202 3203 if (vq->avail_idx != vq->last_avail_idx) 3204 return false; 3205 3206 r = vhost_get_avail_idx(vq); 3207 3208 /* Note: we treat error as non-empty here */ 3209 return r == 0; 3210 } 3211 EXPORT_SYMBOL_GPL(vhost_vq_avail_empty); 3212 3213 /* OK, now we need to know about added descriptors. */ 3214 bool vhost_enable_notify(struct vhost_dev *dev, struct vhost_virtqueue *vq) 3215 { 3216 int r; 3217 3218 if (!(vq->used_flags & VRING_USED_F_NO_NOTIFY)) 3219 return false; 3220 vq->used_flags &= ~VRING_USED_F_NO_NOTIFY; 3221 if (!vhost_has_feature(vq, VIRTIO_RING_F_EVENT_IDX)) { 3222 r = vhost_update_used_flags(vq); 3223 if (r) { 3224 vq_err(vq, "Failed to enable notification at %p: %d\n", 3225 &vq->used->flags, r); 3226 return false; 3227 } 3228 } else { 3229 r = vhost_update_avail_event(vq); 3230 if (r) { 3231 vq_err(vq, "Failed to update avail event index at %p: %d\n", 3232 vhost_avail_event(vq), r); 3233 return false; 3234 } 3235 } 3236 /* They could have slipped one in as we were doing that: make 3237 * sure it's written, then check again. */ 3238 smp_mb(); 3239 3240 r = vhost_get_avail_idx(vq); 3241 /* Note: we treat error as empty here */ 3242 if (unlikely(r < 0)) 3243 return false; 3244 3245 return r; 3246 } 3247 EXPORT_SYMBOL_GPL(vhost_enable_notify); 3248 3249 /* We don't need to be notified again. */ 3250 void vhost_disable_notify(struct vhost_dev *dev, struct vhost_virtqueue *vq) 3251 { 3252 int r; 3253 3254 if (vq->used_flags & VRING_USED_F_NO_NOTIFY) 3255 return; 3256 vq->used_flags |= VRING_USED_F_NO_NOTIFY; 3257 if (!vhost_has_feature(vq, VIRTIO_RING_F_EVENT_IDX)) { 3258 r = vhost_update_used_flags(vq); 3259 if (r) 3260 vq_err(vq, "Failed to disable notification at %p: %d\n", 3261 &vq->used->flags, r); 3262 } 3263 } 3264 EXPORT_SYMBOL_GPL(vhost_disable_notify); 3265 3266 /* Create a new message. */ 3267 struct vhost_msg_node *vhost_new_msg(struct vhost_virtqueue *vq, int type) 3268 { 3269 /* Make sure all padding within the structure is initialized. */ 3270 struct vhost_msg_node *node = kzalloc_obj(*node); 3271 if (!node) 3272 return NULL; 3273 3274 node->vq = vq; 3275 node->msg.type = type; 3276 return node; 3277 } 3278 EXPORT_SYMBOL_GPL(vhost_new_msg); 3279 3280 void vhost_enqueue_msg(struct vhost_dev *dev, struct list_head *head, 3281 struct vhost_msg_node *node) 3282 { 3283 spin_lock(&dev->iotlb_lock); 3284 list_add_tail(&node->node, head); 3285 spin_unlock(&dev->iotlb_lock); 3286 3287 wake_up_interruptible_poll(&dev->wait, EPOLLIN | EPOLLRDNORM); 3288 } 3289 EXPORT_SYMBOL_GPL(vhost_enqueue_msg); 3290 3291 struct vhost_msg_node *vhost_dequeue_msg(struct vhost_dev *dev, 3292 struct list_head *head) 3293 { 3294 struct vhost_msg_node *node = NULL; 3295 3296 spin_lock(&dev->iotlb_lock); 3297 if (!list_empty(head)) { 3298 node = list_first_entry(head, struct vhost_msg_node, 3299 node); 3300 list_del(&node->node); 3301 } 3302 spin_unlock(&dev->iotlb_lock); 3303 3304 return node; 3305 } 3306 EXPORT_SYMBOL_GPL(vhost_dequeue_msg); 3307 3308 void vhost_set_backend_features(struct vhost_dev *dev, u64 features) 3309 { 3310 struct vhost_virtqueue *vq; 3311 int i; 3312 3313 mutex_lock(&dev->mutex); 3314 for (i = 0; i < dev->nvqs; ++i) { 3315 vq = dev->vqs[i]; 3316 mutex_lock(&vq->mutex); 3317 vq->acked_backend_features = features; 3318 mutex_unlock(&vq->mutex); 3319 } 3320 mutex_unlock(&dev->mutex); 3321 } 3322 EXPORT_SYMBOL_GPL(vhost_set_backend_features); 3323 3324 static int __init vhost_init(void) 3325 { 3326 return 0; 3327 } 3328 3329 static void __exit vhost_exit(void) 3330 { 3331 } 3332 3333 module_init(vhost_init); 3334 module_exit(vhost_exit); 3335 3336 MODULE_VERSION("0.0.1"); 3337 MODULE_LICENSE("GPL v2"); 3338 MODULE_AUTHOR("Michael S. Tsirkin"); 3339 MODULE_DESCRIPTION("Host kernel accelerator for virtio"); 3340