1 /* 2 * An async IO implementation for Linux 3 * Written by Benjamin LaHaise <bcrl@kvack.org> 4 * 5 * Implements an efficient asynchronous io interface. 6 * 7 * Copyright 2000, 2001, 2002 Red Hat, Inc. All Rights Reserved. 8 * Copyright 2018 Christoph Hellwig. 9 * 10 * See ../COPYING for licensing terms. 11 */ 12 #define pr_fmt(fmt) "%s: " fmt, __func__ 13 14 #include <linux/kernel.h> 15 #include <linux/init.h> 16 #include <linux/errno.h> 17 #include <linux/time.h> 18 #include <linux/aio_abi.h> 19 #include <linux/export.h> 20 #include <linux/syscalls.h> 21 #include <linux/backing-dev.h> 22 #include <linux/uio.h> 23 24 #include <linux/sched/signal.h> 25 #include <linux/fs.h> 26 #include <linux/file.h> 27 #include <linux/mm.h> 28 #include <linux/mman.h> 29 #include <linux/mmu_context.h> 30 #include <linux/percpu.h> 31 #include <linux/slab.h> 32 #include <linux/timer.h> 33 #include <linux/aio.h> 34 #include <linux/highmem.h> 35 #include <linux/workqueue.h> 36 #include <linux/security.h> 37 #include <linux/eventfd.h> 38 #include <linux/blkdev.h> 39 #include <linux/compat.h> 40 #include <linux/migrate.h> 41 #include <linux/ramfs.h> 42 #include <linux/percpu-refcount.h> 43 #include <linux/mount.h> 44 45 #include <asm/kmap_types.h> 46 #include <linux/uaccess.h> 47 48 #include "internal.h" 49 50 #define KIOCB_KEY 0 51 52 #define AIO_RING_MAGIC 0xa10a10a1 53 #define AIO_RING_COMPAT_FEATURES 1 54 #define AIO_RING_INCOMPAT_FEATURES 0 55 struct aio_ring { 56 unsigned id; /* kernel internal index number */ 57 unsigned nr; /* number of io_events */ 58 unsigned head; /* Written to by userland or under ring_lock 59 * mutex by aio_read_events_ring(). */ 60 unsigned tail; 61 62 unsigned magic; 63 unsigned compat_features; 64 unsigned incompat_features; 65 unsigned header_length; /* size of aio_ring */ 66 67 68 struct io_event io_events[0]; 69 }; /* 128 bytes + ring size */ 70 71 #define AIO_RING_PAGES 8 72 73 struct kioctx_table { 74 struct rcu_head rcu; 75 unsigned nr; 76 struct kioctx __rcu *table[]; 77 }; 78 79 struct kioctx_cpu { 80 unsigned reqs_available; 81 }; 82 83 struct ctx_rq_wait { 84 struct completion comp; 85 atomic_t count; 86 }; 87 88 struct kioctx { 89 struct percpu_ref users; 90 atomic_t dead; 91 92 struct percpu_ref reqs; 93 94 unsigned long user_id; 95 96 struct __percpu kioctx_cpu *cpu; 97 98 /* 99 * For percpu reqs_available, number of slots we move to/from global 100 * counter at a time: 101 */ 102 unsigned req_batch; 103 /* 104 * This is what userspace passed to io_setup(), it's not used for 105 * anything but counting against the global max_reqs quota. 106 * 107 * The real limit is nr_events - 1, which will be larger (see 108 * aio_setup_ring()) 109 */ 110 unsigned max_reqs; 111 112 /* Size of ringbuffer, in units of struct io_event */ 113 unsigned nr_events; 114 115 unsigned long mmap_base; 116 unsigned long mmap_size; 117 118 struct page **ring_pages; 119 long nr_pages; 120 121 struct rcu_work free_rwork; /* see free_ioctx() */ 122 123 /* 124 * signals when all in-flight requests are done 125 */ 126 struct ctx_rq_wait *rq_wait; 127 128 struct { 129 /* 130 * This counts the number of available slots in the ringbuffer, 131 * so we avoid overflowing it: it's decremented (if positive) 132 * when allocating a kiocb and incremented when the resulting 133 * io_event is pulled off the ringbuffer. 134 * 135 * We batch accesses to it with a percpu version. 136 */ 137 atomic_t reqs_available; 138 } ____cacheline_aligned_in_smp; 139 140 struct { 141 spinlock_t ctx_lock; 142 struct list_head active_reqs; /* used for cancellation */ 143 } ____cacheline_aligned_in_smp; 144 145 struct { 146 struct mutex ring_lock; 147 wait_queue_head_t wait; 148 } ____cacheline_aligned_in_smp; 149 150 struct { 151 unsigned tail; 152 unsigned completed_events; 153 spinlock_t completion_lock; 154 } ____cacheline_aligned_in_smp; 155 156 struct page *internal_pages[AIO_RING_PAGES]; 157 struct file *aio_ring_file; 158 159 unsigned id; 160 }; 161 162 struct fsync_iocb { 163 struct work_struct work; 164 struct file *file; 165 bool datasync; 166 }; 167 168 struct poll_iocb { 169 struct file *file; 170 __poll_t events; 171 struct wait_queue_head *head; 172 173 union { 174 struct wait_queue_entry wait; 175 struct work_struct work; 176 }; 177 }; 178 179 struct aio_kiocb { 180 union { 181 struct kiocb rw; 182 struct fsync_iocb fsync; 183 struct poll_iocb poll; 184 }; 185 186 struct kioctx *ki_ctx; 187 kiocb_cancel_fn *ki_cancel; 188 189 struct iocb __user *ki_user_iocb; /* user's aiocb */ 190 __u64 ki_user_data; /* user's data for completion */ 191 192 struct list_head ki_list; /* the aio core uses this 193 * for cancellation */ 194 195 /* 196 * If the aio_resfd field of the userspace iocb is not zero, 197 * this is the underlying eventfd context to deliver events to. 198 */ 199 struct eventfd_ctx *ki_eventfd; 200 }; 201 202 /*------ sysctl variables----*/ 203 static DEFINE_SPINLOCK(aio_nr_lock); 204 unsigned long aio_nr; /* current system wide number of aio requests */ 205 unsigned long aio_max_nr = 0x10000; /* system wide maximum number of aio requests */ 206 /*----end sysctl variables---*/ 207 208 static struct kmem_cache *kiocb_cachep; 209 static struct kmem_cache *kioctx_cachep; 210 211 static struct vfsmount *aio_mnt; 212 213 static const struct file_operations aio_ring_fops; 214 static const struct address_space_operations aio_ctx_aops; 215 216 static struct file *aio_private_file(struct kioctx *ctx, loff_t nr_pages) 217 { 218 struct qstr this = QSTR_INIT("[aio]", 5); 219 struct file *file; 220 struct path path; 221 struct inode *inode = alloc_anon_inode(aio_mnt->mnt_sb); 222 if (IS_ERR(inode)) 223 return ERR_CAST(inode); 224 225 inode->i_mapping->a_ops = &aio_ctx_aops; 226 inode->i_mapping->private_data = ctx; 227 inode->i_size = PAGE_SIZE * nr_pages; 228 229 path.dentry = d_alloc_pseudo(aio_mnt->mnt_sb, &this); 230 if (!path.dentry) { 231 iput(inode); 232 return ERR_PTR(-ENOMEM); 233 } 234 path.mnt = mntget(aio_mnt); 235 236 d_instantiate(path.dentry, inode); 237 file = alloc_file(&path, FMODE_READ | FMODE_WRITE, &aio_ring_fops); 238 if (IS_ERR(file)) { 239 path_put(&path); 240 return file; 241 } 242 243 file->f_flags = O_RDWR; 244 return file; 245 } 246 247 static struct dentry *aio_mount(struct file_system_type *fs_type, 248 int flags, const char *dev_name, void *data) 249 { 250 static const struct dentry_operations ops = { 251 .d_dname = simple_dname, 252 }; 253 struct dentry *root = mount_pseudo(fs_type, "aio:", NULL, &ops, 254 AIO_RING_MAGIC); 255 256 if (!IS_ERR(root)) 257 root->d_sb->s_iflags |= SB_I_NOEXEC; 258 return root; 259 } 260 261 /* aio_setup 262 * Creates the slab caches used by the aio routines, panic on 263 * failure as this is done early during the boot sequence. 264 */ 265 static int __init aio_setup(void) 266 { 267 static struct file_system_type aio_fs = { 268 .name = "aio", 269 .mount = aio_mount, 270 .kill_sb = kill_anon_super, 271 }; 272 aio_mnt = kern_mount(&aio_fs); 273 if (IS_ERR(aio_mnt)) 274 panic("Failed to create aio fs mount."); 275 276 kiocb_cachep = KMEM_CACHE(aio_kiocb, SLAB_HWCACHE_ALIGN|SLAB_PANIC); 277 kioctx_cachep = KMEM_CACHE(kioctx,SLAB_HWCACHE_ALIGN|SLAB_PANIC); 278 return 0; 279 } 280 __initcall(aio_setup); 281 282 static void put_aio_ring_file(struct kioctx *ctx) 283 { 284 struct file *aio_ring_file = ctx->aio_ring_file; 285 struct address_space *i_mapping; 286 287 if (aio_ring_file) { 288 truncate_setsize(file_inode(aio_ring_file), 0); 289 290 /* Prevent further access to the kioctx from migratepages */ 291 i_mapping = aio_ring_file->f_mapping; 292 spin_lock(&i_mapping->private_lock); 293 i_mapping->private_data = NULL; 294 ctx->aio_ring_file = NULL; 295 spin_unlock(&i_mapping->private_lock); 296 297 fput(aio_ring_file); 298 } 299 } 300 301 static void aio_free_ring(struct kioctx *ctx) 302 { 303 int i; 304 305 /* Disconnect the kiotx from the ring file. This prevents future 306 * accesses to the kioctx from page migration. 307 */ 308 put_aio_ring_file(ctx); 309 310 for (i = 0; i < ctx->nr_pages; i++) { 311 struct page *page; 312 pr_debug("pid(%d) [%d] page->count=%d\n", current->pid, i, 313 page_count(ctx->ring_pages[i])); 314 page = ctx->ring_pages[i]; 315 if (!page) 316 continue; 317 ctx->ring_pages[i] = NULL; 318 put_page(page); 319 } 320 321 if (ctx->ring_pages && ctx->ring_pages != ctx->internal_pages) { 322 kfree(ctx->ring_pages); 323 ctx->ring_pages = NULL; 324 } 325 } 326 327 static int aio_ring_mremap(struct vm_area_struct *vma) 328 { 329 struct file *file = vma->vm_file; 330 struct mm_struct *mm = vma->vm_mm; 331 struct kioctx_table *table; 332 int i, res = -EINVAL; 333 334 spin_lock(&mm->ioctx_lock); 335 rcu_read_lock(); 336 table = rcu_dereference(mm->ioctx_table); 337 for (i = 0; i < table->nr; i++) { 338 struct kioctx *ctx; 339 340 ctx = rcu_dereference(table->table[i]); 341 if (ctx && ctx->aio_ring_file == file) { 342 if (!atomic_read(&ctx->dead)) { 343 ctx->user_id = ctx->mmap_base = vma->vm_start; 344 res = 0; 345 } 346 break; 347 } 348 } 349 350 rcu_read_unlock(); 351 spin_unlock(&mm->ioctx_lock); 352 return res; 353 } 354 355 static const struct vm_operations_struct aio_ring_vm_ops = { 356 .mremap = aio_ring_mremap, 357 #if IS_ENABLED(CONFIG_MMU) 358 .fault = filemap_fault, 359 .map_pages = filemap_map_pages, 360 .page_mkwrite = filemap_page_mkwrite, 361 #endif 362 }; 363 364 static int aio_ring_mmap(struct file *file, struct vm_area_struct *vma) 365 { 366 vma->vm_flags |= VM_DONTEXPAND; 367 vma->vm_ops = &aio_ring_vm_ops; 368 return 0; 369 } 370 371 static const struct file_operations aio_ring_fops = { 372 .mmap = aio_ring_mmap, 373 }; 374 375 #if IS_ENABLED(CONFIG_MIGRATION) 376 static int aio_migratepage(struct address_space *mapping, struct page *new, 377 struct page *old, enum migrate_mode mode) 378 { 379 struct kioctx *ctx; 380 unsigned long flags; 381 pgoff_t idx; 382 int rc; 383 384 /* 385 * We cannot support the _NO_COPY case here, because copy needs to 386 * happen under the ctx->completion_lock. That does not work with the 387 * migration workflow of MIGRATE_SYNC_NO_COPY. 388 */ 389 if (mode == MIGRATE_SYNC_NO_COPY) 390 return -EINVAL; 391 392 rc = 0; 393 394 /* mapping->private_lock here protects against the kioctx teardown. */ 395 spin_lock(&mapping->private_lock); 396 ctx = mapping->private_data; 397 if (!ctx) { 398 rc = -EINVAL; 399 goto out; 400 } 401 402 /* The ring_lock mutex. The prevents aio_read_events() from writing 403 * to the ring's head, and prevents page migration from mucking in 404 * a partially initialized kiotx. 405 */ 406 if (!mutex_trylock(&ctx->ring_lock)) { 407 rc = -EAGAIN; 408 goto out; 409 } 410 411 idx = old->index; 412 if (idx < (pgoff_t)ctx->nr_pages) { 413 /* Make sure the old page hasn't already been changed */ 414 if (ctx->ring_pages[idx] != old) 415 rc = -EAGAIN; 416 } else 417 rc = -EINVAL; 418 419 if (rc != 0) 420 goto out_unlock; 421 422 /* Writeback must be complete */ 423 BUG_ON(PageWriteback(old)); 424 get_page(new); 425 426 rc = migrate_page_move_mapping(mapping, new, old, NULL, mode, 1); 427 if (rc != MIGRATEPAGE_SUCCESS) { 428 put_page(new); 429 goto out_unlock; 430 } 431 432 /* Take completion_lock to prevent other writes to the ring buffer 433 * while the old page is copied to the new. This prevents new 434 * events from being lost. 435 */ 436 spin_lock_irqsave(&ctx->completion_lock, flags); 437 migrate_page_copy(new, old); 438 BUG_ON(ctx->ring_pages[idx] != old); 439 ctx->ring_pages[idx] = new; 440 spin_unlock_irqrestore(&ctx->completion_lock, flags); 441 442 /* The old page is no longer accessible. */ 443 put_page(old); 444 445 out_unlock: 446 mutex_unlock(&ctx->ring_lock); 447 out: 448 spin_unlock(&mapping->private_lock); 449 return rc; 450 } 451 #endif 452 453 static const struct address_space_operations aio_ctx_aops = { 454 .set_page_dirty = __set_page_dirty_no_writeback, 455 #if IS_ENABLED(CONFIG_MIGRATION) 456 .migratepage = aio_migratepage, 457 #endif 458 }; 459 460 static int aio_setup_ring(struct kioctx *ctx, unsigned int nr_events) 461 { 462 struct aio_ring *ring; 463 struct mm_struct *mm = current->mm; 464 unsigned long size, unused; 465 int nr_pages; 466 int i; 467 struct file *file; 468 469 /* Compensate for the ring buffer's head/tail overlap entry */ 470 nr_events += 2; /* 1 is required, 2 for good luck */ 471 472 size = sizeof(struct aio_ring); 473 size += sizeof(struct io_event) * nr_events; 474 475 nr_pages = PFN_UP(size); 476 if (nr_pages < 0) 477 return -EINVAL; 478 479 file = aio_private_file(ctx, nr_pages); 480 if (IS_ERR(file)) { 481 ctx->aio_ring_file = NULL; 482 return -ENOMEM; 483 } 484 485 ctx->aio_ring_file = file; 486 nr_events = (PAGE_SIZE * nr_pages - sizeof(struct aio_ring)) 487 / sizeof(struct io_event); 488 489 ctx->ring_pages = ctx->internal_pages; 490 if (nr_pages > AIO_RING_PAGES) { 491 ctx->ring_pages = kcalloc(nr_pages, sizeof(struct page *), 492 GFP_KERNEL); 493 if (!ctx->ring_pages) { 494 put_aio_ring_file(ctx); 495 return -ENOMEM; 496 } 497 } 498 499 for (i = 0; i < nr_pages; i++) { 500 struct page *page; 501 page = find_or_create_page(file->f_mapping, 502 i, GFP_HIGHUSER | __GFP_ZERO); 503 if (!page) 504 break; 505 pr_debug("pid(%d) page[%d]->count=%d\n", 506 current->pid, i, page_count(page)); 507 SetPageUptodate(page); 508 unlock_page(page); 509 510 ctx->ring_pages[i] = page; 511 } 512 ctx->nr_pages = i; 513 514 if (unlikely(i != nr_pages)) { 515 aio_free_ring(ctx); 516 return -ENOMEM; 517 } 518 519 ctx->mmap_size = nr_pages * PAGE_SIZE; 520 pr_debug("attempting mmap of %lu bytes\n", ctx->mmap_size); 521 522 if (down_write_killable(&mm->mmap_sem)) { 523 ctx->mmap_size = 0; 524 aio_free_ring(ctx); 525 return -EINTR; 526 } 527 528 ctx->mmap_base = do_mmap_pgoff(ctx->aio_ring_file, 0, ctx->mmap_size, 529 PROT_READ | PROT_WRITE, 530 MAP_SHARED, 0, &unused, NULL); 531 up_write(&mm->mmap_sem); 532 if (IS_ERR((void *)ctx->mmap_base)) { 533 ctx->mmap_size = 0; 534 aio_free_ring(ctx); 535 return -ENOMEM; 536 } 537 538 pr_debug("mmap address: 0x%08lx\n", ctx->mmap_base); 539 540 ctx->user_id = ctx->mmap_base; 541 ctx->nr_events = nr_events; /* trusted copy */ 542 543 ring = kmap_atomic(ctx->ring_pages[0]); 544 ring->nr = nr_events; /* user copy */ 545 ring->id = ~0U; 546 ring->head = ring->tail = 0; 547 ring->magic = AIO_RING_MAGIC; 548 ring->compat_features = AIO_RING_COMPAT_FEATURES; 549 ring->incompat_features = AIO_RING_INCOMPAT_FEATURES; 550 ring->header_length = sizeof(struct aio_ring); 551 kunmap_atomic(ring); 552 flush_dcache_page(ctx->ring_pages[0]); 553 554 return 0; 555 } 556 557 #define AIO_EVENTS_PER_PAGE (PAGE_SIZE / sizeof(struct io_event)) 558 #define AIO_EVENTS_FIRST_PAGE ((PAGE_SIZE - sizeof(struct aio_ring)) / sizeof(struct io_event)) 559 #define AIO_EVENTS_OFFSET (AIO_EVENTS_PER_PAGE - AIO_EVENTS_FIRST_PAGE) 560 561 void kiocb_set_cancel_fn(struct kiocb *iocb, kiocb_cancel_fn *cancel) 562 { 563 struct aio_kiocb *req = container_of(iocb, struct aio_kiocb, rw); 564 struct kioctx *ctx = req->ki_ctx; 565 unsigned long flags; 566 567 if (WARN_ON_ONCE(!list_empty(&req->ki_list))) 568 return; 569 570 spin_lock_irqsave(&ctx->ctx_lock, flags); 571 list_add_tail(&req->ki_list, &ctx->active_reqs); 572 req->ki_cancel = cancel; 573 spin_unlock_irqrestore(&ctx->ctx_lock, flags); 574 } 575 EXPORT_SYMBOL(kiocb_set_cancel_fn); 576 577 /* 578 * free_ioctx() should be RCU delayed to synchronize against the RCU 579 * protected lookup_ioctx() and also needs process context to call 580 * aio_free_ring(). Use rcu_work. 581 */ 582 static void free_ioctx(struct work_struct *work) 583 { 584 struct kioctx *ctx = container_of(to_rcu_work(work), struct kioctx, 585 free_rwork); 586 pr_debug("freeing %p\n", ctx); 587 588 aio_free_ring(ctx); 589 free_percpu(ctx->cpu); 590 percpu_ref_exit(&ctx->reqs); 591 percpu_ref_exit(&ctx->users); 592 kmem_cache_free(kioctx_cachep, ctx); 593 } 594 595 static void free_ioctx_reqs(struct percpu_ref *ref) 596 { 597 struct kioctx *ctx = container_of(ref, struct kioctx, reqs); 598 599 /* At this point we know that there are no any in-flight requests */ 600 if (ctx->rq_wait && atomic_dec_and_test(&ctx->rq_wait->count)) 601 complete(&ctx->rq_wait->comp); 602 603 /* Synchronize against RCU protected table->table[] dereferences */ 604 INIT_RCU_WORK(&ctx->free_rwork, free_ioctx); 605 queue_rcu_work(system_wq, &ctx->free_rwork); 606 } 607 608 /* 609 * When this function runs, the kioctx has been removed from the "hash table" 610 * and ctx->users has dropped to 0, so we know no more kiocbs can be submitted - 611 * now it's safe to cancel any that need to be. 612 */ 613 static void free_ioctx_users(struct percpu_ref *ref) 614 { 615 struct kioctx *ctx = container_of(ref, struct kioctx, users); 616 struct aio_kiocb *req; 617 618 spin_lock_irq(&ctx->ctx_lock); 619 620 while (!list_empty(&ctx->active_reqs)) { 621 req = list_first_entry(&ctx->active_reqs, 622 struct aio_kiocb, ki_list); 623 req->ki_cancel(&req->rw); 624 list_del_init(&req->ki_list); 625 } 626 627 spin_unlock_irq(&ctx->ctx_lock); 628 629 percpu_ref_kill(&ctx->reqs); 630 percpu_ref_put(&ctx->reqs); 631 } 632 633 static int ioctx_add_table(struct kioctx *ctx, struct mm_struct *mm) 634 { 635 unsigned i, new_nr; 636 struct kioctx_table *table, *old; 637 struct aio_ring *ring; 638 639 spin_lock(&mm->ioctx_lock); 640 table = rcu_dereference_raw(mm->ioctx_table); 641 642 while (1) { 643 if (table) 644 for (i = 0; i < table->nr; i++) 645 if (!rcu_access_pointer(table->table[i])) { 646 ctx->id = i; 647 rcu_assign_pointer(table->table[i], ctx); 648 spin_unlock(&mm->ioctx_lock); 649 650 /* While kioctx setup is in progress, 651 * we are protected from page migration 652 * changes ring_pages by ->ring_lock. 653 */ 654 ring = kmap_atomic(ctx->ring_pages[0]); 655 ring->id = ctx->id; 656 kunmap_atomic(ring); 657 return 0; 658 } 659 660 new_nr = (table ? table->nr : 1) * 4; 661 spin_unlock(&mm->ioctx_lock); 662 663 table = kzalloc(sizeof(*table) + sizeof(struct kioctx *) * 664 new_nr, GFP_KERNEL); 665 if (!table) 666 return -ENOMEM; 667 668 table->nr = new_nr; 669 670 spin_lock(&mm->ioctx_lock); 671 old = rcu_dereference_raw(mm->ioctx_table); 672 673 if (!old) { 674 rcu_assign_pointer(mm->ioctx_table, table); 675 } else if (table->nr > old->nr) { 676 memcpy(table->table, old->table, 677 old->nr * sizeof(struct kioctx *)); 678 679 rcu_assign_pointer(mm->ioctx_table, table); 680 kfree_rcu(old, rcu); 681 } else { 682 kfree(table); 683 table = old; 684 } 685 } 686 } 687 688 static void aio_nr_sub(unsigned nr) 689 { 690 spin_lock(&aio_nr_lock); 691 if (WARN_ON(aio_nr - nr > aio_nr)) 692 aio_nr = 0; 693 else 694 aio_nr -= nr; 695 spin_unlock(&aio_nr_lock); 696 } 697 698 /* ioctx_alloc 699 * Allocates and initializes an ioctx. Returns an ERR_PTR if it failed. 700 */ 701 static struct kioctx *ioctx_alloc(unsigned nr_events) 702 { 703 struct mm_struct *mm = current->mm; 704 struct kioctx *ctx; 705 int err = -ENOMEM; 706 707 /* 708 * Store the original nr_events -- what userspace passed to io_setup(), 709 * for counting against the global limit -- before it changes. 710 */ 711 unsigned int max_reqs = nr_events; 712 713 /* 714 * We keep track of the number of available ringbuffer slots, to prevent 715 * overflow (reqs_available), and we also use percpu counters for this. 716 * 717 * So since up to half the slots might be on other cpu's percpu counters 718 * and unavailable, double nr_events so userspace sees what they 719 * expected: additionally, we move req_batch slots to/from percpu 720 * counters at a time, so make sure that isn't 0: 721 */ 722 nr_events = max(nr_events, num_possible_cpus() * 4); 723 nr_events *= 2; 724 725 /* Prevent overflows */ 726 if (nr_events > (0x10000000U / sizeof(struct io_event))) { 727 pr_debug("ENOMEM: nr_events too high\n"); 728 return ERR_PTR(-EINVAL); 729 } 730 731 if (!nr_events || (unsigned long)max_reqs > aio_max_nr) 732 return ERR_PTR(-EAGAIN); 733 734 ctx = kmem_cache_zalloc(kioctx_cachep, GFP_KERNEL); 735 if (!ctx) 736 return ERR_PTR(-ENOMEM); 737 738 ctx->max_reqs = max_reqs; 739 740 spin_lock_init(&ctx->ctx_lock); 741 spin_lock_init(&ctx->completion_lock); 742 mutex_init(&ctx->ring_lock); 743 /* Protect against page migration throughout kiotx setup by keeping 744 * the ring_lock mutex held until setup is complete. */ 745 mutex_lock(&ctx->ring_lock); 746 init_waitqueue_head(&ctx->wait); 747 748 INIT_LIST_HEAD(&ctx->active_reqs); 749 750 if (percpu_ref_init(&ctx->users, free_ioctx_users, 0, GFP_KERNEL)) 751 goto err; 752 753 if (percpu_ref_init(&ctx->reqs, free_ioctx_reqs, 0, GFP_KERNEL)) 754 goto err; 755 756 ctx->cpu = alloc_percpu(struct kioctx_cpu); 757 if (!ctx->cpu) 758 goto err; 759 760 err = aio_setup_ring(ctx, nr_events); 761 if (err < 0) 762 goto err; 763 764 atomic_set(&ctx->reqs_available, ctx->nr_events - 1); 765 ctx->req_batch = (ctx->nr_events - 1) / (num_possible_cpus() * 4); 766 if (ctx->req_batch < 1) 767 ctx->req_batch = 1; 768 769 /* limit the number of system wide aios */ 770 spin_lock(&aio_nr_lock); 771 if (aio_nr + ctx->max_reqs > aio_max_nr || 772 aio_nr + ctx->max_reqs < aio_nr) { 773 spin_unlock(&aio_nr_lock); 774 err = -EAGAIN; 775 goto err_ctx; 776 } 777 aio_nr += ctx->max_reqs; 778 spin_unlock(&aio_nr_lock); 779 780 percpu_ref_get(&ctx->users); /* io_setup() will drop this ref */ 781 percpu_ref_get(&ctx->reqs); /* free_ioctx_users() will drop this */ 782 783 err = ioctx_add_table(ctx, mm); 784 if (err) 785 goto err_cleanup; 786 787 /* Release the ring_lock mutex now that all setup is complete. */ 788 mutex_unlock(&ctx->ring_lock); 789 790 pr_debug("allocated ioctx %p[%ld]: mm=%p mask=0x%x\n", 791 ctx, ctx->user_id, mm, ctx->nr_events); 792 return ctx; 793 794 err_cleanup: 795 aio_nr_sub(ctx->max_reqs); 796 err_ctx: 797 atomic_set(&ctx->dead, 1); 798 if (ctx->mmap_size) 799 vm_munmap(ctx->mmap_base, ctx->mmap_size); 800 aio_free_ring(ctx); 801 err: 802 mutex_unlock(&ctx->ring_lock); 803 free_percpu(ctx->cpu); 804 percpu_ref_exit(&ctx->reqs); 805 percpu_ref_exit(&ctx->users); 806 kmem_cache_free(kioctx_cachep, ctx); 807 pr_debug("error allocating ioctx %d\n", err); 808 return ERR_PTR(err); 809 } 810 811 /* kill_ioctx 812 * Cancels all outstanding aio requests on an aio context. Used 813 * when the processes owning a context have all exited to encourage 814 * the rapid destruction of the kioctx. 815 */ 816 static int kill_ioctx(struct mm_struct *mm, struct kioctx *ctx, 817 struct ctx_rq_wait *wait) 818 { 819 struct kioctx_table *table; 820 821 spin_lock(&mm->ioctx_lock); 822 if (atomic_xchg(&ctx->dead, 1)) { 823 spin_unlock(&mm->ioctx_lock); 824 return -EINVAL; 825 } 826 827 table = rcu_dereference_raw(mm->ioctx_table); 828 WARN_ON(ctx != rcu_access_pointer(table->table[ctx->id])); 829 RCU_INIT_POINTER(table->table[ctx->id], NULL); 830 spin_unlock(&mm->ioctx_lock); 831 832 /* free_ioctx_reqs() will do the necessary RCU synchronization */ 833 wake_up_all(&ctx->wait); 834 835 /* 836 * It'd be more correct to do this in free_ioctx(), after all 837 * the outstanding kiocbs have finished - but by then io_destroy 838 * has already returned, so io_setup() could potentially return 839 * -EAGAIN with no ioctxs actually in use (as far as userspace 840 * could tell). 841 */ 842 aio_nr_sub(ctx->max_reqs); 843 844 if (ctx->mmap_size) 845 vm_munmap(ctx->mmap_base, ctx->mmap_size); 846 847 ctx->rq_wait = wait; 848 percpu_ref_kill(&ctx->users); 849 return 0; 850 } 851 852 /* 853 * exit_aio: called when the last user of mm goes away. At this point, there is 854 * no way for any new requests to be submited or any of the io_* syscalls to be 855 * called on the context. 856 * 857 * There may be outstanding kiocbs, but free_ioctx() will explicitly wait on 858 * them. 859 */ 860 void exit_aio(struct mm_struct *mm) 861 { 862 struct kioctx_table *table = rcu_dereference_raw(mm->ioctx_table); 863 struct ctx_rq_wait wait; 864 int i, skipped; 865 866 if (!table) 867 return; 868 869 atomic_set(&wait.count, table->nr); 870 init_completion(&wait.comp); 871 872 skipped = 0; 873 for (i = 0; i < table->nr; ++i) { 874 struct kioctx *ctx = 875 rcu_dereference_protected(table->table[i], true); 876 877 if (!ctx) { 878 skipped++; 879 continue; 880 } 881 882 /* 883 * We don't need to bother with munmap() here - exit_mmap(mm) 884 * is coming and it'll unmap everything. And we simply can't, 885 * this is not necessarily our ->mm. 886 * Since kill_ioctx() uses non-zero ->mmap_size as indicator 887 * that it needs to unmap the area, just set it to 0. 888 */ 889 ctx->mmap_size = 0; 890 kill_ioctx(mm, ctx, &wait); 891 } 892 893 if (!atomic_sub_and_test(skipped, &wait.count)) { 894 /* Wait until all IO for the context are done. */ 895 wait_for_completion(&wait.comp); 896 } 897 898 RCU_INIT_POINTER(mm->ioctx_table, NULL); 899 kfree(table); 900 } 901 902 static void put_reqs_available(struct kioctx *ctx, unsigned nr) 903 { 904 struct kioctx_cpu *kcpu; 905 unsigned long flags; 906 907 local_irq_save(flags); 908 kcpu = this_cpu_ptr(ctx->cpu); 909 kcpu->reqs_available += nr; 910 911 while (kcpu->reqs_available >= ctx->req_batch * 2) { 912 kcpu->reqs_available -= ctx->req_batch; 913 atomic_add(ctx->req_batch, &ctx->reqs_available); 914 } 915 916 local_irq_restore(flags); 917 } 918 919 static bool get_reqs_available(struct kioctx *ctx) 920 { 921 struct kioctx_cpu *kcpu; 922 bool ret = false; 923 unsigned long flags; 924 925 local_irq_save(flags); 926 kcpu = this_cpu_ptr(ctx->cpu); 927 if (!kcpu->reqs_available) { 928 int old, avail = atomic_read(&ctx->reqs_available); 929 930 do { 931 if (avail < ctx->req_batch) 932 goto out; 933 934 old = avail; 935 avail = atomic_cmpxchg(&ctx->reqs_available, 936 avail, avail - ctx->req_batch); 937 } while (avail != old); 938 939 kcpu->reqs_available += ctx->req_batch; 940 } 941 942 ret = true; 943 kcpu->reqs_available--; 944 out: 945 local_irq_restore(flags); 946 return ret; 947 } 948 949 /* refill_reqs_available 950 * Updates the reqs_available reference counts used for tracking the 951 * number of free slots in the completion ring. This can be called 952 * from aio_complete() (to optimistically update reqs_available) or 953 * from aio_get_req() (the we're out of events case). It must be 954 * called holding ctx->completion_lock. 955 */ 956 static void refill_reqs_available(struct kioctx *ctx, unsigned head, 957 unsigned tail) 958 { 959 unsigned events_in_ring, completed; 960 961 /* Clamp head since userland can write to it. */ 962 head %= ctx->nr_events; 963 if (head <= tail) 964 events_in_ring = tail - head; 965 else 966 events_in_ring = ctx->nr_events - (head - tail); 967 968 completed = ctx->completed_events; 969 if (events_in_ring < completed) 970 completed -= events_in_ring; 971 else 972 completed = 0; 973 974 if (!completed) 975 return; 976 977 ctx->completed_events -= completed; 978 put_reqs_available(ctx, completed); 979 } 980 981 /* user_refill_reqs_available 982 * Called to refill reqs_available when aio_get_req() encounters an 983 * out of space in the completion ring. 984 */ 985 static void user_refill_reqs_available(struct kioctx *ctx) 986 { 987 spin_lock_irq(&ctx->completion_lock); 988 if (ctx->completed_events) { 989 struct aio_ring *ring; 990 unsigned head; 991 992 /* Access of ring->head may race with aio_read_events_ring() 993 * here, but that's okay since whether we read the old version 994 * or the new version, and either will be valid. The important 995 * part is that head cannot pass tail since we prevent 996 * aio_complete() from updating tail by holding 997 * ctx->completion_lock. Even if head is invalid, the check 998 * against ctx->completed_events below will make sure we do the 999 * safe/right thing. 1000 */ 1001 ring = kmap_atomic(ctx->ring_pages[0]); 1002 head = ring->head; 1003 kunmap_atomic(ring); 1004 1005 refill_reqs_available(ctx, head, ctx->tail); 1006 } 1007 1008 spin_unlock_irq(&ctx->completion_lock); 1009 } 1010 1011 /* aio_get_req 1012 * Allocate a slot for an aio request. 1013 * Returns NULL if no requests are free. 1014 */ 1015 static inline struct aio_kiocb *aio_get_req(struct kioctx *ctx) 1016 { 1017 struct aio_kiocb *req; 1018 1019 if (!get_reqs_available(ctx)) { 1020 user_refill_reqs_available(ctx); 1021 if (!get_reqs_available(ctx)) 1022 return NULL; 1023 } 1024 1025 req = kmem_cache_alloc(kiocb_cachep, GFP_KERNEL|__GFP_ZERO); 1026 if (unlikely(!req)) 1027 goto out_put; 1028 1029 percpu_ref_get(&ctx->reqs); 1030 INIT_LIST_HEAD(&req->ki_list); 1031 req->ki_ctx = ctx; 1032 return req; 1033 out_put: 1034 put_reqs_available(ctx, 1); 1035 return NULL; 1036 } 1037 1038 static struct kioctx *lookup_ioctx(unsigned long ctx_id) 1039 { 1040 struct aio_ring __user *ring = (void __user *)ctx_id; 1041 struct mm_struct *mm = current->mm; 1042 struct kioctx *ctx, *ret = NULL; 1043 struct kioctx_table *table; 1044 unsigned id; 1045 1046 if (get_user(id, &ring->id)) 1047 return NULL; 1048 1049 rcu_read_lock(); 1050 table = rcu_dereference(mm->ioctx_table); 1051 1052 if (!table || id >= table->nr) 1053 goto out; 1054 1055 ctx = rcu_dereference(table->table[id]); 1056 if (ctx && ctx->user_id == ctx_id) { 1057 if (percpu_ref_tryget_live(&ctx->users)) 1058 ret = ctx; 1059 } 1060 out: 1061 rcu_read_unlock(); 1062 return ret; 1063 } 1064 1065 /* aio_complete 1066 * Called when the io request on the given iocb is complete. 1067 */ 1068 static void aio_complete(struct aio_kiocb *iocb, long res, long res2) 1069 { 1070 struct kioctx *ctx = iocb->ki_ctx; 1071 struct aio_ring *ring; 1072 struct io_event *ev_page, *event; 1073 unsigned tail, pos, head; 1074 unsigned long flags; 1075 1076 if (!list_empty_careful(&iocb->ki_list)) { 1077 unsigned long flags; 1078 1079 spin_lock_irqsave(&ctx->ctx_lock, flags); 1080 list_del(&iocb->ki_list); 1081 spin_unlock_irqrestore(&ctx->ctx_lock, flags); 1082 } 1083 1084 /* 1085 * Add a completion event to the ring buffer. Must be done holding 1086 * ctx->completion_lock to prevent other code from messing with the tail 1087 * pointer since we might be called from irq context. 1088 */ 1089 spin_lock_irqsave(&ctx->completion_lock, flags); 1090 1091 tail = ctx->tail; 1092 pos = tail + AIO_EVENTS_OFFSET; 1093 1094 if (++tail >= ctx->nr_events) 1095 tail = 0; 1096 1097 ev_page = kmap_atomic(ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]); 1098 event = ev_page + pos % AIO_EVENTS_PER_PAGE; 1099 1100 event->obj = (u64)(unsigned long)iocb->ki_user_iocb; 1101 event->data = iocb->ki_user_data; 1102 event->res = res; 1103 event->res2 = res2; 1104 1105 kunmap_atomic(ev_page); 1106 flush_dcache_page(ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]); 1107 1108 pr_debug("%p[%u]: %p: %p %Lx %lx %lx\n", 1109 ctx, tail, iocb, iocb->ki_user_iocb, iocb->ki_user_data, 1110 res, res2); 1111 1112 /* after flagging the request as done, we 1113 * must never even look at it again 1114 */ 1115 smp_wmb(); /* make event visible before updating tail */ 1116 1117 ctx->tail = tail; 1118 1119 ring = kmap_atomic(ctx->ring_pages[0]); 1120 head = ring->head; 1121 ring->tail = tail; 1122 kunmap_atomic(ring); 1123 flush_dcache_page(ctx->ring_pages[0]); 1124 1125 ctx->completed_events++; 1126 if (ctx->completed_events > 1) 1127 refill_reqs_available(ctx, head, tail); 1128 spin_unlock_irqrestore(&ctx->completion_lock, flags); 1129 1130 pr_debug("added to ring %p at [%u]\n", iocb, tail); 1131 1132 /* 1133 * Check if the user asked us to deliver the result through an 1134 * eventfd. The eventfd_signal() function is safe to be called 1135 * from IRQ context. 1136 */ 1137 if (iocb->ki_eventfd) { 1138 eventfd_signal(iocb->ki_eventfd, 1); 1139 eventfd_ctx_put(iocb->ki_eventfd); 1140 } 1141 1142 kmem_cache_free(kiocb_cachep, iocb); 1143 1144 /* 1145 * We have to order our ring_info tail store above and test 1146 * of the wait list below outside the wait lock. This is 1147 * like in wake_up_bit() where clearing a bit has to be 1148 * ordered with the unlocked test. 1149 */ 1150 smp_mb(); 1151 1152 if (waitqueue_active(&ctx->wait)) 1153 wake_up(&ctx->wait); 1154 1155 percpu_ref_put(&ctx->reqs); 1156 } 1157 1158 /* aio_read_events_ring 1159 * Pull an event off of the ioctx's event ring. Returns the number of 1160 * events fetched 1161 */ 1162 static long aio_read_events_ring(struct kioctx *ctx, 1163 struct io_event __user *event, long nr) 1164 { 1165 struct aio_ring *ring; 1166 unsigned head, tail, pos; 1167 long ret = 0; 1168 int copy_ret; 1169 1170 /* 1171 * The mutex can block and wake us up and that will cause 1172 * wait_event_interruptible_hrtimeout() to schedule without sleeping 1173 * and repeat. This should be rare enough that it doesn't cause 1174 * peformance issues. See the comment in read_events() for more detail. 1175 */ 1176 sched_annotate_sleep(); 1177 mutex_lock(&ctx->ring_lock); 1178 1179 /* Access to ->ring_pages here is protected by ctx->ring_lock. */ 1180 ring = kmap_atomic(ctx->ring_pages[0]); 1181 head = ring->head; 1182 tail = ring->tail; 1183 kunmap_atomic(ring); 1184 1185 /* 1186 * Ensure that once we've read the current tail pointer, that 1187 * we also see the events that were stored up to the tail. 1188 */ 1189 smp_rmb(); 1190 1191 pr_debug("h%u t%u m%u\n", head, tail, ctx->nr_events); 1192 1193 if (head == tail) 1194 goto out; 1195 1196 head %= ctx->nr_events; 1197 tail %= ctx->nr_events; 1198 1199 while (ret < nr) { 1200 long avail; 1201 struct io_event *ev; 1202 struct page *page; 1203 1204 avail = (head <= tail ? tail : ctx->nr_events) - head; 1205 if (head == tail) 1206 break; 1207 1208 avail = min(avail, nr - ret); 1209 avail = min_t(long, avail, AIO_EVENTS_PER_PAGE - 1210 ((head + AIO_EVENTS_OFFSET) % AIO_EVENTS_PER_PAGE)); 1211 1212 pos = head + AIO_EVENTS_OFFSET; 1213 page = ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]; 1214 pos %= AIO_EVENTS_PER_PAGE; 1215 1216 ev = kmap(page); 1217 copy_ret = copy_to_user(event + ret, ev + pos, 1218 sizeof(*ev) * avail); 1219 kunmap(page); 1220 1221 if (unlikely(copy_ret)) { 1222 ret = -EFAULT; 1223 goto out; 1224 } 1225 1226 ret += avail; 1227 head += avail; 1228 head %= ctx->nr_events; 1229 } 1230 1231 ring = kmap_atomic(ctx->ring_pages[0]); 1232 ring->head = head; 1233 kunmap_atomic(ring); 1234 flush_dcache_page(ctx->ring_pages[0]); 1235 1236 pr_debug("%li h%u t%u\n", ret, head, tail); 1237 out: 1238 mutex_unlock(&ctx->ring_lock); 1239 1240 return ret; 1241 } 1242 1243 static bool aio_read_events(struct kioctx *ctx, long min_nr, long nr, 1244 struct io_event __user *event, long *i) 1245 { 1246 long ret = aio_read_events_ring(ctx, event + *i, nr - *i); 1247 1248 if (ret > 0) 1249 *i += ret; 1250 1251 if (unlikely(atomic_read(&ctx->dead))) 1252 ret = -EINVAL; 1253 1254 if (!*i) 1255 *i = ret; 1256 1257 return ret < 0 || *i >= min_nr; 1258 } 1259 1260 static long read_events(struct kioctx *ctx, long min_nr, long nr, 1261 struct io_event __user *event, 1262 ktime_t until) 1263 { 1264 long ret = 0; 1265 1266 /* 1267 * Note that aio_read_events() is being called as the conditional - i.e. 1268 * we're calling it after prepare_to_wait() has set task state to 1269 * TASK_INTERRUPTIBLE. 1270 * 1271 * But aio_read_events() can block, and if it blocks it's going to flip 1272 * the task state back to TASK_RUNNING. 1273 * 1274 * This should be ok, provided it doesn't flip the state back to 1275 * TASK_RUNNING and return 0 too much - that causes us to spin. That 1276 * will only happen if the mutex_lock() call blocks, and we then find 1277 * the ringbuffer empty. So in practice we should be ok, but it's 1278 * something to be aware of when touching this code. 1279 */ 1280 if (until == 0) 1281 aio_read_events(ctx, min_nr, nr, event, &ret); 1282 else 1283 wait_event_interruptible_hrtimeout(ctx->wait, 1284 aio_read_events(ctx, min_nr, nr, event, &ret), 1285 until); 1286 return ret; 1287 } 1288 1289 /* sys_io_setup: 1290 * Create an aio_context capable of receiving at least nr_events. 1291 * ctxp must not point to an aio_context that already exists, and 1292 * must be initialized to 0 prior to the call. On successful 1293 * creation of the aio_context, *ctxp is filled in with the resulting 1294 * handle. May fail with -EINVAL if *ctxp is not initialized, 1295 * if the specified nr_events exceeds internal limits. May fail 1296 * with -EAGAIN if the specified nr_events exceeds the user's limit 1297 * of available events. May fail with -ENOMEM if insufficient kernel 1298 * resources are available. May fail with -EFAULT if an invalid 1299 * pointer is passed for ctxp. Will fail with -ENOSYS if not 1300 * implemented. 1301 */ 1302 SYSCALL_DEFINE2(io_setup, unsigned, nr_events, aio_context_t __user *, ctxp) 1303 { 1304 struct kioctx *ioctx = NULL; 1305 unsigned long ctx; 1306 long ret; 1307 1308 ret = get_user(ctx, ctxp); 1309 if (unlikely(ret)) 1310 goto out; 1311 1312 ret = -EINVAL; 1313 if (unlikely(ctx || nr_events == 0)) { 1314 pr_debug("EINVAL: ctx %lu nr_events %u\n", 1315 ctx, nr_events); 1316 goto out; 1317 } 1318 1319 ioctx = ioctx_alloc(nr_events); 1320 ret = PTR_ERR(ioctx); 1321 if (!IS_ERR(ioctx)) { 1322 ret = put_user(ioctx->user_id, ctxp); 1323 if (ret) 1324 kill_ioctx(current->mm, ioctx, NULL); 1325 percpu_ref_put(&ioctx->users); 1326 } 1327 1328 out: 1329 return ret; 1330 } 1331 1332 #ifdef CONFIG_COMPAT 1333 COMPAT_SYSCALL_DEFINE2(io_setup, unsigned, nr_events, u32 __user *, ctx32p) 1334 { 1335 struct kioctx *ioctx = NULL; 1336 unsigned long ctx; 1337 long ret; 1338 1339 ret = get_user(ctx, ctx32p); 1340 if (unlikely(ret)) 1341 goto out; 1342 1343 ret = -EINVAL; 1344 if (unlikely(ctx || nr_events == 0)) { 1345 pr_debug("EINVAL: ctx %lu nr_events %u\n", 1346 ctx, nr_events); 1347 goto out; 1348 } 1349 1350 ioctx = ioctx_alloc(nr_events); 1351 ret = PTR_ERR(ioctx); 1352 if (!IS_ERR(ioctx)) { 1353 /* truncating is ok because it's a user address */ 1354 ret = put_user((u32)ioctx->user_id, ctx32p); 1355 if (ret) 1356 kill_ioctx(current->mm, ioctx, NULL); 1357 percpu_ref_put(&ioctx->users); 1358 } 1359 1360 out: 1361 return ret; 1362 } 1363 #endif 1364 1365 /* sys_io_destroy: 1366 * Destroy the aio_context specified. May cancel any outstanding 1367 * AIOs and block on completion. Will fail with -ENOSYS if not 1368 * implemented. May fail with -EINVAL if the context pointed to 1369 * is invalid. 1370 */ 1371 SYSCALL_DEFINE1(io_destroy, aio_context_t, ctx) 1372 { 1373 struct kioctx *ioctx = lookup_ioctx(ctx); 1374 if (likely(NULL != ioctx)) { 1375 struct ctx_rq_wait wait; 1376 int ret; 1377 1378 init_completion(&wait.comp); 1379 atomic_set(&wait.count, 1); 1380 1381 /* Pass requests_done to kill_ioctx() where it can be set 1382 * in a thread-safe way. If we try to set it here then we have 1383 * a race condition if two io_destroy() called simultaneously. 1384 */ 1385 ret = kill_ioctx(current->mm, ioctx, &wait); 1386 percpu_ref_put(&ioctx->users); 1387 1388 /* Wait until all IO for the context are done. Otherwise kernel 1389 * keep using user-space buffers even if user thinks the context 1390 * is destroyed. 1391 */ 1392 if (!ret) 1393 wait_for_completion(&wait.comp); 1394 1395 return ret; 1396 } 1397 pr_debug("EINVAL: invalid context id\n"); 1398 return -EINVAL; 1399 } 1400 1401 static void aio_complete_rw(struct kiocb *kiocb, long res, long res2) 1402 { 1403 struct aio_kiocb *iocb = container_of(kiocb, struct aio_kiocb, rw); 1404 1405 if (kiocb->ki_flags & IOCB_WRITE) { 1406 struct inode *inode = file_inode(kiocb->ki_filp); 1407 1408 /* 1409 * Tell lockdep we inherited freeze protection from submission 1410 * thread. 1411 */ 1412 if (S_ISREG(inode->i_mode)) 1413 __sb_writers_acquired(inode->i_sb, SB_FREEZE_WRITE); 1414 file_end_write(kiocb->ki_filp); 1415 } 1416 1417 fput(kiocb->ki_filp); 1418 aio_complete(iocb, res, res2); 1419 } 1420 1421 static int aio_prep_rw(struct kiocb *req, struct iocb *iocb) 1422 { 1423 int ret; 1424 1425 req->ki_filp = fget(iocb->aio_fildes); 1426 if (unlikely(!req->ki_filp)) 1427 return -EBADF; 1428 req->ki_complete = aio_complete_rw; 1429 req->ki_pos = iocb->aio_offset; 1430 req->ki_flags = iocb_flags(req->ki_filp); 1431 if (iocb->aio_flags & IOCB_FLAG_RESFD) 1432 req->ki_flags |= IOCB_EVENTFD; 1433 req->ki_hint = file_write_hint(req->ki_filp); 1434 ret = kiocb_set_rw_flags(req, iocb->aio_rw_flags); 1435 if (unlikely(ret)) 1436 fput(req->ki_filp); 1437 return ret; 1438 } 1439 1440 static int aio_setup_rw(int rw, struct iocb *iocb, struct iovec **iovec, 1441 bool vectored, bool compat, struct iov_iter *iter) 1442 { 1443 void __user *buf = (void __user *)(uintptr_t)iocb->aio_buf; 1444 size_t len = iocb->aio_nbytes; 1445 1446 if (!vectored) { 1447 ssize_t ret = import_single_range(rw, buf, len, *iovec, iter); 1448 *iovec = NULL; 1449 return ret; 1450 } 1451 #ifdef CONFIG_COMPAT 1452 if (compat) 1453 return compat_import_iovec(rw, buf, len, UIO_FASTIOV, iovec, 1454 iter); 1455 #endif 1456 return import_iovec(rw, buf, len, UIO_FASTIOV, iovec, iter); 1457 } 1458 1459 static inline ssize_t aio_rw_ret(struct kiocb *req, ssize_t ret) 1460 { 1461 switch (ret) { 1462 case -EIOCBQUEUED: 1463 return ret; 1464 case -ERESTARTSYS: 1465 case -ERESTARTNOINTR: 1466 case -ERESTARTNOHAND: 1467 case -ERESTART_RESTARTBLOCK: 1468 /* 1469 * There's no easy way to restart the syscall since other AIO's 1470 * may be already running. Just fail this IO with EINTR. 1471 */ 1472 ret = -EINTR; 1473 /*FALLTHRU*/ 1474 default: 1475 aio_complete_rw(req, ret, 0); 1476 return 0; 1477 } 1478 } 1479 1480 static ssize_t aio_read(struct kiocb *req, struct iocb *iocb, bool vectored, 1481 bool compat) 1482 { 1483 struct iovec inline_vecs[UIO_FASTIOV], *iovec = inline_vecs; 1484 struct iov_iter iter; 1485 struct file *file; 1486 ssize_t ret; 1487 1488 ret = aio_prep_rw(req, iocb); 1489 if (ret) 1490 return ret; 1491 file = req->ki_filp; 1492 1493 ret = -EBADF; 1494 if (unlikely(!(file->f_mode & FMODE_READ))) 1495 goto out_fput; 1496 ret = -EINVAL; 1497 if (unlikely(!file->f_op->read_iter)) 1498 goto out_fput; 1499 1500 ret = aio_setup_rw(READ, iocb, &iovec, vectored, compat, &iter); 1501 if (ret) 1502 goto out_fput; 1503 ret = rw_verify_area(READ, file, &req->ki_pos, iov_iter_count(&iter)); 1504 if (!ret) 1505 ret = aio_rw_ret(req, call_read_iter(file, req, &iter)); 1506 kfree(iovec); 1507 out_fput: 1508 if (unlikely(ret && ret != -EIOCBQUEUED)) 1509 fput(file); 1510 return ret; 1511 } 1512 1513 static ssize_t aio_write(struct kiocb *req, struct iocb *iocb, bool vectored, 1514 bool compat) 1515 { 1516 struct iovec inline_vecs[UIO_FASTIOV], *iovec = inline_vecs; 1517 struct iov_iter iter; 1518 struct file *file; 1519 ssize_t ret; 1520 1521 ret = aio_prep_rw(req, iocb); 1522 if (ret) 1523 return ret; 1524 file = req->ki_filp; 1525 1526 ret = -EBADF; 1527 if (unlikely(!(file->f_mode & FMODE_WRITE))) 1528 goto out_fput; 1529 ret = -EINVAL; 1530 if (unlikely(!file->f_op->write_iter)) 1531 goto out_fput; 1532 1533 ret = aio_setup_rw(WRITE, iocb, &iovec, vectored, compat, &iter); 1534 if (ret) 1535 goto out_fput; 1536 ret = rw_verify_area(WRITE, file, &req->ki_pos, iov_iter_count(&iter)); 1537 if (!ret) { 1538 /* 1539 * Open-code file_start_write here to grab freeze protection, 1540 * which will be released by another thread in 1541 * aio_complete_rw(). Fool lockdep by telling it the lock got 1542 * released so that it doesn't complain about the held lock when 1543 * we return to userspace. 1544 */ 1545 if (S_ISREG(file_inode(file)->i_mode)) { 1546 __sb_start_write(file_inode(file)->i_sb, SB_FREEZE_WRITE, true); 1547 __sb_writers_release(file_inode(file)->i_sb, SB_FREEZE_WRITE); 1548 } 1549 req->ki_flags |= IOCB_WRITE; 1550 ret = aio_rw_ret(req, call_write_iter(file, req, &iter)); 1551 } 1552 kfree(iovec); 1553 out_fput: 1554 if (unlikely(ret && ret != -EIOCBQUEUED)) 1555 fput(file); 1556 return ret; 1557 } 1558 1559 static void aio_fsync_work(struct work_struct *work) 1560 { 1561 struct fsync_iocb *req = container_of(work, struct fsync_iocb, work); 1562 int ret; 1563 1564 ret = vfs_fsync(req->file, req->datasync); 1565 fput(req->file); 1566 aio_complete(container_of(req, struct aio_kiocb, fsync), ret, 0); 1567 } 1568 1569 static int aio_fsync(struct fsync_iocb *req, struct iocb *iocb, bool datasync) 1570 { 1571 if (unlikely(iocb->aio_buf || iocb->aio_offset || iocb->aio_nbytes || 1572 iocb->aio_rw_flags)) 1573 return -EINVAL; 1574 req->file = fget(iocb->aio_fildes); 1575 if (unlikely(!req->file)) 1576 return -EBADF; 1577 if (unlikely(!req->file->f_op->fsync)) { 1578 fput(req->file); 1579 return -EINVAL; 1580 } 1581 1582 req->datasync = datasync; 1583 INIT_WORK(&req->work, aio_fsync_work); 1584 schedule_work(&req->work); 1585 return -EIOCBQUEUED; 1586 } 1587 1588 /* need to use list_del_init so we can check if item was present */ 1589 static inline bool __aio_poll_remove(struct poll_iocb *req) 1590 { 1591 if (list_empty(&req->wait.entry)) 1592 return false; 1593 list_del_init(&req->wait.entry); 1594 return true; 1595 } 1596 1597 static inline void __aio_poll_complete(struct poll_iocb *req, __poll_t mask) 1598 { 1599 struct aio_kiocb *iocb = container_of(req, struct aio_kiocb, poll); 1600 struct file *file = req->file; 1601 1602 aio_complete(iocb, mangle_poll(mask), 0); 1603 fput(file); 1604 } 1605 1606 static void aio_poll_work(struct work_struct *work) 1607 { 1608 struct poll_iocb *req = container_of(work, struct poll_iocb, work); 1609 1610 __aio_poll_complete(req, req->events); 1611 } 1612 1613 static int aio_poll_cancel(struct kiocb *iocb) 1614 { 1615 struct aio_kiocb *aiocb = container_of(iocb, struct aio_kiocb, rw); 1616 struct poll_iocb *req = &aiocb->poll; 1617 struct wait_queue_head *head = req->head; 1618 bool found = false; 1619 1620 spin_lock(&head->lock); 1621 found = __aio_poll_remove(req); 1622 spin_unlock(&head->lock); 1623 1624 if (found) { 1625 req->events = 0; 1626 INIT_WORK(&req->work, aio_poll_work); 1627 schedule_work(&req->work); 1628 } 1629 return 0; 1630 } 1631 1632 static int aio_poll_wake(struct wait_queue_entry *wait, unsigned mode, int sync, 1633 void *key) 1634 { 1635 struct poll_iocb *req = container_of(wait, struct poll_iocb, wait); 1636 struct aio_kiocb *iocb = container_of(req, struct aio_kiocb, poll); 1637 struct file *file = req->file; 1638 __poll_t mask = key_to_poll(key); 1639 1640 assert_spin_locked(&req->head->lock); 1641 1642 /* for instances that support it check for an event match first: */ 1643 if (mask && !(mask & req->events)) 1644 return 0; 1645 1646 mask = file->f_op->poll_mask(file, req->events); 1647 if (!mask) 1648 return 0; 1649 1650 __aio_poll_remove(req); 1651 1652 /* 1653 * Try completing without a context switch if we can acquire ctx_lock 1654 * without spinning. Otherwise we need to defer to a workqueue to 1655 * avoid a deadlock due to the lock order. 1656 */ 1657 if (spin_trylock(&iocb->ki_ctx->ctx_lock)) { 1658 list_del_init(&iocb->ki_list); 1659 spin_unlock(&iocb->ki_ctx->ctx_lock); 1660 1661 __aio_poll_complete(req, mask); 1662 } else { 1663 req->events = mask; 1664 INIT_WORK(&req->work, aio_poll_work); 1665 schedule_work(&req->work); 1666 } 1667 1668 return 1; 1669 } 1670 1671 static ssize_t aio_poll(struct aio_kiocb *aiocb, struct iocb *iocb) 1672 { 1673 struct kioctx *ctx = aiocb->ki_ctx; 1674 struct poll_iocb *req = &aiocb->poll; 1675 __poll_t mask; 1676 1677 /* reject any unknown events outside the normal event mask. */ 1678 if ((u16)iocb->aio_buf != iocb->aio_buf) 1679 return -EINVAL; 1680 /* reject fields that are not defined for poll */ 1681 if (iocb->aio_offset || iocb->aio_nbytes || iocb->aio_rw_flags) 1682 return -EINVAL; 1683 1684 req->events = demangle_poll(iocb->aio_buf) | EPOLLERR | EPOLLHUP; 1685 req->file = fget(iocb->aio_fildes); 1686 if (unlikely(!req->file)) 1687 return -EBADF; 1688 if (!file_has_poll_mask(req->file)) 1689 goto out_fail; 1690 1691 req->head = req->file->f_op->get_poll_head(req->file, req->events); 1692 if (!req->head) 1693 goto out_fail; 1694 if (IS_ERR(req->head)) { 1695 mask = EPOLLERR; 1696 goto done; 1697 } 1698 1699 init_waitqueue_func_entry(&req->wait, aio_poll_wake); 1700 aiocb->ki_cancel = aio_poll_cancel; 1701 1702 spin_lock_irq(&ctx->ctx_lock); 1703 spin_lock(&req->head->lock); 1704 mask = req->file->f_op->poll_mask(req->file, req->events); 1705 if (!mask) { 1706 __add_wait_queue(req->head, &req->wait); 1707 list_add_tail(&aiocb->ki_list, &ctx->active_reqs); 1708 } 1709 spin_unlock(&req->head->lock); 1710 spin_unlock_irq(&ctx->ctx_lock); 1711 done: 1712 if (mask) 1713 __aio_poll_complete(req, mask); 1714 return -EIOCBQUEUED; 1715 out_fail: 1716 fput(req->file); 1717 return -EINVAL; /* same as no support for IOCB_CMD_POLL */ 1718 } 1719 1720 static int io_submit_one(struct kioctx *ctx, struct iocb __user *user_iocb, 1721 struct iocb *iocb, bool compat) 1722 { 1723 struct aio_kiocb *req; 1724 ssize_t ret; 1725 1726 /* enforce forwards compatibility on users */ 1727 if (unlikely(iocb->aio_reserved2)) { 1728 pr_debug("EINVAL: reserve field set\n"); 1729 return -EINVAL; 1730 } 1731 1732 /* prevent overflows */ 1733 if (unlikely( 1734 (iocb->aio_buf != (unsigned long)iocb->aio_buf) || 1735 (iocb->aio_nbytes != (size_t)iocb->aio_nbytes) || 1736 ((ssize_t)iocb->aio_nbytes < 0) 1737 )) { 1738 pr_debug("EINVAL: overflow check\n"); 1739 return -EINVAL; 1740 } 1741 1742 req = aio_get_req(ctx); 1743 if (unlikely(!req)) 1744 return -EAGAIN; 1745 1746 if (iocb->aio_flags & IOCB_FLAG_RESFD) { 1747 /* 1748 * If the IOCB_FLAG_RESFD flag of aio_flags is set, get an 1749 * instance of the file* now. The file descriptor must be 1750 * an eventfd() fd, and will be signaled for each completed 1751 * event using the eventfd_signal() function. 1752 */ 1753 req->ki_eventfd = eventfd_ctx_fdget((int) iocb->aio_resfd); 1754 if (IS_ERR(req->ki_eventfd)) { 1755 ret = PTR_ERR(req->ki_eventfd); 1756 req->ki_eventfd = NULL; 1757 goto out_put_req; 1758 } 1759 } 1760 1761 ret = put_user(KIOCB_KEY, &user_iocb->aio_key); 1762 if (unlikely(ret)) { 1763 pr_debug("EFAULT: aio_key\n"); 1764 goto out_put_req; 1765 } 1766 1767 req->ki_user_iocb = user_iocb; 1768 req->ki_user_data = iocb->aio_data; 1769 1770 switch (iocb->aio_lio_opcode) { 1771 case IOCB_CMD_PREAD: 1772 ret = aio_read(&req->rw, iocb, false, compat); 1773 break; 1774 case IOCB_CMD_PWRITE: 1775 ret = aio_write(&req->rw, iocb, false, compat); 1776 break; 1777 case IOCB_CMD_PREADV: 1778 ret = aio_read(&req->rw, iocb, true, compat); 1779 break; 1780 case IOCB_CMD_PWRITEV: 1781 ret = aio_write(&req->rw, iocb, true, compat); 1782 break; 1783 case IOCB_CMD_FSYNC: 1784 ret = aio_fsync(&req->fsync, iocb, false); 1785 break; 1786 case IOCB_CMD_FDSYNC: 1787 ret = aio_fsync(&req->fsync, iocb, true); 1788 case IOCB_CMD_POLL: 1789 ret = aio_poll(req, iocb); 1790 break; 1791 default: 1792 pr_debug("invalid aio operation %d\n", iocb->aio_lio_opcode); 1793 ret = -EINVAL; 1794 break; 1795 } 1796 1797 /* 1798 * If ret is -EIOCBQUEUED, ownership of the file reference acquired 1799 * above passed to the file system, which at this point might have 1800 * dropped the reference, so we must be careful to not reference it 1801 * once we have called into the file system. 1802 */ 1803 if (ret && ret != -EIOCBQUEUED) 1804 goto out_put_req; 1805 return 0; 1806 out_put_req: 1807 put_reqs_available(ctx, 1); 1808 percpu_ref_put(&ctx->reqs); 1809 if (req->ki_eventfd) 1810 eventfd_ctx_put(req->ki_eventfd); 1811 kmem_cache_free(kiocb_cachep, req); 1812 return ret; 1813 } 1814 1815 static long do_io_submit(aio_context_t ctx_id, long nr, 1816 struct iocb __user *__user *iocbpp, bool compat) 1817 { 1818 struct kioctx *ctx; 1819 long ret = 0; 1820 int i = 0; 1821 struct blk_plug plug; 1822 1823 if (unlikely(nr < 0)) 1824 return -EINVAL; 1825 1826 if (unlikely(nr > LONG_MAX/sizeof(*iocbpp))) 1827 nr = LONG_MAX/sizeof(*iocbpp); 1828 1829 if (unlikely(!access_ok(VERIFY_READ, iocbpp, (nr*sizeof(*iocbpp))))) 1830 return -EFAULT; 1831 1832 ctx = lookup_ioctx(ctx_id); 1833 if (unlikely(!ctx)) { 1834 pr_debug("EINVAL: invalid context id\n"); 1835 return -EINVAL; 1836 } 1837 1838 blk_start_plug(&plug); 1839 1840 /* 1841 * AKPM: should this return a partial result if some of the IOs were 1842 * successfully submitted? 1843 */ 1844 for (i=0; i<nr; i++) { 1845 struct iocb __user *user_iocb; 1846 struct iocb tmp; 1847 1848 if (unlikely(__get_user(user_iocb, iocbpp + i))) { 1849 ret = -EFAULT; 1850 break; 1851 } 1852 1853 if (unlikely(copy_from_user(&tmp, user_iocb, sizeof(tmp)))) { 1854 ret = -EFAULT; 1855 break; 1856 } 1857 1858 ret = io_submit_one(ctx, user_iocb, &tmp, compat); 1859 if (ret) 1860 break; 1861 } 1862 blk_finish_plug(&plug); 1863 1864 percpu_ref_put(&ctx->users); 1865 return i ? i : ret; 1866 } 1867 1868 /* sys_io_submit: 1869 * Queue the nr iocbs pointed to by iocbpp for processing. Returns 1870 * the number of iocbs queued. May return -EINVAL if the aio_context 1871 * specified by ctx_id is invalid, if nr is < 0, if the iocb at 1872 * *iocbpp[0] is not properly initialized, if the operation specified 1873 * is invalid for the file descriptor in the iocb. May fail with 1874 * -EFAULT if any of the data structures point to invalid data. May 1875 * fail with -EBADF if the file descriptor specified in the first 1876 * iocb is invalid. May fail with -EAGAIN if insufficient resources 1877 * are available to queue any iocbs. Will return 0 if nr is 0. Will 1878 * fail with -ENOSYS if not implemented. 1879 */ 1880 SYSCALL_DEFINE3(io_submit, aio_context_t, ctx_id, long, nr, 1881 struct iocb __user * __user *, iocbpp) 1882 { 1883 return do_io_submit(ctx_id, nr, iocbpp, 0); 1884 } 1885 1886 #ifdef CONFIG_COMPAT 1887 static inline long 1888 copy_iocb(long nr, u32 __user *ptr32, struct iocb __user * __user *ptr64) 1889 { 1890 compat_uptr_t uptr; 1891 int i; 1892 1893 for (i = 0; i < nr; ++i) { 1894 if (get_user(uptr, ptr32 + i)) 1895 return -EFAULT; 1896 if (put_user(compat_ptr(uptr), ptr64 + i)) 1897 return -EFAULT; 1898 } 1899 return 0; 1900 } 1901 1902 #define MAX_AIO_SUBMITS (PAGE_SIZE/sizeof(struct iocb *)) 1903 1904 COMPAT_SYSCALL_DEFINE3(io_submit, compat_aio_context_t, ctx_id, 1905 int, nr, u32 __user *, iocb) 1906 { 1907 struct iocb __user * __user *iocb64; 1908 long ret; 1909 1910 if (unlikely(nr < 0)) 1911 return -EINVAL; 1912 1913 if (nr > MAX_AIO_SUBMITS) 1914 nr = MAX_AIO_SUBMITS; 1915 1916 iocb64 = compat_alloc_user_space(nr * sizeof(*iocb64)); 1917 ret = copy_iocb(nr, iocb, iocb64); 1918 if (!ret) 1919 ret = do_io_submit(ctx_id, nr, iocb64, 1); 1920 return ret; 1921 } 1922 #endif 1923 1924 /* lookup_kiocb 1925 * Finds a given iocb for cancellation. 1926 */ 1927 static struct aio_kiocb * 1928 lookup_kiocb(struct kioctx *ctx, struct iocb __user *iocb) 1929 { 1930 struct aio_kiocb *kiocb; 1931 1932 assert_spin_locked(&ctx->ctx_lock); 1933 1934 /* TODO: use a hash or array, this sucks. */ 1935 list_for_each_entry(kiocb, &ctx->active_reqs, ki_list) { 1936 if (kiocb->ki_user_iocb == iocb) 1937 return kiocb; 1938 } 1939 return NULL; 1940 } 1941 1942 /* sys_io_cancel: 1943 * Attempts to cancel an iocb previously passed to io_submit. If 1944 * the operation is successfully cancelled, the resulting event is 1945 * copied into the memory pointed to by result without being placed 1946 * into the completion queue and 0 is returned. May fail with 1947 * -EFAULT if any of the data structures pointed to are invalid. 1948 * May fail with -EINVAL if aio_context specified by ctx_id is 1949 * invalid. May fail with -EAGAIN if the iocb specified was not 1950 * cancelled. Will fail with -ENOSYS if not implemented. 1951 */ 1952 SYSCALL_DEFINE3(io_cancel, aio_context_t, ctx_id, struct iocb __user *, iocb, 1953 struct io_event __user *, result) 1954 { 1955 struct kioctx *ctx; 1956 struct aio_kiocb *kiocb; 1957 int ret = -EINVAL; 1958 u32 key; 1959 1960 if (unlikely(get_user(key, &iocb->aio_key))) 1961 return -EFAULT; 1962 if (unlikely(key != KIOCB_KEY)) 1963 return -EINVAL; 1964 1965 ctx = lookup_ioctx(ctx_id); 1966 if (unlikely(!ctx)) 1967 return -EINVAL; 1968 1969 spin_lock_irq(&ctx->ctx_lock); 1970 kiocb = lookup_kiocb(ctx, iocb); 1971 if (kiocb) { 1972 ret = kiocb->ki_cancel(&kiocb->rw); 1973 list_del_init(&kiocb->ki_list); 1974 } 1975 spin_unlock_irq(&ctx->ctx_lock); 1976 1977 if (!ret) { 1978 /* 1979 * The result argument is no longer used - the io_event is 1980 * always delivered via the ring buffer. -EINPROGRESS indicates 1981 * cancellation is progress: 1982 */ 1983 ret = -EINPROGRESS; 1984 } 1985 1986 percpu_ref_put(&ctx->users); 1987 1988 return ret; 1989 } 1990 1991 static long do_io_getevents(aio_context_t ctx_id, 1992 long min_nr, 1993 long nr, 1994 struct io_event __user *events, 1995 struct timespec64 *ts) 1996 { 1997 ktime_t until = ts ? timespec64_to_ktime(*ts) : KTIME_MAX; 1998 struct kioctx *ioctx = lookup_ioctx(ctx_id); 1999 long ret = -EINVAL; 2000 2001 if (likely(ioctx)) { 2002 if (likely(min_nr <= nr && min_nr >= 0)) 2003 ret = read_events(ioctx, min_nr, nr, events, until); 2004 percpu_ref_put(&ioctx->users); 2005 } 2006 2007 return ret; 2008 } 2009 2010 /* io_getevents: 2011 * Attempts to read at least min_nr events and up to nr events from 2012 * the completion queue for the aio_context specified by ctx_id. If 2013 * it succeeds, the number of read events is returned. May fail with 2014 * -EINVAL if ctx_id is invalid, if min_nr is out of range, if nr is 2015 * out of range, if timeout is out of range. May fail with -EFAULT 2016 * if any of the memory specified is invalid. May return 0 or 2017 * < min_nr if the timeout specified by timeout has elapsed 2018 * before sufficient events are available, where timeout == NULL 2019 * specifies an infinite timeout. Note that the timeout pointed to by 2020 * timeout is relative. Will fail with -ENOSYS if not implemented. 2021 */ 2022 SYSCALL_DEFINE5(io_getevents, aio_context_t, ctx_id, 2023 long, min_nr, 2024 long, nr, 2025 struct io_event __user *, events, 2026 struct timespec __user *, timeout) 2027 { 2028 struct timespec64 ts; 2029 int ret; 2030 2031 if (timeout && unlikely(get_timespec64(&ts, timeout))) 2032 return -EFAULT; 2033 2034 ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &ts : NULL); 2035 if (!ret && signal_pending(current)) 2036 ret = -EINTR; 2037 return ret; 2038 } 2039 2040 SYSCALL_DEFINE6(io_pgetevents, 2041 aio_context_t, ctx_id, 2042 long, min_nr, 2043 long, nr, 2044 struct io_event __user *, events, 2045 struct timespec __user *, timeout, 2046 const struct __aio_sigset __user *, usig) 2047 { 2048 struct __aio_sigset ksig = { NULL, }; 2049 sigset_t ksigmask, sigsaved; 2050 struct timespec64 ts; 2051 int ret; 2052 2053 if (timeout && unlikely(get_timespec64(&ts, timeout))) 2054 return -EFAULT; 2055 2056 if (usig && copy_from_user(&ksig, usig, sizeof(ksig))) 2057 return -EFAULT; 2058 2059 if (ksig.sigmask) { 2060 if (ksig.sigsetsize != sizeof(sigset_t)) 2061 return -EINVAL; 2062 if (copy_from_user(&ksigmask, ksig.sigmask, sizeof(ksigmask))) 2063 return -EFAULT; 2064 sigdelsetmask(&ksigmask, sigmask(SIGKILL) | sigmask(SIGSTOP)); 2065 sigprocmask(SIG_SETMASK, &ksigmask, &sigsaved); 2066 } 2067 2068 ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &ts : NULL); 2069 if (signal_pending(current)) { 2070 if (ksig.sigmask) { 2071 current->saved_sigmask = sigsaved; 2072 set_restore_sigmask(); 2073 } 2074 2075 if (!ret) 2076 ret = -ERESTARTNOHAND; 2077 } else { 2078 if (ksig.sigmask) 2079 sigprocmask(SIG_SETMASK, &sigsaved, NULL); 2080 } 2081 2082 return ret; 2083 } 2084 2085 #ifdef CONFIG_COMPAT 2086 COMPAT_SYSCALL_DEFINE5(io_getevents, compat_aio_context_t, ctx_id, 2087 compat_long_t, min_nr, 2088 compat_long_t, nr, 2089 struct io_event __user *, events, 2090 struct compat_timespec __user *, timeout) 2091 { 2092 struct timespec64 t; 2093 int ret; 2094 2095 if (timeout && compat_get_timespec64(&t, timeout)) 2096 return -EFAULT; 2097 2098 ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &t : NULL); 2099 if (!ret && signal_pending(current)) 2100 ret = -EINTR; 2101 return ret; 2102 } 2103 2104 2105 struct __compat_aio_sigset { 2106 compat_sigset_t __user *sigmask; 2107 compat_size_t sigsetsize; 2108 }; 2109 2110 COMPAT_SYSCALL_DEFINE6(io_pgetevents, 2111 compat_aio_context_t, ctx_id, 2112 compat_long_t, min_nr, 2113 compat_long_t, nr, 2114 struct io_event __user *, events, 2115 struct compat_timespec __user *, timeout, 2116 const struct __compat_aio_sigset __user *, usig) 2117 { 2118 struct __compat_aio_sigset ksig = { NULL, }; 2119 sigset_t ksigmask, sigsaved; 2120 struct timespec64 t; 2121 int ret; 2122 2123 if (timeout && compat_get_timespec64(&t, timeout)) 2124 return -EFAULT; 2125 2126 if (usig && copy_from_user(&ksig, usig, sizeof(ksig))) 2127 return -EFAULT; 2128 2129 if (ksig.sigmask) { 2130 if (ksig.sigsetsize != sizeof(compat_sigset_t)) 2131 return -EINVAL; 2132 if (get_compat_sigset(&ksigmask, ksig.sigmask)) 2133 return -EFAULT; 2134 sigdelsetmask(&ksigmask, sigmask(SIGKILL) | sigmask(SIGSTOP)); 2135 sigprocmask(SIG_SETMASK, &ksigmask, &sigsaved); 2136 } 2137 2138 ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &t : NULL); 2139 if (signal_pending(current)) { 2140 if (ksig.sigmask) { 2141 current->saved_sigmask = sigsaved; 2142 set_restore_sigmask(); 2143 } 2144 if (!ret) 2145 ret = -ERESTARTNOHAND; 2146 } else { 2147 if (ksig.sigmask) 2148 sigprocmask(SIG_SETMASK, &sigsaved, NULL); 2149 } 2150 2151 return ret; 2152 } 2153 #endif 2154