aio.c 36 KB

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  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. *
  9. * See ../COPYING for licensing terms.
  10. */
  11. #define pr_fmt(fmt) "%s: " fmt, __func__
  12. #include <linux/kernel.h>
  13. #include <linux/init.h>
  14. #include <linux/errno.h>
  15. #include <linux/time.h>
  16. #include <linux/aio_abi.h>
  17. #include <linux/export.h>
  18. #include <linux/syscalls.h>
  19. #include <linux/backing-dev.h>
  20. #include <linux/uio.h>
  21. #include <linux/sched.h>
  22. #include <linux/fs.h>
  23. #include <linux/file.h>
  24. #include <linux/mm.h>
  25. #include <linux/mman.h>
  26. #include <linux/mmu_context.h>
  27. #include <linux/percpu.h>
  28. #include <linux/slab.h>
  29. #include <linux/timer.h>
  30. #include <linux/aio.h>
  31. #include <linux/highmem.h>
  32. #include <linux/workqueue.h>
  33. #include <linux/security.h>
  34. #include <linux/eventfd.h>
  35. #include <linux/blkdev.h>
  36. #include <linux/compat.h>
  37. #include <linux/anon_inodes.h>
  38. #include <linux/migrate.h>
  39. #include <linux/ramfs.h>
  40. #include <linux/percpu-refcount.h>
  41. #include <asm/kmap_types.h>
  42. #include <asm/uaccess.h>
  43. #include "internal.h"
  44. #define AIO_RING_MAGIC 0xa10a10a1
  45. #define AIO_RING_COMPAT_FEATURES 1
  46. #define AIO_RING_INCOMPAT_FEATURES 0
  47. struct aio_ring {
  48. unsigned id; /* kernel internal index number */
  49. unsigned nr; /* number of io_events */
  50. unsigned head;
  51. unsigned tail;
  52. unsigned magic;
  53. unsigned compat_features;
  54. unsigned incompat_features;
  55. unsigned header_length; /* size of aio_ring */
  56. struct io_event io_events[0];
  57. }; /* 128 bytes + ring size */
  58. #define AIO_RING_PAGES 8
  59. struct kioctx_table {
  60. struct rcu_head rcu;
  61. unsigned nr;
  62. struct kioctx *table[];
  63. };
  64. struct kioctx_cpu {
  65. unsigned reqs_available;
  66. };
  67. struct kioctx {
  68. struct percpu_ref users;
  69. atomic_t dead;
  70. struct percpu_ref reqs;
  71. unsigned long user_id;
  72. struct __percpu kioctx_cpu *cpu;
  73. /*
  74. * For percpu reqs_available, number of slots we move to/from global
  75. * counter at a time:
  76. */
  77. unsigned req_batch;
  78. /*
  79. * This is what userspace passed to io_setup(), it's not used for
  80. * anything but counting against the global max_reqs quota.
  81. *
  82. * The real limit is nr_events - 1, which will be larger (see
  83. * aio_setup_ring())
  84. */
  85. unsigned max_reqs;
  86. /* Size of ringbuffer, in units of struct io_event */
  87. unsigned nr_events;
  88. unsigned long mmap_base;
  89. unsigned long mmap_size;
  90. struct page **ring_pages;
  91. long nr_pages;
  92. struct work_struct free_work;
  93. struct {
  94. /*
  95. * This counts the number of available slots in the ringbuffer,
  96. * so we avoid overflowing it: it's decremented (if positive)
  97. * when allocating a kiocb and incremented when the resulting
  98. * io_event is pulled off the ringbuffer.
  99. *
  100. * We batch accesses to it with a percpu version.
  101. */
  102. atomic_t reqs_available;
  103. } ____cacheline_aligned_in_smp;
  104. struct {
  105. spinlock_t ctx_lock;
  106. struct list_head active_reqs; /* used for cancellation */
  107. } ____cacheline_aligned_in_smp;
  108. struct {
  109. struct mutex ring_lock;
  110. wait_queue_head_t wait;
  111. } ____cacheline_aligned_in_smp;
  112. struct {
  113. unsigned tail;
  114. spinlock_t completion_lock;
  115. } ____cacheline_aligned_in_smp;
  116. struct page *internal_pages[AIO_RING_PAGES];
  117. struct file *aio_ring_file;
  118. unsigned id;
  119. };
  120. /*------ sysctl variables----*/
  121. static DEFINE_SPINLOCK(aio_nr_lock);
  122. unsigned long aio_nr; /* current system wide number of aio requests */
  123. unsigned long aio_max_nr = 0x10000; /* system wide maximum number of aio requests */
  124. /*----end sysctl variables---*/
  125. static struct kmem_cache *kiocb_cachep;
  126. static struct kmem_cache *kioctx_cachep;
  127. /* aio_setup
  128. * Creates the slab caches used by the aio routines, panic on
  129. * failure as this is done early during the boot sequence.
  130. */
  131. static int __init aio_setup(void)
  132. {
  133. kiocb_cachep = KMEM_CACHE(kiocb, SLAB_HWCACHE_ALIGN|SLAB_PANIC);
  134. kioctx_cachep = KMEM_CACHE(kioctx,SLAB_HWCACHE_ALIGN|SLAB_PANIC);
  135. pr_debug("sizeof(struct page) = %zu\n", sizeof(struct page));
  136. return 0;
  137. }
  138. __initcall(aio_setup);
  139. static void put_aio_ring_file(struct kioctx *ctx)
  140. {
  141. struct file *aio_ring_file = ctx->aio_ring_file;
  142. if (aio_ring_file) {
  143. truncate_setsize(aio_ring_file->f_inode, 0);
  144. /* Prevent further access to the kioctx from migratepages */
  145. spin_lock(&aio_ring_file->f_inode->i_mapping->private_lock);
  146. aio_ring_file->f_inode->i_mapping->private_data = NULL;
  147. ctx->aio_ring_file = NULL;
  148. spin_unlock(&aio_ring_file->f_inode->i_mapping->private_lock);
  149. fput(aio_ring_file);
  150. }
  151. }
  152. static void aio_free_ring(struct kioctx *ctx)
  153. {
  154. int i;
  155. for (i = 0; i < ctx->nr_pages; i++) {
  156. pr_debug("pid(%d) [%d] page->count=%d\n", current->pid, i,
  157. page_count(ctx->ring_pages[i]));
  158. put_page(ctx->ring_pages[i]);
  159. }
  160. put_aio_ring_file(ctx);
  161. if (ctx->ring_pages && ctx->ring_pages != ctx->internal_pages) {
  162. kfree(ctx->ring_pages);
  163. ctx->ring_pages = NULL;
  164. }
  165. }
  166. static int aio_ring_mmap(struct file *file, struct vm_area_struct *vma)
  167. {
  168. vma->vm_ops = &generic_file_vm_ops;
  169. return 0;
  170. }
  171. static const struct file_operations aio_ring_fops = {
  172. .mmap = aio_ring_mmap,
  173. };
  174. static int aio_set_page_dirty(struct page *page)
  175. {
  176. return 0;
  177. }
  178. #if IS_ENABLED(CONFIG_MIGRATION)
  179. static int aio_migratepage(struct address_space *mapping, struct page *new,
  180. struct page *old, enum migrate_mode mode)
  181. {
  182. struct kioctx *ctx;
  183. unsigned long flags;
  184. int rc;
  185. /* Writeback must be complete */
  186. BUG_ON(PageWriteback(old));
  187. put_page(old);
  188. rc = migrate_page_move_mapping(mapping, new, old, NULL, mode);
  189. if (rc != MIGRATEPAGE_SUCCESS) {
  190. get_page(old);
  191. return rc;
  192. }
  193. get_page(new);
  194. /* We can potentially race against kioctx teardown here. Use the
  195. * address_space's private data lock to protect the mapping's
  196. * private_data.
  197. */
  198. spin_lock(&mapping->private_lock);
  199. ctx = mapping->private_data;
  200. if (ctx) {
  201. pgoff_t idx;
  202. spin_lock_irqsave(&ctx->completion_lock, flags);
  203. migrate_page_copy(new, old);
  204. idx = old->index;
  205. if (idx < (pgoff_t)ctx->nr_pages)
  206. ctx->ring_pages[idx] = new;
  207. spin_unlock_irqrestore(&ctx->completion_lock, flags);
  208. } else
  209. rc = -EBUSY;
  210. spin_unlock(&mapping->private_lock);
  211. return rc;
  212. }
  213. #endif
  214. static const struct address_space_operations aio_ctx_aops = {
  215. .set_page_dirty = aio_set_page_dirty,
  216. #if IS_ENABLED(CONFIG_MIGRATION)
  217. .migratepage = aio_migratepage,
  218. #endif
  219. };
  220. static int aio_setup_ring(struct kioctx *ctx)
  221. {
  222. struct aio_ring *ring;
  223. unsigned nr_events = ctx->max_reqs;
  224. struct mm_struct *mm = current->mm;
  225. unsigned long size, populate;
  226. int nr_pages;
  227. int i;
  228. struct file *file;
  229. /* Compensate for the ring buffer's head/tail overlap entry */
  230. nr_events += 2; /* 1 is required, 2 for good luck */
  231. size = sizeof(struct aio_ring);
  232. size += sizeof(struct io_event) * nr_events;
  233. nr_pages = PFN_UP(size);
  234. if (nr_pages < 0)
  235. return -EINVAL;
  236. file = anon_inode_getfile_private("[aio]", &aio_ring_fops, ctx, O_RDWR);
  237. if (IS_ERR(file)) {
  238. ctx->aio_ring_file = NULL;
  239. return -EAGAIN;
  240. }
  241. file->f_inode->i_mapping->a_ops = &aio_ctx_aops;
  242. file->f_inode->i_mapping->private_data = ctx;
  243. file->f_inode->i_size = PAGE_SIZE * (loff_t)nr_pages;
  244. for (i = 0; i < nr_pages; i++) {
  245. struct page *page;
  246. page = find_or_create_page(file->f_inode->i_mapping,
  247. i, GFP_HIGHUSER | __GFP_ZERO);
  248. if (!page)
  249. break;
  250. pr_debug("pid(%d) page[%d]->count=%d\n",
  251. current->pid, i, page_count(page));
  252. SetPageUptodate(page);
  253. SetPageDirty(page);
  254. unlock_page(page);
  255. }
  256. ctx->aio_ring_file = file;
  257. nr_events = (PAGE_SIZE * nr_pages - sizeof(struct aio_ring))
  258. / sizeof(struct io_event);
  259. ctx->ring_pages = ctx->internal_pages;
  260. if (nr_pages > AIO_RING_PAGES) {
  261. ctx->ring_pages = kcalloc(nr_pages, sizeof(struct page *),
  262. GFP_KERNEL);
  263. if (!ctx->ring_pages) {
  264. put_aio_ring_file(ctx);
  265. return -ENOMEM;
  266. }
  267. }
  268. ctx->mmap_size = nr_pages * PAGE_SIZE;
  269. pr_debug("attempting mmap of %lu bytes\n", ctx->mmap_size);
  270. down_write(&mm->mmap_sem);
  271. ctx->mmap_base = do_mmap_pgoff(ctx->aio_ring_file, 0, ctx->mmap_size,
  272. PROT_READ | PROT_WRITE,
  273. MAP_SHARED | MAP_POPULATE, 0, &populate);
  274. if (IS_ERR((void *)ctx->mmap_base)) {
  275. up_write(&mm->mmap_sem);
  276. ctx->mmap_size = 0;
  277. aio_free_ring(ctx);
  278. return -EAGAIN;
  279. }
  280. pr_debug("mmap address: 0x%08lx\n", ctx->mmap_base);
  281. /* We must do this while still holding mmap_sem for write, as we
  282. * need to be protected against userspace attempting to mremap()
  283. * or munmap() the ring buffer.
  284. */
  285. ctx->nr_pages = get_user_pages(current, mm, ctx->mmap_base, nr_pages,
  286. 1, 0, ctx->ring_pages, NULL);
  287. /* Dropping the reference here is safe as the page cache will hold
  288. * onto the pages for us. It is also required so that page migration
  289. * can unmap the pages and get the right reference count.
  290. */
  291. for (i = 0; i < ctx->nr_pages; i++)
  292. put_page(ctx->ring_pages[i]);
  293. up_write(&mm->mmap_sem);
  294. if (unlikely(ctx->nr_pages != nr_pages)) {
  295. aio_free_ring(ctx);
  296. return -EAGAIN;
  297. }
  298. ctx->user_id = ctx->mmap_base;
  299. ctx->nr_events = nr_events; /* trusted copy */
  300. ring = kmap_atomic(ctx->ring_pages[0]);
  301. ring->nr = nr_events; /* user copy */
  302. ring->id = ~0U;
  303. ring->head = ring->tail = 0;
  304. ring->magic = AIO_RING_MAGIC;
  305. ring->compat_features = AIO_RING_COMPAT_FEATURES;
  306. ring->incompat_features = AIO_RING_INCOMPAT_FEATURES;
  307. ring->header_length = sizeof(struct aio_ring);
  308. kunmap_atomic(ring);
  309. flush_dcache_page(ctx->ring_pages[0]);
  310. return 0;
  311. }
  312. #define AIO_EVENTS_PER_PAGE (PAGE_SIZE / sizeof(struct io_event))
  313. #define AIO_EVENTS_FIRST_PAGE ((PAGE_SIZE - sizeof(struct aio_ring)) / sizeof(struct io_event))
  314. #define AIO_EVENTS_OFFSET (AIO_EVENTS_PER_PAGE - AIO_EVENTS_FIRST_PAGE)
  315. void kiocb_set_cancel_fn(struct kiocb *req, kiocb_cancel_fn *cancel)
  316. {
  317. struct kioctx *ctx = req->ki_ctx;
  318. unsigned long flags;
  319. spin_lock_irqsave(&ctx->ctx_lock, flags);
  320. if (!req->ki_list.next)
  321. list_add(&req->ki_list, &ctx->active_reqs);
  322. req->ki_cancel = cancel;
  323. spin_unlock_irqrestore(&ctx->ctx_lock, flags);
  324. }
  325. EXPORT_SYMBOL(kiocb_set_cancel_fn);
  326. static int kiocb_cancel(struct kioctx *ctx, struct kiocb *kiocb)
  327. {
  328. kiocb_cancel_fn *old, *cancel;
  329. /*
  330. * Don't want to set kiocb->ki_cancel = KIOCB_CANCELLED unless it
  331. * actually has a cancel function, hence the cmpxchg()
  332. */
  333. cancel = ACCESS_ONCE(kiocb->ki_cancel);
  334. do {
  335. if (!cancel || cancel == KIOCB_CANCELLED)
  336. return -EINVAL;
  337. old = cancel;
  338. cancel = cmpxchg(&kiocb->ki_cancel, old, KIOCB_CANCELLED);
  339. } while (cancel != old);
  340. return cancel(kiocb);
  341. }
  342. static void free_ioctx(struct work_struct *work)
  343. {
  344. struct kioctx *ctx = container_of(work, struct kioctx, free_work);
  345. pr_debug("freeing %p\n", ctx);
  346. aio_free_ring(ctx);
  347. free_percpu(ctx->cpu);
  348. kmem_cache_free(kioctx_cachep, ctx);
  349. }
  350. static void free_ioctx_reqs(struct percpu_ref *ref)
  351. {
  352. struct kioctx *ctx = container_of(ref, struct kioctx, reqs);
  353. INIT_WORK(&ctx->free_work, free_ioctx);
  354. schedule_work(&ctx->free_work);
  355. }
  356. /*
  357. * When this function runs, the kioctx has been removed from the "hash table"
  358. * and ctx->users has dropped to 0, so we know no more kiocbs can be submitted -
  359. * now it's safe to cancel any that need to be.
  360. */
  361. static void free_ioctx_users(struct percpu_ref *ref)
  362. {
  363. struct kioctx *ctx = container_of(ref, struct kioctx, users);
  364. struct kiocb *req;
  365. spin_lock_irq(&ctx->ctx_lock);
  366. while (!list_empty(&ctx->active_reqs)) {
  367. req = list_first_entry(&ctx->active_reqs,
  368. struct kiocb, ki_list);
  369. list_del_init(&req->ki_list);
  370. kiocb_cancel(ctx, req);
  371. }
  372. spin_unlock_irq(&ctx->ctx_lock);
  373. percpu_ref_kill(&ctx->reqs);
  374. percpu_ref_put(&ctx->reqs);
  375. }
  376. static int ioctx_add_table(struct kioctx *ctx, struct mm_struct *mm)
  377. {
  378. unsigned i, new_nr;
  379. struct kioctx_table *table, *old;
  380. struct aio_ring *ring;
  381. spin_lock(&mm->ioctx_lock);
  382. rcu_read_lock();
  383. table = rcu_dereference(mm->ioctx_table);
  384. while (1) {
  385. if (table)
  386. for (i = 0; i < table->nr; i++)
  387. if (!table->table[i]) {
  388. ctx->id = i;
  389. table->table[i] = ctx;
  390. rcu_read_unlock();
  391. spin_unlock(&mm->ioctx_lock);
  392. ring = kmap_atomic(ctx->ring_pages[0]);
  393. ring->id = ctx->id;
  394. kunmap_atomic(ring);
  395. return 0;
  396. }
  397. new_nr = (table ? table->nr : 1) * 4;
  398. rcu_read_unlock();
  399. spin_unlock(&mm->ioctx_lock);
  400. table = kzalloc(sizeof(*table) + sizeof(struct kioctx *) *
  401. new_nr, GFP_KERNEL);
  402. if (!table)
  403. return -ENOMEM;
  404. table->nr = new_nr;
  405. spin_lock(&mm->ioctx_lock);
  406. rcu_read_lock();
  407. old = rcu_dereference(mm->ioctx_table);
  408. if (!old) {
  409. rcu_assign_pointer(mm->ioctx_table, table);
  410. } else if (table->nr > old->nr) {
  411. memcpy(table->table, old->table,
  412. old->nr * sizeof(struct kioctx *));
  413. rcu_assign_pointer(mm->ioctx_table, table);
  414. kfree_rcu(old, rcu);
  415. } else {
  416. kfree(table);
  417. table = old;
  418. }
  419. }
  420. }
  421. static void aio_nr_sub(unsigned nr)
  422. {
  423. spin_lock(&aio_nr_lock);
  424. if (WARN_ON(aio_nr - nr > aio_nr))
  425. aio_nr = 0;
  426. else
  427. aio_nr -= nr;
  428. spin_unlock(&aio_nr_lock);
  429. }
  430. /* ioctx_alloc
  431. * Allocates and initializes an ioctx. Returns an ERR_PTR if it failed.
  432. */
  433. static struct kioctx *ioctx_alloc(unsigned nr_events)
  434. {
  435. struct mm_struct *mm = current->mm;
  436. struct kioctx *ctx;
  437. int err = -ENOMEM;
  438. /*
  439. * We keep track of the number of available ringbuffer slots, to prevent
  440. * overflow (reqs_available), and we also use percpu counters for this.
  441. *
  442. * So since up to half the slots might be on other cpu's percpu counters
  443. * and unavailable, double nr_events so userspace sees what they
  444. * expected: additionally, we move req_batch slots to/from percpu
  445. * counters at a time, so make sure that isn't 0:
  446. */
  447. nr_events = max(nr_events, num_possible_cpus() * 4);
  448. nr_events *= 2;
  449. /* Prevent overflows */
  450. if ((nr_events > (0x10000000U / sizeof(struct io_event))) ||
  451. (nr_events > (0x10000000U / sizeof(struct kiocb)))) {
  452. pr_debug("ENOMEM: nr_events too high\n");
  453. return ERR_PTR(-EINVAL);
  454. }
  455. if (!nr_events || (unsigned long)nr_events > (aio_max_nr * 2UL))
  456. return ERR_PTR(-EAGAIN);
  457. ctx = kmem_cache_zalloc(kioctx_cachep, GFP_KERNEL);
  458. if (!ctx)
  459. return ERR_PTR(-ENOMEM);
  460. ctx->max_reqs = nr_events;
  461. if (percpu_ref_init(&ctx->users, free_ioctx_users))
  462. goto err;
  463. if (percpu_ref_init(&ctx->reqs, free_ioctx_reqs))
  464. goto err;
  465. spin_lock_init(&ctx->ctx_lock);
  466. spin_lock_init(&ctx->completion_lock);
  467. mutex_init(&ctx->ring_lock);
  468. init_waitqueue_head(&ctx->wait);
  469. INIT_LIST_HEAD(&ctx->active_reqs);
  470. ctx->cpu = alloc_percpu(struct kioctx_cpu);
  471. if (!ctx->cpu)
  472. goto err;
  473. if (aio_setup_ring(ctx) < 0)
  474. goto err;
  475. atomic_set(&ctx->reqs_available, ctx->nr_events - 1);
  476. ctx->req_batch = (ctx->nr_events - 1) / (num_possible_cpus() * 4);
  477. if (ctx->req_batch < 1)
  478. ctx->req_batch = 1;
  479. /* limit the number of system wide aios */
  480. spin_lock(&aio_nr_lock);
  481. if (aio_nr + nr_events > (aio_max_nr * 2UL) ||
  482. aio_nr + nr_events < aio_nr) {
  483. spin_unlock(&aio_nr_lock);
  484. err = -EAGAIN;
  485. goto err_ctx;
  486. }
  487. aio_nr += ctx->max_reqs;
  488. spin_unlock(&aio_nr_lock);
  489. percpu_ref_get(&ctx->users); /* io_setup() will drop this ref */
  490. err = ioctx_add_table(ctx, mm);
  491. if (err)
  492. goto err_cleanup;
  493. pr_debug("allocated ioctx %p[%ld]: mm=%p mask=0x%x\n",
  494. ctx, ctx->user_id, mm, ctx->nr_events);
  495. return ctx;
  496. err_cleanup:
  497. aio_nr_sub(ctx->max_reqs);
  498. err_ctx:
  499. aio_free_ring(ctx);
  500. err:
  501. free_percpu(ctx->cpu);
  502. free_percpu(ctx->reqs.pcpu_count);
  503. free_percpu(ctx->users.pcpu_count);
  504. kmem_cache_free(kioctx_cachep, ctx);
  505. pr_debug("error allocating ioctx %d\n", err);
  506. return ERR_PTR(err);
  507. }
  508. /* kill_ioctx
  509. * Cancels all outstanding aio requests on an aio context. Used
  510. * when the processes owning a context have all exited to encourage
  511. * the rapid destruction of the kioctx.
  512. */
  513. static void kill_ioctx(struct mm_struct *mm, struct kioctx *ctx)
  514. {
  515. if (!atomic_xchg(&ctx->dead, 1)) {
  516. struct kioctx_table *table;
  517. spin_lock(&mm->ioctx_lock);
  518. rcu_read_lock();
  519. table = rcu_dereference(mm->ioctx_table);
  520. WARN_ON(ctx != table->table[ctx->id]);
  521. table->table[ctx->id] = NULL;
  522. rcu_read_unlock();
  523. spin_unlock(&mm->ioctx_lock);
  524. /* percpu_ref_kill() will do the necessary call_rcu() */
  525. wake_up_all(&ctx->wait);
  526. /*
  527. * It'd be more correct to do this in free_ioctx(), after all
  528. * the outstanding kiocbs have finished - but by then io_destroy
  529. * has already returned, so io_setup() could potentially return
  530. * -EAGAIN with no ioctxs actually in use (as far as userspace
  531. * could tell).
  532. */
  533. aio_nr_sub(ctx->max_reqs);
  534. if (ctx->mmap_size)
  535. vm_munmap(ctx->mmap_base, ctx->mmap_size);
  536. percpu_ref_kill(&ctx->users);
  537. }
  538. }
  539. /* wait_on_sync_kiocb:
  540. * Waits on the given sync kiocb to complete.
  541. */
  542. ssize_t wait_on_sync_kiocb(struct kiocb *req)
  543. {
  544. while (!req->ki_ctx) {
  545. set_current_state(TASK_UNINTERRUPTIBLE);
  546. if (req->ki_ctx)
  547. break;
  548. io_schedule();
  549. }
  550. __set_current_state(TASK_RUNNING);
  551. return req->ki_user_data;
  552. }
  553. EXPORT_SYMBOL(wait_on_sync_kiocb);
  554. /*
  555. * exit_aio: called when the last user of mm goes away. At this point, there is
  556. * no way for any new requests to be submited or any of the io_* syscalls to be
  557. * called on the context.
  558. *
  559. * There may be outstanding kiocbs, but free_ioctx() will explicitly wait on
  560. * them.
  561. */
  562. void exit_aio(struct mm_struct *mm)
  563. {
  564. struct kioctx_table *table;
  565. struct kioctx *ctx;
  566. unsigned i = 0;
  567. while (1) {
  568. rcu_read_lock();
  569. table = rcu_dereference(mm->ioctx_table);
  570. do {
  571. if (!table || i >= table->nr) {
  572. rcu_read_unlock();
  573. rcu_assign_pointer(mm->ioctx_table, NULL);
  574. if (table)
  575. kfree(table);
  576. return;
  577. }
  578. ctx = table->table[i++];
  579. } while (!ctx);
  580. rcu_read_unlock();
  581. /*
  582. * We don't need to bother with munmap() here -
  583. * exit_mmap(mm) is coming and it'll unmap everything.
  584. * Since aio_free_ring() uses non-zero ->mmap_size
  585. * as indicator that it needs to unmap the area,
  586. * just set it to 0; aio_free_ring() is the only
  587. * place that uses ->mmap_size, so it's safe.
  588. */
  589. ctx->mmap_size = 0;
  590. kill_ioctx(mm, ctx);
  591. }
  592. }
  593. static void put_reqs_available(struct kioctx *ctx, unsigned nr)
  594. {
  595. struct kioctx_cpu *kcpu;
  596. preempt_disable();
  597. kcpu = this_cpu_ptr(ctx->cpu);
  598. kcpu->reqs_available += nr;
  599. while (kcpu->reqs_available >= ctx->req_batch * 2) {
  600. kcpu->reqs_available -= ctx->req_batch;
  601. atomic_add(ctx->req_batch, &ctx->reqs_available);
  602. }
  603. preempt_enable();
  604. }
  605. static bool get_reqs_available(struct kioctx *ctx)
  606. {
  607. struct kioctx_cpu *kcpu;
  608. bool ret = false;
  609. preempt_disable();
  610. kcpu = this_cpu_ptr(ctx->cpu);
  611. if (!kcpu->reqs_available) {
  612. int old, avail = atomic_read(&ctx->reqs_available);
  613. do {
  614. if (avail < ctx->req_batch)
  615. goto out;
  616. old = avail;
  617. avail = atomic_cmpxchg(&ctx->reqs_available,
  618. avail, avail - ctx->req_batch);
  619. } while (avail != old);
  620. kcpu->reqs_available += ctx->req_batch;
  621. }
  622. ret = true;
  623. kcpu->reqs_available--;
  624. out:
  625. preempt_enable();
  626. return ret;
  627. }
  628. /* aio_get_req
  629. * Allocate a slot for an aio request.
  630. * Returns NULL if no requests are free.
  631. */
  632. static inline struct kiocb *aio_get_req(struct kioctx *ctx)
  633. {
  634. struct kiocb *req;
  635. if (!get_reqs_available(ctx))
  636. return NULL;
  637. req = kmem_cache_alloc(kiocb_cachep, GFP_KERNEL|__GFP_ZERO);
  638. if (unlikely(!req))
  639. goto out_put;
  640. percpu_ref_get(&ctx->reqs);
  641. req->ki_ctx = ctx;
  642. return req;
  643. out_put:
  644. put_reqs_available(ctx, 1);
  645. return NULL;
  646. }
  647. static void kiocb_free(struct kiocb *req)
  648. {
  649. if (req->ki_filp)
  650. fput(req->ki_filp);
  651. if (req->ki_eventfd != NULL)
  652. eventfd_ctx_put(req->ki_eventfd);
  653. kmem_cache_free(kiocb_cachep, req);
  654. }
  655. static struct kioctx *lookup_ioctx(unsigned long ctx_id)
  656. {
  657. struct aio_ring __user *ring = (void __user *)ctx_id;
  658. struct mm_struct *mm = current->mm;
  659. struct kioctx *ctx, *ret = NULL;
  660. struct kioctx_table *table;
  661. unsigned id;
  662. if (get_user(id, &ring->id))
  663. return NULL;
  664. rcu_read_lock();
  665. table = rcu_dereference(mm->ioctx_table);
  666. if (!table || id >= table->nr)
  667. goto out;
  668. ctx = table->table[id];
  669. if (ctx && ctx->user_id == ctx_id) {
  670. percpu_ref_get(&ctx->users);
  671. ret = ctx;
  672. }
  673. out:
  674. rcu_read_unlock();
  675. return ret;
  676. }
  677. /* aio_complete
  678. * Called when the io request on the given iocb is complete.
  679. */
  680. void aio_complete(struct kiocb *iocb, long res, long res2)
  681. {
  682. struct kioctx *ctx = iocb->ki_ctx;
  683. struct aio_ring *ring;
  684. struct io_event *ev_page, *event;
  685. unsigned long flags;
  686. unsigned tail, pos;
  687. /*
  688. * Special case handling for sync iocbs:
  689. * - events go directly into the iocb for fast handling
  690. * - the sync task with the iocb in its stack holds the single iocb
  691. * ref, no other paths have a way to get another ref
  692. * - the sync task helpfully left a reference to itself in the iocb
  693. */
  694. if (is_sync_kiocb(iocb)) {
  695. iocb->ki_user_data = res;
  696. smp_wmb();
  697. iocb->ki_ctx = ERR_PTR(-EXDEV);
  698. wake_up_process(iocb->ki_obj.tsk);
  699. return;
  700. }
  701. if (iocb->ki_list.next) {
  702. unsigned long flags;
  703. spin_lock_irqsave(&ctx->ctx_lock, flags);
  704. list_del(&iocb->ki_list);
  705. spin_unlock_irqrestore(&ctx->ctx_lock, flags);
  706. }
  707. /*
  708. * Add a completion event to the ring buffer. Must be done holding
  709. * ctx->completion_lock to prevent other code from messing with the tail
  710. * pointer since we might be called from irq context.
  711. */
  712. spin_lock_irqsave(&ctx->completion_lock, flags);
  713. tail = ctx->tail;
  714. pos = tail + AIO_EVENTS_OFFSET;
  715. if (++tail >= ctx->nr_events)
  716. tail = 0;
  717. ev_page = kmap_atomic(ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]);
  718. event = ev_page + pos % AIO_EVENTS_PER_PAGE;
  719. event->obj = (u64)(unsigned long)iocb->ki_obj.user;
  720. event->data = iocb->ki_user_data;
  721. event->res = res;
  722. event->res2 = res2;
  723. kunmap_atomic(ev_page);
  724. flush_dcache_page(ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]);
  725. pr_debug("%p[%u]: %p: %p %Lx %lx %lx\n",
  726. ctx, tail, iocb, iocb->ki_obj.user, iocb->ki_user_data,
  727. res, res2);
  728. /* after flagging the request as done, we
  729. * must never even look at it again
  730. */
  731. smp_wmb(); /* make event visible before updating tail */
  732. ctx->tail = tail;
  733. ring = kmap_atomic(ctx->ring_pages[0]);
  734. ring->tail = tail;
  735. kunmap_atomic(ring);
  736. flush_dcache_page(ctx->ring_pages[0]);
  737. spin_unlock_irqrestore(&ctx->completion_lock, flags);
  738. pr_debug("added to ring %p at [%u]\n", iocb, tail);
  739. /*
  740. * Check if the user asked us to deliver the result through an
  741. * eventfd. The eventfd_signal() function is safe to be called
  742. * from IRQ context.
  743. */
  744. if (iocb->ki_eventfd != NULL)
  745. eventfd_signal(iocb->ki_eventfd, 1);
  746. /* everything turned out well, dispose of the aiocb. */
  747. kiocb_free(iocb);
  748. /*
  749. * We have to order our ring_info tail store above and test
  750. * of the wait list below outside the wait lock. This is
  751. * like in wake_up_bit() where clearing a bit has to be
  752. * ordered with the unlocked test.
  753. */
  754. smp_mb();
  755. if (waitqueue_active(&ctx->wait))
  756. wake_up(&ctx->wait);
  757. percpu_ref_put(&ctx->reqs);
  758. }
  759. EXPORT_SYMBOL(aio_complete);
  760. /* aio_read_events
  761. * Pull an event off of the ioctx's event ring. Returns the number of
  762. * events fetched
  763. */
  764. static long aio_read_events_ring(struct kioctx *ctx,
  765. struct io_event __user *event, long nr)
  766. {
  767. struct aio_ring *ring;
  768. unsigned head, tail, pos;
  769. long ret = 0;
  770. int copy_ret;
  771. mutex_lock(&ctx->ring_lock);
  772. ring = kmap_atomic(ctx->ring_pages[0]);
  773. head = ring->head;
  774. tail = ring->tail;
  775. kunmap_atomic(ring);
  776. pr_debug("h%u t%u m%u\n", head, tail, ctx->nr_events);
  777. if (head == tail)
  778. goto out;
  779. while (ret < nr) {
  780. long avail;
  781. struct io_event *ev;
  782. struct page *page;
  783. avail = (head <= tail ? tail : ctx->nr_events) - head;
  784. if (head == tail)
  785. break;
  786. avail = min(avail, nr - ret);
  787. avail = min_t(long, avail, AIO_EVENTS_PER_PAGE -
  788. ((head + AIO_EVENTS_OFFSET) % AIO_EVENTS_PER_PAGE));
  789. pos = head + AIO_EVENTS_OFFSET;
  790. page = ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE];
  791. pos %= AIO_EVENTS_PER_PAGE;
  792. ev = kmap(page);
  793. copy_ret = copy_to_user(event + ret, ev + pos,
  794. sizeof(*ev) * avail);
  795. kunmap(page);
  796. if (unlikely(copy_ret)) {
  797. ret = -EFAULT;
  798. goto out;
  799. }
  800. ret += avail;
  801. head += avail;
  802. head %= ctx->nr_events;
  803. }
  804. ring = kmap_atomic(ctx->ring_pages[0]);
  805. ring->head = head;
  806. kunmap_atomic(ring);
  807. flush_dcache_page(ctx->ring_pages[0]);
  808. pr_debug("%li h%u t%u\n", ret, head, tail);
  809. put_reqs_available(ctx, ret);
  810. out:
  811. mutex_unlock(&ctx->ring_lock);
  812. return ret;
  813. }
  814. static bool aio_read_events(struct kioctx *ctx, long min_nr, long nr,
  815. struct io_event __user *event, long *i)
  816. {
  817. long ret = aio_read_events_ring(ctx, event + *i, nr - *i);
  818. if (ret > 0)
  819. *i += ret;
  820. if (unlikely(atomic_read(&ctx->dead)))
  821. ret = -EINVAL;
  822. if (!*i)
  823. *i = ret;
  824. return ret < 0 || *i >= min_nr;
  825. }
  826. static long read_events(struct kioctx *ctx, long min_nr, long nr,
  827. struct io_event __user *event,
  828. struct timespec __user *timeout)
  829. {
  830. ktime_t until = { .tv64 = KTIME_MAX };
  831. long ret = 0;
  832. if (timeout) {
  833. struct timespec ts;
  834. if (unlikely(copy_from_user(&ts, timeout, sizeof(ts))))
  835. return -EFAULT;
  836. until = timespec_to_ktime(ts);
  837. }
  838. /*
  839. * Note that aio_read_events() is being called as the conditional - i.e.
  840. * we're calling it after prepare_to_wait() has set task state to
  841. * TASK_INTERRUPTIBLE.
  842. *
  843. * But aio_read_events() can block, and if it blocks it's going to flip
  844. * the task state back to TASK_RUNNING.
  845. *
  846. * This should be ok, provided it doesn't flip the state back to
  847. * TASK_RUNNING and return 0 too much - that causes us to spin. That
  848. * will only happen if the mutex_lock() call blocks, and we then find
  849. * the ringbuffer empty. So in practice we should be ok, but it's
  850. * something to be aware of when touching this code.
  851. */
  852. wait_event_interruptible_hrtimeout(ctx->wait,
  853. aio_read_events(ctx, min_nr, nr, event, &ret), until);
  854. if (!ret && signal_pending(current))
  855. ret = -EINTR;
  856. return ret;
  857. }
  858. /* sys_io_setup:
  859. * Create an aio_context capable of receiving at least nr_events.
  860. * ctxp must not point to an aio_context that already exists, and
  861. * must be initialized to 0 prior to the call. On successful
  862. * creation of the aio_context, *ctxp is filled in with the resulting
  863. * handle. May fail with -EINVAL if *ctxp is not initialized,
  864. * if the specified nr_events exceeds internal limits. May fail
  865. * with -EAGAIN if the specified nr_events exceeds the user's limit
  866. * of available events. May fail with -ENOMEM if insufficient kernel
  867. * resources are available. May fail with -EFAULT if an invalid
  868. * pointer is passed for ctxp. Will fail with -ENOSYS if not
  869. * implemented.
  870. */
  871. SYSCALL_DEFINE2(io_setup, unsigned, nr_events, aio_context_t __user *, ctxp)
  872. {
  873. struct kioctx *ioctx = NULL;
  874. unsigned long ctx;
  875. long ret;
  876. ret = get_user(ctx, ctxp);
  877. if (unlikely(ret))
  878. goto out;
  879. ret = -EINVAL;
  880. if (unlikely(ctx || nr_events == 0)) {
  881. pr_debug("EINVAL: io_setup: ctx %lu nr_events %u\n",
  882. ctx, nr_events);
  883. goto out;
  884. }
  885. ioctx = ioctx_alloc(nr_events);
  886. ret = PTR_ERR(ioctx);
  887. if (!IS_ERR(ioctx)) {
  888. ret = put_user(ioctx->user_id, ctxp);
  889. if (ret)
  890. kill_ioctx(current->mm, ioctx);
  891. percpu_ref_put(&ioctx->users);
  892. }
  893. out:
  894. return ret;
  895. }
  896. /* sys_io_destroy:
  897. * Destroy the aio_context specified. May cancel any outstanding
  898. * AIOs and block on completion. Will fail with -ENOSYS if not
  899. * implemented. May fail with -EINVAL if the context pointed to
  900. * is invalid.
  901. */
  902. SYSCALL_DEFINE1(io_destroy, aio_context_t, ctx)
  903. {
  904. struct kioctx *ioctx = lookup_ioctx(ctx);
  905. if (likely(NULL != ioctx)) {
  906. kill_ioctx(current->mm, ioctx);
  907. percpu_ref_put(&ioctx->users);
  908. return 0;
  909. }
  910. pr_debug("EINVAL: io_destroy: invalid context id\n");
  911. return -EINVAL;
  912. }
  913. typedef ssize_t (aio_rw_op)(struct kiocb *, const struct iovec *,
  914. unsigned long, loff_t);
  915. static ssize_t aio_setup_vectored_rw(struct kiocb *kiocb,
  916. int rw, char __user *buf,
  917. unsigned long *nr_segs,
  918. struct iovec **iovec,
  919. bool compat)
  920. {
  921. ssize_t ret;
  922. *nr_segs = kiocb->ki_nbytes;
  923. #ifdef CONFIG_COMPAT
  924. if (compat)
  925. ret = compat_rw_copy_check_uvector(rw,
  926. (struct compat_iovec __user *)buf,
  927. *nr_segs, 1, *iovec, iovec);
  928. else
  929. #endif
  930. ret = rw_copy_check_uvector(rw,
  931. (struct iovec __user *)buf,
  932. *nr_segs, 1, *iovec, iovec);
  933. if (ret < 0)
  934. return ret;
  935. /* ki_nbytes now reflect bytes instead of segs */
  936. kiocb->ki_nbytes = ret;
  937. return 0;
  938. }
  939. static ssize_t aio_setup_single_vector(struct kiocb *kiocb,
  940. int rw, char __user *buf,
  941. unsigned long *nr_segs,
  942. struct iovec *iovec)
  943. {
  944. if (unlikely(!access_ok(!rw, buf, kiocb->ki_nbytes)))
  945. return -EFAULT;
  946. iovec->iov_base = buf;
  947. iovec->iov_len = kiocb->ki_nbytes;
  948. *nr_segs = 1;
  949. return 0;
  950. }
  951. /*
  952. * aio_setup_iocb:
  953. * Performs the initial checks and aio retry method
  954. * setup for the kiocb at the time of io submission.
  955. */
  956. static ssize_t aio_run_iocb(struct kiocb *req, unsigned opcode,
  957. char __user *buf, bool compat)
  958. {
  959. struct file *file = req->ki_filp;
  960. ssize_t ret;
  961. unsigned long nr_segs;
  962. int rw;
  963. fmode_t mode;
  964. aio_rw_op *rw_op;
  965. struct iovec inline_vec, *iovec = &inline_vec;
  966. switch (opcode) {
  967. case IOCB_CMD_PREAD:
  968. case IOCB_CMD_PREADV:
  969. mode = FMODE_READ;
  970. rw = READ;
  971. rw_op = file->f_op->aio_read;
  972. goto rw_common;
  973. case IOCB_CMD_PWRITE:
  974. case IOCB_CMD_PWRITEV:
  975. mode = FMODE_WRITE;
  976. rw = WRITE;
  977. rw_op = file->f_op->aio_write;
  978. goto rw_common;
  979. rw_common:
  980. if (unlikely(!(file->f_mode & mode)))
  981. return -EBADF;
  982. if (!rw_op)
  983. return -EINVAL;
  984. ret = (opcode == IOCB_CMD_PREADV ||
  985. opcode == IOCB_CMD_PWRITEV)
  986. ? aio_setup_vectored_rw(req, rw, buf, &nr_segs,
  987. &iovec, compat)
  988. : aio_setup_single_vector(req, rw, buf, &nr_segs,
  989. iovec);
  990. if (ret)
  991. return ret;
  992. ret = rw_verify_area(rw, file, &req->ki_pos, req->ki_nbytes);
  993. if (ret < 0) {
  994. if (iovec != &inline_vec)
  995. kfree(iovec);
  996. return ret;
  997. }
  998. req->ki_nbytes = ret;
  999. /* XXX: move/kill - rw_verify_area()? */
  1000. /* This matches the pread()/pwrite() logic */
  1001. if (req->ki_pos < 0) {
  1002. ret = -EINVAL;
  1003. break;
  1004. }
  1005. if (rw == WRITE)
  1006. file_start_write(file);
  1007. ret = rw_op(req, iovec, nr_segs, req->ki_pos);
  1008. if (rw == WRITE)
  1009. file_end_write(file);
  1010. break;
  1011. case IOCB_CMD_FDSYNC:
  1012. if (!file->f_op->aio_fsync)
  1013. return -EINVAL;
  1014. ret = file->f_op->aio_fsync(req, 1);
  1015. break;
  1016. case IOCB_CMD_FSYNC:
  1017. if (!file->f_op->aio_fsync)
  1018. return -EINVAL;
  1019. ret = file->f_op->aio_fsync(req, 0);
  1020. break;
  1021. default:
  1022. pr_debug("EINVAL: no operation provided\n");
  1023. return -EINVAL;
  1024. }
  1025. if (iovec != &inline_vec)
  1026. kfree(iovec);
  1027. if (ret != -EIOCBQUEUED) {
  1028. /*
  1029. * There's no easy way to restart the syscall since other AIO's
  1030. * may be already running. Just fail this IO with EINTR.
  1031. */
  1032. if (unlikely(ret == -ERESTARTSYS || ret == -ERESTARTNOINTR ||
  1033. ret == -ERESTARTNOHAND ||
  1034. ret == -ERESTART_RESTARTBLOCK))
  1035. ret = -EINTR;
  1036. aio_complete(req, ret, 0);
  1037. }
  1038. return 0;
  1039. }
  1040. static int io_submit_one(struct kioctx *ctx, struct iocb __user *user_iocb,
  1041. struct iocb *iocb, bool compat)
  1042. {
  1043. struct kiocb *req;
  1044. ssize_t ret;
  1045. /* enforce forwards compatibility on users */
  1046. if (unlikely(iocb->aio_reserved1 || iocb->aio_reserved2)) {
  1047. pr_debug("EINVAL: reserve field set\n");
  1048. return -EINVAL;
  1049. }
  1050. /* prevent overflows */
  1051. if (unlikely(
  1052. (iocb->aio_buf != (unsigned long)iocb->aio_buf) ||
  1053. (iocb->aio_nbytes != (size_t)iocb->aio_nbytes) ||
  1054. ((ssize_t)iocb->aio_nbytes < 0)
  1055. )) {
  1056. pr_debug("EINVAL: io_submit: overflow check\n");
  1057. return -EINVAL;
  1058. }
  1059. req = aio_get_req(ctx);
  1060. if (unlikely(!req))
  1061. return -EAGAIN;
  1062. req->ki_filp = fget(iocb->aio_fildes);
  1063. if (unlikely(!req->ki_filp)) {
  1064. ret = -EBADF;
  1065. goto out_put_req;
  1066. }
  1067. if (iocb->aio_flags & IOCB_FLAG_RESFD) {
  1068. /*
  1069. * If the IOCB_FLAG_RESFD flag of aio_flags is set, get an
  1070. * instance of the file* now. The file descriptor must be
  1071. * an eventfd() fd, and will be signaled for each completed
  1072. * event using the eventfd_signal() function.
  1073. */
  1074. req->ki_eventfd = eventfd_ctx_fdget((int) iocb->aio_resfd);
  1075. if (IS_ERR(req->ki_eventfd)) {
  1076. ret = PTR_ERR(req->ki_eventfd);
  1077. req->ki_eventfd = NULL;
  1078. goto out_put_req;
  1079. }
  1080. }
  1081. ret = put_user(KIOCB_KEY, &user_iocb->aio_key);
  1082. if (unlikely(ret)) {
  1083. pr_debug("EFAULT: aio_key\n");
  1084. goto out_put_req;
  1085. }
  1086. req->ki_obj.user = user_iocb;
  1087. req->ki_user_data = iocb->aio_data;
  1088. req->ki_pos = iocb->aio_offset;
  1089. req->ki_nbytes = iocb->aio_nbytes;
  1090. ret = aio_run_iocb(req, iocb->aio_lio_opcode,
  1091. (char __user *)(unsigned long)iocb->aio_buf,
  1092. compat);
  1093. if (ret)
  1094. goto out_put_req;
  1095. return 0;
  1096. out_put_req:
  1097. put_reqs_available(ctx, 1);
  1098. percpu_ref_put(&ctx->reqs);
  1099. kiocb_free(req);
  1100. return ret;
  1101. }
  1102. long do_io_submit(aio_context_t ctx_id, long nr,
  1103. struct iocb __user *__user *iocbpp, bool compat)
  1104. {
  1105. struct kioctx *ctx;
  1106. long ret = 0;
  1107. int i = 0;
  1108. struct blk_plug plug;
  1109. if (unlikely(nr < 0))
  1110. return -EINVAL;
  1111. if (unlikely(nr > LONG_MAX/sizeof(*iocbpp)))
  1112. nr = LONG_MAX/sizeof(*iocbpp);
  1113. if (unlikely(!access_ok(VERIFY_READ, iocbpp, (nr*sizeof(*iocbpp)))))
  1114. return -EFAULT;
  1115. ctx = lookup_ioctx(ctx_id);
  1116. if (unlikely(!ctx)) {
  1117. pr_debug("EINVAL: invalid context id\n");
  1118. return -EINVAL;
  1119. }
  1120. blk_start_plug(&plug);
  1121. /*
  1122. * AKPM: should this return a partial result if some of the IOs were
  1123. * successfully submitted?
  1124. */
  1125. for (i=0; i<nr; i++) {
  1126. struct iocb __user *user_iocb;
  1127. struct iocb tmp;
  1128. if (unlikely(__get_user(user_iocb, iocbpp + i))) {
  1129. ret = -EFAULT;
  1130. break;
  1131. }
  1132. if (unlikely(copy_from_user(&tmp, user_iocb, sizeof(tmp)))) {
  1133. ret = -EFAULT;
  1134. break;
  1135. }
  1136. ret = io_submit_one(ctx, user_iocb, &tmp, compat);
  1137. if (ret)
  1138. break;
  1139. }
  1140. blk_finish_plug(&plug);
  1141. percpu_ref_put(&ctx->users);
  1142. return i ? i : ret;
  1143. }
  1144. /* sys_io_submit:
  1145. * Queue the nr iocbs pointed to by iocbpp for processing. Returns
  1146. * the number of iocbs queued. May return -EINVAL if the aio_context
  1147. * specified by ctx_id is invalid, if nr is < 0, if the iocb at
  1148. * *iocbpp[0] is not properly initialized, if the operation specified
  1149. * is invalid for the file descriptor in the iocb. May fail with
  1150. * -EFAULT if any of the data structures point to invalid data. May
  1151. * fail with -EBADF if the file descriptor specified in the first
  1152. * iocb is invalid. May fail with -EAGAIN if insufficient resources
  1153. * are available to queue any iocbs. Will return 0 if nr is 0. Will
  1154. * fail with -ENOSYS if not implemented.
  1155. */
  1156. SYSCALL_DEFINE3(io_submit, aio_context_t, ctx_id, long, nr,
  1157. struct iocb __user * __user *, iocbpp)
  1158. {
  1159. return do_io_submit(ctx_id, nr, iocbpp, 0);
  1160. }
  1161. /* lookup_kiocb
  1162. * Finds a given iocb for cancellation.
  1163. */
  1164. static struct kiocb *lookup_kiocb(struct kioctx *ctx, struct iocb __user *iocb,
  1165. u32 key)
  1166. {
  1167. struct list_head *pos;
  1168. assert_spin_locked(&ctx->ctx_lock);
  1169. if (key != KIOCB_KEY)
  1170. return NULL;
  1171. /* TODO: use a hash or array, this sucks. */
  1172. list_for_each(pos, &ctx->active_reqs) {
  1173. struct kiocb *kiocb = list_kiocb(pos);
  1174. if (kiocb->ki_obj.user == iocb)
  1175. return kiocb;
  1176. }
  1177. return NULL;
  1178. }
  1179. /* sys_io_cancel:
  1180. * Attempts to cancel an iocb previously passed to io_submit. If
  1181. * the operation is successfully cancelled, the resulting event is
  1182. * copied into the memory pointed to by result without being placed
  1183. * into the completion queue and 0 is returned. May fail with
  1184. * -EFAULT if any of the data structures pointed to are invalid.
  1185. * May fail with -EINVAL if aio_context specified by ctx_id is
  1186. * invalid. May fail with -EAGAIN if the iocb specified was not
  1187. * cancelled. Will fail with -ENOSYS if not implemented.
  1188. */
  1189. SYSCALL_DEFINE3(io_cancel, aio_context_t, ctx_id, struct iocb __user *, iocb,
  1190. struct io_event __user *, result)
  1191. {
  1192. struct kioctx *ctx;
  1193. struct kiocb *kiocb;
  1194. u32 key;
  1195. int ret;
  1196. ret = get_user(key, &iocb->aio_key);
  1197. if (unlikely(ret))
  1198. return -EFAULT;
  1199. ctx = lookup_ioctx(ctx_id);
  1200. if (unlikely(!ctx))
  1201. return -EINVAL;
  1202. spin_lock_irq(&ctx->ctx_lock);
  1203. kiocb = lookup_kiocb(ctx, iocb, key);
  1204. if (kiocb)
  1205. ret = kiocb_cancel(ctx, kiocb);
  1206. else
  1207. ret = -EINVAL;
  1208. spin_unlock_irq(&ctx->ctx_lock);
  1209. if (!ret) {
  1210. /*
  1211. * The result argument is no longer used - the io_event is
  1212. * always delivered via the ring buffer. -EINPROGRESS indicates
  1213. * cancellation is progress:
  1214. */
  1215. ret = -EINPROGRESS;
  1216. }
  1217. percpu_ref_put(&ctx->users);
  1218. return ret;
  1219. }
  1220. /* io_getevents:
  1221. * Attempts to read at least min_nr events and up to nr events from
  1222. * the completion queue for the aio_context specified by ctx_id. If
  1223. * it succeeds, the number of read events is returned. May fail with
  1224. * -EINVAL if ctx_id is invalid, if min_nr is out of range, if nr is
  1225. * out of range, if timeout is out of range. May fail with -EFAULT
  1226. * if any of the memory specified is invalid. May return 0 or
  1227. * < min_nr if the timeout specified by timeout has elapsed
  1228. * before sufficient events are available, where timeout == NULL
  1229. * specifies an infinite timeout. Note that the timeout pointed to by
  1230. * timeout is relative. Will fail with -ENOSYS if not implemented.
  1231. */
  1232. SYSCALL_DEFINE5(io_getevents, aio_context_t, ctx_id,
  1233. long, min_nr,
  1234. long, nr,
  1235. struct io_event __user *, events,
  1236. struct timespec __user *, timeout)
  1237. {
  1238. struct kioctx *ioctx = lookup_ioctx(ctx_id);
  1239. long ret = -EINVAL;
  1240. if (likely(ioctx)) {
  1241. if (likely(min_nr <= nr && min_nr >= 0))
  1242. ret = read_events(ioctx, min_nr, nr, events, timeout);
  1243. percpu_ref_put(&ioctx->users);
  1244. }
  1245. return ret;
  1246. }