aio.c 48 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. #include <linux/kernel.h>
  12. #include <linux/init.h>
  13. #include <linux/errno.h>
  14. #include <linux/time.h>
  15. #include <linux/aio_abi.h>
  16. #include <linux/module.h>
  17. #include <linux/syscalls.h>
  18. #include <linux/backing-dev.h>
  19. #include <linux/uio.h>
  20. #define DEBUG 0
  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/slab.h>
  28. #include <linux/timer.h>
  29. #include <linux/aio.h>
  30. #include <linux/highmem.h>
  31. #include <linux/workqueue.h>
  32. #include <linux/security.h>
  33. #include <linux/eventfd.h>
  34. #include <linux/blkdev.h>
  35. #include <linux/compat.h>
  36. #include <asm/kmap_types.h>
  37. #include <asm/uaccess.h>
  38. #if DEBUG > 1
  39. #define dprintk printk
  40. #else
  41. #define dprintk(x...) do { ; } while (0)
  42. #endif
  43. /*------ sysctl variables----*/
  44. static DEFINE_SPINLOCK(aio_nr_lock);
  45. unsigned long aio_nr; /* current system wide number of aio requests */
  46. unsigned long aio_max_nr = 0x10000; /* system wide maximum number of aio requests */
  47. /*----end sysctl variables---*/
  48. static struct kmem_cache *kiocb_cachep;
  49. static struct kmem_cache *kioctx_cachep;
  50. static struct workqueue_struct *aio_wq;
  51. /* Used for rare fput completion. */
  52. static void aio_fput_routine(struct work_struct *);
  53. static DECLARE_WORK(fput_work, aio_fput_routine);
  54. static DEFINE_SPINLOCK(fput_lock);
  55. static LIST_HEAD(fput_head);
  56. static void aio_kick_handler(struct work_struct *);
  57. static void aio_queue_work(struct kioctx *);
  58. /* aio_setup
  59. * Creates the slab caches used by the aio routines, panic on
  60. * failure as this is done early during the boot sequence.
  61. */
  62. static int __init aio_setup(void)
  63. {
  64. kiocb_cachep = KMEM_CACHE(kiocb, SLAB_HWCACHE_ALIGN|SLAB_PANIC);
  65. kioctx_cachep = KMEM_CACHE(kioctx,SLAB_HWCACHE_ALIGN|SLAB_PANIC);
  66. aio_wq = alloc_workqueue("aio", 0, 1); /* used to limit concurrency */
  67. BUG_ON(!aio_wq);
  68. pr_debug("aio_setup: sizeof(struct page) = %d\n", (int)sizeof(struct page));
  69. return 0;
  70. }
  71. __initcall(aio_setup);
  72. static void aio_free_ring(struct kioctx *ctx)
  73. {
  74. struct aio_ring_info *info = &ctx->ring_info;
  75. long i;
  76. for (i=0; i<info->nr_pages; i++)
  77. put_page(info->ring_pages[i]);
  78. if (info->mmap_size) {
  79. down_write(&ctx->mm->mmap_sem);
  80. do_munmap(ctx->mm, info->mmap_base, info->mmap_size);
  81. up_write(&ctx->mm->mmap_sem);
  82. }
  83. if (info->ring_pages && info->ring_pages != info->internal_pages)
  84. kfree(info->ring_pages);
  85. info->ring_pages = NULL;
  86. info->nr = 0;
  87. }
  88. static int aio_setup_ring(struct kioctx *ctx)
  89. {
  90. struct aio_ring *ring;
  91. struct aio_ring_info *info = &ctx->ring_info;
  92. unsigned nr_events = ctx->max_reqs;
  93. unsigned long size;
  94. int nr_pages;
  95. /* Compensate for the ring buffer's head/tail overlap entry */
  96. nr_events += 2; /* 1 is required, 2 for good luck */
  97. size = sizeof(struct aio_ring);
  98. size += sizeof(struct io_event) * nr_events;
  99. nr_pages = (size + PAGE_SIZE-1) >> PAGE_SHIFT;
  100. if (nr_pages < 0)
  101. return -EINVAL;
  102. nr_events = (PAGE_SIZE * nr_pages - sizeof(struct aio_ring)) / sizeof(struct io_event);
  103. info->nr = 0;
  104. info->ring_pages = info->internal_pages;
  105. if (nr_pages > AIO_RING_PAGES) {
  106. info->ring_pages = kcalloc(nr_pages, sizeof(struct page *), GFP_KERNEL);
  107. if (!info->ring_pages)
  108. return -ENOMEM;
  109. }
  110. info->mmap_size = nr_pages * PAGE_SIZE;
  111. dprintk("attempting mmap of %lu bytes\n", info->mmap_size);
  112. down_write(&ctx->mm->mmap_sem);
  113. info->mmap_base = do_mmap(NULL, 0, info->mmap_size,
  114. PROT_READ|PROT_WRITE, MAP_ANONYMOUS|MAP_PRIVATE,
  115. 0);
  116. if (IS_ERR((void *)info->mmap_base)) {
  117. up_write(&ctx->mm->mmap_sem);
  118. info->mmap_size = 0;
  119. aio_free_ring(ctx);
  120. return -EAGAIN;
  121. }
  122. dprintk("mmap address: 0x%08lx\n", info->mmap_base);
  123. info->nr_pages = get_user_pages(current, ctx->mm,
  124. info->mmap_base, nr_pages,
  125. 1, 0, info->ring_pages, NULL);
  126. up_write(&ctx->mm->mmap_sem);
  127. if (unlikely(info->nr_pages != nr_pages)) {
  128. aio_free_ring(ctx);
  129. return -EAGAIN;
  130. }
  131. ctx->user_id = info->mmap_base;
  132. info->nr = nr_events; /* trusted copy */
  133. ring = kmap_atomic(info->ring_pages[0], KM_USER0);
  134. ring->nr = nr_events; /* user copy */
  135. ring->id = ctx->user_id;
  136. ring->head = ring->tail = 0;
  137. ring->magic = AIO_RING_MAGIC;
  138. ring->compat_features = AIO_RING_COMPAT_FEATURES;
  139. ring->incompat_features = AIO_RING_INCOMPAT_FEATURES;
  140. ring->header_length = sizeof(struct aio_ring);
  141. kunmap_atomic(ring, KM_USER0);
  142. return 0;
  143. }
  144. /* aio_ring_event: returns a pointer to the event at the given index from
  145. * kmap_atomic(, km). Release the pointer with put_aio_ring_event();
  146. */
  147. #define AIO_EVENTS_PER_PAGE (PAGE_SIZE / sizeof(struct io_event))
  148. #define AIO_EVENTS_FIRST_PAGE ((PAGE_SIZE - sizeof(struct aio_ring)) / sizeof(struct io_event))
  149. #define AIO_EVENTS_OFFSET (AIO_EVENTS_PER_PAGE - AIO_EVENTS_FIRST_PAGE)
  150. #define aio_ring_event(info, nr, km) ({ \
  151. unsigned pos = (nr) + AIO_EVENTS_OFFSET; \
  152. struct io_event *__event; \
  153. __event = kmap_atomic( \
  154. (info)->ring_pages[pos / AIO_EVENTS_PER_PAGE], km); \
  155. __event += pos % AIO_EVENTS_PER_PAGE; \
  156. __event; \
  157. })
  158. #define put_aio_ring_event(event, km) do { \
  159. struct io_event *__event = (event); \
  160. (void)__event; \
  161. kunmap_atomic((void *)((unsigned long)__event & PAGE_MASK), km); \
  162. } while(0)
  163. static void ctx_rcu_free(struct rcu_head *head)
  164. {
  165. struct kioctx *ctx = container_of(head, struct kioctx, rcu_head);
  166. kmem_cache_free(kioctx_cachep, ctx);
  167. }
  168. /* __put_ioctx
  169. * Called when the last user of an aio context has gone away,
  170. * and the struct needs to be freed.
  171. */
  172. static void __put_ioctx(struct kioctx *ctx)
  173. {
  174. unsigned nr_events = ctx->max_reqs;
  175. BUG_ON(ctx->reqs_active);
  176. cancel_delayed_work(&ctx->wq);
  177. cancel_work_sync(&ctx->wq.work);
  178. aio_free_ring(ctx);
  179. mmdrop(ctx->mm);
  180. ctx->mm = NULL;
  181. if (nr_events) {
  182. spin_lock(&aio_nr_lock);
  183. BUG_ON(aio_nr - nr_events > aio_nr);
  184. aio_nr -= nr_events;
  185. spin_unlock(&aio_nr_lock);
  186. }
  187. pr_debug("__put_ioctx: freeing %p\n", ctx);
  188. call_rcu(&ctx->rcu_head, ctx_rcu_free);
  189. }
  190. static inline int try_get_ioctx(struct kioctx *kioctx)
  191. {
  192. return atomic_inc_not_zero(&kioctx->users);
  193. }
  194. static inline void put_ioctx(struct kioctx *kioctx)
  195. {
  196. BUG_ON(atomic_read(&kioctx->users) <= 0);
  197. if (unlikely(atomic_dec_and_test(&kioctx->users)))
  198. __put_ioctx(kioctx);
  199. }
  200. /* ioctx_alloc
  201. * Allocates and initializes an ioctx. Returns an ERR_PTR if it failed.
  202. */
  203. static struct kioctx *ioctx_alloc(unsigned nr_events)
  204. {
  205. struct mm_struct *mm;
  206. struct kioctx *ctx;
  207. int err = -ENOMEM;
  208. /* Prevent overflows */
  209. if ((nr_events > (0x10000000U / sizeof(struct io_event))) ||
  210. (nr_events > (0x10000000U / sizeof(struct kiocb)))) {
  211. pr_debug("ENOMEM: nr_events too high\n");
  212. return ERR_PTR(-EINVAL);
  213. }
  214. if (!nr_events || (unsigned long)nr_events > aio_max_nr)
  215. return ERR_PTR(-EAGAIN);
  216. ctx = kmem_cache_zalloc(kioctx_cachep, GFP_KERNEL);
  217. if (!ctx)
  218. return ERR_PTR(-ENOMEM);
  219. ctx->max_reqs = nr_events;
  220. mm = ctx->mm = current->mm;
  221. atomic_inc(&mm->mm_count);
  222. atomic_set(&ctx->users, 2);
  223. spin_lock_init(&ctx->ctx_lock);
  224. spin_lock_init(&ctx->ring_info.ring_lock);
  225. init_waitqueue_head(&ctx->wait);
  226. INIT_LIST_HEAD(&ctx->active_reqs);
  227. INIT_LIST_HEAD(&ctx->run_list);
  228. INIT_DELAYED_WORK(&ctx->wq, aio_kick_handler);
  229. if (aio_setup_ring(ctx) < 0)
  230. goto out_freectx;
  231. /* limit the number of system wide aios */
  232. spin_lock(&aio_nr_lock);
  233. if (aio_nr + nr_events > aio_max_nr ||
  234. aio_nr + nr_events < aio_nr) {
  235. spin_unlock(&aio_nr_lock);
  236. goto out_cleanup;
  237. }
  238. aio_nr += ctx->max_reqs;
  239. spin_unlock(&aio_nr_lock);
  240. /* now link into global list. */
  241. spin_lock(&mm->ioctx_lock);
  242. hlist_add_head_rcu(&ctx->list, &mm->ioctx_list);
  243. spin_unlock(&mm->ioctx_lock);
  244. dprintk("aio: allocated ioctx %p[%ld]: mm=%p mask=0x%x\n",
  245. ctx, ctx->user_id, current->mm, ctx->ring_info.nr);
  246. return ctx;
  247. out_cleanup:
  248. err = -EAGAIN;
  249. aio_free_ring(ctx);
  250. out_freectx:
  251. mmdrop(mm);
  252. kmem_cache_free(kioctx_cachep, ctx);
  253. dprintk("aio: error allocating ioctx %d\n", err);
  254. return ERR_PTR(err);
  255. }
  256. /* aio_cancel_all
  257. * Cancels all outstanding aio requests on an aio context. Used
  258. * when the processes owning a context have all exited to encourage
  259. * the rapid destruction of the kioctx.
  260. */
  261. static void aio_cancel_all(struct kioctx *ctx)
  262. {
  263. int (*cancel)(struct kiocb *, struct io_event *);
  264. struct io_event res;
  265. spin_lock_irq(&ctx->ctx_lock);
  266. ctx->dead = 1;
  267. while (!list_empty(&ctx->active_reqs)) {
  268. struct list_head *pos = ctx->active_reqs.next;
  269. struct kiocb *iocb = list_kiocb(pos);
  270. list_del_init(&iocb->ki_list);
  271. cancel = iocb->ki_cancel;
  272. kiocbSetCancelled(iocb);
  273. if (cancel) {
  274. iocb->ki_users++;
  275. spin_unlock_irq(&ctx->ctx_lock);
  276. cancel(iocb, &res);
  277. spin_lock_irq(&ctx->ctx_lock);
  278. }
  279. }
  280. spin_unlock_irq(&ctx->ctx_lock);
  281. }
  282. static void wait_for_all_aios(struct kioctx *ctx)
  283. {
  284. struct task_struct *tsk = current;
  285. DECLARE_WAITQUEUE(wait, tsk);
  286. spin_lock_irq(&ctx->ctx_lock);
  287. if (!ctx->reqs_active)
  288. goto out;
  289. add_wait_queue(&ctx->wait, &wait);
  290. set_task_state(tsk, TASK_UNINTERRUPTIBLE);
  291. while (ctx->reqs_active) {
  292. spin_unlock_irq(&ctx->ctx_lock);
  293. io_schedule();
  294. set_task_state(tsk, TASK_UNINTERRUPTIBLE);
  295. spin_lock_irq(&ctx->ctx_lock);
  296. }
  297. __set_task_state(tsk, TASK_RUNNING);
  298. remove_wait_queue(&ctx->wait, &wait);
  299. out:
  300. spin_unlock_irq(&ctx->ctx_lock);
  301. }
  302. /* wait_on_sync_kiocb:
  303. * Waits on the given sync kiocb to complete.
  304. */
  305. ssize_t wait_on_sync_kiocb(struct kiocb *iocb)
  306. {
  307. while (iocb->ki_users) {
  308. set_current_state(TASK_UNINTERRUPTIBLE);
  309. if (!iocb->ki_users)
  310. break;
  311. io_schedule();
  312. }
  313. __set_current_state(TASK_RUNNING);
  314. return iocb->ki_user_data;
  315. }
  316. EXPORT_SYMBOL(wait_on_sync_kiocb);
  317. /* exit_aio: called when the last user of mm goes away. At this point,
  318. * there is no way for any new requests to be submited or any of the
  319. * io_* syscalls to be called on the context. However, there may be
  320. * outstanding requests which hold references to the context; as they
  321. * go away, they will call put_ioctx and release any pinned memory
  322. * associated with the request (held via struct page * references).
  323. */
  324. void exit_aio(struct mm_struct *mm)
  325. {
  326. struct kioctx *ctx;
  327. while (!hlist_empty(&mm->ioctx_list)) {
  328. ctx = hlist_entry(mm->ioctx_list.first, struct kioctx, list);
  329. hlist_del_rcu(&ctx->list);
  330. aio_cancel_all(ctx);
  331. wait_for_all_aios(ctx);
  332. /*
  333. * Ensure we don't leave the ctx on the aio_wq
  334. */
  335. cancel_work_sync(&ctx->wq.work);
  336. if (1 != atomic_read(&ctx->users))
  337. printk(KERN_DEBUG
  338. "exit_aio:ioctx still alive: %d %d %d\n",
  339. atomic_read(&ctx->users), ctx->dead,
  340. ctx->reqs_active);
  341. put_ioctx(ctx);
  342. }
  343. }
  344. /* aio_get_req
  345. * Allocate a slot for an aio request. Increments the users count
  346. * of the kioctx so that the kioctx stays around until all requests are
  347. * complete. Returns NULL if no requests are free.
  348. *
  349. * Returns with kiocb->users set to 2. The io submit code path holds
  350. * an extra reference while submitting the i/o.
  351. * This prevents races between the aio code path referencing the
  352. * req (after submitting it) and aio_complete() freeing the req.
  353. */
  354. static struct kiocb *__aio_get_req(struct kioctx *ctx)
  355. {
  356. struct kiocb *req = NULL;
  357. req = kmem_cache_alloc(kiocb_cachep, GFP_KERNEL);
  358. if (unlikely(!req))
  359. return NULL;
  360. req->ki_flags = 0;
  361. req->ki_users = 2;
  362. req->ki_key = 0;
  363. req->ki_ctx = ctx;
  364. req->ki_cancel = NULL;
  365. req->ki_retry = NULL;
  366. req->ki_dtor = NULL;
  367. req->private = NULL;
  368. req->ki_iovec = NULL;
  369. INIT_LIST_HEAD(&req->ki_run_list);
  370. req->ki_eventfd = NULL;
  371. return req;
  372. }
  373. /*
  374. * struct kiocb's are allocated in batches to reduce the number of
  375. * times the ctx lock is acquired and released.
  376. */
  377. #define KIOCB_BATCH_SIZE 32L
  378. struct kiocb_batch {
  379. struct list_head head;
  380. long count; /* number of requests left to allocate */
  381. };
  382. static void kiocb_batch_init(struct kiocb_batch *batch, long total)
  383. {
  384. INIT_LIST_HEAD(&batch->head);
  385. batch->count = total;
  386. }
  387. static void kiocb_batch_free(struct kioctx *ctx, struct kiocb_batch *batch)
  388. {
  389. struct kiocb *req, *n;
  390. if (list_empty(&batch->head))
  391. return;
  392. spin_lock_irq(&ctx->ctx_lock);
  393. list_for_each_entry_safe(req, n, &batch->head, ki_batch) {
  394. list_del(&req->ki_batch);
  395. list_del(&req->ki_list);
  396. kmem_cache_free(kiocb_cachep, req);
  397. ctx->reqs_active--;
  398. }
  399. if (unlikely(!ctx->reqs_active && ctx->dead))
  400. wake_up_all(&ctx->wait);
  401. spin_unlock_irq(&ctx->ctx_lock);
  402. }
  403. /*
  404. * Allocate a batch of kiocbs. This avoids taking and dropping the
  405. * context lock a lot during setup.
  406. */
  407. static int kiocb_batch_refill(struct kioctx *ctx, struct kiocb_batch *batch)
  408. {
  409. unsigned short allocated, to_alloc;
  410. long avail;
  411. bool called_fput = false;
  412. struct kiocb *req, *n;
  413. struct aio_ring *ring;
  414. to_alloc = min(batch->count, KIOCB_BATCH_SIZE);
  415. for (allocated = 0; allocated < to_alloc; allocated++) {
  416. req = __aio_get_req(ctx);
  417. if (!req)
  418. /* allocation failed, go with what we've got */
  419. break;
  420. list_add(&req->ki_batch, &batch->head);
  421. }
  422. if (allocated == 0)
  423. goto out;
  424. retry:
  425. spin_lock_irq(&ctx->ctx_lock);
  426. ring = kmap_atomic(ctx->ring_info.ring_pages[0]);
  427. avail = aio_ring_avail(&ctx->ring_info, ring) - ctx->reqs_active;
  428. BUG_ON(avail < 0);
  429. if (avail == 0 && !called_fput) {
  430. /*
  431. * Handle a potential starvation case. It is possible that
  432. * we hold the last reference on a struct file, causing us
  433. * to delay the final fput to non-irq context. In this case,
  434. * ctx->reqs_active is artificially high. Calling the fput
  435. * routine here may free up a slot in the event completion
  436. * ring, allowing this allocation to succeed.
  437. */
  438. kunmap_atomic(ring);
  439. spin_unlock_irq(&ctx->ctx_lock);
  440. aio_fput_routine(NULL);
  441. called_fput = true;
  442. goto retry;
  443. }
  444. if (avail < allocated) {
  445. /* Trim back the number of requests. */
  446. list_for_each_entry_safe(req, n, &batch->head, ki_batch) {
  447. list_del(&req->ki_batch);
  448. kmem_cache_free(kiocb_cachep, req);
  449. if (--allocated <= avail)
  450. break;
  451. }
  452. }
  453. batch->count -= allocated;
  454. list_for_each_entry(req, &batch->head, ki_batch) {
  455. list_add(&req->ki_list, &ctx->active_reqs);
  456. ctx->reqs_active++;
  457. }
  458. kunmap_atomic(ring);
  459. spin_unlock_irq(&ctx->ctx_lock);
  460. out:
  461. return allocated;
  462. }
  463. static inline struct kiocb *aio_get_req(struct kioctx *ctx,
  464. struct kiocb_batch *batch)
  465. {
  466. struct kiocb *req;
  467. if (list_empty(&batch->head))
  468. if (kiocb_batch_refill(ctx, batch) == 0)
  469. return NULL;
  470. req = list_first_entry(&batch->head, struct kiocb, ki_batch);
  471. list_del(&req->ki_batch);
  472. return req;
  473. }
  474. static inline void really_put_req(struct kioctx *ctx, struct kiocb *req)
  475. {
  476. assert_spin_locked(&ctx->ctx_lock);
  477. if (req->ki_eventfd != NULL)
  478. eventfd_ctx_put(req->ki_eventfd);
  479. if (req->ki_dtor)
  480. req->ki_dtor(req);
  481. if (req->ki_iovec != &req->ki_inline_vec)
  482. kfree(req->ki_iovec);
  483. kmem_cache_free(kiocb_cachep, req);
  484. ctx->reqs_active--;
  485. if (unlikely(!ctx->reqs_active && ctx->dead))
  486. wake_up_all(&ctx->wait);
  487. }
  488. static void aio_fput_routine(struct work_struct *data)
  489. {
  490. spin_lock_irq(&fput_lock);
  491. while (likely(!list_empty(&fput_head))) {
  492. struct kiocb *req = list_kiocb(fput_head.next);
  493. struct kioctx *ctx = req->ki_ctx;
  494. list_del(&req->ki_list);
  495. spin_unlock_irq(&fput_lock);
  496. /* Complete the fput(s) */
  497. if (req->ki_filp != NULL)
  498. fput(req->ki_filp);
  499. /* Link the iocb into the context's free list */
  500. rcu_read_lock();
  501. spin_lock_irq(&ctx->ctx_lock);
  502. really_put_req(ctx, req);
  503. /*
  504. * at that point ctx might've been killed, but actual
  505. * freeing is RCU'd
  506. */
  507. spin_unlock_irq(&ctx->ctx_lock);
  508. rcu_read_unlock();
  509. spin_lock_irq(&fput_lock);
  510. }
  511. spin_unlock_irq(&fput_lock);
  512. }
  513. /* __aio_put_req
  514. * Returns true if this put was the last user of the request.
  515. */
  516. static int __aio_put_req(struct kioctx *ctx, struct kiocb *req)
  517. {
  518. dprintk(KERN_DEBUG "aio_put(%p): f_count=%ld\n",
  519. req, atomic_long_read(&req->ki_filp->f_count));
  520. assert_spin_locked(&ctx->ctx_lock);
  521. req->ki_users--;
  522. BUG_ON(req->ki_users < 0);
  523. if (likely(req->ki_users))
  524. return 0;
  525. list_del(&req->ki_list); /* remove from active_reqs */
  526. req->ki_cancel = NULL;
  527. req->ki_retry = NULL;
  528. /*
  529. * Try to optimize the aio and eventfd file* puts, by avoiding to
  530. * schedule work in case it is not final fput() time. In normal cases,
  531. * we would not be holding the last reference to the file*, so
  532. * this function will be executed w/out any aio kthread wakeup.
  533. */
  534. if (unlikely(!fput_atomic(req->ki_filp))) {
  535. spin_lock(&fput_lock);
  536. list_add(&req->ki_list, &fput_head);
  537. spin_unlock(&fput_lock);
  538. schedule_work(&fput_work);
  539. } else {
  540. req->ki_filp = NULL;
  541. really_put_req(ctx, req);
  542. }
  543. return 1;
  544. }
  545. /* aio_put_req
  546. * Returns true if this put was the last user of the kiocb,
  547. * false if the request is still in use.
  548. */
  549. int aio_put_req(struct kiocb *req)
  550. {
  551. struct kioctx *ctx = req->ki_ctx;
  552. int ret;
  553. spin_lock_irq(&ctx->ctx_lock);
  554. ret = __aio_put_req(ctx, req);
  555. spin_unlock_irq(&ctx->ctx_lock);
  556. return ret;
  557. }
  558. EXPORT_SYMBOL(aio_put_req);
  559. static struct kioctx *lookup_ioctx(unsigned long ctx_id)
  560. {
  561. struct mm_struct *mm = current->mm;
  562. struct kioctx *ctx, *ret = NULL;
  563. struct hlist_node *n;
  564. rcu_read_lock();
  565. hlist_for_each_entry_rcu(ctx, n, &mm->ioctx_list, list) {
  566. /*
  567. * RCU protects us against accessing freed memory but
  568. * we have to be careful not to get a reference when the
  569. * reference count already dropped to 0 (ctx->dead test
  570. * is unreliable because of races).
  571. */
  572. if (ctx->user_id == ctx_id && !ctx->dead && try_get_ioctx(ctx)){
  573. ret = ctx;
  574. break;
  575. }
  576. }
  577. rcu_read_unlock();
  578. return ret;
  579. }
  580. /*
  581. * Queue up a kiocb to be retried. Assumes that the kiocb
  582. * has already been marked as kicked, and places it on
  583. * the retry run list for the corresponding ioctx, if it
  584. * isn't already queued. Returns 1 if it actually queued
  585. * the kiocb (to tell the caller to activate the work
  586. * queue to process it), or 0, if it found that it was
  587. * already queued.
  588. */
  589. static inline int __queue_kicked_iocb(struct kiocb *iocb)
  590. {
  591. struct kioctx *ctx = iocb->ki_ctx;
  592. assert_spin_locked(&ctx->ctx_lock);
  593. if (list_empty(&iocb->ki_run_list)) {
  594. list_add_tail(&iocb->ki_run_list,
  595. &ctx->run_list);
  596. return 1;
  597. }
  598. return 0;
  599. }
  600. /* aio_run_iocb
  601. * This is the core aio execution routine. It is
  602. * invoked both for initial i/o submission and
  603. * subsequent retries via the aio_kick_handler.
  604. * Expects to be invoked with iocb->ki_ctx->lock
  605. * already held. The lock is released and reacquired
  606. * as needed during processing.
  607. *
  608. * Calls the iocb retry method (already setup for the
  609. * iocb on initial submission) for operation specific
  610. * handling, but takes care of most of common retry
  611. * execution details for a given iocb. The retry method
  612. * needs to be non-blocking as far as possible, to avoid
  613. * holding up other iocbs waiting to be serviced by the
  614. * retry kernel thread.
  615. *
  616. * The trickier parts in this code have to do with
  617. * ensuring that only one retry instance is in progress
  618. * for a given iocb at any time. Providing that guarantee
  619. * simplifies the coding of individual aio operations as
  620. * it avoids various potential races.
  621. */
  622. static ssize_t aio_run_iocb(struct kiocb *iocb)
  623. {
  624. struct kioctx *ctx = iocb->ki_ctx;
  625. ssize_t (*retry)(struct kiocb *);
  626. ssize_t ret;
  627. if (!(retry = iocb->ki_retry)) {
  628. printk("aio_run_iocb: iocb->ki_retry = NULL\n");
  629. return 0;
  630. }
  631. /*
  632. * We don't want the next retry iteration for this
  633. * operation to start until this one has returned and
  634. * updated the iocb state. However, wait_queue functions
  635. * can trigger a kick_iocb from interrupt context in the
  636. * meantime, indicating that data is available for the next
  637. * iteration. We want to remember that and enable the
  638. * next retry iteration _after_ we are through with
  639. * this one.
  640. *
  641. * So, in order to be able to register a "kick", but
  642. * prevent it from being queued now, we clear the kick
  643. * flag, but make the kick code *think* that the iocb is
  644. * still on the run list until we are actually done.
  645. * When we are done with this iteration, we check if
  646. * the iocb was kicked in the meantime and if so, queue
  647. * it up afresh.
  648. */
  649. kiocbClearKicked(iocb);
  650. /*
  651. * This is so that aio_complete knows it doesn't need to
  652. * pull the iocb off the run list (We can't just call
  653. * INIT_LIST_HEAD because we don't want a kick_iocb to
  654. * queue this on the run list yet)
  655. */
  656. iocb->ki_run_list.next = iocb->ki_run_list.prev = NULL;
  657. spin_unlock_irq(&ctx->ctx_lock);
  658. /* Quit retrying if the i/o has been cancelled */
  659. if (kiocbIsCancelled(iocb)) {
  660. ret = -EINTR;
  661. aio_complete(iocb, ret, 0);
  662. /* must not access the iocb after this */
  663. goto out;
  664. }
  665. /*
  666. * Now we are all set to call the retry method in async
  667. * context.
  668. */
  669. ret = retry(iocb);
  670. if (ret != -EIOCBRETRY && ret != -EIOCBQUEUED) {
  671. /*
  672. * There's no easy way to restart the syscall since other AIO's
  673. * may be already running. Just fail this IO with EINTR.
  674. */
  675. if (unlikely(ret == -ERESTARTSYS || ret == -ERESTARTNOINTR ||
  676. ret == -ERESTARTNOHAND || ret == -ERESTART_RESTARTBLOCK))
  677. ret = -EINTR;
  678. aio_complete(iocb, ret, 0);
  679. }
  680. out:
  681. spin_lock_irq(&ctx->ctx_lock);
  682. if (-EIOCBRETRY == ret) {
  683. /*
  684. * OK, now that we are done with this iteration
  685. * and know that there is more left to go,
  686. * this is where we let go so that a subsequent
  687. * "kick" can start the next iteration
  688. */
  689. /* will make __queue_kicked_iocb succeed from here on */
  690. INIT_LIST_HEAD(&iocb->ki_run_list);
  691. /* we must queue the next iteration ourselves, if it
  692. * has already been kicked */
  693. if (kiocbIsKicked(iocb)) {
  694. __queue_kicked_iocb(iocb);
  695. /*
  696. * __queue_kicked_iocb will always return 1 here, because
  697. * iocb->ki_run_list is empty at this point so it should
  698. * be safe to unconditionally queue the context into the
  699. * work queue.
  700. */
  701. aio_queue_work(ctx);
  702. }
  703. }
  704. return ret;
  705. }
  706. /*
  707. * __aio_run_iocbs:
  708. * Process all pending retries queued on the ioctx
  709. * run list.
  710. * Assumes it is operating within the aio issuer's mm
  711. * context.
  712. */
  713. static int __aio_run_iocbs(struct kioctx *ctx)
  714. {
  715. struct kiocb *iocb;
  716. struct list_head run_list;
  717. assert_spin_locked(&ctx->ctx_lock);
  718. list_replace_init(&ctx->run_list, &run_list);
  719. while (!list_empty(&run_list)) {
  720. iocb = list_entry(run_list.next, struct kiocb,
  721. ki_run_list);
  722. list_del(&iocb->ki_run_list);
  723. /*
  724. * Hold an extra reference while retrying i/o.
  725. */
  726. iocb->ki_users++; /* grab extra reference */
  727. aio_run_iocb(iocb);
  728. __aio_put_req(ctx, iocb);
  729. }
  730. if (!list_empty(&ctx->run_list))
  731. return 1;
  732. return 0;
  733. }
  734. static void aio_queue_work(struct kioctx * ctx)
  735. {
  736. unsigned long timeout;
  737. /*
  738. * if someone is waiting, get the work started right
  739. * away, otherwise, use a longer delay
  740. */
  741. smp_mb();
  742. if (waitqueue_active(&ctx->wait))
  743. timeout = 1;
  744. else
  745. timeout = HZ/10;
  746. queue_delayed_work(aio_wq, &ctx->wq, timeout);
  747. }
  748. /*
  749. * aio_run_all_iocbs:
  750. * Process all pending retries queued on the ioctx
  751. * run list, and keep running them until the list
  752. * stays empty.
  753. * Assumes it is operating within the aio issuer's mm context.
  754. */
  755. static inline void aio_run_all_iocbs(struct kioctx *ctx)
  756. {
  757. spin_lock_irq(&ctx->ctx_lock);
  758. while (__aio_run_iocbs(ctx))
  759. ;
  760. spin_unlock_irq(&ctx->ctx_lock);
  761. }
  762. /*
  763. * aio_kick_handler:
  764. * Work queue handler triggered to process pending
  765. * retries on an ioctx. Takes on the aio issuer's
  766. * mm context before running the iocbs, so that
  767. * copy_xxx_user operates on the issuer's address
  768. * space.
  769. * Run on aiod's context.
  770. */
  771. static void aio_kick_handler(struct work_struct *work)
  772. {
  773. struct kioctx *ctx = container_of(work, struct kioctx, wq.work);
  774. mm_segment_t oldfs = get_fs();
  775. struct mm_struct *mm;
  776. int requeue;
  777. set_fs(USER_DS);
  778. use_mm(ctx->mm);
  779. spin_lock_irq(&ctx->ctx_lock);
  780. requeue =__aio_run_iocbs(ctx);
  781. mm = ctx->mm;
  782. spin_unlock_irq(&ctx->ctx_lock);
  783. unuse_mm(mm);
  784. set_fs(oldfs);
  785. /*
  786. * we're in a worker thread already, don't use queue_delayed_work,
  787. */
  788. if (requeue)
  789. queue_delayed_work(aio_wq, &ctx->wq, 0);
  790. }
  791. /*
  792. * Called by kick_iocb to queue the kiocb for retry
  793. * and if required activate the aio work queue to process
  794. * it
  795. */
  796. static void try_queue_kicked_iocb(struct kiocb *iocb)
  797. {
  798. struct kioctx *ctx = iocb->ki_ctx;
  799. unsigned long flags;
  800. int run = 0;
  801. spin_lock_irqsave(&ctx->ctx_lock, flags);
  802. /* set this inside the lock so that we can't race with aio_run_iocb()
  803. * testing it and putting the iocb on the run list under the lock */
  804. if (!kiocbTryKick(iocb))
  805. run = __queue_kicked_iocb(iocb);
  806. spin_unlock_irqrestore(&ctx->ctx_lock, flags);
  807. if (run)
  808. aio_queue_work(ctx);
  809. }
  810. /*
  811. * kick_iocb:
  812. * Called typically from a wait queue callback context
  813. * to trigger a retry of the iocb.
  814. * The retry is usually executed by aio workqueue
  815. * threads (See aio_kick_handler).
  816. */
  817. void kick_iocb(struct kiocb *iocb)
  818. {
  819. /* sync iocbs are easy: they can only ever be executing from a
  820. * single context. */
  821. if (is_sync_kiocb(iocb)) {
  822. kiocbSetKicked(iocb);
  823. wake_up_process(iocb->ki_obj.tsk);
  824. return;
  825. }
  826. try_queue_kicked_iocb(iocb);
  827. }
  828. EXPORT_SYMBOL(kick_iocb);
  829. /* aio_complete
  830. * Called when the io request on the given iocb is complete.
  831. * Returns true if this is the last user of the request. The
  832. * only other user of the request can be the cancellation code.
  833. */
  834. int aio_complete(struct kiocb *iocb, long res, long res2)
  835. {
  836. struct kioctx *ctx = iocb->ki_ctx;
  837. struct aio_ring_info *info;
  838. struct aio_ring *ring;
  839. struct io_event *event;
  840. unsigned long flags;
  841. unsigned long tail;
  842. int ret;
  843. /*
  844. * Special case handling for sync iocbs:
  845. * - events go directly into the iocb for fast handling
  846. * - the sync task with the iocb in its stack holds the single iocb
  847. * ref, no other paths have a way to get another ref
  848. * - the sync task helpfully left a reference to itself in the iocb
  849. */
  850. if (is_sync_kiocb(iocb)) {
  851. BUG_ON(iocb->ki_users != 1);
  852. iocb->ki_user_data = res;
  853. iocb->ki_users = 0;
  854. wake_up_process(iocb->ki_obj.tsk);
  855. return 1;
  856. }
  857. info = &ctx->ring_info;
  858. /* add a completion event to the ring buffer.
  859. * must be done holding ctx->ctx_lock to prevent
  860. * other code from messing with the tail
  861. * pointer since we might be called from irq
  862. * context.
  863. */
  864. spin_lock_irqsave(&ctx->ctx_lock, flags);
  865. if (iocb->ki_run_list.prev && !list_empty(&iocb->ki_run_list))
  866. list_del_init(&iocb->ki_run_list);
  867. /*
  868. * cancelled requests don't get events, userland was given one
  869. * when the event got cancelled.
  870. */
  871. if (kiocbIsCancelled(iocb))
  872. goto put_rq;
  873. ring = kmap_atomic(info->ring_pages[0], KM_IRQ1);
  874. tail = info->tail;
  875. event = aio_ring_event(info, tail, KM_IRQ0);
  876. if (++tail >= info->nr)
  877. tail = 0;
  878. event->obj = (u64)(unsigned long)iocb->ki_obj.user;
  879. event->data = iocb->ki_user_data;
  880. event->res = res;
  881. event->res2 = res2;
  882. dprintk("aio_complete: %p[%lu]: %p: %p %Lx %lx %lx\n",
  883. ctx, tail, iocb, iocb->ki_obj.user, iocb->ki_user_data,
  884. res, res2);
  885. /* after flagging the request as done, we
  886. * must never even look at it again
  887. */
  888. smp_wmb(); /* make event visible before updating tail */
  889. info->tail = tail;
  890. ring->tail = tail;
  891. put_aio_ring_event(event, KM_IRQ0);
  892. kunmap_atomic(ring, KM_IRQ1);
  893. pr_debug("added to ring %p at [%lu]\n", iocb, tail);
  894. /*
  895. * Check if the user asked us to deliver the result through an
  896. * eventfd. The eventfd_signal() function is safe to be called
  897. * from IRQ context.
  898. */
  899. if (iocb->ki_eventfd != NULL)
  900. eventfd_signal(iocb->ki_eventfd, 1);
  901. put_rq:
  902. /* everything turned out well, dispose of the aiocb. */
  903. ret = __aio_put_req(ctx, iocb);
  904. /*
  905. * We have to order our ring_info tail store above and test
  906. * of the wait list below outside the wait lock. This is
  907. * like in wake_up_bit() where clearing a bit has to be
  908. * ordered with the unlocked test.
  909. */
  910. smp_mb();
  911. if (waitqueue_active(&ctx->wait))
  912. wake_up(&ctx->wait);
  913. spin_unlock_irqrestore(&ctx->ctx_lock, flags);
  914. return ret;
  915. }
  916. EXPORT_SYMBOL(aio_complete);
  917. /* aio_read_evt
  918. * Pull an event off of the ioctx's event ring. Returns the number of
  919. * events fetched (0 or 1 ;-)
  920. * FIXME: make this use cmpxchg.
  921. * TODO: make the ringbuffer user mmap()able (requires FIXME).
  922. */
  923. static int aio_read_evt(struct kioctx *ioctx, struct io_event *ent)
  924. {
  925. struct aio_ring_info *info = &ioctx->ring_info;
  926. struct aio_ring *ring;
  927. unsigned long head;
  928. int ret = 0;
  929. ring = kmap_atomic(info->ring_pages[0], KM_USER0);
  930. dprintk("in aio_read_evt h%lu t%lu m%lu\n",
  931. (unsigned long)ring->head, (unsigned long)ring->tail,
  932. (unsigned long)ring->nr);
  933. if (ring->head == ring->tail)
  934. goto out;
  935. spin_lock(&info->ring_lock);
  936. head = ring->head % info->nr;
  937. if (head != ring->tail) {
  938. struct io_event *evp = aio_ring_event(info, head, KM_USER1);
  939. *ent = *evp;
  940. head = (head + 1) % info->nr;
  941. smp_mb(); /* finish reading the event before updatng the head */
  942. ring->head = head;
  943. ret = 1;
  944. put_aio_ring_event(evp, KM_USER1);
  945. }
  946. spin_unlock(&info->ring_lock);
  947. out:
  948. kunmap_atomic(ring, KM_USER0);
  949. dprintk("leaving aio_read_evt: %d h%lu t%lu\n", ret,
  950. (unsigned long)ring->head, (unsigned long)ring->tail);
  951. return ret;
  952. }
  953. struct aio_timeout {
  954. struct timer_list timer;
  955. int timed_out;
  956. struct task_struct *p;
  957. };
  958. static void timeout_func(unsigned long data)
  959. {
  960. struct aio_timeout *to = (struct aio_timeout *)data;
  961. to->timed_out = 1;
  962. wake_up_process(to->p);
  963. }
  964. static inline void init_timeout(struct aio_timeout *to)
  965. {
  966. setup_timer_on_stack(&to->timer, timeout_func, (unsigned long) to);
  967. to->timed_out = 0;
  968. to->p = current;
  969. }
  970. static inline void set_timeout(long start_jiffies, struct aio_timeout *to,
  971. const struct timespec *ts)
  972. {
  973. to->timer.expires = start_jiffies + timespec_to_jiffies(ts);
  974. if (time_after(to->timer.expires, jiffies))
  975. add_timer(&to->timer);
  976. else
  977. to->timed_out = 1;
  978. }
  979. static inline void clear_timeout(struct aio_timeout *to)
  980. {
  981. del_singleshot_timer_sync(&to->timer);
  982. }
  983. static int read_events(struct kioctx *ctx,
  984. long min_nr, long nr,
  985. struct io_event __user *event,
  986. struct timespec __user *timeout)
  987. {
  988. long start_jiffies = jiffies;
  989. struct task_struct *tsk = current;
  990. DECLARE_WAITQUEUE(wait, tsk);
  991. int ret;
  992. int i = 0;
  993. struct io_event ent;
  994. struct aio_timeout to;
  995. int retry = 0;
  996. /* needed to zero any padding within an entry (there shouldn't be
  997. * any, but C is fun!
  998. */
  999. memset(&ent, 0, sizeof(ent));
  1000. retry:
  1001. ret = 0;
  1002. while (likely(i < nr)) {
  1003. ret = aio_read_evt(ctx, &ent);
  1004. if (unlikely(ret <= 0))
  1005. break;
  1006. dprintk("read event: %Lx %Lx %Lx %Lx\n",
  1007. ent.data, ent.obj, ent.res, ent.res2);
  1008. /* Could we split the check in two? */
  1009. ret = -EFAULT;
  1010. if (unlikely(copy_to_user(event, &ent, sizeof(ent)))) {
  1011. dprintk("aio: lost an event due to EFAULT.\n");
  1012. break;
  1013. }
  1014. ret = 0;
  1015. /* Good, event copied to userland, update counts. */
  1016. event ++;
  1017. i ++;
  1018. }
  1019. if (min_nr <= i)
  1020. return i;
  1021. if (ret)
  1022. return ret;
  1023. /* End fast path */
  1024. /* racey check, but it gets redone */
  1025. if (!retry && unlikely(!list_empty(&ctx->run_list))) {
  1026. retry = 1;
  1027. aio_run_all_iocbs(ctx);
  1028. goto retry;
  1029. }
  1030. init_timeout(&to);
  1031. if (timeout) {
  1032. struct timespec ts;
  1033. ret = -EFAULT;
  1034. if (unlikely(copy_from_user(&ts, timeout, sizeof(ts))))
  1035. goto out;
  1036. set_timeout(start_jiffies, &to, &ts);
  1037. }
  1038. while (likely(i < nr)) {
  1039. add_wait_queue_exclusive(&ctx->wait, &wait);
  1040. do {
  1041. set_task_state(tsk, TASK_INTERRUPTIBLE);
  1042. ret = aio_read_evt(ctx, &ent);
  1043. if (ret)
  1044. break;
  1045. if (min_nr <= i)
  1046. break;
  1047. if (unlikely(ctx->dead)) {
  1048. ret = -EINVAL;
  1049. break;
  1050. }
  1051. if (to.timed_out) /* Only check after read evt */
  1052. break;
  1053. /* Try to only show up in io wait if there are ops
  1054. * in flight */
  1055. if (ctx->reqs_active)
  1056. io_schedule();
  1057. else
  1058. schedule();
  1059. if (signal_pending(tsk)) {
  1060. ret = -EINTR;
  1061. break;
  1062. }
  1063. /*ret = aio_read_evt(ctx, &ent);*/
  1064. } while (1) ;
  1065. set_task_state(tsk, TASK_RUNNING);
  1066. remove_wait_queue(&ctx->wait, &wait);
  1067. if (unlikely(ret <= 0))
  1068. break;
  1069. ret = -EFAULT;
  1070. if (unlikely(copy_to_user(event, &ent, sizeof(ent)))) {
  1071. dprintk("aio: lost an event due to EFAULT.\n");
  1072. break;
  1073. }
  1074. /* Good, event copied to userland, update counts. */
  1075. event ++;
  1076. i ++;
  1077. }
  1078. if (timeout)
  1079. clear_timeout(&to);
  1080. out:
  1081. destroy_timer_on_stack(&to.timer);
  1082. return i ? i : ret;
  1083. }
  1084. /* Take an ioctx and remove it from the list of ioctx's. Protects
  1085. * against races with itself via ->dead.
  1086. */
  1087. static void io_destroy(struct kioctx *ioctx)
  1088. {
  1089. struct mm_struct *mm = current->mm;
  1090. int was_dead;
  1091. /* delete the entry from the list is someone else hasn't already */
  1092. spin_lock(&mm->ioctx_lock);
  1093. was_dead = ioctx->dead;
  1094. ioctx->dead = 1;
  1095. hlist_del_rcu(&ioctx->list);
  1096. spin_unlock(&mm->ioctx_lock);
  1097. dprintk("aio_release(%p)\n", ioctx);
  1098. if (likely(!was_dead))
  1099. put_ioctx(ioctx); /* twice for the list */
  1100. aio_cancel_all(ioctx);
  1101. wait_for_all_aios(ioctx);
  1102. /*
  1103. * Wake up any waiters. The setting of ctx->dead must be seen
  1104. * by other CPUs at this point. Right now, we rely on the
  1105. * locking done by the above calls to ensure this consistency.
  1106. */
  1107. wake_up_all(&ioctx->wait);
  1108. put_ioctx(ioctx); /* once for the lookup */
  1109. }
  1110. /* sys_io_setup:
  1111. * Create an aio_context capable of receiving at least nr_events.
  1112. * ctxp must not point to an aio_context that already exists, and
  1113. * must be initialized to 0 prior to the call. On successful
  1114. * creation of the aio_context, *ctxp is filled in with the resulting
  1115. * handle. May fail with -EINVAL if *ctxp is not initialized,
  1116. * if the specified nr_events exceeds internal limits. May fail
  1117. * with -EAGAIN if the specified nr_events exceeds the user's limit
  1118. * of available events. May fail with -ENOMEM if insufficient kernel
  1119. * resources are available. May fail with -EFAULT if an invalid
  1120. * pointer is passed for ctxp. Will fail with -ENOSYS if not
  1121. * implemented.
  1122. */
  1123. SYSCALL_DEFINE2(io_setup, unsigned, nr_events, aio_context_t __user *, ctxp)
  1124. {
  1125. struct kioctx *ioctx = NULL;
  1126. unsigned long ctx;
  1127. long ret;
  1128. ret = get_user(ctx, ctxp);
  1129. if (unlikely(ret))
  1130. goto out;
  1131. ret = -EINVAL;
  1132. if (unlikely(ctx || nr_events == 0)) {
  1133. pr_debug("EINVAL: io_setup: ctx %lu nr_events %u\n",
  1134. ctx, nr_events);
  1135. goto out;
  1136. }
  1137. ioctx = ioctx_alloc(nr_events);
  1138. ret = PTR_ERR(ioctx);
  1139. if (!IS_ERR(ioctx)) {
  1140. ret = put_user(ioctx->user_id, ctxp);
  1141. if (!ret) {
  1142. put_ioctx(ioctx);
  1143. return 0;
  1144. }
  1145. io_destroy(ioctx);
  1146. }
  1147. out:
  1148. return ret;
  1149. }
  1150. /* sys_io_destroy:
  1151. * Destroy the aio_context specified. May cancel any outstanding
  1152. * AIOs and block on completion. Will fail with -ENOSYS if not
  1153. * implemented. May fail with -EINVAL if the context pointed to
  1154. * is invalid.
  1155. */
  1156. SYSCALL_DEFINE1(io_destroy, aio_context_t, ctx)
  1157. {
  1158. struct kioctx *ioctx = lookup_ioctx(ctx);
  1159. if (likely(NULL != ioctx)) {
  1160. io_destroy(ioctx);
  1161. return 0;
  1162. }
  1163. pr_debug("EINVAL: io_destroy: invalid context id\n");
  1164. return -EINVAL;
  1165. }
  1166. static void aio_advance_iovec(struct kiocb *iocb, ssize_t ret)
  1167. {
  1168. struct iovec *iov = &iocb->ki_iovec[iocb->ki_cur_seg];
  1169. BUG_ON(ret <= 0);
  1170. while (iocb->ki_cur_seg < iocb->ki_nr_segs && ret > 0) {
  1171. ssize_t this = min((ssize_t)iov->iov_len, ret);
  1172. iov->iov_base += this;
  1173. iov->iov_len -= this;
  1174. iocb->ki_left -= this;
  1175. ret -= this;
  1176. if (iov->iov_len == 0) {
  1177. iocb->ki_cur_seg++;
  1178. iov++;
  1179. }
  1180. }
  1181. /* the caller should not have done more io than what fit in
  1182. * the remaining iovecs */
  1183. BUG_ON(ret > 0 && iocb->ki_left == 0);
  1184. }
  1185. static ssize_t aio_rw_vect_retry(struct kiocb *iocb)
  1186. {
  1187. struct file *file = iocb->ki_filp;
  1188. struct address_space *mapping = file->f_mapping;
  1189. struct inode *inode = mapping->host;
  1190. ssize_t (*rw_op)(struct kiocb *, const struct iovec *,
  1191. unsigned long, loff_t);
  1192. ssize_t ret = 0;
  1193. unsigned short opcode;
  1194. if ((iocb->ki_opcode == IOCB_CMD_PREADV) ||
  1195. (iocb->ki_opcode == IOCB_CMD_PREAD)) {
  1196. rw_op = file->f_op->aio_read;
  1197. opcode = IOCB_CMD_PREADV;
  1198. } else {
  1199. rw_op = file->f_op->aio_write;
  1200. opcode = IOCB_CMD_PWRITEV;
  1201. }
  1202. /* This matches the pread()/pwrite() logic */
  1203. if (iocb->ki_pos < 0)
  1204. return -EINVAL;
  1205. do {
  1206. ret = rw_op(iocb, &iocb->ki_iovec[iocb->ki_cur_seg],
  1207. iocb->ki_nr_segs - iocb->ki_cur_seg,
  1208. iocb->ki_pos);
  1209. if (ret > 0)
  1210. aio_advance_iovec(iocb, ret);
  1211. /* retry all partial writes. retry partial reads as long as its a
  1212. * regular file. */
  1213. } while (ret > 0 && iocb->ki_left > 0 &&
  1214. (opcode == IOCB_CMD_PWRITEV ||
  1215. (!S_ISFIFO(inode->i_mode) && !S_ISSOCK(inode->i_mode))));
  1216. /* This means we must have transferred all that we could */
  1217. /* No need to retry anymore */
  1218. if ((ret == 0) || (iocb->ki_left == 0))
  1219. ret = iocb->ki_nbytes - iocb->ki_left;
  1220. /* If we managed to write some out we return that, rather than
  1221. * the eventual error. */
  1222. if (opcode == IOCB_CMD_PWRITEV
  1223. && ret < 0 && ret != -EIOCBQUEUED && ret != -EIOCBRETRY
  1224. && iocb->ki_nbytes - iocb->ki_left)
  1225. ret = iocb->ki_nbytes - iocb->ki_left;
  1226. return ret;
  1227. }
  1228. static ssize_t aio_fdsync(struct kiocb *iocb)
  1229. {
  1230. struct file *file = iocb->ki_filp;
  1231. ssize_t ret = -EINVAL;
  1232. if (file->f_op->aio_fsync)
  1233. ret = file->f_op->aio_fsync(iocb, 1);
  1234. return ret;
  1235. }
  1236. static ssize_t aio_fsync(struct kiocb *iocb)
  1237. {
  1238. struct file *file = iocb->ki_filp;
  1239. ssize_t ret = -EINVAL;
  1240. if (file->f_op->aio_fsync)
  1241. ret = file->f_op->aio_fsync(iocb, 0);
  1242. return ret;
  1243. }
  1244. static ssize_t aio_setup_vectored_rw(int type, struct kiocb *kiocb, bool compat)
  1245. {
  1246. ssize_t ret;
  1247. #ifdef CONFIG_COMPAT
  1248. if (compat)
  1249. ret = compat_rw_copy_check_uvector(type,
  1250. (struct compat_iovec __user *)kiocb->ki_buf,
  1251. kiocb->ki_nbytes, 1, &kiocb->ki_inline_vec,
  1252. &kiocb->ki_iovec, 1);
  1253. else
  1254. #endif
  1255. ret = rw_copy_check_uvector(type,
  1256. (struct iovec __user *)kiocb->ki_buf,
  1257. kiocb->ki_nbytes, 1, &kiocb->ki_inline_vec,
  1258. &kiocb->ki_iovec, 1);
  1259. if (ret < 0)
  1260. goto out;
  1261. kiocb->ki_nr_segs = kiocb->ki_nbytes;
  1262. kiocb->ki_cur_seg = 0;
  1263. /* ki_nbytes/left now reflect bytes instead of segs */
  1264. kiocb->ki_nbytes = ret;
  1265. kiocb->ki_left = ret;
  1266. ret = 0;
  1267. out:
  1268. return ret;
  1269. }
  1270. static ssize_t aio_setup_single_vector(struct kiocb *kiocb)
  1271. {
  1272. kiocb->ki_iovec = &kiocb->ki_inline_vec;
  1273. kiocb->ki_iovec->iov_base = kiocb->ki_buf;
  1274. kiocb->ki_iovec->iov_len = kiocb->ki_left;
  1275. kiocb->ki_nr_segs = 1;
  1276. kiocb->ki_cur_seg = 0;
  1277. return 0;
  1278. }
  1279. /*
  1280. * aio_setup_iocb:
  1281. * Performs the initial checks and aio retry method
  1282. * setup for the kiocb at the time of io submission.
  1283. */
  1284. static ssize_t aio_setup_iocb(struct kiocb *kiocb, bool compat)
  1285. {
  1286. struct file *file = kiocb->ki_filp;
  1287. ssize_t ret = 0;
  1288. switch (kiocb->ki_opcode) {
  1289. case IOCB_CMD_PREAD:
  1290. ret = -EBADF;
  1291. if (unlikely(!(file->f_mode & FMODE_READ)))
  1292. break;
  1293. ret = -EFAULT;
  1294. if (unlikely(!access_ok(VERIFY_WRITE, kiocb->ki_buf,
  1295. kiocb->ki_left)))
  1296. break;
  1297. ret = security_file_permission(file, MAY_READ);
  1298. if (unlikely(ret))
  1299. break;
  1300. ret = aio_setup_single_vector(kiocb);
  1301. if (ret)
  1302. break;
  1303. ret = -EINVAL;
  1304. if (file->f_op->aio_read)
  1305. kiocb->ki_retry = aio_rw_vect_retry;
  1306. break;
  1307. case IOCB_CMD_PWRITE:
  1308. ret = -EBADF;
  1309. if (unlikely(!(file->f_mode & FMODE_WRITE)))
  1310. break;
  1311. ret = -EFAULT;
  1312. if (unlikely(!access_ok(VERIFY_READ, kiocb->ki_buf,
  1313. kiocb->ki_left)))
  1314. break;
  1315. ret = security_file_permission(file, MAY_WRITE);
  1316. if (unlikely(ret))
  1317. break;
  1318. ret = aio_setup_single_vector(kiocb);
  1319. if (ret)
  1320. break;
  1321. ret = -EINVAL;
  1322. if (file->f_op->aio_write)
  1323. kiocb->ki_retry = aio_rw_vect_retry;
  1324. break;
  1325. case IOCB_CMD_PREADV:
  1326. ret = -EBADF;
  1327. if (unlikely(!(file->f_mode & FMODE_READ)))
  1328. break;
  1329. ret = security_file_permission(file, MAY_READ);
  1330. if (unlikely(ret))
  1331. break;
  1332. ret = aio_setup_vectored_rw(READ, kiocb, compat);
  1333. if (ret)
  1334. break;
  1335. ret = -EINVAL;
  1336. if (file->f_op->aio_read)
  1337. kiocb->ki_retry = aio_rw_vect_retry;
  1338. break;
  1339. case IOCB_CMD_PWRITEV:
  1340. ret = -EBADF;
  1341. if (unlikely(!(file->f_mode & FMODE_WRITE)))
  1342. break;
  1343. ret = security_file_permission(file, MAY_WRITE);
  1344. if (unlikely(ret))
  1345. break;
  1346. ret = aio_setup_vectored_rw(WRITE, kiocb, compat);
  1347. if (ret)
  1348. break;
  1349. ret = -EINVAL;
  1350. if (file->f_op->aio_write)
  1351. kiocb->ki_retry = aio_rw_vect_retry;
  1352. break;
  1353. case IOCB_CMD_FDSYNC:
  1354. ret = -EINVAL;
  1355. if (file->f_op->aio_fsync)
  1356. kiocb->ki_retry = aio_fdsync;
  1357. break;
  1358. case IOCB_CMD_FSYNC:
  1359. ret = -EINVAL;
  1360. if (file->f_op->aio_fsync)
  1361. kiocb->ki_retry = aio_fsync;
  1362. break;
  1363. default:
  1364. dprintk("EINVAL: io_submit: no operation provided\n");
  1365. ret = -EINVAL;
  1366. }
  1367. if (!kiocb->ki_retry)
  1368. return ret;
  1369. return 0;
  1370. }
  1371. static int io_submit_one(struct kioctx *ctx, struct iocb __user *user_iocb,
  1372. struct iocb *iocb, struct kiocb_batch *batch,
  1373. bool compat)
  1374. {
  1375. struct kiocb *req;
  1376. struct file *file;
  1377. ssize_t ret;
  1378. /* enforce forwards compatibility on users */
  1379. if (unlikely(iocb->aio_reserved1 || iocb->aio_reserved2)) {
  1380. pr_debug("EINVAL: io_submit: reserve field set\n");
  1381. return -EINVAL;
  1382. }
  1383. /* prevent overflows */
  1384. if (unlikely(
  1385. (iocb->aio_buf != (unsigned long)iocb->aio_buf) ||
  1386. (iocb->aio_nbytes != (size_t)iocb->aio_nbytes) ||
  1387. ((ssize_t)iocb->aio_nbytes < 0)
  1388. )) {
  1389. pr_debug("EINVAL: io_submit: overflow check\n");
  1390. return -EINVAL;
  1391. }
  1392. file = fget(iocb->aio_fildes);
  1393. if (unlikely(!file))
  1394. return -EBADF;
  1395. req = aio_get_req(ctx, batch); /* returns with 2 references to req */
  1396. if (unlikely(!req)) {
  1397. fput(file);
  1398. return -EAGAIN;
  1399. }
  1400. req->ki_filp = file;
  1401. if (iocb->aio_flags & IOCB_FLAG_RESFD) {
  1402. /*
  1403. * If the IOCB_FLAG_RESFD flag of aio_flags is set, get an
  1404. * instance of the file* now. The file descriptor must be
  1405. * an eventfd() fd, and will be signaled for each completed
  1406. * event using the eventfd_signal() function.
  1407. */
  1408. req->ki_eventfd = eventfd_ctx_fdget((int) iocb->aio_resfd);
  1409. if (IS_ERR(req->ki_eventfd)) {
  1410. ret = PTR_ERR(req->ki_eventfd);
  1411. req->ki_eventfd = NULL;
  1412. goto out_put_req;
  1413. }
  1414. }
  1415. ret = put_user(req->ki_key, &user_iocb->aio_key);
  1416. if (unlikely(ret)) {
  1417. dprintk("EFAULT: aio_key\n");
  1418. goto out_put_req;
  1419. }
  1420. req->ki_obj.user = user_iocb;
  1421. req->ki_user_data = iocb->aio_data;
  1422. req->ki_pos = iocb->aio_offset;
  1423. req->ki_buf = (char __user *)(unsigned long)iocb->aio_buf;
  1424. req->ki_left = req->ki_nbytes = iocb->aio_nbytes;
  1425. req->ki_opcode = iocb->aio_lio_opcode;
  1426. ret = aio_setup_iocb(req, compat);
  1427. if (ret)
  1428. goto out_put_req;
  1429. spin_lock_irq(&ctx->ctx_lock);
  1430. /*
  1431. * We could have raced with io_destroy() and are currently holding a
  1432. * reference to ctx which should be destroyed. We cannot submit IO
  1433. * since ctx gets freed as soon as io_submit() puts its reference. The
  1434. * check here is reliable: io_destroy() sets ctx->dead before waiting
  1435. * for outstanding IO and the barrier between these two is realized by
  1436. * unlock of mm->ioctx_lock and lock of ctx->ctx_lock. Analogously we
  1437. * increment ctx->reqs_active before checking for ctx->dead and the
  1438. * barrier is realized by unlock and lock of ctx->ctx_lock. Thus if we
  1439. * don't see ctx->dead set here, io_destroy() waits for our IO to
  1440. * finish.
  1441. */
  1442. if (ctx->dead) {
  1443. spin_unlock_irq(&ctx->ctx_lock);
  1444. ret = -EINVAL;
  1445. goto out_put_req;
  1446. }
  1447. aio_run_iocb(req);
  1448. if (!list_empty(&ctx->run_list)) {
  1449. /* drain the run list */
  1450. while (__aio_run_iocbs(ctx))
  1451. ;
  1452. }
  1453. spin_unlock_irq(&ctx->ctx_lock);
  1454. aio_put_req(req); /* drop extra ref to req */
  1455. return 0;
  1456. out_put_req:
  1457. aio_put_req(req); /* drop extra ref to req */
  1458. aio_put_req(req); /* drop i/o ref to req */
  1459. return ret;
  1460. }
  1461. long do_io_submit(aio_context_t ctx_id, long nr,
  1462. struct iocb __user *__user *iocbpp, bool compat)
  1463. {
  1464. struct kioctx *ctx;
  1465. long ret = 0;
  1466. int i = 0;
  1467. struct blk_plug plug;
  1468. struct kiocb_batch batch;
  1469. if (unlikely(nr < 0))
  1470. return -EINVAL;
  1471. if (unlikely(nr > LONG_MAX/sizeof(*iocbpp)))
  1472. nr = LONG_MAX/sizeof(*iocbpp);
  1473. if (unlikely(!access_ok(VERIFY_READ, iocbpp, (nr*sizeof(*iocbpp)))))
  1474. return -EFAULT;
  1475. ctx = lookup_ioctx(ctx_id);
  1476. if (unlikely(!ctx)) {
  1477. pr_debug("EINVAL: io_submit: invalid context id\n");
  1478. return -EINVAL;
  1479. }
  1480. kiocb_batch_init(&batch, nr);
  1481. blk_start_plug(&plug);
  1482. /*
  1483. * AKPM: should this return a partial result if some of the IOs were
  1484. * successfully submitted?
  1485. */
  1486. for (i=0; i<nr; i++) {
  1487. struct iocb __user *user_iocb;
  1488. struct iocb tmp;
  1489. if (unlikely(__get_user(user_iocb, iocbpp + i))) {
  1490. ret = -EFAULT;
  1491. break;
  1492. }
  1493. if (unlikely(copy_from_user(&tmp, user_iocb, sizeof(tmp)))) {
  1494. ret = -EFAULT;
  1495. break;
  1496. }
  1497. ret = io_submit_one(ctx, user_iocb, &tmp, &batch, compat);
  1498. if (ret)
  1499. break;
  1500. }
  1501. blk_finish_plug(&plug);
  1502. kiocb_batch_free(ctx, &batch);
  1503. put_ioctx(ctx);
  1504. return i ? i : ret;
  1505. }
  1506. /* sys_io_submit:
  1507. * Queue the nr iocbs pointed to by iocbpp for processing. Returns
  1508. * the number of iocbs queued. May return -EINVAL if the aio_context
  1509. * specified by ctx_id is invalid, if nr is < 0, if the iocb at
  1510. * *iocbpp[0] is not properly initialized, if the operation specified
  1511. * is invalid for the file descriptor in the iocb. May fail with
  1512. * -EFAULT if any of the data structures point to invalid data. May
  1513. * fail with -EBADF if the file descriptor specified in the first
  1514. * iocb is invalid. May fail with -EAGAIN if insufficient resources
  1515. * are available to queue any iocbs. Will return 0 if nr is 0. Will
  1516. * fail with -ENOSYS if not implemented.
  1517. */
  1518. SYSCALL_DEFINE3(io_submit, aio_context_t, ctx_id, long, nr,
  1519. struct iocb __user * __user *, iocbpp)
  1520. {
  1521. return do_io_submit(ctx_id, nr, iocbpp, 0);
  1522. }
  1523. /* lookup_kiocb
  1524. * Finds a given iocb for cancellation.
  1525. */
  1526. static struct kiocb *lookup_kiocb(struct kioctx *ctx, struct iocb __user *iocb,
  1527. u32 key)
  1528. {
  1529. struct list_head *pos;
  1530. assert_spin_locked(&ctx->ctx_lock);
  1531. /* TODO: use a hash or array, this sucks. */
  1532. list_for_each(pos, &ctx->active_reqs) {
  1533. struct kiocb *kiocb = list_kiocb(pos);
  1534. if (kiocb->ki_obj.user == iocb && kiocb->ki_key == key)
  1535. return kiocb;
  1536. }
  1537. return NULL;
  1538. }
  1539. /* sys_io_cancel:
  1540. * Attempts to cancel an iocb previously passed to io_submit. If
  1541. * the operation is successfully cancelled, the resulting event is
  1542. * copied into the memory pointed to by result without being placed
  1543. * into the completion queue and 0 is returned. May fail with
  1544. * -EFAULT if any of the data structures pointed to are invalid.
  1545. * May fail with -EINVAL if aio_context specified by ctx_id is
  1546. * invalid. May fail with -EAGAIN if the iocb specified was not
  1547. * cancelled. Will fail with -ENOSYS if not implemented.
  1548. */
  1549. SYSCALL_DEFINE3(io_cancel, aio_context_t, ctx_id, struct iocb __user *, iocb,
  1550. struct io_event __user *, result)
  1551. {
  1552. int (*cancel)(struct kiocb *iocb, struct io_event *res);
  1553. struct kioctx *ctx;
  1554. struct kiocb *kiocb;
  1555. u32 key;
  1556. int ret;
  1557. ret = get_user(key, &iocb->aio_key);
  1558. if (unlikely(ret))
  1559. return -EFAULT;
  1560. ctx = lookup_ioctx(ctx_id);
  1561. if (unlikely(!ctx))
  1562. return -EINVAL;
  1563. spin_lock_irq(&ctx->ctx_lock);
  1564. ret = -EAGAIN;
  1565. kiocb = lookup_kiocb(ctx, iocb, key);
  1566. if (kiocb && kiocb->ki_cancel) {
  1567. cancel = kiocb->ki_cancel;
  1568. kiocb->ki_users ++;
  1569. kiocbSetCancelled(kiocb);
  1570. } else
  1571. cancel = NULL;
  1572. spin_unlock_irq(&ctx->ctx_lock);
  1573. if (NULL != cancel) {
  1574. struct io_event tmp;
  1575. pr_debug("calling cancel\n");
  1576. memset(&tmp, 0, sizeof(tmp));
  1577. tmp.obj = (u64)(unsigned long)kiocb->ki_obj.user;
  1578. tmp.data = kiocb->ki_user_data;
  1579. ret = cancel(kiocb, &tmp);
  1580. if (!ret) {
  1581. /* Cancellation succeeded -- copy the result
  1582. * into the user's buffer.
  1583. */
  1584. if (copy_to_user(result, &tmp, sizeof(tmp)))
  1585. ret = -EFAULT;
  1586. }
  1587. } else
  1588. ret = -EINVAL;
  1589. put_ioctx(ctx);
  1590. return ret;
  1591. }
  1592. /* io_getevents:
  1593. * Attempts to read at least min_nr events and up to nr events from
  1594. * the completion queue for the aio_context specified by ctx_id. If
  1595. * it succeeds, the number of read events is returned. May fail with
  1596. * -EINVAL if ctx_id is invalid, if min_nr is out of range, if nr is
  1597. * out of range, if timeout is out of range. May fail with -EFAULT
  1598. * if any of the memory specified is invalid. May return 0 or
  1599. * < min_nr if the timeout specified by timeout has elapsed
  1600. * before sufficient events are available, where timeout == NULL
  1601. * specifies an infinite timeout. Note that the timeout pointed to by
  1602. * timeout is relative and will be updated if not NULL and the
  1603. * operation blocks. Will fail with -ENOSYS if not implemented.
  1604. */
  1605. SYSCALL_DEFINE5(io_getevents, aio_context_t, ctx_id,
  1606. long, min_nr,
  1607. long, nr,
  1608. struct io_event __user *, events,
  1609. struct timespec __user *, timeout)
  1610. {
  1611. struct kioctx *ioctx = lookup_ioctx(ctx_id);
  1612. long ret = -EINVAL;
  1613. if (likely(ioctx)) {
  1614. if (likely(min_nr <= nr && min_nr >= 0))
  1615. ret = read_events(ioctx, min_nr, nr, events, timeout);
  1616. put_ioctx(ioctx);
  1617. }
  1618. asmlinkage_protect(5, ret, ctx_id, min_nr, nr, events, timeout);
  1619. return ret;
  1620. }