xref: /linux/fs/aio.c (revision 871402e05b24cb56bc69df47cff960d0e0d24267)
1 /*
2  *	An async IO implementation for Linux
3  *	Written by Benjamin LaHaise <bcrl@kvack.org>
4  *
5  *	Implements an efficient asynchronous io interface.
6  *
7  *	Copyright 2000, 2001, 2002 Red Hat, Inc.  All Rights Reserved.
8  *	Copyright 2018 Christoph Hellwig.
9  *
10  *	See ../COPYING for licensing terms.
11  */
12 #define pr_fmt(fmt) "%s: " fmt, __func__
13 
14 #include <linux/kernel.h>
15 #include <linux/init.h>
16 #include <linux/errno.h>
17 #include <linux/time.h>
18 #include <linux/aio_abi.h>
19 #include <linux/export.h>
20 #include <linux/syscalls.h>
21 #include <linux/backing-dev.h>
22 #include <linux/refcount.h>
23 #include <linux/uio.h>
24 
25 #include <linux/sched/signal.h>
26 #include <linux/fs.h>
27 #include <linux/file.h>
28 #include <linux/mm.h>
29 #include <linux/mman.h>
30 #include <linux/percpu.h>
31 #include <linux/slab.h>
32 #include <linux/timer.h>
33 #include <linux/aio.h>
34 #include <linux/highmem.h>
35 #include <linux/workqueue.h>
36 #include <linux/security.h>
37 #include <linux/eventfd.h>
38 #include <linux/blkdev.h>
39 #include <linux/compat.h>
40 #include <linux/migrate.h>
41 #include <linux/ramfs.h>
42 #include <linux/percpu-refcount.h>
43 #include <linux/mount.h>
44 #include <linux/pseudo_fs.h>
45 
46 #include <asm/kmap_types.h>
47 #include <linux/uaccess.h>
48 #include <linux/nospec.h>
49 
50 #include "internal.h"
51 
52 #define KIOCB_KEY		0
53 
54 #define AIO_RING_MAGIC			0xa10a10a1
55 #define AIO_RING_COMPAT_FEATURES	1
56 #define AIO_RING_INCOMPAT_FEATURES	0
57 struct aio_ring {
58 	unsigned	id;	/* kernel internal index number */
59 	unsigned	nr;	/* number of io_events */
60 	unsigned	head;	/* Written to by userland or under ring_lock
61 				 * mutex by aio_read_events_ring(). */
62 	unsigned	tail;
63 
64 	unsigned	magic;
65 	unsigned	compat_features;
66 	unsigned	incompat_features;
67 	unsigned	header_length;	/* size of aio_ring */
68 
69 
70 	struct io_event		io_events[];
71 }; /* 128 bytes + ring size */
72 
73 /*
74  * Plugging is meant to work with larger batches of IOs. If we don't
75  * have more than the below, then don't bother setting up a plug.
76  */
77 #define AIO_PLUG_THRESHOLD	2
78 
79 #define AIO_RING_PAGES	8
80 
81 struct kioctx_table {
82 	struct rcu_head		rcu;
83 	unsigned		nr;
84 	struct kioctx __rcu	*table[];
85 };
86 
87 struct kioctx_cpu {
88 	unsigned		reqs_available;
89 };
90 
91 struct ctx_rq_wait {
92 	struct completion comp;
93 	atomic_t count;
94 };
95 
96 struct kioctx {
97 	struct percpu_ref	users;
98 	atomic_t		dead;
99 
100 	struct percpu_ref	reqs;
101 
102 	unsigned long		user_id;
103 
104 	struct __percpu kioctx_cpu *cpu;
105 
106 	/*
107 	 * For percpu reqs_available, number of slots we move to/from global
108 	 * counter at a time:
109 	 */
110 	unsigned		req_batch;
111 	/*
112 	 * This is what userspace passed to io_setup(), it's not used for
113 	 * anything but counting against the global max_reqs quota.
114 	 *
115 	 * The real limit is nr_events - 1, which will be larger (see
116 	 * aio_setup_ring())
117 	 */
118 	unsigned		max_reqs;
119 
120 	/* Size of ringbuffer, in units of struct io_event */
121 	unsigned		nr_events;
122 
123 	unsigned long		mmap_base;
124 	unsigned long		mmap_size;
125 
126 	struct page		**ring_pages;
127 	long			nr_pages;
128 
129 	struct rcu_work		free_rwork;	/* see free_ioctx() */
130 
131 	/*
132 	 * signals when all in-flight requests are done
133 	 */
134 	struct ctx_rq_wait	*rq_wait;
135 
136 	struct {
137 		/*
138 		 * This counts the number of available slots in the ringbuffer,
139 		 * so we avoid overflowing it: it's decremented (if positive)
140 		 * when allocating a kiocb and incremented when the resulting
141 		 * io_event is pulled off the ringbuffer.
142 		 *
143 		 * We batch accesses to it with a percpu version.
144 		 */
145 		atomic_t	reqs_available;
146 	} ____cacheline_aligned_in_smp;
147 
148 	struct {
149 		spinlock_t	ctx_lock;
150 		struct list_head active_reqs;	/* used for cancellation */
151 	} ____cacheline_aligned_in_smp;
152 
153 	struct {
154 		struct mutex	ring_lock;
155 		wait_queue_head_t wait;
156 	} ____cacheline_aligned_in_smp;
157 
158 	struct {
159 		unsigned	tail;
160 		unsigned	completed_events;
161 		spinlock_t	completion_lock;
162 	} ____cacheline_aligned_in_smp;
163 
164 	struct page		*internal_pages[AIO_RING_PAGES];
165 	struct file		*aio_ring_file;
166 
167 	unsigned		id;
168 };
169 
170 /*
171  * First field must be the file pointer in all the
172  * iocb unions! See also 'struct kiocb' in <linux/fs.h>
173  */
174 struct fsync_iocb {
175 	struct file		*file;
176 	struct work_struct	work;
177 	bool			datasync;
178 	struct cred		*creds;
179 };
180 
181 struct poll_iocb {
182 	struct file		*file;
183 	struct wait_queue_head	*head;
184 	__poll_t		events;
185 	bool			done;
186 	bool			cancelled;
187 	struct wait_queue_entry	wait;
188 	struct work_struct	work;
189 };
190 
191 /*
192  * NOTE! Each of the iocb union members has the file pointer
193  * as the first entry in their struct definition. So you can
194  * access the file pointer through any of the sub-structs,
195  * or directly as just 'ki_filp' in this struct.
196  */
197 struct aio_kiocb {
198 	union {
199 		struct file		*ki_filp;
200 		struct kiocb		rw;
201 		struct fsync_iocb	fsync;
202 		struct poll_iocb	poll;
203 	};
204 
205 	struct kioctx		*ki_ctx;
206 	kiocb_cancel_fn		*ki_cancel;
207 
208 	struct io_event		ki_res;
209 
210 	struct list_head	ki_list;	/* the aio core uses this
211 						 * for cancellation */
212 	refcount_t		ki_refcnt;
213 
214 	/*
215 	 * If the aio_resfd field of the userspace iocb is not zero,
216 	 * this is the underlying eventfd context to deliver events to.
217 	 */
218 	struct eventfd_ctx	*ki_eventfd;
219 };
220 
221 /*------ sysctl variables----*/
222 static DEFINE_SPINLOCK(aio_nr_lock);
223 unsigned long aio_nr;		/* current system wide number of aio requests */
224 unsigned long aio_max_nr = 0x10000; /* system wide maximum number of aio requests */
225 /*----end sysctl variables---*/
226 
227 static struct kmem_cache	*kiocb_cachep;
228 static struct kmem_cache	*kioctx_cachep;
229 
230 static struct vfsmount *aio_mnt;
231 
232 static const struct file_operations aio_ring_fops;
233 static const struct address_space_operations aio_ctx_aops;
234 
235 static struct file *aio_private_file(struct kioctx *ctx, loff_t nr_pages)
236 {
237 	struct file *file;
238 	struct inode *inode = alloc_anon_inode(aio_mnt->mnt_sb);
239 	if (IS_ERR(inode))
240 		return ERR_CAST(inode);
241 
242 	inode->i_mapping->a_ops = &aio_ctx_aops;
243 	inode->i_mapping->private_data = ctx;
244 	inode->i_size = PAGE_SIZE * nr_pages;
245 
246 	file = alloc_file_pseudo(inode, aio_mnt, "[aio]",
247 				O_RDWR, &aio_ring_fops);
248 	if (IS_ERR(file))
249 		iput(inode);
250 	return file;
251 }
252 
253 static int aio_init_fs_context(struct fs_context *fc)
254 {
255 	if (!init_pseudo(fc, AIO_RING_MAGIC))
256 		return -ENOMEM;
257 	fc->s_iflags |= SB_I_NOEXEC;
258 	return 0;
259 }
260 
261 /* aio_setup
262  *	Creates the slab caches used by the aio routines, panic on
263  *	failure as this is done early during the boot sequence.
264  */
265 static int __init aio_setup(void)
266 {
267 	static struct file_system_type aio_fs = {
268 		.name		= "aio",
269 		.init_fs_context = aio_init_fs_context,
270 		.kill_sb	= kill_anon_super,
271 	};
272 	aio_mnt = kern_mount(&aio_fs);
273 	if (IS_ERR(aio_mnt))
274 		panic("Failed to create aio fs mount.");
275 
276 	kiocb_cachep = KMEM_CACHE(aio_kiocb, SLAB_HWCACHE_ALIGN|SLAB_PANIC);
277 	kioctx_cachep = KMEM_CACHE(kioctx,SLAB_HWCACHE_ALIGN|SLAB_PANIC);
278 	return 0;
279 }
280 __initcall(aio_setup);
281 
282 static void put_aio_ring_file(struct kioctx *ctx)
283 {
284 	struct file *aio_ring_file = ctx->aio_ring_file;
285 	struct address_space *i_mapping;
286 
287 	if (aio_ring_file) {
288 		truncate_setsize(file_inode(aio_ring_file), 0);
289 
290 		/* Prevent further access to the kioctx from migratepages */
291 		i_mapping = aio_ring_file->f_mapping;
292 		spin_lock(&i_mapping->private_lock);
293 		i_mapping->private_data = NULL;
294 		ctx->aio_ring_file = NULL;
295 		spin_unlock(&i_mapping->private_lock);
296 
297 		fput(aio_ring_file);
298 	}
299 }
300 
301 static void aio_free_ring(struct kioctx *ctx)
302 {
303 	int i;
304 
305 	/* Disconnect the kiotx from the ring file.  This prevents future
306 	 * accesses to the kioctx from page migration.
307 	 */
308 	put_aio_ring_file(ctx);
309 
310 	for (i = 0; i < ctx->nr_pages; i++) {
311 		struct page *page;
312 		pr_debug("pid(%d) [%d] page->count=%d\n", current->pid, i,
313 				page_count(ctx->ring_pages[i]));
314 		page = ctx->ring_pages[i];
315 		if (!page)
316 			continue;
317 		ctx->ring_pages[i] = NULL;
318 		put_page(page);
319 	}
320 
321 	if (ctx->ring_pages && ctx->ring_pages != ctx->internal_pages) {
322 		kfree(ctx->ring_pages);
323 		ctx->ring_pages = NULL;
324 	}
325 }
326 
327 static int aio_ring_mremap(struct vm_area_struct *vma, unsigned long flags)
328 {
329 	struct file *file = vma->vm_file;
330 	struct mm_struct *mm = vma->vm_mm;
331 	struct kioctx_table *table;
332 	int i, res = -EINVAL;
333 
334 	if (flags & MREMAP_DONTUNMAP)
335 		return -EINVAL;
336 
337 	spin_lock(&mm->ioctx_lock);
338 	rcu_read_lock();
339 	table = rcu_dereference(mm->ioctx_table);
340 	for (i = 0; i < table->nr; i++) {
341 		struct kioctx *ctx;
342 
343 		ctx = rcu_dereference(table->table[i]);
344 		if (ctx && ctx->aio_ring_file == file) {
345 			if (!atomic_read(&ctx->dead)) {
346 				ctx->user_id = ctx->mmap_base = vma->vm_start;
347 				res = 0;
348 			}
349 			break;
350 		}
351 	}
352 
353 	rcu_read_unlock();
354 	spin_unlock(&mm->ioctx_lock);
355 	return res;
356 }
357 
358 static const struct vm_operations_struct aio_ring_vm_ops = {
359 	.mremap		= aio_ring_mremap,
360 #if IS_ENABLED(CONFIG_MMU)
361 	.fault		= filemap_fault,
362 	.map_pages	= filemap_map_pages,
363 	.page_mkwrite	= filemap_page_mkwrite,
364 #endif
365 };
366 
367 static int aio_ring_mmap(struct file *file, struct vm_area_struct *vma)
368 {
369 	vma->vm_flags |= VM_DONTEXPAND;
370 	vma->vm_ops = &aio_ring_vm_ops;
371 	return 0;
372 }
373 
374 static const struct file_operations aio_ring_fops = {
375 	.mmap = aio_ring_mmap,
376 };
377 
378 #if IS_ENABLED(CONFIG_MIGRATION)
379 static int aio_migratepage(struct address_space *mapping, struct page *new,
380 			struct page *old, enum migrate_mode mode)
381 {
382 	struct kioctx *ctx;
383 	unsigned long flags;
384 	pgoff_t idx;
385 	int rc;
386 
387 	/*
388 	 * We cannot support the _NO_COPY case here, because copy needs to
389 	 * happen under the ctx->completion_lock. That does not work with the
390 	 * migration workflow of MIGRATE_SYNC_NO_COPY.
391 	 */
392 	if (mode == MIGRATE_SYNC_NO_COPY)
393 		return -EINVAL;
394 
395 	rc = 0;
396 
397 	/* mapping->private_lock here protects against the kioctx teardown.  */
398 	spin_lock(&mapping->private_lock);
399 	ctx = mapping->private_data;
400 	if (!ctx) {
401 		rc = -EINVAL;
402 		goto out;
403 	}
404 
405 	/* The ring_lock mutex.  The prevents aio_read_events() from writing
406 	 * to the ring's head, and prevents page migration from mucking in
407 	 * a partially initialized kiotx.
408 	 */
409 	if (!mutex_trylock(&ctx->ring_lock)) {
410 		rc = -EAGAIN;
411 		goto out;
412 	}
413 
414 	idx = old->index;
415 	if (idx < (pgoff_t)ctx->nr_pages) {
416 		/* Make sure the old page hasn't already been changed */
417 		if (ctx->ring_pages[idx] != old)
418 			rc = -EAGAIN;
419 	} else
420 		rc = -EINVAL;
421 
422 	if (rc != 0)
423 		goto out_unlock;
424 
425 	/* Writeback must be complete */
426 	BUG_ON(PageWriteback(old));
427 	get_page(new);
428 
429 	rc = migrate_page_move_mapping(mapping, new, old, 1);
430 	if (rc != MIGRATEPAGE_SUCCESS) {
431 		put_page(new);
432 		goto out_unlock;
433 	}
434 
435 	/* Take completion_lock to prevent other writes to the ring buffer
436 	 * while the old page is copied to the new.  This prevents new
437 	 * events from being lost.
438 	 */
439 	spin_lock_irqsave(&ctx->completion_lock, flags);
440 	migrate_page_copy(new, old);
441 	BUG_ON(ctx->ring_pages[idx] != old);
442 	ctx->ring_pages[idx] = new;
443 	spin_unlock_irqrestore(&ctx->completion_lock, flags);
444 
445 	/* The old page is no longer accessible. */
446 	put_page(old);
447 
448 out_unlock:
449 	mutex_unlock(&ctx->ring_lock);
450 out:
451 	spin_unlock(&mapping->private_lock);
452 	return rc;
453 }
454 #endif
455 
456 static const struct address_space_operations aio_ctx_aops = {
457 	.set_page_dirty = __set_page_dirty_no_writeback,
458 #if IS_ENABLED(CONFIG_MIGRATION)
459 	.migratepage	= aio_migratepage,
460 #endif
461 };
462 
463 static int aio_setup_ring(struct kioctx *ctx, unsigned int nr_events)
464 {
465 	struct aio_ring *ring;
466 	struct mm_struct *mm = current->mm;
467 	unsigned long size, unused;
468 	int nr_pages;
469 	int i;
470 	struct file *file;
471 
472 	/* Compensate for the ring buffer's head/tail overlap entry */
473 	nr_events += 2;	/* 1 is required, 2 for good luck */
474 
475 	size = sizeof(struct aio_ring);
476 	size += sizeof(struct io_event) * nr_events;
477 
478 	nr_pages = PFN_UP(size);
479 	if (nr_pages < 0)
480 		return -EINVAL;
481 
482 	file = aio_private_file(ctx, nr_pages);
483 	if (IS_ERR(file)) {
484 		ctx->aio_ring_file = NULL;
485 		return -ENOMEM;
486 	}
487 
488 	ctx->aio_ring_file = file;
489 	nr_events = (PAGE_SIZE * nr_pages - sizeof(struct aio_ring))
490 			/ sizeof(struct io_event);
491 
492 	ctx->ring_pages = ctx->internal_pages;
493 	if (nr_pages > AIO_RING_PAGES) {
494 		ctx->ring_pages = kcalloc(nr_pages, sizeof(struct page *),
495 					  GFP_KERNEL);
496 		if (!ctx->ring_pages) {
497 			put_aio_ring_file(ctx);
498 			return -ENOMEM;
499 		}
500 	}
501 
502 	for (i = 0; i < nr_pages; i++) {
503 		struct page *page;
504 		page = find_or_create_page(file->f_mapping,
505 					   i, GFP_HIGHUSER | __GFP_ZERO);
506 		if (!page)
507 			break;
508 		pr_debug("pid(%d) page[%d]->count=%d\n",
509 			 current->pid, i, page_count(page));
510 		SetPageUptodate(page);
511 		unlock_page(page);
512 
513 		ctx->ring_pages[i] = page;
514 	}
515 	ctx->nr_pages = i;
516 
517 	if (unlikely(i != nr_pages)) {
518 		aio_free_ring(ctx);
519 		return -ENOMEM;
520 	}
521 
522 	ctx->mmap_size = nr_pages * PAGE_SIZE;
523 	pr_debug("attempting mmap of %lu bytes\n", ctx->mmap_size);
524 
525 	if (mmap_write_lock_killable(mm)) {
526 		ctx->mmap_size = 0;
527 		aio_free_ring(ctx);
528 		return -EINTR;
529 	}
530 
531 	ctx->mmap_base = do_mmap(ctx->aio_ring_file, 0, ctx->mmap_size,
532 				 PROT_READ | PROT_WRITE,
533 				 MAP_SHARED, 0, &unused, NULL);
534 	mmap_write_unlock(mm);
535 	if (IS_ERR((void *)ctx->mmap_base)) {
536 		ctx->mmap_size = 0;
537 		aio_free_ring(ctx);
538 		return -ENOMEM;
539 	}
540 
541 	pr_debug("mmap address: 0x%08lx\n", ctx->mmap_base);
542 
543 	ctx->user_id = ctx->mmap_base;
544 	ctx->nr_events = nr_events; /* trusted copy */
545 
546 	ring = kmap_atomic(ctx->ring_pages[0]);
547 	ring->nr = nr_events;	/* user copy */
548 	ring->id = ~0U;
549 	ring->head = ring->tail = 0;
550 	ring->magic = AIO_RING_MAGIC;
551 	ring->compat_features = AIO_RING_COMPAT_FEATURES;
552 	ring->incompat_features = AIO_RING_INCOMPAT_FEATURES;
553 	ring->header_length = sizeof(struct aio_ring);
554 	kunmap_atomic(ring);
555 	flush_dcache_page(ctx->ring_pages[0]);
556 
557 	return 0;
558 }
559 
560 #define AIO_EVENTS_PER_PAGE	(PAGE_SIZE / sizeof(struct io_event))
561 #define AIO_EVENTS_FIRST_PAGE	((PAGE_SIZE - sizeof(struct aio_ring)) / sizeof(struct io_event))
562 #define AIO_EVENTS_OFFSET	(AIO_EVENTS_PER_PAGE - AIO_EVENTS_FIRST_PAGE)
563 
564 void kiocb_set_cancel_fn(struct kiocb *iocb, kiocb_cancel_fn *cancel)
565 {
566 	struct aio_kiocb *req = container_of(iocb, struct aio_kiocb, rw);
567 	struct kioctx *ctx = req->ki_ctx;
568 	unsigned long flags;
569 
570 	if (WARN_ON_ONCE(!list_empty(&req->ki_list)))
571 		return;
572 
573 	spin_lock_irqsave(&ctx->ctx_lock, flags);
574 	list_add_tail(&req->ki_list, &ctx->active_reqs);
575 	req->ki_cancel = cancel;
576 	spin_unlock_irqrestore(&ctx->ctx_lock, flags);
577 }
578 EXPORT_SYMBOL(kiocb_set_cancel_fn);
579 
580 /*
581  * free_ioctx() should be RCU delayed to synchronize against the RCU
582  * protected lookup_ioctx() and also needs process context to call
583  * aio_free_ring().  Use rcu_work.
584  */
585 static void free_ioctx(struct work_struct *work)
586 {
587 	struct kioctx *ctx = container_of(to_rcu_work(work), struct kioctx,
588 					  free_rwork);
589 	pr_debug("freeing %p\n", ctx);
590 
591 	aio_free_ring(ctx);
592 	free_percpu(ctx->cpu);
593 	percpu_ref_exit(&ctx->reqs);
594 	percpu_ref_exit(&ctx->users);
595 	kmem_cache_free(kioctx_cachep, ctx);
596 }
597 
598 static void free_ioctx_reqs(struct percpu_ref *ref)
599 {
600 	struct kioctx *ctx = container_of(ref, struct kioctx, reqs);
601 
602 	/* At this point we know that there are no any in-flight requests */
603 	if (ctx->rq_wait && atomic_dec_and_test(&ctx->rq_wait->count))
604 		complete(&ctx->rq_wait->comp);
605 
606 	/* Synchronize against RCU protected table->table[] dereferences */
607 	INIT_RCU_WORK(&ctx->free_rwork, free_ioctx);
608 	queue_rcu_work(system_wq, &ctx->free_rwork);
609 }
610 
611 /*
612  * When this function runs, the kioctx has been removed from the "hash table"
613  * and ctx->users has dropped to 0, so we know no more kiocbs can be submitted -
614  * now it's safe to cancel any that need to be.
615  */
616 static void free_ioctx_users(struct percpu_ref *ref)
617 {
618 	struct kioctx *ctx = container_of(ref, struct kioctx, users);
619 	struct aio_kiocb *req;
620 
621 	spin_lock_irq(&ctx->ctx_lock);
622 
623 	while (!list_empty(&ctx->active_reqs)) {
624 		req = list_first_entry(&ctx->active_reqs,
625 				       struct aio_kiocb, ki_list);
626 		req->ki_cancel(&req->rw);
627 		list_del_init(&req->ki_list);
628 	}
629 
630 	spin_unlock_irq(&ctx->ctx_lock);
631 
632 	percpu_ref_kill(&ctx->reqs);
633 	percpu_ref_put(&ctx->reqs);
634 }
635 
636 static int ioctx_add_table(struct kioctx *ctx, struct mm_struct *mm)
637 {
638 	unsigned i, new_nr;
639 	struct kioctx_table *table, *old;
640 	struct aio_ring *ring;
641 
642 	spin_lock(&mm->ioctx_lock);
643 	table = rcu_dereference_raw(mm->ioctx_table);
644 
645 	while (1) {
646 		if (table)
647 			for (i = 0; i < table->nr; i++)
648 				if (!rcu_access_pointer(table->table[i])) {
649 					ctx->id = i;
650 					rcu_assign_pointer(table->table[i], ctx);
651 					spin_unlock(&mm->ioctx_lock);
652 
653 					/* While kioctx setup is in progress,
654 					 * we are protected from page migration
655 					 * changes ring_pages by ->ring_lock.
656 					 */
657 					ring = kmap_atomic(ctx->ring_pages[0]);
658 					ring->id = ctx->id;
659 					kunmap_atomic(ring);
660 					return 0;
661 				}
662 
663 		new_nr = (table ? table->nr : 1) * 4;
664 		spin_unlock(&mm->ioctx_lock);
665 
666 		table = kzalloc(sizeof(*table) + sizeof(struct kioctx *) *
667 				new_nr, GFP_KERNEL);
668 		if (!table)
669 			return -ENOMEM;
670 
671 		table->nr = new_nr;
672 
673 		spin_lock(&mm->ioctx_lock);
674 		old = rcu_dereference_raw(mm->ioctx_table);
675 
676 		if (!old) {
677 			rcu_assign_pointer(mm->ioctx_table, table);
678 		} else if (table->nr > old->nr) {
679 			memcpy(table->table, old->table,
680 			       old->nr * sizeof(struct kioctx *));
681 
682 			rcu_assign_pointer(mm->ioctx_table, table);
683 			kfree_rcu(old, rcu);
684 		} else {
685 			kfree(table);
686 			table = old;
687 		}
688 	}
689 }
690 
691 static void aio_nr_sub(unsigned nr)
692 {
693 	spin_lock(&aio_nr_lock);
694 	if (WARN_ON(aio_nr - nr > aio_nr))
695 		aio_nr = 0;
696 	else
697 		aio_nr -= nr;
698 	spin_unlock(&aio_nr_lock);
699 }
700 
701 /* ioctx_alloc
702  *	Allocates and initializes an ioctx.  Returns an ERR_PTR if it failed.
703  */
704 static struct kioctx *ioctx_alloc(unsigned nr_events)
705 {
706 	struct mm_struct *mm = current->mm;
707 	struct kioctx *ctx;
708 	int err = -ENOMEM;
709 
710 	/*
711 	 * Store the original nr_events -- what userspace passed to io_setup(),
712 	 * for counting against the global limit -- before it changes.
713 	 */
714 	unsigned int max_reqs = nr_events;
715 
716 	/*
717 	 * We keep track of the number of available ringbuffer slots, to prevent
718 	 * overflow (reqs_available), and we also use percpu counters for this.
719 	 *
720 	 * So since up to half the slots might be on other cpu's percpu counters
721 	 * and unavailable, double nr_events so userspace sees what they
722 	 * expected: additionally, we move req_batch slots to/from percpu
723 	 * counters at a time, so make sure that isn't 0:
724 	 */
725 	nr_events = max(nr_events, num_possible_cpus() * 4);
726 	nr_events *= 2;
727 
728 	/* Prevent overflows */
729 	if (nr_events > (0x10000000U / sizeof(struct io_event))) {
730 		pr_debug("ENOMEM: nr_events too high\n");
731 		return ERR_PTR(-EINVAL);
732 	}
733 
734 	if (!nr_events || (unsigned long)max_reqs > aio_max_nr)
735 		return ERR_PTR(-EAGAIN);
736 
737 	ctx = kmem_cache_zalloc(kioctx_cachep, GFP_KERNEL);
738 	if (!ctx)
739 		return ERR_PTR(-ENOMEM);
740 
741 	ctx->max_reqs = max_reqs;
742 
743 	spin_lock_init(&ctx->ctx_lock);
744 	spin_lock_init(&ctx->completion_lock);
745 	mutex_init(&ctx->ring_lock);
746 	/* Protect against page migration throughout kiotx setup by keeping
747 	 * the ring_lock mutex held until setup is complete. */
748 	mutex_lock(&ctx->ring_lock);
749 	init_waitqueue_head(&ctx->wait);
750 
751 	INIT_LIST_HEAD(&ctx->active_reqs);
752 
753 	if (percpu_ref_init(&ctx->users, free_ioctx_users, 0, GFP_KERNEL))
754 		goto err;
755 
756 	if (percpu_ref_init(&ctx->reqs, free_ioctx_reqs, 0, GFP_KERNEL))
757 		goto err;
758 
759 	ctx->cpu = alloc_percpu(struct kioctx_cpu);
760 	if (!ctx->cpu)
761 		goto err;
762 
763 	err = aio_setup_ring(ctx, nr_events);
764 	if (err < 0)
765 		goto err;
766 
767 	atomic_set(&ctx->reqs_available, ctx->nr_events - 1);
768 	ctx->req_batch = (ctx->nr_events - 1) / (num_possible_cpus() * 4);
769 	if (ctx->req_batch < 1)
770 		ctx->req_batch = 1;
771 
772 	/* limit the number of system wide aios */
773 	spin_lock(&aio_nr_lock);
774 	if (aio_nr + ctx->max_reqs > aio_max_nr ||
775 	    aio_nr + ctx->max_reqs < aio_nr) {
776 		spin_unlock(&aio_nr_lock);
777 		err = -EAGAIN;
778 		goto err_ctx;
779 	}
780 	aio_nr += ctx->max_reqs;
781 	spin_unlock(&aio_nr_lock);
782 
783 	percpu_ref_get(&ctx->users);	/* io_setup() will drop this ref */
784 	percpu_ref_get(&ctx->reqs);	/* free_ioctx_users() will drop this */
785 
786 	err = ioctx_add_table(ctx, mm);
787 	if (err)
788 		goto err_cleanup;
789 
790 	/* Release the ring_lock mutex now that all setup is complete. */
791 	mutex_unlock(&ctx->ring_lock);
792 
793 	pr_debug("allocated ioctx %p[%ld]: mm=%p mask=0x%x\n",
794 		 ctx, ctx->user_id, mm, ctx->nr_events);
795 	return ctx;
796 
797 err_cleanup:
798 	aio_nr_sub(ctx->max_reqs);
799 err_ctx:
800 	atomic_set(&ctx->dead, 1);
801 	if (ctx->mmap_size)
802 		vm_munmap(ctx->mmap_base, ctx->mmap_size);
803 	aio_free_ring(ctx);
804 err:
805 	mutex_unlock(&ctx->ring_lock);
806 	free_percpu(ctx->cpu);
807 	percpu_ref_exit(&ctx->reqs);
808 	percpu_ref_exit(&ctx->users);
809 	kmem_cache_free(kioctx_cachep, ctx);
810 	pr_debug("error allocating ioctx %d\n", err);
811 	return ERR_PTR(err);
812 }
813 
814 /* kill_ioctx
815  *	Cancels all outstanding aio requests on an aio context.  Used
816  *	when the processes owning a context have all exited to encourage
817  *	the rapid destruction of the kioctx.
818  */
819 static int kill_ioctx(struct mm_struct *mm, struct kioctx *ctx,
820 		      struct ctx_rq_wait *wait)
821 {
822 	struct kioctx_table *table;
823 
824 	spin_lock(&mm->ioctx_lock);
825 	if (atomic_xchg(&ctx->dead, 1)) {
826 		spin_unlock(&mm->ioctx_lock);
827 		return -EINVAL;
828 	}
829 
830 	table = rcu_dereference_raw(mm->ioctx_table);
831 	WARN_ON(ctx != rcu_access_pointer(table->table[ctx->id]));
832 	RCU_INIT_POINTER(table->table[ctx->id], NULL);
833 	spin_unlock(&mm->ioctx_lock);
834 
835 	/* free_ioctx_reqs() will do the necessary RCU synchronization */
836 	wake_up_all(&ctx->wait);
837 
838 	/*
839 	 * It'd be more correct to do this in free_ioctx(), after all
840 	 * the outstanding kiocbs have finished - but by then io_destroy
841 	 * has already returned, so io_setup() could potentially return
842 	 * -EAGAIN with no ioctxs actually in use (as far as userspace
843 	 *  could tell).
844 	 */
845 	aio_nr_sub(ctx->max_reqs);
846 
847 	if (ctx->mmap_size)
848 		vm_munmap(ctx->mmap_base, ctx->mmap_size);
849 
850 	ctx->rq_wait = wait;
851 	percpu_ref_kill(&ctx->users);
852 	return 0;
853 }
854 
855 /*
856  * exit_aio: called when the last user of mm goes away.  At this point, there is
857  * no way for any new requests to be submited or any of the io_* syscalls to be
858  * called on the context.
859  *
860  * There may be outstanding kiocbs, but free_ioctx() will explicitly wait on
861  * them.
862  */
863 void exit_aio(struct mm_struct *mm)
864 {
865 	struct kioctx_table *table = rcu_dereference_raw(mm->ioctx_table);
866 	struct ctx_rq_wait wait;
867 	int i, skipped;
868 
869 	if (!table)
870 		return;
871 
872 	atomic_set(&wait.count, table->nr);
873 	init_completion(&wait.comp);
874 
875 	skipped = 0;
876 	for (i = 0; i < table->nr; ++i) {
877 		struct kioctx *ctx =
878 			rcu_dereference_protected(table->table[i], true);
879 
880 		if (!ctx) {
881 			skipped++;
882 			continue;
883 		}
884 
885 		/*
886 		 * We don't need to bother with munmap() here - exit_mmap(mm)
887 		 * is coming and it'll unmap everything. And we simply can't,
888 		 * this is not necessarily our ->mm.
889 		 * Since kill_ioctx() uses non-zero ->mmap_size as indicator
890 		 * that it needs to unmap the area, just set it to 0.
891 		 */
892 		ctx->mmap_size = 0;
893 		kill_ioctx(mm, ctx, &wait);
894 	}
895 
896 	if (!atomic_sub_and_test(skipped, &wait.count)) {
897 		/* Wait until all IO for the context are done. */
898 		wait_for_completion(&wait.comp);
899 	}
900 
901 	RCU_INIT_POINTER(mm->ioctx_table, NULL);
902 	kfree(table);
903 }
904 
905 static void put_reqs_available(struct kioctx *ctx, unsigned nr)
906 {
907 	struct kioctx_cpu *kcpu;
908 	unsigned long flags;
909 
910 	local_irq_save(flags);
911 	kcpu = this_cpu_ptr(ctx->cpu);
912 	kcpu->reqs_available += nr;
913 
914 	while (kcpu->reqs_available >= ctx->req_batch * 2) {
915 		kcpu->reqs_available -= ctx->req_batch;
916 		atomic_add(ctx->req_batch, &ctx->reqs_available);
917 	}
918 
919 	local_irq_restore(flags);
920 }
921 
922 static bool __get_reqs_available(struct kioctx *ctx)
923 {
924 	struct kioctx_cpu *kcpu;
925 	bool ret = false;
926 	unsigned long flags;
927 
928 	local_irq_save(flags);
929 	kcpu = this_cpu_ptr(ctx->cpu);
930 	if (!kcpu->reqs_available) {
931 		int old, avail = atomic_read(&ctx->reqs_available);
932 
933 		do {
934 			if (avail < ctx->req_batch)
935 				goto out;
936 
937 			old = avail;
938 			avail = atomic_cmpxchg(&ctx->reqs_available,
939 					       avail, avail - ctx->req_batch);
940 		} while (avail != old);
941 
942 		kcpu->reqs_available += ctx->req_batch;
943 	}
944 
945 	ret = true;
946 	kcpu->reqs_available--;
947 out:
948 	local_irq_restore(flags);
949 	return ret;
950 }
951 
952 /* refill_reqs_available
953  *	Updates the reqs_available reference counts used for tracking the
954  *	number of free slots in the completion ring.  This can be called
955  *	from aio_complete() (to optimistically update reqs_available) or
956  *	from aio_get_req() (the we're out of events case).  It must be
957  *	called holding ctx->completion_lock.
958  */
959 static void refill_reqs_available(struct kioctx *ctx, unsigned head,
960                                   unsigned tail)
961 {
962 	unsigned events_in_ring, completed;
963 
964 	/* Clamp head since userland can write to it. */
965 	head %= ctx->nr_events;
966 	if (head <= tail)
967 		events_in_ring = tail - head;
968 	else
969 		events_in_ring = ctx->nr_events - (head - tail);
970 
971 	completed = ctx->completed_events;
972 	if (events_in_ring < completed)
973 		completed -= events_in_ring;
974 	else
975 		completed = 0;
976 
977 	if (!completed)
978 		return;
979 
980 	ctx->completed_events -= completed;
981 	put_reqs_available(ctx, completed);
982 }
983 
984 /* user_refill_reqs_available
985  *	Called to refill reqs_available when aio_get_req() encounters an
986  *	out of space in the completion ring.
987  */
988 static void user_refill_reqs_available(struct kioctx *ctx)
989 {
990 	spin_lock_irq(&ctx->completion_lock);
991 	if (ctx->completed_events) {
992 		struct aio_ring *ring;
993 		unsigned head;
994 
995 		/* Access of ring->head may race with aio_read_events_ring()
996 		 * here, but that's okay since whether we read the old version
997 		 * or the new version, and either will be valid.  The important
998 		 * part is that head cannot pass tail since we prevent
999 		 * aio_complete() from updating tail by holding
1000 		 * ctx->completion_lock.  Even if head is invalid, the check
1001 		 * against ctx->completed_events below will make sure we do the
1002 		 * safe/right thing.
1003 		 */
1004 		ring = kmap_atomic(ctx->ring_pages[0]);
1005 		head = ring->head;
1006 		kunmap_atomic(ring);
1007 
1008 		refill_reqs_available(ctx, head, ctx->tail);
1009 	}
1010 
1011 	spin_unlock_irq(&ctx->completion_lock);
1012 }
1013 
1014 static bool get_reqs_available(struct kioctx *ctx)
1015 {
1016 	if (__get_reqs_available(ctx))
1017 		return true;
1018 	user_refill_reqs_available(ctx);
1019 	return __get_reqs_available(ctx);
1020 }
1021 
1022 /* aio_get_req
1023  *	Allocate a slot for an aio request.
1024  * Returns NULL if no requests are free.
1025  *
1026  * The refcount is initialized to 2 - one for the async op completion,
1027  * one for the synchronous code that does this.
1028  */
1029 static inline struct aio_kiocb *aio_get_req(struct kioctx *ctx)
1030 {
1031 	struct aio_kiocb *req;
1032 
1033 	req = kmem_cache_alloc(kiocb_cachep, GFP_KERNEL);
1034 	if (unlikely(!req))
1035 		return NULL;
1036 
1037 	if (unlikely(!get_reqs_available(ctx))) {
1038 		kmem_cache_free(kiocb_cachep, req);
1039 		return NULL;
1040 	}
1041 
1042 	percpu_ref_get(&ctx->reqs);
1043 	req->ki_ctx = ctx;
1044 	INIT_LIST_HEAD(&req->ki_list);
1045 	refcount_set(&req->ki_refcnt, 2);
1046 	req->ki_eventfd = NULL;
1047 	return req;
1048 }
1049 
1050 static struct kioctx *lookup_ioctx(unsigned long ctx_id)
1051 {
1052 	struct aio_ring __user *ring  = (void __user *)ctx_id;
1053 	struct mm_struct *mm = current->mm;
1054 	struct kioctx *ctx, *ret = NULL;
1055 	struct kioctx_table *table;
1056 	unsigned id;
1057 
1058 	if (get_user(id, &ring->id))
1059 		return NULL;
1060 
1061 	rcu_read_lock();
1062 	table = rcu_dereference(mm->ioctx_table);
1063 
1064 	if (!table || id >= table->nr)
1065 		goto out;
1066 
1067 	id = array_index_nospec(id, table->nr);
1068 	ctx = rcu_dereference(table->table[id]);
1069 	if (ctx && ctx->user_id == ctx_id) {
1070 		if (percpu_ref_tryget_live(&ctx->users))
1071 			ret = ctx;
1072 	}
1073 out:
1074 	rcu_read_unlock();
1075 	return ret;
1076 }
1077 
1078 static inline void iocb_destroy(struct aio_kiocb *iocb)
1079 {
1080 	if (iocb->ki_eventfd)
1081 		eventfd_ctx_put(iocb->ki_eventfd);
1082 	if (iocb->ki_filp)
1083 		fput(iocb->ki_filp);
1084 	percpu_ref_put(&iocb->ki_ctx->reqs);
1085 	kmem_cache_free(kiocb_cachep, iocb);
1086 }
1087 
1088 /* aio_complete
1089  *	Called when the io request on the given iocb is complete.
1090  */
1091 static void aio_complete(struct aio_kiocb *iocb)
1092 {
1093 	struct kioctx	*ctx = iocb->ki_ctx;
1094 	struct aio_ring	*ring;
1095 	struct io_event	*ev_page, *event;
1096 	unsigned tail, pos, head;
1097 	unsigned long	flags;
1098 
1099 	/*
1100 	 * Add a completion event to the ring buffer. Must be done holding
1101 	 * ctx->completion_lock to prevent other code from messing with the tail
1102 	 * pointer since we might be called from irq context.
1103 	 */
1104 	spin_lock_irqsave(&ctx->completion_lock, flags);
1105 
1106 	tail = ctx->tail;
1107 	pos = tail + AIO_EVENTS_OFFSET;
1108 
1109 	if (++tail >= ctx->nr_events)
1110 		tail = 0;
1111 
1112 	ev_page = kmap_atomic(ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]);
1113 	event = ev_page + pos % AIO_EVENTS_PER_PAGE;
1114 
1115 	*event = iocb->ki_res;
1116 
1117 	kunmap_atomic(ev_page);
1118 	flush_dcache_page(ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE]);
1119 
1120 	pr_debug("%p[%u]: %p: %p %Lx %Lx %Lx\n", ctx, tail, iocb,
1121 		 (void __user *)(unsigned long)iocb->ki_res.obj,
1122 		 iocb->ki_res.data, iocb->ki_res.res, iocb->ki_res.res2);
1123 
1124 	/* after flagging the request as done, we
1125 	 * must never even look at it again
1126 	 */
1127 	smp_wmb();	/* make event visible before updating tail */
1128 
1129 	ctx->tail = tail;
1130 
1131 	ring = kmap_atomic(ctx->ring_pages[0]);
1132 	head = ring->head;
1133 	ring->tail = tail;
1134 	kunmap_atomic(ring);
1135 	flush_dcache_page(ctx->ring_pages[0]);
1136 
1137 	ctx->completed_events++;
1138 	if (ctx->completed_events > 1)
1139 		refill_reqs_available(ctx, head, tail);
1140 	spin_unlock_irqrestore(&ctx->completion_lock, flags);
1141 
1142 	pr_debug("added to ring %p at [%u]\n", iocb, tail);
1143 
1144 	/*
1145 	 * Check if the user asked us to deliver the result through an
1146 	 * eventfd. The eventfd_signal() function is safe to be called
1147 	 * from IRQ context.
1148 	 */
1149 	if (iocb->ki_eventfd)
1150 		eventfd_signal(iocb->ki_eventfd, 1);
1151 
1152 	/*
1153 	 * We have to order our ring_info tail store above and test
1154 	 * of the wait list below outside the wait lock.  This is
1155 	 * like in wake_up_bit() where clearing a bit has to be
1156 	 * ordered with the unlocked test.
1157 	 */
1158 	smp_mb();
1159 
1160 	if (waitqueue_active(&ctx->wait))
1161 		wake_up(&ctx->wait);
1162 }
1163 
1164 static inline void iocb_put(struct aio_kiocb *iocb)
1165 {
1166 	if (refcount_dec_and_test(&iocb->ki_refcnt)) {
1167 		aio_complete(iocb);
1168 		iocb_destroy(iocb);
1169 	}
1170 }
1171 
1172 /* aio_read_events_ring
1173  *	Pull an event off of the ioctx's event ring.  Returns the number of
1174  *	events fetched
1175  */
1176 static long aio_read_events_ring(struct kioctx *ctx,
1177 				 struct io_event __user *event, long nr)
1178 {
1179 	struct aio_ring *ring;
1180 	unsigned head, tail, pos;
1181 	long ret = 0;
1182 	int copy_ret;
1183 
1184 	/*
1185 	 * The mutex can block and wake us up and that will cause
1186 	 * wait_event_interruptible_hrtimeout() to schedule without sleeping
1187 	 * and repeat. This should be rare enough that it doesn't cause
1188 	 * peformance issues. See the comment in read_events() for more detail.
1189 	 */
1190 	sched_annotate_sleep();
1191 	mutex_lock(&ctx->ring_lock);
1192 
1193 	/* Access to ->ring_pages here is protected by ctx->ring_lock. */
1194 	ring = kmap_atomic(ctx->ring_pages[0]);
1195 	head = ring->head;
1196 	tail = ring->tail;
1197 	kunmap_atomic(ring);
1198 
1199 	/*
1200 	 * Ensure that once we've read the current tail pointer, that
1201 	 * we also see the events that were stored up to the tail.
1202 	 */
1203 	smp_rmb();
1204 
1205 	pr_debug("h%u t%u m%u\n", head, tail, ctx->nr_events);
1206 
1207 	if (head == tail)
1208 		goto out;
1209 
1210 	head %= ctx->nr_events;
1211 	tail %= ctx->nr_events;
1212 
1213 	while (ret < nr) {
1214 		long avail;
1215 		struct io_event *ev;
1216 		struct page *page;
1217 
1218 		avail = (head <= tail ?  tail : ctx->nr_events) - head;
1219 		if (head == tail)
1220 			break;
1221 
1222 		pos = head + AIO_EVENTS_OFFSET;
1223 		page = ctx->ring_pages[pos / AIO_EVENTS_PER_PAGE];
1224 		pos %= AIO_EVENTS_PER_PAGE;
1225 
1226 		avail = min(avail, nr - ret);
1227 		avail = min_t(long, avail, AIO_EVENTS_PER_PAGE - pos);
1228 
1229 		ev = kmap(page);
1230 		copy_ret = copy_to_user(event + ret, ev + pos,
1231 					sizeof(*ev) * avail);
1232 		kunmap(page);
1233 
1234 		if (unlikely(copy_ret)) {
1235 			ret = -EFAULT;
1236 			goto out;
1237 		}
1238 
1239 		ret += avail;
1240 		head += avail;
1241 		head %= ctx->nr_events;
1242 	}
1243 
1244 	ring = kmap_atomic(ctx->ring_pages[0]);
1245 	ring->head = head;
1246 	kunmap_atomic(ring);
1247 	flush_dcache_page(ctx->ring_pages[0]);
1248 
1249 	pr_debug("%li  h%u t%u\n", ret, head, tail);
1250 out:
1251 	mutex_unlock(&ctx->ring_lock);
1252 
1253 	return ret;
1254 }
1255 
1256 static bool aio_read_events(struct kioctx *ctx, long min_nr, long nr,
1257 			    struct io_event __user *event, long *i)
1258 {
1259 	long ret = aio_read_events_ring(ctx, event + *i, nr - *i);
1260 
1261 	if (ret > 0)
1262 		*i += ret;
1263 
1264 	if (unlikely(atomic_read(&ctx->dead)))
1265 		ret = -EINVAL;
1266 
1267 	if (!*i)
1268 		*i = ret;
1269 
1270 	return ret < 0 || *i >= min_nr;
1271 }
1272 
1273 static long read_events(struct kioctx *ctx, long min_nr, long nr,
1274 			struct io_event __user *event,
1275 			ktime_t until)
1276 {
1277 	long ret = 0;
1278 
1279 	/*
1280 	 * Note that aio_read_events() is being called as the conditional - i.e.
1281 	 * we're calling it after prepare_to_wait() has set task state to
1282 	 * TASK_INTERRUPTIBLE.
1283 	 *
1284 	 * But aio_read_events() can block, and if it blocks it's going to flip
1285 	 * the task state back to TASK_RUNNING.
1286 	 *
1287 	 * This should be ok, provided it doesn't flip the state back to
1288 	 * TASK_RUNNING and return 0 too much - that causes us to spin. That
1289 	 * will only happen if the mutex_lock() call blocks, and we then find
1290 	 * the ringbuffer empty. So in practice we should be ok, but it's
1291 	 * something to be aware of when touching this code.
1292 	 */
1293 	if (until == 0)
1294 		aio_read_events(ctx, min_nr, nr, event, &ret);
1295 	else
1296 		wait_event_interruptible_hrtimeout(ctx->wait,
1297 				aio_read_events(ctx, min_nr, nr, event, &ret),
1298 				until);
1299 	return ret;
1300 }
1301 
1302 /* sys_io_setup:
1303  *	Create an aio_context capable of receiving at least nr_events.
1304  *	ctxp must not point to an aio_context that already exists, and
1305  *	must be initialized to 0 prior to the call.  On successful
1306  *	creation of the aio_context, *ctxp is filled in with the resulting
1307  *	handle.  May fail with -EINVAL if *ctxp is not initialized,
1308  *	if the specified nr_events exceeds internal limits.  May fail
1309  *	with -EAGAIN if the specified nr_events exceeds the user's limit
1310  *	of available events.  May fail with -ENOMEM if insufficient kernel
1311  *	resources are available.  May fail with -EFAULT if an invalid
1312  *	pointer is passed for ctxp.  Will fail with -ENOSYS if not
1313  *	implemented.
1314  */
1315 SYSCALL_DEFINE2(io_setup, unsigned, nr_events, aio_context_t __user *, ctxp)
1316 {
1317 	struct kioctx *ioctx = NULL;
1318 	unsigned long ctx;
1319 	long ret;
1320 
1321 	ret = get_user(ctx, ctxp);
1322 	if (unlikely(ret))
1323 		goto out;
1324 
1325 	ret = -EINVAL;
1326 	if (unlikely(ctx || nr_events == 0)) {
1327 		pr_debug("EINVAL: ctx %lu nr_events %u\n",
1328 		         ctx, nr_events);
1329 		goto out;
1330 	}
1331 
1332 	ioctx = ioctx_alloc(nr_events);
1333 	ret = PTR_ERR(ioctx);
1334 	if (!IS_ERR(ioctx)) {
1335 		ret = put_user(ioctx->user_id, ctxp);
1336 		if (ret)
1337 			kill_ioctx(current->mm, ioctx, NULL);
1338 		percpu_ref_put(&ioctx->users);
1339 	}
1340 
1341 out:
1342 	return ret;
1343 }
1344 
1345 #ifdef CONFIG_COMPAT
1346 COMPAT_SYSCALL_DEFINE2(io_setup, unsigned, nr_events, u32 __user *, ctx32p)
1347 {
1348 	struct kioctx *ioctx = NULL;
1349 	unsigned long ctx;
1350 	long ret;
1351 
1352 	ret = get_user(ctx, ctx32p);
1353 	if (unlikely(ret))
1354 		goto out;
1355 
1356 	ret = -EINVAL;
1357 	if (unlikely(ctx || nr_events == 0)) {
1358 		pr_debug("EINVAL: ctx %lu nr_events %u\n",
1359 		         ctx, nr_events);
1360 		goto out;
1361 	}
1362 
1363 	ioctx = ioctx_alloc(nr_events);
1364 	ret = PTR_ERR(ioctx);
1365 	if (!IS_ERR(ioctx)) {
1366 		/* truncating is ok because it's a user address */
1367 		ret = put_user((u32)ioctx->user_id, ctx32p);
1368 		if (ret)
1369 			kill_ioctx(current->mm, ioctx, NULL);
1370 		percpu_ref_put(&ioctx->users);
1371 	}
1372 
1373 out:
1374 	return ret;
1375 }
1376 #endif
1377 
1378 /* sys_io_destroy:
1379  *	Destroy the aio_context specified.  May cancel any outstanding
1380  *	AIOs and block on completion.  Will fail with -ENOSYS if not
1381  *	implemented.  May fail with -EINVAL if the context pointed to
1382  *	is invalid.
1383  */
1384 SYSCALL_DEFINE1(io_destroy, aio_context_t, ctx)
1385 {
1386 	struct kioctx *ioctx = lookup_ioctx(ctx);
1387 	if (likely(NULL != ioctx)) {
1388 		struct ctx_rq_wait wait;
1389 		int ret;
1390 
1391 		init_completion(&wait.comp);
1392 		atomic_set(&wait.count, 1);
1393 
1394 		/* Pass requests_done to kill_ioctx() where it can be set
1395 		 * in a thread-safe way. If we try to set it here then we have
1396 		 * a race condition if two io_destroy() called simultaneously.
1397 		 */
1398 		ret = kill_ioctx(current->mm, ioctx, &wait);
1399 		percpu_ref_put(&ioctx->users);
1400 
1401 		/* Wait until all IO for the context are done. Otherwise kernel
1402 		 * keep using user-space buffers even if user thinks the context
1403 		 * is destroyed.
1404 		 */
1405 		if (!ret)
1406 			wait_for_completion(&wait.comp);
1407 
1408 		return ret;
1409 	}
1410 	pr_debug("EINVAL: invalid context id\n");
1411 	return -EINVAL;
1412 }
1413 
1414 static void aio_remove_iocb(struct aio_kiocb *iocb)
1415 {
1416 	struct kioctx *ctx = iocb->ki_ctx;
1417 	unsigned long flags;
1418 
1419 	spin_lock_irqsave(&ctx->ctx_lock, flags);
1420 	list_del(&iocb->ki_list);
1421 	spin_unlock_irqrestore(&ctx->ctx_lock, flags);
1422 }
1423 
1424 static void aio_complete_rw(struct kiocb *kiocb, long res, long res2)
1425 {
1426 	struct aio_kiocb *iocb = container_of(kiocb, struct aio_kiocb, rw);
1427 
1428 	if (!list_empty_careful(&iocb->ki_list))
1429 		aio_remove_iocb(iocb);
1430 
1431 	if (kiocb->ki_flags & IOCB_WRITE) {
1432 		struct inode *inode = file_inode(kiocb->ki_filp);
1433 
1434 		/*
1435 		 * Tell lockdep we inherited freeze protection from submission
1436 		 * thread.
1437 		 */
1438 		if (S_ISREG(inode->i_mode))
1439 			__sb_writers_acquired(inode->i_sb, SB_FREEZE_WRITE);
1440 		file_end_write(kiocb->ki_filp);
1441 	}
1442 
1443 	iocb->ki_res.res = res;
1444 	iocb->ki_res.res2 = res2;
1445 	iocb_put(iocb);
1446 }
1447 
1448 static int aio_prep_rw(struct kiocb *req, const struct iocb *iocb)
1449 {
1450 	int ret;
1451 
1452 	req->ki_complete = aio_complete_rw;
1453 	req->private = NULL;
1454 	req->ki_pos = iocb->aio_offset;
1455 	req->ki_flags = iocb_flags(req->ki_filp);
1456 	if (iocb->aio_flags & IOCB_FLAG_RESFD)
1457 		req->ki_flags |= IOCB_EVENTFD;
1458 	req->ki_hint = ki_hint_validate(file_write_hint(req->ki_filp));
1459 	if (iocb->aio_flags & IOCB_FLAG_IOPRIO) {
1460 		/*
1461 		 * If the IOCB_FLAG_IOPRIO flag of aio_flags is set, then
1462 		 * aio_reqprio is interpreted as an I/O scheduling
1463 		 * class and priority.
1464 		 */
1465 		ret = ioprio_check_cap(iocb->aio_reqprio);
1466 		if (ret) {
1467 			pr_debug("aio ioprio check cap error: %d\n", ret);
1468 			return ret;
1469 		}
1470 
1471 		req->ki_ioprio = iocb->aio_reqprio;
1472 	} else
1473 		req->ki_ioprio = get_current_ioprio();
1474 
1475 	ret = kiocb_set_rw_flags(req, iocb->aio_rw_flags);
1476 	if (unlikely(ret))
1477 		return ret;
1478 
1479 	req->ki_flags &= ~IOCB_HIPRI; /* no one is going to poll for this I/O */
1480 	return 0;
1481 }
1482 
1483 static ssize_t aio_setup_rw(int rw, const struct iocb *iocb,
1484 		struct iovec **iovec, bool vectored, bool compat,
1485 		struct iov_iter *iter)
1486 {
1487 	void __user *buf = (void __user *)(uintptr_t)iocb->aio_buf;
1488 	size_t len = iocb->aio_nbytes;
1489 
1490 	if (!vectored) {
1491 		ssize_t ret = import_single_range(rw, buf, len, *iovec, iter);
1492 		*iovec = NULL;
1493 		return ret;
1494 	}
1495 
1496 	return __import_iovec(rw, buf, len, UIO_FASTIOV, iovec, iter, compat);
1497 }
1498 
1499 static inline void aio_rw_done(struct kiocb *req, ssize_t ret)
1500 {
1501 	switch (ret) {
1502 	case -EIOCBQUEUED:
1503 		break;
1504 	case -ERESTARTSYS:
1505 	case -ERESTARTNOINTR:
1506 	case -ERESTARTNOHAND:
1507 	case -ERESTART_RESTARTBLOCK:
1508 		/*
1509 		 * There's no easy way to restart the syscall since other AIO's
1510 		 * may be already running. Just fail this IO with EINTR.
1511 		 */
1512 		ret = -EINTR;
1513 		fallthrough;
1514 	default:
1515 		req->ki_complete(req, ret, 0);
1516 	}
1517 }
1518 
1519 static int aio_read(struct kiocb *req, const struct iocb *iocb,
1520 			bool vectored, bool compat)
1521 {
1522 	struct iovec inline_vecs[UIO_FASTIOV], *iovec = inline_vecs;
1523 	struct iov_iter iter;
1524 	struct file *file;
1525 	int ret;
1526 
1527 	ret = aio_prep_rw(req, iocb);
1528 	if (ret)
1529 		return ret;
1530 	file = req->ki_filp;
1531 	if (unlikely(!(file->f_mode & FMODE_READ)))
1532 		return -EBADF;
1533 	ret = -EINVAL;
1534 	if (unlikely(!file->f_op->read_iter))
1535 		return -EINVAL;
1536 
1537 	ret = aio_setup_rw(READ, iocb, &iovec, vectored, compat, &iter);
1538 	if (ret < 0)
1539 		return ret;
1540 	ret = rw_verify_area(READ, file, &req->ki_pos, iov_iter_count(&iter));
1541 	if (!ret)
1542 		aio_rw_done(req, call_read_iter(file, req, &iter));
1543 	kfree(iovec);
1544 	return ret;
1545 }
1546 
1547 static int aio_write(struct kiocb *req, const struct iocb *iocb,
1548 			 bool vectored, bool compat)
1549 {
1550 	struct iovec inline_vecs[UIO_FASTIOV], *iovec = inline_vecs;
1551 	struct iov_iter iter;
1552 	struct file *file;
1553 	int ret;
1554 
1555 	ret = aio_prep_rw(req, iocb);
1556 	if (ret)
1557 		return ret;
1558 	file = req->ki_filp;
1559 
1560 	if (unlikely(!(file->f_mode & FMODE_WRITE)))
1561 		return -EBADF;
1562 	if (unlikely(!file->f_op->write_iter))
1563 		return -EINVAL;
1564 
1565 	ret = aio_setup_rw(WRITE, iocb, &iovec, vectored, compat, &iter);
1566 	if (ret < 0)
1567 		return ret;
1568 	ret = rw_verify_area(WRITE, file, &req->ki_pos, iov_iter_count(&iter));
1569 	if (!ret) {
1570 		/*
1571 		 * Open-code file_start_write here to grab freeze protection,
1572 		 * which will be released by another thread in
1573 		 * aio_complete_rw().  Fool lockdep by telling it the lock got
1574 		 * released so that it doesn't complain about the held lock when
1575 		 * we return to userspace.
1576 		 */
1577 		if (S_ISREG(file_inode(file)->i_mode)) {
1578 			sb_start_write(file_inode(file)->i_sb);
1579 			__sb_writers_release(file_inode(file)->i_sb, SB_FREEZE_WRITE);
1580 		}
1581 		req->ki_flags |= IOCB_WRITE;
1582 		aio_rw_done(req, call_write_iter(file, req, &iter));
1583 	}
1584 	kfree(iovec);
1585 	return ret;
1586 }
1587 
1588 static void aio_fsync_work(struct work_struct *work)
1589 {
1590 	struct aio_kiocb *iocb = container_of(work, struct aio_kiocb, fsync.work);
1591 	const struct cred *old_cred = override_creds(iocb->fsync.creds);
1592 
1593 	iocb->ki_res.res = vfs_fsync(iocb->fsync.file, iocb->fsync.datasync);
1594 	revert_creds(old_cred);
1595 	put_cred(iocb->fsync.creds);
1596 	iocb_put(iocb);
1597 }
1598 
1599 static int aio_fsync(struct fsync_iocb *req, const struct iocb *iocb,
1600 		     bool datasync)
1601 {
1602 	if (unlikely(iocb->aio_buf || iocb->aio_offset || iocb->aio_nbytes ||
1603 			iocb->aio_rw_flags))
1604 		return -EINVAL;
1605 
1606 	if (unlikely(!req->file->f_op->fsync))
1607 		return -EINVAL;
1608 
1609 	req->creds = prepare_creds();
1610 	if (!req->creds)
1611 		return -ENOMEM;
1612 
1613 	req->datasync = datasync;
1614 	INIT_WORK(&req->work, aio_fsync_work);
1615 	schedule_work(&req->work);
1616 	return 0;
1617 }
1618 
1619 static void aio_poll_put_work(struct work_struct *work)
1620 {
1621 	struct poll_iocb *req = container_of(work, struct poll_iocb, work);
1622 	struct aio_kiocb *iocb = container_of(req, struct aio_kiocb, poll);
1623 
1624 	iocb_put(iocb);
1625 }
1626 
1627 static void aio_poll_complete_work(struct work_struct *work)
1628 {
1629 	struct poll_iocb *req = container_of(work, struct poll_iocb, work);
1630 	struct aio_kiocb *iocb = container_of(req, struct aio_kiocb, poll);
1631 	struct poll_table_struct pt = { ._key = req->events };
1632 	struct kioctx *ctx = iocb->ki_ctx;
1633 	__poll_t mask = 0;
1634 
1635 	if (!READ_ONCE(req->cancelled))
1636 		mask = vfs_poll(req->file, &pt) & req->events;
1637 
1638 	/*
1639 	 * Note that ->ki_cancel callers also delete iocb from active_reqs after
1640 	 * calling ->ki_cancel.  We need the ctx_lock roundtrip here to
1641 	 * synchronize with them.  In the cancellation case the list_del_init
1642 	 * itself is not actually needed, but harmless so we keep it in to
1643 	 * avoid further branches in the fast path.
1644 	 */
1645 	spin_lock_irq(&ctx->ctx_lock);
1646 	if (!mask && !READ_ONCE(req->cancelled)) {
1647 		add_wait_queue(req->head, &req->wait);
1648 		spin_unlock_irq(&ctx->ctx_lock);
1649 		return;
1650 	}
1651 	list_del_init(&iocb->ki_list);
1652 	iocb->ki_res.res = mangle_poll(mask);
1653 	req->done = true;
1654 	spin_unlock_irq(&ctx->ctx_lock);
1655 
1656 	iocb_put(iocb);
1657 }
1658 
1659 /* assumes we are called with irqs disabled */
1660 static int aio_poll_cancel(struct kiocb *iocb)
1661 {
1662 	struct aio_kiocb *aiocb = container_of(iocb, struct aio_kiocb, rw);
1663 	struct poll_iocb *req = &aiocb->poll;
1664 
1665 	spin_lock(&req->head->lock);
1666 	WRITE_ONCE(req->cancelled, true);
1667 	if (!list_empty(&req->wait.entry)) {
1668 		list_del_init(&req->wait.entry);
1669 		schedule_work(&aiocb->poll.work);
1670 	}
1671 	spin_unlock(&req->head->lock);
1672 
1673 	return 0;
1674 }
1675 
1676 static int aio_poll_wake(struct wait_queue_entry *wait, unsigned mode, int sync,
1677 		void *key)
1678 {
1679 	struct poll_iocb *req = container_of(wait, struct poll_iocb, wait);
1680 	struct aio_kiocb *iocb = container_of(req, struct aio_kiocb, poll);
1681 	__poll_t mask = key_to_poll(key);
1682 	unsigned long flags;
1683 
1684 	/* for instances that support it check for an event match first: */
1685 	if (mask && !(mask & req->events))
1686 		return 0;
1687 
1688 	list_del_init(&req->wait.entry);
1689 
1690 	if (mask && spin_trylock_irqsave(&iocb->ki_ctx->ctx_lock, flags)) {
1691 		struct kioctx *ctx = iocb->ki_ctx;
1692 
1693 		/*
1694 		 * Try to complete the iocb inline if we can. Use
1695 		 * irqsave/irqrestore because not all filesystems (e.g. fuse)
1696 		 * call this function with IRQs disabled and because IRQs
1697 		 * have to be disabled before ctx_lock is obtained.
1698 		 */
1699 		list_del(&iocb->ki_list);
1700 		iocb->ki_res.res = mangle_poll(mask);
1701 		req->done = true;
1702 		if (iocb->ki_eventfd && eventfd_signal_count()) {
1703 			iocb = NULL;
1704 			INIT_WORK(&req->work, aio_poll_put_work);
1705 			schedule_work(&req->work);
1706 		}
1707 		spin_unlock_irqrestore(&ctx->ctx_lock, flags);
1708 		if (iocb)
1709 			iocb_put(iocb);
1710 	} else {
1711 		schedule_work(&req->work);
1712 	}
1713 	return 1;
1714 }
1715 
1716 struct aio_poll_table {
1717 	struct poll_table_struct	pt;
1718 	struct aio_kiocb		*iocb;
1719 	int				error;
1720 };
1721 
1722 static void
1723 aio_poll_queue_proc(struct file *file, struct wait_queue_head *head,
1724 		struct poll_table_struct *p)
1725 {
1726 	struct aio_poll_table *pt = container_of(p, struct aio_poll_table, pt);
1727 
1728 	/* multiple wait queues per file are not supported */
1729 	if (unlikely(pt->iocb->poll.head)) {
1730 		pt->error = -EINVAL;
1731 		return;
1732 	}
1733 
1734 	pt->error = 0;
1735 	pt->iocb->poll.head = head;
1736 	add_wait_queue(head, &pt->iocb->poll.wait);
1737 }
1738 
1739 static int aio_poll(struct aio_kiocb *aiocb, const struct iocb *iocb)
1740 {
1741 	struct kioctx *ctx = aiocb->ki_ctx;
1742 	struct poll_iocb *req = &aiocb->poll;
1743 	struct aio_poll_table apt;
1744 	bool cancel = false;
1745 	__poll_t mask;
1746 
1747 	/* reject any unknown events outside the normal event mask. */
1748 	if ((u16)iocb->aio_buf != iocb->aio_buf)
1749 		return -EINVAL;
1750 	/* reject fields that are not defined for poll */
1751 	if (iocb->aio_offset || iocb->aio_nbytes || iocb->aio_rw_flags)
1752 		return -EINVAL;
1753 
1754 	INIT_WORK(&req->work, aio_poll_complete_work);
1755 	req->events = demangle_poll(iocb->aio_buf) | EPOLLERR | EPOLLHUP;
1756 
1757 	req->head = NULL;
1758 	req->done = false;
1759 	req->cancelled = false;
1760 
1761 	apt.pt._qproc = aio_poll_queue_proc;
1762 	apt.pt._key = req->events;
1763 	apt.iocb = aiocb;
1764 	apt.error = -EINVAL; /* same as no support for IOCB_CMD_POLL */
1765 
1766 	/* initialized the list so that we can do list_empty checks */
1767 	INIT_LIST_HEAD(&req->wait.entry);
1768 	init_waitqueue_func_entry(&req->wait, aio_poll_wake);
1769 
1770 	mask = vfs_poll(req->file, &apt.pt) & req->events;
1771 	spin_lock_irq(&ctx->ctx_lock);
1772 	if (likely(req->head)) {
1773 		spin_lock(&req->head->lock);
1774 		if (unlikely(list_empty(&req->wait.entry))) {
1775 			if (apt.error)
1776 				cancel = true;
1777 			apt.error = 0;
1778 			mask = 0;
1779 		}
1780 		if (mask || apt.error) {
1781 			list_del_init(&req->wait.entry);
1782 		} else if (cancel) {
1783 			WRITE_ONCE(req->cancelled, true);
1784 		} else if (!req->done) { /* actually waiting for an event */
1785 			list_add_tail(&aiocb->ki_list, &ctx->active_reqs);
1786 			aiocb->ki_cancel = aio_poll_cancel;
1787 		}
1788 		spin_unlock(&req->head->lock);
1789 	}
1790 	if (mask) { /* no async, we'd stolen it */
1791 		aiocb->ki_res.res = mangle_poll(mask);
1792 		apt.error = 0;
1793 	}
1794 	spin_unlock_irq(&ctx->ctx_lock);
1795 	if (mask)
1796 		iocb_put(aiocb);
1797 	return apt.error;
1798 }
1799 
1800 static int __io_submit_one(struct kioctx *ctx, const struct iocb *iocb,
1801 			   struct iocb __user *user_iocb, struct aio_kiocb *req,
1802 			   bool compat)
1803 {
1804 	req->ki_filp = fget(iocb->aio_fildes);
1805 	if (unlikely(!req->ki_filp))
1806 		return -EBADF;
1807 
1808 	if (iocb->aio_flags & IOCB_FLAG_RESFD) {
1809 		struct eventfd_ctx *eventfd;
1810 		/*
1811 		 * If the IOCB_FLAG_RESFD flag of aio_flags is set, get an
1812 		 * instance of the file* now. The file descriptor must be
1813 		 * an eventfd() fd, and will be signaled for each completed
1814 		 * event using the eventfd_signal() function.
1815 		 */
1816 		eventfd = eventfd_ctx_fdget(iocb->aio_resfd);
1817 		if (IS_ERR(eventfd))
1818 			return PTR_ERR(eventfd);
1819 
1820 		req->ki_eventfd = eventfd;
1821 	}
1822 
1823 	if (unlikely(put_user(KIOCB_KEY, &user_iocb->aio_key))) {
1824 		pr_debug("EFAULT: aio_key\n");
1825 		return -EFAULT;
1826 	}
1827 
1828 	req->ki_res.obj = (u64)(unsigned long)user_iocb;
1829 	req->ki_res.data = iocb->aio_data;
1830 	req->ki_res.res = 0;
1831 	req->ki_res.res2 = 0;
1832 
1833 	switch (iocb->aio_lio_opcode) {
1834 	case IOCB_CMD_PREAD:
1835 		return aio_read(&req->rw, iocb, false, compat);
1836 	case IOCB_CMD_PWRITE:
1837 		return aio_write(&req->rw, iocb, false, compat);
1838 	case IOCB_CMD_PREADV:
1839 		return aio_read(&req->rw, iocb, true, compat);
1840 	case IOCB_CMD_PWRITEV:
1841 		return aio_write(&req->rw, iocb, true, compat);
1842 	case IOCB_CMD_FSYNC:
1843 		return aio_fsync(&req->fsync, iocb, false);
1844 	case IOCB_CMD_FDSYNC:
1845 		return aio_fsync(&req->fsync, iocb, true);
1846 	case IOCB_CMD_POLL:
1847 		return aio_poll(req, iocb);
1848 	default:
1849 		pr_debug("invalid aio operation %d\n", iocb->aio_lio_opcode);
1850 		return -EINVAL;
1851 	}
1852 }
1853 
1854 static int io_submit_one(struct kioctx *ctx, struct iocb __user *user_iocb,
1855 			 bool compat)
1856 {
1857 	struct aio_kiocb *req;
1858 	struct iocb iocb;
1859 	int err;
1860 
1861 	if (unlikely(copy_from_user(&iocb, user_iocb, sizeof(iocb))))
1862 		return -EFAULT;
1863 
1864 	/* enforce forwards compatibility on users */
1865 	if (unlikely(iocb.aio_reserved2)) {
1866 		pr_debug("EINVAL: reserve field set\n");
1867 		return -EINVAL;
1868 	}
1869 
1870 	/* prevent overflows */
1871 	if (unlikely(
1872 	    (iocb.aio_buf != (unsigned long)iocb.aio_buf) ||
1873 	    (iocb.aio_nbytes != (size_t)iocb.aio_nbytes) ||
1874 	    ((ssize_t)iocb.aio_nbytes < 0)
1875 	   )) {
1876 		pr_debug("EINVAL: overflow check\n");
1877 		return -EINVAL;
1878 	}
1879 
1880 	req = aio_get_req(ctx);
1881 	if (unlikely(!req))
1882 		return -EAGAIN;
1883 
1884 	err = __io_submit_one(ctx, &iocb, user_iocb, req, compat);
1885 
1886 	/* Done with the synchronous reference */
1887 	iocb_put(req);
1888 
1889 	/*
1890 	 * If err is 0, we'd either done aio_complete() ourselves or have
1891 	 * arranged for that to be done asynchronously.  Anything non-zero
1892 	 * means that we need to destroy req ourselves.
1893 	 */
1894 	if (unlikely(err)) {
1895 		iocb_destroy(req);
1896 		put_reqs_available(ctx, 1);
1897 	}
1898 	return err;
1899 }
1900 
1901 /* sys_io_submit:
1902  *	Queue the nr iocbs pointed to by iocbpp for processing.  Returns
1903  *	the number of iocbs queued.  May return -EINVAL if the aio_context
1904  *	specified by ctx_id is invalid, if nr is < 0, if the iocb at
1905  *	*iocbpp[0] is not properly initialized, if the operation specified
1906  *	is invalid for the file descriptor in the iocb.  May fail with
1907  *	-EFAULT if any of the data structures point to invalid data.  May
1908  *	fail with -EBADF if the file descriptor specified in the first
1909  *	iocb is invalid.  May fail with -EAGAIN if insufficient resources
1910  *	are available to queue any iocbs.  Will return 0 if nr is 0.  Will
1911  *	fail with -ENOSYS if not implemented.
1912  */
1913 SYSCALL_DEFINE3(io_submit, aio_context_t, ctx_id, long, nr,
1914 		struct iocb __user * __user *, iocbpp)
1915 {
1916 	struct kioctx *ctx;
1917 	long ret = 0;
1918 	int i = 0;
1919 	struct blk_plug plug;
1920 
1921 	if (unlikely(nr < 0))
1922 		return -EINVAL;
1923 
1924 	ctx = lookup_ioctx(ctx_id);
1925 	if (unlikely(!ctx)) {
1926 		pr_debug("EINVAL: invalid context id\n");
1927 		return -EINVAL;
1928 	}
1929 
1930 	if (nr > ctx->nr_events)
1931 		nr = ctx->nr_events;
1932 
1933 	if (nr > AIO_PLUG_THRESHOLD)
1934 		blk_start_plug(&plug);
1935 	for (i = 0; i < nr; i++) {
1936 		struct iocb __user *user_iocb;
1937 
1938 		if (unlikely(get_user(user_iocb, iocbpp + i))) {
1939 			ret = -EFAULT;
1940 			break;
1941 		}
1942 
1943 		ret = io_submit_one(ctx, user_iocb, false);
1944 		if (ret)
1945 			break;
1946 	}
1947 	if (nr > AIO_PLUG_THRESHOLD)
1948 		blk_finish_plug(&plug);
1949 
1950 	percpu_ref_put(&ctx->users);
1951 	return i ? i : ret;
1952 }
1953 
1954 #ifdef CONFIG_COMPAT
1955 COMPAT_SYSCALL_DEFINE3(io_submit, compat_aio_context_t, ctx_id,
1956 		       int, nr, compat_uptr_t __user *, iocbpp)
1957 {
1958 	struct kioctx *ctx;
1959 	long ret = 0;
1960 	int i = 0;
1961 	struct blk_plug plug;
1962 
1963 	if (unlikely(nr < 0))
1964 		return -EINVAL;
1965 
1966 	ctx = lookup_ioctx(ctx_id);
1967 	if (unlikely(!ctx)) {
1968 		pr_debug("EINVAL: invalid context id\n");
1969 		return -EINVAL;
1970 	}
1971 
1972 	if (nr > ctx->nr_events)
1973 		nr = ctx->nr_events;
1974 
1975 	if (nr > AIO_PLUG_THRESHOLD)
1976 		blk_start_plug(&plug);
1977 	for (i = 0; i < nr; i++) {
1978 		compat_uptr_t user_iocb;
1979 
1980 		if (unlikely(get_user(user_iocb, iocbpp + i))) {
1981 			ret = -EFAULT;
1982 			break;
1983 		}
1984 
1985 		ret = io_submit_one(ctx, compat_ptr(user_iocb), true);
1986 		if (ret)
1987 			break;
1988 	}
1989 	if (nr > AIO_PLUG_THRESHOLD)
1990 		blk_finish_plug(&plug);
1991 
1992 	percpu_ref_put(&ctx->users);
1993 	return i ? i : ret;
1994 }
1995 #endif
1996 
1997 /* sys_io_cancel:
1998  *	Attempts to cancel an iocb previously passed to io_submit.  If
1999  *	the operation is successfully cancelled, the resulting event is
2000  *	copied into the memory pointed to by result without being placed
2001  *	into the completion queue and 0 is returned.  May fail with
2002  *	-EFAULT if any of the data structures pointed to are invalid.
2003  *	May fail with -EINVAL if aio_context specified by ctx_id is
2004  *	invalid.  May fail with -EAGAIN if the iocb specified was not
2005  *	cancelled.  Will fail with -ENOSYS if not implemented.
2006  */
2007 SYSCALL_DEFINE3(io_cancel, aio_context_t, ctx_id, struct iocb __user *, iocb,
2008 		struct io_event __user *, result)
2009 {
2010 	struct kioctx *ctx;
2011 	struct aio_kiocb *kiocb;
2012 	int ret = -EINVAL;
2013 	u32 key;
2014 	u64 obj = (u64)(unsigned long)iocb;
2015 
2016 	if (unlikely(get_user(key, &iocb->aio_key)))
2017 		return -EFAULT;
2018 	if (unlikely(key != KIOCB_KEY))
2019 		return -EINVAL;
2020 
2021 	ctx = lookup_ioctx(ctx_id);
2022 	if (unlikely(!ctx))
2023 		return -EINVAL;
2024 
2025 	spin_lock_irq(&ctx->ctx_lock);
2026 	/* TODO: use a hash or array, this sucks. */
2027 	list_for_each_entry(kiocb, &ctx->active_reqs, ki_list) {
2028 		if (kiocb->ki_res.obj == obj) {
2029 			ret = kiocb->ki_cancel(&kiocb->rw);
2030 			list_del_init(&kiocb->ki_list);
2031 			break;
2032 		}
2033 	}
2034 	spin_unlock_irq(&ctx->ctx_lock);
2035 
2036 	if (!ret) {
2037 		/*
2038 		 * The result argument is no longer used - the io_event is
2039 		 * always delivered via the ring buffer. -EINPROGRESS indicates
2040 		 * cancellation is progress:
2041 		 */
2042 		ret = -EINPROGRESS;
2043 	}
2044 
2045 	percpu_ref_put(&ctx->users);
2046 
2047 	return ret;
2048 }
2049 
2050 static long do_io_getevents(aio_context_t ctx_id,
2051 		long min_nr,
2052 		long nr,
2053 		struct io_event __user *events,
2054 		struct timespec64 *ts)
2055 {
2056 	ktime_t until = ts ? timespec64_to_ktime(*ts) : KTIME_MAX;
2057 	struct kioctx *ioctx = lookup_ioctx(ctx_id);
2058 	long ret = -EINVAL;
2059 
2060 	if (likely(ioctx)) {
2061 		if (likely(min_nr <= nr && min_nr >= 0))
2062 			ret = read_events(ioctx, min_nr, nr, events, until);
2063 		percpu_ref_put(&ioctx->users);
2064 	}
2065 
2066 	return ret;
2067 }
2068 
2069 /* io_getevents:
2070  *	Attempts to read at least min_nr events and up to nr events from
2071  *	the completion queue for the aio_context specified by ctx_id. If
2072  *	it succeeds, the number of read events is returned. May fail with
2073  *	-EINVAL if ctx_id is invalid, if min_nr is out of range, if nr is
2074  *	out of range, if timeout is out of range.  May fail with -EFAULT
2075  *	if any of the memory specified is invalid.  May return 0 or
2076  *	< min_nr if the timeout specified by timeout has elapsed
2077  *	before sufficient events are available, where timeout == NULL
2078  *	specifies an infinite timeout. Note that the timeout pointed to by
2079  *	timeout is relative.  Will fail with -ENOSYS if not implemented.
2080  */
2081 #ifdef CONFIG_64BIT
2082 
2083 SYSCALL_DEFINE5(io_getevents, aio_context_t, ctx_id,
2084 		long, min_nr,
2085 		long, nr,
2086 		struct io_event __user *, events,
2087 		struct __kernel_timespec __user *, timeout)
2088 {
2089 	struct timespec64	ts;
2090 	int			ret;
2091 
2092 	if (timeout && unlikely(get_timespec64(&ts, timeout)))
2093 		return -EFAULT;
2094 
2095 	ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &ts : NULL);
2096 	if (!ret && signal_pending(current))
2097 		ret = -EINTR;
2098 	return ret;
2099 }
2100 
2101 #endif
2102 
2103 struct __aio_sigset {
2104 	const sigset_t __user	*sigmask;
2105 	size_t		sigsetsize;
2106 };
2107 
2108 SYSCALL_DEFINE6(io_pgetevents,
2109 		aio_context_t, ctx_id,
2110 		long, min_nr,
2111 		long, nr,
2112 		struct io_event __user *, events,
2113 		struct __kernel_timespec __user *, timeout,
2114 		const struct __aio_sigset __user *, usig)
2115 {
2116 	struct __aio_sigset	ksig = { NULL, };
2117 	struct timespec64	ts;
2118 	bool interrupted;
2119 	int ret;
2120 
2121 	if (timeout && unlikely(get_timespec64(&ts, timeout)))
2122 		return -EFAULT;
2123 
2124 	if (usig && copy_from_user(&ksig, usig, sizeof(ksig)))
2125 		return -EFAULT;
2126 
2127 	ret = set_user_sigmask(ksig.sigmask, ksig.sigsetsize);
2128 	if (ret)
2129 		return ret;
2130 
2131 	ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &ts : NULL);
2132 
2133 	interrupted = signal_pending(current);
2134 	restore_saved_sigmask_unless(interrupted);
2135 	if (interrupted && !ret)
2136 		ret = -ERESTARTNOHAND;
2137 
2138 	return ret;
2139 }
2140 
2141 #if defined(CONFIG_COMPAT_32BIT_TIME) && !defined(CONFIG_64BIT)
2142 
2143 SYSCALL_DEFINE6(io_pgetevents_time32,
2144 		aio_context_t, ctx_id,
2145 		long, min_nr,
2146 		long, nr,
2147 		struct io_event __user *, events,
2148 		struct old_timespec32 __user *, timeout,
2149 		const struct __aio_sigset __user *, usig)
2150 {
2151 	struct __aio_sigset	ksig = { NULL, };
2152 	struct timespec64	ts;
2153 	bool interrupted;
2154 	int ret;
2155 
2156 	if (timeout && unlikely(get_old_timespec32(&ts, timeout)))
2157 		return -EFAULT;
2158 
2159 	if (usig && copy_from_user(&ksig, usig, sizeof(ksig)))
2160 		return -EFAULT;
2161 
2162 
2163 	ret = set_user_sigmask(ksig.sigmask, ksig.sigsetsize);
2164 	if (ret)
2165 		return ret;
2166 
2167 	ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &ts : NULL);
2168 
2169 	interrupted = signal_pending(current);
2170 	restore_saved_sigmask_unless(interrupted);
2171 	if (interrupted && !ret)
2172 		ret = -ERESTARTNOHAND;
2173 
2174 	return ret;
2175 }
2176 
2177 #endif
2178 
2179 #if defined(CONFIG_COMPAT_32BIT_TIME)
2180 
2181 SYSCALL_DEFINE5(io_getevents_time32, __u32, ctx_id,
2182 		__s32, min_nr,
2183 		__s32, nr,
2184 		struct io_event __user *, events,
2185 		struct old_timespec32 __user *, timeout)
2186 {
2187 	struct timespec64 t;
2188 	int ret;
2189 
2190 	if (timeout && get_old_timespec32(&t, timeout))
2191 		return -EFAULT;
2192 
2193 	ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &t : NULL);
2194 	if (!ret && signal_pending(current))
2195 		ret = -EINTR;
2196 	return ret;
2197 }
2198 
2199 #endif
2200 
2201 #ifdef CONFIG_COMPAT
2202 
2203 struct __compat_aio_sigset {
2204 	compat_uptr_t		sigmask;
2205 	compat_size_t		sigsetsize;
2206 };
2207 
2208 #if defined(CONFIG_COMPAT_32BIT_TIME)
2209 
2210 COMPAT_SYSCALL_DEFINE6(io_pgetevents,
2211 		compat_aio_context_t, ctx_id,
2212 		compat_long_t, min_nr,
2213 		compat_long_t, nr,
2214 		struct io_event __user *, events,
2215 		struct old_timespec32 __user *, timeout,
2216 		const struct __compat_aio_sigset __user *, usig)
2217 {
2218 	struct __compat_aio_sigset ksig = { 0, };
2219 	struct timespec64 t;
2220 	bool interrupted;
2221 	int ret;
2222 
2223 	if (timeout && get_old_timespec32(&t, timeout))
2224 		return -EFAULT;
2225 
2226 	if (usig && copy_from_user(&ksig, usig, sizeof(ksig)))
2227 		return -EFAULT;
2228 
2229 	ret = set_compat_user_sigmask(compat_ptr(ksig.sigmask), ksig.sigsetsize);
2230 	if (ret)
2231 		return ret;
2232 
2233 	ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &t : NULL);
2234 
2235 	interrupted = signal_pending(current);
2236 	restore_saved_sigmask_unless(interrupted);
2237 	if (interrupted && !ret)
2238 		ret = -ERESTARTNOHAND;
2239 
2240 	return ret;
2241 }
2242 
2243 #endif
2244 
2245 COMPAT_SYSCALL_DEFINE6(io_pgetevents_time64,
2246 		compat_aio_context_t, ctx_id,
2247 		compat_long_t, min_nr,
2248 		compat_long_t, nr,
2249 		struct io_event __user *, events,
2250 		struct __kernel_timespec __user *, timeout,
2251 		const struct __compat_aio_sigset __user *, usig)
2252 {
2253 	struct __compat_aio_sigset ksig = { 0, };
2254 	struct timespec64 t;
2255 	bool interrupted;
2256 	int ret;
2257 
2258 	if (timeout && get_timespec64(&t, timeout))
2259 		return -EFAULT;
2260 
2261 	if (usig && copy_from_user(&ksig, usig, sizeof(ksig)))
2262 		return -EFAULT;
2263 
2264 	ret = set_compat_user_sigmask(compat_ptr(ksig.sigmask), ksig.sigsetsize);
2265 	if (ret)
2266 		return ret;
2267 
2268 	ret = do_io_getevents(ctx_id, min_nr, nr, events, timeout ? &t : NULL);
2269 
2270 	interrupted = signal_pending(current);
2271 	restore_saved_sigmask_unless(interrupted);
2272 	if (interrupted && !ret)
2273 		ret = -ERESTARTNOHAND;
2274 
2275 	return ret;
2276 }
2277 #endif
2278