1 // SPDX-License-Identifier: GPL-2.0
2 #include <linux/kernel.h>
3 #include <linux/errno.h>
4 #include <linux/fs.h>
5 #include <linux/file.h>
6 #include <linux/blk-mq.h>
7 #include <linux/mm.h>
8 #include <linux/slab.h>
9 #include <linux/fsnotify.h>
10 #include <linux/poll.h>
11 #include <linux/nospec.h>
12 #include <linux/io_uring/cmd.h>
13 #include <linux/indirect_call_wrapper.h>
14
15 #include <uapi/linux/io_uring.h>
16
17 #include "filetable.h"
18 #include "io_uring.h"
19 #include "opdef.h"
20 #include "kbuf.h"
21 #include "alloc_cache.h"
22 #include "rsrc.h"
23 #include "poll.h"
24 #include "rw.h"
25
26 static void io_complete_rw(struct kiocb *kiocb, long res);
27 static void io_complete_rw_iopoll(struct kiocb *kiocb, long res);
28
29 struct io_rw {
30 /* NOTE: kiocb has the file as the first member, so don't do it here */
31 struct kiocb kiocb;
32 u64 addr;
33 u32 len;
34 rwf_t flags;
35 };
36
io_file_supports_nowait(struct io_kiocb * req,__poll_t mask)37 static bool io_file_supports_nowait(struct io_kiocb *req, __poll_t mask)
38 {
39 /* If FMODE_NOWAIT is set for a file, we're golden */
40 if (req->flags & REQ_F_SUPPORT_NOWAIT)
41 return true;
42 /* No FMODE_NOWAIT, if we can poll, check the status */
43 if (io_file_can_poll(req)) {
44 struct poll_table_struct pt = { ._key = mask };
45
46 return vfs_poll(req->file, &pt) & mask;
47 }
48 /* No FMODE_NOWAIT support, and file isn't pollable. Tough luck. */
49 return false;
50 }
51
io_iov_buffer_select_prep(struct io_kiocb * req)52 static int io_iov_buffer_select_prep(struct io_kiocb *req)
53 {
54 struct iovec __user *uiov;
55 struct iovec fast_iov, *iov;
56 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
57
58 if (rw->len != 1)
59 return -EINVAL;
60
61 uiov = u64_to_user_ptr(rw->addr);
62 iov = iovec_from_user(uiov, 1, 1, &fast_iov, io_is_compat(req->ctx));
63 if (IS_ERR(iov))
64 return PTR_ERR(iov);
65 rw->len = iov->iov_len;
66 return 0;
67 }
68
io_import_vec(int ddir,struct io_kiocb * req,struct io_async_rw * io,const struct iovec __user * uvec,size_t uvec_segs)69 static int io_import_vec(int ddir, struct io_kiocb *req,
70 struct io_async_rw *io,
71 const struct iovec __user *uvec,
72 size_t uvec_segs)
73 {
74 int ret, nr_segs;
75 struct iovec *iov;
76
77 if (io->vec.iovec) {
78 nr_segs = io->vec.nr;
79 iov = io->vec.iovec;
80 } else {
81 nr_segs = 1;
82 iov = &io->fast_iov;
83 }
84
85 ret = __import_iovec(ddir, uvec, uvec_segs, nr_segs, &iov, &io->iter,
86 io_is_compat(req->ctx));
87 if (unlikely(ret < 0))
88 return ret;
89 if (iov) {
90 req->flags |= REQ_F_NEED_CLEANUP;
91 io_vec_reset_iovec(&io->vec, iov, io->iter.nr_segs);
92 }
93 return 0;
94 }
95
__io_import_rw_buffer(int ddir,struct io_kiocb * req,struct io_async_rw * io,struct io_br_sel * sel,unsigned int issue_flags)96 static int __io_import_rw_buffer(int ddir, struct io_kiocb *req,
97 struct io_async_rw *io, struct io_br_sel *sel,
98 unsigned int issue_flags)
99 {
100 const struct io_issue_def *def = &io_issue_defs[req->opcode];
101 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
102 size_t sqe_len = rw->len;
103
104 sel->addr = u64_to_user_ptr(rw->addr);
105 if (def->vectored && !(req->flags & REQ_F_BUFFER_SELECT))
106 return io_import_vec(ddir, req, io, sel->addr, sqe_len);
107
108 if (io_do_buffer_select(req)) {
109 *sel = io_buffer_select(req, &sqe_len, io->buf_group, issue_flags);
110 if (!sel->addr)
111 return -ENOBUFS;
112 rw->addr = (unsigned long) sel->addr;
113 rw->len = sqe_len;
114 }
115 return import_ubuf(ddir, sel->addr, sqe_len, &io->iter);
116 }
117
io_import_rw_buffer(int rw,struct io_kiocb * req,struct io_async_rw * io,struct io_br_sel * sel,unsigned int issue_flags)118 static inline int io_import_rw_buffer(int rw, struct io_kiocb *req,
119 struct io_async_rw *io,
120 struct io_br_sel *sel,
121 unsigned int issue_flags)
122 {
123 int ret;
124
125 ret = __io_import_rw_buffer(rw, req, io, sel, issue_flags);
126 if (unlikely(ret < 0))
127 return ret;
128
129 iov_iter_save_state(&io->iter, &io->iter_state);
130 return 0;
131 }
132
io_rw_recycle(struct io_kiocb * req,unsigned int issue_flags)133 static bool io_rw_recycle(struct io_kiocb *req, unsigned int issue_flags)
134 {
135 struct io_async_rw *rw = req->async_data;
136
137 if (unlikely(issue_flags & IO_URING_F_UNLOCKED))
138 return false;
139
140 io_alloc_cache_vec_kasan(&rw->vec);
141 if (rw->vec.nr > IO_VEC_CACHE_SOFT_CAP)
142 io_vec_free(&rw->vec);
143
144 if (io_alloc_cache_put(&req->ctx->rw_cache, rw)) {
145 io_req_async_data_clear(req, 0);
146 return true;
147 }
148 return false;
149 }
150
io_req_rw_cleanup(struct io_kiocb * req,unsigned int issue_flags)151 static void io_req_rw_cleanup(struct io_kiocb *req, unsigned int issue_flags)
152 {
153 /*
154 * Disable quick recycling for anything that's gone through io-wq.
155 * In theory, this should be fine to cleanup. However, some read or
156 * write iter handling touches the iovec AFTER having called into the
157 * handler, eg to reexpand or revert. This means we can have:
158 *
159 * task io-wq
160 * issue
161 * punt to io-wq
162 * issue
163 * blkdev_write_iter()
164 * ->ki_complete()
165 * io_complete_rw()
166 * queue tw complete
167 * run tw
168 * req_rw_cleanup
169 * iov_iter_count() <- look at iov_iter again
170 *
171 * which can lead to a UAF. This is only possible for io-wq offload
172 * as the cleanup can run in parallel. As io-wq is not the fast path,
173 * just leave cleanup to the end.
174 *
175 * This is really a bug in the core code that does this, any issue
176 * path should assume that a successful (or -EIOCBQUEUED) return can
177 * mean that the underlying data can be gone at any time. But that
178 * should be fixed separately, and then this check could be killed.
179 */
180 if (!(req->flags & (REQ_F_REISSUE | REQ_F_REFCOUNT))) {
181 req->flags &= ~REQ_F_NEED_CLEANUP;
182 if (!io_rw_recycle(req, issue_flags)) {
183 struct io_async_rw *rw = req->async_data;
184
185 io_vec_free(&rw->vec);
186 }
187 }
188 }
189
io_rw_alloc_async(struct io_kiocb * req)190 static int io_rw_alloc_async(struct io_kiocb *req)
191 {
192 struct io_ring_ctx *ctx = req->ctx;
193 struct io_async_rw *rw;
194
195 rw = io_uring_alloc_async_data(&ctx->rw_cache, req);
196 if (!rw)
197 return -ENOMEM;
198 if (rw->vec.iovec)
199 req->flags |= REQ_F_NEED_CLEANUP;
200 rw->bytes_done = 0;
201 return 0;
202 }
203
io_meta_save_state(struct io_async_rw * io)204 static inline void io_meta_save_state(struct io_async_rw *io)
205 {
206 io->meta_state.seed = io->meta.seed;
207 iov_iter_save_state(&io->meta.iter, &io->meta_state.iter_meta);
208 }
209
io_meta_restore(struct io_async_rw * io,struct kiocb * kiocb)210 static inline void io_meta_restore(struct io_async_rw *io, struct kiocb *kiocb)
211 {
212 if (kiocb->ki_flags & IOCB_HAS_METADATA) {
213 io->meta.seed = io->meta_state.seed;
214 iov_iter_restore(&io->meta.iter, &io->meta_state.iter_meta);
215 }
216 }
217
io_prep_rw_pi(struct io_kiocb * req,struct io_rw * rw,int ddir,u64 attr_ptr)218 static int io_prep_rw_pi(struct io_kiocb *req, struct io_rw *rw, int ddir,
219 u64 attr_ptr)
220 {
221 struct io_uring_attr_pi pi_attr;
222 struct io_async_rw *io;
223 int ret;
224
225 if (copy_from_user(&pi_attr, u64_to_user_ptr(attr_ptr),
226 sizeof(pi_attr)))
227 return -EFAULT;
228
229 if (pi_attr.rsvd)
230 return -EINVAL;
231
232 io = req->async_data;
233 io->meta.flags = pi_attr.flags;
234 io->meta.app_tag = pi_attr.app_tag;
235 io->meta.seed = pi_attr.seed;
236 ret = import_ubuf(ddir, u64_to_user_ptr(pi_attr.addr),
237 pi_attr.len, &io->meta.iter);
238 if (unlikely(ret < 0))
239 return ret;
240 req->flags |= REQ_F_HAS_METADATA;
241 io_meta_save_state(io);
242 return ret;
243 }
244
__io_prep_rw(struct io_kiocb * req,const struct io_uring_sqe * sqe,int ddir)245 static int __io_prep_rw(struct io_kiocb *req, const struct io_uring_sqe *sqe,
246 int ddir)
247 {
248 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
249 struct io_async_rw *io;
250 unsigned ioprio;
251 u64 attr_type_mask;
252 int ret;
253
254 if (io_rw_alloc_async(req))
255 return -ENOMEM;
256 io = req->async_data;
257
258 rw->kiocb.ki_pos = READ_ONCE(sqe->off);
259 /* used for fixed read/write too - just read unconditionally */
260 req->buf_index = READ_ONCE(sqe->buf_index);
261 io->buf_group = req->buf_index;
262
263 ioprio = READ_ONCE(sqe->ioprio);
264 if (ioprio) {
265 ret = ioprio_check_cap(ioprio);
266 if (ret)
267 return ret;
268
269 rw->kiocb.ki_ioprio = ioprio;
270 } else {
271 rw->kiocb.ki_ioprio = get_current_ioprio();
272 }
273 rw->kiocb.ki_flags = 0;
274 rw->kiocb.ki_write_stream = READ_ONCE(sqe->write_stream);
275
276 if (req->ctx->flags & IORING_SETUP_IOPOLL)
277 rw->kiocb.ki_complete = io_complete_rw_iopoll;
278 else
279 rw->kiocb.ki_complete = io_complete_rw;
280
281 rw->addr = READ_ONCE(sqe->addr);
282 rw->len = READ_ONCE(sqe->len);
283 rw->flags = (__force rwf_t) READ_ONCE(sqe->rw_flags);
284
285 attr_type_mask = READ_ONCE(sqe->attr_type_mask);
286 if (attr_type_mask) {
287 u64 attr_ptr;
288
289 /* only PI attribute is supported currently */
290 if (attr_type_mask != IORING_RW_ATTR_FLAG_PI)
291 return -EINVAL;
292
293 attr_ptr = READ_ONCE(sqe->attr_ptr);
294 return io_prep_rw_pi(req, rw, ddir, attr_ptr);
295 }
296 return 0;
297 }
298
io_rw_do_import(struct io_kiocb * req,int ddir)299 static int io_rw_do_import(struct io_kiocb *req, int ddir)
300 {
301 struct io_br_sel sel = { };
302
303 if (io_do_buffer_select(req))
304 return 0;
305
306 return io_import_rw_buffer(ddir, req, req->async_data, &sel, 0);
307 }
308
io_prep_rw(struct io_kiocb * req,const struct io_uring_sqe * sqe,int ddir)309 static int io_prep_rw(struct io_kiocb *req, const struct io_uring_sqe *sqe,
310 int ddir)
311 {
312 int ret;
313
314 ret = __io_prep_rw(req, sqe, ddir);
315 if (unlikely(ret))
316 return ret;
317
318 return io_rw_do_import(req, ddir);
319 }
320
io_prep_read(struct io_kiocb * req,const struct io_uring_sqe * sqe)321 int io_prep_read(struct io_kiocb *req, const struct io_uring_sqe *sqe)
322 {
323 return io_prep_rw(req, sqe, ITER_DEST);
324 }
325
io_prep_write(struct io_kiocb * req,const struct io_uring_sqe * sqe)326 int io_prep_write(struct io_kiocb *req, const struct io_uring_sqe *sqe)
327 {
328 return io_prep_rw(req, sqe, ITER_SOURCE);
329 }
330
io_prep_rwv(struct io_kiocb * req,const struct io_uring_sqe * sqe,int ddir)331 static int io_prep_rwv(struct io_kiocb *req, const struct io_uring_sqe *sqe,
332 int ddir)
333 {
334 int ret;
335
336 ret = io_prep_rw(req, sqe, ddir);
337 if (unlikely(ret))
338 return ret;
339 if (!(req->flags & REQ_F_BUFFER_SELECT))
340 return 0;
341
342 /*
343 * Have to do this validation here, as this is in io_read() rw->len
344 * might have changed due to buffer selection
345 */
346 return io_iov_buffer_select_prep(req);
347 }
348
io_prep_readv(struct io_kiocb * req,const struct io_uring_sqe * sqe)349 int io_prep_readv(struct io_kiocb *req, const struct io_uring_sqe *sqe)
350 {
351 return io_prep_rwv(req, sqe, ITER_DEST);
352 }
353
io_prep_writev(struct io_kiocb * req,const struct io_uring_sqe * sqe)354 int io_prep_writev(struct io_kiocb *req, const struct io_uring_sqe *sqe)
355 {
356 return io_prep_rwv(req, sqe, ITER_SOURCE);
357 }
358
io_init_rw_fixed(struct io_kiocb * req,unsigned int issue_flags,int ddir)359 static int io_init_rw_fixed(struct io_kiocb *req, unsigned int issue_flags,
360 int ddir)
361 {
362 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
363 struct io_async_rw *io = req->async_data;
364 int ret;
365
366 if (io->bytes_done)
367 return 0;
368
369 ret = io_import_reg_buf(req, &io->iter, rw->addr, rw->len, ddir,
370 issue_flags);
371 iov_iter_save_state(&io->iter, &io->iter_state);
372 return ret;
373 }
374
io_prep_read_fixed(struct io_kiocb * req,const struct io_uring_sqe * sqe)375 int io_prep_read_fixed(struct io_kiocb *req, const struct io_uring_sqe *sqe)
376 {
377 return __io_prep_rw(req, sqe, ITER_DEST);
378 }
379
io_prep_write_fixed(struct io_kiocb * req,const struct io_uring_sqe * sqe)380 int io_prep_write_fixed(struct io_kiocb *req, const struct io_uring_sqe *sqe)
381 {
382 return __io_prep_rw(req, sqe, ITER_SOURCE);
383 }
384
io_rw_import_reg_vec(struct io_kiocb * req,struct io_async_rw * io,int ddir,unsigned int issue_flags)385 static int io_rw_import_reg_vec(struct io_kiocb *req,
386 struct io_async_rw *io,
387 int ddir, unsigned int issue_flags)
388 {
389 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
390 unsigned uvec_segs = rw->len;
391 int ret;
392
393 ret = io_import_reg_vec(ddir, &io->iter, req, &io->vec,
394 uvec_segs, issue_flags);
395 if (unlikely(ret))
396 return ret;
397 iov_iter_save_state(&io->iter, &io->iter_state);
398 req->flags &= ~REQ_F_IMPORT_BUFFER;
399 return 0;
400 }
401
io_rw_prep_reg_vec(struct io_kiocb * req)402 static int io_rw_prep_reg_vec(struct io_kiocb *req)
403 {
404 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
405 struct io_async_rw *io = req->async_data;
406 const struct iovec __user *uvec;
407
408 uvec = u64_to_user_ptr(rw->addr);
409 return io_prep_reg_iovec(req, &io->vec, uvec, rw->len);
410 }
411
io_prep_readv_fixed(struct io_kiocb * req,const struct io_uring_sqe * sqe)412 int io_prep_readv_fixed(struct io_kiocb *req, const struct io_uring_sqe *sqe)
413 {
414 int ret;
415
416 ret = __io_prep_rw(req, sqe, ITER_DEST);
417 if (unlikely(ret))
418 return ret;
419 return io_rw_prep_reg_vec(req);
420 }
421
io_prep_writev_fixed(struct io_kiocb * req,const struct io_uring_sqe * sqe)422 int io_prep_writev_fixed(struct io_kiocb *req, const struct io_uring_sqe *sqe)
423 {
424 int ret;
425
426 ret = __io_prep_rw(req, sqe, ITER_SOURCE);
427 if (unlikely(ret))
428 return ret;
429 return io_rw_prep_reg_vec(req);
430 }
431
432 /*
433 * Multishot read is prepared just like a normal read/write request, only
434 * difference is that we set the MULTISHOT flag.
435 */
io_read_mshot_prep(struct io_kiocb * req,const struct io_uring_sqe * sqe)436 int io_read_mshot_prep(struct io_kiocb *req, const struct io_uring_sqe *sqe)
437 {
438 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
439 int ret;
440
441 /* must be used with provided buffers */
442 if (!(req->flags & REQ_F_BUFFER_SELECT))
443 return -EINVAL;
444
445 ret = __io_prep_rw(req, sqe, ITER_DEST);
446 if (unlikely(ret))
447 return ret;
448
449 if (rw->addr || rw->len)
450 return -EINVAL;
451
452 req->flags |= REQ_F_APOLL_MULTISHOT;
453 return 0;
454 }
455
io_readv_writev_cleanup(struct io_kiocb * req)456 void io_readv_writev_cleanup(struct io_kiocb *req)
457 {
458 struct io_async_rw *rw = req->async_data;
459
460 lockdep_assert_held(&req->ctx->uring_lock);
461 io_vec_free(&rw->vec);
462 io_rw_recycle(req, 0);
463 }
464
io_kiocb_update_pos(struct io_kiocb * req)465 static inline loff_t *io_kiocb_update_pos(struct io_kiocb *req)
466 {
467 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
468
469 if (rw->kiocb.ki_pos != -1)
470 return &rw->kiocb.ki_pos;
471
472 if (!(req->file->f_mode & FMODE_STREAM)) {
473 req->flags |= REQ_F_CUR_POS;
474 rw->kiocb.ki_pos = req->file->f_pos;
475 return &rw->kiocb.ki_pos;
476 }
477
478 rw->kiocb.ki_pos = 0;
479 return NULL;
480 }
481
io_rw_should_reissue(struct io_kiocb * req)482 static bool io_rw_should_reissue(struct io_kiocb *req)
483 {
484 #ifdef CONFIG_BLOCK
485 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
486 umode_t mode = file_inode(req->file)->i_mode;
487 struct io_async_rw *io = req->async_data;
488 struct io_ring_ctx *ctx = req->ctx;
489
490 if (!S_ISBLK(mode) && !S_ISREG(mode))
491 return false;
492 if ((req->flags & REQ_F_NOWAIT) || (io_wq_current_is_worker() &&
493 !(req->flags & REQ_F_IOPOLL)))
494 return false;
495 /*
496 * If ref is dying, we might be running poll reap from the exit work.
497 * Don't attempt to reissue from that path, just let it fail with
498 * -EAGAIN.
499 */
500 if (percpu_ref_is_dying(&ctx->refs))
501 return false;
502
503 io_meta_restore(io, &rw->kiocb);
504 iov_iter_restore(&io->iter, &io->iter_state);
505 return true;
506 #else
507 return false;
508 #endif
509 }
510
io_req_end_write(struct io_kiocb * req)511 static void io_req_end_write(struct io_kiocb *req)
512 {
513 if (req->flags & REQ_F_ISREG) {
514 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
515
516 kiocb_end_write(&rw->kiocb);
517 }
518 }
519
520 /*
521 * Trigger the notifications after having done some IO, and finish the write
522 * accounting, if any.
523 */
io_req_io_end(struct io_kiocb * req)524 static void io_req_io_end(struct io_kiocb *req)
525 {
526 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
527
528 if (rw->kiocb.ki_flags & IOCB_WRITE) {
529 io_req_end_write(req);
530 fsnotify_modify(req->file);
531 } else {
532 fsnotify_access(req->file);
533 }
534 }
535
__io_complete_rw_common(struct io_kiocb * req,long res)536 static void __io_complete_rw_common(struct io_kiocb *req, long res)
537 {
538 if (res == req->cqe.res)
539 return;
540 if ((res == -EOPNOTSUPP || res == -EAGAIN) && io_rw_should_reissue(req)) {
541 req->flags |= REQ_F_REISSUE | REQ_F_BL_NO_RECYCLE;
542 } else {
543 req_set_fail(req);
544 req->cqe.res = res;
545 }
546 }
547
io_fixup_rw_res(struct io_kiocb * req,long res)548 static inline int io_fixup_rw_res(struct io_kiocb *req, long res)
549 {
550 struct io_async_rw *io = req->async_data;
551
552 /* add previously done IO, if any */
553 if (req_has_async_data(req) && io->bytes_done > 0) {
554 if (res < 0)
555 res = io->bytes_done;
556 else
557 res += io->bytes_done;
558 }
559 return res;
560 }
561
io_req_rw_complete(struct io_tw_req tw_req,io_tw_token_t tw)562 void io_req_rw_complete(struct io_tw_req tw_req, io_tw_token_t tw)
563 {
564 struct io_kiocb *req = tw_req.req;
565
566 io_req_io_end(req);
567
568 if (req->flags & (REQ_F_BUFFER_SELECTED|REQ_F_BUFFER_RING))
569 req->cqe.flags |= io_put_kbuf(req, max(req->cqe.res, 0), NULL);
570
571 io_req_rw_cleanup(req, 0);
572 io_req_task_complete(tw_req, tw);
573 }
574
io_complete_rw(struct kiocb * kiocb,long res)575 static void io_complete_rw(struct kiocb *kiocb, long res)
576 {
577 struct io_rw *rw = container_of(kiocb, struct io_rw, kiocb);
578 struct io_kiocb *req = cmd_to_io_kiocb(rw);
579
580 __io_complete_rw_common(req, res);
581 io_req_set_res(req, io_fixup_rw_res(req, res), 0);
582 req->io_task_work.func = io_req_rw_complete;
583 __io_req_task_work_add(req, IOU_F_TWQ_LAZY_WAKE);
584 }
585
io_complete_rw_iopoll(struct kiocb * kiocb,long res)586 static void io_complete_rw_iopoll(struct kiocb *kiocb, long res)
587 {
588 struct io_rw *rw = container_of(kiocb, struct io_rw, kiocb);
589 struct io_kiocb *req = cmd_to_io_kiocb(rw);
590 int final_res = io_fixup_rw_res(req, res);
591
592 if (kiocb->ki_flags & IOCB_WRITE)
593 io_req_end_write(req);
594
595 if (res == -EAGAIN && io_rw_should_reissue(req))
596 req->flags |= REQ_F_REISSUE | REQ_F_BL_NO_RECYCLE;
597 else if (unlikely(final_res != req->cqe.res))
598 req->cqe.res = final_res;
599
600 /* order with io_iopoll_complete() checking ->iopoll_completed */
601 smp_store_release(&req->iopoll_completed, 1);
602 }
603
io_fixup_restart_res(ssize_t ret)604 static inline ssize_t io_fixup_restart_res(ssize_t ret)
605 {
606 switch (ret) {
607 case -ERESTARTSYS:
608 case -ERESTARTNOINTR:
609 case -ERESTARTNOHAND:
610 case -ERESTART_RESTARTBLOCK:
611 /*
612 * We can't just restart the syscall, since previously
613 * submitted sqes may already be in progress. Just fail
614 * this IO with EINTR.
615 */
616 return -EINTR;
617 default:
618 return ret;
619 }
620 }
621
io_rw_done(struct io_kiocb * req,ssize_t ret)622 static inline void io_rw_done(struct io_kiocb *req, ssize_t ret)
623 {
624 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
625
626 /* IO was queued async, completion will happen later */
627 if (ret == -EIOCBQUEUED)
628 return;
629
630 /* transform internal restart error codes */
631 if (unlikely(ret < 0))
632 ret = io_fixup_restart_res(ret);
633
634 if (req->flags & REQ_F_IOPOLL)
635 io_complete_rw_iopoll(&rw->kiocb, ret);
636 else
637 io_complete_rw(&rw->kiocb, ret);
638 }
639
kiocb_done(struct io_kiocb * req,ssize_t ret,struct io_br_sel * sel,unsigned int issue_flags)640 static int kiocb_done(struct io_kiocb *req, ssize_t ret,
641 struct io_br_sel *sel, unsigned int issue_flags)
642 {
643 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
644 unsigned final_ret = io_fixup_rw_res(req, ret);
645
646 if (ret >= 0 && req->flags & REQ_F_CUR_POS)
647 req->file->f_pos = rw->kiocb.ki_pos;
648 if (ret >= 0 && !(req->flags & REQ_F_IOPOLL)) {
649 u32 cflags = 0;
650
651 __io_complete_rw_common(req, ret);
652 /*
653 * Safe to call io_end from here as we're inline
654 * from the submission path.
655 */
656 io_req_io_end(req);
657 if (sel)
658 cflags = io_put_kbuf(req, ret, sel->buf_list);
659 io_req_set_res(req, final_ret, cflags);
660 io_req_rw_cleanup(req, issue_flags);
661 return IOU_COMPLETE;
662 } else {
663 io_rw_done(req, ret);
664 }
665
666 return IOU_ISSUE_SKIP_COMPLETE;
667 }
668
io_kiocb_ppos(struct kiocb * kiocb)669 static inline loff_t *io_kiocb_ppos(struct kiocb *kiocb)
670 {
671 return (kiocb->ki_filp->f_mode & FMODE_STREAM) ? NULL : &kiocb->ki_pos;
672 }
673
674 /*
675 * For files that don't have ->read_iter() and ->write_iter(), handle them
676 * by looping over ->read() or ->write() manually.
677 */
loop_rw_iter(int ddir,struct io_rw * rw,struct iov_iter * iter)678 static ssize_t loop_rw_iter(int ddir, struct io_rw *rw, struct iov_iter *iter)
679 {
680 struct io_kiocb *req = cmd_to_io_kiocb(rw);
681 struct kiocb *kiocb = &rw->kiocb;
682 struct file *file = kiocb->ki_filp;
683 ssize_t ret = 0;
684 loff_t *ppos;
685
686 /*
687 * Don't support polled IO through this interface, and we can't
688 * support non-blocking either. For the latter, this just causes
689 * the kiocb to be handled from an async context.
690 */
691 if (kiocb->ki_flags & IOCB_HIPRI)
692 return -EOPNOTSUPP;
693 if ((kiocb->ki_flags & IOCB_NOWAIT) &&
694 !(kiocb->ki_filp->f_flags & O_NONBLOCK))
695 return -EAGAIN;
696 if ((req->flags & REQ_F_BUF_NODE) &&
697 (req->buf_node->buf->flags & IO_REGBUF_F_KBUF))
698 return -EFAULT;
699
700 ppos = io_kiocb_ppos(kiocb);
701
702 while (iov_iter_count(iter)) {
703 void __user *addr;
704 size_t len;
705 ssize_t nr;
706
707 if (iter_is_ubuf(iter)) {
708 addr = iter->ubuf + iter->iov_offset;
709 len = iov_iter_count(iter);
710 } else if (!iov_iter_is_bvec(iter)) {
711 addr = iter_iov_addr(iter);
712 len = iter_iov_len(iter);
713 } else {
714 addr = u64_to_user_ptr(rw->addr);
715 len = rw->len;
716 }
717
718 if (ddir == READ)
719 nr = file->f_op->read(file, addr, len, ppos);
720 else
721 nr = file->f_op->write(file, addr, len, ppos);
722
723 if (nr < 0) {
724 if (!ret)
725 ret = nr;
726 break;
727 }
728 ret += nr;
729 if (!iov_iter_is_bvec(iter)) {
730 iov_iter_advance(iter, nr);
731 } else {
732 rw->addr += nr;
733 rw->len -= nr;
734 if (!rw->len)
735 break;
736 }
737 if (nr != len)
738 break;
739 }
740
741 return ret;
742 }
743
744 /*
745 * This is our waitqueue callback handler, registered through __folio_lock_async()
746 * when we initially tried to do the IO with the iocb armed our waitqueue.
747 * This gets called when the page is unlocked, and we generally expect that to
748 * happen when the page IO is completed and the page is now uptodate. This will
749 * queue a task_work based retry of the operation, attempting to copy the data
750 * again. If the latter fails because the page was NOT uptodate, then we will
751 * do a thread based blocking retry of the operation. That's the unexpected
752 * slow path.
753 */
io_async_buf_func(struct wait_queue_entry * wait,unsigned mode,int sync,void * arg)754 static int io_async_buf_func(struct wait_queue_entry *wait, unsigned mode,
755 int sync, void *arg)
756 {
757 struct wait_page_queue *wpq;
758 struct io_kiocb *req = wait->private;
759 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
760 struct wait_page_key *key = arg;
761
762 wpq = container_of(wait, struct wait_page_queue, wait);
763
764 if (!wake_page_match(wpq, key))
765 return 0;
766
767 rw->kiocb.ki_flags &= ~IOCB_WAITQ;
768 list_del_init(&wait->entry);
769 io_req_task_queue(req);
770 return 1;
771 }
772
773 /*
774 * This controls whether a given IO request should be armed for async page
775 * based retry. If we return false here, the request is handed to the async
776 * worker threads for retry. If we're doing buffered reads on a regular file,
777 * we prepare a private wait_page_queue entry and retry the operation. This
778 * will either succeed because the page is now uptodate and unlocked, or it
779 * will register a callback when the page is unlocked at IO completion. Through
780 * that callback, io_uring uses task_work to setup a retry of the operation.
781 * That retry will attempt the buffered read again. The retry will generally
782 * succeed, or in rare cases where it fails, we then fall back to using the
783 * async worker threads for a blocking retry.
784 */
io_rw_should_retry(struct io_kiocb * req)785 static bool io_rw_should_retry(struct io_kiocb *req)
786 {
787 struct io_async_rw *io = req->async_data;
788 struct wait_page_queue *wait = &io->wpq;
789 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
790 struct kiocb *kiocb = &rw->kiocb;
791
792 /*
793 * Never retry for NOWAIT or a request with metadata, we just complete
794 * with -EAGAIN.
795 */
796 if (req->flags & (REQ_F_NOWAIT | REQ_F_HAS_METADATA))
797 return false;
798
799 /* Only for buffered IO */
800 if (kiocb->ki_flags & (IOCB_DIRECT | IOCB_HIPRI))
801 return false;
802
803 /*
804 * just use poll if we can, and don't attempt if the fs doesn't
805 * support callback based unlocks
806 */
807 if (io_file_can_poll(req) ||
808 !(req->file->f_op->fop_flags & FOP_BUFFER_RASYNC))
809 return false;
810
811 wait->wait.func = io_async_buf_func;
812 wait->wait.private = req;
813 wait->wait.flags = 0;
814 INIT_LIST_HEAD(&wait->wait.entry);
815 kiocb->ki_flags |= IOCB_WAITQ;
816 kiocb->ki_flags &= ~IOCB_NOWAIT;
817 kiocb->ki_waitq = wait;
818 return true;
819 }
820
io_iter_do_read(struct io_rw * rw,struct iov_iter * iter)821 static inline int io_iter_do_read(struct io_rw *rw, struct iov_iter *iter)
822 {
823 struct file *file = rw->kiocb.ki_filp;
824
825 if (likely(file->f_op->read_iter))
826 return file->f_op->read_iter(&rw->kiocb, iter);
827 else if (file->f_op->read)
828 return loop_rw_iter(READ, rw, iter);
829 else
830 return -EINVAL;
831 }
832
need_complete_io(struct io_kiocb * req)833 static bool need_complete_io(struct io_kiocb *req)
834 {
835 return req->flags & REQ_F_ISREG ||
836 S_ISBLK(file_inode(req->file)->i_mode);
837 }
838
io_rw_init_file(struct io_kiocb * req,fmode_t mode,int rw_type)839 static int io_rw_init_file(struct io_kiocb *req, fmode_t mode, int rw_type)
840 {
841 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
842 struct kiocb *kiocb = &rw->kiocb;
843 struct io_ring_ctx *ctx = req->ctx;
844 struct file *file = req->file;
845 int ret;
846
847 if (unlikely(!(file->f_mode & mode)))
848 return -EBADF;
849
850 if (!(req->flags & REQ_F_FIXED_FILE))
851 req->flags |= io_file_get_flags(file);
852
853 kiocb->ki_flags = file->f_iocb_flags;
854 ret = kiocb_set_rw_flags(kiocb, rw->flags, rw_type);
855 if (unlikely(ret))
856 return ret;
857
858 /*
859 * If the file is marked O_NONBLOCK, still allow retry for it if it
860 * supports async. Otherwise it's impossible to use O_NONBLOCK files
861 * reliably. If not, or it IOCB_NOWAIT is set, don't retry.
862 */
863 if (kiocb->ki_flags & IOCB_NOWAIT ||
864 ((file->f_flags & O_NONBLOCK && !(req->flags & REQ_F_SUPPORT_NOWAIT))))
865 req->flags |= REQ_F_NOWAIT;
866
867 if (ctx->flags & IORING_SETUP_IOPOLL) {
868 if (!(kiocb->ki_flags & IOCB_DIRECT) || !file->f_op->iopoll)
869 return -EOPNOTSUPP;
870 req->flags |= REQ_F_IOPOLL;
871 kiocb->private = NULL;
872 kiocb->ki_flags |= IOCB_HIPRI;
873 req->iopoll_completed = 0;
874 if (ctx->flags & IORING_SETUP_HYBRID_IOPOLL) {
875 /* make sure every req only blocks once*/
876 req->flags &= ~REQ_F_IOPOLL_STATE;
877 req->iopoll_start = ktime_get_ns();
878 }
879 } else {
880 if (kiocb->ki_flags & IOCB_HIPRI)
881 return -EINVAL;
882 }
883
884 if (req->flags & REQ_F_HAS_METADATA) {
885 struct io_async_rw *io = req->async_data;
886
887 if (!(file->f_mode & FMODE_HAS_METADATA))
888 return -EINVAL;
889
890 /*
891 * We have a union of meta fields with wpq used for buffered-io
892 * in io_async_rw, so fail it here.
893 */
894 if (!(file->f_flags & O_DIRECT))
895 return -EOPNOTSUPP;
896 kiocb->ki_flags |= IOCB_HAS_METADATA;
897 kiocb->private = &io->meta;
898 }
899
900 return 0;
901 }
902
__io_read(struct io_kiocb * req,struct io_br_sel * sel,unsigned int issue_flags)903 static int __io_read(struct io_kiocb *req, struct io_br_sel *sel,
904 unsigned int issue_flags)
905 {
906 bool force_nonblock = issue_flags & IO_URING_F_NONBLOCK;
907 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
908 struct io_async_rw *io = req->async_data;
909 struct kiocb *kiocb = &rw->kiocb;
910 ssize_t ret;
911 loff_t *ppos;
912
913 if (req->flags & REQ_F_IMPORT_BUFFER) {
914 ret = io_rw_import_reg_vec(req, io, ITER_DEST, issue_flags);
915 if (unlikely(ret))
916 return ret;
917 } else if (io_do_buffer_select(req)) {
918 ret = io_import_rw_buffer(ITER_DEST, req, io, sel, issue_flags);
919 if (unlikely(ret < 0))
920 return ret;
921 }
922 ret = io_rw_init_file(req, FMODE_READ, READ);
923 if (unlikely(ret))
924 return ret;
925 req->cqe.res = iov_iter_count(&io->iter);
926
927 if (force_nonblock) {
928 /* If the file doesn't support async, just async punt */
929 if (unlikely(!io_file_supports_nowait(req, EPOLLIN)))
930 return -EAGAIN;
931 kiocb->ki_flags |= IOCB_NOWAIT;
932 } else {
933 /* Ensure we clear previously set non-block flag */
934 kiocb->ki_flags &= ~IOCB_NOWAIT;
935 }
936
937 ppos = io_kiocb_update_pos(req);
938
939 ret = rw_verify_area(READ, req->file, ppos, req->cqe.res);
940 if (unlikely(ret))
941 return ret;
942
943 ret = io_iter_do_read(rw, &io->iter);
944
945 /*
946 * Some file systems like to return -EOPNOTSUPP for an IOCB_NOWAIT
947 * issue, even though they should be returning -EAGAIN. To be safe,
948 * retry from blocking context for either.
949 */
950 if (ret == -EOPNOTSUPP && force_nonblock)
951 ret = -EAGAIN;
952
953 if (ret == -EAGAIN) {
954 /* If we can poll, just do that. */
955 if (io_file_can_poll(req))
956 return ret;
957 /* IOPOLL retry should happen for io-wq threads */
958 if (!force_nonblock && !(req->flags & REQ_F_IOPOLL))
959 return ret;
960 /* no retry on NONBLOCK nor RWF_NOWAIT */
961 if (req->flags & REQ_F_NOWAIT)
962 return ret;
963 ret = 0;
964 } else if (ret == -EIOCBQUEUED) {
965 return IOU_ISSUE_SKIP_COMPLETE;
966 } else if (ret == req->cqe.res || ret <= 0 || !force_nonblock ||
967 (req->flags & REQ_F_NOWAIT) || !need_complete_io(req) ||
968 (issue_flags & IO_URING_F_MULTISHOT)) {
969 /* read all, failed, already did sync or don't want to retry */
970 return ret;
971 }
972
973 /*
974 * Don't depend on the iter state matching what was consumed, or being
975 * untouched in case of error. Restore it and we'll advance it
976 * manually if we need to.
977 */
978 iov_iter_restore(&io->iter, &io->iter_state);
979 io_meta_restore(io, kiocb);
980
981 do {
982 /*
983 * We end up here because of a partial read, either from
984 * above or inside this loop. Advance the iter by the bytes
985 * that were consumed.
986 */
987 iov_iter_advance(&io->iter, ret);
988 if (!iov_iter_count(&io->iter))
989 break;
990 io->bytes_done += ret;
991 iov_iter_save_state(&io->iter, &io->iter_state);
992
993 /* if we can retry, do so with the callbacks armed */
994 if (!io_rw_should_retry(req)) {
995 kiocb->ki_flags &= ~IOCB_WAITQ;
996 return -EAGAIN;
997 }
998
999 req->cqe.res = iov_iter_count(&io->iter);
1000 /*
1001 * Now retry read with the IOCB_WAITQ parts set in the iocb. If
1002 * we get -EIOCBQUEUED, then we'll get a notification when the
1003 * desired page gets unlocked. We can also get a partial read
1004 * here, and if we do, then just retry at the new offset.
1005 */
1006 ret = io_iter_do_read(rw, &io->iter);
1007 if (ret == -EIOCBQUEUED)
1008 return IOU_ISSUE_SKIP_COMPLETE;
1009 /* we got some bytes, but not all. retry. */
1010 kiocb->ki_flags &= ~IOCB_WAITQ;
1011 iov_iter_restore(&io->iter, &io->iter_state);
1012 } while (ret > 0);
1013
1014 return ret;
1015 }
1016
io_read(struct io_kiocb * req,unsigned int issue_flags)1017 int io_read(struct io_kiocb *req, unsigned int issue_flags)
1018 {
1019 struct io_br_sel sel = { };
1020 int ret;
1021
1022 ret = __io_read(req, &sel, issue_flags);
1023 if (ret >= 0)
1024 return kiocb_done(req, ret, &sel, issue_flags);
1025
1026 if (req->flags & REQ_F_BUFFERS_COMMIT)
1027 io_kbuf_recycle(req, sel.buf_list, issue_flags);
1028
1029 return io_fixup_restart_res(ret);
1030 }
1031
io_read_mshot(struct io_kiocb * req,unsigned int issue_flags)1032 int io_read_mshot(struct io_kiocb *req, unsigned int issue_flags)
1033 {
1034 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
1035 struct io_br_sel sel = { };
1036 unsigned int cflags = 0;
1037 int ret;
1038
1039 /*
1040 * Multishot MUST be used on a pollable file
1041 */
1042 if (!io_file_can_poll(req))
1043 return -EBADFD;
1044
1045 /* make it sync, multishot doesn't support async execution */
1046 rw->kiocb.ki_complete = NULL;
1047 ret = __io_read(req, &sel, issue_flags);
1048
1049 /*
1050 * If we get -EAGAIN, recycle our buffer and just let normal poll
1051 * handling arm it.
1052 */
1053 if (ret == -EAGAIN) {
1054 /*
1055 * Reset rw->len to 0 again to avoid clamping future mshot
1056 * reads, in case the buffer size varies.
1057 */
1058 if (io_kbuf_recycle(req, sel.buf_list, issue_flags))
1059 rw->len = 0;
1060 return IOU_RETRY;
1061 } else if (ret <= 0) {
1062 io_kbuf_recycle(req, sel.buf_list, issue_flags);
1063 if (ret < 0) {
1064 ret = io_fixup_restart_res(ret);
1065 req_set_fail(req);
1066 }
1067 } else if (!(req->flags & REQ_F_APOLL_MULTISHOT)) {
1068 cflags = io_put_kbuf(req, ret, sel.buf_list);
1069 } else {
1070 /*
1071 * Any successful return value will keep the multishot read
1072 * armed, if it's still set. Put our buffer and post a CQE. If
1073 * we fail to post a CQE, or multishot is no longer set, then
1074 * jump to the termination path. This request is then done.
1075 */
1076 cflags = io_put_kbuf(req, ret, sel.buf_list);
1077 rw->len = 0; /* similarly to above, reset len to 0 */
1078
1079 if (io_req_post_cqe(req, ret, cflags | IORING_CQE_F_MORE)) {
1080 if (issue_flags & IO_URING_F_MULTISHOT)
1081 /*
1082 * Force retry, as we might have more data to
1083 * be read and otherwise it won't get retried
1084 * until (if ever) another poll is triggered.
1085 */
1086 io_poll_multishot_retry(req);
1087
1088 return IOU_RETRY;
1089 }
1090 }
1091
1092 /*
1093 * Either an error, or we've hit overflow posting the CQE. For any
1094 * multishot request, hitting overflow will terminate it.
1095 */
1096 io_req_set_res(req, ret, cflags);
1097 io_req_rw_cleanup(req, issue_flags);
1098 return IOU_COMPLETE;
1099 }
1100
io_kiocb_start_write(struct io_kiocb * req,struct kiocb * kiocb)1101 static bool io_kiocb_start_write(struct io_kiocb *req, struct kiocb *kiocb)
1102 {
1103 struct inode *inode;
1104 bool ret;
1105
1106 if (!(req->flags & REQ_F_ISREG))
1107 return true;
1108 if (!(kiocb->ki_flags & IOCB_NOWAIT)) {
1109 kiocb_start_write(kiocb);
1110 return true;
1111 }
1112
1113 inode = file_inode(kiocb->ki_filp);
1114 ret = sb_start_write_trylock(inode->i_sb);
1115 if (ret)
1116 __sb_writers_release(inode->i_sb, SB_FREEZE_WRITE);
1117 return ret;
1118 }
1119
io_write(struct io_kiocb * req,unsigned int issue_flags)1120 int io_write(struct io_kiocb *req, unsigned int issue_flags)
1121 {
1122 bool force_nonblock = issue_flags & IO_URING_F_NONBLOCK;
1123 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
1124 struct io_async_rw *io = req->async_data;
1125 struct kiocb *kiocb = &rw->kiocb;
1126 ssize_t ret, ret2;
1127 loff_t *ppos;
1128
1129 if (req->flags & REQ_F_IMPORT_BUFFER) {
1130 ret = io_rw_import_reg_vec(req, io, ITER_SOURCE, issue_flags);
1131 if (unlikely(ret))
1132 return ret;
1133 }
1134
1135 ret = io_rw_init_file(req, FMODE_WRITE, WRITE);
1136 if (unlikely(ret))
1137 return ret;
1138 req->cqe.res = iov_iter_count(&io->iter);
1139
1140 if (force_nonblock) {
1141 /* If the file doesn't support async, just async punt */
1142 if (unlikely(!io_file_supports_nowait(req, EPOLLOUT)))
1143 goto ret_eagain;
1144
1145 /* Check if we can support NOWAIT. */
1146 if (!(kiocb->ki_flags & IOCB_DIRECT) &&
1147 !(req->file->f_op->fop_flags & FOP_BUFFER_WASYNC) &&
1148 (req->flags & REQ_F_ISREG))
1149 goto ret_eagain;
1150
1151 kiocb->ki_flags |= IOCB_NOWAIT;
1152 } else {
1153 /* Ensure we clear previously set non-block flag */
1154 kiocb->ki_flags &= ~IOCB_NOWAIT;
1155 }
1156
1157 ppos = io_kiocb_update_pos(req);
1158
1159 ret = rw_verify_area(WRITE, req->file, ppos, req->cqe.res);
1160 if (unlikely(ret))
1161 return ret;
1162
1163 if (unlikely(!io_kiocb_start_write(req, kiocb)))
1164 return -EAGAIN;
1165 kiocb->ki_flags |= IOCB_WRITE;
1166
1167 if (likely(req->file->f_op->write_iter))
1168 ret2 = req->file->f_op->write_iter(kiocb, &io->iter);
1169 else if (req->file->f_op->write)
1170 ret2 = loop_rw_iter(WRITE, rw, &io->iter);
1171 else
1172 ret2 = -EINVAL;
1173
1174 /*
1175 * Raw bdev writes will return -EOPNOTSUPP for IOCB_NOWAIT. Just
1176 * retry them without IOCB_NOWAIT.
1177 */
1178 if (ret2 == -EOPNOTSUPP && (kiocb->ki_flags & IOCB_NOWAIT))
1179 ret2 = -EAGAIN;
1180 /* no retry on NONBLOCK nor RWF_NOWAIT */
1181 if (ret2 == -EAGAIN && (req->flags & REQ_F_NOWAIT))
1182 goto done;
1183 if (!force_nonblock || ret2 != -EAGAIN) {
1184 /* IOPOLL retry should happen for io-wq threads */
1185 if (ret2 == -EAGAIN && (req->flags & REQ_F_IOPOLL))
1186 goto ret_eagain;
1187
1188 if (ret2 != req->cqe.res && ret2 >= 0 && need_complete_io(req)) {
1189 trace_io_uring_short_write(req->ctx, kiocb->ki_pos - ret2,
1190 req->cqe.res, ret2);
1191
1192 /* This is a partial write. The file pos has already been
1193 * updated, setup the async struct to complete the request
1194 * in the worker. Also update bytes_done to account for
1195 * the bytes already written.
1196 */
1197 iov_iter_save_state(&io->iter, &io->iter_state);
1198 io->bytes_done += ret2;
1199
1200 if (kiocb->ki_flags & IOCB_WRITE)
1201 io_req_end_write(req);
1202 return -EAGAIN;
1203 }
1204 done:
1205 return kiocb_done(req, ret2, NULL, issue_flags);
1206 } else {
1207 ret_eagain:
1208 iov_iter_restore(&io->iter, &io->iter_state);
1209 io_meta_restore(io, kiocb);
1210 if (kiocb->ki_flags & IOCB_WRITE)
1211 io_req_end_write(req);
1212 return -EAGAIN;
1213 }
1214 }
1215
io_read_fixed(struct io_kiocb * req,unsigned int issue_flags)1216 int io_read_fixed(struct io_kiocb *req, unsigned int issue_flags)
1217 {
1218 int ret;
1219
1220 ret = io_init_rw_fixed(req, issue_flags, ITER_DEST);
1221 if (unlikely(ret))
1222 return ret;
1223
1224 return io_read(req, issue_flags);
1225 }
1226
io_write_fixed(struct io_kiocb * req,unsigned int issue_flags)1227 int io_write_fixed(struct io_kiocb *req, unsigned int issue_flags)
1228 {
1229 int ret;
1230
1231 ret = io_init_rw_fixed(req, issue_flags, ITER_SOURCE);
1232 if (unlikely(ret))
1233 return ret;
1234
1235 return io_write(req, issue_flags);
1236 }
1237
io_rw_fail(struct io_kiocb * req)1238 void io_rw_fail(struct io_kiocb *req)
1239 {
1240 int res;
1241
1242 res = io_fixup_rw_res(req, req->cqe.res);
1243 io_req_set_res(req, res, req->cqe.flags);
1244 }
1245
io_uring_classic_poll(struct io_kiocb * req,struct io_comp_batch * iob,unsigned int poll_flags)1246 static int io_uring_classic_poll(struct io_kiocb *req, struct io_comp_batch *iob,
1247 unsigned int poll_flags)
1248 {
1249 struct file *file = req->file;
1250
1251 if (io_is_uring_cmd(req)) {
1252 struct io_uring_cmd *ioucmd;
1253
1254 ioucmd = io_kiocb_to_cmd(req, struct io_uring_cmd);
1255 return file->f_op->uring_cmd_iopoll(ioucmd, iob, poll_flags);
1256 } else {
1257 struct io_rw *rw = io_kiocb_to_cmd(req, struct io_rw);
1258
1259 return file->f_op->iopoll(&rw->kiocb, iob, poll_flags);
1260 }
1261 }
1262
io_hybrid_iopoll_delay(struct io_ring_ctx * ctx,struct io_kiocb * req)1263 static u64 io_hybrid_iopoll_delay(struct io_ring_ctx *ctx, struct io_kiocb *req)
1264 {
1265 struct hrtimer_sleeper timer;
1266 enum hrtimer_mode mode;
1267 ktime_t kt;
1268 u64 sleep_time;
1269
1270 if (req->flags & REQ_F_IOPOLL_STATE)
1271 return 0;
1272
1273 if (ctx->hybrid_poll_time == LLONG_MAX)
1274 return 0;
1275
1276 /* Using half the running time to do schedule */
1277 sleep_time = ctx->hybrid_poll_time / 2;
1278
1279 kt = ktime_set(0, sleep_time);
1280 req->flags |= REQ_F_IOPOLL_STATE;
1281
1282 mode = HRTIMER_MODE_REL;
1283 hrtimer_setup_sleeper_on_stack(&timer, CLOCK_MONOTONIC, mode);
1284 hrtimer_set_expires(&timer.timer, kt);
1285 set_current_state(TASK_INTERRUPTIBLE);
1286 hrtimer_sleeper_start_expires(&timer, mode);
1287
1288 if (timer.task)
1289 io_schedule();
1290
1291 hrtimer_cancel(&timer.timer);
1292 __set_current_state(TASK_RUNNING);
1293 destroy_hrtimer_on_stack(&timer.timer);
1294 return sleep_time;
1295 }
1296
io_uring_hybrid_poll(struct io_kiocb * req,struct io_comp_batch * iob,unsigned int poll_flags)1297 static int io_uring_hybrid_poll(struct io_kiocb *req,
1298 struct io_comp_batch *iob, unsigned int poll_flags)
1299 {
1300 struct io_ring_ctx *ctx = req->ctx;
1301 u64 runtime, sleep_time, iopoll_start;
1302 int ret;
1303
1304 iopoll_start = READ_ONCE(req->iopoll_start);
1305 sleep_time = io_hybrid_iopoll_delay(ctx, req);
1306 ret = io_uring_classic_poll(req, iob, poll_flags);
1307 runtime = ktime_get_ns() - iopoll_start - sleep_time;
1308
1309 /*
1310 * Use minimum sleep time if we're polling devices with different
1311 * latencies. We could get more completions from the faster ones.
1312 */
1313 if (ctx->hybrid_poll_time > runtime)
1314 ctx->hybrid_poll_time = runtime;
1315
1316 return ret;
1317 }
1318
io_do_iopoll(struct io_ring_ctx * ctx,bool force_nonspin)1319 int io_do_iopoll(struct io_ring_ctx *ctx, bool force_nonspin)
1320 {
1321 unsigned int poll_flags = 0;
1322 DEFINE_IO_COMP_BATCH(iob);
1323 struct io_kiocb *req, *tmp;
1324 int nr_events = 0;
1325
1326 /*
1327 * Store the polling io_ring_ctx so drivers can detect if they're
1328 * completing a request in the same ring context that's polling.
1329 */
1330 iob.poll_ctx = ctx;
1331
1332 /*
1333 * Only spin for completions if we don't have multiple devices hanging
1334 * off our complete list.
1335 */
1336 if (ctx->poll_multi_queue || force_nonspin)
1337 poll_flags |= BLK_POLL_ONESHOT;
1338
1339 list_for_each_entry(req, &ctx->iopoll_list, iopoll_node) {
1340 int ret;
1341
1342 /*
1343 * Move completed and retryable entries to our local lists.
1344 * If we find a request that requires polling, break out
1345 * and complete those lists first, if we have entries there.
1346 */
1347 if (READ_ONCE(req->iopoll_completed))
1348 break;
1349
1350 if (ctx->flags & IORING_SETUP_HYBRID_IOPOLL)
1351 ret = io_uring_hybrid_poll(req, &iob, poll_flags);
1352 else
1353 ret = io_uring_classic_poll(req, &iob, poll_flags);
1354
1355 if (unlikely(ret < 0))
1356 return ret;
1357 else if (ret)
1358 poll_flags |= BLK_POLL_ONESHOT;
1359
1360 /* iopoll may have completed current req */
1361 if (!rq_list_empty(&iob.req_list) ||
1362 READ_ONCE(req->iopoll_completed))
1363 break;
1364 }
1365
1366 if (!rq_list_empty(&iob.req_list))
1367 iob.complete(&iob);
1368
1369 list_for_each_entry_safe(req, tmp, &ctx->iopoll_list, iopoll_node) {
1370 /* order with io_complete_rw_iopoll(), e.g. ->result updates */
1371 if (!smp_load_acquire(&req->iopoll_completed))
1372 continue;
1373 list_del(&req->iopoll_node);
1374 wq_list_add_tail(&req->comp_list, &ctx->submit_state.compl_reqs);
1375 nr_events++;
1376 req->cqe.flags = io_put_kbuf(req, max(req->cqe.res, 0), NULL);
1377 if (!io_is_uring_cmd(req))
1378 io_req_rw_cleanup(req, 0);
1379 }
1380 if (nr_events)
1381 __io_submit_flush_completions(ctx);
1382 return nr_events;
1383 }
1384
io_rw_cache_free(const void * entry)1385 void io_rw_cache_free(const void *entry)
1386 {
1387 struct io_async_rw *rw = (struct io_async_rw *) entry;
1388
1389 io_vec_free(&rw->vec);
1390 kfree(rw);
1391 }
1392