1 /* SPDX-License-Identifier: GPL-2.0 */
2 #ifndef IOU_CORE_H
3 #define IOU_CORE_H
4
5 #include <linux/errno.h>
6 #include <linux/lockdep.h>
7 #include <linux/resume_user_mode.h>
8 #include <linux/poll.h>
9 #include <linux/io_uring_types.h>
10 #include <uapi/linux/eventpoll.h>
11 #include "alloc_cache.h"
12 #include "io-wq.h"
13 #include "slist.h"
14 #include "tw.h"
15 #include "opdef.h"
16
17 #ifndef CREATE_TRACE_POINTS
18 #include <trace/events/io_uring.h>
19 #endif
20
21 struct io_rings_layout {
22 /* size of CQ + headers + SQ offset array */
23 size_t rings_size;
24 size_t sq_size;
25
26 size_t sq_array_offset;
27 };
28
29 struct io_ctx_config {
30 struct io_uring_params p;
31 struct io_rings_layout layout;
32 struct io_uring_params __user *uptr;
33 };
34
35 #define IORING_FEAT_FLAGS (IORING_FEAT_SINGLE_MMAP |\
36 IORING_FEAT_NODROP |\
37 IORING_FEAT_SUBMIT_STABLE |\
38 IORING_FEAT_RW_CUR_POS |\
39 IORING_FEAT_CUR_PERSONALITY |\
40 IORING_FEAT_FAST_POLL |\
41 IORING_FEAT_POLL_32BITS |\
42 IORING_FEAT_SQPOLL_NONFIXED |\
43 IORING_FEAT_EXT_ARG |\
44 IORING_FEAT_NATIVE_WORKERS |\
45 IORING_FEAT_RSRC_TAGS |\
46 IORING_FEAT_CQE_SKIP |\
47 IORING_FEAT_LINKED_FILE |\
48 IORING_FEAT_REG_REG_RING |\
49 IORING_FEAT_RECVSEND_BUNDLE |\
50 IORING_FEAT_MIN_TIMEOUT |\
51 IORING_FEAT_RW_ATTR |\
52 IORING_FEAT_NO_IOWAIT)
53
54 #define IORING_SETUP_FLAGS (IORING_SETUP_IOPOLL |\
55 IORING_SETUP_SQPOLL |\
56 IORING_SETUP_SQ_AFF |\
57 IORING_SETUP_CQSIZE |\
58 IORING_SETUP_CLAMP |\
59 IORING_SETUP_ATTACH_WQ |\
60 IORING_SETUP_R_DISABLED |\
61 IORING_SETUP_SUBMIT_ALL |\
62 IORING_SETUP_COOP_TASKRUN |\
63 IORING_SETUP_TASKRUN_FLAG |\
64 IORING_SETUP_SQE128 |\
65 IORING_SETUP_CQE32 |\
66 IORING_SETUP_SINGLE_ISSUER |\
67 IORING_SETUP_DEFER_TASKRUN |\
68 IORING_SETUP_NO_MMAP |\
69 IORING_SETUP_REGISTERED_FD_ONLY |\
70 IORING_SETUP_NO_SQARRAY |\
71 IORING_SETUP_HYBRID_IOPOLL |\
72 IORING_SETUP_CQE_MIXED |\
73 IORING_SETUP_SQE_MIXED |\
74 IORING_SETUP_SQ_REWIND)
75
76 #define IORING_ENTER_FLAGS (IORING_ENTER_GETEVENTS |\
77 IORING_ENTER_SQ_WAKEUP |\
78 IORING_ENTER_SQ_WAIT |\
79 IORING_ENTER_EXT_ARG |\
80 IORING_ENTER_REGISTERED_RING |\
81 IORING_ENTER_ABS_TIMER |\
82 IORING_ENTER_EXT_ARG_REG |\
83 IORING_ENTER_NO_IOWAIT)
84
85
86 #define SQE_VALID_FLAGS (IOSQE_FIXED_FILE |\
87 IOSQE_IO_DRAIN |\
88 IOSQE_IO_LINK |\
89 IOSQE_IO_HARDLINK |\
90 IOSQE_ASYNC |\
91 IOSQE_BUFFER_SELECT |\
92 IOSQE_CQE_SKIP_SUCCESS)
93
94 #define IO_REQ_LINK_FLAGS (REQ_F_LINK | REQ_F_HARDLINK)
95
96 /*
97 * Complaint timeout for io_uring cancelation exits, and for io-wq exit
98 * worker waiting.
99 */
100 #define IO_URING_EXIT_WAIT_MAX (HZ * 60 * 5)
101
102 enum {
103 IOU_COMPLETE = 0,
104
105 IOU_ISSUE_SKIP_COMPLETE = -EIOCBQUEUED,
106
107 /*
108 * The request has more work to do and should be retried. io_uring will
109 * attempt to wait on the file for eligible opcodes, but otherwise
110 * it'll be handed to iowq for blocking execution. It works for normal
111 * requests as well as for the multi shot mode.
112 */
113 IOU_RETRY = -EAGAIN,
114
115 /*
116 * Requeue the task_work to restart operations on this request. The
117 * actual value isn't important, should just be not an otherwise
118 * valid error code, yet less than -MAX_ERRNO and valid internally.
119 */
120 IOU_REQUEUE = -3072,
121 };
122
123 struct io_defer_entry {
124 struct list_head list;
125 struct io_kiocb *req;
126 };
127
128 struct io_wait_queue {
129 struct wait_queue_entry wq;
130 struct io_ring_ctx *ctx;
131 unsigned cq_tail;
132 unsigned cq_min_tail;
133 unsigned nr_timeouts;
134 int hit_timeout;
135 ktime_t min_timeout;
136 ktime_t timeout;
137 struct hrtimer t;
138
139 #ifdef CONFIG_NET_RX_BUSY_POLL
140 ktime_t napi_busy_poll_dt;
141 bool napi_prefer_busy_poll;
142 #endif
143 };
144
io_get_rings(struct io_ring_ctx * ctx)145 static inline struct io_rings *io_get_rings(struct io_ring_ctx *ctx)
146 {
147 return rcu_dereference_check(ctx->rings_rcu,
148 lockdep_is_held(&ctx->uring_lock) ||
149 lockdep_is_held(&ctx->completion_lock));
150 }
151
io_should_wake(struct io_wait_queue * iowq)152 static inline bool io_should_wake(struct io_wait_queue *iowq)
153 {
154 struct io_ring_ctx *ctx = iowq->ctx;
155 struct io_rings *rings;
156 int dist;
157
158 guard(rcu)();
159 rings = io_get_rings(ctx);
160
161 /*
162 * Wake up if we have enough events, or if a timeout occurred since we
163 * started waiting. For timeouts, we always want to return to userspace,
164 * regardless of event count.
165 */
166 dist = READ_ONCE(rings->cq.tail) - (int) iowq->cq_tail;
167 return dist >= 0 || atomic_read(&ctx->cq_timeouts) != iowq->nr_timeouts;
168 }
169
170 #define IORING_MAX_ENTRIES 32768
171 #define IORING_MAX_CQ_ENTRIES (2 * IORING_MAX_ENTRIES)
172
173 int io_prepare_config(struct io_ctx_config *config);
174
175 bool io_cqe_cache_refill(struct io_ring_ctx *ctx, bool overflow, bool cqe32);
176 void io_req_defer_failed(struct io_kiocb *req, s32 res);
177 bool io_post_aux_cqe(struct io_ring_ctx *ctx, u64 user_data, s32 res, u32 cflags);
178 void io_add_aux_cqe(struct io_ring_ctx *ctx, u64 user_data, s32 res, u32 cflags);
179 bool io_req_post_cqe(struct io_kiocb *req, s32 res, u32 cflags);
180 bool io_req_post_cqe32(struct io_kiocb *req, struct io_uring_cqe src_cqe[2]);
181 void __io_commit_cqring_flush(struct io_ring_ctx *ctx);
182
183 unsigned io_linked_nr(struct io_kiocb *req);
184 void io_req_track_inflight(struct io_kiocb *req);
185 struct file *io_file_get_normal(struct io_kiocb *req, int fd);
186 struct file *io_file_get_fixed(struct io_kiocb *req, int fd,
187 unsigned issue_flags);
188
189 void io_req_task_queue(struct io_kiocb *req);
190 void io_req_task_complete(struct io_tw_req tw_req, io_tw_token_t tw);
191 void io_req_task_queue_fail(struct io_kiocb *req, int ret);
192 void io_req_task_submit(struct io_tw_req tw_req, io_tw_token_t tw);
193 __cold void io_uring_drop_tctx_refs(struct task_struct *task);
194
195 int io_ring_add_registered_file(struct io_uring_task *tctx, struct file *file,
196 int start, int end);
197 void io_req_queue_iowq(struct io_kiocb *req);
198
199 int io_poll_issue(struct io_kiocb *req, io_tw_token_t tw);
200 int io_submit_sqes(struct io_ring_ctx *ctx, unsigned int nr);
201 int io_do_iopoll(struct io_ring_ctx *ctx, bool force_nonspin);
202 __cold void io_iopoll_try_reap_events(struct io_ring_ctx *ctx);
203 void __io_submit_flush_completions(struct io_ring_ctx *ctx);
204
205 struct io_wq_work *io_wq_free_work(struct io_wq_work *work);
206 void io_wq_submit_work(struct io_wq_work *work);
207
208 void io_free_req(struct io_kiocb *req);
209 void io_queue_next(struct io_kiocb *req);
210 void io_task_refs_refill(struct io_uring_task *tctx);
211 bool __io_alloc_req_refill(struct io_ring_ctx *ctx);
212
213 void io_activate_pollwq(struct io_ring_ctx *ctx);
214 void io_restriction_clone(struct io_restriction *dst, struct io_restriction *src);
215
io_lockdep_assert_cq_locked(struct io_ring_ctx * ctx)216 static inline void io_lockdep_assert_cq_locked(struct io_ring_ctx *ctx)
217 {
218 #if defined(CONFIG_PROVE_LOCKING)
219 lockdep_assert(in_task());
220
221 if (ctx->flags & IORING_SETUP_DEFER_TASKRUN)
222 lockdep_assert_held(&ctx->uring_lock);
223
224 if (ctx->flags & IORING_SETUP_IOPOLL) {
225 lockdep_assert_held(&ctx->uring_lock);
226 } else if (!ctx->task_complete) {
227 lockdep_assert_held(&ctx->completion_lock);
228 } else if (ctx->submitter_task) {
229 /*
230 * ->submitter_task may be NULL and we can still post a CQE,
231 * if the ring has been setup with IORING_SETUP_R_DISABLED.
232 * Not from an SQE, as those cannot be submitted, but via
233 * updating tagged resources.
234 */
235 if (!percpu_ref_is_dying(&ctx->refs))
236 lockdep_assert(current == ctx->submitter_task);
237 }
238 #endif
239 }
240
io_is_compat(struct io_ring_ctx * ctx)241 static inline bool io_is_compat(struct io_ring_ctx *ctx)
242 {
243 return IS_ENABLED(CONFIG_COMPAT) && unlikely(ctx->compat);
244 }
245
io_submit_flush_completions(struct io_ring_ctx * ctx)246 static inline void io_submit_flush_completions(struct io_ring_ctx *ctx)
247 {
248 if (!wq_list_empty(&ctx->submit_state.compl_reqs) ||
249 ctx->submit_state.cq_flush)
250 __io_submit_flush_completions(ctx);
251 }
252
253 #define io_for_each_link(pos, head) \
254 for (pos = (head); pos; pos = pos->link)
255
io_get_cqe_overflow(struct io_ring_ctx * ctx,struct io_uring_cqe ** ret,bool overflow,bool cqe32)256 static inline bool io_get_cqe_overflow(struct io_ring_ctx *ctx,
257 struct io_uring_cqe **ret,
258 bool overflow, bool cqe32)
259 {
260 io_lockdep_assert_cq_locked(ctx);
261
262 if (unlikely(ctx->cqe_sentinel - ctx->cqe_cached < (cqe32 + 1))) {
263 if (unlikely(!io_cqe_cache_refill(ctx, overflow, cqe32)))
264 return false;
265 }
266 *ret = ctx->cqe_cached;
267 ctx->cached_cq_tail++;
268 ctx->cqe_cached++;
269 if (ctx->flags & IORING_SETUP_CQE32) {
270 ctx->cqe_cached++;
271 } else if (cqe32 && ctx->flags & IORING_SETUP_CQE_MIXED) {
272 ctx->cqe_cached++;
273 ctx->cached_cq_tail++;
274 }
275 WARN_ON_ONCE(ctx->cqe_cached > ctx->cqe_sentinel);
276 return true;
277 }
278
io_get_cqe(struct io_ring_ctx * ctx,struct io_uring_cqe ** ret,bool cqe32)279 static inline bool io_get_cqe(struct io_ring_ctx *ctx, struct io_uring_cqe **ret,
280 bool cqe32)
281 {
282 return io_get_cqe_overflow(ctx, ret, false, cqe32);
283 }
284
io_defer_get_uncommited_cqe(struct io_ring_ctx * ctx,struct io_uring_cqe ** cqe_ret)285 static inline bool io_defer_get_uncommited_cqe(struct io_ring_ctx *ctx,
286 struct io_uring_cqe **cqe_ret)
287 {
288 io_lockdep_assert_cq_locked(ctx);
289
290 ctx->submit_state.cq_flush = true;
291 return io_get_cqe(ctx, cqe_ret, ctx->flags & IORING_SETUP_CQE_MIXED);
292 }
293
io_fill_cqe_req(struct io_ring_ctx * ctx,struct io_kiocb * req)294 static __always_inline bool io_fill_cqe_req(struct io_ring_ctx *ctx,
295 struct io_kiocb *req)
296 {
297 bool is_cqe32 = req->cqe.flags & IORING_CQE_F_32;
298 struct io_uring_cqe *cqe;
299
300 /*
301 * If we can't get a cq entry, userspace overflowed the submission
302 * (by quite a lot).
303 */
304 if (unlikely(!io_get_cqe(ctx, &cqe, is_cqe32)))
305 return false;
306
307 memcpy(cqe, &req->cqe, sizeof(*cqe));
308 if (ctx->flags & IORING_SETUP_CQE32 || is_cqe32) {
309 memcpy(cqe->big_cqe, &req->big_cqe, sizeof(*cqe));
310 memset(&req->big_cqe, 0, sizeof(req->big_cqe));
311 }
312
313 if (trace_io_uring_complete_enabled())
314 trace_io_uring_complete(req->ctx, req, cqe);
315 return true;
316 }
317
req_set_fail(struct io_kiocb * req)318 static inline void req_set_fail(struct io_kiocb *req)
319 {
320 req->flags |= REQ_F_FAIL;
321 if (req->flags & REQ_F_CQE_SKIP) {
322 req->flags &= ~REQ_F_CQE_SKIP;
323 req->flags |= REQ_F_SKIP_LINK_CQES;
324 }
325 }
326
io_req_set_res(struct io_kiocb * req,s32 res,u32 cflags)327 static inline void io_req_set_res(struct io_kiocb *req, s32 res, u32 cflags)
328 {
329 req->cqe.res = res;
330 req->cqe.flags = cflags;
331 }
332
ctx_cqe32_flags(struct io_ring_ctx * ctx)333 static inline u32 ctx_cqe32_flags(struct io_ring_ctx *ctx)
334 {
335 if (ctx->flags & IORING_SETUP_CQE_MIXED)
336 return IORING_CQE_F_32;
337 return 0;
338 }
339
io_req_set_res32(struct io_kiocb * req,s32 res,u32 cflags,__u64 extra1,__u64 extra2)340 static inline void io_req_set_res32(struct io_kiocb *req, s32 res, u32 cflags,
341 __u64 extra1, __u64 extra2)
342 {
343 req->cqe.res = res;
344 req->cqe.flags = cflags | ctx_cqe32_flags(req->ctx);
345 req->big_cqe.extra1 = extra1;
346 req->big_cqe.extra2 = extra2;
347 }
348
io_uring_alloc_async_data(struct io_alloc_cache * cache,struct io_kiocb * req)349 static inline void *io_uring_alloc_async_data(struct io_alloc_cache *cache,
350 struct io_kiocb *req)
351 {
352 if (cache) {
353 req->async_data = io_cache_alloc(cache, GFP_KERNEL);
354 } else {
355 const struct io_issue_def *def = &io_issue_defs[req->opcode];
356
357 WARN_ON_ONCE(!def->async_size);
358 req->async_data = kmalloc(def->async_size, GFP_KERNEL);
359 }
360 if (req->async_data)
361 req->flags |= REQ_F_ASYNC_DATA;
362 return req->async_data;
363 }
364
req_has_async_data(struct io_kiocb * req)365 static inline bool req_has_async_data(struct io_kiocb *req)
366 {
367 return req->flags & REQ_F_ASYNC_DATA;
368 }
369
io_req_async_data_clear(struct io_kiocb * req,io_req_flags_t extra_flags)370 static inline void io_req_async_data_clear(struct io_kiocb *req,
371 io_req_flags_t extra_flags)
372 {
373 req->flags &= ~(REQ_F_ASYNC_DATA|extra_flags);
374 req->async_data = NULL;
375 }
376
io_req_async_data_free(struct io_kiocb * req)377 static inline void io_req_async_data_free(struct io_kiocb *req)
378 {
379 kfree(req->async_data);
380 io_req_async_data_clear(req, 0);
381 }
382
io_put_file(struct io_kiocb * req)383 static inline void io_put_file(struct io_kiocb *req)
384 {
385 if (!(req->flags & REQ_F_FIXED_FILE) && req->file)
386 fput(req->file);
387 }
388
io_ring_submit_unlock(struct io_ring_ctx * ctx,unsigned issue_flags)389 static inline void io_ring_submit_unlock(struct io_ring_ctx *ctx,
390 unsigned issue_flags)
391 {
392 lockdep_assert_held(&ctx->uring_lock);
393 if (unlikely(issue_flags & IO_URING_F_UNLOCKED))
394 mutex_unlock(&ctx->uring_lock);
395 }
396
io_ring_submit_lock(struct io_ring_ctx * ctx,unsigned issue_flags)397 static inline void io_ring_submit_lock(struct io_ring_ctx *ctx,
398 unsigned issue_flags)
399 {
400 /*
401 * "Normal" inline submissions always hold the uring_lock, since we
402 * grab it from the system call. Same is true for the SQPOLL offload.
403 * The only exception is when we've detached the request and issue it
404 * from an async worker thread, grab the lock for that case.
405 */
406 if (unlikely(issue_flags & IO_URING_F_UNLOCKED))
407 mutex_lock(&ctx->uring_lock);
408 lockdep_assert_held(&ctx->uring_lock);
409 }
410
io_commit_cqring(struct io_ring_ctx * ctx)411 static inline void io_commit_cqring(struct io_ring_ctx *ctx)
412 {
413 /* order cqe stores with ring update */
414 smp_store_release(&ctx->rings->cq.tail, ctx->cached_cq_tail);
415 }
416
__io_wq_wake(struct wait_queue_head * wq)417 static inline void __io_wq_wake(struct wait_queue_head *wq)
418 {
419 /*
420 *
421 * Pass in EPOLLIN|EPOLL_URING_WAKE as the poll wakeup key. The latter
422 * set in the mask so that if we recurse back into our own poll
423 * waitqueue handlers, we know we have a dependency between eventfd or
424 * epoll and should terminate multishot poll at that point.
425 */
426 if (wq_has_sleeper(wq))
427 __wake_up(wq, TASK_NORMAL, 0, poll_to_key(EPOLL_URING_WAKE | EPOLLIN));
428 }
429
io_poll_wq_wake(struct io_ring_ctx * ctx)430 static inline void io_poll_wq_wake(struct io_ring_ctx *ctx)
431 {
432 __io_wq_wake(&ctx->poll_wq);
433 }
434
io_cqring_wake(struct io_ring_ctx * ctx)435 static inline void io_cqring_wake(struct io_ring_ctx *ctx)
436 {
437 /*
438 * Trigger waitqueue handler on all waiters on our waitqueue. This
439 * won't necessarily wake up all the tasks, io_should_wake() will make
440 * that decision.
441 */
442
443 __io_wq_wake(&ctx->cq_wait);
444 }
445
__io_sqring_full(struct io_ring_ctx * ctx)446 static inline bool __io_sqring_full(struct io_ring_ctx *ctx)
447 {
448 struct io_rings *r = io_get_rings(ctx);
449
450 /*
451 * SQPOLL must use the actual sqring head, as using the cached_sq_head
452 * is race prone if the SQPOLL thread has grabbed entries but not yet
453 * committed them to the ring. For !SQPOLL, this doesn't matter, but
454 * since this helper is just used for SQPOLL sqring waits (or POLLOUT),
455 * just read the actual sqring head unconditionally.
456 */
457 return READ_ONCE(r->sq.tail) - READ_ONCE(r->sq.head) == ctx->sq_entries;
458 }
459
io_sqring_full(struct io_ring_ctx * ctx)460 static inline bool io_sqring_full(struct io_ring_ctx *ctx)
461 {
462 guard(rcu)();
463 return __io_sqring_full(ctx);
464 }
465
__io_sqring_entries(struct io_ring_ctx * ctx)466 static inline unsigned int __io_sqring_entries(struct io_ring_ctx *ctx)
467 {
468 struct io_rings *rings = io_get_rings(ctx);
469 unsigned int entries;
470
471 /* make sure SQ entry isn't read before tail */
472 entries = smp_load_acquire(&rings->sq.tail) - ctx->cached_sq_head;
473 return min(entries, ctx->sq_entries);
474 }
475
io_sqring_entries(struct io_ring_ctx * ctx)476 static inline unsigned int io_sqring_entries(struct io_ring_ctx *ctx)
477 {
478 guard(rcu)();
479 return __io_sqring_entries(ctx);
480 }
481
482 /*
483 * Don't complete immediately but use deferred completion infrastructure.
484 * Protected by ->uring_lock and can only be used either with
485 * IO_URING_F_COMPLETE_DEFER or inside a tw handler holding the mutex.
486 */
io_req_complete_defer(struct io_kiocb * req)487 static inline void io_req_complete_defer(struct io_kiocb *req)
488 __must_hold(&req->ctx->uring_lock)
489 {
490 struct io_submit_state *state = &req->ctx->submit_state;
491
492 lockdep_assert_held(&req->ctx->uring_lock);
493
494 wq_list_add_tail(&req->comp_list, &state->compl_reqs);
495 }
496
io_commit_cqring_flush(struct io_ring_ctx * ctx)497 static inline void io_commit_cqring_flush(struct io_ring_ctx *ctx)
498 {
499 if (unlikely(ctx->off_timeout_used ||
500 ctx->has_evfd || ctx->poll_activated))
501 __io_commit_cqring_flush(ctx);
502 }
503
io_get_task_refs(int nr)504 static inline void io_get_task_refs(int nr)
505 {
506 struct io_uring_task *tctx = current->io_uring;
507
508 tctx->cached_refs -= nr;
509 if (unlikely(tctx->cached_refs < 0))
510 io_task_refs_refill(tctx);
511 }
512
io_req_cache_empty(struct io_ring_ctx * ctx)513 static inline bool io_req_cache_empty(struct io_ring_ctx *ctx)
514 {
515 return !ctx->submit_state.free_list.next;
516 }
517
518 extern struct kmem_cache *req_cachep;
519
io_extract_req(struct io_ring_ctx * ctx)520 static inline struct io_kiocb *io_extract_req(struct io_ring_ctx *ctx)
521 {
522 struct io_kiocb *req;
523
524 req = container_of(ctx->submit_state.free_list.next, struct io_kiocb, comp_list);
525 wq_stack_extract(&ctx->submit_state.free_list);
526 return req;
527 }
528
io_alloc_req(struct io_ring_ctx * ctx,struct io_kiocb ** req)529 static inline bool io_alloc_req(struct io_ring_ctx *ctx, struct io_kiocb **req)
530 {
531 if (unlikely(io_req_cache_empty(ctx))) {
532 if (!__io_alloc_req_refill(ctx))
533 return false;
534 }
535 *req = io_extract_req(ctx);
536 return true;
537 }
538
io_req_queue_tw_complete(struct io_kiocb * req,s32 res)539 static inline void io_req_queue_tw_complete(struct io_kiocb *req, s32 res)
540 {
541 io_req_set_res(req, res, 0);
542 req->io_task_work.func = io_req_task_complete;
543 io_req_task_work_add(req);
544 }
545
io_file_can_poll(struct io_kiocb * req)546 static inline bool io_file_can_poll(struct io_kiocb *req)
547 {
548 if (req->flags & REQ_F_CAN_POLL)
549 return true;
550 if (req->file && file_can_poll(req->file)) {
551 req->flags |= REQ_F_CAN_POLL;
552 return true;
553 }
554 return false;
555 }
556
io_is_uring_cmd(const struct io_kiocb * req)557 static inline bool io_is_uring_cmd(const struct io_kiocb *req)
558 {
559 return req->opcode == IORING_OP_URING_CMD ||
560 req->opcode == IORING_OP_URING_CMD128;
561 }
562
io_get_time(struct io_ring_ctx * ctx)563 static inline ktime_t io_get_time(struct io_ring_ctx *ctx)
564 {
565 if (ctx->clockid == CLOCK_MONOTONIC)
566 return ktime_get();
567
568 return ktime_get_with_offset(ctx->clock_offset);
569 }
570
571 enum {
572 IO_CHECK_CQ_OVERFLOW_BIT,
573 IO_CHECK_CQ_DROPPED_BIT,
574 };
575
io_has_work(struct io_ring_ctx * ctx)576 static inline bool io_has_work(struct io_ring_ctx *ctx)
577 {
578 return test_bit(IO_CHECK_CQ_OVERFLOW_BIT, &ctx->check_cq) ||
579 io_local_work_pending(ctx);
580 }
581 #endif
582