1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Shared application/kernel submission and completion ring pairs, for 4 * supporting fast/efficient IO. 5 * 6 * A note on the read/write ordering memory barriers that are matched between 7 * the application and kernel side. 8 * 9 * After the application reads the CQ ring tail, it must use an 10 * appropriate smp_rmb() to pair with the smp_wmb() the kernel uses 11 * before writing the tail (using smp_load_acquire to read the tail will 12 * do). It also needs a smp_mb() before updating CQ head (ordering the 13 * entry load(s) with the head store), pairing with an implicit barrier 14 * through a control-dependency in io_get_cqe (smp_store_release to 15 * store head will do). Failure to do so could lead to reading invalid 16 * CQ entries. 17 * 18 * Likewise, the application must use an appropriate smp_wmb() before 19 * writing the SQ tail (ordering SQ entry stores with the tail store), 20 * which pairs with smp_load_acquire in io_get_sqring (smp_store_release 21 * to store the tail will do). And it needs a barrier ordering the SQ 22 * head load before writing new SQ entries (smp_load_acquire to read 23 * head will do). 24 * 25 * When using the SQ poll thread (IORING_SETUP_SQPOLL), the application 26 * needs to check the SQ flags for IORING_SQ_NEED_WAKEUP *after* 27 * updating the SQ tail; a full memory barrier smp_mb() is needed 28 * between. 29 * 30 * Also see the examples in the liburing library: 31 * 32 * git://git.kernel.org/pub/scm/linux/kernel/git/axboe/liburing.git 33 * 34 * io_uring also uses READ/WRITE_ONCE() for _any_ store or load that happens 35 * from data shared between the kernel and application. This is done both 36 * for ordering purposes, but also to ensure that once a value is loaded from 37 * data that the application could potentially modify, it remains stable. 38 * 39 * Copyright (C) 2018-2019 Jens Axboe 40 * Copyright (c) 2018-2019 Christoph Hellwig 41 */ 42 #include <linux/kernel.h> 43 #include <linux/errno.h> 44 #include <linux/syscalls.h> 45 #include <linux/refcount.h> 46 #include <linux/bits.h> 47 48 #include <linux/sched/signal.h> 49 #include <linux/fs.h> 50 #include <linux/mm.h> 51 #include <linux/percpu.h> 52 #include <linux/slab.h> 53 #include <linux/anon_inodes.h> 54 #include <linux/uaccess.h> 55 #include <linux/nospec.h> 56 #include <linux/task_work.h> 57 #include <linux/io_uring.h> 58 #include <linux/io_uring/cmd.h> 59 #include <linux/audit.h> 60 #include <linux/security.h> 61 #include <linux/jump_label.h> 62 63 #define CREATE_TRACE_POINTS 64 #include <trace/events/io_uring.h> 65 66 #include <uapi/linux/io_uring.h> 67 68 #include "io-wq.h" 69 70 #include "filetable.h" 71 #include "io_uring.h" 72 #include "opdef.h" 73 #include "refs.h" 74 #include "tctx.h" 75 #include "register.h" 76 #include "sqpoll.h" 77 #include "fdinfo.h" 78 #include "kbuf.h" 79 #include "rsrc.h" 80 #include "cancel.h" 81 #include "net.h" 82 #include "notif.h" 83 #include "waitid.h" 84 #include "futex.h" 85 #include "napi.h" 86 #include "uring_cmd.h" 87 #include "msg_ring.h" 88 #include "memmap.h" 89 #include "zcrx.h" 90 #include "bpf-ops.h" 91 92 #include "timeout.h" 93 #include "poll.h" 94 #include "rw.h" 95 #include "alloc_cache.h" 96 #include "eventfd.h" 97 #include "wait.h" 98 #include "bpf_filter.h" 99 #include "loop.h" 100 101 #define SQE_COMMON_FLAGS (IOSQE_FIXED_FILE | IOSQE_IO_LINK | \ 102 IOSQE_IO_HARDLINK | IOSQE_ASYNC) 103 104 #define IO_REQ_LINK_FLAGS (REQ_F_LINK | REQ_F_HARDLINK) 105 106 #define IO_REQ_CLEAN_FLAGS (REQ_F_BUFFER_SELECTED | REQ_F_NEED_CLEANUP | \ 107 REQ_F_INFLIGHT | REQ_F_CREDS | REQ_F_ASYNC_DATA) 108 109 #define IO_REQ_CLEAN_SLOW_FLAGS (REQ_F_REFCOUNT | IO_REQ_LINK_FLAGS | \ 110 REQ_F_REISSUE | REQ_F_POLLED | \ 111 IO_REQ_CLEAN_FLAGS) 112 113 #define IO_TCTX_REFS_CACHE_NR (1U << 10) 114 115 #define IO_COMPL_BATCH 32 116 #define IO_REQ_ALLOC_BATCH 8 117 118 /* requests with any of those set should undergo io_disarm_next() */ 119 #define IO_DISARM_MASK (REQ_F_ARM_LTIMEOUT | REQ_F_LINK_TIMEOUT | REQ_F_FAIL) 120 121 static void io_queue_sqe(struct io_kiocb *req, unsigned int extra_flags); 122 static void __io_req_caches_free(struct io_ring_ctx *ctx); 123 124 static __read_mostly DEFINE_STATIC_KEY_DEFERRED_FALSE(io_key_has_sqarray, HZ); 125 126 struct kmem_cache *req_cachep; 127 static struct workqueue_struct *iou_wq __ro_after_init; 128 129 static int __read_mostly sysctl_io_uring_disabled; 130 static int __read_mostly sysctl_io_uring_group = -1; 131 132 #ifdef CONFIG_SYSCTL 133 static const struct ctl_table kernel_io_uring_disabled_table[] = { 134 { 135 .procname = "io_uring_disabled", 136 .data = &sysctl_io_uring_disabled, 137 .maxlen = sizeof(sysctl_io_uring_disabled), 138 .mode = 0644, 139 .proc_handler = proc_dointvec_minmax, 140 .extra1 = SYSCTL_ZERO, 141 .extra2 = SYSCTL_TWO, 142 }, 143 { 144 .procname = "io_uring_group", 145 .data = &sysctl_io_uring_group, 146 .maxlen = sizeof(gid_t), 147 .mode = 0644, 148 .proc_handler = proc_dointvec, 149 }, 150 }; 151 #endif 152 153 static void io_poison_cached_req(struct io_kiocb *req) 154 { 155 req->ctx = IO_URING_PTR_POISON; 156 req->tctx = IO_URING_PTR_POISON; 157 req->file = IO_URING_PTR_POISON; 158 req->creds = IO_URING_PTR_POISON; 159 req->io_task_work.func = IO_URING_PTR_POISON; 160 req->apoll = IO_URING_PTR_POISON; 161 } 162 163 static void io_poison_req(struct io_kiocb *req) 164 { 165 io_poison_cached_req(req); 166 req->async_data = IO_URING_PTR_POISON; 167 req->kbuf = IO_URING_PTR_POISON; 168 req->comp_list.next = IO_URING_PTR_POISON; 169 req->file_node = IO_URING_PTR_POISON; 170 req->link = IO_URING_PTR_POISON; 171 } 172 173 static inline void req_fail_link_node(struct io_kiocb *req, int res) 174 { 175 req_set_fail(req); 176 io_req_set_res(req, res, 0); 177 } 178 179 static inline void io_req_add_to_cache(struct io_kiocb *req, struct io_ring_ctx *ctx) 180 { 181 if (IS_ENABLED(CONFIG_KASAN)) 182 io_poison_cached_req(req); 183 wq_stack_add_head(&req->comp_list, &ctx->submit_state.free_list); 184 } 185 186 static __cold void io_ring_ctx_ref_free(struct percpu_ref *ref) 187 { 188 struct io_ring_ctx *ctx = container_of(ref, struct io_ring_ctx, refs); 189 190 complete(&ctx->ref_comp); 191 } 192 193 static int io_alloc_hash_table(struct io_hash_table *table, unsigned bits) 194 { 195 unsigned int hash_buckets; 196 int i; 197 198 do { 199 hash_buckets = 1U << bits; 200 table->hbs = kvmalloc_objs(table->hbs[0], hash_buckets, 201 GFP_KERNEL_ACCOUNT); 202 if (table->hbs) 203 break; 204 if (bits == 1) 205 return -ENOMEM; 206 bits--; 207 } while (1); 208 209 table->hash_bits = bits; 210 for (i = 0; i < hash_buckets; i++) 211 INIT_HLIST_HEAD(&table->hbs[i].list); 212 return 0; 213 } 214 215 static void io_free_alloc_caches(struct io_ring_ctx *ctx) 216 { 217 io_alloc_cache_free(&ctx->apoll_cache, kfree); 218 io_alloc_cache_free(&ctx->netmsg_cache, io_netmsg_cache_free); 219 io_alloc_cache_free(&ctx->rw_cache, io_rw_cache_free); 220 io_alloc_cache_free(&ctx->cmd_cache, io_cmd_cache_free); 221 io_futex_cache_free(ctx); 222 io_rsrc_cache_free(ctx); 223 } 224 225 static __cold struct io_ring_ctx *io_ring_ctx_alloc(struct io_uring_params *p) 226 { 227 struct io_ring_ctx *ctx; 228 int hash_bits; 229 bool ret; 230 231 ctx = kzalloc_obj(*ctx); 232 if (!ctx) 233 return NULL; 234 235 xa_init(&ctx->io_bl_xa); 236 237 /* 238 * Use 5 bits less than the max cq entries, that should give us around 239 * 32 entries per hash list if totally full and uniformly spread, but 240 * don't keep too many buckets to not overconsume memory. 241 */ 242 hash_bits = ilog2(p->cq_entries) - 5; 243 hash_bits = clamp(hash_bits, 1, 8); 244 if (io_alloc_hash_table(&ctx->cancel_table, hash_bits)) 245 goto err; 246 if (percpu_ref_init(&ctx->refs, io_ring_ctx_ref_free, 247 0, GFP_KERNEL)) 248 goto err; 249 250 ctx->flags = p->flags; 251 ctx->hybrid_poll_time = LLONG_MAX; 252 atomic_set(&ctx->cq_wait_nr, IO_CQ_WAKE_INIT); 253 init_waitqueue_head(&ctx->sqo_sq_wait); 254 INIT_LIST_HEAD(&ctx->sqd_list); 255 INIT_LIST_HEAD(&ctx->cq_overflow_list); 256 ret = io_alloc_cache_init(&ctx->apoll_cache, IO_POLL_ALLOC_CACHE_MAX, 257 sizeof(struct async_poll), 0); 258 ret |= io_alloc_cache_init(&ctx->netmsg_cache, IO_ALLOC_CACHE_MAX, 259 sizeof(struct io_async_msghdr), 260 offsetof(struct io_async_msghdr, clear)); 261 ret |= io_alloc_cache_init(&ctx->rw_cache, IO_ALLOC_CACHE_MAX, 262 sizeof(struct io_async_rw), 263 offsetof(struct io_async_rw, clear)); 264 ret |= io_alloc_cache_init(&ctx->cmd_cache, IO_ALLOC_CACHE_MAX, 265 sizeof(struct io_async_cmd), 266 sizeof(struct io_async_cmd)); 267 ret |= io_futex_cache_init(ctx); 268 ret |= io_rsrc_cache_init(ctx); 269 if (ret) 270 goto free_ref; 271 init_completion(&ctx->ref_comp); 272 xa_init_flags(&ctx->personalities, XA_FLAGS_ALLOC1); 273 mutex_init(&ctx->uring_lock); 274 init_waitqueue_head(&ctx->cq_wait); 275 init_waitqueue_head(&ctx->poll_wq); 276 spin_lock_init(&ctx->completion_lock); 277 raw_spin_lock_init(&ctx->timeout_lock); 278 INIT_LIST_HEAD(&ctx->iopoll_list); 279 INIT_LIST_HEAD(&ctx->defer_list); 280 INIT_LIST_HEAD(&ctx->timeout_list); 281 INIT_LIST_HEAD(&ctx->ltimeout_list); 282 init_llist_head(&ctx->work_llist); 283 INIT_LIST_HEAD(&ctx->tctx_list); 284 mutex_init(&ctx->tctx_lock); 285 ctx->submit_state.free_list.next = NULL; 286 INIT_HLIST_HEAD(&ctx->waitid_list); 287 xa_init_flags(&ctx->zcrx_ctxs, XA_FLAGS_ALLOC); 288 #ifdef CONFIG_FUTEX 289 INIT_HLIST_HEAD(&ctx->futex_list); 290 #endif 291 INIT_DELAYED_WORK(&ctx->fallback_work, io_fallback_req_func); 292 INIT_WQ_LIST(&ctx->submit_state.compl_reqs); 293 INIT_HLIST_HEAD(&ctx->cancelable_uring_cmd); 294 io_napi_init(ctx); 295 mutex_init(&ctx->mmap_lock); 296 297 return ctx; 298 299 free_ref: 300 percpu_ref_exit(&ctx->refs); 301 err: 302 io_free_alloc_caches(ctx); 303 kvfree(ctx->cancel_table.hbs); 304 xa_destroy(&ctx->io_bl_xa); 305 kfree(ctx); 306 return NULL; 307 } 308 309 static void io_clean_op(struct io_kiocb *req) 310 { 311 if (unlikely(req->flags & REQ_F_BUFFER_SELECTED)) 312 io_kbuf_drop_legacy(req); 313 314 if (req->flags & REQ_F_NEED_CLEANUP) { 315 const struct io_cold_def *def = &io_cold_defs[req->opcode]; 316 317 if (def->cleanup) 318 def->cleanup(req); 319 } 320 if (req->flags & REQ_F_INFLIGHT) 321 atomic_dec(&req->tctx->inflight_tracked); 322 if (req->flags & REQ_F_CREDS) 323 put_cred(req->creds); 324 if (req->flags & REQ_F_ASYNC_DATA) { 325 kfree(req->async_data); 326 req->async_data = NULL; 327 } 328 req->flags &= ~IO_REQ_CLEAN_FLAGS; 329 } 330 331 /* 332 * Mark the request as inflight, so that file cancelation will find it. 333 * Can be used if the file is an io_uring instance, or if the request itself 334 * relies on ->mm being alive for the duration of the request. 335 */ 336 inline void io_req_track_inflight(struct io_kiocb *req) 337 { 338 if (!(req->flags & REQ_F_INFLIGHT)) { 339 req->flags |= REQ_F_INFLIGHT; 340 atomic_inc(&req->tctx->inflight_tracked); 341 } 342 } 343 344 static struct io_kiocb *__io_prep_linked_timeout(struct io_kiocb *req) 345 { 346 if (WARN_ON_ONCE(!req->link)) 347 return NULL; 348 349 req->flags &= ~REQ_F_ARM_LTIMEOUT; 350 req->flags |= REQ_F_LINK_TIMEOUT; 351 352 /* linked timeouts should have two refs once prep'ed */ 353 io_req_set_refcount(req); 354 __io_req_set_refcount(req->link, 2); 355 return req->link; 356 } 357 358 static void io_prep_async_work(struct io_kiocb *req) 359 { 360 const struct io_issue_def *def = &io_issue_defs[req->opcode]; 361 362 if (!(req->flags & REQ_F_CREDS)) { 363 req->flags |= REQ_F_CREDS; 364 req->creds = get_current_cred(); 365 } 366 367 req->work.list.next = NULL; 368 atomic_set(&req->work.flags, 0); 369 if (req->flags & REQ_F_FORCE_ASYNC) 370 atomic_or(IO_WQ_WORK_CONCURRENT, &req->work.flags); 371 372 if (req->file && !(req->flags & REQ_F_FIXED_FILE)) 373 req->flags |= io_file_get_flags(req->file); 374 375 if (req->file && (req->flags & REQ_F_ISREG)) { 376 bool should_hash = def->hash_reg_file; 377 378 /* don't serialize this request if the fs doesn't need it */ 379 if (should_hash && (req->file->f_flags & O_DIRECT) && 380 (req->file->f_op->fop_flags & FOP_DIO_PARALLEL_WRITE)) 381 should_hash = false; 382 if (should_hash || (req->flags & REQ_F_IOPOLL)) 383 io_wq_hash_work(&req->work, file_inode(req->file)); 384 } else if (!req->file || !S_ISBLK(file_inode(req->file)->i_mode)) { 385 if (def->unbound_nonreg_file) 386 atomic_or(IO_WQ_WORK_UNBOUND, &req->work.flags); 387 } 388 } 389 390 static void io_prep_async_link(struct io_kiocb *req) 391 { 392 struct io_kiocb *cur; 393 394 if (req->flags & REQ_F_LINK_TIMEOUT) { 395 struct io_ring_ctx *ctx = req->ctx; 396 397 raw_spin_lock_irq(&ctx->timeout_lock); 398 io_for_each_link(cur, req) 399 io_prep_async_work(cur); 400 raw_spin_unlock_irq(&ctx->timeout_lock); 401 } else { 402 io_for_each_link(cur, req) 403 io_prep_async_work(cur); 404 } 405 } 406 407 static void io_queue_iowq(struct io_kiocb *req) 408 { 409 struct io_uring_task *tctx = req->tctx; 410 411 BUG_ON(!tctx); 412 413 if ((current->flags & PF_KTHREAD) || !tctx->io_wq) { 414 io_req_task_queue_fail(req, -ECANCELED); 415 return; 416 } 417 418 /* init ->work of the whole link before punting */ 419 io_prep_async_link(req); 420 421 /* 422 * Not expected to happen, but if we do have a bug where this _can_ 423 * happen, catch it here and ensure the request is marked as 424 * canceled. That will make io-wq go through the usual work cancel 425 * procedure rather than attempt to run this request (or create a new 426 * worker for it). 427 */ 428 if (WARN_ON_ONCE(!same_thread_group(tctx->task, current))) 429 atomic_or(IO_WQ_WORK_CANCEL, &req->work.flags); 430 431 trace_io_uring_queue_async_work(req, io_wq_is_hashed(&req->work)); 432 io_wq_enqueue(tctx->io_wq, &req->work); 433 } 434 435 static void io_req_queue_iowq_tw(struct io_tw_req tw_req, io_tw_token_t tw) 436 { 437 io_queue_iowq(tw_req.req); 438 } 439 440 void io_req_queue_iowq(struct io_kiocb *req) 441 { 442 req->io_task_work.func = io_req_queue_iowq_tw; 443 io_req_task_work_add(req); 444 } 445 446 unsigned io_linked_nr(struct io_kiocb *req) 447 { 448 struct io_kiocb *tmp; 449 unsigned nr = 0; 450 451 io_for_each_link(tmp, req) 452 nr++; 453 return nr; 454 } 455 456 static __cold noinline void io_queue_deferred(struct io_ring_ctx *ctx) 457 { 458 bool drain_seen = false, first = true; 459 460 lockdep_assert_held(&ctx->uring_lock); 461 __io_req_caches_free(ctx); 462 463 while (!list_empty(&ctx->defer_list)) { 464 struct io_defer_entry *de = list_first_entry(&ctx->defer_list, 465 struct io_defer_entry, list); 466 467 drain_seen |= de->req->flags & REQ_F_IO_DRAIN; 468 if ((drain_seen || first) && ctx->nr_req_allocated != ctx->nr_drained) 469 return; 470 471 list_del_init(&de->list); 472 ctx->nr_drained -= io_linked_nr(de->req); 473 io_req_task_queue(de->req); 474 kfree(de); 475 first = false; 476 } 477 } 478 479 void __io_commit_cqring_flush(struct io_ring_ctx *ctx) 480 { 481 if (ctx->int_flags & IO_RING_F_POLL_ACTIVATED) 482 io_poll_wq_wake(ctx); 483 if (ctx->int_flags & IO_RING_F_OFF_TIMEOUT_USED) 484 io_flush_timeouts(ctx); 485 if (ctx->int_flags & IO_RING_F_HAS_EVFD) 486 io_eventfd_signal(ctx, true); 487 } 488 489 static inline void __io_cq_lock(struct io_ring_ctx *ctx) 490 { 491 if (!(ctx->int_flags & IO_RING_F_LOCKLESS_CQ)) 492 spin_lock(&ctx->completion_lock); 493 } 494 495 static inline void io_cq_lock(struct io_ring_ctx *ctx) 496 __acquires(ctx->completion_lock) 497 { 498 spin_lock(&ctx->completion_lock); 499 } 500 501 static inline void __io_cq_unlock_post(struct io_ring_ctx *ctx) 502 { 503 io_commit_cqring(ctx); 504 if (!(ctx->int_flags & IO_RING_F_TASK_COMPLETE)) { 505 if (!(ctx->int_flags & IO_RING_F_LOCKLESS_CQ)) 506 spin_unlock(&ctx->completion_lock); 507 /* IOPOLL rings only need to wake up if it's also SQPOLL */ 508 if (!(ctx->int_flags & IO_RING_F_SYSCALL_IOPOLL)) 509 io_cqring_wake(ctx); 510 } 511 io_commit_cqring_flush(ctx); 512 } 513 514 static void io_cq_unlock_post(struct io_ring_ctx *ctx) 515 __releases(ctx->completion_lock) 516 { 517 io_commit_cqring(ctx); 518 spin_unlock(&ctx->completion_lock); 519 io_cqring_wake(ctx); 520 io_commit_cqring_flush(ctx); 521 } 522 523 static void __io_cqring_overflow_flush(struct io_ring_ctx *ctx, bool dying) 524 { 525 lockdep_assert_held(&ctx->uring_lock); 526 527 /* don't abort if we're dying, entries must get freed */ 528 if (!dying && __io_cqring_events(ctx) == ctx->cq_entries) 529 return; 530 531 io_cq_lock(ctx); 532 while (!list_empty(&ctx->cq_overflow_list)) { 533 size_t cqe_size = sizeof(struct io_uring_cqe); 534 struct io_uring_cqe *cqe; 535 struct io_overflow_cqe *ocqe; 536 bool is_cqe32 = false; 537 538 ocqe = list_first_entry(&ctx->cq_overflow_list, 539 struct io_overflow_cqe, list); 540 if (ocqe->cqe.flags & IORING_CQE_F_32 || 541 ctx->flags & IORING_SETUP_CQE32) { 542 is_cqe32 = true; 543 cqe_size <<= 1; 544 } 545 if (ctx->flags & IORING_SETUP_CQE32) 546 is_cqe32 = false; 547 548 if (!dying) { 549 if (!io_get_cqe_overflow(ctx, &cqe, true, is_cqe32)) 550 break; 551 memcpy(cqe, &ocqe->cqe, cqe_size); 552 } 553 list_del(&ocqe->list); 554 kfree(ocqe); 555 556 /* 557 * For silly syzbot cases that deliberately overflow by huge 558 * amounts, check if we need to resched and drop and 559 * reacquire the locks if so. Nothing real would ever hit this. 560 * Ideally we'd have a non-posting unlock for this, but hard 561 * to care for a non-real case. 562 */ 563 if (need_resched()) { 564 ctx->cqe_sentinel = ctx->cqe_cached; 565 io_cq_unlock_post(ctx); 566 mutex_unlock(&ctx->uring_lock); 567 cond_resched(); 568 mutex_lock(&ctx->uring_lock); 569 io_cq_lock(ctx); 570 } 571 } 572 573 if (list_empty(&ctx->cq_overflow_list)) { 574 clear_bit(IO_CHECK_CQ_OVERFLOW_BIT, &ctx->check_cq); 575 atomic_andnot(IORING_SQ_CQ_OVERFLOW, &ctx->rings->sq_flags); 576 } 577 io_cq_unlock_post(ctx); 578 } 579 580 static void io_cqring_overflow_kill(struct io_ring_ctx *ctx) 581 { 582 if (ctx->rings) 583 __io_cqring_overflow_flush(ctx, true); 584 } 585 586 void io_cqring_do_overflow_flush(struct io_ring_ctx *ctx) 587 { 588 mutex_lock(&ctx->uring_lock); 589 __io_cqring_overflow_flush(ctx, false); 590 mutex_unlock(&ctx->uring_lock); 591 } 592 593 void io_cqring_overflow_flush_locked(struct io_ring_ctx *ctx) 594 { 595 __io_cqring_overflow_flush(ctx, false); 596 } 597 598 /* must to be called somewhat shortly after putting a request */ 599 static inline void io_put_task(struct io_kiocb *req) 600 { 601 struct io_uring_task *tctx = req->tctx; 602 603 if (likely(tctx->task == current)) { 604 tctx->cached_refs++; 605 } else { 606 percpu_counter_sub(&tctx->inflight, 1); 607 if (unlikely(atomic_read(&tctx->in_cancel))) 608 wake_up(&tctx->wait); 609 put_task_struct(tctx->task); 610 } 611 } 612 613 void io_task_refs_refill(struct io_uring_task *tctx) 614 { 615 unsigned int refill = -tctx->cached_refs + IO_TCTX_REFS_CACHE_NR; 616 617 percpu_counter_add(&tctx->inflight, refill); 618 refcount_add(refill, ¤t->usage); 619 tctx->cached_refs += refill; 620 } 621 622 __cold void io_uring_drop_tctx_refs(struct task_struct *task) 623 { 624 struct io_uring_task *tctx = task->io_uring; 625 unsigned int refs = tctx->cached_refs; 626 627 if (refs) { 628 tctx->cached_refs = 0; 629 percpu_counter_sub(&tctx->inflight, refs); 630 put_task_struct_many(task, refs); 631 } 632 } 633 634 static __cold bool io_cqring_add_overflow(struct io_ring_ctx *ctx, 635 struct io_overflow_cqe *ocqe) 636 { 637 lockdep_assert_held(&ctx->completion_lock); 638 639 if (!ocqe) { 640 struct io_rings *r = ctx->rings; 641 642 /* 643 * If we're in ring overflow flush mode, or in task cancel mode, 644 * or cannot allocate an overflow entry, then we need to drop it 645 * on the floor. 646 */ 647 WRITE_ONCE(r->cq_overflow, READ_ONCE(r->cq_overflow) + 1); 648 set_bit(IO_CHECK_CQ_DROPPED_BIT, &ctx->check_cq); 649 return false; 650 } 651 if (list_empty(&ctx->cq_overflow_list)) { 652 set_bit(IO_CHECK_CQ_OVERFLOW_BIT, &ctx->check_cq); 653 atomic_or(IORING_SQ_CQ_OVERFLOW, &ctx->rings->sq_flags); 654 655 } 656 list_add_tail(&ocqe->list, &ctx->cq_overflow_list); 657 return true; 658 } 659 660 static struct io_overflow_cqe *io_alloc_ocqe(struct io_ring_ctx *ctx, 661 struct io_cqe *cqe, 662 struct io_big_cqe *big_cqe, gfp_t gfp) 663 { 664 struct io_overflow_cqe *ocqe; 665 size_t ocq_size = sizeof(struct io_overflow_cqe); 666 bool is_cqe32 = false; 667 668 if (cqe->flags & IORING_CQE_F_32 || ctx->flags & IORING_SETUP_CQE32) { 669 is_cqe32 = true; 670 ocq_size += sizeof(struct io_uring_cqe); 671 } 672 673 ocqe = kzalloc(ocq_size, gfp | __GFP_ACCOUNT); 674 trace_io_uring_cqe_overflow(ctx, cqe->user_data, cqe->res, cqe->flags, ocqe); 675 if (ocqe) { 676 ocqe->cqe.user_data = cqe->user_data; 677 ocqe->cqe.res = cqe->res; 678 ocqe->cqe.flags = cqe->flags; 679 if (is_cqe32 && big_cqe) { 680 ocqe->cqe.big_cqe[0] = big_cqe->extra1; 681 ocqe->cqe.big_cqe[1] = big_cqe->extra2; 682 } 683 } 684 if (big_cqe) 685 big_cqe->extra1 = big_cqe->extra2 = 0; 686 return ocqe; 687 } 688 689 /* 690 * Fill an empty dummy CQE, in case alignment is off for posting a 32b CQE 691 * because the ring is a single 16b entry away from wrapping. 692 */ 693 static bool io_fill_nop_cqe(struct io_ring_ctx *ctx, unsigned int off) 694 { 695 if (__io_cqring_events(ctx) < ctx->cq_entries) { 696 struct io_uring_cqe *cqe = &ctx->rings->cqes[off]; 697 698 cqe->user_data = 0; 699 cqe->res = 0; 700 cqe->flags = IORING_CQE_F_SKIP; 701 ctx->cached_cq_tail++; 702 return true; 703 } 704 return false; 705 } 706 707 /* 708 * writes to the cq entry need to come after reading head; the 709 * control dependency is enough as we're using WRITE_ONCE to 710 * fill the cq entry 711 */ 712 bool io_cqe_cache_refill(struct io_ring_ctx *ctx, bool overflow, bool cqe32) 713 { 714 struct io_rings *rings = ctx->rings; 715 unsigned int off = ctx->cached_cq_tail & (ctx->cq_entries - 1); 716 unsigned int free, queued, len; 717 718 /* 719 * Posting into the CQ when there are pending overflowed CQEs may break 720 * ordering guarantees, which will affect links, F_MORE users and more. 721 * Force overflow the completion. 722 */ 723 if (!overflow && (ctx->check_cq & BIT(IO_CHECK_CQ_OVERFLOW_BIT))) 724 return false; 725 726 /* 727 * Post dummy CQE if a 32b CQE is needed and there's only room for a 728 * 16b CQE before the ring wraps. 729 */ 730 if (cqe32 && off + 1 == ctx->cq_entries) { 731 if (!io_fill_nop_cqe(ctx, off)) 732 return false; 733 off = 0; 734 } 735 736 /* userspace may cheat modifying the tail, be safe and do min */ 737 queued = min(__io_cqring_events(ctx), ctx->cq_entries); 738 free = ctx->cq_entries - queued; 739 /* we need a contiguous range, limit based on the current array offset */ 740 len = min(free, ctx->cq_entries - off); 741 if (len < (cqe32 + 1)) 742 return false; 743 744 if (ctx->flags & IORING_SETUP_CQE32) { 745 off <<= 1; 746 len <<= 1; 747 } 748 749 ctx->cqe_cached = &rings->cqes[off]; 750 ctx->cqe_sentinel = ctx->cqe_cached + len; 751 return true; 752 } 753 754 static bool io_fill_cqe_aux32(struct io_ring_ctx *ctx, 755 struct io_uring_cqe src_cqe[2]) 756 { 757 struct io_uring_cqe *cqe; 758 759 if (WARN_ON_ONCE(!(ctx->flags & (IORING_SETUP_CQE32|IORING_SETUP_CQE_MIXED)))) 760 return false; 761 if (unlikely(!io_get_cqe(ctx, &cqe, true))) 762 return false; 763 764 memcpy(cqe, src_cqe, 2 * sizeof(*cqe)); 765 trace_io_uring_complete(ctx, NULL, cqe); 766 return true; 767 } 768 769 static bool io_fill_cqe_aux(struct io_ring_ctx *ctx, u64 user_data, s32 res, 770 u32 cflags) 771 { 772 bool cqe32 = cflags & IORING_CQE_F_32; 773 struct io_uring_cqe *cqe; 774 775 if (likely(io_get_cqe(ctx, &cqe, cqe32))) { 776 WRITE_ONCE(cqe->user_data, user_data); 777 WRITE_ONCE(cqe->res, res); 778 WRITE_ONCE(cqe->flags, cflags); 779 780 if (cqe32) { 781 WRITE_ONCE(cqe->big_cqe[0], 0); 782 WRITE_ONCE(cqe->big_cqe[1], 0); 783 } 784 785 trace_io_uring_complete(ctx, NULL, cqe); 786 return true; 787 } 788 return false; 789 } 790 791 static inline struct io_cqe io_init_cqe(u64 user_data, s32 res, u32 cflags) 792 { 793 return (struct io_cqe) { .user_data = user_data, .res = res, .flags = cflags }; 794 } 795 796 static __cold void io_cqe_overflow(struct io_ring_ctx *ctx, struct io_cqe *cqe, 797 struct io_big_cqe *big_cqe) 798 { 799 struct io_overflow_cqe *ocqe; 800 801 ocqe = io_alloc_ocqe(ctx, cqe, big_cqe, GFP_KERNEL); 802 spin_lock(&ctx->completion_lock); 803 io_cqring_add_overflow(ctx, ocqe); 804 spin_unlock(&ctx->completion_lock); 805 } 806 807 static __cold bool io_cqe_overflow_locked(struct io_ring_ctx *ctx, 808 struct io_cqe *cqe, 809 struct io_big_cqe *big_cqe) 810 { 811 struct io_overflow_cqe *ocqe; 812 813 ocqe = io_alloc_ocqe(ctx, cqe, big_cqe, GFP_NOWAIT); 814 return io_cqring_add_overflow(ctx, ocqe); 815 } 816 817 bool io_post_aux_cqe(struct io_ring_ctx *ctx, u64 user_data, s32 res, u32 cflags) 818 { 819 bool filled; 820 821 io_cq_lock(ctx); 822 filled = io_fill_cqe_aux(ctx, user_data, res, cflags); 823 if (unlikely(!filled)) { 824 struct io_cqe cqe = io_init_cqe(user_data, res, cflags); 825 826 filled = io_cqe_overflow_locked(ctx, &cqe, NULL); 827 } 828 io_cq_unlock_post(ctx); 829 return filled; 830 } 831 832 /* 833 * Must be called from inline task_work so we know a flush will happen later, 834 * and obviously with ctx->uring_lock held (tw always has that). 835 */ 836 void io_add_aux_cqe(struct io_ring_ctx *ctx, u64 user_data, s32 res, u32 cflags) 837 { 838 lockdep_assert_held(&ctx->uring_lock); 839 lockdep_assert(ctx->int_flags & IO_RING_F_LOCKLESS_CQ); 840 841 if (!io_fill_cqe_aux(ctx, user_data, res, cflags)) { 842 struct io_cqe cqe = io_init_cqe(user_data, res, cflags); 843 844 io_cqe_overflow(ctx, &cqe, NULL); 845 } 846 ctx->submit_state.cq_flush = true; 847 } 848 849 /* 850 * A helper for multishot requests posting additional CQEs. 851 * Should only be used from a task_work including IO_URING_F_MULTISHOT. 852 */ 853 bool io_req_post_cqe(struct io_kiocb *req, s32 res, u32 cflags) 854 { 855 struct io_ring_ctx *ctx = req->ctx; 856 bool posted; 857 858 /* 859 * If multishot has already posted deferred completions, ensure that 860 * those are flushed first before posting this one. If not, CQEs 861 * could get reordered. 862 */ 863 if (!wq_list_empty(&ctx->submit_state.compl_reqs)) 864 __io_submit_flush_completions(ctx); 865 866 lockdep_assert(!io_wq_current_is_worker()); 867 lockdep_assert_held(&ctx->uring_lock); 868 869 if (!(ctx->int_flags & IO_RING_F_LOCKLESS_CQ)) { 870 spin_lock(&ctx->completion_lock); 871 posted = io_fill_cqe_aux(ctx, req->cqe.user_data, res, cflags); 872 spin_unlock(&ctx->completion_lock); 873 } else { 874 posted = io_fill_cqe_aux(ctx, req->cqe.user_data, res, cflags); 875 } 876 877 ctx->submit_state.cq_flush = true; 878 return posted; 879 } 880 881 /* 882 * A helper for multishot requests posting additional CQEs. 883 * Should only be used from a task_work including IO_URING_F_MULTISHOT. 884 */ 885 bool io_req_post_cqe32(struct io_kiocb *req, struct io_uring_cqe cqe[2]) 886 { 887 struct io_ring_ctx *ctx = req->ctx; 888 bool posted; 889 890 lockdep_assert(!io_wq_current_is_worker()); 891 lockdep_assert_held(&ctx->uring_lock); 892 893 cqe[0].user_data = req->cqe.user_data; 894 if (!(ctx->int_flags & IO_RING_F_LOCKLESS_CQ)) { 895 spin_lock(&ctx->completion_lock); 896 posted = io_fill_cqe_aux32(ctx, cqe); 897 spin_unlock(&ctx->completion_lock); 898 } else { 899 posted = io_fill_cqe_aux32(ctx, cqe); 900 } 901 902 ctx->submit_state.cq_flush = true; 903 return posted; 904 } 905 906 static void io_req_complete_post(struct io_kiocb *req, unsigned issue_flags) 907 { 908 struct io_ring_ctx *ctx = req->ctx; 909 bool completed = true; 910 911 /* 912 * All execution paths but io-wq use the deferred completions by 913 * passing IO_URING_F_COMPLETE_DEFER and thus should not end up here. 914 */ 915 if (WARN_ON_ONCE(!(issue_flags & IO_URING_F_IOWQ))) 916 return; 917 918 /* 919 * Handle special CQ sync cases via task_work. DEFER_TASKRUN requires 920 * the submitter task context, IOPOLL protects with uring_lock. 921 */ 922 if ((ctx->int_flags & IO_RING_F_LOCKLESS_CQ) || (req->flags & REQ_F_REISSUE)) { 923 defer_complete: 924 req->io_task_work.func = io_req_task_complete; 925 io_req_task_work_add(req); 926 return; 927 } 928 929 io_cq_lock(ctx); 930 if (!(req->flags & REQ_F_CQE_SKIP)) 931 completed = io_fill_cqe_req(ctx, req); 932 io_cq_unlock_post(ctx); 933 934 if (!completed) 935 goto defer_complete; 936 937 /* 938 * We don't free the request here because we know it's called from 939 * io-wq only, which holds a reference, so it cannot be the last put. 940 */ 941 req_ref_put(req); 942 } 943 944 void io_req_defer_failed(struct io_kiocb *req, s32 res) 945 __must_hold(&ctx->uring_lock) 946 { 947 const struct io_cold_def *def = &io_cold_defs[req->opcode]; 948 949 lockdep_assert_held(&req->ctx->uring_lock); 950 951 req_set_fail(req); 952 io_req_set_res(req, res, io_put_kbuf(req, res, NULL)); 953 if (def->fail) 954 def->fail(req); 955 io_req_complete_defer(req); 956 } 957 958 /* 959 * A request might get retired back into the request caches even before opcode 960 * handlers and io_issue_sqe() are done with it, e.g. inline completion path. 961 * Because of that, io_alloc_req() should be called only under ->uring_lock 962 * and with extra caution to not get a request that is still worked on. 963 */ 964 __cold bool __io_alloc_req_refill(struct io_ring_ctx *ctx) 965 __must_hold(&ctx->uring_lock) 966 { 967 gfp_t gfp = GFP_KERNEL | __GFP_NOWARN | __GFP_ZERO; 968 void *reqs[IO_REQ_ALLOC_BATCH]; 969 int ret; 970 971 ret = kmem_cache_alloc_bulk(req_cachep, gfp, ARRAY_SIZE(reqs), reqs); 972 973 /* 974 * Bulk alloc is all-or-nothing. If we fail to get a batch, 975 * retry single alloc to be on the safe side. 976 */ 977 if (unlikely(ret <= 0)) { 978 reqs[0] = kmem_cache_alloc(req_cachep, gfp); 979 if (!reqs[0]) 980 return false; 981 ret = 1; 982 } 983 984 percpu_ref_get_many(&ctx->refs, ret); 985 ctx->nr_req_allocated += ret; 986 987 while (ret--) { 988 struct io_kiocb *req = reqs[ret]; 989 990 io_req_add_to_cache(req, ctx); 991 } 992 return true; 993 } 994 995 __cold void io_free_req(struct io_kiocb *req) 996 { 997 /* refs were already put, restore them for io_req_task_complete() */ 998 req->flags &= ~REQ_F_REFCOUNT; 999 /* we only want to free it, don't post CQEs */ 1000 req->flags |= REQ_F_CQE_SKIP; 1001 req->io_task_work.func = io_req_task_complete; 1002 io_req_task_work_add(req); 1003 } 1004 1005 static void __io_req_find_next_prep(struct io_kiocb *req) 1006 { 1007 struct io_ring_ctx *ctx = req->ctx; 1008 1009 spin_lock(&ctx->completion_lock); 1010 io_disarm_next(req); 1011 spin_unlock(&ctx->completion_lock); 1012 } 1013 1014 static inline struct io_kiocb *io_req_find_next(struct io_kiocb *req) 1015 { 1016 struct io_kiocb *nxt; 1017 1018 /* 1019 * If LINK is set, we have dependent requests in this chain. If we 1020 * didn't fail this request, queue the first one up, moving any other 1021 * dependencies to the next request. In case of failure, fail the rest 1022 * of the chain. 1023 */ 1024 if (unlikely(req->flags & IO_DISARM_MASK)) 1025 __io_req_find_next_prep(req); 1026 nxt = req->link; 1027 req->link = NULL; 1028 return nxt; 1029 } 1030 1031 static void io_req_task_cancel(struct io_tw_req tw_req, io_tw_token_t tw) 1032 { 1033 struct io_kiocb *req = tw_req.req; 1034 1035 io_tw_lock(req->ctx, tw); 1036 io_req_defer_failed(req, req->cqe.res); 1037 } 1038 1039 void io_req_task_submit(struct io_tw_req tw_req, io_tw_token_t tw) 1040 { 1041 struct io_kiocb *req = tw_req.req; 1042 struct io_ring_ctx *ctx = req->ctx; 1043 1044 io_tw_lock(ctx, tw); 1045 if (unlikely(tw.cancel)) 1046 io_req_defer_failed(req, -EFAULT); 1047 else if (req->flags & REQ_F_FORCE_ASYNC) 1048 io_queue_iowq(req); 1049 else 1050 io_queue_sqe(req, 0); 1051 } 1052 1053 void io_req_task_queue_fail(struct io_kiocb *req, int ret) 1054 { 1055 io_req_set_res(req, ret, 0); 1056 req->io_task_work.func = io_req_task_cancel; 1057 io_req_task_work_add(req); 1058 } 1059 1060 void io_req_task_queue(struct io_kiocb *req) 1061 { 1062 req->io_task_work.func = io_req_task_submit; 1063 io_req_task_work_add(req); 1064 } 1065 1066 void io_queue_next(struct io_kiocb *req) 1067 { 1068 struct io_kiocb *nxt = io_req_find_next(req); 1069 1070 if (nxt) 1071 io_req_task_queue(nxt); 1072 } 1073 1074 static inline void io_req_put_rsrc_nodes(struct io_kiocb *req) 1075 { 1076 struct io_ring_ctx *ctx = req->ctx; 1077 1078 if (req->file_node) { 1079 io_put_rsrc_node(ctx, req->file_node); 1080 req->file_node = NULL; 1081 } 1082 if (req->flags & REQ_F_BUF_NODE) 1083 io_put_rsrc_node(ctx, req->buf_node); 1084 } 1085 1086 static void io_free_batch_list(struct io_ring_ctx *ctx, 1087 struct io_wq_work_node *node) 1088 __must_hold(&ctx->uring_lock) 1089 { 1090 do { 1091 struct io_kiocb *req = container_of(node, struct io_kiocb, 1092 comp_list); 1093 1094 if (unlikely(req->flags & IO_REQ_CLEAN_SLOW_FLAGS)) { 1095 if (req->flags & REQ_F_REISSUE) { 1096 node = req->comp_list.next; 1097 req->flags &= ~REQ_F_REISSUE; 1098 io_queue_iowq(req); 1099 continue; 1100 } 1101 if (req->flags & REQ_F_REFCOUNT) { 1102 node = req->comp_list.next; 1103 if (!req_ref_put_and_test(req)) 1104 continue; 1105 } 1106 if ((req->flags & REQ_F_POLLED) && req->apoll) { 1107 struct async_poll *apoll = req->apoll; 1108 1109 if (apoll->double_poll) 1110 kfree(apoll->double_poll); 1111 io_cache_free(&ctx->apoll_cache, apoll); 1112 req->flags &= ~REQ_F_POLLED; 1113 } 1114 if (req->flags & IO_REQ_LINK_FLAGS) 1115 io_queue_next(req); 1116 if (unlikely(req->flags & IO_REQ_CLEAN_FLAGS)) 1117 io_clean_op(req); 1118 } 1119 io_put_file(req); 1120 io_req_put_rsrc_nodes(req); 1121 io_put_task(req); 1122 1123 node = req->comp_list.next; 1124 io_req_add_to_cache(req, ctx); 1125 } while (node); 1126 } 1127 1128 void __io_submit_flush_completions(struct io_ring_ctx *ctx) 1129 __must_hold(&ctx->uring_lock) 1130 { 1131 struct io_submit_state *state = &ctx->submit_state; 1132 struct io_wq_work_node *node; 1133 1134 __io_cq_lock(ctx); 1135 __wq_list_for_each(node, &state->compl_reqs) { 1136 struct io_kiocb *req = container_of(node, struct io_kiocb, 1137 comp_list); 1138 1139 /* 1140 * Requests marked with REQUEUE should not post a CQE, they 1141 * will go through the io-wq retry machinery and post one 1142 * later. 1143 */ 1144 if (!(req->flags & (REQ_F_CQE_SKIP | REQ_F_REISSUE)) && 1145 unlikely(!io_fill_cqe_req(ctx, req))) { 1146 if (ctx->int_flags & IO_RING_F_LOCKLESS_CQ) 1147 io_cqe_overflow(ctx, &req->cqe, &req->big_cqe); 1148 else 1149 io_cqe_overflow_locked(ctx, &req->cqe, &req->big_cqe); 1150 } 1151 } 1152 __io_cq_unlock_post(ctx); 1153 1154 if (!wq_list_empty(&state->compl_reqs)) { 1155 io_free_batch_list(ctx, state->compl_reqs.first); 1156 INIT_WQ_LIST(&state->compl_reqs); 1157 } 1158 1159 if (unlikely(ctx->int_flags & IO_RING_F_DRAIN_ACTIVE)) 1160 io_queue_deferred(ctx); 1161 1162 ctx->submit_state.cq_flush = false; 1163 } 1164 1165 /* 1166 * We can't just wait for polled events to come to us, we have to actively 1167 * find and complete them. 1168 */ 1169 __cold void io_iopoll_try_reap_events(struct io_ring_ctx *ctx) 1170 { 1171 if (!(ctx->flags & IORING_SETUP_IOPOLL)) 1172 return; 1173 1174 mutex_lock(&ctx->uring_lock); 1175 while (!list_empty(&ctx->iopoll_list)) { 1176 /* let it sleep and repeat later if can't complete a request */ 1177 if (io_do_iopoll(ctx, true) == 0) 1178 break; 1179 /* 1180 * Ensure we allow local-to-the-cpu processing to take place, 1181 * in this case we need to ensure that we reap all events. 1182 * Also let task_work, etc. to progress by releasing the mutex 1183 */ 1184 if (need_resched()) { 1185 mutex_unlock(&ctx->uring_lock); 1186 cond_resched(); 1187 mutex_lock(&ctx->uring_lock); 1188 } 1189 } 1190 mutex_unlock(&ctx->uring_lock); 1191 1192 if (ctx->flags & IORING_SETUP_DEFER_TASKRUN) 1193 io_move_task_work_from_local(ctx); 1194 } 1195 1196 static int io_iopoll_check(struct io_ring_ctx *ctx, unsigned int min_events) 1197 { 1198 unsigned long check_cq; 1199 1200 min_events = min(min_events, ctx->cq_entries); 1201 1202 lockdep_assert_held(&ctx->uring_lock); 1203 1204 if (!io_allowed_run_tw(ctx)) 1205 return -EEXIST; 1206 1207 check_cq = READ_ONCE(ctx->check_cq); 1208 if (unlikely(check_cq)) { 1209 if (check_cq & BIT(IO_CHECK_CQ_OVERFLOW_BIT)) 1210 __io_cqring_overflow_flush(ctx, false); 1211 /* 1212 * Similarly do not spin if we have not informed the user of any 1213 * dropped CQE. 1214 */ 1215 if (check_cq & BIT(IO_CHECK_CQ_DROPPED_BIT)) 1216 return -EBADR; 1217 } 1218 /* 1219 * Don't enter poll loop if we already have events pending. 1220 * If we do, we can potentially be spinning for commands that 1221 * already triggered a CQE (eg in error). 1222 */ 1223 if (io_cqring_events(ctx)) 1224 return 0; 1225 1226 do { 1227 int ret = 0; 1228 1229 /* 1230 * If a submit got punted to a workqueue, we can have the 1231 * application entering polling for a command before it gets 1232 * issued. That app will hold the uring_lock for the duration 1233 * of the poll right here, so we need to take a breather every 1234 * now and then to ensure that the issue has a chance to add 1235 * the poll to the issued list. Otherwise we can spin here 1236 * forever, while the workqueue is stuck trying to acquire the 1237 * very same mutex. 1238 */ 1239 if (list_empty(&ctx->iopoll_list) || io_task_work_pending(ctx)) { 1240 (void) io_run_local_work_locked(ctx, min_events); 1241 1242 if (task_work_pending(current) || list_empty(&ctx->iopoll_list)) { 1243 mutex_unlock(&ctx->uring_lock); 1244 io_run_task_work(); 1245 mutex_lock(&ctx->uring_lock); 1246 } 1247 /* some requests don't go through iopoll_list */ 1248 if (list_empty(&ctx->iopoll_list)) 1249 break; 1250 } 1251 ret = io_do_iopoll(ctx, !min_events); 1252 if (unlikely(ret < 0)) 1253 return ret; 1254 1255 if (task_sigpending(current)) 1256 return -EINTR; 1257 if (need_resched()) 1258 break; 1259 } while (io_cqring_events(ctx) < min_events); 1260 1261 return 0; 1262 } 1263 1264 void io_req_task_complete(struct io_tw_req tw_req, io_tw_token_t tw) 1265 { 1266 io_req_complete_defer(tw_req.req); 1267 } 1268 1269 /* 1270 * After the iocb has been issued, it's safe to be found on the poll list. 1271 * Adding the kiocb to the list AFTER submission ensures that we don't 1272 * find it from a io_do_iopoll() thread before the issuer is done 1273 * accessing the kiocb cookie. 1274 */ 1275 static void io_iopoll_req_issued(struct io_kiocb *req, unsigned int issue_flags) 1276 { 1277 struct io_ring_ctx *ctx = req->ctx; 1278 const bool needs_lock = issue_flags & IO_URING_F_UNLOCKED; 1279 1280 /* workqueue context doesn't hold uring_lock, grab it now */ 1281 if (unlikely(needs_lock)) 1282 mutex_lock(&ctx->uring_lock); 1283 1284 /* 1285 * Track whether we have multiple files in our lists. This will impact 1286 * how we do polling eventually, not spinning if we're on potentially 1287 * different devices. 1288 */ 1289 if (list_empty(&ctx->iopoll_list)) { 1290 ctx->poll_multi_queue = false; 1291 } else if (!ctx->poll_multi_queue) { 1292 struct io_kiocb *list_req; 1293 1294 list_req = list_first_entry(&ctx->iopoll_list, struct io_kiocb, iopoll_node); 1295 if (list_req->file != req->file) 1296 ctx->poll_multi_queue = true; 1297 } 1298 1299 list_add_tail(&req->iopoll_node, &ctx->iopoll_list); 1300 1301 if (unlikely(needs_lock)) { 1302 /* 1303 * If IORING_SETUP_SQPOLL is enabled, sqes are either handle 1304 * in sq thread task context or in io worker task context. If 1305 * current task context is sq thread, we don't need to check 1306 * whether should wake up sq thread. 1307 */ 1308 if ((ctx->flags & IORING_SETUP_SQPOLL) && 1309 wq_has_sleeper(&ctx->sq_data->wait)) 1310 wake_up(&ctx->sq_data->wait); 1311 1312 mutex_unlock(&ctx->uring_lock); 1313 } 1314 } 1315 1316 io_req_flags_t io_file_get_flags(struct file *file) 1317 { 1318 io_req_flags_t res = 0; 1319 1320 BUILD_BUG_ON(REQ_F_ISREG_BIT != REQ_F_SUPPORT_NOWAIT_BIT + 1); 1321 1322 if (S_ISREG(file_inode(file)->i_mode)) 1323 res |= REQ_F_ISREG; 1324 if ((file->f_flags & O_NONBLOCK) || (file->f_mode & FMODE_NOWAIT)) 1325 res |= REQ_F_SUPPORT_NOWAIT; 1326 return res; 1327 } 1328 1329 static __cold void io_drain_req(struct io_kiocb *req) 1330 __must_hold(&ctx->uring_lock) 1331 { 1332 struct io_ring_ctx *ctx = req->ctx; 1333 bool drain = req->flags & IOSQE_IO_DRAIN; 1334 struct io_defer_entry *de; 1335 1336 de = kmalloc_obj(*de, GFP_KERNEL_ACCOUNT); 1337 if (!de) { 1338 io_req_defer_failed(req, -ENOMEM); 1339 return; 1340 } 1341 1342 io_prep_async_link(req); 1343 trace_io_uring_defer(req); 1344 de->req = req; 1345 1346 ctx->nr_drained += io_linked_nr(req); 1347 list_add_tail(&de->list, &ctx->defer_list); 1348 io_queue_deferred(ctx); 1349 if (!drain && list_empty(&ctx->defer_list)) 1350 ctx->int_flags &= ~IO_RING_F_DRAIN_ACTIVE; 1351 } 1352 1353 static bool io_assign_file(struct io_kiocb *req, const struct io_issue_def *def, 1354 unsigned int issue_flags) 1355 { 1356 if (req->file || !def->needs_file) 1357 return true; 1358 1359 if (req->flags & REQ_F_FIXED_FILE) 1360 req->file = io_file_get_fixed(req, req->cqe.fd, issue_flags); 1361 else 1362 req->file = io_file_get_normal(req, req->cqe.fd); 1363 1364 return !!req->file; 1365 } 1366 1367 #define REQ_ISSUE_SLOW_FLAGS (REQ_F_CREDS | REQ_F_ARM_LTIMEOUT) 1368 1369 static inline int __io_issue_sqe(struct io_kiocb *req, 1370 unsigned int issue_flags, 1371 const struct io_issue_def *def) 1372 { 1373 const struct cred *creds = NULL; 1374 struct io_kiocb *link = NULL; 1375 int ret; 1376 1377 if (unlikely(req->flags & REQ_ISSUE_SLOW_FLAGS)) { 1378 if ((req->flags & REQ_F_CREDS) && req->creds != current_cred()) 1379 creds = override_creds(req->creds); 1380 if (req->flags & REQ_F_ARM_LTIMEOUT) 1381 link = __io_prep_linked_timeout(req); 1382 } 1383 1384 if (!def->audit_skip) 1385 audit_uring_entry(req->opcode); 1386 1387 ret = def->issue(req, issue_flags); 1388 1389 if (!def->audit_skip) 1390 audit_uring_exit(!ret, ret); 1391 1392 if (unlikely(creds || link)) { 1393 if (creds) 1394 revert_creds(creds); 1395 if (link) 1396 io_queue_linked_timeout(link); 1397 } 1398 1399 return ret; 1400 } 1401 1402 static int io_issue_sqe(struct io_kiocb *req, unsigned int issue_flags) 1403 { 1404 const struct io_issue_def *def = &io_issue_defs[req->opcode]; 1405 int ret; 1406 1407 if (unlikely(!io_assign_file(req, def, issue_flags))) 1408 return -EBADF; 1409 1410 ret = __io_issue_sqe(req, issue_flags, def); 1411 1412 if (ret == IOU_COMPLETE) { 1413 if (issue_flags & IO_URING_F_COMPLETE_DEFER) 1414 io_req_complete_defer(req); 1415 else 1416 io_req_complete_post(req, issue_flags); 1417 1418 return 0; 1419 } 1420 1421 if (ret == IOU_ISSUE_SKIP_COMPLETE) { 1422 ret = 0; 1423 1424 if (req->flags & REQ_F_IOPOLL) 1425 io_iopoll_req_issued(req, issue_flags); 1426 } 1427 return ret; 1428 } 1429 1430 int io_poll_issue(struct io_kiocb *req, io_tw_token_t tw) 1431 { 1432 const unsigned int issue_flags = IO_URING_F_NONBLOCK | 1433 IO_URING_F_MULTISHOT | 1434 IO_URING_F_COMPLETE_DEFER; 1435 int ret; 1436 1437 io_tw_lock(req->ctx, tw); 1438 1439 WARN_ON_ONCE(!req->file); 1440 if (WARN_ON_ONCE(req->flags & REQ_F_IOPOLL)) 1441 return -EFAULT; 1442 1443 ret = __io_issue_sqe(req, issue_flags, &io_issue_defs[req->opcode]); 1444 1445 WARN_ON_ONCE(ret == IOU_ISSUE_SKIP_COMPLETE); 1446 return ret; 1447 } 1448 1449 struct io_wq_work *io_wq_free_work(struct io_wq_work *work) 1450 { 1451 struct io_kiocb *req = container_of(work, struct io_kiocb, work); 1452 struct io_kiocb *nxt = NULL; 1453 1454 if (req_ref_put_and_test_atomic(req)) { 1455 if (req->flags & IO_REQ_LINK_FLAGS) 1456 nxt = io_req_find_next(req); 1457 io_free_req(req); 1458 } 1459 return nxt ? &nxt->work : NULL; 1460 } 1461 1462 void io_wq_submit_work(struct io_wq_work *work) 1463 { 1464 struct io_kiocb *req = container_of(work, struct io_kiocb, work); 1465 const struct io_issue_def *def = &io_issue_defs[req->opcode]; 1466 unsigned int issue_flags = IO_URING_F_UNLOCKED | IO_URING_F_IOWQ; 1467 bool needs_poll = false; 1468 int ret = 0, err = -ECANCELED; 1469 1470 /* one will be dropped by io_wq_free_work() after returning to io-wq */ 1471 if (!(req->flags & REQ_F_REFCOUNT)) 1472 __io_req_set_refcount(req, 2); 1473 else 1474 req_ref_get(req); 1475 1476 /* either cancelled or io-wq is dying, so don't touch tctx->iowq */ 1477 if (atomic_read(&work->flags) & IO_WQ_WORK_CANCEL) { 1478 fail: 1479 io_req_task_queue_fail(req, err); 1480 return; 1481 } 1482 if (!io_assign_file(req, def, issue_flags)) { 1483 err = -EBADF; 1484 atomic_or(IO_WQ_WORK_CANCEL, &work->flags); 1485 goto fail; 1486 } 1487 1488 /* 1489 * If DEFER_TASKRUN is set, it's only allowed to post CQEs from the 1490 * submitter task context. Final request completions are handed to the 1491 * right context, however this is not the case of auxiliary CQEs, 1492 * which is the main mean of operation for multishot requests. 1493 * Don't allow any multishot execution from io-wq. It's more restrictive 1494 * than necessary and also cleaner. 1495 */ 1496 if (req->flags & (REQ_F_MULTISHOT|REQ_F_APOLL_MULTISHOT)) { 1497 err = -EBADFD; 1498 if (!io_file_can_poll(req)) 1499 goto fail; 1500 if (req->file->f_flags & O_NONBLOCK || 1501 req->file->f_mode & FMODE_NOWAIT) { 1502 err = -ECANCELED; 1503 if (io_arm_poll_handler(req, issue_flags) != IO_APOLL_OK) 1504 goto fail; 1505 return; 1506 } else { 1507 req->flags &= ~(REQ_F_APOLL_MULTISHOT|REQ_F_MULTISHOT); 1508 } 1509 } 1510 1511 if (req->flags & REQ_F_FORCE_ASYNC) { 1512 bool opcode_poll = def->pollin || def->pollout; 1513 1514 if (opcode_poll && io_file_can_poll(req)) { 1515 needs_poll = true; 1516 issue_flags |= IO_URING_F_NONBLOCK; 1517 } 1518 } 1519 1520 do { 1521 ret = io_issue_sqe(req, issue_flags); 1522 if (ret != -EAGAIN) 1523 break; 1524 1525 /* 1526 * If REQ_F_NOWAIT is set, then don't wait or retry with 1527 * poll. -EAGAIN is final for that case. 1528 */ 1529 if (req->flags & REQ_F_NOWAIT) 1530 break; 1531 1532 /* 1533 * We can get EAGAIN for iopolled IO even though we're 1534 * forcing a sync submission from here, since we can't 1535 * wait for request slots on the block side. 1536 */ 1537 if (!needs_poll) { 1538 if (!(req->flags & REQ_F_IOPOLL)) 1539 break; 1540 if (io_wq_worker_stopped()) 1541 break; 1542 cond_resched(); 1543 continue; 1544 } 1545 1546 if (io_arm_poll_handler(req, issue_flags) == IO_APOLL_OK) 1547 return; 1548 /* aborted or ready, in either case retry blocking */ 1549 needs_poll = false; 1550 issue_flags &= ~IO_URING_F_NONBLOCK; 1551 } while (1); 1552 1553 /* avoid locking problems by failing it from a clean context */ 1554 if (ret) 1555 io_req_task_queue_fail(req, ret); 1556 } 1557 1558 inline struct file *io_file_get_fixed(struct io_kiocb *req, int fd, 1559 unsigned int issue_flags) 1560 { 1561 struct io_ring_ctx *ctx = req->ctx; 1562 struct io_rsrc_node *node; 1563 struct file *file = NULL; 1564 1565 io_ring_submit_lock(ctx, issue_flags); 1566 node = io_rsrc_node_lookup(&ctx->file_table.data, fd); 1567 if (node) { 1568 node->refs++; 1569 req->file_node = node; 1570 req->flags |= io_slot_flags(node); 1571 file = io_slot_file(node); 1572 } 1573 io_ring_submit_unlock(ctx, issue_flags); 1574 return file; 1575 } 1576 1577 struct file *io_file_get_normal(struct io_kiocb *req, int fd) 1578 { 1579 struct file *file = fget(fd); 1580 1581 trace_io_uring_file_get(req, fd); 1582 1583 /* we don't allow fixed io_uring files */ 1584 if (file && io_is_uring_fops(file)) 1585 io_req_track_inflight(req); 1586 return file; 1587 } 1588 1589 static int io_req_sqe_copy(struct io_kiocb *req, unsigned int issue_flags) 1590 { 1591 const struct io_cold_def *def = &io_cold_defs[req->opcode]; 1592 1593 if (req->flags & REQ_F_SQE_COPIED) 1594 return 0; 1595 req->flags |= REQ_F_SQE_COPIED; 1596 if (!def->sqe_copy) 1597 return 0; 1598 if (WARN_ON_ONCE(!(issue_flags & IO_URING_F_INLINE))) 1599 return -EFAULT; 1600 def->sqe_copy(req); 1601 return 0; 1602 } 1603 1604 static void io_queue_async(struct io_kiocb *req, unsigned int issue_flags, int ret) 1605 __must_hold(&req->ctx->uring_lock) 1606 { 1607 if (ret != -EAGAIN || (req->flags & REQ_F_NOWAIT)) { 1608 fail: 1609 io_req_defer_failed(req, ret); 1610 return; 1611 } 1612 1613 ret = io_req_sqe_copy(req, issue_flags); 1614 if (unlikely(ret)) 1615 goto fail; 1616 1617 switch (io_arm_poll_handler(req, 0)) { 1618 case IO_APOLL_READY: 1619 io_req_task_queue(req); 1620 break; 1621 case IO_APOLL_ABORTED: 1622 io_queue_iowq(req); 1623 break; 1624 case IO_APOLL_OK: 1625 break; 1626 } 1627 } 1628 1629 static inline void io_queue_sqe(struct io_kiocb *req, unsigned int extra_flags) 1630 __must_hold(&req->ctx->uring_lock) 1631 { 1632 unsigned int issue_flags = IO_URING_F_NONBLOCK | 1633 IO_URING_F_COMPLETE_DEFER | extra_flags; 1634 int ret; 1635 1636 ret = io_issue_sqe(req, issue_flags); 1637 1638 /* 1639 * We async punt it if the file wasn't marked NOWAIT, or if the file 1640 * doesn't support non-blocking read/write attempts 1641 */ 1642 if (unlikely(ret)) 1643 io_queue_async(req, issue_flags, ret); 1644 } 1645 1646 static void io_queue_sqe_fallback(struct io_kiocb *req) 1647 __must_hold(&req->ctx->uring_lock) 1648 { 1649 if (unlikely(req->flags & REQ_F_FAIL)) { 1650 /* 1651 * We don't submit, fail them all, for that replace hardlinks 1652 * with normal links. Extra REQ_F_LINK is tolerated. 1653 */ 1654 req->flags &= ~REQ_F_HARDLINK; 1655 req->flags |= REQ_F_LINK; 1656 io_req_defer_failed(req, req->cqe.res); 1657 } else { 1658 /* can't fail with IO_URING_F_INLINE */ 1659 io_req_sqe_copy(req, IO_URING_F_INLINE); 1660 if (unlikely(req->ctx->int_flags & IO_RING_F_DRAIN_ACTIVE)) 1661 io_drain_req(req); 1662 else 1663 io_queue_iowq(req); 1664 } 1665 } 1666 1667 /* 1668 * Check SQE restrictions (opcode and flags). 1669 * 1670 * Returns 'true' if SQE is allowed, 'false' otherwise. 1671 */ 1672 static inline bool io_check_restriction(struct io_ring_ctx *ctx, 1673 struct io_kiocb *req, 1674 unsigned int sqe_flags) 1675 { 1676 if (!(ctx->int_flags & IO_RING_F_OP_RESTRICTED)) 1677 return true; 1678 if (!test_bit(req->opcode, ctx->restrictions.sqe_op)) 1679 return false; 1680 1681 if ((sqe_flags & ctx->restrictions.sqe_flags_required) != 1682 ctx->restrictions.sqe_flags_required) 1683 return false; 1684 1685 if (sqe_flags & ~(ctx->restrictions.sqe_flags_allowed | 1686 ctx->restrictions.sqe_flags_required)) 1687 return false; 1688 1689 return true; 1690 } 1691 1692 static void io_init_drain(struct io_ring_ctx *ctx) 1693 { 1694 struct io_kiocb *head = ctx->submit_state.link.head; 1695 1696 ctx->int_flags |= IO_RING_F_DRAIN_ACTIVE; 1697 if (head) { 1698 /* 1699 * If we need to drain a request in the middle of a link, drain 1700 * the head request and the next request/link after the current 1701 * link. Considering sequential execution of links, 1702 * REQ_F_IO_DRAIN will be maintained for every request of our 1703 * link. 1704 */ 1705 head->flags |= REQ_F_IO_DRAIN | REQ_F_FORCE_ASYNC; 1706 ctx->int_flags |= IO_RING_F_DRAIN_NEXT; 1707 } 1708 } 1709 1710 static __cold int io_init_fail_req(struct io_kiocb *req, int err) 1711 { 1712 /* ensure per-opcode data is cleared if we fail before prep */ 1713 memset(&req->cmd.data, 0, sizeof(req->cmd.data)); 1714 return err; 1715 } 1716 1717 static int io_init_req(struct io_ring_ctx *ctx, struct io_kiocb *req, 1718 const struct io_uring_sqe *sqe, unsigned int *left) 1719 __must_hold(&ctx->uring_lock) 1720 { 1721 const struct io_issue_def *def; 1722 unsigned int sqe_flags; 1723 int personality; 1724 u8 opcode; 1725 1726 req->ctx = ctx; 1727 req->opcode = opcode = READ_ONCE(sqe->opcode); 1728 /* same numerical values with corresponding REQ_F_*, safe to copy */ 1729 sqe_flags = READ_ONCE(sqe->flags); 1730 req->flags = (__force io_req_flags_t) sqe_flags; 1731 req->cqe.user_data = READ_ONCE(sqe->user_data); 1732 req->file = NULL; 1733 req->tctx = current->io_uring; 1734 req->cancel_seq_set = false; 1735 req->async_data = NULL; 1736 1737 if (unlikely(opcode >= IORING_OP_LAST)) { 1738 req->opcode = 0; 1739 return io_init_fail_req(req, -EINVAL); 1740 } 1741 opcode = array_index_nospec(opcode, IORING_OP_LAST); 1742 1743 def = &io_issue_defs[opcode]; 1744 if (def->is_128 && !(ctx->flags & IORING_SETUP_SQE128)) { 1745 /* 1746 * A 128b op on a non-128b SQ requires mixed SQE support as 1747 * well as 2 contiguous entries. 1748 */ 1749 if (!(ctx->flags & IORING_SETUP_SQE_MIXED) || *left < 2 || 1750 (unsigned)(sqe - ctx->sq_sqes) >= ctx->sq_entries - 1) 1751 return io_init_fail_req(req, -EINVAL); 1752 /* 1753 * A 128b operation on a mixed SQ uses two entries, so we have 1754 * to increment the head and cached refs, and decrement what's 1755 * left. 1756 */ 1757 current->io_uring->cached_refs++; 1758 ctx->cached_sq_head++; 1759 (*left)--; 1760 } 1761 1762 if (unlikely(sqe_flags & ~SQE_COMMON_FLAGS)) { 1763 /* enforce forwards compatibility on users */ 1764 if (sqe_flags & ~SQE_VALID_FLAGS) 1765 return io_init_fail_req(req, -EINVAL); 1766 if (sqe_flags & IOSQE_BUFFER_SELECT) { 1767 if (!def->buffer_select) 1768 return io_init_fail_req(req, -EOPNOTSUPP); 1769 req->buf_index = READ_ONCE(sqe->buf_group); 1770 } 1771 if (sqe_flags & IOSQE_CQE_SKIP_SUCCESS) 1772 ctx->int_flags |= IO_RING_F_DRAIN_DISABLED; 1773 if (sqe_flags & IOSQE_IO_DRAIN) { 1774 if (ctx->int_flags & IO_RING_F_DRAIN_DISABLED) 1775 return io_init_fail_req(req, -EOPNOTSUPP); 1776 io_init_drain(ctx); 1777 } 1778 } 1779 if (unlikely(ctx->int_flags & (IO_RING_F_OP_RESTRICTED | IO_RING_F_DRAIN_ACTIVE | IO_RING_F_DRAIN_NEXT))) { 1780 if (!io_check_restriction(ctx, req, sqe_flags)) 1781 return io_init_fail_req(req, -EACCES); 1782 /* knock it to the slow queue path, will be drained there */ 1783 if (ctx->int_flags & IO_RING_F_DRAIN_ACTIVE) 1784 req->flags |= REQ_F_FORCE_ASYNC; 1785 /* if there is no link, we're at "next" request and need to drain */ 1786 if (unlikely(ctx->int_flags & IO_RING_F_DRAIN_NEXT) && !ctx->submit_state.link.head) { 1787 ctx->int_flags &= ~IO_RING_F_DRAIN_NEXT; 1788 ctx->int_flags |= IO_RING_F_DRAIN_ACTIVE; 1789 req->flags |= REQ_F_IO_DRAIN | REQ_F_FORCE_ASYNC; 1790 } 1791 } 1792 1793 if (!def->ioprio && sqe->ioprio) 1794 return io_init_fail_req(req, -EINVAL); 1795 if (!def->iopoll && (ctx->flags & IORING_SETUP_IOPOLL)) 1796 return io_init_fail_req(req, -EINVAL); 1797 1798 if (def->needs_file) { 1799 struct io_submit_state *state = &ctx->submit_state; 1800 1801 req->cqe.fd = READ_ONCE(sqe->fd); 1802 1803 /* 1804 * Plug now if we have more than 2 IO left after this, and the 1805 * target is potentially a read/write to block based storage. 1806 */ 1807 if (state->need_plug && def->plug) { 1808 state->plug_started = true; 1809 state->need_plug = false; 1810 blk_start_plug_nr_ios(&state->plug, state->submit_nr); 1811 } 1812 } 1813 1814 personality = READ_ONCE(sqe->personality); 1815 if (personality) { 1816 int ret; 1817 1818 req->creds = xa_load(&ctx->personalities, personality); 1819 if (!req->creds) 1820 return io_init_fail_req(req, -EINVAL); 1821 get_cred(req->creds); 1822 ret = security_uring_override_creds(req->creds); 1823 if (ret) { 1824 put_cred(req->creds); 1825 return io_init_fail_req(req, ret); 1826 } 1827 req->flags |= REQ_F_CREDS; 1828 } 1829 1830 return def->prep(req, sqe); 1831 } 1832 1833 static __cold int io_submit_fail_init(const struct io_uring_sqe *sqe, 1834 struct io_kiocb *req, int ret) 1835 { 1836 struct io_ring_ctx *ctx = req->ctx; 1837 struct io_submit_link *link = &ctx->submit_state.link; 1838 struct io_kiocb *head = link->head; 1839 1840 trace_io_uring_req_failed(sqe, req, ret); 1841 1842 /* 1843 * Avoid breaking links in the middle as it renders links with SQPOLL 1844 * unusable. Instead of failing eagerly, continue assembling the link if 1845 * applicable and mark the head with REQ_F_FAIL. The link flushing code 1846 * should find the flag and handle the rest. 1847 */ 1848 req_fail_link_node(req, ret); 1849 if (head && !(head->flags & REQ_F_FAIL)) 1850 req_fail_link_node(head, -ECANCELED); 1851 1852 if (!(req->flags & IO_REQ_LINK_FLAGS)) { 1853 if (head) { 1854 link->last->link = req; 1855 link->head = NULL; 1856 req = head; 1857 } 1858 io_queue_sqe_fallback(req); 1859 return ret; 1860 } 1861 1862 if (head) 1863 link->last->link = req; 1864 else 1865 link->head = req; 1866 link->last = req; 1867 return 0; 1868 } 1869 1870 static inline int io_submit_sqe(struct io_ring_ctx *ctx, struct io_kiocb *req, 1871 const struct io_uring_sqe *sqe, unsigned int *left) 1872 __must_hold(&ctx->uring_lock) 1873 { 1874 struct io_submit_link *link = &ctx->submit_state.link; 1875 int ret; 1876 1877 ret = io_init_req(ctx, req, sqe, left); 1878 if (unlikely(ret)) 1879 return io_submit_fail_init(sqe, req, ret); 1880 1881 if (unlikely(ctx->bpf_filters)) { 1882 ret = io_uring_run_bpf_filters(ctx->bpf_filters, req); 1883 if (ret) 1884 return io_submit_fail_init(sqe, req, ret); 1885 } 1886 1887 trace_io_uring_submit_req(req); 1888 1889 /* 1890 * If we already have a head request, queue this one for async 1891 * submittal once the head completes. If we don't have a head but 1892 * IOSQE_IO_LINK is set in the sqe, start a new head. This one will be 1893 * submitted sync once the chain is complete. If none of those 1894 * conditions are true (normal request), then just queue it. 1895 */ 1896 if (unlikely(link->head)) { 1897 trace_io_uring_link(req, link->last); 1898 io_req_sqe_copy(req, IO_URING_F_INLINE); 1899 link->last->link = req; 1900 link->last = req; 1901 1902 if (req->flags & IO_REQ_LINK_FLAGS) 1903 return 0; 1904 /* last request of the link, flush it */ 1905 req = link->head; 1906 link->head = NULL; 1907 if (req->flags & (REQ_F_FORCE_ASYNC | REQ_F_FAIL)) 1908 goto fallback; 1909 1910 } else if (unlikely(req->flags & (IO_REQ_LINK_FLAGS | 1911 REQ_F_FORCE_ASYNC | REQ_F_FAIL))) { 1912 if (req->flags & IO_REQ_LINK_FLAGS) { 1913 link->head = req; 1914 link->last = req; 1915 } else { 1916 fallback: 1917 io_queue_sqe_fallback(req); 1918 } 1919 return 0; 1920 } 1921 1922 io_queue_sqe(req, IO_URING_F_INLINE); 1923 return 0; 1924 } 1925 1926 /* 1927 * Batched submission is done, ensure local IO is flushed out. 1928 */ 1929 static void io_submit_state_end(struct io_ring_ctx *ctx) 1930 { 1931 struct io_submit_state *state = &ctx->submit_state; 1932 1933 if (unlikely(state->link.head)) 1934 io_queue_sqe_fallback(state->link.head); 1935 /* flush only after queuing links as they can generate completions */ 1936 io_submit_flush_completions(ctx); 1937 if (state->plug_started) 1938 blk_finish_plug(&state->plug); 1939 } 1940 1941 /* 1942 * Start submission side cache. 1943 */ 1944 static void io_submit_state_start(struct io_submit_state *state, 1945 unsigned int max_ios) 1946 { 1947 state->plug_started = false; 1948 state->need_plug = max_ios > 2; 1949 state->submit_nr = max_ios; 1950 /* set only head, no need to init link_last in advance */ 1951 state->link.head = NULL; 1952 } 1953 1954 static void io_commit_sqring(struct io_ring_ctx *ctx) 1955 { 1956 struct io_rings *rings = ctx->rings; 1957 1958 if (ctx->flags & IORING_SETUP_SQ_REWIND) { 1959 ctx->cached_sq_head = 0; 1960 } else { 1961 /* 1962 * Ensure any loads from the SQEs are done at this point, 1963 * since once we write the new head, the application could 1964 * write new data to them. 1965 */ 1966 smp_store_release(&rings->sq.head, ctx->cached_sq_head); 1967 } 1968 } 1969 1970 /* 1971 * Fetch an sqe, if one is available. Note this returns a pointer to memory 1972 * that is mapped by userspace. This means that care needs to be taken to 1973 * ensure that reads are stable, as we cannot rely on userspace always 1974 * being a good citizen. If members of the sqe are validated and then later 1975 * used, it's important that those reads are done through READ_ONCE() to 1976 * prevent a re-load down the line. 1977 */ 1978 static bool io_get_sqe(struct io_ring_ctx *ctx, const struct io_uring_sqe **sqe) 1979 { 1980 unsigned mask = ctx->sq_entries - 1; 1981 unsigned head = ctx->cached_sq_head++ & mask; 1982 1983 if (static_branch_unlikely(&io_key_has_sqarray.key) && 1984 (!(ctx->flags & IORING_SETUP_NO_SQARRAY))) { 1985 head = READ_ONCE(ctx->sq_array[head]); 1986 if (unlikely(head >= ctx->sq_entries)) { 1987 WRITE_ONCE(ctx->rings->sq_dropped, 1988 READ_ONCE(ctx->rings->sq_dropped) + 1); 1989 return false; 1990 } 1991 head = array_index_nospec(head, ctx->sq_entries); 1992 } 1993 1994 /* 1995 * The cached sq head (or cq tail) serves two purposes: 1996 * 1997 * 1) allows us to batch the cost of updating the user visible 1998 * head updates. 1999 * 2) allows the kernel side to track the head on its own, even 2000 * though the application is the one updating it. 2001 */ 2002 2003 /* double index for 128-byte SQEs, twice as long */ 2004 if (ctx->flags & IORING_SETUP_SQE128) 2005 head <<= 1; 2006 *sqe = &ctx->sq_sqes[head]; 2007 return true; 2008 } 2009 2010 int io_submit_sqes(struct io_ring_ctx *ctx, unsigned int nr) 2011 __must_hold(&ctx->uring_lock) 2012 { 2013 unsigned int entries; 2014 unsigned int left; 2015 int ret; 2016 2017 if (ctx->flags & IORING_SETUP_SQ_REWIND) 2018 entries = ctx->sq_entries; 2019 else 2020 entries = __io_sqring_entries(ctx); 2021 2022 entries = min(nr, entries); 2023 if (unlikely(!entries)) 2024 return 0; 2025 2026 ret = left = entries; 2027 io_get_task_refs(left); 2028 io_submit_state_start(&ctx->submit_state, left); 2029 2030 do { 2031 const struct io_uring_sqe *sqe; 2032 struct io_kiocb *req; 2033 2034 if (unlikely(!io_alloc_req(ctx, &req))) 2035 break; 2036 if (unlikely(!io_get_sqe(ctx, &sqe))) { 2037 io_req_add_to_cache(req, ctx); 2038 break; 2039 } 2040 2041 /* 2042 * Continue submitting even for sqe failure if the 2043 * ring was setup with IORING_SETUP_SUBMIT_ALL 2044 */ 2045 if (unlikely(io_submit_sqe(ctx, req, sqe, &left)) && 2046 !(ctx->flags & IORING_SETUP_SUBMIT_ALL)) { 2047 left--; 2048 break; 2049 } 2050 } while (--left); 2051 2052 if (unlikely(left)) { 2053 ret -= left; 2054 /* try again if it submitted nothing and can't allocate a req */ 2055 if (!ret && io_req_cache_empty(ctx)) 2056 ret = -EAGAIN; 2057 current->io_uring->cached_refs += left; 2058 } 2059 2060 io_submit_state_end(ctx); 2061 /* Commit SQ ring head once we've consumed and submitted all SQEs */ 2062 io_commit_sqring(ctx); 2063 return ret; 2064 } 2065 2066 static void io_rings_free(struct io_ring_ctx *ctx) 2067 { 2068 io_free_region(ctx->user, &ctx->sq_region); 2069 io_free_region(ctx->user, &ctx->ring_region); 2070 ctx->rings = NULL; 2071 RCU_INIT_POINTER(ctx->rings_rcu, NULL); 2072 ctx->sq_sqes = NULL; 2073 } 2074 2075 static int rings_size(unsigned int flags, unsigned int sq_entries, 2076 unsigned int cq_entries, struct io_rings_layout *rl) 2077 { 2078 struct io_rings *rings; 2079 size_t sqe_size; 2080 size_t off; 2081 2082 if (flags & IORING_SETUP_CQE_MIXED) { 2083 if (cq_entries < 2) 2084 return -EOVERFLOW; 2085 } 2086 if (flags & IORING_SETUP_SQE_MIXED) { 2087 if (sq_entries < 2) 2088 return -EOVERFLOW; 2089 } 2090 2091 rl->sq_array_offset = SIZE_MAX; 2092 2093 sqe_size = sizeof(struct io_uring_sqe); 2094 if (flags & IORING_SETUP_SQE128) 2095 sqe_size *= 2; 2096 2097 rl->sq_size = array_size(sqe_size, sq_entries); 2098 if (rl->sq_size == SIZE_MAX) 2099 return -EOVERFLOW; 2100 2101 off = struct_size(rings, cqes, cq_entries); 2102 if (flags & IORING_SETUP_CQE32) 2103 off = size_mul(off, 2); 2104 if (off == SIZE_MAX) 2105 return -EOVERFLOW; 2106 2107 #ifdef CONFIG_SMP 2108 off = ALIGN(off, SMP_CACHE_BYTES); 2109 if (off == 0) 2110 return -EOVERFLOW; 2111 #endif 2112 2113 if (!(flags & IORING_SETUP_NO_SQARRAY)) { 2114 size_t sq_array_size; 2115 2116 rl->sq_array_offset = off; 2117 2118 sq_array_size = array_size(sizeof(u32), sq_entries); 2119 off = size_add(off, sq_array_size); 2120 if (off == SIZE_MAX) 2121 return -EOVERFLOW; 2122 } 2123 2124 rl->rings_size = off; 2125 return 0; 2126 } 2127 2128 static __cold void __io_req_caches_free(struct io_ring_ctx *ctx) 2129 { 2130 struct io_kiocb *req; 2131 int nr = 0; 2132 2133 while (!io_req_cache_empty(ctx)) { 2134 req = io_extract_req(ctx); 2135 io_poison_req(req); 2136 kmem_cache_free(req_cachep, req); 2137 nr++; 2138 } 2139 if (nr) { 2140 ctx->nr_req_allocated -= nr; 2141 percpu_ref_put_many(&ctx->refs, nr); 2142 } 2143 } 2144 2145 static __cold void io_req_caches_free(struct io_ring_ctx *ctx) 2146 { 2147 guard(mutex)(&ctx->uring_lock); 2148 __io_req_caches_free(ctx); 2149 } 2150 2151 static __cold void io_ring_ctx_free(struct io_ring_ctx *ctx) 2152 { 2153 io_unregister_bpf_ops(ctx); 2154 io_sq_thread_finish(ctx); 2155 2156 mutex_lock(&ctx->uring_lock); 2157 io_sqe_buffers_unregister(ctx); 2158 io_sqe_files_unregister(ctx); 2159 io_unregister_zcrx(ctx); 2160 io_cqring_overflow_kill(ctx); 2161 io_eventfd_unregister(ctx); 2162 io_free_alloc_caches(ctx); 2163 io_destroy_buffers(ctx); 2164 io_free_region(ctx->user, &ctx->param_region); 2165 mutex_unlock(&ctx->uring_lock); 2166 if (ctx->sq_creds) 2167 put_cred(ctx->sq_creds); 2168 if (ctx->submitter_task) 2169 put_task_struct(ctx->submitter_task); 2170 2171 WARN_ON_ONCE(!list_empty(&ctx->ltimeout_list)); 2172 2173 if (ctx->mm_account) { 2174 mmdrop(ctx->mm_account); 2175 ctx->mm_account = NULL; 2176 } 2177 io_rings_free(ctx); 2178 2179 if (!(ctx->flags & IORING_SETUP_NO_SQARRAY)) 2180 static_branch_slow_dec_deferred(&io_key_has_sqarray); 2181 2182 percpu_ref_exit(&ctx->refs); 2183 free_uid(ctx->user); 2184 io_req_caches_free(ctx); 2185 2186 if (ctx->restrictions.bpf_filters) { 2187 WARN_ON_ONCE(ctx->bpf_filters != 2188 ctx->restrictions.bpf_filters->filters); 2189 } else { 2190 WARN_ON_ONCE(ctx->bpf_filters); 2191 } 2192 io_put_bpf_filters(&ctx->restrictions); 2193 2194 WARN_ON_ONCE(ctx->nr_req_allocated); 2195 2196 if (ctx->hash_map) 2197 io_wq_put_hash(ctx->hash_map); 2198 io_napi_free(ctx); 2199 kvfree(ctx->cancel_table.hbs); 2200 xa_destroy(&ctx->io_bl_xa); 2201 kfree(ctx); 2202 } 2203 2204 static __cold void io_activate_pollwq_cb(struct callback_head *cb) 2205 { 2206 struct io_ring_ctx *ctx = container_of(cb, struct io_ring_ctx, 2207 poll_wq_task_work); 2208 2209 mutex_lock(&ctx->uring_lock); 2210 ctx->int_flags |= IO_RING_F_POLL_ACTIVATED; 2211 mutex_unlock(&ctx->uring_lock); 2212 2213 /* 2214 * Wake ups for some events between start of polling and activation 2215 * might've been lost due to loose synchronisation. 2216 */ 2217 wake_up_all(&ctx->poll_wq); 2218 percpu_ref_put(&ctx->refs); 2219 } 2220 2221 __cold void io_activate_pollwq(struct io_ring_ctx *ctx) 2222 { 2223 spin_lock(&ctx->completion_lock); 2224 /* already activated or in progress */ 2225 if ((ctx->int_flags & IO_RING_F_POLL_ACTIVATED) || ctx->poll_wq_task_work.func) 2226 goto out; 2227 if (WARN_ON_ONCE(!(ctx->int_flags & IO_RING_F_TASK_COMPLETE))) 2228 goto out; 2229 if (!ctx->submitter_task) 2230 goto out; 2231 /* 2232 * with ->submitter_task only the submitter task completes requests, we 2233 * only need to sync with it, which is done by injecting a tw 2234 */ 2235 init_task_work(&ctx->poll_wq_task_work, io_activate_pollwq_cb); 2236 percpu_ref_get(&ctx->refs); 2237 if (task_work_add(ctx->submitter_task, &ctx->poll_wq_task_work, TWA_SIGNAL)) 2238 percpu_ref_put(&ctx->refs); 2239 out: 2240 spin_unlock(&ctx->completion_lock); 2241 } 2242 2243 static __poll_t io_uring_poll(struct file *file, poll_table *wait) 2244 { 2245 struct io_ring_ctx *ctx = file->private_data; 2246 __poll_t mask = 0; 2247 2248 if (unlikely(!(data_race(ctx->int_flags) & IO_RING_F_POLL_ACTIVATED))) 2249 io_activate_pollwq(ctx); 2250 /* 2251 * provides mb() which pairs with barrier from wq_has_sleeper 2252 * call in io_commit_cqring 2253 */ 2254 poll_wait(file, &ctx->poll_wq, wait); 2255 2256 rcu_read_lock(); 2257 2258 if (!__io_sqring_full(ctx)) 2259 mask |= EPOLLOUT | EPOLLWRNORM; 2260 2261 /* 2262 * Don't flush cqring overflow list here, just do a simple check. 2263 * Otherwise there could possible be ABBA deadlock: 2264 * CPU0 CPU1 2265 * ---- ---- 2266 * lock(&ctx->uring_lock); 2267 * lock(&ep->mtx); 2268 * lock(&ctx->uring_lock); 2269 * lock(&ep->mtx); 2270 * 2271 * Users may get EPOLLIN meanwhile seeing nothing in cqring, this 2272 * pushes them to do the flush. 2273 */ 2274 2275 if (__io_cqring_events_user(ctx) || io_has_work(ctx)) 2276 mask |= EPOLLIN | EPOLLRDNORM; 2277 2278 rcu_read_unlock(); 2279 return mask; 2280 } 2281 2282 struct io_tctx_exit { 2283 struct callback_head task_work; 2284 struct completion completion; 2285 struct io_ring_ctx *ctx; 2286 }; 2287 2288 static __cold void io_tctx_exit_cb(struct callback_head *cb) 2289 { 2290 struct io_uring_task *tctx = current->io_uring; 2291 struct io_tctx_exit *work; 2292 2293 work = container_of(cb, struct io_tctx_exit, task_work); 2294 /* 2295 * When @in_cancel, we're in cancellation and it's racy to remove the 2296 * node. It'll be removed by the end of cancellation, just ignore it. 2297 * tctx can be NULL if the queueing of this task_work raced with 2298 * work cancelation off the exec path. 2299 */ 2300 if (tctx && !atomic_read(&tctx->in_cancel)) 2301 io_uring_del_tctx_node((unsigned long)work->ctx); 2302 complete(&work->completion); 2303 } 2304 2305 static __cold void io_ring_exit_work(struct work_struct *work) 2306 { 2307 struct io_ring_ctx *ctx = container_of(work, struct io_ring_ctx, exit_work); 2308 unsigned long timeout = jiffies + IO_URING_EXIT_WAIT_MAX; 2309 unsigned long interval = HZ / 20; 2310 struct io_tctx_exit exit; 2311 struct io_tctx_node *node; 2312 int ret; 2313 2314 mutex_lock(&ctx->uring_lock); 2315 io_terminate_zcrx(ctx); 2316 mutex_unlock(&ctx->uring_lock); 2317 2318 /* 2319 * If we're doing polled IO and end up having requests being 2320 * submitted async (out-of-line), then completions can come in while 2321 * we're waiting for refs to drop. We need to reap these manually, 2322 * as nobody else will be looking for them. 2323 */ 2324 do { 2325 if (test_bit(IO_CHECK_CQ_OVERFLOW_BIT, &ctx->check_cq)) { 2326 mutex_lock(&ctx->uring_lock); 2327 io_cqring_overflow_kill(ctx); 2328 mutex_unlock(&ctx->uring_lock); 2329 } 2330 2331 /* The SQPOLL thread never reaches this path */ 2332 do { 2333 if (ctx->flags & IORING_SETUP_DEFER_TASKRUN) 2334 io_move_task_work_from_local(ctx); 2335 cond_resched(); 2336 } while (io_uring_try_cancel_requests(ctx, NULL, true, false)); 2337 2338 if (ctx->sq_data) { 2339 struct io_sq_data *sqd = ctx->sq_data; 2340 struct task_struct *tsk; 2341 2342 io_sq_thread_park(sqd); 2343 tsk = sqpoll_task_locked(sqd); 2344 if (tsk && tsk->io_uring && tsk->io_uring->io_wq) 2345 io_wq_cancel_cb(tsk->io_uring->io_wq, 2346 io_cancel_ctx_cb, ctx, true); 2347 io_sq_thread_unpark(sqd); 2348 } 2349 2350 io_req_caches_free(ctx); 2351 2352 if (WARN_ON_ONCE(time_after(jiffies, timeout))) { 2353 /* there is little hope left, don't run it too often */ 2354 interval = HZ * 60; 2355 } 2356 /* 2357 * This is really an uninterruptible wait, as it has to be 2358 * complete. But it's also run from a kworker, which doesn't 2359 * take signals, so it's fine to make it interruptible. This 2360 * avoids scenarios where we knowingly can wait much longer 2361 * on completions, for example if someone does a SIGSTOP on 2362 * a task that needs to finish task_work to make this loop 2363 * complete. That's a synthetic situation that should not 2364 * cause a stuck task backtrace, and hence a potential panic 2365 * on stuck tasks if that is enabled. 2366 */ 2367 } while (!wait_for_completion_interruptible_timeout(&ctx->ref_comp, interval)); 2368 2369 init_completion(&exit.completion); 2370 init_task_work(&exit.task_work, io_tctx_exit_cb); 2371 exit.ctx = ctx; 2372 2373 mutex_lock(&ctx->uring_lock); 2374 mutex_lock(&ctx->tctx_lock); 2375 while (!list_empty(&ctx->tctx_list)) { 2376 WARN_ON_ONCE(time_after(jiffies, timeout)); 2377 2378 node = list_first_entry(&ctx->tctx_list, struct io_tctx_node, 2379 ctx_node); 2380 /* don't spin on a single task if cancellation failed */ 2381 list_rotate_left(&ctx->tctx_list); 2382 ret = task_work_add(node->task, &exit.task_work, TWA_SIGNAL); 2383 if (WARN_ON_ONCE(ret)) 2384 continue; 2385 2386 mutex_unlock(&ctx->tctx_lock); 2387 mutex_unlock(&ctx->uring_lock); 2388 /* 2389 * See comment above for 2390 * wait_for_completion_interruptible_timeout() on why this 2391 * wait is marked as interruptible. 2392 */ 2393 wait_for_completion_interruptible(&exit.completion); 2394 mutex_lock(&ctx->uring_lock); 2395 mutex_lock(&ctx->tctx_lock); 2396 } 2397 mutex_unlock(&ctx->tctx_lock); 2398 mutex_unlock(&ctx->uring_lock); 2399 spin_lock(&ctx->completion_lock); 2400 spin_unlock(&ctx->completion_lock); 2401 2402 /* pairs with RCU read section in io_req_local_work_add() */ 2403 if (ctx->flags & IORING_SETUP_DEFER_TASKRUN) 2404 synchronize_rcu(); 2405 2406 io_ring_ctx_free(ctx); 2407 } 2408 2409 static __cold void io_ring_ctx_wait_and_kill(struct io_ring_ctx *ctx) 2410 { 2411 unsigned long index; 2412 struct cred *creds; 2413 2414 mutex_lock(&ctx->uring_lock); 2415 percpu_ref_kill(&ctx->refs); 2416 xa_for_each(&ctx->personalities, index, creds) 2417 io_unregister_personality(ctx, index); 2418 mutex_unlock(&ctx->uring_lock); 2419 2420 flush_delayed_work(&ctx->fallback_work); 2421 2422 INIT_WORK(&ctx->exit_work, io_ring_exit_work); 2423 /* 2424 * Use system_dfl_wq to avoid spawning tons of event kworkers 2425 * if we're exiting a ton of rings at the same time. It just adds 2426 * noise and overhead, there's no discernable change in runtime 2427 * over using system_percpu_wq. 2428 */ 2429 queue_work(iou_wq, &ctx->exit_work); 2430 } 2431 2432 static int io_uring_release(struct inode *inode, struct file *file) 2433 { 2434 struct io_ring_ctx *ctx = file->private_data; 2435 2436 file->private_data = NULL; 2437 io_ring_ctx_wait_and_kill(ctx); 2438 return 0; 2439 } 2440 2441 static struct io_uring_reg_wait *io_get_ext_arg_reg(struct io_ring_ctx *ctx, 2442 const struct io_uring_getevents_arg __user *uarg) 2443 { 2444 unsigned long size = sizeof(struct io_uring_reg_wait); 2445 unsigned long offset = (uintptr_t)uarg; 2446 unsigned long end; 2447 2448 if (unlikely(offset % sizeof(long))) 2449 return ERR_PTR(-EFAULT); 2450 2451 /* also protects from NULL ->cq_wait_arg as the size would be 0 */ 2452 if (unlikely(check_add_overflow(offset, size, &end) || 2453 end > ctx->cq_wait_size)) 2454 return ERR_PTR(-EFAULT); 2455 2456 offset = array_index_nospec(offset, ctx->cq_wait_size - size); 2457 return ctx->cq_wait_arg + offset; 2458 } 2459 2460 static int io_validate_ext_arg(struct io_ring_ctx *ctx, unsigned flags, 2461 const void __user *argp, size_t argsz) 2462 { 2463 struct io_uring_getevents_arg arg; 2464 2465 if (!(flags & IORING_ENTER_EXT_ARG)) 2466 return 0; 2467 if (flags & IORING_ENTER_EXT_ARG_REG) 2468 return -EINVAL; 2469 if (argsz != sizeof(arg)) 2470 return -EINVAL; 2471 if (copy_from_user(&arg, argp, sizeof(arg))) 2472 return -EFAULT; 2473 return 0; 2474 } 2475 2476 static int io_get_ext_arg(struct io_ring_ctx *ctx, unsigned flags, 2477 const void __user *argp, struct ext_arg *ext_arg) 2478 { 2479 const struct io_uring_getevents_arg __user *uarg = argp; 2480 struct io_uring_getevents_arg arg; 2481 2482 ext_arg->iowait = !(flags & IORING_ENTER_NO_IOWAIT); 2483 2484 /* 2485 * If EXT_ARG isn't set, then we have no timespec and the argp pointer 2486 * is just a pointer to the sigset_t. 2487 */ 2488 if (!(flags & IORING_ENTER_EXT_ARG)) { 2489 ext_arg->sig = (const sigset_t __user *) argp; 2490 return 0; 2491 } 2492 2493 if (flags & IORING_ENTER_EXT_ARG_REG) { 2494 struct io_uring_reg_wait *w; 2495 2496 if (ext_arg->argsz != sizeof(struct io_uring_reg_wait)) 2497 return -EINVAL; 2498 w = io_get_ext_arg_reg(ctx, argp); 2499 if (IS_ERR(w)) 2500 return PTR_ERR(w); 2501 2502 if (w->flags & ~IORING_REG_WAIT_TS) 2503 return -EINVAL; 2504 ext_arg->min_time = READ_ONCE(w->min_wait_usec) * NSEC_PER_USEC; 2505 ext_arg->sig = u64_to_user_ptr(READ_ONCE(w->sigmask)); 2506 ext_arg->argsz = READ_ONCE(w->sigmask_sz); 2507 if (w->flags & IORING_REG_WAIT_TS) { 2508 ext_arg->ts.tv_sec = READ_ONCE(w->ts.tv_sec); 2509 ext_arg->ts.tv_nsec = READ_ONCE(w->ts.tv_nsec); 2510 ext_arg->ts_set = true; 2511 } 2512 return 0; 2513 } 2514 2515 /* 2516 * EXT_ARG is set - ensure we agree on the size of it and copy in our 2517 * timespec and sigset_t pointers if good. 2518 */ 2519 if (ext_arg->argsz != sizeof(arg)) 2520 return -EINVAL; 2521 #ifdef CONFIG_64BIT 2522 if (!user_access_begin(uarg, sizeof(*uarg))) 2523 return -EFAULT; 2524 unsafe_get_user(arg.sigmask, &uarg->sigmask, uaccess_end); 2525 unsafe_get_user(arg.sigmask_sz, &uarg->sigmask_sz, uaccess_end); 2526 unsafe_get_user(arg.min_wait_usec, &uarg->min_wait_usec, uaccess_end); 2527 unsafe_get_user(arg.ts, &uarg->ts, uaccess_end); 2528 user_access_end(); 2529 #else 2530 if (copy_from_user(&arg, uarg, sizeof(arg))) 2531 return -EFAULT; 2532 #endif 2533 ext_arg->min_time = arg.min_wait_usec * NSEC_PER_USEC; 2534 ext_arg->sig = u64_to_user_ptr(arg.sigmask); 2535 ext_arg->argsz = arg.sigmask_sz; 2536 if (arg.ts) { 2537 if (get_timespec64(&ext_arg->ts, u64_to_user_ptr(arg.ts))) 2538 return -EFAULT; 2539 ext_arg->ts_set = true; 2540 } 2541 return 0; 2542 #ifdef CONFIG_64BIT 2543 uaccess_end: 2544 user_access_end(); 2545 return -EFAULT; 2546 #endif 2547 } 2548 2549 /* 2550 * Given an 'fd' value, return the ctx associated with if. If 'registered' is 2551 * true, then the registered index is used. Otherwise, the normal fd table. 2552 * Caller must call fput() on the returned file if it isn't a registered file, 2553 * unless it's an ERR_PTR. 2554 */ 2555 struct file *io_uring_ctx_get_file(unsigned int fd, bool registered) 2556 { 2557 struct file *file; 2558 2559 if (registered) { 2560 /* 2561 * Ring fd has been registered via IORING_REGISTER_RING_FDS, we 2562 * need only dereference our task private array to find it. 2563 */ 2564 struct io_uring_task *tctx = current->io_uring; 2565 2566 if (unlikely(!tctx || fd >= IO_RINGFD_REG_MAX)) 2567 return ERR_PTR(-EINVAL); 2568 fd = array_index_nospec(fd, IO_RINGFD_REG_MAX); 2569 file = tctx->registered_rings[fd]; 2570 } else { 2571 file = fget(fd); 2572 } 2573 2574 if (unlikely(!file)) 2575 return ERR_PTR(-EBADF); 2576 if (io_is_uring_fops(file)) 2577 return file; 2578 fput(file); 2579 return ERR_PTR(-EOPNOTSUPP); 2580 } 2581 2582 2583 SYSCALL_DEFINE6(io_uring_enter, unsigned int, fd, u32, to_submit, 2584 u32, min_complete, u32, flags, const void __user *, argp, 2585 size_t, argsz) 2586 { 2587 struct io_ring_ctx *ctx; 2588 struct file *file; 2589 long ret; 2590 2591 if (unlikely(flags & ~IORING_ENTER_FLAGS)) 2592 return -EINVAL; 2593 2594 file = io_uring_ctx_get_file(fd, flags & IORING_ENTER_REGISTERED_RING); 2595 if (IS_ERR(file)) 2596 return PTR_ERR(file); 2597 ctx = file->private_data; 2598 ret = -EBADFD; 2599 /* 2600 * Keep IORING_SETUP_R_DISABLED check before submitter_task load 2601 * in io_uring_add_tctx_node() -> __io_uring_add_tctx_node_from_submit() 2602 */ 2603 if (unlikely(smp_load_acquire(&ctx->flags) & IORING_SETUP_R_DISABLED)) 2604 goto out; 2605 2606 if (io_has_loop_ops(ctx)) { 2607 ret = io_run_loop(ctx); 2608 goto out; 2609 } 2610 2611 /* 2612 * For SQ polling, the thread will do all submissions and completions. 2613 * Just return the requested submit count, and wake the thread if 2614 * we were asked to. 2615 */ 2616 ret = 0; 2617 if (ctx->flags & IORING_SETUP_SQPOLL) { 2618 if (unlikely(ctx->sq_data->thread == NULL)) { 2619 ret = -EOWNERDEAD; 2620 goto out; 2621 } 2622 if (flags & IORING_ENTER_SQ_WAKEUP) 2623 wake_up(&ctx->sq_data->wait); 2624 if (flags & IORING_ENTER_SQ_WAIT) 2625 io_sqpoll_wait_sq(ctx); 2626 2627 ret = to_submit; 2628 } else if (to_submit) { 2629 ret = io_uring_add_tctx_node(ctx); 2630 if (unlikely(ret)) 2631 goto out; 2632 2633 mutex_lock(&ctx->uring_lock); 2634 ret = io_submit_sqes(ctx, to_submit); 2635 if (ret != to_submit) { 2636 mutex_unlock(&ctx->uring_lock); 2637 goto out; 2638 } 2639 if (flags & IORING_ENTER_GETEVENTS) { 2640 if (ctx->int_flags & IO_RING_F_SYSCALL_IOPOLL) 2641 goto iopoll_locked; 2642 /* 2643 * Ignore errors, we'll soon call io_cqring_wait() and 2644 * it should handle ownership problems if any. 2645 */ 2646 if (ctx->flags & IORING_SETUP_DEFER_TASKRUN) 2647 (void)io_run_local_work_locked(ctx, min_complete); 2648 } 2649 mutex_unlock(&ctx->uring_lock); 2650 } 2651 2652 if (flags & IORING_ENTER_GETEVENTS) { 2653 int ret2; 2654 2655 if (ctx->int_flags & IO_RING_F_SYSCALL_IOPOLL) { 2656 /* 2657 * We disallow the app entering submit/complete with 2658 * polling, but we still need to lock the ring to 2659 * prevent racing with polled issue that got punted to 2660 * a workqueue. 2661 */ 2662 mutex_lock(&ctx->uring_lock); 2663 iopoll_locked: 2664 ret2 = io_validate_ext_arg(ctx, flags, argp, argsz); 2665 if (likely(!ret2)) 2666 ret2 = io_iopoll_check(ctx, min_complete); 2667 mutex_unlock(&ctx->uring_lock); 2668 } else { 2669 struct ext_arg ext_arg = { .argsz = argsz }; 2670 2671 ret2 = io_get_ext_arg(ctx, flags, argp, &ext_arg); 2672 if (likely(!ret2)) 2673 ret2 = io_cqring_wait(ctx, min_complete, flags, 2674 &ext_arg); 2675 } 2676 2677 if (!ret) { 2678 ret = ret2; 2679 2680 /* 2681 * EBADR indicates that one or more CQE were dropped. 2682 * Once the user has been informed we can clear the bit 2683 * as they are obviously ok with those drops. 2684 */ 2685 if (unlikely(ret2 == -EBADR)) 2686 clear_bit(IO_CHECK_CQ_DROPPED_BIT, 2687 &ctx->check_cq); 2688 } 2689 } 2690 out: 2691 if (!(flags & IORING_ENTER_REGISTERED_RING)) 2692 fput(file); 2693 return ret; 2694 } 2695 2696 static const struct file_operations io_uring_fops = { 2697 .release = io_uring_release, 2698 .mmap = io_uring_mmap, 2699 .get_unmapped_area = io_uring_get_unmapped_area, 2700 #ifndef CONFIG_MMU 2701 .mmap_capabilities = io_uring_nommu_mmap_capabilities, 2702 #endif 2703 .poll = io_uring_poll, 2704 #ifdef CONFIG_PROC_FS 2705 .show_fdinfo = io_uring_show_fdinfo, 2706 #endif 2707 }; 2708 2709 bool io_is_uring_fops(struct file *file) 2710 { 2711 return file->f_op == &io_uring_fops; 2712 } 2713 2714 static __cold int io_allocate_scq_urings(struct io_ring_ctx *ctx, 2715 struct io_ctx_config *config) 2716 { 2717 struct io_uring_params *p = &config->p; 2718 struct io_rings_layout *rl = &config->layout; 2719 struct io_uring_region_desc rd; 2720 struct io_rings *rings; 2721 int ret; 2722 2723 /* make sure these are sane, as we already accounted them */ 2724 ctx->sq_entries = p->sq_entries; 2725 ctx->cq_entries = p->cq_entries; 2726 2727 memset(&rd, 0, sizeof(rd)); 2728 rd.size = PAGE_ALIGN(rl->rings_size); 2729 if (ctx->flags & IORING_SETUP_NO_MMAP) { 2730 rd.user_addr = p->cq_off.user_addr; 2731 rd.flags |= IORING_MEM_REGION_TYPE_USER; 2732 } 2733 ret = io_create_region(ctx, &ctx->ring_region, &rd, IORING_OFF_CQ_RING); 2734 if (ret) 2735 return ret; 2736 ctx->rings = rings = io_region_get_ptr(&ctx->ring_region); 2737 rcu_assign_pointer(ctx->rings_rcu, rings); 2738 if (!(ctx->flags & IORING_SETUP_NO_SQARRAY)) 2739 ctx->sq_array = (u32 *)((char *)rings + rl->sq_array_offset); 2740 2741 memset(&rd, 0, sizeof(rd)); 2742 rd.size = PAGE_ALIGN(rl->sq_size); 2743 if (ctx->flags & IORING_SETUP_NO_MMAP) { 2744 rd.user_addr = p->sq_off.user_addr; 2745 rd.flags |= IORING_MEM_REGION_TYPE_USER; 2746 } 2747 ret = io_create_region(ctx, &ctx->sq_region, &rd, IORING_OFF_SQES); 2748 if (ret) { 2749 io_rings_free(ctx); 2750 return ret; 2751 } 2752 ctx->sq_sqes = io_region_get_ptr(&ctx->sq_region); 2753 2754 memset(rings, 0, sizeof(*rings)); 2755 WRITE_ONCE(rings->sq_ring_mask, ctx->sq_entries - 1); 2756 WRITE_ONCE(rings->cq_ring_mask, ctx->cq_entries - 1); 2757 WRITE_ONCE(rings->sq_ring_entries, ctx->sq_entries); 2758 WRITE_ONCE(rings->cq_ring_entries, ctx->cq_entries); 2759 return 0; 2760 } 2761 2762 static int io_uring_install_fd(struct file *file) 2763 { 2764 int fd; 2765 2766 fd = get_unused_fd_flags(O_RDWR | O_CLOEXEC); 2767 if (fd < 0) 2768 return fd; 2769 fd_install(fd, file); 2770 return fd; 2771 } 2772 2773 /* 2774 * Allocate an anonymous fd, this is what constitutes the application 2775 * visible backing of an io_uring instance. The application mmaps this 2776 * fd to gain access to the SQ/CQ ring details. 2777 */ 2778 static struct file *io_uring_get_file(struct io_ring_ctx *ctx) 2779 { 2780 /* Create a new inode so that the LSM can block the creation. */ 2781 return anon_inode_create_getfile("[io_uring]", &io_uring_fops, ctx, 2782 O_RDWR | O_CLOEXEC, NULL); 2783 } 2784 2785 static int io_uring_sanitise_params(struct io_uring_params *p) 2786 { 2787 unsigned flags = p->flags; 2788 2789 if (flags & ~IORING_SETUP_FLAGS) 2790 return -EINVAL; 2791 2792 if (flags & IORING_SETUP_SQ_REWIND) { 2793 if ((flags & IORING_SETUP_SQPOLL) || 2794 !(flags & IORING_SETUP_NO_SQARRAY)) 2795 return -EINVAL; 2796 } 2797 2798 /* There is no way to mmap rings without a real fd */ 2799 if ((flags & IORING_SETUP_REGISTERED_FD_ONLY) && 2800 !(flags & IORING_SETUP_NO_MMAP)) 2801 return -EINVAL; 2802 2803 if (flags & IORING_SETUP_SQPOLL) { 2804 /* IPI related flags don't make sense with SQPOLL */ 2805 if (flags & (IORING_SETUP_COOP_TASKRUN | 2806 IORING_SETUP_TASKRUN_FLAG | 2807 IORING_SETUP_DEFER_TASKRUN)) 2808 return -EINVAL; 2809 } 2810 2811 if (flags & IORING_SETUP_TASKRUN_FLAG) { 2812 if (!(flags & (IORING_SETUP_COOP_TASKRUN | 2813 IORING_SETUP_DEFER_TASKRUN))) 2814 return -EINVAL; 2815 } 2816 2817 /* HYBRID_IOPOLL only valid with IOPOLL */ 2818 if ((flags & IORING_SETUP_HYBRID_IOPOLL) && !(flags & IORING_SETUP_IOPOLL)) 2819 return -EINVAL; 2820 2821 /* 2822 * For DEFER_TASKRUN we require the completion task to be the same as 2823 * the submission task. This implies that there is only one submitter. 2824 */ 2825 if ((flags & IORING_SETUP_DEFER_TASKRUN) && 2826 !(flags & IORING_SETUP_SINGLE_ISSUER)) 2827 return -EINVAL; 2828 2829 /* 2830 * Nonsensical to ask for CQE32 and mixed CQE support, it's not 2831 * supported to post 16b CQEs on a ring setup with CQE32. 2832 */ 2833 if ((flags & (IORING_SETUP_CQE32|IORING_SETUP_CQE_MIXED)) == 2834 (IORING_SETUP_CQE32|IORING_SETUP_CQE_MIXED)) 2835 return -EINVAL; 2836 /* 2837 * Nonsensical to ask for SQE128 and mixed SQE support, it's not 2838 * supported to post 64b SQEs on a ring setup with SQE128. 2839 */ 2840 if ((flags & (IORING_SETUP_SQE128|IORING_SETUP_SQE_MIXED)) == 2841 (IORING_SETUP_SQE128|IORING_SETUP_SQE_MIXED)) 2842 return -EINVAL; 2843 2844 return 0; 2845 } 2846 2847 static int io_uring_fill_params(struct io_uring_params *p) 2848 { 2849 unsigned entries = p->sq_entries; 2850 2851 if (!entries) 2852 return -EINVAL; 2853 if (entries > IORING_MAX_ENTRIES) { 2854 if (!(p->flags & IORING_SETUP_CLAMP)) 2855 return -EINVAL; 2856 entries = IORING_MAX_ENTRIES; 2857 } 2858 2859 /* 2860 * Use twice as many entries for the CQ ring. It's possible for the 2861 * application to drive a higher depth than the size of the SQ ring, 2862 * since the sqes are only used at submission time. This allows for 2863 * some flexibility in overcommitting a bit. If the application has 2864 * set IORING_SETUP_CQSIZE, it will have passed in the desired number 2865 * of CQ ring entries manually. 2866 */ 2867 p->sq_entries = roundup_pow_of_two(entries); 2868 if (p->flags & IORING_SETUP_CQSIZE) { 2869 /* 2870 * If IORING_SETUP_CQSIZE is set, we do the same roundup 2871 * to a power-of-two, if it isn't already. We do NOT impose 2872 * any cq vs sq ring sizing. 2873 */ 2874 if (!p->cq_entries) 2875 return -EINVAL; 2876 if (p->cq_entries > IORING_MAX_CQ_ENTRIES) { 2877 if (!(p->flags & IORING_SETUP_CLAMP)) 2878 return -EINVAL; 2879 p->cq_entries = IORING_MAX_CQ_ENTRIES; 2880 } 2881 p->cq_entries = roundup_pow_of_two(p->cq_entries); 2882 if (p->cq_entries < p->sq_entries) 2883 return -EINVAL; 2884 } else { 2885 p->cq_entries = 2 * p->sq_entries; 2886 } 2887 2888 return 0; 2889 } 2890 2891 int io_prepare_config(struct io_ctx_config *config) 2892 { 2893 struct io_uring_params *p = &config->p; 2894 int ret; 2895 2896 ret = io_uring_sanitise_params(p); 2897 if (ret) 2898 return ret; 2899 2900 ret = io_uring_fill_params(p); 2901 if (ret) 2902 return ret; 2903 2904 ret = rings_size(p->flags, p->sq_entries, p->cq_entries, 2905 &config->layout); 2906 if (ret) 2907 return ret; 2908 2909 p->sq_off.head = offsetof(struct io_rings, sq.head); 2910 p->sq_off.tail = offsetof(struct io_rings, sq.tail); 2911 p->sq_off.ring_mask = offsetof(struct io_rings, sq_ring_mask); 2912 p->sq_off.ring_entries = offsetof(struct io_rings, sq_ring_entries); 2913 p->sq_off.flags = offsetof(struct io_rings, sq_flags); 2914 p->sq_off.dropped = offsetof(struct io_rings, sq_dropped); 2915 p->sq_off.resv1 = 0; 2916 if (!(p->flags & IORING_SETUP_NO_MMAP)) 2917 p->sq_off.user_addr = 0; 2918 2919 p->cq_off.head = offsetof(struct io_rings, cq.head); 2920 p->cq_off.tail = offsetof(struct io_rings, cq.tail); 2921 p->cq_off.ring_mask = offsetof(struct io_rings, cq_ring_mask); 2922 p->cq_off.ring_entries = offsetof(struct io_rings, cq_ring_entries); 2923 p->cq_off.overflow = offsetof(struct io_rings, cq_overflow); 2924 p->cq_off.cqes = offsetof(struct io_rings, cqes); 2925 p->cq_off.flags = offsetof(struct io_rings, cq_flags); 2926 p->cq_off.resv1 = 0; 2927 if (!(p->flags & IORING_SETUP_NO_MMAP)) 2928 p->cq_off.user_addr = 0; 2929 if (!(p->flags & IORING_SETUP_NO_SQARRAY)) 2930 p->sq_off.array = config->layout.sq_array_offset; 2931 2932 return 0; 2933 } 2934 2935 void io_restriction_clone(struct io_restriction *dst, struct io_restriction *src) 2936 { 2937 memcpy(&dst->register_op, &src->register_op, sizeof(dst->register_op)); 2938 memcpy(&dst->sqe_op, &src->sqe_op, sizeof(dst->sqe_op)); 2939 dst->sqe_flags_allowed = src->sqe_flags_allowed; 2940 dst->sqe_flags_required = src->sqe_flags_required; 2941 dst->op_registered = src->op_registered; 2942 dst->reg_registered = src->reg_registered; 2943 2944 io_bpf_filter_clone(dst, src); 2945 } 2946 2947 static void io_ctx_restriction_clone(struct io_ring_ctx *ctx, 2948 struct io_restriction *src) 2949 { 2950 struct io_restriction *dst = &ctx->restrictions; 2951 2952 io_restriction_clone(dst, src); 2953 if (dst->bpf_filters) 2954 WRITE_ONCE(ctx->bpf_filters, dst->bpf_filters->filters); 2955 if (dst->op_registered) 2956 ctx->int_flags |= IO_RING_F_OP_RESTRICTED; 2957 if (dst->reg_registered) 2958 ctx->int_flags |= IO_RING_F_REG_RESTRICTED; 2959 } 2960 2961 static __cold int io_uring_create(struct io_ctx_config *config) 2962 { 2963 struct io_uring_params *p = &config->p; 2964 struct io_ring_ctx *ctx; 2965 struct io_uring_task *tctx; 2966 struct file *file; 2967 int ret; 2968 2969 ret = io_prepare_config(config); 2970 if (ret) 2971 return ret; 2972 2973 ctx = io_ring_ctx_alloc(p); 2974 if (!ctx) 2975 return -ENOMEM; 2976 2977 ctx->clockid = CLOCK_MONOTONIC; 2978 ctx->clock_offset = 0; 2979 2980 if (!(ctx->flags & IORING_SETUP_NO_SQARRAY)) 2981 static_branch_deferred_inc(&io_key_has_sqarray); 2982 2983 if ((ctx->flags & IORING_SETUP_DEFER_TASKRUN) && 2984 !(ctx->flags & IORING_SETUP_IOPOLL)) 2985 ctx->int_flags |= IO_RING_F_TASK_COMPLETE; 2986 2987 if ((ctx->int_flags & IO_RING_F_TASK_COMPLETE) || 2988 (ctx->flags & IORING_SETUP_IOPOLL)) 2989 ctx->int_flags |= IO_RING_F_LOCKLESS_CQ; 2990 2991 /* 2992 * lazy poll_wq activation relies on ->task_complete for synchronisation 2993 * purposes, see io_activate_pollwq() 2994 */ 2995 if (!(ctx->int_flags & IO_RING_F_TASK_COMPLETE)) 2996 ctx->int_flags |= IO_RING_F_POLL_ACTIVATED; 2997 2998 /* 2999 * When SETUP_IOPOLL and SETUP_SQPOLL are both enabled, user 3000 * space applications don't need to do io completion events 3001 * polling again, they can rely on io_sq_thread to do polling 3002 * work, which can reduce cpu usage and uring_lock contention. 3003 */ 3004 if (ctx->flags & IORING_SETUP_IOPOLL && 3005 !(ctx->flags & IORING_SETUP_SQPOLL)) 3006 ctx->int_flags |= IO_RING_F_SYSCALL_IOPOLL; 3007 3008 if (in_compat_syscall()) 3009 ctx->int_flags |= IO_RING_F_COMPAT; 3010 if (!ns_capable_noaudit(&init_user_ns, CAP_IPC_LOCK)) 3011 ctx->user = get_uid(current_user()); 3012 3013 /* 3014 * For SQPOLL, we just need a wakeup, always. For !SQPOLL, if 3015 * COOP_TASKRUN is set, then IPIs are never needed by the app. 3016 */ 3017 if (ctx->flags & (IORING_SETUP_SQPOLL|IORING_SETUP_COOP_TASKRUN)) 3018 ctx->notify_method = TWA_SIGNAL_NO_IPI; 3019 else 3020 ctx->notify_method = TWA_SIGNAL; 3021 3022 /* 3023 * If the current task has restrictions enabled, then copy them to 3024 * our newly created ring and mark it as registered. 3025 */ 3026 if (current->io_uring_restrict) 3027 io_ctx_restriction_clone(ctx, current->io_uring_restrict); 3028 3029 /* 3030 * This is just grabbed for accounting purposes. When a process exits, 3031 * the mm is exited and dropped before the files, hence we need to hang 3032 * on to this mm purely for the purposes of being able to unaccount 3033 * memory (locked/pinned vm). It's not used for anything else. 3034 */ 3035 mmgrab(current->mm); 3036 ctx->mm_account = current->mm; 3037 3038 ret = io_allocate_scq_urings(ctx, config); 3039 if (ret) 3040 goto err; 3041 3042 ret = io_sq_offload_create(ctx, p); 3043 if (ret) 3044 goto err; 3045 3046 p->features = IORING_FEAT_FLAGS; 3047 3048 if (copy_to_user(config->uptr, p, sizeof(*p))) { 3049 ret = -EFAULT; 3050 goto err; 3051 } 3052 3053 if (ctx->flags & IORING_SETUP_SINGLE_ISSUER 3054 && !(ctx->flags & IORING_SETUP_R_DISABLED)) 3055 ctx->submitter_task = get_task_struct(current); 3056 3057 file = io_uring_get_file(ctx); 3058 if (IS_ERR(file)) { 3059 ret = PTR_ERR(file); 3060 goto err; 3061 } 3062 3063 ret = __io_uring_add_tctx_node(ctx); 3064 if (ret) 3065 goto err_fput; 3066 tctx = current->io_uring; 3067 3068 /* 3069 * Install ring fd as the very last thing, so we don't risk someone 3070 * having closed it before we finish setup 3071 */ 3072 if (p->flags & IORING_SETUP_REGISTERED_FD_ONLY) 3073 ret = io_ring_add_registered_file(tctx, file, 0, IO_RINGFD_REG_MAX); 3074 else 3075 ret = io_uring_install_fd(file); 3076 if (ret < 0) 3077 goto err_fput; 3078 3079 trace_io_uring_create(ret, ctx, p->sq_entries, p->cq_entries, p->flags); 3080 return ret; 3081 err: 3082 io_ring_ctx_wait_and_kill(ctx); 3083 return ret; 3084 err_fput: 3085 fput(file); 3086 return ret; 3087 } 3088 3089 /* 3090 * Sets up an aio uring context, and returns the fd. Applications asks for a 3091 * ring size, we return the actual sq/cq ring sizes (among other things) in the 3092 * params structure passed in. 3093 */ 3094 static long io_uring_setup(u32 entries, struct io_uring_params __user *params) 3095 { 3096 struct io_ctx_config config; 3097 3098 memset(&config, 0, sizeof(config)); 3099 3100 if (copy_from_user(&config.p, params, sizeof(config.p))) 3101 return -EFAULT; 3102 3103 if (!mem_is_zero(&config.p.resv, sizeof(config.p.resv))) 3104 return -EINVAL; 3105 3106 config.p.sq_entries = entries; 3107 config.uptr = params; 3108 return io_uring_create(&config); 3109 } 3110 3111 static inline int io_uring_allowed(void) 3112 { 3113 int disabled = READ_ONCE(sysctl_io_uring_disabled); 3114 kgid_t io_uring_group; 3115 3116 if (disabled == 2) 3117 return -EPERM; 3118 3119 if (disabled == 0 || capable(CAP_SYS_ADMIN)) 3120 goto allowed_lsm; 3121 3122 io_uring_group = make_kgid(&init_user_ns, sysctl_io_uring_group); 3123 if (!gid_valid(io_uring_group)) 3124 return -EPERM; 3125 3126 if (!in_group_p(io_uring_group)) 3127 return -EPERM; 3128 3129 allowed_lsm: 3130 return security_uring_allowed(); 3131 } 3132 3133 SYSCALL_DEFINE2(io_uring_setup, u32, entries, 3134 struct io_uring_params __user *, params) 3135 { 3136 int ret; 3137 3138 ret = io_uring_allowed(); 3139 if (ret) 3140 return ret; 3141 3142 return io_uring_setup(entries, params); 3143 } 3144 3145 static int __init io_uring_init(void) 3146 { 3147 struct kmem_cache_args kmem_args = { 3148 .useroffset = offsetof(struct io_kiocb, cmd.data), 3149 .usersize = sizeof_field(struct io_kiocb, cmd.data), 3150 .freeptr_offset = offsetof(struct io_kiocb, work), 3151 .use_freeptr_offset = true, 3152 }; 3153 3154 #define __BUILD_BUG_VERIFY_OFFSET_SIZE(stype, eoffset, esize, ename) do { \ 3155 BUILD_BUG_ON(offsetof(stype, ename) != eoffset); \ 3156 BUILD_BUG_ON(sizeof_field(stype, ename) != esize); \ 3157 } while (0) 3158 3159 #define BUILD_BUG_SQE_ELEM(eoffset, etype, ename) \ 3160 __BUILD_BUG_VERIFY_OFFSET_SIZE(struct io_uring_sqe, eoffset, sizeof(etype), ename) 3161 #define BUILD_BUG_SQE_ELEM_SIZE(eoffset, esize, ename) \ 3162 __BUILD_BUG_VERIFY_OFFSET_SIZE(struct io_uring_sqe, eoffset, esize, ename) 3163 BUILD_BUG_ON(sizeof(struct io_uring_sqe) != 64); 3164 BUILD_BUG_SQE_ELEM(0, __u8, opcode); 3165 BUILD_BUG_SQE_ELEM(1, __u8, flags); 3166 BUILD_BUG_SQE_ELEM(2, __u16, ioprio); 3167 BUILD_BUG_SQE_ELEM(4, __s32, fd); 3168 BUILD_BUG_SQE_ELEM(8, __u64, off); 3169 BUILD_BUG_SQE_ELEM(8, __u64, addr2); 3170 BUILD_BUG_SQE_ELEM(8, __u32, cmd_op); 3171 BUILD_BUG_SQE_ELEM(12, __u32, __pad1); 3172 BUILD_BUG_SQE_ELEM(16, __u64, addr); 3173 BUILD_BUG_SQE_ELEM(16, __u64, splice_off_in); 3174 BUILD_BUG_SQE_ELEM(24, __u32, len); 3175 BUILD_BUG_SQE_ELEM(28, __kernel_rwf_t, rw_flags); 3176 BUILD_BUG_SQE_ELEM(28, /* compat */ int, rw_flags); 3177 BUILD_BUG_SQE_ELEM(28, /* compat */ __u32, rw_flags); 3178 BUILD_BUG_SQE_ELEM(28, __u32, fsync_flags); 3179 BUILD_BUG_SQE_ELEM(28, /* compat */ __u16, poll_events); 3180 BUILD_BUG_SQE_ELEM(28, __u32, poll32_events); 3181 BUILD_BUG_SQE_ELEM(28, __u32, sync_range_flags); 3182 BUILD_BUG_SQE_ELEM(28, __u32, msg_flags); 3183 BUILD_BUG_SQE_ELEM(28, __u32, timeout_flags); 3184 BUILD_BUG_SQE_ELEM(28, __u32, accept_flags); 3185 BUILD_BUG_SQE_ELEM(28, __u32, cancel_flags); 3186 BUILD_BUG_SQE_ELEM(28, __u32, open_flags); 3187 BUILD_BUG_SQE_ELEM(28, __u32, statx_flags); 3188 BUILD_BUG_SQE_ELEM(28, __u32, fadvise_advice); 3189 BUILD_BUG_SQE_ELEM(28, __u32, splice_flags); 3190 BUILD_BUG_SQE_ELEM(28, __u32, rename_flags); 3191 BUILD_BUG_SQE_ELEM(28, __u32, unlink_flags); 3192 BUILD_BUG_SQE_ELEM(28, __u32, hardlink_flags); 3193 BUILD_BUG_SQE_ELEM(28, __u32, xattr_flags); 3194 BUILD_BUG_SQE_ELEM(28, __u32, msg_ring_flags); 3195 BUILD_BUG_SQE_ELEM(32, __u64, user_data); 3196 BUILD_BUG_SQE_ELEM(40, __u16, buf_index); 3197 BUILD_BUG_SQE_ELEM(40, __u16, buf_group); 3198 BUILD_BUG_SQE_ELEM(42, __u16, personality); 3199 BUILD_BUG_SQE_ELEM(44, __s32, splice_fd_in); 3200 BUILD_BUG_SQE_ELEM(44, __u32, file_index); 3201 BUILD_BUG_SQE_ELEM(44, __u16, addr_len); 3202 BUILD_BUG_SQE_ELEM(44, __u8, write_stream); 3203 BUILD_BUG_SQE_ELEM(45, __u8, __pad4[0]); 3204 BUILD_BUG_SQE_ELEM(46, __u16, __pad3[0]); 3205 BUILD_BUG_SQE_ELEM(48, __u64, addr3); 3206 BUILD_BUG_SQE_ELEM_SIZE(48, 0, cmd); 3207 BUILD_BUG_SQE_ELEM(48, __u64, attr_ptr); 3208 BUILD_BUG_SQE_ELEM(56, __u64, attr_type_mask); 3209 BUILD_BUG_SQE_ELEM(56, __u64, __pad2); 3210 3211 BUILD_BUG_ON(sizeof(struct io_uring_files_update) != 3212 sizeof(struct io_uring_rsrc_update)); 3213 BUILD_BUG_ON(sizeof(struct io_uring_rsrc_update) > 3214 sizeof(struct io_uring_rsrc_update2)); 3215 3216 /* ->buf_index is u16 */ 3217 BUILD_BUG_ON(offsetof(struct io_uring_buf_ring, bufs) != 0); 3218 BUILD_BUG_ON(offsetof(struct io_uring_buf, resv) != 3219 offsetof(struct io_uring_buf_ring, tail)); 3220 3221 /* should fit into one byte */ 3222 BUILD_BUG_ON(SQE_VALID_FLAGS >= (1 << 8)); 3223 BUILD_BUG_ON(SQE_COMMON_FLAGS >= (1 << 8)); 3224 BUILD_BUG_ON((SQE_VALID_FLAGS | SQE_COMMON_FLAGS) != SQE_VALID_FLAGS); 3225 3226 BUILD_BUG_ON(__REQ_F_LAST_BIT > 8 * sizeof_field(struct io_kiocb, flags)); 3227 3228 BUILD_BUG_ON(sizeof(atomic_t) != sizeof(u32)); 3229 3230 /* top 8bits are for internal use */ 3231 BUILD_BUG_ON((IORING_URING_CMD_MASK & 0xff000000) != 0); 3232 3233 io_uring_optable_init(); 3234 3235 /* imu->dir is u8 */ 3236 BUILD_BUG_ON((IO_IMU_DEST | IO_IMU_SOURCE) > U8_MAX); 3237 3238 /* 3239 * Allow user copy in the per-command field, which starts after the 3240 * file in io_kiocb and until the opcode field. The openat2 handling 3241 * requires copying in user memory into the io_kiocb object in that 3242 * range, and HARDENED_USERCOPY will complain if we haven't 3243 * correctly annotated this range. 3244 */ 3245 req_cachep = kmem_cache_create("io_kiocb", sizeof(struct io_kiocb), &kmem_args, 3246 SLAB_HWCACHE_ALIGN | SLAB_PANIC | SLAB_ACCOUNT | 3247 SLAB_TYPESAFE_BY_RCU); 3248 3249 iou_wq = alloc_workqueue("iou_exit", WQ_UNBOUND, 64); 3250 BUG_ON(!iou_wq); 3251 3252 #ifdef CONFIG_SYSCTL 3253 register_sysctl_init("kernel", kernel_io_uring_disabled_table); 3254 #endif 3255 3256 return 0; 3257 }; 3258 __initcall(io_uring_init); 3259