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