1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * padata.c - generic interface to process data streams in parallel 4 * 5 * See Documentation/core-api/padata.rst for more information. 6 * 7 * Copyright (C) 2008, 2009 secunet Security Networks AG 8 * Copyright (C) 2008, 2009 Steffen Klassert <[email protected]> 9 * 10 * Copyright (c) 2020 Oracle and/or its affiliates. 11 * Author: Daniel Jordan <[email protected]> 12 */ 13 14 #include <linux/completion.h> 15 #include <linux/export.h> 16 #include <linux/cpumask.h> 17 #include <linux/err.h> 18 #include <linux/cpu.h> 19 #include <linux/padata.h> 20 #include <linux/mutex.h> 21 #include <linux/sched.h> 22 #include <linux/slab.h> 23 #include <linux/sysfs.h> 24 #include <linux/rcupdate.h> 25 26 #define PADATA_WORK_ONSTACK 1 /* Work's memory is on stack */ 27 28 struct padata_work { 29 struct work_struct pw_work; 30 struct list_head pw_list; /* padata_free_works linkage */ 31 void *pw_data; 32 }; 33 34 static DEFINE_SPINLOCK(padata_works_lock); 35 static struct padata_work *padata_works; 36 static LIST_HEAD(padata_free_works); 37 38 struct padata_mt_job_state { 39 spinlock_t lock; 40 struct completion completion; 41 struct padata_mt_job *job; 42 int nworks; 43 int nworks_fini; 44 unsigned long chunk_size; 45 }; 46 47 static void padata_free_pd(struct parallel_data *pd); 48 static void __init padata_mt_helper(struct work_struct *work); 49 50 static inline void padata_get_pd(struct parallel_data *pd) 51 { 52 refcount_inc(&pd->refcnt); 53 } 54 55 static inline void padata_put_pd_cnt(struct parallel_data *pd, int cnt) 56 { 57 if (refcount_sub_and_test(cnt, &pd->refcnt)) 58 padata_free_pd(pd); 59 } 60 61 static inline void padata_put_pd(struct parallel_data *pd) 62 { 63 padata_put_pd_cnt(pd, 1); 64 } 65 66 static int padata_index_to_cpu(struct parallel_data *pd, int cpu_index) 67 { 68 int cpu, target_cpu; 69 70 target_cpu = cpumask_first(pd->cpumask.pcpu); 71 for (cpu = 0; cpu < cpu_index; cpu++) 72 target_cpu = cpumask_next(target_cpu, pd->cpumask.pcpu); 73 74 return target_cpu; 75 } 76 77 static int padata_cpu_hash(struct parallel_data *pd, unsigned int seq_nr) 78 { 79 /* 80 * Hash the sequence numbers to the cpus by taking 81 * seq_nr mod. number of cpus in use. 82 */ 83 int cpu_index = seq_nr % cpumask_weight(pd->cpumask.pcpu); 84 85 return padata_index_to_cpu(pd, cpu_index); 86 } 87 88 static struct padata_work *padata_work_alloc(void) 89 { 90 struct padata_work *pw; 91 92 lockdep_assert_held(&padata_works_lock); 93 94 if (list_empty(&padata_free_works)) 95 return NULL; /* No more work items allowed to be queued. */ 96 97 pw = list_first_entry(&padata_free_works, struct padata_work, pw_list); 98 list_del(&pw->pw_list); 99 return pw; 100 } 101 102 /* 103 * This function is marked __ref because this function may be optimized in such 104 * a way that it directly refers to work_fn's address, which causes modpost to 105 * complain when work_fn is marked __init. This scenario was observed with clang 106 * LTO, where padata_work_init() was optimized to refer directly to 107 * padata_mt_helper() because the calls to padata_work_init() with other work_fn 108 * values were eliminated or inlined. 109 */ 110 static void __ref padata_work_init(struct padata_work *pw, work_func_t work_fn, 111 void *data, int flags) 112 { 113 if (flags & PADATA_WORK_ONSTACK) 114 INIT_WORK_ONSTACK(&pw->pw_work, work_fn); 115 else 116 INIT_WORK(&pw->pw_work, work_fn); 117 pw->pw_data = data; 118 } 119 120 static int __init padata_work_alloc_mt(int nworks, void *data, 121 struct list_head *head) 122 { 123 int i; 124 125 spin_lock_bh(&padata_works_lock); 126 /* Start at 1 because the current task participates in the job. */ 127 for (i = 1; i < nworks; ++i) { 128 struct padata_work *pw = padata_work_alloc(); 129 130 if (!pw) 131 break; 132 padata_work_init(pw, padata_mt_helper, data, 0); 133 list_add(&pw->pw_list, head); 134 } 135 spin_unlock_bh(&padata_works_lock); 136 137 return i; 138 } 139 140 static void padata_work_free(struct padata_work *pw) 141 { 142 lockdep_assert_held(&padata_works_lock); 143 list_add(&pw->pw_list, &padata_free_works); 144 } 145 146 static void __init padata_works_free(struct list_head *works) 147 { 148 struct padata_work *cur, *next; 149 150 if (list_empty(works)) 151 return; 152 153 spin_lock_bh(&padata_works_lock); 154 list_for_each_entry_safe(cur, next, works, pw_list) { 155 list_del(&cur->pw_list); 156 padata_work_free(cur); 157 } 158 spin_unlock_bh(&padata_works_lock); 159 } 160 161 static void padata_parallel_worker(struct work_struct *parallel_work) 162 { 163 struct padata_work *pw = container_of(parallel_work, struct padata_work, 164 pw_work); 165 struct padata_priv *padata = pw->pw_data; 166 167 local_bh_disable(); 168 padata->parallel(padata); 169 spin_lock(&padata_works_lock); 170 padata_work_free(pw); 171 spin_unlock(&padata_works_lock); 172 local_bh_enable(); 173 } 174 175 /** 176 * padata_do_parallel - padata parallelization function 177 * 178 * @ps: padatashell 179 * @padata: object to be parallelized 180 * @cb_cpu: pointer to the CPU that the serialization callback function should 181 * run on. If it's not in the serial cpumask of @pinst 182 * (i.e. cpumask.cbcpu), this function selects a fallback CPU and if 183 * none found, returns -EINVAL. 184 * 185 * The parallelization callback function will run with BHs off. 186 * Note: Every object which is parallelized by padata_do_parallel 187 * must be seen by padata_do_serial. 188 * 189 * Return: 0 on success or else negative error code. 190 */ 191 int padata_do_parallel(struct padata_shell *ps, 192 struct padata_priv *padata, int *cb_cpu) 193 { 194 struct padata_instance *pinst = ps->pinst; 195 int i, cpu, cpu_index, err; 196 struct parallel_data *pd; 197 struct padata_work *pw; 198 199 rcu_read_lock_bh(); 200 201 pd = rcu_dereference_bh(ps->pd); 202 203 err = -EINVAL; 204 if (!(pinst->flags & PADATA_INIT) || pinst->flags & PADATA_INVALID) 205 goto out; 206 207 if (!cpumask_test_cpu(*cb_cpu, pd->cpumask.cbcpu)) { 208 if (cpumask_empty(pd->cpumask.cbcpu)) 209 goto out; 210 211 /* Select an alternate fallback CPU and notify the caller. */ 212 cpu_index = *cb_cpu % cpumask_weight(pd->cpumask.cbcpu); 213 214 cpu = cpumask_first(pd->cpumask.cbcpu); 215 for (i = 0; i < cpu_index; i++) 216 cpu = cpumask_next(cpu, pd->cpumask.cbcpu); 217 218 *cb_cpu = cpu; 219 } 220 221 err = -EBUSY; 222 if ((pinst->flags & PADATA_RESET)) 223 goto out; 224 225 padata_get_pd(pd); 226 padata->pd = pd; 227 padata->cb_cpu = *cb_cpu; 228 229 spin_lock(&padata_works_lock); 230 padata->seq_nr = ++pd->seq_nr; 231 pw = padata_work_alloc(); 232 spin_unlock(&padata_works_lock); 233 234 if (!pw) { 235 /* Maximum works limit exceeded, run in the current task. */ 236 padata->parallel(padata); 237 } 238 239 rcu_read_unlock_bh(); 240 241 if (pw) { 242 padata_work_init(pw, padata_parallel_worker, padata, 0); 243 queue_work(pinst->parallel_wq, &pw->pw_work); 244 } 245 246 return 0; 247 out: 248 rcu_read_unlock_bh(); 249 250 return err; 251 } 252 EXPORT_SYMBOL(padata_do_parallel); 253 254 /* 255 * padata_find_next - Find the next object that needs serialization. 256 * 257 * Return: 258 * * A pointer to the control struct of the next object that needs 259 * serialization, if present in one of the percpu reorder queues. 260 * * NULL, if the next object that needs serialization will 261 * be parallel processed by another cpu and is not yet present in 262 * the cpu's reorder queue. 263 */ 264 static struct padata_priv *padata_find_next(struct parallel_data *pd, 265 bool remove_object) 266 { 267 struct padata_priv *padata; 268 struct padata_list *reorder; 269 int cpu = pd->cpu; 270 271 reorder = per_cpu_ptr(pd->reorder_list, cpu); 272 273 spin_lock(&reorder->lock); 274 if (list_empty(&reorder->list)) { 275 spin_unlock(&reorder->lock); 276 return NULL; 277 } 278 279 padata = list_entry(reorder->list.next, struct padata_priv, list); 280 281 /* 282 * Checks the rare case where two or more parallel jobs have hashed to 283 * the same CPU and one of the later ones finishes first. 284 */ 285 if (padata->seq_nr != pd->processed) { 286 spin_unlock(&reorder->lock); 287 return NULL; 288 } 289 290 if (remove_object) { 291 list_del_init(&padata->list); 292 ++pd->processed; 293 pd->cpu = cpumask_next_wrap(cpu, pd->cpumask.pcpu, -1, false); 294 } 295 296 spin_unlock(&reorder->lock); 297 return padata; 298 } 299 300 static void padata_reorder(struct parallel_data *pd) 301 { 302 struct padata_instance *pinst = pd->ps->pinst; 303 int cb_cpu; 304 struct padata_priv *padata; 305 struct padata_serial_queue *squeue; 306 struct padata_list *reorder; 307 308 /* 309 * We need to ensure that only one cpu can work on dequeueing of 310 * the reorder queue the time. Calculating in which percpu reorder 311 * queue the next object will arrive takes some time. A spinlock 312 * would be highly contended. Also it is not clear in which order 313 * the objects arrive to the reorder queues. So a cpu could wait to 314 * get the lock just to notice that there is nothing to do at the 315 * moment. Therefore we use a trylock and let the holder of the lock 316 * care for all the objects enqueued during the holdtime of the lock. 317 */ 318 if (!spin_trylock_bh(&pd->lock)) 319 return; 320 321 while (1) { 322 padata = padata_find_next(pd, true); 323 324 /* 325 * If the next object that needs serialization is parallel 326 * processed by another cpu and is still on it's way to the 327 * cpu's reorder queue, nothing to do for now. 328 */ 329 if (!padata) 330 break; 331 332 cb_cpu = padata->cb_cpu; 333 squeue = per_cpu_ptr(pd->squeue, cb_cpu); 334 335 spin_lock(&squeue->serial.lock); 336 list_add_tail(&padata->list, &squeue->serial.list); 337 spin_unlock(&squeue->serial.lock); 338 339 queue_work_on(cb_cpu, pinst->serial_wq, &squeue->work); 340 } 341 342 spin_unlock_bh(&pd->lock); 343 344 /* 345 * The next object that needs serialization might have arrived to 346 * the reorder queues in the meantime. 347 * 348 * Ensure reorder queue is read after pd->lock is dropped so we see 349 * new objects from another task in padata_do_serial. Pairs with 350 * smp_mb in padata_do_serial. 351 */ 352 smp_mb(); 353 354 reorder = per_cpu_ptr(pd->reorder_list, pd->cpu); 355 if (!list_empty(&reorder->list) && padata_find_next(pd, false)) 356 queue_work(pinst->serial_wq, &pd->reorder_work); 357 } 358 359 static void invoke_padata_reorder(struct work_struct *work) 360 { 361 struct parallel_data *pd; 362 363 local_bh_disable(); 364 pd = container_of(work, struct parallel_data, reorder_work); 365 padata_reorder(pd); 366 local_bh_enable(); 367 } 368 369 static void padata_serial_worker(struct work_struct *serial_work) 370 { 371 struct padata_serial_queue *squeue; 372 struct parallel_data *pd; 373 LIST_HEAD(local_list); 374 int cnt; 375 376 local_bh_disable(); 377 squeue = container_of(serial_work, struct padata_serial_queue, work); 378 pd = squeue->pd; 379 380 spin_lock(&squeue->serial.lock); 381 list_replace_init(&squeue->serial.list, &local_list); 382 spin_unlock(&squeue->serial.lock); 383 384 cnt = 0; 385 386 while (!list_empty(&local_list)) { 387 struct padata_priv *padata; 388 389 padata = list_entry(local_list.next, 390 struct padata_priv, list); 391 392 list_del_init(&padata->list); 393 394 padata->serial(padata); 395 cnt++; 396 } 397 local_bh_enable(); 398 399 padata_put_pd_cnt(pd, cnt); 400 } 401 402 /** 403 * padata_do_serial - padata serialization function 404 * 405 * @padata: object to be serialized. 406 * 407 * padata_do_serial must be called for every parallelized object. 408 * The serialization callback function will run with BHs off. 409 */ 410 void padata_do_serial(struct padata_priv *padata) 411 { 412 struct parallel_data *pd = padata->pd; 413 int hashed_cpu = padata_cpu_hash(pd, padata->seq_nr); 414 struct padata_list *reorder = per_cpu_ptr(pd->reorder_list, hashed_cpu); 415 struct padata_priv *cur; 416 struct list_head *pos; 417 418 spin_lock(&reorder->lock); 419 /* Sort in ascending order of sequence number. */ 420 list_for_each_prev(pos, &reorder->list) { 421 cur = list_entry(pos, struct padata_priv, list); 422 /* Compare by difference to consider integer wrap around */ 423 if ((signed int)(cur->seq_nr - padata->seq_nr) < 0) 424 break; 425 } 426 list_add(&padata->list, pos); 427 spin_unlock(&reorder->lock); 428 429 /* 430 * Ensure the addition to the reorder list is ordered correctly 431 * with the trylock of pd->lock in padata_reorder. Pairs with smp_mb 432 * in padata_reorder. 433 */ 434 smp_mb(); 435 436 padata_reorder(pd); 437 } 438 EXPORT_SYMBOL(padata_do_serial); 439 440 static int padata_setup_cpumasks(struct padata_instance *pinst) 441 { 442 struct workqueue_attrs *attrs; 443 int err; 444 445 attrs = alloc_workqueue_attrs(); 446 if (!attrs) 447 return -ENOMEM; 448 449 /* Restrict parallel_wq workers to pd->cpumask.pcpu. */ 450 cpumask_copy(attrs->cpumask, pinst->cpumask.pcpu); 451 err = apply_workqueue_attrs(pinst->parallel_wq, attrs); 452 free_workqueue_attrs(attrs); 453 454 return err; 455 } 456 457 static void __init padata_mt_helper(struct work_struct *w) 458 { 459 struct padata_work *pw = container_of(w, struct padata_work, pw_work); 460 struct padata_mt_job_state *ps = pw->pw_data; 461 struct padata_mt_job *job = ps->job; 462 bool done; 463 464 spin_lock(&ps->lock); 465 466 while (job->size > 0) { 467 unsigned long start, size, end; 468 469 start = job->start; 470 /* So end is chunk size aligned if enough work remains. */ 471 size = roundup(start + 1, ps->chunk_size) - start; 472 size = min(size, job->size); 473 end = start + size; 474 475 job->start = end; 476 job->size -= size; 477 478 spin_unlock(&ps->lock); 479 job->thread_fn(start, end, job->fn_arg); 480 spin_lock(&ps->lock); 481 } 482 483 ++ps->nworks_fini; 484 done = (ps->nworks_fini == ps->nworks); 485 spin_unlock(&ps->lock); 486 487 if (done) 488 complete(&ps->completion); 489 } 490 491 /** 492 * padata_do_multithreaded - run a multithreaded job 493 * @job: Description of the job. 494 * 495 * See the definition of struct padata_mt_job for more details. 496 */ 497 void __init padata_do_multithreaded(struct padata_mt_job *job) 498 { 499 /* In case threads finish at different times. */ 500 static const unsigned long load_balance_factor = 4; 501 struct padata_work my_work, *pw; 502 struct padata_mt_job_state ps; 503 LIST_HEAD(works); 504 int nworks, nid; 505 static atomic_t last_used_nid __initdata; 506 507 if (job->size == 0) 508 return; 509 510 /* Ensure at least one thread when size < min_chunk. */ 511 nworks = max(job->size / max(job->min_chunk, job->align), 1ul); 512 nworks = min(nworks, job->max_threads); 513 514 if (nworks == 1) { 515 /* Single thread, no coordination needed, cut to the chase. */ 516 job->thread_fn(job->start, job->start + job->size, job->fn_arg); 517 return; 518 } 519 520 spin_lock_init(&ps.lock); 521 init_completion(&ps.completion); 522 ps.job = job; 523 ps.nworks = padata_work_alloc_mt(nworks, &ps, &works); 524 ps.nworks_fini = 0; 525 526 /* 527 * Chunk size is the amount of work a helper does per call to the 528 * thread function. Load balance large jobs between threads by 529 * increasing the number of chunks, guarantee at least the minimum 530 * chunk size from the caller, and honor the caller's alignment. 531 * Ensure chunk_size is at least 1 to prevent divide-by-0 532 * panic in padata_mt_helper(). 533 */ 534 ps.chunk_size = job->size / (ps.nworks * load_balance_factor); 535 ps.chunk_size = max(ps.chunk_size, job->min_chunk); 536 ps.chunk_size = max(ps.chunk_size, 1ul); 537 ps.chunk_size = roundup(ps.chunk_size, job->align); 538 539 list_for_each_entry(pw, &works, pw_list) 540 if (job->numa_aware) { 541 int old_node = atomic_read(&last_used_nid); 542 543 do { 544 nid = next_node_in(old_node, node_states[N_CPU]); 545 } while (!atomic_try_cmpxchg(&last_used_nid, &old_node, nid)); 546 queue_work_node(nid, system_unbound_wq, &pw->pw_work); 547 } else { 548 queue_work(system_unbound_wq, &pw->pw_work); 549 } 550 551 /* Use the current thread, which saves starting a workqueue worker. */ 552 padata_work_init(&my_work, padata_mt_helper, &ps, PADATA_WORK_ONSTACK); 553 padata_mt_helper(&my_work.pw_work); 554 555 /* Wait for all the helpers to finish. */ 556 wait_for_completion(&ps.completion); 557 558 destroy_work_on_stack(&my_work.pw_work); 559 padata_works_free(&works); 560 } 561 562 static void __padata_list_init(struct padata_list *pd_list) 563 { 564 INIT_LIST_HEAD(&pd_list->list); 565 spin_lock_init(&pd_list->lock); 566 } 567 568 /* Initialize all percpu queues used by serial workers */ 569 static void padata_init_squeues(struct parallel_data *pd) 570 { 571 int cpu; 572 struct padata_serial_queue *squeue; 573 574 for_each_cpu(cpu, pd->cpumask.cbcpu) { 575 squeue = per_cpu_ptr(pd->squeue, cpu); 576 squeue->pd = pd; 577 __padata_list_init(&squeue->serial); 578 INIT_WORK(&squeue->work, padata_serial_worker); 579 } 580 } 581 582 /* Initialize per-CPU reorder lists */ 583 static void padata_init_reorder_list(struct parallel_data *pd) 584 { 585 int cpu; 586 struct padata_list *list; 587 588 for_each_cpu(cpu, pd->cpumask.pcpu) { 589 list = per_cpu_ptr(pd->reorder_list, cpu); 590 __padata_list_init(list); 591 } 592 } 593 594 /* Allocate and initialize the internal cpumask dependend resources. */ 595 static struct parallel_data *padata_alloc_pd(struct padata_shell *ps) 596 { 597 struct padata_instance *pinst = ps->pinst; 598 struct parallel_data *pd; 599 600 pd = kzalloc(sizeof(struct parallel_data), GFP_KERNEL); 601 if (!pd) 602 goto err; 603 604 pd->reorder_list = alloc_percpu(struct padata_list); 605 if (!pd->reorder_list) 606 goto err_free_pd; 607 608 pd->squeue = alloc_percpu(struct padata_serial_queue); 609 if (!pd->squeue) 610 goto err_free_reorder_list; 611 612 pd->ps = ps; 613 614 if (!alloc_cpumask_var(&pd->cpumask.pcpu, GFP_KERNEL)) 615 goto err_free_squeue; 616 if (!alloc_cpumask_var(&pd->cpumask.cbcpu, GFP_KERNEL)) 617 goto err_free_pcpu; 618 619 cpumask_and(pd->cpumask.pcpu, pinst->cpumask.pcpu, cpu_online_mask); 620 cpumask_and(pd->cpumask.cbcpu, pinst->cpumask.cbcpu, cpu_online_mask); 621 622 padata_init_reorder_list(pd); 623 padata_init_squeues(pd); 624 pd->seq_nr = -1; 625 refcount_set(&pd->refcnt, 1); 626 spin_lock_init(&pd->lock); 627 pd->cpu = cpumask_first(pd->cpumask.pcpu); 628 INIT_WORK(&pd->reorder_work, invoke_padata_reorder); 629 630 return pd; 631 632 err_free_pcpu: 633 free_cpumask_var(pd->cpumask.pcpu); 634 err_free_squeue: 635 free_percpu(pd->squeue); 636 err_free_reorder_list: 637 free_percpu(pd->reorder_list); 638 err_free_pd: 639 kfree(pd); 640 err: 641 return NULL; 642 } 643 644 static void padata_free_pd(struct parallel_data *pd) 645 { 646 free_cpumask_var(pd->cpumask.pcpu); 647 free_cpumask_var(pd->cpumask.cbcpu); 648 free_percpu(pd->reorder_list); 649 free_percpu(pd->squeue); 650 kfree(pd); 651 } 652 653 static void __padata_start(struct padata_instance *pinst) 654 { 655 pinst->flags |= PADATA_INIT; 656 } 657 658 static void __padata_stop(struct padata_instance *pinst) 659 { 660 if (!(pinst->flags & PADATA_INIT)) 661 return; 662 663 pinst->flags &= ~PADATA_INIT; 664 665 synchronize_rcu(); 666 } 667 668 /* Replace the internal control structure with a new one. */ 669 static int padata_replace_one(struct padata_shell *ps) 670 { 671 struct parallel_data *pd_new; 672 673 pd_new = padata_alloc_pd(ps); 674 if (!pd_new) 675 return -ENOMEM; 676 677 ps->opd = rcu_dereference_protected(ps->pd, 1); 678 rcu_assign_pointer(ps->pd, pd_new); 679 680 return 0; 681 } 682 683 static int padata_replace(struct padata_instance *pinst) 684 { 685 struct padata_shell *ps; 686 int err = 0; 687 688 pinst->flags |= PADATA_RESET; 689 690 list_for_each_entry(ps, &pinst->pslist, list) { 691 err = padata_replace_one(ps); 692 if (err) 693 break; 694 } 695 696 synchronize_rcu(); 697 698 list_for_each_entry_continue_reverse(ps, &pinst->pslist, list) 699 padata_put_pd(ps->opd); 700 701 pinst->flags &= ~PADATA_RESET; 702 703 return err; 704 } 705 706 /* If cpumask contains no active cpu, we mark the instance as invalid. */ 707 static bool padata_validate_cpumask(struct padata_instance *pinst, 708 const struct cpumask *cpumask) 709 { 710 if (!cpumask_intersects(cpumask, cpu_online_mask)) { 711 pinst->flags |= PADATA_INVALID; 712 return false; 713 } 714 715 pinst->flags &= ~PADATA_INVALID; 716 return true; 717 } 718 719 static int __padata_set_cpumasks(struct padata_instance *pinst, 720 cpumask_var_t pcpumask, 721 cpumask_var_t cbcpumask) 722 { 723 int valid; 724 int err; 725 726 valid = padata_validate_cpumask(pinst, pcpumask); 727 if (!valid) { 728 __padata_stop(pinst); 729 goto out_replace; 730 } 731 732 valid = padata_validate_cpumask(pinst, cbcpumask); 733 if (!valid) 734 __padata_stop(pinst); 735 736 out_replace: 737 cpumask_copy(pinst->cpumask.pcpu, pcpumask); 738 cpumask_copy(pinst->cpumask.cbcpu, cbcpumask); 739 740 err = padata_setup_cpumasks(pinst) ?: padata_replace(pinst); 741 742 if (valid) 743 __padata_start(pinst); 744 745 return err; 746 } 747 748 /** 749 * padata_set_cpumask - Sets specified by @cpumask_type cpumask to the value 750 * equivalent to @cpumask. 751 * @pinst: padata instance 752 * @cpumask_type: PADATA_CPU_SERIAL or PADATA_CPU_PARALLEL corresponding 753 * to parallel and serial cpumasks respectively. 754 * @cpumask: the cpumask to use 755 * 756 * Return: 0 on success or negative error code 757 */ 758 int padata_set_cpumask(struct padata_instance *pinst, int cpumask_type, 759 cpumask_var_t cpumask) 760 { 761 struct cpumask *serial_mask, *parallel_mask; 762 int err = -EINVAL; 763 764 cpus_read_lock(); 765 mutex_lock(&pinst->lock); 766 767 switch (cpumask_type) { 768 case PADATA_CPU_PARALLEL: 769 serial_mask = pinst->cpumask.cbcpu; 770 parallel_mask = cpumask; 771 break; 772 case PADATA_CPU_SERIAL: 773 parallel_mask = pinst->cpumask.pcpu; 774 serial_mask = cpumask; 775 break; 776 default: 777 goto out; 778 } 779 780 err = __padata_set_cpumasks(pinst, parallel_mask, serial_mask); 781 782 out: 783 mutex_unlock(&pinst->lock); 784 cpus_read_unlock(); 785 786 return err; 787 } 788 EXPORT_SYMBOL(padata_set_cpumask); 789 790 #ifdef CONFIG_HOTPLUG_CPU 791 792 static int __padata_add_cpu(struct padata_instance *pinst, int cpu) 793 { 794 int err = 0; 795 796 if (cpumask_test_cpu(cpu, cpu_online_mask)) { 797 err = padata_replace(pinst); 798 799 if (padata_validate_cpumask(pinst, pinst->cpumask.pcpu) && 800 padata_validate_cpumask(pinst, pinst->cpumask.cbcpu)) 801 __padata_start(pinst); 802 } 803 804 return err; 805 } 806 807 static int __padata_remove_cpu(struct padata_instance *pinst, int cpu) 808 { 809 int err = 0; 810 811 if (!cpumask_test_cpu(cpu, cpu_online_mask)) { 812 if (!padata_validate_cpumask(pinst, pinst->cpumask.pcpu) || 813 !padata_validate_cpumask(pinst, pinst->cpumask.cbcpu)) 814 __padata_stop(pinst); 815 816 err = padata_replace(pinst); 817 } 818 819 return err; 820 } 821 822 static inline int pinst_has_cpu(struct padata_instance *pinst, int cpu) 823 { 824 return cpumask_test_cpu(cpu, pinst->cpumask.pcpu) || 825 cpumask_test_cpu(cpu, pinst->cpumask.cbcpu); 826 } 827 828 static int padata_cpu_online(unsigned int cpu, struct hlist_node *node) 829 { 830 struct padata_instance *pinst; 831 int ret; 832 833 pinst = hlist_entry_safe(node, struct padata_instance, cpu_online_node); 834 if (!pinst_has_cpu(pinst, cpu)) 835 return 0; 836 837 mutex_lock(&pinst->lock); 838 ret = __padata_add_cpu(pinst, cpu); 839 mutex_unlock(&pinst->lock); 840 return ret; 841 } 842 843 static int padata_cpu_dead(unsigned int cpu, struct hlist_node *node) 844 { 845 struct padata_instance *pinst; 846 int ret; 847 848 pinst = hlist_entry_safe(node, struct padata_instance, cpu_dead_node); 849 if (!pinst_has_cpu(pinst, cpu)) 850 return 0; 851 852 mutex_lock(&pinst->lock); 853 ret = __padata_remove_cpu(pinst, cpu); 854 mutex_unlock(&pinst->lock); 855 return ret; 856 } 857 858 static enum cpuhp_state hp_online; 859 #endif 860 861 static void __padata_free(struct padata_instance *pinst) 862 { 863 #ifdef CONFIG_HOTPLUG_CPU 864 cpuhp_state_remove_instance_nocalls(CPUHP_PADATA_DEAD, 865 &pinst->cpu_dead_node); 866 cpuhp_state_remove_instance_nocalls(hp_online, &pinst->cpu_online_node); 867 #endif 868 869 WARN_ON(!list_empty(&pinst->pslist)); 870 871 free_cpumask_var(pinst->cpumask.pcpu); 872 free_cpumask_var(pinst->cpumask.cbcpu); 873 destroy_workqueue(pinst->serial_wq); 874 destroy_workqueue(pinst->parallel_wq); 875 kfree(pinst); 876 } 877 878 #define kobj2pinst(_kobj) \ 879 container_of(_kobj, struct padata_instance, kobj) 880 #define attr2pentry(_attr) \ 881 container_of(_attr, struct padata_sysfs_entry, attr) 882 883 static void padata_sysfs_release(struct kobject *kobj) 884 { 885 struct padata_instance *pinst = kobj2pinst(kobj); 886 __padata_free(pinst); 887 } 888 889 struct padata_sysfs_entry { 890 struct attribute attr; 891 ssize_t (*show)(struct padata_instance *, struct attribute *, char *); 892 ssize_t (*store)(struct padata_instance *, struct attribute *, 893 const char *, size_t); 894 }; 895 896 static ssize_t show_cpumask(struct padata_instance *pinst, 897 struct attribute *attr, char *buf) 898 { 899 struct cpumask *cpumask; 900 ssize_t len; 901 902 mutex_lock(&pinst->lock); 903 if (!strcmp(attr->name, "serial_cpumask")) 904 cpumask = pinst->cpumask.cbcpu; 905 else 906 cpumask = pinst->cpumask.pcpu; 907 908 len = snprintf(buf, PAGE_SIZE, "%*pb\n", 909 nr_cpu_ids, cpumask_bits(cpumask)); 910 mutex_unlock(&pinst->lock); 911 return len < PAGE_SIZE ? len : -EINVAL; 912 } 913 914 static ssize_t store_cpumask(struct padata_instance *pinst, 915 struct attribute *attr, 916 const char *buf, size_t count) 917 { 918 cpumask_var_t new_cpumask; 919 ssize_t ret; 920 int mask_type; 921 922 if (!alloc_cpumask_var(&new_cpumask, GFP_KERNEL)) 923 return -ENOMEM; 924 925 ret = bitmap_parse(buf, count, cpumask_bits(new_cpumask), 926 nr_cpumask_bits); 927 if (ret < 0) 928 goto out; 929 930 mask_type = !strcmp(attr->name, "serial_cpumask") ? 931 PADATA_CPU_SERIAL : PADATA_CPU_PARALLEL; 932 ret = padata_set_cpumask(pinst, mask_type, new_cpumask); 933 if (!ret) 934 ret = count; 935 936 out: 937 free_cpumask_var(new_cpumask); 938 return ret; 939 } 940 941 #define PADATA_ATTR_RW(_name, _show_name, _store_name) \ 942 static struct padata_sysfs_entry _name##_attr = \ 943 __ATTR(_name, 0644, _show_name, _store_name) 944 #define PADATA_ATTR_RO(_name, _show_name) \ 945 static struct padata_sysfs_entry _name##_attr = \ 946 __ATTR(_name, 0400, _show_name, NULL) 947 948 PADATA_ATTR_RW(serial_cpumask, show_cpumask, store_cpumask); 949 PADATA_ATTR_RW(parallel_cpumask, show_cpumask, store_cpumask); 950 951 /* 952 * Padata sysfs provides the following objects: 953 * serial_cpumask [RW] - cpumask for serial workers 954 * parallel_cpumask [RW] - cpumask for parallel workers 955 */ 956 static struct attribute *padata_default_attrs[] = { 957 &serial_cpumask_attr.attr, 958 ¶llel_cpumask_attr.attr, 959 NULL, 960 }; 961 ATTRIBUTE_GROUPS(padata_default); 962 963 static ssize_t padata_sysfs_show(struct kobject *kobj, 964 struct attribute *attr, char *buf) 965 { 966 struct padata_instance *pinst; 967 struct padata_sysfs_entry *pentry; 968 ssize_t ret = -EIO; 969 970 pinst = kobj2pinst(kobj); 971 pentry = attr2pentry(attr); 972 if (pentry->show) 973 ret = pentry->show(pinst, attr, buf); 974 975 return ret; 976 } 977 978 static ssize_t padata_sysfs_store(struct kobject *kobj, struct attribute *attr, 979 const char *buf, size_t count) 980 { 981 struct padata_instance *pinst; 982 struct padata_sysfs_entry *pentry; 983 ssize_t ret = -EIO; 984 985 pinst = kobj2pinst(kobj); 986 pentry = attr2pentry(attr); 987 if (pentry->store) 988 ret = pentry->store(pinst, attr, buf, count); 989 990 return ret; 991 } 992 993 static const struct sysfs_ops padata_sysfs_ops = { 994 .show = padata_sysfs_show, 995 .store = padata_sysfs_store, 996 }; 997 998 static const struct kobj_type padata_attr_type = { 999 .sysfs_ops = &padata_sysfs_ops, 1000 .default_groups = padata_default_groups, 1001 .release = padata_sysfs_release, 1002 }; 1003 1004 /** 1005 * padata_alloc - allocate and initialize a padata instance 1006 * @name: used to identify the instance 1007 * 1008 * Return: new instance on success, NULL on error 1009 */ 1010 struct padata_instance *padata_alloc(const char *name) 1011 { 1012 struct padata_instance *pinst; 1013 1014 pinst = kzalloc(sizeof(struct padata_instance), GFP_KERNEL); 1015 if (!pinst) 1016 goto err; 1017 1018 pinst->parallel_wq = alloc_workqueue("%s_parallel", WQ_UNBOUND, 0, 1019 name); 1020 if (!pinst->parallel_wq) 1021 goto err_free_inst; 1022 1023 cpus_read_lock(); 1024 1025 pinst->serial_wq = alloc_workqueue("%s_serial", WQ_MEM_RECLAIM | 1026 WQ_CPU_INTENSIVE, 1, name); 1027 if (!pinst->serial_wq) 1028 goto err_put_cpus; 1029 1030 if (!alloc_cpumask_var(&pinst->cpumask.pcpu, GFP_KERNEL)) 1031 goto err_free_serial_wq; 1032 if (!alloc_cpumask_var(&pinst->cpumask.cbcpu, GFP_KERNEL)) { 1033 free_cpumask_var(pinst->cpumask.pcpu); 1034 goto err_free_serial_wq; 1035 } 1036 1037 INIT_LIST_HEAD(&pinst->pslist); 1038 1039 cpumask_copy(pinst->cpumask.pcpu, cpu_possible_mask); 1040 cpumask_copy(pinst->cpumask.cbcpu, cpu_possible_mask); 1041 1042 if (padata_setup_cpumasks(pinst)) 1043 goto err_free_masks; 1044 1045 __padata_start(pinst); 1046 1047 kobject_init(&pinst->kobj, &padata_attr_type); 1048 mutex_init(&pinst->lock); 1049 1050 #ifdef CONFIG_HOTPLUG_CPU 1051 cpuhp_state_add_instance_nocalls_cpuslocked(hp_online, 1052 &pinst->cpu_online_node); 1053 cpuhp_state_add_instance_nocalls_cpuslocked(CPUHP_PADATA_DEAD, 1054 &pinst->cpu_dead_node); 1055 #endif 1056 1057 cpus_read_unlock(); 1058 1059 return pinst; 1060 1061 err_free_masks: 1062 free_cpumask_var(pinst->cpumask.pcpu); 1063 free_cpumask_var(pinst->cpumask.cbcpu); 1064 err_free_serial_wq: 1065 destroy_workqueue(pinst->serial_wq); 1066 err_put_cpus: 1067 cpus_read_unlock(); 1068 destroy_workqueue(pinst->parallel_wq); 1069 err_free_inst: 1070 kfree(pinst); 1071 err: 1072 return NULL; 1073 } 1074 EXPORT_SYMBOL(padata_alloc); 1075 1076 /** 1077 * padata_free - free a padata instance 1078 * 1079 * @pinst: padata instance to free 1080 */ 1081 void padata_free(struct padata_instance *pinst) 1082 { 1083 kobject_put(&pinst->kobj); 1084 } 1085 EXPORT_SYMBOL(padata_free); 1086 1087 /** 1088 * padata_alloc_shell - Allocate and initialize padata shell. 1089 * 1090 * @pinst: Parent padata_instance object. 1091 * 1092 * Return: new shell on success, NULL on error 1093 */ 1094 struct padata_shell *padata_alloc_shell(struct padata_instance *pinst) 1095 { 1096 struct parallel_data *pd; 1097 struct padata_shell *ps; 1098 1099 ps = kzalloc(sizeof(*ps), GFP_KERNEL); 1100 if (!ps) 1101 goto out; 1102 1103 ps->pinst = pinst; 1104 1105 cpus_read_lock(); 1106 pd = padata_alloc_pd(ps); 1107 cpus_read_unlock(); 1108 1109 if (!pd) 1110 goto out_free_ps; 1111 1112 mutex_lock(&pinst->lock); 1113 RCU_INIT_POINTER(ps->pd, pd); 1114 list_add(&ps->list, &pinst->pslist); 1115 mutex_unlock(&pinst->lock); 1116 1117 return ps; 1118 1119 out_free_ps: 1120 kfree(ps); 1121 out: 1122 return NULL; 1123 } 1124 EXPORT_SYMBOL(padata_alloc_shell); 1125 1126 /** 1127 * padata_free_shell - free a padata shell 1128 * 1129 * @ps: padata shell to free 1130 */ 1131 void padata_free_shell(struct padata_shell *ps) 1132 { 1133 struct parallel_data *pd; 1134 1135 if (!ps) 1136 return; 1137 1138 /* 1139 * Wait for all _do_serial calls to finish to avoid touching 1140 * freed pd's and ps's. 1141 */ 1142 synchronize_rcu(); 1143 1144 mutex_lock(&ps->pinst->lock); 1145 list_del(&ps->list); 1146 pd = rcu_dereference_protected(ps->pd, 1); 1147 padata_put_pd(pd); 1148 mutex_unlock(&ps->pinst->lock); 1149 1150 kfree(ps); 1151 } 1152 EXPORT_SYMBOL(padata_free_shell); 1153 1154 void __init padata_init(void) 1155 { 1156 unsigned int i, possible_cpus; 1157 #ifdef CONFIG_HOTPLUG_CPU 1158 int ret; 1159 1160 ret = cpuhp_setup_state_multi(CPUHP_AP_ONLINE_DYN, "padata:online", 1161 padata_cpu_online, NULL); 1162 if (ret < 0) 1163 goto err; 1164 hp_online = ret; 1165 1166 ret = cpuhp_setup_state_multi(CPUHP_PADATA_DEAD, "padata:dead", 1167 NULL, padata_cpu_dead); 1168 if (ret < 0) 1169 goto remove_online_state; 1170 #endif 1171 1172 possible_cpus = num_possible_cpus(); 1173 padata_works = kmalloc_array(possible_cpus, sizeof(struct padata_work), 1174 GFP_KERNEL); 1175 if (!padata_works) 1176 goto remove_dead_state; 1177 1178 for (i = 0; i < possible_cpus; ++i) 1179 list_add(&padata_works[i].pw_list, &padata_free_works); 1180 1181 return; 1182 1183 remove_dead_state: 1184 #ifdef CONFIG_HOTPLUG_CPU 1185 cpuhp_remove_multi_state(CPUHP_PADATA_DEAD); 1186 remove_online_state: 1187 cpuhp_remove_multi_state(hp_online); 1188 err: 1189 #endif 1190 pr_warn("padata: initialization failed\n"); 1191 } 1192