1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Generic helpers for smp ipi calls 4 * 5 * (C) Jens Axboe <jens.axboe@oracle.com> 2008 6 */ 7 8 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 9 10 #include <linux/irq_work.h> 11 #include <linux/rcupdate.h> 12 #include <linux/rculist.h> 13 #include <linux/kernel.h> 14 #include <linux/export.h> 15 #include <linux/percpu.h> 16 #include <linux/init.h> 17 #include <linux/interrupt.h> 18 #include <linux/gfp.h> 19 #include <linux/smp.h> 20 #include <linux/cpu.h> 21 #include <linux/sched.h> 22 #include <linux/sched/idle.h> 23 #include <linux/hypervisor.h> 24 #include <linux/sched/clock.h> 25 #include <linux/nmi.h> 26 #include <linux/sched/debug.h> 27 28 #include "smpboot.h" 29 #include "sched/smp.h" 30 31 #define CSD_TYPE(_csd) ((_csd)->node.u_flags & CSD_FLAG_TYPE_MASK) 32 33 struct call_function_data { 34 call_single_data_t __percpu *csd; 35 cpumask_var_t cpumask; 36 cpumask_var_t cpumask_ipi; 37 }; 38 39 static DEFINE_PER_CPU_ALIGNED(struct call_function_data, cfd_data); 40 41 static DEFINE_PER_CPU_SHARED_ALIGNED(struct llist_head, call_single_queue); 42 43 static void flush_smp_call_function_queue(bool warn_cpu_offline); 44 45 int smpcfd_prepare_cpu(unsigned int cpu) 46 { 47 struct call_function_data *cfd = &per_cpu(cfd_data, cpu); 48 49 if (!zalloc_cpumask_var_node(&cfd->cpumask, GFP_KERNEL, 50 cpu_to_node(cpu))) 51 return -ENOMEM; 52 if (!zalloc_cpumask_var_node(&cfd->cpumask_ipi, GFP_KERNEL, 53 cpu_to_node(cpu))) { 54 free_cpumask_var(cfd->cpumask); 55 return -ENOMEM; 56 } 57 cfd->csd = alloc_percpu(call_single_data_t); 58 if (!cfd->csd) { 59 free_cpumask_var(cfd->cpumask); 60 free_cpumask_var(cfd->cpumask_ipi); 61 return -ENOMEM; 62 } 63 64 return 0; 65 } 66 67 int smpcfd_dead_cpu(unsigned int cpu) 68 { 69 struct call_function_data *cfd = &per_cpu(cfd_data, cpu); 70 71 free_cpumask_var(cfd->cpumask); 72 free_cpumask_var(cfd->cpumask_ipi); 73 free_percpu(cfd->csd); 74 return 0; 75 } 76 77 int smpcfd_dying_cpu(unsigned int cpu) 78 { 79 /* 80 * The IPIs for the smp-call-function callbacks queued by other 81 * CPUs might arrive late, either due to hardware latencies or 82 * because this CPU disabled interrupts (inside stop-machine) 83 * before the IPIs were sent. So flush out any pending callbacks 84 * explicitly (without waiting for the IPIs to arrive), to 85 * ensure that the outgoing CPU doesn't go offline with work 86 * still pending. 87 */ 88 flush_smp_call_function_queue(false); 89 irq_work_run(); 90 return 0; 91 } 92 93 void __init call_function_init(void) 94 { 95 int i; 96 97 for_each_possible_cpu(i) 98 init_llist_head(&per_cpu(call_single_queue, i)); 99 100 smpcfd_prepare_cpu(smp_processor_id()); 101 } 102 103 #ifdef CONFIG_CSD_LOCK_WAIT_DEBUG 104 105 static DEFINE_PER_CPU(call_single_data_t *, cur_csd); 106 static DEFINE_PER_CPU(smp_call_func_t, cur_csd_func); 107 static DEFINE_PER_CPU(void *, cur_csd_info); 108 109 #define CSD_LOCK_TIMEOUT (5ULL * NSEC_PER_SEC) 110 static atomic_t csd_bug_count = ATOMIC_INIT(0); 111 112 /* Record current CSD work for current CPU, NULL to erase. */ 113 static void csd_lock_record(call_single_data_t *csd) 114 { 115 if (!csd) { 116 smp_mb(); /* NULL cur_csd after unlock. */ 117 __this_cpu_write(cur_csd, NULL); 118 return; 119 } 120 __this_cpu_write(cur_csd_func, csd->func); 121 __this_cpu_write(cur_csd_info, csd->info); 122 smp_wmb(); /* func and info before csd. */ 123 __this_cpu_write(cur_csd, csd); 124 smp_mb(); /* Update cur_csd before function call. */ 125 /* Or before unlock, as the case may be. */ 126 } 127 128 static __always_inline int csd_lock_wait_getcpu(call_single_data_t *csd) 129 { 130 unsigned int csd_type; 131 132 csd_type = CSD_TYPE(csd); 133 if (csd_type == CSD_TYPE_ASYNC || csd_type == CSD_TYPE_SYNC) 134 return csd->node.dst; /* Other CSD_TYPE_ values might not have ->dst. */ 135 return -1; 136 } 137 138 /* 139 * Complain if too much time spent waiting. Note that only 140 * the CSD_TYPE_SYNC/ASYNC types provide the destination CPU, 141 * so waiting on other types gets much less information. 142 */ 143 static __always_inline bool csd_lock_wait_toolong(call_single_data_t *csd, u64 ts0, u64 *ts1, int *bug_id) 144 { 145 int cpu = -1; 146 int cpux; 147 bool firsttime; 148 u64 ts2, ts_delta; 149 call_single_data_t *cpu_cur_csd; 150 unsigned int flags = READ_ONCE(csd->node.u_flags); 151 152 if (!(flags & CSD_FLAG_LOCK)) { 153 if (!unlikely(*bug_id)) 154 return true; 155 cpu = csd_lock_wait_getcpu(csd); 156 pr_alert("csd: CSD lock (#%d) got unstuck on CPU#%02d, CPU#%02d released the lock.\n", 157 *bug_id, raw_smp_processor_id(), cpu); 158 return true; 159 } 160 161 ts2 = sched_clock(); 162 ts_delta = ts2 - *ts1; 163 if (likely(ts_delta <= CSD_LOCK_TIMEOUT)) 164 return false; 165 166 firsttime = !*bug_id; 167 if (firsttime) 168 *bug_id = atomic_inc_return(&csd_bug_count); 169 cpu = csd_lock_wait_getcpu(csd); 170 if (WARN_ONCE(cpu < 0 || cpu >= nr_cpu_ids, "%s: cpu = %d\n", __func__, cpu)) 171 cpux = 0; 172 else 173 cpux = cpu; 174 cpu_cur_csd = smp_load_acquire(&per_cpu(cur_csd, cpux)); /* Before func and info. */ 175 pr_alert("csd: %s non-responsive CSD lock (#%d) on CPU#%d, waiting %llu ns for CPU#%02d %pS(%ps).\n", 176 firsttime ? "Detected" : "Continued", *bug_id, raw_smp_processor_id(), ts2 - ts0, 177 cpu, csd->func, csd->info); 178 if (cpu_cur_csd && csd != cpu_cur_csd) { 179 pr_alert("\tcsd: CSD lock (#%d) handling prior %pS(%ps) request.\n", 180 *bug_id, READ_ONCE(per_cpu(cur_csd_func, cpux)), 181 READ_ONCE(per_cpu(cur_csd_info, cpux))); 182 } else { 183 pr_alert("\tcsd: CSD lock (#%d) %s.\n", 184 *bug_id, !cpu_cur_csd ? "unresponsive" : "handling this request"); 185 } 186 if (cpu >= 0) { 187 if (!trigger_single_cpu_backtrace(cpu)) 188 dump_cpu_task(cpu); 189 if (!cpu_cur_csd) { 190 pr_alert("csd: Re-sending CSD lock (#%d) IPI from CPU#%02d to CPU#%02d\n", *bug_id, raw_smp_processor_id(), cpu); 191 arch_send_call_function_single_ipi(cpu); 192 } 193 } 194 dump_stack(); 195 *ts1 = ts2; 196 197 return false; 198 } 199 200 /* 201 * csd_lock/csd_unlock used to serialize access to per-cpu csd resources 202 * 203 * For non-synchronous ipi calls the csd can still be in use by the 204 * previous function call. For multi-cpu calls its even more interesting 205 * as we'll have to ensure no other cpu is observing our csd. 206 */ 207 static __always_inline void csd_lock_wait(call_single_data_t *csd) 208 { 209 int bug_id = 0; 210 u64 ts0, ts1; 211 212 ts1 = ts0 = sched_clock(); 213 for (;;) { 214 if (csd_lock_wait_toolong(csd, ts0, &ts1, &bug_id)) 215 break; 216 cpu_relax(); 217 } 218 smp_acquire__after_ctrl_dep(); 219 } 220 221 #else 222 static void csd_lock_record(call_single_data_t *csd) 223 { 224 } 225 226 static __always_inline void csd_lock_wait(call_single_data_t *csd) 227 { 228 smp_cond_load_acquire(&csd->node.u_flags, !(VAL & CSD_FLAG_LOCK)); 229 } 230 #endif 231 232 static __always_inline void csd_lock(call_single_data_t *csd) 233 { 234 csd_lock_wait(csd); 235 csd->node.u_flags |= CSD_FLAG_LOCK; 236 237 /* 238 * prevent CPU from reordering the above assignment 239 * to ->flags with any subsequent assignments to other 240 * fields of the specified call_single_data_t structure: 241 */ 242 smp_wmb(); 243 } 244 245 static __always_inline void csd_unlock(call_single_data_t *csd) 246 { 247 WARN_ON(!(csd->node.u_flags & CSD_FLAG_LOCK)); 248 249 /* 250 * ensure we're all done before releasing data: 251 */ 252 smp_store_release(&csd->node.u_flags, 0); 253 } 254 255 static DEFINE_PER_CPU_SHARED_ALIGNED(call_single_data_t, csd_data); 256 257 void __smp_call_single_queue(int cpu, struct llist_node *node) 258 { 259 /* 260 * The list addition should be visible before sending the IPI 261 * handler locks the list to pull the entry off it because of 262 * normal cache coherency rules implied by spinlocks. 263 * 264 * If IPIs can go out of order to the cache coherency protocol 265 * in an architecture, sufficient synchronisation should be added 266 * to arch code to make it appear to obey cache coherency WRT 267 * locking and barrier primitives. Generic code isn't really 268 * equipped to do the right thing... 269 */ 270 if (llist_add(node, &per_cpu(call_single_queue, cpu))) 271 send_call_function_single_ipi(cpu); 272 } 273 274 /* 275 * Insert a previously allocated call_single_data_t element 276 * for execution on the given CPU. data must already have 277 * ->func, ->info, and ->flags set. 278 */ 279 static int generic_exec_single(int cpu, call_single_data_t *csd) 280 { 281 if (cpu == smp_processor_id()) { 282 smp_call_func_t func = csd->func; 283 void *info = csd->info; 284 unsigned long flags; 285 286 /* 287 * We can unlock early even for the synchronous on-stack case, 288 * since we're doing this from the same CPU.. 289 */ 290 csd_lock_record(csd); 291 csd_unlock(csd); 292 local_irq_save(flags); 293 func(info); 294 csd_lock_record(NULL); 295 local_irq_restore(flags); 296 return 0; 297 } 298 299 if ((unsigned)cpu >= nr_cpu_ids || !cpu_online(cpu)) { 300 csd_unlock(csd); 301 return -ENXIO; 302 } 303 304 __smp_call_single_queue(cpu, &csd->node.llist); 305 306 return 0; 307 } 308 309 /** 310 * generic_smp_call_function_single_interrupt - Execute SMP IPI callbacks 311 * 312 * Invoked by arch to handle an IPI for call function single. 313 * Must be called with interrupts disabled. 314 */ 315 void generic_smp_call_function_single_interrupt(void) 316 { 317 flush_smp_call_function_queue(true); 318 } 319 320 /** 321 * flush_smp_call_function_queue - Flush pending smp-call-function callbacks 322 * 323 * @warn_cpu_offline: If set to 'true', warn if callbacks were queued on an 324 * offline CPU. Skip this check if set to 'false'. 325 * 326 * Flush any pending smp-call-function callbacks queued on this CPU. This is 327 * invoked by the generic IPI handler, as well as by a CPU about to go offline, 328 * to ensure that all pending IPI callbacks are run before it goes completely 329 * offline. 330 * 331 * Loop through the call_single_queue and run all the queued callbacks. 332 * Must be called with interrupts disabled. 333 */ 334 static void flush_smp_call_function_queue(bool warn_cpu_offline) 335 { 336 call_single_data_t *csd, *csd_next; 337 struct llist_node *entry, *prev; 338 struct llist_head *head; 339 static bool warned; 340 341 lockdep_assert_irqs_disabled(); 342 343 head = this_cpu_ptr(&call_single_queue); 344 entry = llist_del_all(head); 345 entry = llist_reverse_order(entry); 346 347 /* There shouldn't be any pending callbacks on an offline CPU. */ 348 if (unlikely(warn_cpu_offline && !cpu_online(smp_processor_id()) && 349 !warned && !llist_empty(head))) { 350 warned = true; 351 WARN(1, "IPI on offline CPU %d\n", smp_processor_id()); 352 353 /* 354 * We don't have to use the _safe() variant here 355 * because we are not invoking the IPI handlers yet. 356 */ 357 llist_for_each_entry(csd, entry, node.llist) { 358 switch (CSD_TYPE(csd)) { 359 case CSD_TYPE_ASYNC: 360 case CSD_TYPE_SYNC: 361 case CSD_TYPE_IRQ_WORK: 362 pr_warn("IPI callback %pS sent to offline CPU\n", 363 csd->func); 364 break; 365 366 case CSD_TYPE_TTWU: 367 pr_warn("IPI task-wakeup sent to offline CPU\n"); 368 break; 369 370 default: 371 pr_warn("IPI callback, unknown type %d, sent to offline CPU\n", 372 CSD_TYPE(csd)); 373 break; 374 } 375 } 376 } 377 378 /* 379 * First; run all SYNC callbacks, people are waiting for us. 380 */ 381 prev = NULL; 382 llist_for_each_entry_safe(csd, csd_next, entry, node.llist) { 383 /* Do we wait until *after* callback? */ 384 if (CSD_TYPE(csd) == CSD_TYPE_SYNC) { 385 smp_call_func_t func = csd->func; 386 void *info = csd->info; 387 388 if (prev) { 389 prev->next = &csd_next->node.llist; 390 } else { 391 entry = &csd_next->node.llist; 392 } 393 394 csd_lock_record(csd); 395 func(info); 396 csd_unlock(csd); 397 csd_lock_record(NULL); 398 } else { 399 prev = &csd->node.llist; 400 } 401 } 402 403 if (!entry) 404 return; 405 406 /* 407 * Second; run all !SYNC callbacks. 408 */ 409 prev = NULL; 410 llist_for_each_entry_safe(csd, csd_next, entry, node.llist) { 411 int type = CSD_TYPE(csd); 412 413 if (type != CSD_TYPE_TTWU) { 414 if (prev) { 415 prev->next = &csd_next->node.llist; 416 } else { 417 entry = &csd_next->node.llist; 418 } 419 420 if (type == CSD_TYPE_ASYNC) { 421 smp_call_func_t func = csd->func; 422 void *info = csd->info; 423 424 csd_lock_record(csd); 425 csd_unlock(csd); 426 func(info); 427 csd_lock_record(NULL); 428 } else if (type == CSD_TYPE_IRQ_WORK) { 429 irq_work_single(csd); 430 } 431 432 } else { 433 prev = &csd->node.llist; 434 } 435 } 436 437 /* 438 * Third; only CSD_TYPE_TTWU is left, issue those. 439 */ 440 if (entry) 441 sched_ttwu_pending(entry); 442 } 443 444 void flush_smp_call_function_from_idle(void) 445 { 446 unsigned long flags; 447 448 if (llist_empty(this_cpu_ptr(&call_single_queue))) 449 return; 450 451 local_irq_save(flags); 452 flush_smp_call_function_queue(true); 453 if (local_softirq_pending()) 454 do_softirq(); 455 456 local_irq_restore(flags); 457 } 458 459 /* 460 * smp_call_function_single - Run a function on a specific CPU 461 * @func: The function to run. This must be fast and non-blocking. 462 * @info: An arbitrary pointer to pass to the function. 463 * @wait: If true, wait until function has completed on other CPUs. 464 * 465 * Returns 0 on success, else a negative status code. 466 */ 467 int smp_call_function_single(int cpu, smp_call_func_t func, void *info, 468 int wait) 469 { 470 call_single_data_t *csd; 471 call_single_data_t csd_stack = { 472 .node = { .u_flags = CSD_FLAG_LOCK | CSD_TYPE_SYNC, }, 473 }; 474 int this_cpu; 475 int err; 476 477 /* 478 * prevent preemption and reschedule on another processor, 479 * as well as CPU removal 480 */ 481 this_cpu = get_cpu(); 482 483 /* 484 * Can deadlock when called with interrupts disabled. 485 * We allow cpu's that are not yet online though, as no one else can 486 * send smp call function interrupt to this cpu and as such deadlocks 487 * can't happen. 488 */ 489 WARN_ON_ONCE(cpu_online(this_cpu) && irqs_disabled() 490 && !oops_in_progress); 491 492 /* 493 * When @wait we can deadlock when we interrupt between llist_add() and 494 * arch_send_call_function_ipi*(); when !@wait we can deadlock due to 495 * csd_lock() on because the interrupt context uses the same csd 496 * storage. 497 */ 498 WARN_ON_ONCE(!in_task()); 499 500 csd = &csd_stack; 501 if (!wait) { 502 csd = this_cpu_ptr(&csd_data); 503 csd_lock(csd); 504 } 505 506 csd->func = func; 507 csd->info = info; 508 #ifdef CONFIG_CSD_LOCK_WAIT_DEBUG 509 csd->node.src = smp_processor_id(); 510 csd->node.dst = cpu; 511 #endif 512 513 err = generic_exec_single(cpu, csd); 514 515 if (wait) 516 csd_lock_wait(csd); 517 518 put_cpu(); 519 520 return err; 521 } 522 EXPORT_SYMBOL(smp_call_function_single); 523 524 /** 525 * smp_call_function_single_async(): Run an asynchronous function on a 526 * specific CPU. 527 * @cpu: The CPU to run on. 528 * @csd: Pre-allocated and setup data structure 529 * 530 * Like smp_call_function_single(), but the call is asynchonous and 531 * can thus be done from contexts with disabled interrupts. 532 * 533 * The caller passes his own pre-allocated data structure 534 * (ie: embedded in an object) and is responsible for synchronizing it 535 * such that the IPIs performed on the @csd are strictly serialized. 536 * 537 * If the function is called with one csd which has not yet been 538 * processed by previous call to smp_call_function_single_async(), the 539 * function will return immediately with -EBUSY showing that the csd 540 * object is still in progress. 541 * 542 * NOTE: Be careful, there is unfortunately no current debugging facility to 543 * validate the correctness of this serialization. 544 */ 545 int smp_call_function_single_async(int cpu, call_single_data_t *csd) 546 { 547 int err = 0; 548 549 preempt_disable(); 550 551 if (csd->node.u_flags & CSD_FLAG_LOCK) { 552 err = -EBUSY; 553 goto out; 554 } 555 556 csd->node.u_flags = CSD_FLAG_LOCK; 557 smp_wmb(); 558 559 err = generic_exec_single(cpu, csd); 560 561 out: 562 preempt_enable(); 563 564 return err; 565 } 566 EXPORT_SYMBOL_GPL(smp_call_function_single_async); 567 568 /* 569 * smp_call_function_any - Run a function on any of the given cpus 570 * @mask: The mask of cpus it can run on. 571 * @func: The function to run. This must be fast and non-blocking. 572 * @info: An arbitrary pointer to pass to the function. 573 * @wait: If true, wait until function has completed. 574 * 575 * Returns 0 on success, else a negative status code (if no cpus were online). 576 * 577 * Selection preference: 578 * 1) current cpu if in @mask 579 * 2) any cpu of current node if in @mask 580 * 3) any other online cpu in @mask 581 */ 582 int smp_call_function_any(const struct cpumask *mask, 583 smp_call_func_t func, void *info, int wait) 584 { 585 unsigned int cpu; 586 const struct cpumask *nodemask; 587 int ret; 588 589 /* Try for same CPU (cheapest) */ 590 cpu = get_cpu(); 591 if (cpumask_test_cpu(cpu, mask)) 592 goto call; 593 594 /* Try for same node. */ 595 nodemask = cpumask_of_node(cpu_to_node(cpu)); 596 for (cpu = cpumask_first_and(nodemask, mask); cpu < nr_cpu_ids; 597 cpu = cpumask_next_and(cpu, nodemask, mask)) { 598 if (cpu_online(cpu)) 599 goto call; 600 } 601 602 /* Any online will do: smp_call_function_single handles nr_cpu_ids. */ 603 cpu = cpumask_any_and(mask, cpu_online_mask); 604 call: 605 ret = smp_call_function_single(cpu, func, info, wait); 606 put_cpu(); 607 return ret; 608 } 609 EXPORT_SYMBOL_GPL(smp_call_function_any); 610 611 /* 612 * Flags to be used as scf_flags argument of smp_call_function_many_cond(). 613 * 614 * %SCF_WAIT: Wait until function execution is completed 615 * %SCF_RUN_LOCAL: Run also locally if local cpu is set in cpumask 616 */ 617 #define SCF_WAIT (1U << 0) 618 #define SCF_RUN_LOCAL (1U << 1) 619 620 static void smp_call_function_many_cond(const struct cpumask *mask, 621 smp_call_func_t func, void *info, 622 unsigned int scf_flags, 623 smp_cond_func_t cond_func) 624 { 625 int cpu, last_cpu, this_cpu = smp_processor_id(); 626 struct call_function_data *cfd; 627 bool wait = scf_flags & SCF_WAIT; 628 bool run_remote = false; 629 bool run_local = false; 630 int nr_cpus = 0; 631 632 lockdep_assert_preemption_disabled(); 633 634 /* 635 * Can deadlock when called with interrupts disabled. 636 * We allow cpu's that are not yet online though, as no one else can 637 * send smp call function interrupt to this cpu and as such deadlocks 638 * can't happen. 639 */ 640 if (cpu_online(this_cpu) && !oops_in_progress && 641 !early_boot_irqs_disabled) 642 lockdep_assert_irqs_enabled(); 643 644 /* 645 * When @wait we can deadlock when we interrupt between llist_add() and 646 * arch_send_call_function_ipi*(); when !@wait we can deadlock due to 647 * csd_lock() on because the interrupt context uses the same csd 648 * storage. 649 */ 650 WARN_ON_ONCE(!in_task()); 651 652 /* Check if we need local execution. */ 653 if ((scf_flags & SCF_RUN_LOCAL) && cpumask_test_cpu(this_cpu, mask)) 654 run_local = true; 655 656 /* Check if we need remote execution, i.e., any CPU excluding this one. */ 657 cpu = cpumask_first_and(mask, cpu_online_mask); 658 if (cpu == this_cpu) 659 cpu = cpumask_next_and(cpu, mask, cpu_online_mask); 660 if (cpu < nr_cpu_ids) 661 run_remote = true; 662 663 if (run_remote) { 664 cfd = this_cpu_ptr(&cfd_data); 665 cpumask_and(cfd->cpumask, mask, cpu_online_mask); 666 __cpumask_clear_cpu(this_cpu, cfd->cpumask); 667 668 cpumask_clear(cfd->cpumask_ipi); 669 for_each_cpu(cpu, cfd->cpumask) { 670 call_single_data_t *csd = per_cpu_ptr(cfd->csd, cpu); 671 672 if (cond_func && !cond_func(cpu, info)) 673 continue; 674 675 csd_lock(csd); 676 if (wait) 677 csd->node.u_flags |= CSD_TYPE_SYNC; 678 csd->func = func; 679 csd->info = info; 680 #ifdef CONFIG_CSD_LOCK_WAIT_DEBUG 681 csd->node.src = smp_processor_id(); 682 csd->node.dst = cpu; 683 #endif 684 if (llist_add(&csd->node.llist, &per_cpu(call_single_queue, cpu))) { 685 __cpumask_set_cpu(cpu, cfd->cpumask_ipi); 686 nr_cpus++; 687 last_cpu = cpu; 688 } 689 } 690 691 /* 692 * Choose the most efficient way to send an IPI. Note that the 693 * number of CPUs might be zero due to concurrent changes to the 694 * provided mask. 695 */ 696 if (nr_cpus == 1) 697 arch_send_call_function_single_ipi(last_cpu); 698 else if (likely(nr_cpus > 1)) 699 arch_send_call_function_ipi_mask(cfd->cpumask_ipi); 700 } 701 702 if (run_local && (!cond_func || cond_func(this_cpu, info))) { 703 unsigned long flags; 704 705 local_irq_save(flags); 706 func(info); 707 local_irq_restore(flags); 708 } 709 710 if (run_remote && wait) { 711 for_each_cpu(cpu, cfd->cpumask) { 712 call_single_data_t *csd; 713 714 csd = per_cpu_ptr(cfd->csd, cpu); 715 csd_lock_wait(csd); 716 } 717 } 718 } 719 720 /** 721 * smp_call_function_many(): Run a function on a set of CPUs. 722 * @mask: The set of cpus to run on (only runs on online subset). 723 * @func: The function to run. This must be fast and non-blocking. 724 * @info: An arbitrary pointer to pass to the function. 725 * @flags: Bitmask that controls the operation. If %SCF_WAIT is set, wait 726 * (atomically) until function has completed on other CPUs. If 727 * %SCF_RUN_LOCAL is set, the function will also be run locally 728 * if the local CPU is set in the @cpumask. 729 * 730 * If @wait is true, then returns once @func has returned. 731 * 732 * You must not call this function with disabled interrupts or from a 733 * hardware interrupt handler or from a bottom half handler. Preemption 734 * must be disabled when calling this function. 735 */ 736 void smp_call_function_many(const struct cpumask *mask, 737 smp_call_func_t func, void *info, bool wait) 738 { 739 smp_call_function_many_cond(mask, func, info, wait * SCF_WAIT, NULL); 740 } 741 EXPORT_SYMBOL(smp_call_function_many); 742 743 /** 744 * smp_call_function(): Run a function on all other CPUs. 745 * @func: The function to run. This must be fast and non-blocking. 746 * @info: An arbitrary pointer to pass to the function. 747 * @wait: If true, wait (atomically) until function has completed 748 * on other CPUs. 749 * 750 * Returns 0. 751 * 752 * If @wait is true, then returns once @func has returned; otherwise 753 * it returns just before the target cpu calls @func. 754 * 755 * You must not call this function with disabled interrupts or from a 756 * hardware interrupt handler or from a bottom half handler. 757 */ 758 void smp_call_function(smp_call_func_t func, void *info, int wait) 759 { 760 preempt_disable(); 761 smp_call_function_many(cpu_online_mask, func, info, wait); 762 preempt_enable(); 763 } 764 EXPORT_SYMBOL(smp_call_function); 765 766 /* Setup configured maximum number of CPUs to activate */ 767 unsigned int setup_max_cpus = NR_CPUS; 768 EXPORT_SYMBOL(setup_max_cpus); 769 770 771 /* 772 * Setup routine for controlling SMP activation 773 * 774 * Command-line option of "nosmp" or "maxcpus=0" will disable SMP 775 * activation entirely (the MPS table probe still happens, though). 776 * 777 * Command-line option of "maxcpus=<NUM>", where <NUM> is an integer 778 * greater than 0, limits the maximum number of CPUs activated in 779 * SMP mode to <NUM>. 780 */ 781 782 void __weak arch_disable_smp_support(void) { } 783 784 static int __init nosmp(char *str) 785 { 786 setup_max_cpus = 0; 787 arch_disable_smp_support(); 788 789 return 0; 790 } 791 792 early_param("nosmp", nosmp); 793 794 /* this is hard limit */ 795 static int __init nrcpus(char *str) 796 { 797 int nr_cpus; 798 799 if (get_option(&str, &nr_cpus) && nr_cpus > 0 && nr_cpus < nr_cpu_ids) 800 nr_cpu_ids = nr_cpus; 801 802 return 0; 803 } 804 805 early_param("nr_cpus", nrcpus); 806 807 static int __init maxcpus(char *str) 808 { 809 get_option(&str, &setup_max_cpus); 810 if (setup_max_cpus == 0) 811 arch_disable_smp_support(); 812 813 return 0; 814 } 815 816 early_param("maxcpus", maxcpus); 817 818 /* Setup number of possible processor ids */ 819 unsigned int nr_cpu_ids __read_mostly = NR_CPUS; 820 EXPORT_SYMBOL(nr_cpu_ids); 821 822 /* An arch may set nr_cpu_ids earlier if needed, so this would be redundant */ 823 void __init setup_nr_cpu_ids(void) 824 { 825 nr_cpu_ids = find_last_bit(cpumask_bits(cpu_possible_mask),NR_CPUS) + 1; 826 } 827 828 /* Called by boot processor to activate the rest. */ 829 void __init smp_init(void) 830 { 831 int num_nodes, num_cpus; 832 833 idle_threads_init(); 834 cpuhp_threads_init(); 835 836 pr_info("Bringing up secondary CPUs ...\n"); 837 838 bringup_nonboot_cpus(setup_max_cpus); 839 840 num_nodes = num_online_nodes(); 841 num_cpus = num_online_cpus(); 842 pr_info("Brought up %d node%s, %d CPU%s\n", 843 num_nodes, (num_nodes > 1 ? "s" : ""), 844 num_cpus, (num_cpus > 1 ? "s" : "")); 845 846 /* Any cleanup work */ 847 smp_cpus_done(setup_max_cpus); 848 } 849 850 /* 851 * Call a function on all processors. May be used during early boot while 852 * early_boot_irqs_disabled is set. Use local_irq_save/restore() instead 853 * of local_irq_disable/enable(). 854 */ 855 void on_each_cpu(smp_call_func_t func, void *info, int wait) 856 { 857 unsigned long flags; 858 859 preempt_disable(); 860 smp_call_function(func, info, wait); 861 local_irq_save(flags); 862 func(info); 863 local_irq_restore(flags); 864 preempt_enable(); 865 } 866 EXPORT_SYMBOL(on_each_cpu); 867 868 /** 869 * on_each_cpu_mask(): Run a function on processors specified by 870 * cpumask, which may include the local processor. 871 * @mask: The set of cpus to run on (only runs on online subset). 872 * @func: The function to run. This must be fast and non-blocking. 873 * @info: An arbitrary pointer to pass to the function. 874 * @wait: If true, wait (atomically) until function has completed 875 * on other CPUs. 876 * 877 * If @wait is true, then returns once @func has returned. 878 * 879 * You must not call this function with disabled interrupts or from a 880 * hardware interrupt handler or from a bottom half handler. The 881 * exception is that it may be used during early boot while 882 * early_boot_irqs_disabled is set. 883 */ 884 void on_each_cpu_mask(const struct cpumask *mask, smp_call_func_t func, 885 void *info, bool wait) 886 { 887 unsigned int scf_flags; 888 889 scf_flags = SCF_RUN_LOCAL; 890 if (wait) 891 scf_flags |= SCF_WAIT; 892 893 preempt_disable(); 894 smp_call_function_many_cond(mask, func, info, scf_flags, NULL); 895 preempt_enable(); 896 } 897 EXPORT_SYMBOL(on_each_cpu_mask); 898 899 /* 900 * on_each_cpu_cond(): Call a function on each processor for which 901 * the supplied function cond_func returns true, optionally waiting 902 * for all the required CPUs to finish. This may include the local 903 * processor. 904 * @cond_func: A callback function that is passed a cpu id and 905 * the info parameter. The function is called 906 * with preemption disabled. The function should 907 * return a blooean value indicating whether to IPI 908 * the specified CPU. 909 * @func: The function to run on all applicable CPUs. 910 * This must be fast and non-blocking. 911 * @info: An arbitrary pointer to pass to both functions. 912 * @wait: If true, wait (atomically) until function has 913 * completed on other CPUs. 914 * 915 * Preemption is disabled to protect against CPUs going offline but not online. 916 * CPUs going online during the call will not be seen or sent an IPI. 917 * 918 * You must not call this function with disabled interrupts or 919 * from a hardware interrupt handler or from a bottom half handler. 920 */ 921 void on_each_cpu_cond_mask(smp_cond_func_t cond_func, smp_call_func_t func, 922 void *info, bool wait, const struct cpumask *mask) 923 { 924 unsigned int scf_flags = SCF_RUN_LOCAL; 925 926 if (wait) 927 scf_flags |= SCF_WAIT; 928 929 preempt_disable(); 930 smp_call_function_many_cond(mask, func, info, scf_flags, cond_func); 931 preempt_enable(); 932 } 933 EXPORT_SYMBOL(on_each_cpu_cond_mask); 934 935 void on_each_cpu_cond(smp_cond_func_t cond_func, smp_call_func_t func, 936 void *info, bool wait) 937 { 938 on_each_cpu_cond_mask(cond_func, func, info, wait, cpu_online_mask); 939 } 940 EXPORT_SYMBOL(on_each_cpu_cond); 941 942 static void do_nothing(void *unused) 943 { 944 } 945 946 /** 947 * kick_all_cpus_sync - Force all cpus out of idle 948 * 949 * Used to synchronize the update of pm_idle function pointer. It's 950 * called after the pointer is updated and returns after the dummy 951 * callback function has been executed on all cpus. The execution of 952 * the function can only happen on the remote cpus after they have 953 * left the idle function which had been called via pm_idle function 954 * pointer. So it's guaranteed that nothing uses the previous pointer 955 * anymore. 956 */ 957 void kick_all_cpus_sync(void) 958 { 959 /* Make sure the change is visible before we kick the cpus */ 960 smp_mb(); 961 smp_call_function(do_nothing, NULL, 1); 962 } 963 EXPORT_SYMBOL_GPL(kick_all_cpus_sync); 964 965 /** 966 * wake_up_all_idle_cpus - break all cpus out of idle 967 * wake_up_all_idle_cpus try to break all cpus which is in idle state even 968 * including idle polling cpus, for non-idle cpus, we will do nothing 969 * for them. 970 */ 971 void wake_up_all_idle_cpus(void) 972 { 973 int cpu; 974 975 preempt_disable(); 976 for_each_online_cpu(cpu) { 977 if (cpu == smp_processor_id()) 978 continue; 979 980 wake_up_if_idle(cpu); 981 } 982 preempt_enable(); 983 } 984 EXPORT_SYMBOL_GPL(wake_up_all_idle_cpus); 985 986 /** 987 * smp_call_on_cpu - Call a function on a specific cpu 988 * 989 * Used to call a function on a specific cpu and wait for it to return. 990 * Optionally make sure the call is done on a specified physical cpu via vcpu 991 * pinning in order to support virtualized environments. 992 */ 993 struct smp_call_on_cpu_struct { 994 struct work_struct work; 995 struct completion done; 996 int (*func)(void *); 997 void *data; 998 int ret; 999 int cpu; 1000 }; 1001 1002 static void smp_call_on_cpu_callback(struct work_struct *work) 1003 { 1004 struct smp_call_on_cpu_struct *sscs; 1005 1006 sscs = container_of(work, struct smp_call_on_cpu_struct, work); 1007 if (sscs->cpu >= 0) 1008 hypervisor_pin_vcpu(sscs->cpu); 1009 sscs->ret = sscs->func(sscs->data); 1010 if (sscs->cpu >= 0) 1011 hypervisor_pin_vcpu(-1); 1012 1013 complete(&sscs->done); 1014 } 1015 1016 int smp_call_on_cpu(unsigned int cpu, int (*func)(void *), void *par, bool phys) 1017 { 1018 struct smp_call_on_cpu_struct sscs = { 1019 .done = COMPLETION_INITIALIZER_ONSTACK(sscs.done), 1020 .func = func, 1021 .data = par, 1022 .cpu = phys ? cpu : -1, 1023 }; 1024 1025 INIT_WORK_ONSTACK(&sscs.work, smp_call_on_cpu_callback); 1026 1027 if (cpu >= nr_cpu_ids || !cpu_online(cpu)) 1028 return -ENXIO; 1029 1030 queue_work_on(cpu, system_wq, &sscs.work); 1031 wait_for_completion(&sscs.done); 1032 1033 return sscs.ret; 1034 } 1035 EXPORT_SYMBOL_GPL(smp_call_on_cpu); 1036